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|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
596
|
A
|
Wilbur and Swimming Pool
|
PROGRAMMING
| 1,100
|
[
"geometry",
"implementation"
] | null | null |
After making bad dives into swimming pools, Wilbur wants to build a swimming pool in the shape of a rectangle in his backyard. He has set up coordinate axes, and he wants the sides of the rectangle to be parallel to them. Of course, the area of the rectangle must be positive. Wilbur had all four vertices of the planned pool written on a paper, until his friend came along and erased some of the vertices.
Now Wilbur is wondering, if the remaining *n* vertices of the initial rectangle give enough information to restore the area of the planned swimming pool.
|
The first line of the input contains a single integer *n* (1<=≤<=*n*<=≤<=4) — the number of vertices that were not erased by Wilbur's friend.
Each of the following *n* lines contains two integers *x**i* and *y**i* (<=-<=1000<=≤<=*x**i*,<=*y**i*<=≤<=1000) —the coordinates of the *i*-th vertex that remains. Vertices are given in an arbitrary order.
It's guaranteed that these points are distinct vertices of some rectangle, that has positive area and which sides are parallel to the coordinate axes.
|
Print the area of the initial rectangle if it could be uniquely determined by the points remaining. Otherwise, print <=-<=1.
|
[
"2\n0 0\n1 1\n",
"1\n1 1\n"
] |
[
"1\n",
"-1\n"
] |
In the first sample, two opposite corners of the initial rectangle are given, and that gives enough information to say that the rectangle is actually a unit square.
In the second sample there is only one vertex left and this is definitely not enough to uniquely define the area.
| 500
|
[
{
"input": "2\n0 0\n1 1",
"output": "1"
},
{
"input": "1\n1 1",
"output": "-1"
},
{
"input": "1\n-188 17",
"output": "-1"
},
{
"input": "1\n71 -740",
"output": "-1"
},
{
"input": "4\n-56 -858\n-56 -174\n778 -858\n778 -174",
"output": "570456"
},
{
"input": "2\n14 153\n566 -13",
"output": "91632"
},
{
"input": "2\n-559 894\n314 127",
"output": "669591"
},
{
"input": "1\n-227 -825",
"output": "-1"
},
{
"input": "2\n-187 583\n25 13",
"output": "120840"
},
{
"input": "2\n-337 451\n32 -395",
"output": "312174"
},
{
"input": "4\n-64 -509\n-64 960\n634 -509\n634 960",
"output": "1025362"
},
{
"input": "2\n-922 -505\n712 -683",
"output": "290852"
},
{
"input": "2\n-1000 -1000\n-1000 0",
"output": "-1"
},
{
"input": "2\n-1000 -1000\n0 -1000",
"output": "-1"
},
{
"input": "4\n-414 -891\n-414 896\n346 -891\n346 896",
"output": "1358120"
},
{
"input": "2\n56 31\n704 -121",
"output": "98496"
},
{
"input": "4\n-152 198\n-152 366\n458 198\n458 366",
"output": "102480"
},
{
"input": "3\n-890 778\n-418 296\n-890 296",
"output": "227504"
},
{
"input": "4\n852 -184\n852 724\n970 -184\n970 724",
"output": "107144"
},
{
"input": "1\n858 -279",
"output": "-1"
},
{
"input": "2\n-823 358\n446 358",
"output": "-1"
},
{
"input": "2\n-739 -724\n-739 443",
"output": "-1"
},
{
"input": "2\n686 664\n686 -590",
"output": "-1"
},
{
"input": "3\n-679 301\n240 -23\n-679 -23",
"output": "297756"
},
{
"input": "2\n-259 -978\n978 -978",
"output": "-1"
},
{
"input": "1\n627 -250",
"output": "-1"
},
{
"input": "3\n-281 598\n679 -990\n-281 -990",
"output": "1524480"
},
{
"input": "2\n-414 -431\n-377 -688",
"output": "9509"
},
{
"input": "3\n-406 566\n428 426\n-406 426",
"output": "116760"
},
{
"input": "3\n-686 695\n-547 308\n-686 308",
"output": "53793"
},
{
"input": "1\n-164 -730",
"output": "-1"
},
{
"input": "2\n980 -230\n980 592",
"output": "-1"
},
{
"input": "4\n-925 306\n-925 602\n398 306\n398 602",
"output": "391608"
},
{
"input": "3\n576 -659\n917 -739\n576 -739",
"output": "27280"
},
{
"input": "1\n720 -200",
"output": "-1"
},
{
"input": "4\n-796 -330\n-796 758\n171 -330\n171 758",
"output": "1052096"
},
{
"input": "2\n541 611\n-26 611",
"output": "-1"
},
{
"input": "3\n-487 838\n134 691\n-487 691",
"output": "91287"
},
{
"input": "2\n-862 -181\n-525 -181",
"output": "-1"
},
{
"input": "1\n-717 916",
"output": "-1"
},
{
"input": "1\n-841 -121",
"output": "-1"
},
{
"input": "4\n259 153\n259 999\n266 153\n266 999",
"output": "5922"
},
{
"input": "2\n295 710\n295 254",
"output": "-1"
},
{
"input": "4\n137 -184\n137 700\n712 -184\n712 700",
"output": "508300"
},
{
"input": "2\n157 994\n377 136",
"output": "188760"
},
{
"input": "1\n193 304",
"output": "-1"
},
{
"input": "4\n5 -952\n5 292\n553 -952\n553 292",
"output": "681712"
},
{
"input": "2\n-748 697\n671 575",
"output": "173118"
},
{
"input": "2\n-457 82\n260 -662",
"output": "533448"
},
{
"input": "2\n-761 907\n967 907",
"output": "-1"
},
{
"input": "3\n-639 51\n-321 -539\n-639 -539",
"output": "187620"
},
{
"input": "2\n-480 51\n89 -763",
"output": "463166"
},
{
"input": "4\n459 -440\n459 -94\n872 -440\n872 -94",
"output": "142898"
},
{
"input": "2\n380 -849\n68 -849",
"output": "-1"
},
{
"input": "2\n-257 715\n102 715",
"output": "-1"
},
{
"input": "2\n247 -457\n434 -921",
"output": "86768"
},
{
"input": "4\n-474 -894\n-474 -833\n-446 -894\n-446 -833",
"output": "1708"
},
{
"input": "3\n-318 831\n450 31\n-318 31",
"output": "614400"
},
{
"input": "3\n-282 584\n696 488\n-282 488",
"output": "93888"
},
{
"input": "3\n258 937\n395 856\n258 856",
"output": "11097"
},
{
"input": "1\n-271 -499",
"output": "-1"
},
{
"input": "2\n-612 208\n326 -559",
"output": "719446"
},
{
"input": "2\n115 730\n562 -546",
"output": "570372"
},
{
"input": "2\n-386 95\n-386 750",
"output": "-1"
},
{
"input": "3\n0 0\n0 1\n1 0",
"output": "1"
},
{
"input": "3\n0 4\n3 4\n3 1",
"output": "9"
},
{
"input": "3\n1 1\n1 2\n2 1",
"output": "1"
},
{
"input": "3\n1 4\n4 4\n4 1",
"output": "9"
},
{
"input": "3\n1 1\n2 1\n1 2",
"output": "1"
},
{
"input": "3\n0 0\n1 0\n1 1",
"output": "1"
},
{
"input": "3\n0 0\n0 5\n5 0",
"output": "25"
},
{
"input": "3\n0 0\n0 1\n1 1",
"output": "1"
},
{
"input": "4\n0 0\n1 0\n1 1\n0 1",
"output": "1"
},
{
"input": "3\n4 4\n1 4\n4 1",
"output": "9"
},
{
"input": "3\n0 0\n2 0\n2 1",
"output": "2"
},
{
"input": "3\n0 0\n2 0\n0 2",
"output": "4"
},
{
"input": "3\n0 0\n0 1\n5 0",
"output": "5"
},
{
"input": "3\n1 1\n1 3\n3 1",
"output": "4"
},
{
"input": "4\n0 0\n1 0\n0 1\n1 1",
"output": "1"
},
{
"input": "2\n1 0\n2 1",
"output": "1"
},
{
"input": "3\n0 0\n1 0\n0 1",
"output": "1"
},
{
"input": "3\n1 0\n0 0\n0 1",
"output": "1"
},
{
"input": "3\n0 0\n0 5\n5 5",
"output": "25"
},
{
"input": "3\n1 0\n5 0\n5 10",
"output": "40"
},
{
"input": "3\n0 0\n1 0\n1 2",
"output": "2"
},
{
"input": "4\n0 1\n0 0\n1 0\n1 1",
"output": "1"
},
{
"input": "3\n0 0\n2 0\n0 1",
"output": "2"
},
{
"input": "3\n-2 -1\n-1 -1\n-1 -2",
"output": "1"
},
{
"input": "2\n1 0\n0 1",
"output": "1"
},
{
"input": "4\n1 1\n3 3\n3 1\n1 3",
"output": "4"
},
{
"input": "3\n2 1\n1 2\n2 2",
"output": "1"
},
{
"input": "3\n0 0\n0 3\n3 0",
"output": "9"
},
{
"input": "2\n0 3\n3 3",
"output": "-1"
},
{
"input": "4\n2 0\n2 8\n5 8\n5 0",
"output": "24"
},
{
"input": "2\n0 999\n100 250",
"output": "74900"
},
{
"input": "3\n1 1\n1 5\n5 1",
"output": "16"
},
{
"input": "3\n0 1\n0 0\n1 1",
"output": "1"
},
{
"input": "3\n0 0\n10 0\n0 10",
"output": "100"
},
{
"input": "2\n0 0\n-1 -1",
"output": "1"
},
{
"input": "3\n1 5\n2 2\n2 5",
"output": "3"
},
{
"input": "3\n0 0\n0 1\n2 0",
"output": "2"
},
{
"input": "3\n0 1\n1 0\n0 0",
"output": "1"
},
{
"input": "3\n0 0\n0 -1\n1 -1",
"output": "1"
},
{
"input": "3\n0 1\n1 0\n1 1",
"output": "1"
},
{
"input": "3\n3 5\n3 2\n7 2",
"output": "12"
},
{
"input": "3\n1 2\n1 3\n2 2",
"output": "1"
},
{
"input": "3\n5 0\n0 0\n0 5",
"output": "25"
},
{
"input": "3\n1 0\n1 3\n5 0",
"output": "12"
},
{
"input": "3\n0 0\n0 2\n2 0",
"output": "4"
},
{
"input": "3\n1 1\n0 0\n1 0",
"output": "1"
},
{
"input": "3\n1 2\n1 3\n2 3",
"output": "1"
},
{
"input": "4\n0 0\n0 1\n1 1\n1 0",
"output": "1"
},
{
"input": "2\n-3 0\n3 3",
"output": "18"
},
{
"input": "3\n1 1\n0 1\n1 0",
"output": "1"
},
{
"input": "3\n0 0\n5 0\n5 5",
"output": "25"
},
{
"input": "3\n79 79\n79 158\n158 79",
"output": "6241"
},
{
"input": "3\n1 0\n1 -1\n0 0",
"output": "1"
},
{
"input": "3\n1 1\n1 2\n2 2",
"output": "1"
},
{
"input": "3\n0 1\n0 0\n1 0",
"output": "1"
},
{
"input": "3\n2 1\n2 4\n6 1",
"output": "12"
},
{
"input": "3\n5 0\n0 0\n5 5",
"output": "25"
}
] | 1,542,295,689
| 2,147,483,647
|
Python 3
|
WRONG_ANSWER
|
TESTS
| 0
| 108
| 0
|
n=int(input())
x=n*[0]
y=n*[0]
for i in range(n):
x[i],y[i]=[int(i) for i in input().split()]
if n==1:
print(-1)
else:
if n==2:
if x[0]==x[1] or y[0]==y[1]:
print(-1)
else:
print((abs(x[0]-x[1])*(y[0]-y[1])))
elif n==3 or n==4:
x.sort()
y.sort()
print(abs((max(x)-min(x))*(max(y)-min(y))))
|
Title: Wilbur and Swimming Pool
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
After making bad dives into swimming pools, Wilbur wants to build a swimming pool in the shape of a rectangle in his backyard. He has set up coordinate axes, and he wants the sides of the rectangle to be parallel to them. Of course, the area of the rectangle must be positive. Wilbur had all four vertices of the planned pool written on a paper, until his friend came along and erased some of the vertices.
Now Wilbur is wondering, if the remaining *n* vertices of the initial rectangle give enough information to restore the area of the planned swimming pool.
Input Specification:
The first line of the input contains a single integer *n* (1<=≤<=*n*<=≤<=4) — the number of vertices that were not erased by Wilbur's friend.
Each of the following *n* lines contains two integers *x**i* and *y**i* (<=-<=1000<=≤<=*x**i*,<=*y**i*<=≤<=1000) —the coordinates of the *i*-th vertex that remains. Vertices are given in an arbitrary order.
It's guaranteed that these points are distinct vertices of some rectangle, that has positive area and which sides are parallel to the coordinate axes.
Output Specification:
Print the area of the initial rectangle if it could be uniquely determined by the points remaining. Otherwise, print <=-<=1.
Demo Input:
['2\n0 0\n1 1\n', '1\n1 1\n']
Demo Output:
['1\n', '-1\n']
Note:
In the first sample, two opposite corners of the initial rectangle are given, and that gives enough information to say that the rectangle is actually a unit square.
In the second sample there is only one vertex left and this is definitely not enough to uniquely define the area.
|
```python
n=int(input())
x=n*[0]
y=n*[0]
for i in range(n):
x[i],y[i]=[int(i) for i in input().split()]
if n==1:
print(-1)
else:
if n==2:
if x[0]==x[1] or y[0]==y[1]:
print(-1)
else:
print((abs(x[0]-x[1])*(y[0]-y[1])))
elif n==3 or n==4:
x.sort()
y.sort()
print(abs((max(x)-min(x))*(max(y)-min(y))))
```
| 0
|
|
918
|
B
|
Radio Station
|
PROGRAMMING
| 900
|
[
"implementation",
"strings"
] | null | null |
As the guys fried the radio station facilities, the school principal gave them tasks as a punishment. Dustin's task was to add comments to nginx configuration for school's website. The school has *n* servers. Each server has a name and an ip (names aren't necessarily unique, but ips are). Dustin knows the ip and name of each server. For simplicity, we'll assume that an nginx command is of form "command ip;" where command is a string consisting of English lowercase letter only, and ip is the ip of one of school servers.
Each ip is of form "a.b.c.d" where *a*, *b*, *c* and *d* are non-negative integers less than or equal to 255 (with no leading zeros). The nginx configuration file Dustin has to add comments to has *m* commands. Nobody ever memorizes the ips of servers, so to understand the configuration better, Dustin has to comment the name of server that the ip belongs to at the end of each line (after each command). More formally, if a line is "command ip;" Dustin has to replace it with "command ip; #name" where name is the name of the server with ip equal to ip.
Dustin doesn't know anything about nginx, so he panicked again and his friends asked you to do his task for him.
|
The first line of input contains two integers *n* and *m* (1<=≤<=*n*,<=*m*<=≤<=1000).
The next *n* lines contain the names and ips of the servers. Each line contains a string name, name of the server and a string ip, ip of the server, separated by space (1<=≤<=|*name*|<=≤<=10, *name* only consists of English lowercase letters). It is guaranteed that all ip are distinct.
The next *m* lines contain the commands in the configuration file. Each line is of form "command ip;" (1<=≤<=|*command*|<=≤<=10, command only consists of English lowercase letters). It is guaranteed that ip belongs to one of the *n* school servers.
|
Print *m* lines, the commands in the configuration file after Dustin did his task.
|
[
"2 2\nmain 192.168.0.2\nreplica 192.168.0.1\nblock 192.168.0.1;\nproxy 192.168.0.2;\n",
"3 5\ngoogle 8.8.8.8\ncodeforces 212.193.33.27\nserver 138.197.64.57\nredirect 138.197.64.57;\nblock 8.8.8.8;\ncf 212.193.33.27;\nunblock 8.8.8.8;\ncheck 138.197.64.57;\n"
] |
[
"block 192.168.0.1; #replica\nproxy 192.168.0.2; #main\n",
"redirect 138.197.64.57; #server\nblock 8.8.8.8; #google\ncf 212.193.33.27; #codeforces\nunblock 8.8.8.8; #google\ncheck 138.197.64.57; #server\n"
] |
none
| 1,000
|
[
{
"input": "2 2\nmain 192.168.0.2\nreplica 192.168.0.1\nblock 192.168.0.1;\nproxy 192.168.0.2;",
"output": "block 192.168.0.1; #replica\nproxy 192.168.0.2; #main"
},
{
"input": "3 5\ngoogle 8.8.8.8\ncodeforces 212.193.33.27\nserver 138.197.64.57\nredirect 138.197.64.57;\nblock 8.8.8.8;\ncf 212.193.33.27;\nunblock 8.8.8.8;\ncheck 138.197.64.57;",
"output": "redirect 138.197.64.57; #server\nblock 8.8.8.8; #google\ncf 212.193.33.27; #codeforces\nunblock 8.8.8.8; #google\ncheck 138.197.64.57; #server"
},
{
"input": "10 10\nittmcs 112.147.123.173\njkt 228.40.73.178\nfwckqtz 88.28.31.198\nkal 224.226.34.213\nnacuyokm 49.57.13.44\nfouynv 243.18.250.17\ns 45.248.83.247\ne 75.69.23.169\nauwoqlch 100.44.219.187\nlkldjq 46.123.169.140\ngjcylatwzi 46.123.169.140;\ndxfi 88.28.31.198;\ngv 46.123.169.140;\nety 88.28.31.198;\notbmgcrn 46.123.169.140;\nw 112.147.123.173;\np 75.69.23.169;\nvdsnigk 46.123.169.140;\nmmc 46.123.169.140;\ngtc 49.57.13.44;",
"output": "gjcylatwzi 46.123.169.140; #lkldjq\ndxfi 88.28.31.198; #fwckqtz\ngv 46.123.169.140; #lkldjq\nety 88.28.31.198; #fwckqtz\notbmgcrn 46.123.169.140; #lkldjq\nw 112.147.123.173; #ittmcs\np 75.69.23.169; #e\nvdsnigk 46.123.169.140; #lkldjq\nmmc 46.123.169.140; #lkldjq\ngtc 49.57.13.44; #nacuyokm"
},
{
"input": "1 1\nervbfot 185.32.99.2\nzygoumbmx 185.32.99.2;",
"output": "zygoumbmx 185.32.99.2; #ervbfot"
},
{
"input": "1 2\ny 245.182.246.189\nlllq 245.182.246.189;\nxds 245.182.246.189;",
"output": "lllq 245.182.246.189; #y\nxds 245.182.246.189; #y"
},
{
"input": "2 1\ntdwmshz 203.115.124.110\neksckjya 201.80.191.212\nzbtjzzue 203.115.124.110;",
"output": "zbtjzzue 203.115.124.110; #tdwmshz"
},
{
"input": "8 5\nfhgkq 5.19.189.178\nphftablcr 75.18.177.178\nxnpcg 158.231.167.176\ncfahrkq 26.165.124.191\nfkgtnqtfoh 230.13.13.129\nt 101.24.94.85\nvjoirslx 59.6.179.72\ntwktmskb 38.194.117.184\nrvzzlygosc 26.165.124.191;\ndcsgxrkgv 101.24.94.85;\nyvmyppn 59.6.179.72;\ngpdjjuq 75.18.177.178;\nvdviz 101.24.94.85;",
"output": "rvzzlygosc 26.165.124.191; #cfahrkq\ndcsgxrkgv 101.24.94.85; #t\nyvmyppn 59.6.179.72; #vjoirslx\ngpdjjuq 75.18.177.178; #phftablcr\nvdviz 101.24.94.85; #t"
},
{
"input": "2 1\nmain 1.1.1.1\nget 11.1.1.1\ncommand 11.1.1.1;",
"output": "command 11.1.1.1; #get"
},
{
"input": "2 2\nmain 0.0.0.255\nmainn 0.0.2.55\nblock 0.0.0.255;\nblock 0.0.2.55;",
"output": "block 0.0.0.255; #main\nblock 0.0.2.55; #mainn"
},
{
"input": "2 2\nmain 0.0.63.0\nreplica 0.38.0.56\nblock 0.0.63.0;\nproxy 0.38.0.56;",
"output": "block 0.0.63.0; #main\nproxy 0.38.0.56; #replica"
},
{
"input": "2 2\nmain 192.168.10.12\nreplica 192.167.10.12\nblock 192.168.10.12;\nproxy 192.167.10.12;",
"output": "block 192.168.10.12; #main\nproxy 192.167.10.12; #replica"
},
{
"input": "2 1\nneserver 185.218.47.91\nserver 255.255.255.255\nblock 255.255.255.255;",
"output": "block 255.255.255.255; #server"
},
{
"input": "2 1\nalp 22.222.30.10\nbet 222.22.30.10\nblock 22.222.30.10;",
"output": "block 22.222.30.10; #alp"
}
] | 1,686,198,503
| 2,147,483,647
|
Python 3
|
RUNTIME_ERROR
|
TESTS
| 0
| 15
| 0
|
def add_comments_to_nginx(n, m, servers, commands):
server_map = {}
for name, ip in servers:
server_map[ip] = name
result = []
for command in commands:
cmd, ip = command.strip().split()
result.append(f"{cmd} {ip}; #{server_map[ip]}")
return result
# Read input
n, m = map(int, input().split())
servers = [input().split() for _ in range(n)]
commands = [input() for _ in range(m)]
# Solve the problem
output = add_comments_to_nginx(n, m, servers, commands)
# Print the output
for line in output:
print(line)
|
Title: Radio Station
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
As the guys fried the radio station facilities, the school principal gave them tasks as a punishment. Dustin's task was to add comments to nginx configuration for school's website. The school has *n* servers. Each server has a name and an ip (names aren't necessarily unique, but ips are). Dustin knows the ip and name of each server. For simplicity, we'll assume that an nginx command is of form "command ip;" where command is a string consisting of English lowercase letter only, and ip is the ip of one of school servers.
Each ip is of form "a.b.c.d" where *a*, *b*, *c* and *d* are non-negative integers less than or equal to 255 (with no leading zeros). The nginx configuration file Dustin has to add comments to has *m* commands. Nobody ever memorizes the ips of servers, so to understand the configuration better, Dustin has to comment the name of server that the ip belongs to at the end of each line (after each command). More formally, if a line is "command ip;" Dustin has to replace it with "command ip; #name" where name is the name of the server with ip equal to ip.
Dustin doesn't know anything about nginx, so he panicked again and his friends asked you to do his task for him.
Input Specification:
The first line of input contains two integers *n* and *m* (1<=≤<=*n*,<=*m*<=≤<=1000).
The next *n* lines contain the names and ips of the servers. Each line contains a string name, name of the server and a string ip, ip of the server, separated by space (1<=≤<=|*name*|<=≤<=10, *name* only consists of English lowercase letters). It is guaranteed that all ip are distinct.
The next *m* lines contain the commands in the configuration file. Each line is of form "command ip;" (1<=≤<=|*command*|<=≤<=10, command only consists of English lowercase letters). It is guaranteed that ip belongs to one of the *n* school servers.
Output Specification:
Print *m* lines, the commands in the configuration file after Dustin did his task.
Demo Input:
['2 2\nmain 192.168.0.2\nreplica 192.168.0.1\nblock 192.168.0.1;\nproxy 192.168.0.2;\n', '3 5\ngoogle 8.8.8.8\ncodeforces 212.193.33.27\nserver 138.197.64.57\nredirect 138.197.64.57;\nblock 8.8.8.8;\ncf 212.193.33.27;\nunblock 8.8.8.8;\ncheck 138.197.64.57;\n']
Demo Output:
['block 192.168.0.1; #replica\nproxy 192.168.0.2; #main\n', 'redirect 138.197.64.57; #server\nblock 8.8.8.8; #google\ncf 212.193.33.27; #codeforces\nunblock 8.8.8.8; #google\ncheck 138.197.64.57; #server\n']
Note:
none
|
```python
def add_comments_to_nginx(n, m, servers, commands):
server_map = {}
for name, ip in servers:
server_map[ip] = name
result = []
for command in commands:
cmd, ip = command.strip().split()
result.append(f"{cmd} {ip}; #{server_map[ip]}")
return result
# Read input
n, m = map(int, input().split())
servers = [input().split() for _ in range(n)]
commands = [input() for _ in range(m)]
# Solve the problem
output = add_comments_to_nginx(n, m, servers, commands)
# Print the output
for line in output:
print(line)
```
| -1
|
|
898
|
C
|
Phone Numbers
|
PROGRAMMING
| 1,400
|
[
"implementation",
"strings"
] | null | null |
Vasya has several phone books, in which he recorded the telephone numbers of his friends. Each of his friends can have one or several phone numbers.
Vasya decided to organize information about the phone numbers of friends. You will be given *n* strings — all entries from Vasya's phone books. Each entry starts with a friend's name. Then follows the number of phone numbers in the current entry, and then the phone numbers themselves. It is possible that several identical phones are recorded in the same record.
Vasya also believes that if the phone number *a* is a suffix of the phone number *b* (that is, the number *b* ends up with *a*), and both numbers are written by Vasya as the phone numbers of the same person, then *a* is recorded without the city code and it should not be taken into account.
The task is to print organized information about the phone numbers of Vasya's friends. It is possible that two different people have the same number. If one person has two numbers *x* and *y*, and *x* is a suffix of *y* (that is, *y* ends in *x*), then you shouldn't print number *x*. If the number of a friend in the Vasya's phone books is recorded several times in the same format, it is necessary to take it into account exactly once.
Read the examples to understand statement and format of the output better.
|
First line contains the integer *n* (1<=≤<=*n*<=≤<=20) — number of entries in Vasya's phone books.
The following *n* lines are followed by descriptions of the records in the format described in statement. Names of Vasya's friends are non-empty strings whose length does not exceed 10. They consists only of lowercase English letters. Number of phone numbers in one entry is not less than 1 is not more than 10. The telephone numbers consist of digits only. If you represent a phone number as a string, then its length will be in range from 1 to 10. Phone numbers can contain leading zeros.
|
Print out the ordered information about the phone numbers of Vasya's friends. First output *m* — number of friends that are found in Vasya's phone books.
The following *m* lines must contain entries in the following format "name number_of_phone_numbers phone_numbers". Phone numbers should be separated by a space. Each record must contain all the phone numbers of current friend.
Entries can be displayed in arbitrary order, phone numbers for one record can also be printed in arbitrary order.
|
[
"2\nivan 1 00123\nmasha 1 00123\n",
"3\nkarl 2 612 12\npetr 1 12\nkatya 1 612\n",
"4\nivan 3 123 123 456\nivan 2 456 456\nivan 8 789 3 23 6 56 9 89 2\ndasha 2 23 789\n"
] |
[
"2\nmasha 1 00123 \nivan 1 00123 \n",
"3\nkatya 1 612 \npetr 1 12 \nkarl 1 612 \n",
"2\ndasha 2 23 789 \nivan 4 789 123 2 456 \n"
] |
none
| 1,500
|
[
{
"input": "2\nivan 1 00123\nmasha 1 00123",
"output": "2\nmasha 1 00123 \nivan 1 00123 "
},
{
"input": "3\nkarl 2 612 12\npetr 1 12\nkatya 1 612",
"output": "3\nkatya 1 612 \npetr 1 12 \nkarl 1 612 "
},
{
"input": "4\nivan 3 123 123 456\nivan 2 456 456\nivan 8 789 3 23 6 56 9 89 2\ndasha 2 23 789",
"output": "2\ndasha 2 789 23 \nivan 4 2 123 456 789 "
},
{
"input": "20\nnxj 6 7 6 6 7 7 7\nnxj 10 8 5 1 7 6 1 0 7 0 6\nnxj 2 6 5\nnxj 10 6 7 6 6 5 8 3 6 6 8\nnxj 10 6 1 7 6 7 1 8 7 8 6\nnxj 10 8 5 8 6 5 6 1 9 6 3\nnxj 10 8 1 6 4 8 0 4 6 0 1\nnxj 9 2 6 6 8 1 1 3 6 6\nnxj 10 8 9 0 9 1 3 2 3 2 3\nnxj 6 6 7 0 8 1 2\nnxj 7 7 7 8 1 3 6 9\nnxj 10 2 7 0 1 5 1 9 1 2 6\nnxj 6 9 6 9 6 3 7\nnxj 9 0 1 7 8 2 6 6 5 6\nnxj 4 0 2 3 7\nnxj 10 0 4 0 6 1 1 8 8 4 7\nnxj 8 4 6 2 6 6 1 2 7\nnxj 10 5 3 4 2 1 0 7 0 7 6\nnxj 10 9 6 0 6 1 6 2 1 9 6\nnxj 4 2 9 0 1",
"output": "1\nnxj 10 4 1 8 7 5 3 6 9 0 2 "
},
{
"input": "20\nl 6 02 02 2 02 02 2\nl 8 8 8 8 2 62 13 31 3\ne 9 0 91 0 0 60 91 60 2 44\ne 9 69 2 1 44 2 91 66 1 70\nl 9 7 27 27 3 1 3 7 80 81\nl 9 2 1 13 7 2 10 02 3 92\ne 9 0 15 3 5 5 15 91 09 44\nl 7 2 50 4 5 98 31 98\nl 3 26 7 3\ne 6 7 5 0 62 65 91\nl 8 80 0 4 0 2 2 0 13\nl 9 19 13 02 2 1 4 19 26 02\nl 10 7 39 7 9 22 22 26 2 90 4\ne 7 65 2 36 0 34 57 9\ne 8 13 02 09 91 73 5 36 62\nl 9 75 0 10 8 76 7 82 8 34\nl 7 34 0 19 80 6 4 7\ne 5 4 2 5 7 2\ne 7 4 02 69 7 07 20 2\nl 4 8 2 1 63",
"output": "2\ne 18 70 07 62 36 20 69 66 57 02 65 34 44 73 60 91 15 09 13 \nl 21 02 80 27 63 19 50 81 76 34 90 98 92 31 26 22 75 39 13 10 82 62 "
},
{
"input": "20\no 10 6 6 97 45 6 6 6 6 5 6\nl 8 5 5 5 19 59 5 8 5\nj 9 2 30 58 2 2 1 0 30 4\nc 10 1 1 7 51 7 7 51 1 1 1\no 9 7 97 87 70 2 19 2 14 6\ne 6 26 6 6 6 26 5\ng 9 3 3 3 3 3 78 69 8 9\nl 8 8 01 1 5 8 41 72 3\nz 10 1 2 2 2 9 1 9 1 6 7\ng 8 7 78 05 36 7 3 67 9\no 5 6 9 9 7 7\ne 10 30 2 1 1 2 5 04 0 6 6\ne 9 30 30 2 2 0 26 30 79 8\nt 10 2 2 9 29 7 7 7 9 2 9\nc 7 7 51 1 31 2 7 4\nc 9 83 1 6 78 94 74 54 8 32\ng 8 4 1 01 9 39 28 6 6\nt 7 9 2 01 4 4 9 58\nj 5 0 1 58 02 4\nw 10 80 0 91 91 06 91 9 9 27 7",
"output": "9\nw 5 91 06 27 9 80 \nt 6 01 29 4 58 2 7 \ne 8 2 8 30 04 26 5 79 1 \nl 8 8 41 72 01 19 59 3 5 \nj 5 58 02 1 4 30 \nz 5 7 9 6 2 1 \ng 10 39 67 3 01 36 4 05 69 78 28 \no 8 19 2 45 6 87 14 97 70 \nc 10 7 94 32 6 78 74 31 83 51 54 "
},
{
"input": "1\negew 5 3 123 23 1234 134",
"output": "1\negew 3 134 123 1234 "
}
] | 1,605,606,769
| 2,147,483,647
|
PyPy 3
|
WRONG_ANSWER
|
TESTS
| 0
| 155
| 307,200
|
from collections import defaultdict
d=defaultdict(list)
for _ in range(int(input())):
a = list((input().split()))
s=a[0]
x=a[1]
ind=2
for i in range(int(x)):
d[s].append(int(a[ind]))
ind+=1
for keys in d:
s = set()
for j in sorted(d[keys]):
if j not in s:
s.add(j)
s1 = ""
j=str(j)
for i in range(len(j) - 1 , 0 , -1):
s1 = j[i]+s1
if int(s1) in s:
s.remove(int(s1))
print(keys,len(s),*s)
|
Title: Phone Numbers
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
Vasya has several phone books, in which he recorded the telephone numbers of his friends. Each of his friends can have one or several phone numbers.
Vasya decided to organize information about the phone numbers of friends. You will be given *n* strings — all entries from Vasya's phone books. Each entry starts with a friend's name. Then follows the number of phone numbers in the current entry, and then the phone numbers themselves. It is possible that several identical phones are recorded in the same record.
Vasya also believes that if the phone number *a* is a suffix of the phone number *b* (that is, the number *b* ends up with *a*), and both numbers are written by Vasya as the phone numbers of the same person, then *a* is recorded without the city code and it should not be taken into account.
The task is to print organized information about the phone numbers of Vasya's friends. It is possible that two different people have the same number. If one person has two numbers *x* and *y*, and *x* is a suffix of *y* (that is, *y* ends in *x*), then you shouldn't print number *x*. If the number of a friend in the Vasya's phone books is recorded several times in the same format, it is necessary to take it into account exactly once.
Read the examples to understand statement and format of the output better.
Input Specification:
First line contains the integer *n* (1<=≤<=*n*<=≤<=20) — number of entries in Vasya's phone books.
The following *n* lines are followed by descriptions of the records in the format described in statement. Names of Vasya's friends are non-empty strings whose length does not exceed 10. They consists only of lowercase English letters. Number of phone numbers in one entry is not less than 1 is not more than 10. The telephone numbers consist of digits only. If you represent a phone number as a string, then its length will be in range from 1 to 10. Phone numbers can contain leading zeros.
Output Specification:
Print out the ordered information about the phone numbers of Vasya's friends. First output *m* — number of friends that are found in Vasya's phone books.
The following *m* lines must contain entries in the following format "name number_of_phone_numbers phone_numbers". Phone numbers should be separated by a space. Each record must contain all the phone numbers of current friend.
Entries can be displayed in arbitrary order, phone numbers for one record can also be printed in arbitrary order.
Demo Input:
['2\nivan 1 00123\nmasha 1 00123\n', '3\nkarl 2 612 12\npetr 1 12\nkatya 1 612\n', '4\nivan 3 123 123 456\nivan 2 456 456\nivan 8 789 3 23 6 56 9 89 2\ndasha 2 23 789\n']
Demo Output:
['2\nmasha 1 00123 \nivan 1 00123 \n', '3\nkatya 1 612 \npetr 1 12 \nkarl 1 612 \n', '2\ndasha 2 23 789 \nivan 4 789 123 2 456 \n']
Note:
none
|
```python
from collections import defaultdict
d=defaultdict(list)
for _ in range(int(input())):
a = list((input().split()))
s=a[0]
x=a[1]
ind=2
for i in range(int(x)):
d[s].append(int(a[ind]))
ind+=1
for keys in d:
s = set()
for j in sorted(d[keys]):
if j not in s:
s.add(j)
s1 = ""
j=str(j)
for i in range(len(j) - 1 , 0 , -1):
s1 = j[i]+s1
if int(s1) in s:
s.remove(int(s1))
print(keys,len(s),*s)
```
| 0
|
|
579
|
A
|
Raising Bacteria
|
PROGRAMMING
| 1,000
|
[
"bitmasks"
] | null | null |
You are a lover of bacteria. You want to raise some bacteria in a box.
Initially, the box is empty. Each morning, you can put any number of bacteria into the box. And each night, every bacterium in the box will split into two bacteria. You hope to see exactly *x* bacteria in the box at some moment.
What is the minimum number of bacteria you need to put into the box across those days?
|
The only line containing one integer *x* (1<=≤<=*x*<=≤<=109).
|
The only line containing one integer: the answer.
|
[
"5\n",
"8\n"
] |
[
"2\n",
"1\n"
] |
For the first sample, we can add one bacterium in the box in the first day morning and at the third morning there will be 4 bacteria in the box. Now we put one more resulting 5 in the box. We added 2 bacteria in the process so the answer is 2.
For the second sample, we can put one in the first morning and in the 4-th morning there will be 8 in the box. So the answer is 1.
| 250
|
[
{
"input": "5",
"output": "2"
},
{
"input": "8",
"output": "1"
},
{
"input": "536870911",
"output": "29"
},
{
"input": "1",
"output": "1"
},
{
"input": "343000816",
"output": "14"
},
{
"input": "559980448",
"output": "12"
},
{
"input": "697681824",
"output": "14"
},
{
"input": "41313494",
"output": "14"
},
{
"input": "673935585",
"output": "13"
},
{
"input": "117422204",
"output": "19"
},
{
"input": "954746654",
"output": "15"
},
{
"input": "536838144",
"output": "14"
},
{
"input": "1000000000",
"output": "13"
},
{
"input": "2",
"output": "1"
},
{
"input": "3",
"output": "2"
},
{
"input": "4",
"output": "1"
},
{
"input": "6",
"output": "2"
},
{
"input": "7",
"output": "3"
},
{
"input": "9",
"output": "2"
},
{
"input": "10",
"output": "2"
},
{
"input": "999999999",
"output": "21"
},
{
"input": "999999998",
"output": "20"
},
{
"input": "999999997",
"output": "20"
},
{
"input": "999999996",
"output": "19"
},
{
"input": "999999995",
"output": "20"
},
{
"input": "999999994",
"output": "19"
},
{
"input": "999999993",
"output": "19"
},
{
"input": "999999992",
"output": "18"
},
{
"input": "999999991",
"output": "20"
},
{
"input": "999999990",
"output": "19"
},
{
"input": "536870910",
"output": "28"
},
{
"input": "536870912",
"output": "1"
},
{
"input": "536870913",
"output": "2"
},
{
"input": "536870914",
"output": "2"
},
{
"input": "22",
"output": "3"
},
{
"input": "14",
"output": "3"
}
] | 1,683,356,741
| 2,147,483,647
|
PyPy 3
|
OK
|
TESTS
| 36
| 93
| 0
|
n = int(input())
cnt = 0
while(n > 0):
if(n%2 == 0):
n = n//2
else:
cnt += 1
n = n//2
print(cnt)
|
Title: Raising Bacteria
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
You are a lover of bacteria. You want to raise some bacteria in a box.
Initially, the box is empty. Each morning, you can put any number of bacteria into the box. And each night, every bacterium in the box will split into two bacteria. You hope to see exactly *x* bacteria in the box at some moment.
What is the minimum number of bacteria you need to put into the box across those days?
Input Specification:
The only line containing one integer *x* (1<=≤<=*x*<=≤<=109).
Output Specification:
The only line containing one integer: the answer.
Demo Input:
['5\n', '8\n']
Demo Output:
['2\n', '1\n']
Note:
For the first sample, we can add one bacterium in the box in the first day morning and at the third morning there will be 4 bacteria in the box. Now we put one more resulting 5 in the box. We added 2 bacteria in the process so the answer is 2.
For the second sample, we can put one in the first morning and in the 4-th morning there will be 8 in the box. So the answer is 1.
|
```python
n = int(input())
cnt = 0
while(n > 0):
if(n%2 == 0):
n = n//2
else:
cnt += 1
n = n//2
print(cnt)
```
| 3
|
|
328
|
A
|
IQ Test
|
PROGRAMMING
| 1,800
|
[
"implementation"
] | null | null |
Petya is preparing for IQ test and he has noticed that there many problems like: you are given a sequence, find the next number. Now Petya can solve only problems with arithmetic or geometric progressions.
Arithmetic progression is a sequence *a*1, *a*1<=+<=*d*, *a*1<=+<=2*d*, ..., *a*1<=+<=(*n*<=-<=1)*d*, where *a*1 and *d* are any numbers.
Geometric progression is a sequence *b*1, *b*2<==<=*b*1*q*, ..., *b**n*<==<=*b**n*<=-<=1*q*, where *b*1<=≠<=0, *q*<=≠<=0, *q*<=≠<=1.
Help Petya and write a program to determine if the given sequence is arithmetic or geometric. Also it should found the next number. If the sequence is neither arithmetic nor geometric, print 42 (he thinks it is impossible to find better answer). You should also print 42 if the next element of progression is not integer. So answer is always integer.
|
The first line contains exactly four integer numbers between 1 and 1000, inclusively.
|
Print the required number. If the given sequence is arithmetic progression, print the next progression element. Similarly, if the given sequence is geometric progression, print the next progression element.
Print 42 if the given sequence is not an arithmetic or geometric progression.
|
[
"836 624 412 200\n",
"1 334 667 1000\n"
] |
[
"-12\n",
"1333\n"
] |
This problem contains very weak pretests!
| 500
|
[
{
"input": "836 624 412 200",
"output": "-12"
},
{
"input": "1 334 667 1000",
"output": "1333"
},
{
"input": "501 451 400 350",
"output": "42"
},
{
"input": "836 624 412 200",
"output": "-12"
},
{
"input": "1 334 667 1000",
"output": "1333"
},
{
"input": "11 234 457 680",
"output": "903"
},
{
"input": "640 431 222 13",
"output": "-196"
},
{
"input": "1 1 1 1",
"output": "1"
},
{
"input": "1 10 100 1000",
"output": "10000"
},
{
"input": "3 18 108 648",
"output": "3888"
},
{
"input": "512 384 288 216",
"output": "162"
},
{
"input": "891 297 99 33",
"output": "11"
},
{
"input": "64 160 400 1000",
"output": "2500"
},
{
"input": "501 451 400 350",
"output": "42"
},
{
"input": "501 450 400 350",
"output": "42"
},
{
"input": "4 32 48 64",
"output": "42"
},
{
"input": "9 8 7 5",
"output": "42"
},
{
"input": "992 994 998 1000",
"output": "42"
},
{
"input": "2 6 6 8",
"output": "42"
},
{
"input": "2 4 8 8",
"output": "42"
},
{
"input": "2 4 6 14",
"output": "42"
},
{
"input": "2 12 4 14",
"output": "42"
},
{
"input": "2 4 4 2",
"output": "42"
},
{
"input": "1000 100 10 1",
"output": "42"
},
{
"input": "2 9 27 81",
"output": "42"
},
{
"input": "2 4 9 16",
"output": "42"
},
{
"input": "2 4 9 18",
"output": "42"
},
{
"input": "256 64 16 8",
"output": "42"
},
{
"input": "256 385 576 864",
"output": "42"
},
{
"input": "343 147 63 27",
"output": "42"
},
{
"input": "729 648 576 512",
"output": "42"
},
{
"input": "1000 980 960 941",
"output": "42"
},
{
"input": "2 5 10 16",
"output": "42"
},
{
"input": "1 2 3 10",
"output": "42"
},
{
"input": "24 36 54 81",
"output": "42"
},
{
"input": "1 2 4 8",
"output": "16"
},
{
"input": "16 24 36 54",
"output": "81"
},
{
"input": "8 4 2 1",
"output": "42"
},
{
"input": "16 8 4 2",
"output": "1"
},
{
"input": "32 16 8 4",
"output": "2"
},
{
"input": "10 11 12 12",
"output": "42"
},
{
"input": "1 2 10 20",
"output": "42"
},
{
"input": "27 9 3 1",
"output": "42"
},
{
"input": "81 108 144 192",
"output": "256"
},
{
"input": "2 3 4 6",
"output": "42"
},
{
"input": "1000 500 170 40",
"output": "42"
}
] | 1,541,330,559
| 2,147,483,647
|
Python 3
|
WRONG_ANSWER
|
TESTS
| 8
| 218
| 0
|
a = list(map(int, input().split()))
isGeom = True
isAlg = True
d = a[1] - a[0]
q = a[1]/a[0]
for i in range(2, 4):
if (a[i] - a[i-1])!=d:
isAlg = False
if (a[i]/a[i-1])!=q:
isGeom = False
if isAlg:
print(a[3] + d)
elif isGeom:
print(a[3]*q)
else: print(42)
|
Title: IQ Test
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
Petya is preparing for IQ test and he has noticed that there many problems like: you are given a sequence, find the next number. Now Petya can solve only problems with arithmetic or geometric progressions.
Arithmetic progression is a sequence *a*1, *a*1<=+<=*d*, *a*1<=+<=2*d*, ..., *a*1<=+<=(*n*<=-<=1)*d*, where *a*1 and *d* are any numbers.
Geometric progression is a sequence *b*1, *b*2<==<=*b*1*q*, ..., *b**n*<==<=*b**n*<=-<=1*q*, where *b*1<=≠<=0, *q*<=≠<=0, *q*<=≠<=1.
Help Petya and write a program to determine if the given sequence is arithmetic or geometric. Also it should found the next number. If the sequence is neither arithmetic nor geometric, print 42 (he thinks it is impossible to find better answer). You should also print 42 if the next element of progression is not integer. So answer is always integer.
Input Specification:
The first line contains exactly four integer numbers between 1 and 1000, inclusively.
Output Specification:
Print the required number. If the given sequence is arithmetic progression, print the next progression element. Similarly, if the given sequence is geometric progression, print the next progression element.
Print 42 if the given sequence is not an arithmetic or geometric progression.
Demo Input:
['836 624 412 200\n', '1 334 667 1000\n']
Demo Output:
['-12\n', '1333\n']
Note:
This problem contains very weak pretests!
|
```python
a = list(map(int, input().split()))
isGeom = True
isAlg = True
d = a[1] - a[0]
q = a[1]/a[0]
for i in range(2, 4):
if (a[i] - a[i-1])!=d:
isAlg = False
if (a[i]/a[i-1])!=q:
isGeom = False
if isAlg:
print(a[3] + d)
elif isGeom:
print(a[3]*q)
else: print(42)
```
| 0
|
|
574
|
B
|
Bear and Three Musketeers
|
PROGRAMMING
| 1,500
|
[
"brute force",
"dfs and similar",
"graphs",
"hashing"
] | null | null |
Do you know a story about the three musketeers? Anyway, you will learn about its origins now.
Richelimakieu is a cardinal in the city of Bearis. He is tired of dealing with crime by himself. He needs three brave warriors to help him to fight against bad guys.
There are *n* warriors. Richelimakieu wants to choose three of them to become musketeers but it's not that easy. The most important condition is that musketeers must know each other to cooperate efficiently. And they shouldn't be too well known because they could be betrayed by old friends. For each musketeer his recognition is the number of warriors he knows, excluding other two musketeers.
Help Richelimakieu! Find if it is possible to choose three musketeers knowing each other, and what is minimum possible sum of their recognitions.
|
The first line contains two space-separated integers, *n* and *m* (3<=≤<=*n*<=≤<=4000, 0<=≤<=*m*<=≤<=4000) — respectively number of warriors and number of pairs of warriors knowing each other.
*i*-th of the following *m* lines contains two space-separated integers *a**i* and *b**i* (1<=≤<=*a**i*,<=*b**i*<=≤<=*n*, *a**i*<=≠<=*b**i*). Warriors *a**i* and *b**i* know each other. Each pair of warriors will be listed at most once.
|
If Richelimakieu can choose three musketeers, print the minimum possible sum of their recognitions. Otherwise, print "-1" (without the quotes).
|
[
"5 6\n1 2\n1 3\n2 3\n2 4\n3 4\n4 5\n",
"7 4\n2 1\n3 6\n5 1\n1 7\n"
] |
[
"2\n",
"-1\n"
] |
In the first sample Richelimakieu should choose a triple 1, 2, 3. The first musketeer doesn't know anyone except other two musketeers so his recognition is 0. The second musketeer has recognition 1 because he knows warrior number 4. The third musketeer also has recognition 1 because he knows warrior 4. Sum of recognitions is 0 + 1 + 1 = 2.
The other possible triple is 2, 3, 4 but it has greater sum of recognitions, equal to 1 + 1 + 1 = 3.
In the second sample there is no triple of warriors knowing each other.
| 1,000
|
[
{
"input": "5 6\n1 2\n1 3\n2 3\n2 4\n3 4\n4 5",
"output": "2"
},
{
"input": "7 4\n2 1\n3 6\n5 1\n1 7",
"output": "-1"
},
{
"input": "5 0",
"output": "-1"
},
{
"input": "7 14\n3 6\n2 3\n5 2\n5 6\n7 5\n7 4\n6 2\n3 5\n7 1\n4 1\n6 1\n7 6\n6 4\n5 4",
"output": "5"
},
{
"input": "15 15\n4 15\n12 1\n15 6\n11 6\n15 7\n6 8\n15 10\n6 12\n12 8\n15 8\n15 3\n11 9\n7 3\n6 4\n12 11",
"output": "4"
},
{
"input": "12 66\n9 12\n1 4\n8 4\n5 3\n10 5\n12 2\n3 2\n2 7\n1 7\n3 7\n6 2\n4 2\n6 10\n8 10\n4 6\n8 5\n12 6\n11 9\n7 12\n5 4\n11 7\n9 4\n10 4\n6 3\n1 6\n9 7\n3 8\n6 11\n10 9\n3 11\n11 1\n5 12\n8 2\n2 1\n3 1\n12 4\n3 9\n10 12\n8 11\n7 10\n11 5\n9 5\n8 7\n11 4\n8 1\n2 11\n5 1\n3 4\n8 12\n9 2\n10 11\n9 1\n5 7\n10 3\n11 12\n7 4\n2 10\n12 3\n6 8\n7 6\n2 5\n1 10\n12 1\n9 6\n8 9\n6 5",
"output": "27"
},
{
"input": "3 0",
"output": "-1"
},
{
"input": "3 2\n2 3\n2 1",
"output": "-1"
},
{
"input": "3 3\n3 1\n3 2\n2 1",
"output": "0"
},
{
"input": "4 6\n3 4\n1 3\n4 1\n3 2\n2 1\n4 2",
"output": "3"
},
{
"input": "8 10\n1 5\n4 1\n1 2\n2 8\n2 7\n6 3\n5 8\n3 5\n7 8\n1 6",
"output": "2"
},
{
"input": "15 17\n1 3\n7 10\n7 9\n8 13\n6 15\n8 2\n13 6\n10 5\n15 3\n4 15\n4 6\n5 11\n13 9\n12 2\n11 14\n4 12\n14 1",
"output": "3"
},
{
"input": "25 10\n19 11\n19 13\n13 11\n13 22\n19 23\n19 20\n13 17\n19 14\n13 15\n19 4",
"output": "7"
},
{
"input": "987 50\n221 959\n221 553\n959 695\n553 959\n819 437\n371 295\n695 553\n959 347\n595 699\n652 628\n553 347\n868 589\n695 221\n282 714\n351 703\n104 665\n755 436\n556 511\n695 347\n221 347\n243 874\n695 847\n863 501\n583 145\n786 221\n38 286\n72 397\n808 658\n724 437\n911 548\n405 759\n681 316\n648 328\n327 199\n772 139\n932 609\n859 576\n915 507\n379 316\n381 348\n918 871\n261 450\n443 389\n549 246\n901 515\n930 923\n336 545\n179 225\n213 677\n458 204",
"output": "6"
},
{
"input": "4000 0",
"output": "-1"
}
] | 1,628,178,251
| 2,147,483,647
|
Python 3
|
TIME_LIMIT_EXCEEDED
|
TESTS
| 39
| 2,000
| 24,473,600
|
def dfs(knights,k,st,cycle,limit=2):
if limit == 0:
if st not in knights[k]:
return
total=0
for k in cycle:
total+=len(knights[k])-2
cycles.append(total)
return
for i in knights[k]:
cycle.append(i)
dfs(knights,i,st,cycle,limit-1)
cycle.pop(-1)
n,m=map(int,input().split())
knights={str(i):[] for i in range(1,n+1)}
for _ in range(m):
key,value=input().split()
knights[key].append(value)
knights[value].append(key)
cycles=[]
for k in knights:
dfs(knights,k,k,[k])
print(min(cycles) if cycles else -1)
|
Title: Bear and Three Musketeers
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
Do you know a story about the three musketeers? Anyway, you will learn about its origins now.
Richelimakieu is a cardinal in the city of Bearis. He is tired of dealing with crime by himself. He needs three brave warriors to help him to fight against bad guys.
There are *n* warriors. Richelimakieu wants to choose three of them to become musketeers but it's not that easy. The most important condition is that musketeers must know each other to cooperate efficiently. And they shouldn't be too well known because they could be betrayed by old friends. For each musketeer his recognition is the number of warriors he knows, excluding other two musketeers.
Help Richelimakieu! Find if it is possible to choose three musketeers knowing each other, and what is minimum possible sum of their recognitions.
Input Specification:
The first line contains two space-separated integers, *n* and *m* (3<=≤<=*n*<=≤<=4000, 0<=≤<=*m*<=≤<=4000) — respectively number of warriors and number of pairs of warriors knowing each other.
*i*-th of the following *m* lines contains two space-separated integers *a**i* and *b**i* (1<=≤<=*a**i*,<=*b**i*<=≤<=*n*, *a**i*<=≠<=*b**i*). Warriors *a**i* and *b**i* know each other. Each pair of warriors will be listed at most once.
Output Specification:
If Richelimakieu can choose three musketeers, print the minimum possible sum of their recognitions. Otherwise, print "-1" (without the quotes).
Demo Input:
['5 6\n1 2\n1 3\n2 3\n2 4\n3 4\n4 5\n', '7 4\n2 1\n3 6\n5 1\n1 7\n']
Demo Output:
['2\n', '-1\n']
Note:
In the first sample Richelimakieu should choose a triple 1, 2, 3. The first musketeer doesn't know anyone except other two musketeers so his recognition is 0. The second musketeer has recognition 1 because he knows warrior number 4. The third musketeer also has recognition 1 because he knows warrior 4. Sum of recognitions is 0 + 1 + 1 = 2.
The other possible triple is 2, 3, 4 but it has greater sum of recognitions, equal to 1 + 1 + 1 = 3.
In the second sample there is no triple of warriors knowing each other.
|
```python
def dfs(knights,k,st,cycle,limit=2):
if limit == 0:
if st not in knights[k]:
return
total=0
for k in cycle:
total+=len(knights[k])-2
cycles.append(total)
return
for i in knights[k]:
cycle.append(i)
dfs(knights,i,st,cycle,limit-1)
cycle.pop(-1)
n,m=map(int,input().split())
knights={str(i):[] for i in range(1,n+1)}
for _ in range(m):
key,value=input().split()
knights[key].append(value)
knights[value].append(key)
cycles=[]
for k in knights:
dfs(knights,k,k,[k])
print(min(cycles) if cycles else -1)
```
| 0
|
|
494
|
A
|
Treasure
|
PROGRAMMING
| 1,500
|
[
"greedy"
] | null | null |
Malek has recently found a treasure map. While he was looking for a treasure he found a locked door. There was a string *s* written on the door consisting of characters '(', ')' and '#'. Below there was a manual on how to open the door. After spending a long time Malek managed to decode the manual and found out that the goal is to replace each '#' with one or more ')' characters so that the final string becomes beautiful.
Below there was also written that a string is called beautiful if for each *i* (1<=≤<=*i*<=≤<=|*s*|) there are no more ')' characters than '(' characters among the first *i* characters of *s* and also the total number of '(' characters is equal to the total number of ')' characters.
Help Malek open the door by telling him for each '#' character how many ')' characters he must replace it with.
|
The first line of the input contains a string *s* (1<=≤<=|*s*|<=≤<=105). Each character of this string is one of the characters '(', ')' or '#'. It is guaranteed that *s* contains at least one '#' character.
|
If there is no way of replacing '#' characters which leads to a beautiful string print <=-<=1. Otherwise for each character '#' print a separate line containing a positive integer, the number of ')' characters this character must be replaced with.
If there are several possible answers, you may output any of them.
|
[
"(((#)((#)\n",
"()((#((#(#()\n",
"#\n",
"(#)\n"
] |
[
"1\n2\n",
"2\n2\n1",
"-1\n",
"-1\n"
] |
|*s*| denotes the length of the string *s*.
| 500
|
[
{
"input": "(((#)((#)",
"output": "1\n2"
},
{
"input": "()((#((#(#()",
"output": "1\n1\n3"
},
{
"input": "#",
"output": "-1"
},
{
"input": "(#)",
"output": "-1"
},
{
"input": "(((((#(#(#(#()",
"output": "1\n1\n1\n5"
},
{
"input": "#))))",
"output": "-1"
},
{
"input": "((#(()#(##",
"output": "1\n1\n1\n1"
},
{
"input": "##((((((()",
"output": "-1"
},
{
"input": "(((((((((((((((((((###################",
"output": "1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1"
},
{
"input": "((#)(",
"output": "-1"
},
{
"input": "((#)((#)((#)((#)((#)((#)((#)((#)((#)((#)((#)((#)((#)((#)((#)((##",
"output": "1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1\n1"
},
{
"input": ")((##((###",
"output": "-1"
},
{
"input": "(#))(#(#)((((#(##((#(#((((#(##((((((#((()(()(())((()#((((#((()((((#(((((#(##)(##()((((()())(((((#(((",
"output": "-1"
},
{
"input": "#(#(#((##((()))(((#)(#()#(((()()(()#(##(((()(((()))#(((((()(((((((()#((#((()(#(((()(()##(()(((()((#(",
"output": "-1"
},
{
"input": "((#(",
"output": "-1"
},
{
"input": "()#(#())()()#)(#)()##)#((()#)((#)()#())((#((((((((#)()()(()()(((((#)#(#((((#((##()(##(((#(()(#((#))#",
"output": "-1"
},
{
"input": "(())((((#)",
"output": "3"
},
{
"input": "(#(",
"output": "-1"
},
{
"input": "((#)(",
"output": "-1"
},
{
"input": "(((()#(#)(",
"output": "-1"
},
{
"input": "#((#",
"output": "-1"
},
{
"input": "(#((((()",
"output": "-1"
},
{
"input": "(#((",
"output": "-1"
},
{
"input": ")(((())#",
"output": "-1"
}
] | 1,419,371,825
| 2,147,483,647
|
Python 3
|
WRONG_ANSWER
|
TESTS
| 13
| 233
| 1,126,400
|
s = input() # ������
l = len(s)
d = []
a = 0
b = 0
for i in range(l):
if s[i] == '(':
a += 1
elif s[i] == ')':
b += 1
else:
d.append(a-b) # ����������� ��������� ��������
n = a-b
if n <= 0: # ���������� ���������� ������
print(-1)
else:
ans = []
pos = len(d)-1
while (pos > -1) and (n > 0):
m = min(d[pos], n-pos)
ans.insert(0, m)
n -= m
pos -= 1
if n > 0:
print(-1)
else:
for i in ans:
print(i)
|
Title: Treasure
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
Malek has recently found a treasure map. While he was looking for a treasure he found a locked door. There was a string *s* written on the door consisting of characters '(', ')' and '#'. Below there was a manual on how to open the door. After spending a long time Malek managed to decode the manual and found out that the goal is to replace each '#' with one or more ')' characters so that the final string becomes beautiful.
Below there was also written that a string is called beautiful if for each *i* (1<=≤<=*i*<=≤<=|*s*|) there are no more ')' characters than '(' characters among the first *i* characters of *s* and also the total number of '(' characters is equal to the total number of ')' characters.
Help Malek open the door by telling him for each '#' character how many ')' characters he must replace it with.
Input Specification:
The first line of the input contains a string *s* (1<=≤<=|*s*|<=≤<=105). Each character of this string is one of the characters '(', ')' or '#'. It is guaranteed that *s* contains at least one '#' character.
Output Specification:
If there is no way of replacing '#' characters which leads to a beautiful string print <=-<=1. Otherwise for each character '#' print a separate line containing a positive integer, the number of ')' characters this character must be replaced with.
If there are several possible answers, you may output any of them.
Demo Input:
['(((#)((#)\n', '()((#((#(#()\n', '#\n', '(#)\n']
Demo Output:
['1\n2\n', '2\n2\n1', '-1\n', '-1\n']
Note:
|*s*| denotes the length of the string *s*.
|
```python
s = input() # ������
l = len(s)
d = []
a = 0
b = 0
for i in range(l):
if s[i] == '(':
a += 1
elif s[i] == ')':
b += 1
else:
d.append(a-b) # ����������� ��������� ��������
n = a-b
if n <= 0: # ���������� ���������� ������
print(-1)
else:
ans = []
pos = len(d)-1
while (pos > -1) and (n > 0):
m = min(d[pos], n-pos)
ans.insert(0, m)
n -= m
pos -= 1
if n > 0:
print(-1)
else:
for i in ans:
print(i)
```
| 0
|
|
1
|
A
|
Theatre Square
|
PROGRAMMING
| 1,000
|
[
"math"
] |
A. Theatre Square
|
1
|
256
|
Theatre Square in the capital city of Berland has a rectangular shape with the size *n*<=×<=*m* meters. On the occasion of the city's anniversary, a decision was taken to pave the Square with square granite flagstones. Each flagstone is of the size *a*<=×<=*a*.
What is the least number of flagstones needed to pave the Square? It's allowed to cover the surface larger than the Theatre Square, but the Square has to be covered. It's not allowed to break the flagstones. The sides of flagstones should be parallel to the sides of the Square.
|
The input contains three positive integer numbers in the first line: *n*,<=<=*m* and *a* (1<=≤<=<=*n*,<=*m*,<=*a*<=≤<=109).
|
Write the needed number of flagstones.
|
[
"6 6 4\n"
] |
[
"4\n"
] |
none
| 0
|
[
{
"input": "6 6 4",
"output": "4"
},
{
"input": "1 1 1",
"output": "1"
},
{
"input": "2 1 1",
"output": "2"
},
{
"input": "1 2 1",
"output": "2"
},
{
"input": "2 2 1",
"output": "4"
},
{
"input": "2 1 2",
"output": "1"
},
{
"input": "1 1 3",
"output": "1"
},
{
"input": "2 3 4",
"output": "1"
},
{
"input": "1000000000 1000000000 1",
"output": "1000000000000000000"
},
{
"input": "12 13 4",
"output": "12"
},
{
"input": "222 332 5",
"output": "3015"
},
{
"input": "1000 1000 10",
"output": "10000"
},
{
"input": "1001 1000 10",
"output": "10100"
},
{
"input": "100 10001 1000000000",
"output": "1"
},
{
"input": "1000000000 1000000000 1000000000",
"output": "1"
},
{
"input": "1000000000 1000000000 999999999",
"output": "4"
},
{
"input": "1000000000 1000000000 192",
"output": "27126743055556"
},
{
"input": "1000000000 987654321 1",
"output": "987654321000000000"
},
{
"input": "456784567 1000000000 51",
"output": "175618850864484"
},
{
"input": "39916800 134217728 40320",
"output": "3295710"
}
] | 1,663,675,699
| 2,147,483,647
|
PyPy 3-64
|
RUNTIME_ERROR
|
TESTS
| 0
| 77
| 3,276,800
|
w = (input())
a,b,c = int(w,split())
d = math.ceil(a/c)
e = math.ceil(b/c)
f = d*e
print(f)
|
Title: Theatre Square
Time Limit: 1 seconds
Memory Limit: 256 megabytes
Problem Description:
Theatre Square in the capital city of Berland has a rectangular shape with the size *n*<=×<=*m* meters. On the occasion of the city's anniversary, a decision was taken to pave the Square with square granite flagstones. Each flagstone is of the size *a*<=×<=*a*.
What is the least number of flagstones needed to pave the Square? It's allowed to cover the surface larger than the Theatre Square, but the Square has to be covered. It's not allowed to break the flagstones. The sides of flagstones should be parallel to the sides of the Square.
Input Specification:
The input contains three positive integer numbers in the first line: *n*,<=<=*m* and *a* (1<=≤<=<=*n*,<=*m*,<=*a*<=≤<=109).
Output Specification:
Write the needed number of flagstones.
Demo Input:
['6 6 4\n']
Demo Output:
['4\n']
Note:
none
|
```python
w = (input())
a,b,c = int(w,split())
d = math.ceil(a/c)
e = math.ceil(b/c)
f = d*e
print(f)
```
| -1
|
742
|
A
|
Arpa’s hard exam and Mehrdad’s naive cheat
|
PROGRAMMING
| 1,000
|
[
"implementation",
"math",
"number theory"
] | null | null |
There exists an island called Arpa’s land, some beautiful girls live there, as ugly ones do.
Mehrdad wants to become minister of Arpa’s land. Arpa has prepared an exam. Exam has only one question, given *n*, print the last digit of 1378*n*.
Mehrdad has become quite confused and wants you to help him. Please help, although it's a naive cheat.
|
The single line of input contains one integer *n* (0<=<=≤<=<=*n*<=<=≤<=<=109).
|
Print single integer — the last digit of 1378*n*.
|
[
"1\n",
"2\n"
] |
[
"8",
"4"
] |
In the first example, last digit of 1378<sup class="upper-index">1</sup> = 1378 is 8.
In the second example, last digit of 1378<sup class="upper-index">2</sup> = 1378·1378 = 1898884 is 4.
| 500
|
[
{
"input": "1",
"output": "8"
},
{
"input": "2",
"output": "4"
},
{
"input": "1000",
"output": "6"
},
{
"input": "3",
"output": "2"
},
{
"input": "4",
"output": "6"
},
{
"input": "1000000000",
"output": "6"
},
{
"input": "5",
"output": "8"
},
{
"input": "6",
"output": "4"
},
{
"input": "999999999",
"output": "2"
},
{
"input": "1378",
"output": "4"
},
{
"input": "13781378",
"output": "4"
},
{
"input": "51202278",
"output": "4"
},
{
"input": "999999998",
"output": "4"
},
{
"input": "999999997",
"output": "8"
},
{
"input": "12193721",
"output": "8"
},
{
"input": "0",
"output": "1"
},
{
"input": "989898989",
"output": "8"
},
{
"input": "7",
"output": "2"
},
{
"input": "8",
"output": "6"
},
{
"input": "9",
"output": "8"
},
{
"input": "10",
"output": "4"
},
{
"input": "11",
"output": "2"
},
{
"input": "12",
"output": "6"
},
{
"input": "13",
"output": "8"
},
{
"input": "14",
"output": "4"
},
{
"input": "15",
"output": "2"
},
{
"input": "16",
"output": "6"
},
{
"input": "999999996",
"output": "6"
},
{
"input": "999999995",
"output": "2"
},
{
"input": "999999994",
"output": "4"
}
] | 1,646,931,018
| 2,147,483,647
|
PyPy 3-64
|
OK
|
TESTS
| 30
| 62
| 0
|
poss = [8, 4, 2, 6]
n = int(input())
if not n:
print(1)
else:
print(poss[n%4-1])
|
Title: Arpa’s hard exam and Mehrdad’s naive cheat
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
There exists an island called Arpa’s land, some beautiful girls live there, as ugly ones do.
Mehrdad wants to become minister of Arpa’s land. Arpa has prepared an exam. Exam has only one question, given *n*, print the last digit of 1378*n*.
Mehrdad has become quite confused and wants you to help him. Please help, although it's a naive cheat.
Input Specification:
The single line of input contains one integer *n* (0<=<=≤<=<=*n*<=<=≤<=<=109).
Output Specification:
Print single integer — the last digit of 1378*n*.
Demo Input:
['1\n', '2\n']
Demo Output:
['8', '4']
Note:
In the first example, last digit of 1378<sup class="upper-index">1</sup> = 1378 is 8.
In the second example, last digit of 1378<sup class="upper-index">2</sup> = 1378·1378 = 1898884 is 4.
|
```python
poss = [8, 4, 2, 6]
n = int(input())
if not n:
print(1)
else:
print(poss[n%4-1])
```
| 3
|
|
754
|
D
|
Fedor and coupons
|
PROGRAMMING
| 2,100
|
[
"binary search",
"data structures",
"greedy",
"sortings"
] | null | null |
All our characters have hobbies. The same is true for Fedor. He enjoys shopping in the neighboring supermarket.
The goods in the supermarket have unique integer ids. Also, for every integer there is a product with id equal to this integer. Fedor has *n* discount coupons, the *i*-th of them can be used with products with ids ranging from *l**i* to *r**i*, inclusive. Today Fedor wants to take exactly *k* coupons with him.
Fedor wants to choose the *k* coupons in such a way that the number of such products *x* that all coupons can be used with this product *x* is as large as possible (for better understanding, see examples). Fedor wants to save his time as well, so he asks you to choose coupons for him. Help Fedor!
|
The first line contains two integers *n* and *k* (1<=≤<=*k*<=≤<=*n*<=≤<=3·105) — the number of coupons Fedor has, and the number of coupons he wants to choose.
Each of the next *n* lines contains two integers *l**i* and *r**i* (<=-<=109<=≤<=*l**i*<=≤<=*r**i*<=≤<=109) — the description of the *i*-th coupon. The coupons can be equal.
|
In the first line print single integer — the maximum number of products with which all the chosen coupons can be used. The products with which at least one coupon cannot be used shouldn't be counted.
In the second line print *k* distinct integers *p*1,<=*p*2,<=...,<=*p**k* (1<=≤<=*p**i*<=≤<=*n*) — the ids of the coupons which Fedor should choose.
If there are multiple answers, print any of them.
|
[
"4 2\n1 100\n40 70\n120 130\n125 180\n",
"3 2\n1 12\n15 20\n25 30\n",
"5 2\n1 10\n5 15\n14 50\n30 70\n99 100\n"
] |
[
"31\n1 2 \n",
"0\n1 2 \n",
"21\n3 4 \n"
] |
In the first example if we take the first two coupons then all the products with ids in range [40, 70] can be bought with both coupons. There are 31 products in total.
In the second example, no product can be bought with two coupons, that is why the answer is 0. Fedor can choose any two coupons in this example.
| 2,000
|
[
{
"input": "4 2\n1 100\n40 70\n120 130\n125 180",
"output": "31\n1 2 "
},
{
"input": "3 2\n1 12\n15 20\n25 30",
"output": "0\n1 2 "
},
{
"input": "5 2\n1 10\n5 15\n14 50\n30 70\n99 100",
"output": "21\n3 4 "
},
{
"input": "7 6\n-8 6\n7 9\n-10 -5\n-6 10\n-7 -3\n5 8\n4 10",
"output": "0\n1 2 3 4 5 6 "
},
{
"input": "9 6\n-7 -3\n-3 10\n-6 1\n-1 8\n-9 4\n-7 -6\n-5 -3\n-10 -2\n3 4",
"output": "1\n1 2 3 5 7 8 "
},
{
"input": "7 7\n9 10\n-5 3\n-6 2\n1 6\n-9 6\n-10 7\n-7 -5",
"output": "0\n1 2 3 4 5 6 7 "
},
{
"input": "23 2\n-629722518 -626148345\n739975524 825702590\n-360913153 -208398929\n76588954 101603025\n-723230356 -650106339\n-117490984 -101920679\n-39187628 -2520915\n717852164 720343632\n-611281114 -579708833\n-141791522 -122348148\n605078929 699430996\n-873386085 -820238799\n-922404067 -873522961\n7572046 13337057\n975081176 977171682\n901338407 964254238\n325388219 346712972\n505189756 516497863\n-425326983 -422098946\n520670681 522544433\n-410872616 -367919621\n359488350 447471156\n-566203447 -488202136",
"output": "0\n1 2 "
},
{
"input": "24 21\n240694945 246896662\n240694930 246896647\n240695065 246896782\n240695050 246896767\n240695080 246896797\n240694960 246896677\n240694975 246896692\n240694825 246896542\n240694900 246896617\n240694915 246896632\n240694885 246896602\n240694855 246896572\n240694870 246896587\n240694795 246896512\n240695095 246896812\n240695125 246896842\n240695005 246896722\n240694990 246896707\n240695140 246896857\n240695020 246896737\n240695035 246896752\n240694840 246896557\n240694810 246896527\n240695110 246896827",
"output": "6201418\n1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 17 18 20 21 22 23 "
},
{
"input": "1 1\n2 2",
"output": "1\n1 "
},
{
"input": "1 1\n-1000000000 1000000000",
"output": "2000000001\n1 "
},
{
"input": "2 1\n-1000000000 -1000000000\n1000000000 1000000000",
"output": "1\n1 "
},
{
"input": "7 3\n3 3\n-6 -1\n6 7\n2 8\n3 10\n-8 0\n-3 10",
"output": "6\n4 5 7 "
},
{
"input": "5 4\n4 7\n-4 2\n-7 -7\n-5 -2\n-8 -8",
"output": "0\n1 2 3 4 "
},
{
"input": "7 7\n0 7\n9 9\n-10 -7\n5 8\n-10 4\n-7 0\n-3 5",
"output": "0\n1 2 3 4 5 6 7 "
},
{
"input": "9 2\n5 10\n-10 -10\n0 10\n-6 3\n-8 7\n6 10\n-8 1\n5 7\n2 2",
"output": "10\n5 7 "
},
{
"input": "9 5\n-2 1\n-6 9\n-7 -2\n5 7\n-10 -7\n-9 -2\n1 4\n-1 10\n4 8",
"output": "0\n1 2 3 4 5 "
},
{
"input": "54 7\n-98 -39\n14 60\n-23 -5\n58 75\n14 16\n-40 20\n-6 10\n11 60\n-47 54\n-71 -17\n-48 -25\n-87 -46\n-10 99\n-97 -88\n-14 94\n-25 29\n-96 -92\n68 75\n-75 2\n12 84\n-47 3\n-88 49\n-37 88\n-61 -25\n36 67\n30 54\n12 31\n-71 60\n-18 -15\n-61 -47\n-51 -41\n-67 51\n26 37\n18 94\n-67 52\n-16 56\n-5 26\n27 57\n36 91\n-61 61\n71 86\n27 73\n-57 -39\n54 71\n-16 14\n-97 81\n-32 49\n-18 50\n-63 93\n51 70\n8 66\n43 45\n-2 99\n11 98",
"output": "111\n22 28 32 35 40 46 49 "
},
{
"input": "52 18\n-50 54\n35 65\n67 82\n-87 -10\n-39 4\n-55 -18\n-27 90\n-42 73\n18 43\n70 85\n-85 -22\n-1 60\n-89 23\n-78 -75\n-14 69\n-69 50\n-93 74\n-10 45\n-81 -72\n-24 86\n-89 100\n25 70\n-65 -61\n-45 100\n-49 -23\n-74 -59\n-81 -15\n-58 47\n-65 -58\n-47 16\n-22 91\n-85 19\n-81 77\n79 87\n-31 88\n26 32\n11 90\n7 46\n64 83\n-51 -20\n-76 44\n-22 75\n45 84\n-98 46\n-20 78\n-88 -47\n-41 65\n2 93\n-66 69\n-73 94\n-85 -44\n-65 -23",
"output": "67\n1 7 8 16 17 20 21 24 28 31 33 35 41 42 44 47 49 50 "
}
] | 1,665,027,279
| 2,147,483,647
|
Python 3
|
WRONG_ANSWER
|
TESTS
| 6
| 46
| 102,400
|
import heapq
from collections import defaultdict
n,k=list(map(int,input().split()))
li=[]
d=defaultdict(list)
for i in range(n):
l,r=list(map(int,input().split()))
d[(l,r)].append(i+1)
li.append((l,r))
def getIndex(heap,k):
index=[]
cnt=0
for r,l in heap:
for item in d[(l,r)]:
index.append(item)
cnt+=1
if cnt>=k:
return index
def solve(n,k,li):
li.sort()
heap=[]
heapq.heapify(heap)
start=li[k-1][0]
for i in range(k):
l,r=li[i]
heapq.heappush(heap,(r,l))
res=max(0,heap[0][0]-start+1)
index=getIndex(heap,k)
for i in range(k,n):
l,r=li[i]
if r>heap[0][0]:
heapq.heapreplace(heap,(r,l))
max_end=heap[0][0]
if max_end-l+1>res:
res=max_end-l+1
index=getIndex(heap,k)
print(res)
print(' '.join([str(item) for item in index]))
solve(n,k,li)
|
Title: Fedor and coupons
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
All our characters have hobbies. The same is true for Fedor. He enjoys shopping in the neighboring supermarket.
The goods in the supermarket have unique integer ids. Also, for every integer there is a product with id equal to this integer. Fedor has *n* discount coupons, the *i*-th of them can be used with products with ids ranging from *l**i* to *r**i*, inclusive. Today Fedor wants to take exactly *k* coupons with him.
Fedor wants to choose the *k* coupons in such a way that the number of such products *x* that all coupons can be used with this product *x* is as large as possible (for better understanding, see examples). Fedor wants to save his time as well, so he asks you to choose coupons for him. Help Fedor!
Input Specification:
The first line contains two integers *n* and *k* (1<=≤<=*k*<=≤<=*n*<=≤<=3·105) — the number of coupons Fedor has, and the number of coupons he wants to choose.
Each of the next *n* lines contains two integers *l**i* and *r**i* (<=-<=109<=≤<=*l**i*<=≤<=*r**i*<=≤<=109) — the description of the *i*-th coupon. The coupons can be equal.
Output Specification:
In the first line print single integer — the maximum number of products with which all the chosen coupons can be used. The products with which at least one coupon cannot be used shouldn't be counted.
In the second line print *k* distinct integers *p*1,<=*p*2,<=...,<=*p**k* (1<=≤<=*p**i*<=≤<=*n*) — the ids of the coupons which Fedor should choose.
If there are multiple answers, print any of them.
Demo Input:
['4 2\n1 100\n40 70\n120 130\n125 180\n', '3 2\n1 12\n15 20\n25 30\n', '5 2\n1 10\n5 15\n14 50\n30 70\n99 100\n']
Demo Output:
['31\n1 2 \n', '0\n1 2 \n', '21\n3 4 \n']
Note:
In the first example if we take the first two coupons then all the products with ids in range [40, 70] can be bought with both coupons. There are 31 products in total.
In the second example, no product can be bought with two coupons, that is why the answer is 0. Fedor can choose any two coupons in this example.
|
```python
import heapq
from collections import defaultdict
n,k=list(map(int,input().split()))
li=[]
d=defaultdict(list)
for i in range(n):
l,r=list(map(int,input().split()))
d[(l,r)].append(i+1)
li.append((l,r))
def getIndex(heap,k):
index=[]
cnt=0
for r,l in heap:
for item in d[(l,r)]:
index.append(item)
cnt+=1
if cnt>=k:
return index
def solve(n,k,li):
li.sort()
heap=[]
heapq.heapify(heap)
start=li[k-1][0]
for i in range(k):
l,r=li[i]
heapq.heappush(heap,(r,l))
res=max(0,heap[0][0]-start+1)
index=getIndex(heap,k)
for i in range(k,n):
l,r=li[i]
if r>heap[0][0]:
heapq.heapreplace(heap,(r,l))
max_end=heap[0][0]
if max_end-l+1>res:
res=max_end-l+1
index=getIndex(heap,k)
print(res)
print(' '.join([str(item) for item in index]))
solve(n,k,li)
```
| 0
|
|
59
|
A
|
Word
|
PROGRAMMING
| 800
|
[
"implementation",
"strings"
] |
A. Word
|
2
|
256
|
Vasya is very upset that many people on the Net mix uppercase and lowercase letters in one word. That's why he decided to invent an extension for his favorite browser that would change the letters' register in every word so that it either only consisted of lowercase letters or, vice versa, only of uppercase ones. At that as little as possible letters should be changed in the word. For example, the word HoUse must be replaced with house, and the word ViP — with VIP. If a word contains an equal number of uppercase and lowercase letters, you should replace all the letters with lowercase ones. For example, maTRIx should be replaced by matrix. Your task is to use the given method on one given word.
|
The first line contains a word *s* — it consists of uppercase and lowercase Latin letters and possesses the length from 1 to 100.
|
Print the corrected word *s*. If the given word *s* has strictly more uppercase letters, make the word written in the uppercase register, otherwise - in the lowercase one.
|
[
"HoUse\n",
"ViP\n",
"maTRIx\n"
] |
[
"house\n",
"VIP\n",
"matrix\n"
] |
none
| 500
|
[
{
"input": "HoUse",
"output": "house"
},
{
"input": "ViP",
"output": "VIP"
},
{
"input": "maTRIx",
"output": "matrix"
},
{
"input": "BNHWpnpawg",
"output": "bnhwpnpawg"
},
{
"input": "VTYGP",
"output": "VTYGP"
},
{
"input": "CHNenu",
"output": "chnenu"
},
{
"input": "ERPZGrodyu",
"output": "erpzgrodyu"
},
{
"input": "KSXBXWpebh",
"output": "KSXBXWPEBH"
},
{
"input": "qvxpqullmcbegsdskddortcvxyqlbvxmmkhevovnezubvpvnrcajpxraeaxizgaowtfkzywvhnbgzsxbhkaipcmoumtikkiyyaiv",
"output": "qvxpqullmcbegsdskddortcvxyqlbvxmmkhevovnezubvpvnrcajpxraeaxizgaowtfkzywvhnbgzsxbhkaipcmoumtikkiyyaiv"
},
{
"input": "Amnhaxtaopjzrkqlbroiyipitndczpunwygstmzevgyjdzyanxkdqnvgkikfabwouwkkbzuiuvgvxgpizsvqsbwepktpdrgdkmfd",
"output": "amnhaxtaopjzrkqlbroiyipitndczpunwygstmzevgyjdzyanxkdqnvgkikfabwouwkkbzuiuvgvxgpizsvqsbwepktpdrgdkmfd"
},
{
"input": "ISAGFJFARYFBLOPQDSHWGMCNKMFTLVFUGNJEWGWNBLXUIATXEkqiettmmjgydwcpafqrppdsrrrtguinqbgmzzfqwonkpgpcwenv",
"output": "isagfjfaryfblopqdshwgmcnkmftlvfugnjewgwnblxuiatxekqiettmmjgydwcpafqrppdsrrrtguinqbgmzzfqwonkpgpcwenv"
},
{
"input": "XHRPXZEGHSOCJPICUIXSKFUZUPYTSGJSDIYBCMNMNBPNDBXLXBzhbfnqvwcffvrdhtickyqhupmcehlsyvncqmfhautvxudqdhgg",
"output": "xhrpxzeghsocjpicuixskfuzupytsgjsdiybcmnmnbpndbxlxbzhbfnqvwcffvrdhtickyqhupmcehlsyvncqmfhautvxudqdhgg"
},
{
"input": "RJIQZMJCIMSNDBOHBRAWIENODSALETAKGKPYUFGVEFGCBRENZGAdkcetqjljtmttlonpekcovdzebzdkzggwfsxhapmjkdbuceak",
"output": "RJIQZMJCIMSNDBOHBRAWIENODSALETAKGKPYUFGVEFGCBRENZGADKCETQJLJTMTTLONPEKCOVDZEBZDKZGGWFSXHAPMJKDBUCEAK"
},
{
"input": "DWLWOBHNMMGTFOLFAECKBRNNGLYLYDXTGTVRLMEESZOIUATZZZXUFUZDLSJXMEVRTESSFBWLNZZCLCQWEVNNUCXYVHNGNXHCBDFw",
"output": "DWLWOBHNMMGTFOLFAECKBRNNGLYLYDXTGTVRLMEESZOIUATZZZXUFUZDLSJXMEVRTESSFBWLNZZCLCQWEVNNUCXYVHNGNXHCBDFW"
},
{
"input": "NYCNHJWGBOCOTSPETKKHVWFGAQYNHOVJWJHCIEFOUQZXOYUIEQDZALFKTEHTVDBVJMEUBJUBCMNVPWGDPNCHQHZJRCHYRFPVIGUB",
"output": "NYCNHJWGBOCOTSPETKKHVWFGAQYNHOVJWJHCIEFOUQZXOYUIEQDZALFKTEHTVDBVJMEUBJUBCMNVPWGDPNCHQHZJRCHYRFPVIGUB"
},
{
"input": "igxoixiecetohtgjgbqzvlaobkhstejxdklghowtvwunnnvauriohuspsdmpzckprwajyxldoyckgjivjpmbfqtszmtocovxwge",
"output": "igxoixiecetohtgjgbqzvlaobkhstejxdklghowtvwunnnvauriohuspsdmpzckprwajyxldoyckgjivjpmbfqtszmtocovxwge"
},
{
"input": "Ykkekrsqolzryiwsmdlnbmfautxxxauoojrddvwklgnlyrfcvhorrzbmtcrvpaypqhcffdqhwziipyyskcmztjprjqvmzzqhqnw",
"output": "ykkekrsqolzryiwsmdlnbmfautxxxauoojrddvwklgnlyrfcvhorrzbmtcrvpaypqhcffdqhwziipyyskcmztjprjqvmzzqhqnw"
},
{
"input": "YQOMLKYAORUQQUCQZCDYMIVDHGWZFFRMUVTAWCHERFPMNRYRIkgqrciokgajamehmcxgerpudvsqyonjonsxgbnefftzmygncks",
"output": "yqomlkyaoruqqucqzcdymivdhgwzffrmuvtawcherfpmnryrikgqrciokgajamehmcxgerpudvsqyonjonsxgbnefftzmygncks"
},
{
"input": "CDOZDPBVVVHNBJVBYHEOXWFLJKRWJCAJMIFCOZWWYFKVWOGTVJcuusigdqfkumewjtdyitveeiaybwrhomrwmpdipjwiuxfnwuz",
"output": "CDOZDPBVVVHNBJVBYHEOXWFLJKRWJCAJMIFCOZWWYFKVWOGTVJCUUSIGDQFKUMEWJTDYITVEEIAYBWRHOMRWMPDIPJWIUXFNWUZ"
},
{
"input": "WHIUVEXHVOOIJIDVJVPQUBJMEVPMPDKQWJKFBZSGSKUXMIPPMJWuckzcpxosodcjaaakvlxpbiigsiauviilylnnqlyucziihqg",
"output": "WHIUVEXHVOOIJIDVJVPQUBJMEVPMPDKQWJKFBZSGSKUXMIPPMJWUCKZCPXOSODCJAAAKVLXPBIIGSIAUVIILYLNNQLYUCZIIHQG"
},
{
"input": "VGHUNFOXKETUYMZDJNGTAOIOANYXSGYNFOGOFFLDAWEUKYFOZXCJTCAFXZYLQZERYZLRSQXYQGAPCSUDPMEYTNCTTTMFAGVDWBO",
"output": "VGHUNFOXKETUYMZDJNGTAOIOANYXSGYNFOGOFFLDAWEUKYFOZXCJTCAFXZYLQZERYZLRSQXYQGAPCSUDPMEYTNCTTTMFAGVDWBO"
},
{
"input": "EDUANHCQDOCJHFONTTSWBUJSTTIXBIXMAIUFSGFLXWAYIURTVAVZPYQDLAWIGCLMPHXCEFCJPFAAHXVNGQUFNHADAIUAZIDMHDd",
"output": "EDUANHCQDOCJHFONTTSWBUJSTTIXBIXMAIUFSGFLXWAYIURTVAVZPYQDLAWIGCLMPHXCEFCJPFAAHXVNGQUFNHADAIUAZIDMHDD"
},
{
"input": "EBWOVSNLYTWWXrnovgugogtjahnmatomubebyxakas",
"output": "ebwovsnlytwwxrnovgugogtjahnmatomubebyxakas"
},
{
"input": "AORNNDKTRLRVGDPXJKXFTPFpopuzrlqumrxssskvbm",
"output": "AORNNDKTRLRVGDPXJKXFTPFPOPUZRLQUMRXSSSKVBM"
},
{
"input": "DBBZJCWQEVGYHEEUHJAWRHBDPsnplijbwtdibqrrheebfxqcvn",
"output": "dbbzjcwqevgyheeuhjawrhbdpsnplijbwtdibqrrheebfxqcvn"
},
{
"input": "t",
"output": "t"
},
{
"input": "N",
"output": "N"
},
{
"input": "kv",
"output": "kv"
},
{
"input": "Ur",
"output": "ur"
},
{
"input": "CN",
"output": "CN"
}
] | 1,637,774,154
| 2,147,483,647
|
Python 3
|
OK
|
TESTS
| 30
| 92
| 0
|
word = input()
upper = sum(1 for c in word if c.isupper())
if upper <= len(word) / 2:
print(word.lower())
else:
print(word.upper())
|
Title: Word
Time Limit: 2 seconds
Memory Limit: 256 megabytes
Problem Description:
Vasya is very upset that many people on the Net mix uppercase and lowercase letters in one word. That's why he decided to invent an extension for his favorite browser that would change the letters' register in every word so that it either only consisted of lowercase letters or, vice versa, only of uppercase ones. At that as little as possible letters should be changed in the word. For example, the word HoUse must be replaced with house, and the word ViP — with VIP. If a word contains an equal number of uppercase and lowercase letters, you should replace all the letters with lowercase ones. For example, maTRIx should be replaced by matrix. Your task is to use the given method on one given word.
Input Specification:
The first line contains a word *s* — it consists of uppercase and lowercase Latin letters and possesses the length from 1 to 100.
Output Specification:
Print the corrected word *s*. If the given word *s* has strictly more uppercase letters, make the word written in the uppercase register, otherwise - in the lowercase one.
Demo Input:
['HoUse\n', 'ViP\n', 'maTRIx\n']
Demo Output:
['house\n', 'VIP\n', 'matrix\n']
Note:
none
|
```python
word = input()
upper = sum(1 for c in word if c.isupper())
if upper <= len(word) / 2:
print(word.lower())
else:
print(word.upper())
```
| 3.977
|
291
|
A
|
Spyke Talks
|
PROGRAMMING
| 800
|
[
"*special",
"implementation",
"sortings"
] | null | null |
Polycarpus is the director of a large corporation. There are *n* secretaries working for the corporation, each of them corresponds via the famous Spyke VoIP system during the day. We know that when two people call each other via Spyke, the Spyke network assigns a unique ID to this call, a positive integer session number.
One day Polycarpus wondered which secretaries are talking via the Spyke and which are not. For each secretary, he wrote out either the session number of his call or a 0 if this secretary wasn't talking via Spyke at that moment.
Help Polycarpus analyze these data and find out the number of pairs of secretaries that are talking. If Polycarpus has made a mistake in the data and the described situation could not have taken place, say so.
Note that the secretaries can correspond via Spyke not only with each other, but also with the people from other places. Also, Spyke conferences aren't permitted — that is, one call connects exactly two people.
|
The first line contains integer *n* (1<=≤<=*n*<=≤<=103) — the number of secretaries in Polycarpus's corporation. The next line contains *n* space-separated integers: *id*1,<=*id*2,<=...,<=*id**n* (0<=≤<=*id**i*<=≤<=109). Number *id**i* equals the number of the call session of the *i*-th secretary, if the secretary is talking via Spyke, or zero otherwise.
Consider the secretaries indexed from 1 to *n* in some way.
|
Print a single integer — the number of pairs of chatting secretaries, or -1 if Polycarpus's got a mistake in his records and the described situation could not have taken place.
|
[
"6\n0 1 7 1 7 10\n",
"3\n1 1 1\n",
"1\n0\n"
] |
[
"2\n",
"-1\n",
"0\n"
] |
In the first test sample there are two Spyke calls between secretaries: secretary 2 and secretary 4, secretary 3 and secretary 5.
In the second test sample the described situation is impossible as conferences aren't allowed.
| 500
|
[
{
"input": "6\n0 1 7 1 7 10",
"output": "2"
},
{
"input": "3\n1 1 1",
"output": "-1"
},
{
"input": "1\n0",
"output": "0"
},
{
"input": "5\n2 2 1 1 3",
"output": "2"
},
{
"input": "1\n1",
"output": "0"
},
{
"input": "10\n4 21 3 21 21 1 1 2 2 3",
"output": "-1"
},
{
"input": "2\n1 2",
"output": "0"
},
{
"input": "5\n0 0 0 0 0",
"output": "0"
},
{
"input": "6\n6 6 0 8 0 0",
"output": "1"
},
{
"input": "10\n0 0 0 0 0 1 0 1 0 1",
"output": "-1"
},
{
"input": "100\n0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 3 0 3 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 3 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 3 3 0 3 0 0 3 0 0 0 0 0 0 3 0 0 3 0 0 0 0 0 0 0 3 0 0 0 0 0",
"output": "-1"
},
{
"input": "1\n1000000000",
"output": "0"
},
{
"input": "2\n1 0",
"output": "0"
},
{
"input": "2\n1000000000 1000000000",
"output": "1"
},
{
"input": "5\n1 0 0 0 1",
"output": "1"
},
{
"input": "15\n380515742 842209759 945171461 664384656 945171461 474872104 0 0 131648973 131648973 474872104 842209759 664384656 0 380515742",
"output": "6"
},
{
"input": "123\n0 6361 8903 10428 0 258 0 10422 0 0 2642 1958 0 0 0 0 0 8249 1958 0 0 2642 0 0 0 11566 4709 1847 3998 0 1331 0 0 10289 2739 6135 3450 0 0 10994 6069 4337 5854 1331 5854 0 630 630 11244 5928 2706 0 683 214 0 9080 0 0 0 10422 683 11566 10994 0 0 3450 11244 11542 3998 1847 2708 9871 2739 2001 0 12216 6069 0 5928 0 10289 1307 0 1307 8903 0 6361 6135 6632 10428 0 0 632 258 9080 12216 4709 4967 2706 0 11542 2001 6632 0 8249 214 0 10301 4967 10301 7296 7296 10914 2708 4337 0 0 632 0 10914 0 9871 0",
"output": "40"
},
{
"input": "10\n0 3 2 3 2 0 1 3 3 0",
"output": "-1"
},
{
"input": "20\n0 1 2 0 0 0 0 5 3 4 0 0 1 1 3 0 4 0 1 0",
"output": "-1"
},
{
"input": "47\n1 6 0 6 1 1 6 4 3 6 5 3 6 3 2 2 5 1 4 7 3 5 6 1 6 7 4 5 6 3 3 3 7 4 1 6 1 1 7 1 3 1 5 5 1 3 6",
"output": "-1"
},
{
"input": "74\n0 0 0 0 0 37 0 0 0 0 0 0 0 8 0 0 9 0 0 0 0 0 0 0 0 0 8 0 0 0 0 0 9 0 7 0 0 0 0 0 0 19 19 0 0 0 0 0 0 0 0 0 0 0 0 17 0 30 0 0 0 0 0 0 30 0 0 0 0 0 0 0 37 0",
"output": "5"
},
{
"input": "3\n1 1 1",
"output": "-1"
},
{
"input": "2\n2 3",
"output": "0"
},
{
"input": "2\n2 2",
"output": "1"
},
{
"input": "5\n10000 10000 1 1 10000",
"output": "-1"
}
] | 1,589,004,259
| 2,147,483,647
|
Python 3
|
WRONG_ANSWER
|
TESTS
| 7
| 216
| 6,656,000
|
n=int(input())
x=list(map(int,input().split()))
x.sort()
s=0
fl=0
for i in range(1,n):
if x[i-1]==x[i]:
s+=1
if len(x)!=n-1:
if x[i]==x[i+1]:
fl=1
break
if fl==0:
print(s)
else:print(-1)
|
Title: Spyke Talks
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
Polycarpus is the director of a large corporation. There are *n* secretaries working for the corporation, each of them corresponds via the famous Spyke VoIP system during the day. We know that when two people call each other via Spyke, the Spyke network assigns a unique ID to this call, a positive integer session number.
One day Polycarpus wondered which secretaries are talking via the Spyke and which are not. For each secretary, he wrote out either the session number of his call or a 0 if this secretary wasn't talking via Spyke at that moment.
Help Polycarpus analyze these data and find out the number of pairs of secretaries that are talking. If Polycarpus has made a mistake in the data and the described situation could not have taken place, say so.
Note that the secretaries can correspond via Spyke not only with each other, but also with the people from other places. Also, Spyke conferences aren't permitted — that is, one call connects exactly two people.
Input Specification:
The first line contains integer *n* (1<=≤<=*n*<=≤<=103) — the number of secretaries in Polycarpus's corporation. The next line contains *n* space-separated integers: *id*1,<=*id*2,<=...,<=*id**n* (0<=≤<=*id**i*<=≤<=109). Number *id**i* equals the number of the call session of the *i*-th secretary, if the secretary is talking via Spyke, or zero otherwise.
Consider the secretaries indexed from 1 to *n* in some way.
Output Specification:
Print a single integer — the number of pairs of chatting secretaries, or -1 if Polycarpus's got a mistake in his records and the described situation could not have taken place.
Demo Input:
['6\n0 1 7 1 7 10\n', '3\n1 1 1\n', '1\n0\n']
Demo Output:
['2\n', '-1\n', '0\n']
Note:
In the first test sample there are two Spyke calls between secretaries: secretary 2 and secretary 4, secretary 3 and secretary 5.
In the second test sample the described situation is impossible as conferences aren't allowed.
|
```python
n=int(input())
x=list(map(int,input().split()))
x.sort()
s=0
fl=0
for i in range(1,n):
if x[i-1]==x[i]:
s+=1
if len(x)!=n-1:
if x[i]==x[i+1]:
fl=1
break
if fl==0:
print(s)
else:print(-1)
```
| 0
|
|
801
|
A
|
Vicious Keyboard
|
PROGRAMMING
| 1,100
|
[
"brute force"
] | null | null |
Tonio has a keyboard with only two letters, "V" and "K".
One day, he has typed out a string *s* with only these two letters. He really likes it when the string "VK" appears, so he wishes to change at most one letter in the string (or do no changes) to maximize the number of occurrences of that string. Compute the maximum number of times "VK" can appear as a substring (i. e. a letter "K" right after a letter "V") in the resulting string.
|
The first line will contain a string *s* consisting only of uppercase English letters "V" and "K" with length not less than 1 and not greater than 100.
|
Output a single integer, the maximum number of times "VK" can appear as a substring of the given string after changing at most one character.
|
[
"VK\n",
"VV\n",
"V\n",
"VKKKKKKKKKVVVVVVVVVK\n",
"KVKV\n"
] |
[
"1\n",
"1\n",
"0\n",
"3\n",
"1\n"
] |
For the first case, we do not change any letters. "VK" appears once, which is the maximum number of times it could appear.
For the second case, we can change the second character from a "V" to a "K". This will give us the string "VK". This has one occurrence of the string "VK" as a substring.
For the fourth case, we can change the fourth character from a "K" to a "V". This will give us the string "VKKVKKKKKKVVVVVVVVVK". This has three occurrences of the string "VK" as a substring. We can check no other moves can give us strictly more occurrences.
| 500
|
[
{
"input": "VK",
"output": "1"
},
{
"input": "VV",
"output": "1"
},
{
"input": "V",
"output": "0"
},
{
"input": "VKKKKKKKKKVVVVVVVVVK",
"output": "3"
},
{
"input": "KVKV",
"output": "1"
},
{
"input": "VKKVVVKVKVK",
"output": "5"
},
{
"input": "VKVVKVKVVKVKKKKVVVVVVVVKVKVVVVVVKKVKKVKVVKVKKVVVVKV",
"output": "14"
},
{
"input": "VVKKVKKVVKKVKKVKVVKKVKKVVKKVKVVKKVKKVKVVKKVVKKVKVVKKVKVVKKVVKVVKKVKKVKKVKKVKKVKVVKKVKKVKKVKKVKKVVKVK",
"output": "32"
},
{
"input": "KVVKKVKVKVKVKVKKVKVKVVKVKVVKVVKVKKVKVKVKVKVKVKVKVKVKVKVKVKVKVKVVKVKVVKKVKVKK",
"output": "32"
},
{
"input": "KVVVVVKKVKVVKVVVKVVVKKKVKKKVVKVKKKVKKKKVKVVVVVKKKVVVVKKVVVVKKKVKVVVVVVVKKVKVKKKVVKVVVKVVKK",
"output": "21"
},
{
"input": "VVVVVKKVKVKVKVVKVVKKVVKVKKKKKKKVKKKVVVVVVKKVVVKVKVVKVKKVVKVVVKKKKKVVVVVKVVVVKVVVKKVKKVKKKVKKVKKVVKKV",
"output": "25"
},
{
"input": "KKVVKVVKVVKKVVKKVKVVKKV",
"output": "7"
},
{
"input": "KKVVKKVVVKKVKKVKKVVVKVVVKKVKKVVVKKVVVKVVVKVVVKKVVVKKVVVKVVVKKVVVKVVKKVVVKKVVVKKVVKVVVKKVVKKVKKVVVKKV",
"output": "24"
},
{
"input": "KVKVKVKVKVKVKVKVKVKVVKVKVKVKVKVKVKVVKVKVKKVKVKVKVKVVKVKVKVKVKVKVKVKVKKVKVKVV",
"output": "35"
},
{
"input": "VKVVVKKKVKVVKVKVKVKVKVV",
"output": "9"
},
{
"input": "KKKKVKKVKVKVKKKVVVVKK",
"output": "6"
},
{
"input": "KVKVKKVVVVVVKKKVKKKKVVVVKVKKVKVVK",
"output": "9"
},
{
"input": "KKVKKVKKKVKKKVKKKVKVVVKKVVVVKKKVKKVVKVKKVKVKVKVVVKKKVKKKKKVVKVVKVVVKKVVKVVKKKKKVK",
"output": "22"
},
{
"input": "VVVKVKVKVVVVVKVVVKKVVVKVVVVVKKVVKVVVKVVVKVKKKVVKVVVVVKVVVVKKVVKVKKVVKKKVKVVKVKKKKVVKVVVKKKVKVKKKKKK",
"output": "25"
},
{
"input": "VKVVKVVKKKVVKVKKKVVKKKVVKVVKVVKKVKKKVKVKKKVVKVKKKVVKVVKKKVVKKKVKKKVVKKVVKKKVKVKKKVKKKVKKKVKVKKKVVKVK",
"output": "29"
},
{
"input": "KKVKVVVKKVV",
"output": "3"
},
{
"input": "VKVKVKVKVKVKVKVKVKVKVVKVKVKVKVKVK",
"output": "16"
},
{
"input": "VVKKKVVKKKVVKKKVVKKKVVKKKVVKKKVVKKKVVKKKVVKKKVVKKKVVKKKVVKKKVV",
"output": "13"
},
{
"input": "VVKKVKVKKKVVVKVVVKVKKVKKKVVVKVVKVKKVKKVKVKVVKKVVKKVKVVKKKVVKKVVVKVKVVVKVKVVKVKKVKKV",
"output": "26"
},
{
"input": "VVKVKKVVKKVVKKVVKKVVKKVKKVVKVKKVVKKVVKKVVKKVVKKVVKVVKKVVKVVKKVVKVVKKVVKKVKKVVKVVKKVVKVVKKVV",
"output": "26"
},
{
"input": "K",
"output": "0"
},
{
"input": "VKVK",
"output": "2"
},
{
"input": "VKVV",
"output": "2"
},
{
"input": "KV",
"output": "0"
},
{
"input": "KK",
"output": "1"
},
{
"input": "KKVK",
"output": "2"
},
{
"input": "KKKK",
"output": "1"
},
{
"input": "KKV",
"output": "1"
},
{
"input": "KKVKVK",
"output": "3"
},
{
"input": "VKKVK",
"output": "2"
},
{
"input": "VKKK",
"output": "2"
},
{
"input": "KKK",
"output": "1"
},
{
"input": "KVV",
"output": "1"
},
{
"input": "KKVKV",
"output": "2"
},
{
"input": "VVK",
"output": "1"
},
{
"input": "VVVKVKVKVKVKVKVK",
"output": "8"
},
{
"input": "KVVVK",
"output": "2"
},
{
"input": "VVVKK",
"output": "2"
},
{
"input": "KKVV",
"output": "1"
},
{
"input": "KKKKKKK",
"output": "1"
},
{
"input": "VKKKVK",
"output": "3"
},
{
"input": "KKVVV",
"output": "1"
},
{
"input": "VVVVVV",
"output": "1"
},
{
"input": "KKKV",
"output": "1"
},
{
"input": "VVKVV",
"output": "2"
},
{
"input": "VKVKKK",
"output": "3"
},
{
"input": "VKKV",
"output": "1"
},
{
"input": "VKKVV",
"output": "2"
},
{
"input": "VVKKVV",
"output": "2"
},
{
"input": "KKVVKKV",
"output": "2"
},
{
"input": "KKKKK",
"output": "1"
},
{
"input": "VKVVKKVKKVVKVKKVKKKVKKVKVKK",
"output": "10"
},
{
"input": "VKVKVV",
"output": "3"
},
{
"input": "VKVVKVV",
"output": "3"
},
{
"input": "VVV",
"output": "1"
},
{
"input": "VVVVVVVVVVVVVVVVVVVVVVVVVVVVVVVVVVVVVVVVV",
"output": "1"
},
{
"input": "VVKKKKKKVKK",
"output": "3"
},
{
"input": "KVKVKVV",
"output": "3"
}
] | 1,699,100,000
| 2,147,483,647
|
Python 3
|
WRONG_ANSWER
|
TESTS
| 6
| 46
| 0
|
line, is_changed, pairs = input().lower(), False, 0
for i in range(len(line) - 1):
if line[i] != 'v' and line[i] != 'k':
break
if line[i] == 'v' and line[i + 1] == 'k':
pairs += 1
elif is_changed is False and line[i] == 'v' and line[i + 1] == 'v':
line = line[:i + 1] + 'k' + line[i + 2:]
is_changed = True
pairs += 1
elif is_changed is False and line[i] == 'k' and line[i + 1] == 'k':
if i != 0 :
if line[i - 1] == 'k':
line = line[:i] + 'v' + line[i + 1:]
pairs += 1
is_changed = True
else:
line = line[:i] + 'v' + line[i + 1:]
pairs += 1
is_changed = True
print(pairs)
|
Title: Vicious Keyboard
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
Tonio has a keyboard with only two letters, "V" and "K".
One day, he has typed out a string *s* with only these two letters. He really likes it when the string "VK" appears, so he wishes to change at most one letter in the string (or do no changes) to maximize the number of occurrences of that string. Compute the maximum number of times "VK" can appear as a substring (i. e. a letter "K" right after a letter "V") in the resulting string.
Input Specification:
The first line will contain a string *s* consisting only of uppercase English letters "V" and "K" with length not less than 1 and not greater than 100.
Output Specification:
Output a single integer, the maximum number of times "VK" can appear as a substring of the given string after changing at most one character.
Demo Input:
['VK\n', 'VV\n', 'V\n', 'VKKKKKKKKKVVVVVVVVVK\n', 'KVKV\n']
Demo Output:
['1\n', '1\n', '0\n', '3\n', '1\n']
Note:
For the first case, we do not change any letters. "VK" appears once, which is the maximum number of times it could appear.
For the second case, we can change the second character from a "V" to a "K". This will give us the string "VK". This has one occurrence of the string "VK" as a substring.
For the fourth case, we can change the fourth character from a "K" to a "V". This will give us the string "VKKVKKKKKKVVVVVVVVVK". This has three occurrences of the string "VK" as a substring. We can check no other moves can give us strictly more occurrences.
|
```python
line, is_changed, pairs = input().lower(), False, 0
for i in range(len(line) - 1):
if line[i] != 'v' and line[i] != 'k':
break
if line[i] == 'v' and line[i + 1] == 'k':
pairs += 1
elif is_changed is False and line[i] == 'v' and line[i + 1] == 'v':
line = line[:i + 1] + 'k' + line[i + 2:]
is_changed = True
pairs += 1
elif is_changed is False and line[i] == 'k' and line[i + 1] == 'k':
if i != 0 :
if line[i - 1] == 'k':
line = line[:i] + 'v' + line[i + 1:]
pairs += 1
is_changed = True
else:
line = line[:i] + 'v' + line[i + 1:]
pairs += 1
is_changed = True
print(pairs)
```
| 0
|
|
150
|
B
|
Quantity of Strings
|
PROGRAMMING
| 1,600
|
[
"combinatorics",
"dfs and similar",
"graphs",
"math"
] | null | null |
Just in case somebody missed it: this winter is totally cold in Nvodsk! It is so cold that one gets funny thoughts. For example, let's say there are strings with the length exactly *n*, based on the alphabet of size *m*. Any its substring with length equal to *k* is a palindrome. How many such strings exist? Your task is to find their quantity modulo 1000000007 (109<=+<=7). Be careful and don't miss a string or two!
Let us remind you that a string is a palindrome if it can be read the same way in either direction, from the left to the right and from the right to the left.
|
The first and only line contains three integers: *n*, *m* and *k* (1<=≤<=*n*,<=*m*,<=*k*<=≤<=2000).
|
Print a single integer — the number of strings of the described type modulo 1000000007 (109<=+<=7).
|
[
"1 1 1\n",
"5 2 4\n"
] |
[
"1\n",
"2\n"
] |
In the first sample only one string is valid: "a" (let's denote the only letter of our alphabet as "a").
In the second sample (if we denote the alphabet letters as "a" and "b") the following strings are valid: "aaaaa" and "bbbbb".
| 500
|
[
{
"input": "1 1 1",
"output": "1"
},
{
"input": "5 2 4",
"output": "2"
},
{
"input": "7 4 20",
"output": "16384"
},
{
"input": "8 13 9",
"output": "815730721"
},
{
"input": "10 23 9",
"output": "529"
},
{
"input": "10 25 8",
"output": "25"
},
{
"input": "997 1752 1000",
"output": "184834849"
},
{
"input": "784 1 1999",
"output": "1"
},
{
"input": "341 9 342",
"output": "320920086"
},
{
"input": "777 1 777",
"output": "1"
},
{
"input": "542 13 542",
"output": "490685740"
},
{
"input": "1501 893 1501",
"output": "889854713"
},
{
"input": "1321 95 2",
"output": "95"
},
{
"input": "2000 1000 3",
"output": "1000000"
},
{
"input": "1769 849 1000",
"output": "849"
},
{
"input": "1000 2 1",
"output": "688423210"
},
{
"input": "345 1777 1",
"output": "756253754"
},
{
"input": "1999 2000 2000",
"output": "675798323"
},
{
"input": "1984 1847 1992",
"output": "345702953"
},
{
"input": "2000 2000 2000",
"output": "321179016"
},
{
"input": "1451 239 1451",
"output": "968856942"
},
{
"input": "2000 2000 1",
"output": "596636543"
},
{
"input": "1230 987 1",
"output": "890209975"
},
{
"input": "1764 305 843",
"output": "93025"
},
{
"input": "1999 98 132",
"output": "98"
},
{
"input": "2000 2 10",
"output": "2"
},
{
"input": "2000 1999 1999",
"output": "3996001"
},
{
"input": "1678 1999 1234",
"output": "1999"
},
{
"input": "7 10 7",
"output": "10000"
},
{
"input": "15 1 15",
"output": "1"
},
{
"input": "2000 2000 1000",
"output": "2000"
},
{
"input": "1 2000 2000",
"output": "2000"
},
{
"input": "10 10 90",
"output": "999999937"
},
{
"input": "100 100 1",
"output": "424090053"
},
{
"input": "6 6 6",
"output": "216"
},
{
"input": "10 10 1",
"output": "999999937"
},
{
"input": "100 10 100",
"output": "319300014"
},
{
"input": "5 4 5",
"output": "64"
},
{
"input": "5 2 5",
"output": "8"
},
{
"input": "1000 1000 1000",
"output": "850431726"
},
{
"input": "5 5 1",
"output": "3125"
},
{
"input": "1000 1000 1",
"output": "524700271"
},
{
"input": "4 256 1",
"output": "294967268"
},
{
"input": "5 5 5",
"output": "125"
},
{
"input": "10 10 10",
"output": "100000"
},
{
"input": "100 100 100",
"output": "226732710"
},
{
"input": "5 2 1",
"output": "32"
},
{
"input": "4 4 4",
"output": "16"
},
{
"input": "15 5 1",
"output": "517577915"
},
{
"input": "1000 2 1001",
"output": "688423210"
},
{
"input": "100 7 3",
"output": "49"
},
{
"input": "8 2 8",
"output": "16"
},
{
"input": "200 200 200",
"output": "104842676"
},
{
"input": "4 4 1",
"output": "256"
},
{
"input": "1999 1999 1999",
"output": "21610777"
},
{
"input": "17 5 1",
"output": "939447791"
},
{
"input": "100 5 1",
"output": "146981449"
},
{
"input": "10 5 1",
"output": "9765625"
},
{
"input": "11 2 11",
"output": "64"
},
{
"input": "100 1000 1",
"output": "327648028"
},
{
"input": "3 1000 3",
"output": "1000000"
},
{
"input": "3 3 3",
"output": "9"
},
{
"input": "3 5 3",
"output": "25"
},
{
"input": "20 3 3",
"output": "9"
},
{
"input": "10 2 1",
"output": "1024"
},
{
"input": "7 2 7",
"output": "16"
},
{
"input": "13 9 1",
"output": "865810542"
},
{
"input": "11 2 5",
"output": "4"
},
{
"input": "13 13 13",
"output": "62748517"
},
{
"input": "239 123 239",
"output": "221051222"
}
] | 1,689,421,716
| 2,147,483,647
|
PyPy 3-64
|
WRONG_ANSWER
|
TESTS
| 0
| 15
| 0
|
print("_RANDOM_GUESS_1689421715.1070848")# 1689421715.1071045
|
Title: Quantity of Strings
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
Just in case somebody missed it: this winter is totally cold in Nvodsk! It is so cold that one gets funny thoughts. For example, let's say there are strings with the length exactly *n*, based on the alphabet of size *m*. Any its substring with length equal to *k* is a palindrome. How many such strings exist? Your task is to find their quantity modulo 1000000007 (109<=+<=7). Be careful and don't miss a string or two!
Let us remind you that a string is a palindrome if it can be read the same way in either direction, from the left to the right and from the right to the left.
Input Specification:
The first and only line contains three integers: *n*, *m* and *k* (1<=≤<=*n*,<=*m*,<=*k*<=≤<=2000).
Output Specification:
Print a single integer — the number of strings of the described type modulo 1000000007 (109<=+<=7).
Demo Input:
['1 1 1\n', '5 2 4\n']
Demo Output:
['1\n', '2\n']
Note:
In the first sample only one string is valid: "a" (let's denote the only letter of our alphabet as "a").
In the second sample (if we denote the alphabet letters as "a" and "b") the following strings are valid: "aaaaa" and "bbbbb".
|
```python
print("_RANDOM_GUESS_1689421715.1070848")# 1689421715.1071045
```
| 0
|
|
300
|
A
|
Array
|
PROGRAMMING
| 1,100
|
[
"brute force",
"constructive algorithms",
"implementation"
] | null | null |
Vitaly has an array of *n* distinct integers. Vitaly wants to divide this array into three non-empty sets so as the following conditions hold:
1. The product of all numbers in the first set is less than zero (<=<<=0). 1. The product of all numbers in the second set is greater than zero (<=><=0). 1. The product of all numbers in the third set is equal to zero. 1. Each number from the initial array must occur in exactly one set.
Help Vitaly. Divide the given array.
|
The first line of the input contains integer *n* (3<=≤<=*n*<=≤<=100). The second line contains *n* space-separated distinct integers *a*1,<=*a*2,<=...,<=*a**n* (|*a**i*|<=≤<=103) — the array elements.
|
In the first line print integer *n*1 (*n*1<=><=0) — the number of elements in the first set. Then print *n*1 numbers — the elements that got to the first set.
In the next line print integer *n*2 (*n*2<=><=0) — the number of elements in the second set. Then print *n*2 numbers — the elements that got to the second set.
In the next line print integer *n*3 (*n*3<=><=0) — the number of elements in the third set. Then print *n*3 numbers — the elements that got to the third set.
The printed sets must meet the described conditions. It is guaranteed that the solution exists. If there are several solutions, you are allowed to print any of them.
|
[
"3\n-1 2 0\n",
"4\n-1 -2 -3 0\n"
] |
[
"1 -1\n1 2\n1 0\n",
"1 -1\n2 -3 -2\n1 0\n"
] |
none
| 500
|
[
{
"input": "3\n-1 2 0",
"output": "1 -1\n1 2\n1 0"
},
{
"input": "4\n-1 -2 -3 0",
"output": "1 -1\n2 -3 -2\n1 0"
},
{
"input": "5\n-1 -2 1 2 0",
"output": "1 -1\n2 1 2\n2 0 -2"
},
{
"input": "100\n-64 -51 -75 -98 74 -26 -1 -8 -99 -76 -53 -80 -43 -22 -100 -62 -34 -5 -65 -81 -18 -91 -92 -16 -23 -95 -9 -19 -44 -46 -79 52 -35 4 -87 -7 -90 -20 -71 -61 -67 -50 -66 -68 -49 -27 -32 -57 -85 -59 -30 -36 -3 -77 86 -25 -94 -56 60 -24 -37 -72 -41 -31 11 -48 28 -38 -42 -39 -33 -70 -84 0 -93 -73 -14 -69 -40 -97 -6 -55 -45 -54 -10 -29 -96 -12 -83 -15 -21 -47 17 -2 -63 -89 88 13 -58 -82",
"output": "89 -64 -51 -75 -98 -26 -1 -8 -99 -76 -53 -80 -43 -22 -100 -62 -34 -5 -65 -81 -18 -91 -92 -16 -23 -95 -9 -19 -44 -46 -79 -35 -87 -7 -90 -20 -71 -61 -67 -50 -66 -68 -49 -27 -32 -57 -85 -59 -30 -36 -3 -77 -25 -94 -56 -24 -37 -72 -41 -31 -48 -38 -42 -39 -33 -70 -84 -93 -73 -14 -69 -40 -97 -6 -55 -45 -54 -10 -29 -96 -12 -83 -15 -21 -47 -2 -63 -89 -58 -82\n10 74 52 4 86 60 11 28 17 88 13\n1 0"
},
{
"input": "100\n3 -66 -17 54 24 -29 76 89 32 -37 93 -16 99 -25 51 78 23 68 -95 59 18 34 -45 77 9 39 -10 19 8 73 -5 60 12 31 0 2 26 40 48 30 52 49 27 4 87 57 85 58 -61 50 83 80 69 67 91 97 -96 11 100 56 82 53 13 -92 -72 70 1 -94 -63 47 21 14 74 7 6 33 55 65 64 -41 81 42 36 28 38 20 43 71 90 -88 22 84 -86 15 75 62 44 35 98 46",
"output": "19 -66 -17 -29 -37 -16 -25 -95 -45 -10 -5 -61 -96 -92 -72 -94 -63 -41 -88 -86\n80 3 54 24 76 89 32 93 99 51 78 23 68 59 18 34 77 9 39 19 8 73 60 12 31 2 26 40 48 30 52 49 27 4 87 57 85 58 50 83 80 69 67 91 97 11 100 56 82 53 13 70 1 47 21 14 74 7 6 33 55 65 64 81 42 36 28 38 20 43 71 90 22 84 15 75 62 44 35 98 46\n1 0"
},
{
"input": "100\n-17 16 -70 32 -60 75 -100 -9 -68 -30 -42 86 -88 -98 -47 -5 58 -14 -94 -73 -80 -51 -66 -85 -53 49 -25 -3 -45 -69 -11 -64 83 74 -65 67 13 -91 81 6 -90 -54 -12 -39 0 -24 -71 -41 -44 57 -93 -20 -92 18 -43 -52 -55 -84 -89 -19 40 -4 -99 -26 -87 -36 -56 -61 -62 37 -95 -28 63 23 35 -82 1 -2 -78 -96 -21 -77 -76 -27 -10 -97 -8 46 -15 -48 -34 -59 -7 -29 50 -33 -72 -79 22 38",
"output": "75 -17 -70 -60 -100 -9 -68 -30 -42 -88 -98 -47 -5 -14 -94 -73 -80 -51 -66 -85 -53 -25 -3 -45 -69 -11 -64 -65 -91 -90 -54 -12 -39 -24 -71 -41 -44 -93 -20 -92 -43 -52 -55 -84 -89 -19 -4 -99 -26 -87 -36 -56 -61 -62 -95 -28 -82 -2 -78 -96 -21 -77 -76 -27 -10 -97 -8 -15 -48 -34 -59 -7 -29 -33 -72 -79\n24 16 32 75 86 58 49 83 74 67 13 81 6 57 18 40 37 63 23 35 1 46 50 22 38\n1 0"
},
{
"input": "100\n-97 -90 61 78 87 -52 -3 65 83 38 30 -60 35 -50 -73 -77 44 -32 -81 17 -67 58 -6 -34 47 -28 71 -45 69 -80 -4 -7 -57 -79 43 -27 -31 29 16 -89 -21 -93 95 -82 74 -5 -70 -20 -18 36 -64 -66 72 53 62 -68 26 15 76 -40 -99 8 59 88 49 -23 9 10 56 -48 -98 0 100 -54 25 94 13 -63 42 39 -1 55 24 -12 75 51 41 84 -96 -85 -2 -92 14 -46 -91 -19 -11 -86 22 -37",
"output": "51 -97 -90 -52 -3 -60 -50 -73 -77 -32 -81 -67 -6 -34 -28 -45 -80 -4 -7 -57 -79 -27 -31 -89 -21 -93 -82 -5 -70 -20 -18 -64 -66 -68 -40 -99 -23 -48 -98 -54 -63 -1 -12 -96 -85 -2 -92 -46 -91 -19 -11 -86\n47 61 78 87 65 83 38 30 35 44 17 58 47 71 69 43 29 16 95 74 36 72 53 62 26 15 76 8 59 88 49 9 10 56 100 25 94 13 42 39 55 24 75 51 41 84 14 22\n2 0 -37"
},
{
"input": "100\n-75 -60 -18 -92 -71 -9 -37 -34 -82 28 -54 93 -83 -76 -58 -88 -17 -97 64 -39 -96 -81 -10 -98 -47 -100 -22 27 14 -33 -19 -99 87 -66 57 -21 -90 -70 -32 -26 24 -77 -74 13 -44 16 -5 -55 -2 -6 -7 -73 -1 -68 -30 -95 -42 69 0 -20 -79 59 -48 -4 -72 -67 -46 62 51 -52 -86 -40 56 -53 85 -35 -8 49 50 65 29 11 -43 -15 -41 -12 -3 -80 -31 -38 -91 -45 -25 78 94 -23 -63 84 89 -61",
"output": "73 -75 -60 -18 -92 -71 -9 -37 -34 -82 -54 -83 -76 -58 -88 -17 -97 -39 -96 -81 -10 -98 -47 -100 -22 -33 -19 -99 -66 -21 -90 -70 -32 -26 -77 -74 -44 -5 -55 -2 -6 -7 -73 -1 -68 -30 -95 -42 -20 -79 -48 -4 -72 -67 -46 -52 -86 -40 -53 -35 -8 -43 -15 -41 -12 -3 -80 -31 -38 -91 -45 -25 -23 -63\n25 28 93 64 27 14 87 57 24 13 16 69 59 62 51 56 85 49 50 65 29 11 78 94 84 89\n2 0 -61"
},
{
"input": "100\n-87 -48 -76 -1 -10 -17 -22 -19 -27 -99 -43 49 38 -20 -45 -64 44 -96 -35 -74 -65 -41 -21 -75 37 -12 -67 0 -3 5 -80 -93 -81 -97 -47 -63 53 -100 95 -79 -83 -90 -32 88 -77 -16 -23 -54 -28 -4 -73 -98 -25 -39 60 -56 -34 -2 -11 -55 -52 -69 -68 -29 -82 -62 -36 -13 -6 -89 8 -72 18 -15 -50 -71 -70 -92 -42 -78 -61 -9 -30 -85 -91 -94 84 -86 -7 -57 -14 40 -33 51 -26 46 59 -31 -58 -66",
"output": "83 -87 -48 -76 -1 -10 -17 -22 -19 -27 -99 -43 -20 -45 -64 -96 -35 -74 -65 -41 -21 -75 -12 -67 -3 -80 -93 -81 -97 -47 -63 -100 -79 -83 -90 -32 -77 -16 -23 -54 -28 -4 -73 -98 -25 -39 -56 -34 -2 -11 -55 -52 -69 -68 -29 -82 -62 -36 -13 -6 -89 -72 -15 -50 -71 -70 -92 -42 -78 -61 -9 -30 -85 -91 -94 -86 -7 -57 -14 -33 -26 -31 -58 -66\n16 49 38 44 37 5 53 95 88 60 8 18 84 40 51 46 59\n1 0"
},
{
"input": "100\n-95 -28 -43 -72 -11 -24 -37 -35 -44 -66 -45 -62 -96 -51 -55 -23 -31 -26 -59 -17 77 -69 -10 -12 -78 -14 -52 -57 -40 -75 4 -98 -6 7 -53 -3 -90 -63 -8 -20 88 -91 -32 -76 -80 -97 -34 -27 -19 0 70 -38 -9 -49 -67 73 -36 2 81 -39 -65 -83 -64 -18 -94 -79 -58 -16 87 -22 -74 -25 -13 -46 -89 -47 5 -15 -54 -99 56 -30 -60 -21 -86 33 -1 -50 -68 -100 -85 -29 92 -48 -61 42 -84 -93 -41 -82",
"output": "85 -95 -28 -43 -72 -11 -24 -37 -35 -44 -66 -45 -62 -96 -51 -55 -23 -31 -26 -59 -17 -69 -10 -12 -78 -14 -52 -57 -40 -75 -98 -6 -53 -3 -90 -63 -8 -20 -91 -32 -76 -80 -97 -34 -27 -19 -38 -9 -49 -67 -36 -39 -65 -83 -64 -18 -94 -79 -58 -16 -22 -74 -25 -13 -46 -89 -47 -15 -54 -99 -30 -60 -21 -86 -1 -50 -68 -100 -85 -29 -48 -61 -84 -93 -41 -82\n14 77 4 7 88 70 73 2 81 87 5 56 33 92 42\n1 0"
},
{
"input": "100\n-12 -41 57 13 83 -36 53 69 -6 86 -75 87 11 -5 -4 -14 -37 -84 70 2 -73 16 31 34 -45 94 -9 26 27 52 -42 46 96 21 32 7 -18 61 66 -51 95 -48 -76 90 80 -40 89 77 78 54 -30 8 88 33 -24 82 -15 19 1 59 44 64 -97 -60 43 56 35 47 39 50 29 28 -17 -67 74 23 85 -68 79 0 65 55 -3 92 -99 72 93 -71 38 -10 -100 -98 81 62 91 -63 -58 49 -20 22",
"output": "35 -12 -41 -36 -6 -75 -5 -4 -14 -37 -84 -73 -45 -9 -42 -18 -51 -48 -76 -40 -30 -24 -15 -97 -60 -17 -67 -68 -3 -99 -71 -10 -100 -98 -63 -58\n63 57 13 83 53 69 86 87 11 70 2 16 31 34 94 26 27 52 46 96 21 32 7 61 66 95 90 80 89 77 78 54 8 88 33 82 19 1 59 44 64 43 56 35 47 39 50 29 28 74 23 85 79 65 55 92 72 93 38 81 62 91 49 22\n2 0 -20"
},
{
"input": "100\n-34 81 85 -96 50 20 54 86 22 10 -19 52 65 44 30 53 63 71 17 98 -92 4 5 -99 89 -23 48 9 7 33 75 2 47 -56 42 70 -68 57 51 83 82 94 91 45 46 25 95 11 -12 62 -31 -87 58 38 67 97 -60 66 73 -28 13 93 29 59 -49 77 37 -43 -27 0 -16 72 15 79 61 78 35 21 3 8 84 1 -32 36 74 -88 26 100 6 14 40 76 18 90 24 69 80 64 55 41",
"output": "19 -34 -96 -19 -92 -99 -23 -56 -68 -12 -31 -87 -60 -28 -49 -43 -27 -16 -32 -88\n80 81 85 50 20 54 86 22 10 52 65 44 30 53 63 71 17 98 4 5 89 48 9 7 33 75 2 47 42 70 57 51 83 82 94 91 45 46 25 95 11 62 58 38 67 97 66 73 13 93 29 59 77 37 72 15 79 61 78 35 21 3 8 84 1 36 74 26 100 6 14 40 76 18 90 24 69 80 64 55 41\n1 0"
},
{
"input": "100\n-1000 -986 -979 -955 -966 -963 -973 -959 -972 -906 -924 -927 -929 -918 -977 -967 -921 -989 -911 -995 -945 -919 -971 -913 -912 -933 -969 -975 -920 -988 -997 -994 -953 -962 -940 -905 -978 -948 -957 -996 0 -976 -949 -931 -903 -985 -923 -993 -944 -909 -938 -946 -934 -992 -904 -980 -954 -943 -917 -968 -991 -956 -902 -942 -999 -998 -908 -928 -930 -914 -922 -936 -960 -937 -939 -926 -965 -925 -951 -910 -907 -970 -990 -984 -964 -987 -916 -947 -982 -950 -974 -915 -932 -958 -981 -941 -961 -983 -952 -935",
"output": "97 -1000 -986 -979 -955 -966 -963 -973 -959 -972 -906 -924 -927 -929 -918 -977 -967 -921 -989 -911 -995 -945 -919 -971 -913 -912 -933 -969 -975 -920 -988 -997 -994 -953 -962 -940 -905 -978 -948 -957 -996 -976 -949 -931 -903 -985 -923 -993 -944 -909 -938 -946 -934 -992 -904 -980 -954 -943 -917 -968 -991 -956 -902 -942 -999 -998 -908 -928 -930 -914 -922 -936 -960 -937 -939 -926 -965 -925 -951 -910 -907 -970 -990 -984 -964 -987 -916 -947 -982 -950 -974 -915 -932 -958 -981 -941 -961 -983\n2 -935 -952\n1 0"
},
{
"input": "99\n-1000 -986 -979 -955 -966 -963 -973 -959 -972 -906 -924 -927 -929 -918 -977 -967 -921 -989 -911 -995 -945 -919 -971 -913 -912 -933 -969 -975 -920 -988 -997 -994 -953 -962 -940 -905 -978 -948 -957 -996 0 -976 -949 -931 -903 -985 -923 -993 -944 -909 -938 -946 -934 -992 -904 -980 -954 -943 -917 -968 -991 -956 -902 -942 -999 -998 -908 -928 -930 -914 -922 -936 -960 -937 -939 -926 -965 -925 -951 -910 -907 -970 -990 -984 -964 -987 -916 -947 -982 -950 -974 -915 -932 -958 -981 -941 -961 -983 -952",
"output": "95 -1000 -986 -979 -955 -966 -963 -973 -959 -972 -906 -924 -927 -929 -918 -977 -967 -921 -989 -911 -995 -945 -919 -971 -913 -912 -933 -969 -975 -920 -988 -997 -994 -953 -962 -940 -905 -978 -948 -957 -996 -976 -949 -931 -903 -985 -923 -993 -944 -909 -938 -946 -934 -992 -904 -980 -954 -943 -917 -968 -991 -956 -902 -942 -999 -998 -908 -928 -930 -914 -922 -936 -960 -937 -939 -926 -965 -925 -951 -910 -907 -970 -990 -984 -964 -987 -916 -947 -982 -950 -974 -915 -932 -958 -981 -941\n2 -952 -983\n2 0 -961"
},
{
"input": "59\n-990 -876 -641 -726 718 -53 803 -954 894 -265 -587 -665 904 349 754 -978 441 794 -768 -428 -569 -476 188 -620 -290 -333 45 705 -201 109 165 446 13 122 714 -562 -15 -86 -960 43 329 578 287 -776 -14 -71 915 886 -259 337 -495 913 -498 -669 -673 818 225 647 0",
"output": "29 -990 -876 -641 -726 -53 -954 -265 -587 -665 -978 -768 -428 -569 -476 -620 -290 -333 -201 -562 -15 -86 -960 -776 -14 -71 -259 -495 -498 -669\n28 718 803 894 904 349 754 441 794 188 45 705 109 165 446 13 122 714 43 329 578 287 915 886 337 913 818 225 647\n2 0 -673"
},
{
"input": "64\n502 885 -631 -906 735 687 642 -29 -696 -165 -524 15 -129 -663 -846 -501 -651 895 -341 -833 -142 33 -847 688 945 -192 -587 -930 603 849 736 676 788 256 863 -509 319 -49 -807 -158 218 -886 -143 -639 118 -156 -291 325 892 -916 -622 -960 -959 -731 -943 436 -535 861 745 589 -159 376 -182 0",
"output": "35 -631 -906 -29 -696 -165 -524 -129 -663 -846 -501 -651 -341 -833 -142 -847 -192 -587 -930 -509 -49 -807 -158 -886 -143 -639 -156 -291 -916 -622 -960 -959 -731 -943 -535 -159\n27 502 885 735 687 642 15 895 33 688 945 603 849 736 676 788 256 863 319 218 118 325 892 436 861 745 589 376\n2 0 -182"
},
{
"input": "5\n-1 -2 -3 -4 0",
"output": "1 -1\n2 -4 -3\n2 0 -2"
},
{
"input": "3\n-101 101 0",
"output": "1 -101\n1 101\n1 0"
},
{
"input": "21\n-100 -200 -300 -400 -500 -600 -700 -800 -900 -1000 0 100 200 300 400 500 600 700 800 900 1000",
"output": "9 -100 -200 -300 -400 -500 -600 -700 -800 -900\n10 100 200 300 400 500 600 700 800 900 1000\n2 0 -1000"
},
{
"input": "4\n0 -1 -2 -3",
"output": "1 -1\n2 -3 -2\n1 0"
}
] | 1,629,803,695
| 2,147,483,647
|
PyPy 3
|
RUNTIME_ERROR
|
TESTS
| 1
| 248
| 22,323,200
|
n = int(input())
a = list(map(int,input().split()))
# a.sort()
n = []
p = []
for i in a:
if i < 0:
n.append(i)
elif i > 0:
p.append(i)
a1 = [n.pop(0)]
a2 = [p.pop(0)]
a3 = [0]
for i in n:
a3.append(i)
for i in p:
a3.append(i)
print(len(a1),end = " ")
for i in a1:
print(i,end = " ")
print()
print(len(a2),end = " ")
for i in a2:
print(i,end = " ")
print()
print(len(a3),end = " ")
for i in a3:
print(i,end = " ")
|
Title: Array
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
Vitaly has an array of *n* distinct integers. Vitaly wants to divide this array into three non-empty sets so as the following conditions hold:
1. The product of all numbers in the first set is less than zero (<=<<=0). 1. The product of all numbers in the second set is greater than zero (<=><=0). 1. The product of all numbers in the third set is equal to zero. 1. Each number from the initial array must occur in exactly one set.
Help Vitaly. Divide the given array.
Input Specification:
The first line of the input contains integer *n* (3<=≤<=*n*<=≤<=100). The second line contains *n* space-separated distinct integers *a*1,<=*a*2,<=...,<=*a**n* (|*a**i*|<=≤<=103) — the array elements.
Output Specification:
In the first line print integer *n*1 (*n*1<=><=0) — the number of elements in the first set. Then print *n*1 numbers — the elements that got to the first set.
In the next line print integer *n*2 (*n*2<=><=0) — the number of elements in the second set. Then print *n*2 numbers — the elements that got to the second set.
In the next line print integer *n*3 (*n*3<=><=0) — the number of elements in the third set. Then print *n*3 numbers — the elements that got to the third set.
The printed sets must meet the described conditions. It is guaranteed that the solution exists. If there are several solutions, you are allowed to print any of them.
Demo Input:
['3\n-1 2 0\n', '4\n-1 -2 -3 0\n']
Demo Output:
['1 -1\n1 2\n1 0\n', '1 -1\n2 -3 -2\n1 0\n']
Note:
none
|
```python
n = int(input())
a = list(map(int,input().split()))
# a.sort()
n = []
p = []
for i in a:
if i < 0:
n.append(i)
elif i > 0:
p.append(i)
a1 = [n.pop(0)]
a2 = [p.pop(0)]
a3 = [0]
for i in n:
a3.append(i)
for i in p:
a3.append(i)
print(len(a1),end = " ")
for i in a1:
print(i,end = " ")
print()
print(len(a2),end = " ")
for i in a2:
print(i,end = " ")
print()
print(len(a3),end = " ")
for i in a3:
print(i,end = " ")
```
| -1
|
|
633
|
A
|
Ebony and Ivory
|
PROGRAMMING
| 1,100
|
[
"brute force",
"math",
"number theory"
] | null | null |
Dante is engaged in a fight with "The Savior". Before he can fight it with his sword, he needs to break its shields. He has two guns, Ebony and Ivory, each of them is able to perform any non-negative number of shots.
For every bullet that hits the shield, Ebony deals *a* units of damage while Ivory deals *b* units of damage. In order to break the shield Dante has to deal exactly *c* units of damage. Find out if this is possible.
|
The first line of the input contains three integers *a*, *b*, *c* (1<=≤<=*a*,<=*b*<=≤<=100,<=1<=≤<=*c*<=≤<=10<=000) — the number of units of damage dealt by Ebony gun and Ivory gun, and the total number of damage required to break the shield, respectively.
|
Print "Yes" (without quotes) if Dante can deal exactly *c* damage to the shield and "No" (without quotes) otherwise.
|
[
"4 6 15\n",
"3 2 7\n",
"6 11 6\n"
] |
[
"No\n",
"Yes\n",
"Yes\n"
] |
In the second sample, Dante can fire 1 bullet from Ebony and 2 from Ivory to deal exactly 1·3 + 2·2 = 7 damage. In the third sample, Dante can fire 1 bullet from ebony and no bullets from ivory to do 1·6 + 0·11 = 6 damage.
| 250
|
[
{
"input": "4 6 15",
"output": "No"
},
{
"input": "3 2 7",
"output": "Yes"
},
{
"input": "6 11 6",
"output": "Yes"
},
{
"input": "3 12 15",
"output": "Yes"
},
{
"input": "5 5 10",
"output": "Yes"
},
{
"input": "6 6 7",
"output": "No"
},
{
"input": "1 1 20",
"output": "Yes"
},
{
"input": "12 14 19",
"output": "No"
},
{
"input": "15 12 26",
"output": "No"
},
{
"input": "2 4 8",
"output": "Yes"
},
{
"input": "4 5 30",
"output": "Yes"
},
{
"input": "4 5 48",
"output": "Yes"
},
{
"input": "2 17 105",
"output": "Yes"
},
{
"input": "10 25 282",
"output": "No"
},
{
"input": "6 34 323",
"output": "No"
},
{
"input": "2 47 464",
"output": "Yes"
},
{
"input": "4 53 113",
"output": "Yes"
},
{
"input": "6 64 546",
"output": "Yes"
},
{
"input": "1 78 725",
"output": "Yes"
},
{
"input": "1 84 811",
"output": "Yes"
},
{
"input": "3 100 441",
"output": "Yes"
},
{
"input": "20 5 57",
"output": "No"
},
{
"input": "14 19 143",
"output": "No"
},
{
"input": "17 23 248",
"output": "No"
},
{
"input": "11 34 383",
"output": "Yes"
},
{
"input": "20 47 568",
"output": "Yes"
},
{
"input": "16 58 410",
"output": "Yes"
},
{
"input": "11 70 1199",
"output": "Yes"
},
{
"input": "16 78 712",
"output": "Yes"
},
{
"input": "20 84 562",
"output": "No"
},
{
"input": "19 100 836",
"output": "Yes"
},
{
"input": "23 10 58",
"output": "No"
},
{
"input": "25 17 448",
"output": "Yes"
},
{
"input": "22 24 866",
"output": "Yes"
},
{
"input": "24 35 67",
"output": "No"
},
{
"input": "29 47 264",
"output": "Yes"
},
{
"input": "23 56 45",
"output": "No"
},
{
"input": "25 66 1183",
"output": "Yes"
},
{
"input": "21 71 657",
"output": "Yes"
},
{
"input": "29 81 629",
"output": "No"
},
{
"input": "23 95 2226",
"output": "Yes"
},
{
"input": "32 4 62",
"output": "No"
},
{
"input": "37 15 789",
"output": "Yes"
},
{
"input": "39 24 999",
"output": "Yes"
},
{
"input": "38 32 865",
"output": "No"
},
{
"input": "32 50 205",
"output": "No"
},
{
"input": "31 57 1362",
"output": "Yes"
},
{
"input": "38 68 1870",
"output": "Yes"
},
{
"input": "36 76 549",
"output": "No"
},
{
"input": "35 84 1257",
"output": "No"
},
{
"input": "39 92 2753",
"output": "Yes"
},
{
"input": "44 1 287",
"output": "Yes"
},
{
"input": "42 12 830",
"output": "No"
},
{
"input": "42 27 9",
"output": "No"
},
{
"input": "49 40 1422",
"output": "No"
},
{
"input": "44 42 2005",
"output": "No"
},
{
"input": "50 55 2479",
"output": "No"
},
{
"input": "48 65 917",
"output": "No"
},
{
"input": "45 78 152",
"output": "No"
},
{
"input": "43 90 4096",
"output": "Yes"
},
{
"input": "43 94 4316",
"output": "Yes"
},
{
"input": "60 7 526",
"output": "Yes"
},
{
"input": "53 11 735",
"output": "Yes"
},
{
"input": "52 27 609",
"output": "Yes"
},
{
"input": "57 32 992",
"output": "Yes"
},
{
"input": "52 49 421",
"output": "No"
},
{
"input": "57 52 2634",
"output": "Yes"
},
{
"input": "54 67 3181",
"output": "Yes"
},
{
"input": "52 73 638",
"output": "No"
},
{
"input": "57 84 3470",
"output": "No"
},
{
"input": "52 100 5582",
"output": "No"
},
{
"input": "62 1 501",
"output": "Yes"
},
{
"input": "63 17 858",
"output": "Yes"
},
{
"input": "70 24 1784",
"output": "Yes"
},
{
"input": "65 32 1391",
"output": "Yes"
},
{
"input": "62 50 2775",
"output": "No"
},
{
"input": "62 58 88",
"output": "No"
},
{
"input": "66 68 3112",
"output": "Yes"
},
{
"input": "61 71 1643",
"output": "No"
},
{
"input": "69 81 3880",
"output": "No"
},
{
"input": "63 100 1960",
"output": "Yes"
},
{
"input": "73 6 431",
"output": "Yes"
},
{
"input": "75 19 736",
"output": "Yes"
},
{
"input": "78 25 247",
"output": "No"
},
{
"input": "79 36 2854",
"output": "Yes"
},
{
"input": "80 43 1864",
"output": "Yes"
},
{
"input": "76 55 2196",
"output": "Yes"
},
{
"input": "76 69 4122",
"output": "Yes"
},
{
"input": "76 76 4905",
"output": "No"
},
{
"input": "75 89 3056",
"output": "Yes"
},
{
"input": "73 100 3111",
"output": "Yes"
},
{
"input": "84 9 530",
"output": "No"
},
{
"input": "82 18 633",
"output": "No"
},
{
"input": "85 29 2533",
"output": "Yes"
},
{
"input": "89 38 2879",
"output": "Yes"
},
{
"input": "89 49 2200",
"output": "Yes"
},
{
"input": "88 60 4140",
"output": "Yes"
},
{
"input": "82 68 1299",
"output": "No"
},
{
"input": "90 76 2207",
"output": "No"
},
{
"input": "83 84 4923",
"output": "Yes"
},
{
"input": "89 99 7969",
"output": "Yes"
},
{
"input": "94 9 168",
"output": "No"
},
{
"input": "91 20 1009",
"output": "No"
},
{
"input": "93 23 2872",
"output": "Yes"
},
{
"input": "97 31 3761",
"output": "Yes"
},
{
"input": "99 46 1341",
"output": "Yes"
},
{
"input": "98 51 2845",
"output": "No"
},
{
"input": "93 66 3412",
"output": "No"
},
{
"input": "95 76 3724",
"output": "Yes"
},
{
"input": "91 87 6237",
"output": "Yes"
},
{
"input": "98 97 7886",
"output": "Yes"
},
{
"input": "12 17 15",
"output": "No"
},
{
"input": "93 94 95",
"output": "No"
},
{
"input": "27 43 27",
"output": "Yes"
},
{
"input": "17 43 68",
"output": "Yes"
},
{
"input": "44 12 12",
"output": "Yes"
},
{
"input": "44 50 150",
"output": "Yes"
},
{
"input": "1 1 10000",
"output": "Yes"
},
{
"input": "2 3 10000",
"output": "Yes"
},
{
"input": "100 1 10",
"output": "Yes"
},
{
"input": "3 2 1",
"output": "No"
},
{
"input": "1 1 1",
"output": "Yes"
},
{
"input": "9 9 10000",
"output": "No"
},
{
"input": "2 3 9995",
"output": "Yes"
},
{
"input": "3 5 4",
"output": "No"
},
{
"input": "99 98 100",
"output": "No"
},
{
"input": "6 10 2",
"output": "No"
},
{
"input": "1 6 5",
"output": "Yes"
},
{
"input": "1 4 3",
"output": "Yes"
},
{
"input": "3 2 3",
"output": "Yes"
},
{
"input": "1 7 6",
"output": "Yes"
},
{
"input": "2 3 9871",
"output": "Yes"
},
{
"input": "10 5 5",
"output": "Yes"
},
{
"input": "10 8 2",
"output": "No"
}
] | 1,456,507,499
| 599
|
Python 3
|
OK
|
TESTS
| 134
| 77
| 0
|
import os
import math
import time
[a,b,c]=[int(x) for x in input().split(' ')]
dp = [False]*10010
dp[0]=True
for i in range(10010):
if dp[i]:
if i+a < 10010:
dp[i+a]=True
if i+b < 10010:
dp[i+b]=True
if dp[c]:
print('Yes')
else:
print('No')
|
Title: Ebony and Ivory
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
Dante is engaged in a fight with "The Savior". Before he can fight it with his sword, he needs to break its shields. He has two guns, Ebony and Ivory, each of them is able to perform any non-negative number of shots.
For every bullet that hits the shield, Ebony deals *a* units of damage while Ivory deals *b* units of damage. In order to break the shield Dante has to deal exactly *c* units of damage. Find out if this is possible.
Input Specification:
The first line of the input contains three integers *a*, *b*, *c* (1<=≤<=*a*,<=*b*<=≤<=100,<=1<=≤<=*c*<=≤<=10<=000) — the number of units of damage dealt by Ebony gun and Ivory gun, and the total number of damage required to break the shield, respectively.
Output Specification:
Print "Yes" (without quotes) if Dante can deal exactly *c* damage to the shield and "No" (without quotes) otherwise.
Demo Input:
['4 6 15\n', '3 2 7\n', '6 11 6\n']
Demo Output:
['No\n', 'Yes\n', 'Yes\n']
Note:
In the second sample, Dante can fire 1 bullet from Ebony and 2 from Ivory to deal exactly 1·3 + 2·2 = 7 damage. In the third sample, Dante can fire 1 bullet from ebony and no bullets from ivory to do 1·6 + 0·11 = 6 damage.
|
```python
import os
import math
import time
[a,b,c]=[int(x) for x in input().split(' ')]
dp = [False]*10010
dp[0]=True
for i in range(10010):
if dp[i]:
if i+a < 10010:
dp[i+a]=True
if i+b < 10010:
dp[i+b]=True
if dp[c]:
print('Yes')
else:
print('No')
```
| 3
|
|
0
|
none
|
none
|
none
| 0
|
[
"none"
] | null | null |
Vasya the programmer lives in the middle of the Programming subway branch. He has two girlfriends: Dasha and Masha, who live at the different ends of the branch, each one is unaware of the other one's existence.
When Vasya has some free time, he goes to one of his girlfriends. He descends into the subway at some time, waits the first train to come and rides on it to the end of the branch to the corresponding girl. However, the trains run with different frequencies: a train goes to Dasha's direction every *a* minutes, but a train goes to Masha's direction every *b* minutes. If two trains approach at the same time, Vasya goes toward the direction with the lower frequency of going trains, that is, to the girl, to whose directions the trains go less frequently (see the note to the third sample).
We know that the trains begin to go simultaneously before Vasya appears. That is the train schedule is such that there exists a moment of time when the two trains arrive simultaneously.
Help Vasya count to which girlfriend he will go more often.
|
The first line contains two integers *a* and *b* (*a*<=≠<=*b*,<=1<=≤<=*a*,<=*b*<=≤<=106).
|
Print "Dasha" if Vasya will go to Dasha more frequently, "Masha" if he will go to Masha more frequently, or "Equal" if he will go to both girlfriends with the same frequency.
|
[
"3 7\n",
"5 3\n",
"2 3\n"
] |
[
"Dasha\n",
"Masha\n",
"Equal\n"
] |
Let's take a look at the third sample. Let the trains start to go at the zero moment of time. It is clear that the moments of the trains' arrival will be periodic with period 6. That's why it is enough to show that if Vasya descends to the subway at a moment of time inside the interval (0, 6], he will go to both girls equally often.
If he descends to the subway at a moment of time from 0 to 2, he leaves for Dasha on the train that arrives by the second minute.
If he descends to the subway at a moment of time from 2 to 3, he leaves for Masha on the train that arrives by the third minute.
If he descends to the subway at a moment of time from 3 to 4, he leaves for Dasha on the train that arrives by the fourth minute.
If he descends to the subway at a moment of time from 4 to 6, he waits for both trains to arrive by the sixth minute and goes to Masha as trains go less often in Masha's direction.
In sum Masha and Dasha get equal time — three minutes for each one, thus, Vasya will go to both girlfriends equally often.
| 0
|
[
{
"input": "3 7",
"output": "Dasha"
},
{
"input": "5 3",
"output": "Masha"
},
{
"input": "2 3",
"output": "Equal"
},
{
"input": "31 88",
"output": "Dasha"
},
{
"input": "8 75",
"output": "Dasha"
},
{
"input": "32 99",
"output": "Dasha"
},
{
"input": "77 4",
"output": "Masha"
},
{
"input": "27 1",
"output": "Masha"
},
{
"input": "84 11",
"output": "Masha"
},
{
"input": "4 6",
"output": "Equal"
},
{
"input": "52 53",
"output": "Equal"
},
{
"input": "397 568",
"output": "Dasha"
},
{
"input": "22 332",
"output": "Dasha"
},
{
"input": "419 430",
"output": "Dasha"
},
{
"input": "638 619",
"output": "Masha"
},
{
"input": "393 325",
"output": "Masha"
},
{
"input": "876 218",
"output": "Masha"
},
{
"input": "552 551",
"output": "Equal"
},
{
"input": "906 912",
"output": "Equal"
},
{
"input": "999 996",
"output": "Equal"
},
{
"input": "652 653",
"output": "Equal"
},
{
"input": "3647 7698",
"output": "Dasha"
},
{
"input": "2661 8975",
"output": "Dasha"
},
{
"input": "251 9731",
"output": "Dasha"
},
{
"input": "9886 8671",
"output": "Masha"
},
{
"input": "8545 7312",
"output": "Masha"
},
{
"input": "4982 2927",
"output": "Masha"
},
{
"input": "7660 7658",
"output": "Equal"
},
{
"input": "9846 9844",
"output": "Equal"
},
{
"input": "9632 9640",
"output": "Equal"
},
{
"input": "5036 5037",
"output": "Equal"
},
{
"input": "64854 77725",
"output": "Dasha"
},
{
"input": "4965 85708",
"output": "Dasha"
},
{
"input": "20393 86640",
"output": "Dasha"
},
{
"input": "99207 30728",
"output": "Masha"
},
{
"input": "77545 13842",
"output": "Masha"
},
{
"input": "30362 10712",
"output": "Masha"
},
{
"input": "51291 51292",
"output": "Equal"
},
{
"input": "55381 55382",
"output": "Equal"
},
{
"input": "91560 91550",
"output": "Equal"
},
{
"input": "99087 99090",
"output": "Equal"
},
{
"input": "983794 986389",
"output": "Dasha"
},
{
"input": "779183 786727",
"output": "Dasha"
},
{
"input": "450766 610961",
"output": "Dasha"
},
{
"input": "664690 630787",
"output": "Masha"
},
{
"input": "461363 256765",
"output": "Masha"
},
{
"input": "638067 409048",
"output": "Masha"
},
{
"input": "929061 929052",
"output": "Equal"
},
{
"input": "996219 996216",
"output": "Equal"
},
{
"input": "716249 716248",
"output": "Equal"
},
{
"input": "782250 782252",
"output": "Equal"
},
{
"input": "1 2",
"output": "Equal"
},
{
"input": "2 1",
"output": "Equal"
},
{
"input": "999999 1000000",
"output": "Equal"
},
{
"input": "999997 1000000",
"output": "Dasha"
},
{
"input": "1000000 999993",
"output": "Masha"
},
{
"input": "999983 999979",
"output": "Masha"
}
] | 1,580,251,219
| 2,147,483,647
|
PyPy 3
|
WRONG_ANSWER
|
TESTS
| 9
| 280
| 0
|
a, b = map(int, input().split())
en = a * b
dasha, masha = en // a, en // b
if a > b:
dasha += 1
else:
masha += 1
if masha > dasha:
print('Masha')
elif masha < dasha:
print('Dasha')
else:
print('Equal')
|
Title: none
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
Vasya the programmer lives in the middle of the Programming subway branch. He has two girlfriends: Dasha and Masha, who live at the different ends of the branch, each one is unaware of the other one's existence.
When Vasya has some free time, he goes to one of his girlfriends. He descends into the subway at some time, waits the first train to come and rides on it to the end of the branch to the corresponding girl. However, the trains run with different frequencies: a train goes to Dasha's direction every *a* minutes, but a train goes to Masha's direction every *b* minutes. If two trains approach at the same time, Vasya goes toward the direction with the lower frequency of going trains, that is, to the girl, to whose directions the trains go less frequently (see the note to the third sample).
We know that the trains begin to go simultaneously before Vasya appears. That is the train schedule is such that there exists a moment of time when the two trains arrive simultaneously.
Help Vasya count to which girlfriend he will go more often.
Input Specification:
The first line contains two integers *a* and *b* (*a*<=≠<=*b*,<=1<=≤<=*a*,<=*b*<=≤<=106).
Output Specification:
Print "Dasha" if Vasya will go to Dasha more frequently, "Masha" if he will go to Masha more frequently, or "Equal" if he will go to both girlfriends with the same frequency.
Demo Input:
['3 7\n', '5 3\n', '2 3\n']
Demo Output:
['Dasha\n', 'Masha\n', 'Equal\n']
Note:
Let's take a look at the third sample. Let the trains start to go at the zero moment of time. It is clear that the moments of the trains' arrival will be periodic with period 6. That's why it is enough to show that if Vasya descends to the subway at a moment of time inside the interval (0, 6], he will go to both girls equally often.
If he descends to the subway at a moment of time from 0 to 2, he leaves for Dasha on the train that arrives by the second minute.
If he descends to the subway at a moment of time from 2 to 3, he leaves for Masha on the train that arrives by the third minute.
If he descends to the subway at a moment of time from 3 to 4, he leaves for Dasha on the train that arrives by the fourth minute.
If he descends to the subway at a moment of time from 4 to 6, he waits for both trains to arrive by the sixth minute and goes to Masha as trains go less often in Masha's direction.
In sum Masha and Dasha get equal time — three minutes for each one, thus, Vasya will go to both girlfriends equally often.
|
```python
a, b = map(int, input().split())
en = a * b
dasha, masha = en // a, en // b
if a > b:
dasha += 1
else:
masha += 1
if masha > dasha:
print('Masha')
elif masha < dasha:
print('Dasha')
else:
print('Equal')
```
| 0
|
|
709
|
A
|
Juicer
|
PROGRAMMING
| 900
|
[
"implementation"
] | null | null |
Kolya is going to make fresh orange juice. He has *n* oranges of sizes *a*1,<=*a*2,<=...,<=*a**n*. Kolya will put them in the juicer in the fixed order, starting with orange of size *a*1, then orange of size *a*2 and so on. To be put in the juicer the orange must have size not exceeding *b*, so if Kolya sees an orange that is strictly greater he throws it away and continues with the next one.
The juicer has a special section to collect waste. It overflows if Kolya squeezes oranges of the total size strictly greater than *d*. When it happens Kolya empties the waste section (even if there are no more oranges) and continues to squeeze the juice. How many times will he have to empty the waste section?
|
The first line of the input contains three integers *n*, *b* and *d* (1<=≤<=*n*<=≤<=100<=000, 1<=≤<=*b*<=≤<=*d*<=≤<=1<=000<=000) — the number of oranges, the maximum size of the orange that fits in the juicer and the value *d*, which determines the condition when the waste section should be emptied.
The second line contains *n* integers *a*1,<=*a*2,<=...,<=*a**n* (1<=≤<=*a**i*<=≤<=1<=000<=000) — sizes of the oranges listed in the order Kolya is going to try to put them in the juicer.
|
Print one integer — the number of times Kolya will have to empty the waste section.
|
[
"2 7 10\n5 6\n",
"1 5 10\n7\n",
"3 10 10\n5 7 7\n",
"1 1 1\n1\n"
] |
[
"1\n",
"0\n",
"1\n",
"0\n"
] |
In the first sample, Kolya will squeeze the juice from two oranges and empty the waste section afterwards.
In the second sample, the orange won't fit in the juicer so Kolya will have no juice at all.
| 500
|
[
{
"input": "2 7 10\n5 6",
"output": "1"
},
{
"input": "1 5 10\n7",
"output": "0"
},
{
"input": "3 10 10\n5 7 7",
"output": "1"
},
{
"input": "1 1 1\n1",
"output": "0"
},
{
"input": "2 951637 951638\n44069 951637",
"output": "1"
},
{
"input": "50 100 129\n55 130 91 19 116 3 63 52 104 76 75 27 151 99 149 147 39 148 84 9 132 49 40 112 124 141 144 93 36 32 146 74 48 38 150 55 94 32 107 69 77 81 33 57 62 98 78 127 154 126",
"output": "12"
},
{
"input": "100 1000 1083\n992 616 818 359 609 783 263 989 501 929 362 394 919 1081 870 830 1097 975 62 346 531 367 323 457 707 360 949 334 867 116 478 417 961 963 1029 114 867 1008 988 916 983 1077 959 942 572 961 579 318 721 337 488 717 111 70 416 685 987 130 353 107 61 191 827 849 106 815 211 953 111 398 889 860 801 71 375 320 395 1059 116 222 931 444 582 74 677 655 88 173 686 491 661 186 114 832 615 814 791 464 517 850",
"output": "36"
},
{
"input": "2 6 8\n2 1",
"output": "0"
},
{
"input": "5 15 16\n7 11 5 12 8",
"output": "2"
},
{
"input": "15 759966 759967\n890397 182209 878577 548548 759966 812923 759966 860479 200595 381358 299175 339368 759966 907668 69574",
"output": "4"
},
{
"input": "5 234613 716125\n642626 494941 234613 234613 234613",
"output": "0"
},
{
"input": "50 48547 567054\n529808 597004 242355 559114 78865 537318 631455 733020 655072 645093 309010 855034 306058 625046 524574 834944 27330 664392 443637 821584 338013 490702 289520 675471 885846 258814 134220 571301 84875 94132 200425 928833 375166 521232 317961 175315 947093 89971 322071 174033 48547 998535 954205 704114 943163 438900 48547 538422 48547 48547",
"output": "0"
},
{
"input": "5 10 20\n10 10 10 10 1",
"output": "1"
},
{
"input": "5 10 11\n10 10 10 10 1",
"output": "2"
},
{
"input": "3 10 10\n4 3 3",
"output": "0"
},
{
"input": "3 5 5\n5 5 5",
"output": "1"
},
{
"input": "3 4 14\n5 5 5",
"output": "0"
},
{
"input": "2 7 10\n1234 1234",
"output": "0"
},
{
"input": "1 5 6\n10",
"output": "0"
},
{
"input": "3 4 6\n1 2 3",
"output": "0"
},
{
"input": "5 10 12\n13 13 13 13 13",
"output": "0"
},
{
"input": "3 4 5\n5 7 9",
"output": "0"
},
{
"input": "3 10 100\n5 5 5",
"output": "0"
},
{
"input": "5 1 2\n2 2 2 2 2",
"output": "0"
},
{
"input": "5 5 5\n5 5 5 5 5",
"output": "2"
},
{
"input": "2 2 5\n5 5",
"output": "0"
},
{
"input": "3 1 4\n2 2 2",
"output": "0"
}
] | 1,645,838,923
| 2,147,483,647
|
Python 3
|
WRONG_ANSWER
|
TESTS
| 5
| 93
| 5,836,800
|
three_ints = [int(i) for i in input().split(' ')]
n,b,d = three_ints
sizes = input().split(' ')
empty = juicer = 0
for i in sizes:
current_size = int(i)
if current_size != b:
juicer += current_size
if juicer >= d:
juicer = 0
empty +=1
print(empty)
|
Title: Juicer
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
Kolya is going to make fresh orange juice. He has *n* oranges of sizes *a*1,<=*a*2,<=...,<=*a**n*. Kolya will put them in the juicer in the fixed order, starting with orange of size *a*1, then orange of size *a*2 and so on. To be put in the juicer the orange must have size not exceeding *b*, so if Kolya sees an orange that is strictly greater he throws it away and continues with the next one.
The juicer has a special section to collect waste. It overflows if Kolya squeezes oranges of the total size strictly greater than *d*. When it happens Kolya empties the waste section (even if there are no more oranges) and continues to squeeze the juice. How many times will he have to empty the waste section?
Input Specification:
The first line of the input contains three integers *n*, *b* and *d* (1<=≤<=*n*<=≤<=100<=000, 1<=≤<=*b*<=≤<=*d*<=≤<=1<=000<=000) — the number of oranges, the maximum size of the orange that fits in the juicer and the value *d*, which determines the condition when the waste section should be emptied.
The second line contains *n* integers *a*1,<=*a*2,<=...,<=*a**n* (1<=≤<=*a**i*<=≤<=1<=000<=000) — sizes of the oranges listed in the order Kolya is going to try to put them in the juicer.
Output Specification:
Print one integer — the number of times Kolya will have to empty the waste section.
Demo Input:
['2 7 10\n5 6\n', '1 5 10\n7\n', '3 10 10\n5 7 7\n', '1 1 1\n1\n']
Demo Output:
['1\n', '0\n', '1\n', '0\n']
Note:
In the first sample, Kolya will squeeze the juice from two oranges and empty the waste section afterwards.
In the second sample, the orange won't fit in the juicer so Kolya will have no juice at all.
|
```python
three_ints = [int(i) for i in input().split(' ')]
n,b,d = three_ints
sizes = input().split(' ')
empty = juicer = 0
for i in sizes:
current_size = int(i)
if current_size != b:
juicer += current_size
if juicer >= d:
juicer = 0
empty +=1
print(empty)
```
| 0
|
|
18
|
C
|
Stripe
|
PROGRAMMING
| 1,200
|
[
"data structures",
"implementation"
] |
C. Stripe
|
2
|
64
|
Once Bob took a paper stripe of *n* squares (the height of the stripe is 1 square). In each square he wrote an integer number, possibly negative. He became interested in how many ways exist to cut this stripe into two pieces so that the sum of numbers from one piece is equal to the sum of numbers from the other piece, and each piece contains positive integer amount of squares. Would you help Bob solve this problem?
|
The first input line contains integer *n* (1<=≤<=*n*<=≤<=105) — amount of squares in the stripe. The second line contains *n* space-separated numbers — they are the numbers written in the squares of the stripe. These numbers are integer and do not exceed 10000 in absolute value.
|
Output the amount of ways to cut the stripe into two non-empty pieces so that the sum of numbers from one piece is equal to the sum of numbers from the other piece. Don't forget that it's allowed to cut the stripe along the squares' borders only.
|
[
"9\n1 5 -6 7 9 -16 0 -2 2\n",
"3\n1 1 1\n",
"2\n0 0\n"
] |
[
"3\n",
"0\n",
"1\n"
] |
none
| 0
|
[
{
"input": "9\n1 5 -6 7 9 -16 0 -2 2",
"output": "3"
},
{
"input": "3\n1 1 1",
"output": "0"
},
{
"input": "2\n0 0",
"output": "1"
},
{
"input": "4\n100 1 10 111",
"output": "1"
},
{
"input": "10\n0 4 -3 0 -2 2 -3 -3 2 5",
"output": "3"
},
{
"input": "10\n0 -1 2 2 -1 1 0 0 0 2",
"output": "0"
},
{
"input": "10\n-1 -1 1 -1 0 1 0 1 1 1",
"output": "1"
},
{
"input": "10\n0 0 0 0 0 0 0 0 0 0",
"output": "9"
},
{
"input": "50\n-4 -3 3 4 -1 0 2 -4 -3 -4 1 4 3 0 4 1 0 -3 4 -3 -2 2 2 1 0 -4 -4 -5 3 2 -1 4 5 -3 -3 4 4 -5 2 -3 4 -5 2 5 -4 4 1 -2 -4 3",
"output": "3"
},
{
"input": "15\n0 4 0 3 -1 4 -2 -2 -4 -4 3 2 4 -1 -3",
"output": "0"
},
{
"input": "10\n3 -1 -3 -1 3 -2 0 3 1 -2",
"output": "0"
},
{
"input": "100\n-4 2 4 4 1 3 -3 -3 2 1 -4 0 0 2 3 -1 -4 -3 4 -2 -3 -3 -3 -1 -2 -3 -1 -4 0 4 0 -1 4 0 -4 -4 4 -4 -2 1 -4 1 -3 -2 3 -4 4 0 -1 3 -1 4 -1 4 -1 3 -3 -3 -2 -2 4 -3 -3 4 -3 -2 -1 0 -2 4 0 -3 -1 -2 -3 1 -4 1 -3 -3 -3 -2 -3 0 1 -2 -2 -4 -3 -1 2 3 -1 1 1 0 3 -3 -1 -2",
"output": "1"
},
{
"input": "100\n-2 -1 1 0 -2 -1 2 2 0 0 2 1 0 2 0 2 1 0 -1 -1 -1 0 -2 -1 2 -1 -2 2 -2 2 -2 -2 2 1 1 1 -2 2 0 0 2 -1 2 2 2 0 -1 -1 -1 1 -2 2 2 2 -2 0 0 -2 0 -2 -2 0 -1 -1 -2 -1 1 2 -2 -1 1 -2 -1 0 -2 2 2 -1 -2 2 0 0 0 1 0 1 2 1 -2 -2 -1 -1 -2 -2 -2 -1 2 2 2 -2",
"output": "6"
},
{
"input": "100\n2 7 6 0 8 -2 0 1 8 -1 7 -4 -1 1 0 3 4 -4 3 7 8 -4 -6 6 4 -2 -5 7 4 6 1 6 3 8 -2 6 -6 -3 0 -1 -7 -8 -2 5 8 6 -2 -2 -5 -4 -7 -3 -5 -3 -3 -1 5 8 4 0 -7 -6 8 -4 -1 7 2 6 6 4 -5 -4 -5 -2 2 -2 -7 -1 5 -8 -6 -2 -5 4 2 8 -6 7 -8 -1 -5 8 6 -3 -1 7 -1 2 -8 -8",
"output": "0"
},
{
"input": "1\n0",
"output": "0"
},
{
"input": "1\n10000",
"output": "0"
},
{
"input": "1\n-10000",
"output": "0"
}
] | 1,639,337,371
| 2,147,483,647
|
PyPy 3-64
|
OK
|
TESTS
| 45
| 310
| 10,137,600
|
def main_function():
n = int(input())
a = [int(i) for i in input().split(" ")]
sums_a = []
current_sum = 0
for i in a:
current_sum += i
sums_a.append(current_sum)
total_sum = sum(a)
counter = 0
for i in sums_a[:-1]:
if i == total_sum - i:
counter += 1
print(counter)
main_function()
|
Title: Stripe
Time Limit: 2 seconds
Memory Limit: 64 megabytes
Problem Description:
Once Bob took a paper stripe of *n* squares (the height of the stripe is 1 square). In each square he wrote an integer number, possibly negative. He became interested in how many ways exist to cut this stripe into two pieces so that the sum of numbers from one piece is equal to the sum of numbers from the other piece, and each piece contains positive integer amount of squares. Would you help Bob solve this problem?
Input Specification:
The first input line contains integer *n* (1<=≤<=*n*<=≤<=105) — amount of squares in the stripe. The second line contains *n* space-separated numbers — they are the numbers written in the squares of the stripe. These numbers are integer and do not exceed 10000 in absolute value.
Output Specification:
Output the amount of ways to cut the stripe into two non-empty pieces so that the sum of numbers from one piece is equal to the sum of numbers from the other piece. Don't forget that it's allowed to cut the stripe along the squares' borders only.
Demo Input:
['9\n1 5 -6 7 9 -16 0 -2 2\n', '3\n1 1 1\n', '2\n0 0\n']
Demo Output:
['3\n', '0\n', '1\n']
Note:
none
|
```python
def main_function():
n = int(input())
a = [int(i) for i in input().split(" ")]
sums_a = []
current_sum = 0
for i in a:
current_sum += i
sums_a.append(current_sum)
total_sum = sum(a)
counter = 0
for i in sums_a[:-1]:
if i == total_sum - i:
counter += 1
print(counter)
main_function()
```
| 3.846969
|
667
|
B
|
Coat of Anticubism
|
PROGRAMMING
| 1,100
|
[
"constructive algorithms",
"geometry"
] | null | null |
As some of you know, cubism is a trend in art, where the problem of constructing volumetrical shape on a plane with a combination of three-dimensional geometric shapes comes to the fore.
A famous sculptor Cicasso, whose self-portrait you can contemplate, hates cubism. He is more impressed by the idea to transmit two-dimensional objects through three-dimensional objects by using his magnificent sculptures. And his new project is connected with this. Cicasso wants to make a coat for the haters of anticubism. To do this, he wants to create a sculpture depicting a well-known geometric primitive — convex polygon.
Cicasso prepared for this a few blanks, which are rods with integer lengths, and now he wants to bring them together. The *i*-th rod is a segment of length *l**i*.
The sculptor plans to make a convex polygon with a nonzero area, using all rods he has as its sides. Each rod should be used as a side to its full length. It is forbidden to cut, break or bend rods. However, two sides may form a straight angle .
Cicasso knows that it is impossible to make a convex polygon with a nonzero area out of the rods with the lengths which he had chosen. Cicasso does not want to leave the unused rods, so the sculptor decides to make another rod-blank with an integer length so that his problem is solvable. Of course, he wants to make it as short as possible, because the materials are expensive, and it is improper deed to spend money for nothing.
Help sculptor!
|
The first line contains an integer *n* (3<=≤<=*n*<=≤<=105) — a number of rod-blanks.
The second line contains *n* integers *l**i* (1<=≤<=*l**i*<=≤<=109) — lengths of rods, which Cicasso already has. It is guaranteed that it is impossible to make a polygon with *n* vertices and nonzero area using the rods Cicasso already has.
|
Print the only integer *z* — the minimum length of the rod, so that after adding it it can be possible to construct convex polygon with (*n*<=+<=1) vertices and nonzero area from all of the rods.
|
[
"3\n1 2 1\n",
"5\n20 4 3 2 1\n"
] |
[
"1\n",
"11\n"
] |
In the first example triangle with sides {1 + 1 = 2, 2, 1} can be formed from a set of lengths {1, 1, 1, 2}.
In the second example you can make a triangle with lengths {20, 11, 4 + 3 + 2 + 1 = 10}.
| 1,000
|
[
{
"input": "3\n1 2 1",
"output": "1"
},
{
"input": "5\n20 4 3 2 1",
"output": "11"
},
{
"input": "7\n77486105 317474713 89523018 332007362 7897847 949616701 54820086",
"output": "70407571"
},
{
"input": "14\n245638694 2941428 4673577 12468 991349408 44735727 14046308 60637707 81525 104620306 88059371 53742651 8489205 3528194",
"output": "360142248"
},
{
"input": "19\n479740 7703374 196076708 180202968 579604 17429 16916 11989886 30832424 6384983 8937497 431 62955 48167457 898566333 29534955 1485775 848444 372839845",
"output": "2404943"
},
{
"input": "35\n306260 278 43508628 54350745 222255 842526 39010821 10627 14916465 3059978 61449 503809 2820 1609513 196062 65695 270869 15079297 2885093 189306 4682268 422616382 1642346 82340 6 2 975464673 1388191 70110665 272855 253160079 1849635 7837751 274070 10394",
"output": "34445194"
},
{
"input": "53\n1014364 40727 75774 243769 314 406417 5272684 14138 10640282 64955 2763 5667043 2121887 204672692 567643 60183 5183 11361359 2792918 199155 174809 16182540 21 392221 19434423 9140891 159733 15438 67903 3816799 616 429181 30392293 413992581 10847741 20771 16366654 1163 414283 156163 55907108 310278 95949614 185865 976650886 197610 87 61264 4586815 107764 26390852 331828 541",
"output": "25390787"
},
{
"input": "3\n1 1 1000000000",
"output": "999999999"
},
{
"input": "10\n1 2 3 4 5 6 7 8 9 1000000000",
"output": "999999956"
},
{
"input": "5\n100000000 100000000 100000000 100000000 500000000",
"output": "100000001"
},
{
"input": "3\n300000000 300000000 600000000",
"output": "1"
},
{
"input": "5\n10 4 3 2 1",
"output": "1"
},
{
"input": "3\n800000000 1 1",
"output": "799999999"
},
{
"input": "3\n1000000000 1 1",
"output": "999999999"
}
] | 1,595,612,480
| 2,147,483,647
|
PyPy 3
|
OK
|
TESTS
| 51
| 171
| 27,340,800
|
n=int(input())
a=list(map(int,input().split()))
a.sort()
x=a[-1]
y=sum(a)-x
print(x-y+1)
|
Title: Coat of Anticubism
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
As some of you know, cubism is a trend in art, where the problem of constructing volumetrical shape on a plane with a combination of three-dimensional geometric shapes comes to the fore.
A famous sculptor Cicasso, whose self-portrait you can contemplate, hates cubism. He is more impressed by the idea to transmit two-dimensional objects through three-dimensional objects by using his magnificent sculptures. And his new project is connected with this. Cicasso wants to make a coat for the haters of anticubism. To do this, he wants to create a sculpture depicting a well-known geometric primitive — convex polygon.
Cicasso prepared for this a few blanks, which are rods with integer lengths, and now he wants to bring them together. The *i*-th rod is a segment of length *l**i*.
The sculptor plans to make a convex polygon with a nonzero area, using all rods he has as its sides. Each rod should be used as a side to its full length. It is forbidden to cut, break or bend rods. However, two sides may form a straight angle .
Cicasso knows that it is impossible to make a convex polygon with a nonzero area out of the rods with the lengths which he had chosen. Cicasso does not want to leave the unused rods, so the sculptor decides to make another rod-blank with an integer length so that his problem is solvable. Of course, he wants to make it as short as possible, because the materials are expensive, and it is improper deed to spend money for nothing.
Help sculptor!
Input Specification:
The first line contains an integer *n* (3<=≤<=*n*<=≤<=105) — a number of rod-blanks.
The second line contains *n* integers *l**i* (1<=≤<=*l**i*<=≤<=109) — lengths of rods, which Cicasso already has. It is guaranteed that it is impossible to make a polygon with *n* vertices and nonzero area using the rods Cicasso already has.
Output Specification:
Print the only integer *z* — the minimum length of the rod, so that after adding it it can be possible to construct convex polygon with (*n*<=+<=1) vertices and nonzero area from all of the rods.
Demo Input:
['3\n1 2 1\n', '5\n20 4 3 2 1\n']
Demo Output:
['1\n', '11\n']
Note:
In the first example triangle with sides {1 + 1 = 2, 2, 1} can be formed from a set of lengths {1, 1, 1, 2}.
In the second example you can make a triangle with lengths {20, 11, 4 + 3 + 2 + 1 = 10}.
|
```python
n=int(input())
a=list(map(int,input().split()))
a.sort()
x=a[-1]
y=sum(a)-x
print(x-y+1)
```
| 3
|
|
284
|
B
|
Cows and Poker Game
|
PROGRAMMING
| 1,000
|
[
"brute force",
"implementation"
] | null | null |
There are *n* cows playing poker at a table. For the current betting phase, each player's status is either "ALLIN", "IN", or "FOLDED", and does not change throughout the phase. To increase the suspense, a player whose current status is not "FOLDED" may show his/her hand to the table. However, so as not to affect any betting decisions, he/she may only do so if all other players have a status of either "ALLIN" or "FOLDED". The player's own status may be either "ALLIN" or "IN".
Find the number of cows that can currently show their hands without affecting any betting decisions.
|
The first line contains a single integer, *n* (2<=≤<=*n*<=≤<=2·105). The second line contains *n* characters, each either "A", "I", or "F". The *i*-th character is "A" if the *i*-th player's status is "ALLIN", "I" if the *i*-th player's status is "IN", or "F" if the *i*-th player's status is "FOLDED".
|
The first line should contain a single integer denoting the number of players that can currently show their hands.
|
[
"6\nAFFAAA\n",
"3\nAFI\n"
] |
[
"4\n",
"1\n"
] |
In the first sample, cows 1, 4, 5, and 6 can show their hands. In the second sample, only cow 3 can show her hand.
| 1,000
|
[
{
"input": "6\nAFFAAA",
"output": "4"
},
{
"input": "3\nAFI",
"output": "1"
},
{
"input": "3\nFFF",
"output": "0"
},
{
"input": "3\nFIF",
"output": "1"
},
{
"input": "3\nAAA",
"output": "3"
},
{
"input": "3\nIII",
"output": "0"
},
{
"input": "3\nIIA",
"output": "0"
},
{
"input": "3\nAFF",
"output": "1"
},
{
"input": "5\nFAFFF",
"output": "1"
},
{
"input": "3\nIAA",
"output": "1"
},
{
"input": "3\nIIF",
"output": "0"
},
{
"input": "2\nFA",
"output": "1"
},
{
"input": "2\nFF",
"output": "0"
},
{
"input": "2\nIF",
"output": "1"
},
{
"input": "5\nAAAAI",
"output": "1"
},
{
"input": "5\nIIIIF",
"output": "0"
},
{
"input": "10\nAAAAAAAAAA",
"output": "10"
},
{
"input": "100\nAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAA",
"output": "100"
},
{
"input": "5\nFAIAF",
"output": "1"
},
{
"input": "5\nAIAIF",
"output": "0"
},
{
"input": "5\nFAAII",
"output": "0"
},
{
"input": "5\nAIFFF",
"output": "1"
},
{
"input": "5\nAFAFA",
"output": "3"
},
{
"input": "2\nFA",
"output": "1"
},
{
"input": "8\nAFFFFIAF",
"output": "1"
},
{
"input": "8\nIAAIFFFI",
"output": "0"
},
{
"input": "5\nIIIII",
"output": "0"
}
] | 1,609,051,284
| 2,147,483,647
|
Python 3
|
RUNTIME_ERROR
|
TESTS
| 0
| 154
| 0
|
n=input()
s=raw_input()
print [s.count('A'),1,0][min(s.count('I'),2)]
|
Title: Cows and Poker Game
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
There are *n* cows playing poker at a table. For the current betting phase, each player's status is either "ALLIN", "IN", or "FOLDED", and does not change throughout the phase. To increase the suspense, a player whose current status is not "FOLDED" may show his/her hand to the table. However, so as not to affect any betting decisions, he/she may only do so if all other players have a status of either "ALLIN" or "FOLDED". The player's own status may be either "ALLIN" or "IN".
Find the number of cows that can currently show their hands without affecting any betting decisions.
Input Specification:
The first line contains a single integer, *n* (2<=≤<=*n*<=≤<=2·105). The second line contains *n* characters, each either "A", "I", or "F". The *i*-th character is "A" if the *i*-th player's status is "ALLIN", "I" if the *i*-th player's status is "IN", or "F" if the *i*-th player's status is "FOLDED".
Output Specification:
The first line should contain a single integer denoting the number of players that can currently show their hands.
Demo Input:
['6\nAFFAAA\n', '3\nAFI\n']
Demo Output:
['4\n', '1\n']
Note:
In the first sample, cows 1, 4, 5, and 6 can show their hands. In the second sample, only cow 3 can show her hand.
|
```python
n=input()
s=raw_input()
print [s.count('A'),1,0][min(s.count('I'),2)]
```
| -1
|
|
454
|
B
|
Little Pony and Sort by Shift
|
PROGRAMMING
| 1,200
|
[
"implementation"
] | null | null |
One day, Twilight Sparkle is interested in how to sort a sequence of integers *a*1,<=*a*2,<=...,<=*a**n* in non-decreasing order. Being a young unicorn, the only operation she can perform is a unit shift. That is, she can move the last element of the sequence to its beginning:
Help Twilight Sparkle to calculate: what is the minimum number of operations that she needs to sort the sequence?
|
The first line contains an integer *n* (2<=≤<=*n*<=≤<=105). The second line contains *n* integer numbers *a*1,<=*a*2,<=...,<=*a**n* (1<=≤<=*a**i*<=≤<=105).
|
If it's impossible to sort the sequence output -1. Otherwise output the minimum number of operations Twilight Sparkle needs to sort it.
|
[
"2\n2 1\n",
"3\n1 3 2\n",
"2\n1 2\n"
] |
[
"1\n",
"-1\n",
"0\n"
] |
none
| 1,000
|
[
{
"input": "2\n2 1",
"output": "1"
},
{
"input": "3\n1 3 2",
"output": "-1"
},
{
"input": "2\n1 2",
"output": "0"
},
{
"input": "6\n3 4 5 6 3 2",
"output": "-1"
},
{
"input": "3\n1 2 1",
"output": "1"
},
{
"input": "5\n1 1 2 1 1",
"output": "2"
},
{
"input": "4\n5 4 5 4",
"output": "-1"
},
{
"input": "7\n3 4 5 5 5 1 2",
"output": "2"
},
{
"input": "5\n2 2 1 2 2",
"output": "3"
},
{
"input": "5\n5 4 1 2 3",
"output": "-1"
},
{
"input": "4\n6 1 2 7",
"output": "-1"
},
{
"input": "5\n4 5 6 2 3",
"output": "2"
},
{
"input": "2\n1 1",
"output": "0"
},
{
"input": "4\n1 2 2 1",
"output": "1"
},
{
"input": "9\n4 5 6 7 1 2 3 4 10",
"output": "-1"
},
{
"input": "7\n2 3 4 1 2 3 4",
"output": "-1"
},
{
"input": "6\n1 2 1 2 1 2",
"output": "-1"
},
{
"input": "3\n3 2 1",
"output": "-1"
},
{
"input": "4\n1 4 4 1",
"output": "1"
},
{
"input": "5\n1 2 1 1 1",
"output": "3"
},
{
"input": "5\n4 6 7 3 5",
"output": "-1"
},
{
"input": "4\n2 3 1 4",
"output": "-1"
},
{
"input": "5\n5 4 3 2 1",
"output": "-1"
},
{
"input": "4\n2 4 1 4",
"output": "-1"
},
{
"input": "6\n4 5 6 1 2 7",
"output": "-1"
},
{
"input": "6\n1 2 3 1 1 1",
"output": "3"
},
{
"input": "5\n1 3 3 3 1",
"output": "1"
},
{
"input": "6\n5 6 7 5 5 5",
"output": "3"
},
{
"input": "5\n3 4 2 1 2",
"output": "-1"
},
{
"input": "3\n3 4 2",
"output": "1"
},
{
"input": "6\n1 1 2 2 1 1",
"output": "2"
},
{
"input": "4\n2 3 4 2",
"output": "1"
},
{
"input": "5\n3 5 7 7 3",
"output": "1"
},
{
"input": "4\n1 1 4 1",
"output": "1"
},
{
"input": "7\n1 5 6 1 1 1 1",
"output": "4"
},
{
"input": "5\n7 8 6 7 8",
"output": "-1"
},
{
"input": "4\n2 4 1 3",
"output": "-1"
}
] | 1,591,116,451
| 2,147,483,647
|
PyPy 3
|
OK
|
TESTS
| 56
| 186
| 9,625,600
|
n = int(input())
l = list(map(int, input().rstrip().split(" ")))
if n == 1:
print(0)
elif n == 2:
if l[0] > l[1]:
print(1)
else:
print(0)
else:
going_down = False
la = l[0]
c = 0
for i in range(1,n):
if not going_down:
if l[i]<l[i-1]:
going_down=True
if l[i]>la:
c = -1
break
else:
c=c+1
else:
if l[i]<l[i-1] or l[i]>la:
c = -1
break
c+=1
print(c)
|
Title: Little Pony and Sort by Shift
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
One day, Twilight Sparkle is interested in how to sort a sequence of integers *a*1,<=*a*2,<=...,<=*a**n* in non-decreasing order. Being a young unicorn, the only operation she can perform is a unit shift. That is, she can move the last element of the sequence to its beginning:
Help Twilight Sparkle to calculate: what is the minimum number of operations that she needs to sort the sequence?
Input Specification:
The first line contains an integer *n* (2<=≤<=*n*<=≤<=105). The second line contains *n* integer numbers *a*1,<=*a*2,<=...,<=*a**n* (1<=≤<=*a**i*<=≤<=105).
Output Specification:
If it's impossible to sort the sequence output -1. Otherwise output the minimum number of operations Twilight Sparkle needs to sort it.
Demo Input:
['2\n2 1\n', '3\n1 3 2\n', '2\n1 2\n']
Demo Output:
['1\n', '-1\n', '0\n']
Note:
none
|
```python
n = int(input())
l = list(map(int, input().rstrip().split(" ")))
if n == 1:
print(0)
elif n == 2:
if l[0] > l[1]:
print(1)
else:
print(0)
else:
going_down = False
la = l[0]
c = 0
for i in range(1,n):
if not going_down:
if l[i]<l[i-1]:
going_down=True
if l[i]>la:
c = -1
break
else:
c=c+1
else:
if l[i]<l[i-1] or l[i]>la:
c = -1
break
c+=1
print(c)
```
| 3
|
|
515
|
B
|
Drazil and His Happy Friends
|
PROGRAMMING
| 1,300
|
[
"brute force",
"dsu",
"meet-in-the-middle",
"number theory"
] | null | null |
Drazil has many friends. Some of them are happy and some of them are unhappy. Drazil wants to make all his friends become happy. So he invented the following plan.
There are *n* boys and *m* girls among his friends. Let's number them from 0 to *n*<=-<=1 and 0 to *m*<=-<=1 separately. In *i*-th day, Drazil invites -th boy and -th girl to have dinner together (as Drazil is programmer, *i* starts from 0). If one of those two people is happy, the other one will also become happy. Otherwise, those two people remain in their states. Once a person becomes happy (or if he/she was happy originally), he stays happy forever.
Drazil wants to know whether he can use this plan to make all his friends become happy at some moment.
|
The first line contains two integer *n* and *m* (1<=≤<=*n*,<=*m*<=≤<=100).
The second line contains integer *b* (0<=≤<=*b*<=≤<=*n*), denoting the number of happy boys among friends of Drazil, and then follow *b* distinct integers *x*1,<=*x*2,<=...,<=*x**b* (0<=≤<=*x**i*<=<<=*n*), denoting the list of indices of happy boys.
The third line conatins integer *g* (0<=≤<=*g*<=≤<=*m*), denoting the number of happy girls among friends of Drazil, and then follow *g* distinct integers *y*1,<=*y*2,<=... ,<=*y**g* (0<=≤<=*y**j*<=<<=*m*), denoting the list of indices of happy girls.
It is guaranteed that there is at least one person that is unhappy among his friends.
|
If Drazil can make all his friends become happy by this plan, print "Yes". Otherwise, print "No".
|
[
"2 3\n0\n1 0\n",
"2 4\n1 0\n1 2\n",
"2 3\n1 0\n1 1\n"
] |
[
"Yes\n",
"No\n",
"Yes\n"
] |
By <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/169ade208e6eb4f9263c57aaff716529d59c3288.png" style="max-width: 100.0%;max-height: 100.0%;"/> we define the remainder of integer division of *i* by *k*.
In first sample case:
- On the 0-th day, Drazil invites 0-th boy and 0-th girl. Because 0-th girl is happy at the beginning, 0-th boy become happy at this day. - On the 1-st day, Drazil invites 1-st boy and 1-st girl. They are both unhappy, so nothing changes at this day. - On the 2-nd day, Drazil invites 0-th boy and 2-nd girl. Because 0-th boy is already happy he makes 2-nd girl become happy at this day. - On the 3-rd day, Drazil invites 1-st boy and 0-th girl. 0-th girl is happy, so she makes 1-st boy happy. - On the 4-th day, Drazil invites 0-th boy and 1-st girl. 0-th boy is happy, so he makes the 1-st girl happy. So, all friends become happy at this moment.
| 1,000
|
[
{
"input": "2 3\n0\n1 0",
"output": "Yes"
},
{
"input": "2 4\n1 0\n1 2",
"output": "No"
},
{
"input": "2 3\n1 0\n1 1",
"output": "Yes"
},
{
"input": "16 88\n6 5 14 2 0 12 7\n30 21 64 35 79 74 39 63 44 81 73 0 27 33 69 12 86 46 20 25 55 52 7 58 23 5 60 32 41 50 82",
"output": "Yes"
},
{
"input": "52 91\n13 26 1 3 43 17 19 32 46 33 48 23 37 50\n25 78 26 1 40 2 67 42 4 56 30 70 84 32 20 85 59 8 86 34 73 23 10 88 24 11",
"output": "No"
},
{
"input": "26 52\n8 0 14 16 17 7 9 10 11\n15 39 15 2 41 42 30 17 18 31 6 21 35 48 50 51",
"output": "No"
},
{
"input": "50 50\n0\n0",
"output": "No"
},
{
"input": "27 31\n4 25 5 19 20\n26 5 28 17 2 1 0 26 23 12 29 6 4 25 19 15 13 20 24 8 27 22 30 3 10 9 7",
"output": "Yes"
},
{
"input": "55 79\n5 51 27 36 45 53\n30 15 28 0 5 38 3 34 30 35 1 32 12 27 42 39 69 33 10 63 16 29 76 19 60 70 67 31 78 68 45",
"output": "Yes"
},
{
"input": "79 23\n35 31 62 14 9 46 18 68 69 42 13 50 77 23 76 5 53 40 16 32 74 54 38 25 45 39 26 37 66 78 3 48 10 17 56 59\n13 16 0 8 6 18 14 21 11 20 4 15 13 22",
"output": "Yes"
},
{
"input": "7 72\n1 4\n3 49 32 28",
"output": "Yes"
},
{
"input": "100 50\n31 52 54 8 60 61 62 63 64 16 19 21 73 25 76 77 79 30 81 32 33 34 37 88 39 40 91 42 94 95 96 98\n18 0 1 3 5 6 7 9 15 18 20 22 24 28 35 36 43 47 49",
"output": "No"
},
{
"input": "98 49\n33 0 51 52 6 57 10 12 63 15 16 19 20 21 72 73 74 76 77 78 30 31 81 33 83 37 38 39 40 92 44 45 95 97\n15 4 5 7 9 11 13 17 18 22 26 35 36 41 42 47",
"output": "No"
},
{
"input": "50 50\n14 7 8 12 16 18 22 23 24 28 30 35 40 46 49\n35 0 1 2 3 4 5 6 9 10 11 13 14 15 17 19 20 21 25 26 27 29 31 32 33 34 36 37 38 39 41 43 44 45 47 48",
"output": "No"
},
{
"input": "30 44\n3 8 26 28\n6 2 30 38 26 8 6",
"output": "No"
},
{
"input": "69 72\n18 58 46 52 43 1 55 16 7 4 38 68 14 32 53 41 29 2 59\n21 22 43 55 13 70 4 7 31 10 23 56 44 62 17 50 53 5 41 11 65 32",
"output": "No"
},
{
"input": "76 28\n10 24 13 61 45 29 57 41 21 37 11\n2 12 9",
"output": "No"
},
{
"input": "65 75\n15 25 60 12 62 37 22 47 52 3 63 58 13 14 49 34\n18 70 10 2 52 22 47 72 57 38 48 13 73 3 19 4 74 49 34",
"output": "No"
},
{
"input": "6 54\n1 5\n14 13 49 31 37 44 2 15 51 52 22 28 10 35 47",
"output": "No"
},
{
"input": "96 36\n34 84 24 0 48 85 13 61 37 62 38 86 75 3 16 64 40 28 76 53 5 17 42 6 7 91 67 55 68 92 57 11 71 35 59\n9 1 14 15 17 18 30 6 8 35",
"output": "No"
},
{
"input": "40 40\n23 0 2 3 4 5 7 11 15 16 17 18 19 22 25 28 29 30 31 32 34 35 36 37\n16 1 6 8 9 10 12 13 14 20 21 23 24 26 27 38 39",
"output": "No"
},
{
"input": "66 66\n24 2 35 3 36 4 5 10 45 14 48 18 51 19 21 55 22 23 24 25 26 63 31 65 32\n21 0 1 37 6 40 7 8 42 45 13 15 16 50 53 23 24 60 28 62 63 31",
"output": "No"
},
{
"input": "20 20\n9 0 3 4 6 7 8 10 12 13\n10 1 2 5 9 11 14 15 16 18 19",
"output": "No"
},
{
"input": "75 30\n18 46 47 32 33 3 34 35 21 51 7 9 54 39 72 42 59 29 14\n8 0 17 5 6 23 26 27 13",
"output": "No"
},
{
"input": "100 50\n30 50 54 7 8 59 60 61 62 63 64 15 16 18 19 20 22 73 27 79 83 86 87 89 42 93 94 45 46 97 98\n20 1 2 3 5 6 17 21 24 25 26 28 30 31 32 34 35 38 40 41 49",
"output": "Yes"
},
{
"input": "98 98\n43 49 1 51 3 53 4 55 56 8 9 10 60 11 12 61 64 16 65 17 19 20 21 72 24 74 25 77 78 31 34 35 36 37 87 88 89 42 92 43 44 94 46 96\n34 50 2 52 5 54 9 62 63 15 18 68 70 22 72 75 26 27 77 30 81 82 83 35 36 37 87 88 89 90 41 93 95 96 48",
"output": "No"
},
{
"input": "100 100\n45 50 1 4 5 55 7 8 10 60 61 62 63 14 65 66 17 18 20 21 22 24 25 27 78 28 29 30 31 82 83 33 84 36 37 38 39 40 41 42 44 45 46 48 98 49\n34 50 1 2 52 3 54 56 7 9 59 61 14 16 67 18 69 22 73 24 76 79 81 82 84 35 36 38 39 90 43 44 45 47 49",
"output": "No"
},
{
"input": "76 72\n29 4 64 68 20 8 12 50 42 46 0 70 11 37 75 47 45 29 17 19 73 9 41 31 35 67 65 39 51 55\n25 60 32 48 42 8 6 9 7 31 19 25 5 33 51 61 67 55 49 27 29 53 39 65 35 13",
"output": "Yes"
},
{
"input": "39 87\n16 18 15 30 33 21 9 3 31 16 10 34 20 35 8 26 23\n36 33 75 81 24 42 54 78 39 57 60 30 36 63 4 76 25 1 40 73 22 58 49 85 31 74 59 20 44 83 65 23 41 71 47 14 35",
"output": "Yes"
},
{
"input": "36 100\n10 0 32 4 5 33 30 18 14 35 7\n29 60 32 20 4 16 69 5 38 50 46 74 94 18 82 2 66 22 42 55 51 91 67 75 35 95 43 79 3 27",
"output": "Yes"
},
{
"input": "90 25\n26 55 30 35 20 15 26 6 1 41 81 76 46 57 17 12 67 77 27 47 62 8 43 63 3 48 19\n9 10 16 21 7 17 12 13 19 9",
"output": "Yes"
},
{
"input": "66 66\n26 0 54 6 37 43 13 25 38 2 32 56 20 50 39 27 51 9 64 4 16 17 65 11 5 47 23\n15 6 24 43 49 25 20 14 63 27 3 58 52 53 11 41",
"output": "No"
},
{
"input": "24 60\n4 0 2 19 23\n15 12 24 49 2 14 3 52 28 5 6 19 32 33 34 35",
"output": "Yes"
},
{
"input": "80 40\n27 0 41 44 45 6 47 8 10 52 13 14 16 17 18 59 21 62 23 64 26 68 29 32 75 37 78 39\n13 2 3 9 11 15 20 25 27 30 31 33 34 36",
"output": "Yes"
},
{
"input": "66 99\n23 33 35 36 38 8 10 44 11 45 46 47 50 19 54 22 55 23 58 59 27 61 30 65\n32 33 67 69 4 70 38 6 39 7 74 42 9 43 12 13 14 15 81 82 84 85 20 87 89 90 24 58 59 27 95 97 31",
"output": "Yes"
},
{
"input": "100 40\n25 61 42 2 3 25 46 66 68 69 49 9 10 50 91 72 92 33 73 53 14 15 55 96 36 39\n12 0 22 3 23 4 6 27 11 35 37 38 39",
"output": "Yes"
},
{
"input": "90 30\n27 15 16 2 32 78 49 64 65 50 6 66 21 22 82 23 39 84 85 10 86 56 27 87 13 58 44 74\n7 19 4 20 24 25 12 27",
"output": "No"
},
{
"input": "75 75\n33 30 74 57 23 19 42 71 11 44 29 58 43 48 61 63 13 27 50 17 18 70 64 39 12 32 36 10 40 51 49 1 54 73\n8 43 23 0 7 63 47 74 28",
"output": "No"
},
{
"input": "98 98\n23 6 81 90 28 38 51 23 69 13 95 15 16 88 58 10 26 42 44 54 92 27 45 39\n18 20 70 38 82 72 61 37 78 74 23 15 56 59 35 93 64 28 57",
"output": "No"
},
{
"input": "75 75\n19 48 3 5 67 23 8 70 45 63 36 38 56 15 10 37 52 11 9 27\n21 13 9 45 28 59 36 30 43 5 38 27 40 50 17 41 71 8 51 63 1 33",
"output": "No"
},
{
"input": "3 20\n0\n1 19",
"output": "Yes"
},
{
"input": "41 2\n1 33\n0",
"output": "Yes"
},
{
"input": "50 49\n1 49\n0",
"output": "Yes"
},
{
"input": "3 50\n0\n1 49",
"output": "Yes"
},
{
"input": "100 100\n50 0 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 16 17 18 19 20 21 22 23 24 25 26 27 28 29 30 31 32 33 34 35 36 37 38 39 40 41 42 43 44 45 46 47 48 49\n49 50 51 52 53 54 55 56 57 58 59 60 61 62 63 64 65 66 67 68 69 70 71 72 73 74 75 76 77 78 79 80 81 82 83 84 85 86 87 88 89 90 91 92 93 94 95 96 97 98",
"output": "No"
},
{
"input": "100 100\n50 0 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 16 17 18 19 20 21 22 23 24 25 26 27 28 29 30 31 32 33 34 35 36 37 38 39 40 41 42 43 44 45 46 47 48 49\n50 50 51 52 53 54 55 56 57 58 59 60 61 62 63 64 65 66 67 68 69 70 71 72 73 74 75 76 77 78 79 80 81 82 83 84 85 86 87 88 89 90 91 92 93 94 95 96 97 98 99",
"output": "Yes"
},
{
"input": "91 98\n78 0 1 2 3 4 5 7 8 9 10 11 12 14 15 16 17 18 19 21 22 23 24 25 26 28 29 30 31 32 33 35 36 37 38 39 40 42 43 44 45 46 47 49 50 51 52 53 54 56 57 58 59 60 61 63 64 65 66 67 68 70 71 72 73 74 75 77 78 79 80 81 82 84 85 86 87 88 89\n84 0 1 2 3 4 5 7 8 9 10 11 12 14 15 16 17 18 19 21 22 23 24 25 26 28 29 30 31 32 33 35 36 37 38 39 40 42 43 44 45 46 47 49 50 51 52 53 54 56 57 58 59 60 61 63 64 65 66 67 68 70 71 72 73 74 75 77 78 79 80 81 82 84 85 86 87 88 89 91 92 93 94 95 96",
"output": "No"
},
{
"input": "99 84\n66 0 2 3 5 6 8 9 11 12 14 15 17 18 20 21 23 24 26 27 29 30 32 33 35 36 38 39 41 42 44 45 47 48 50 51 53 54 56 57 59 60 62 63 65 66 68 69 71 72 74 75 77 78 80 81 83 84 86 87 89 90 92 93 95 96 98\n56 0 2 3 5 6 8 9 11 12 14 15 17 18 20 21 23 24 26 27 29 30 32 33 35 36 38 39 41 42 44 45 47 48 50 51 53 54 56 57 59 60 62 63 65 66 68 69 71 72 74 75 77 78 80 81 83",
"output": "No"
},
{
"input": "75 90\n60 0 2 3 4 5 7 8 9 10 12 13 14 15 17 18 19 20 22 23 24 25 27 28 29 30 32 33 34 35 37 38 39 40 42 43 44 45 47 48 49 50 52 53 54 55 57 58 59 60 62 63 64 65 67 68 69 70 72 73 74\n72 0 2 3 4 5 7 8 9 10 12 13 14 15 17 18 19 20 22 23 24 25 27 28 29 30 32 33 34 35 37 38 39 40 42 43 44 45 47 48 49 50 52 53 54 55 57 58 59 60 62 63 64 65 67 68 69 70 72 73 74 75 77 78 79 80 82 83 84 85 87 88 89",
"output": "No"
},
{
"input": "5 7\n1 0\n1 0",
"output": "Yes"
},
{
"input": "100 1\n1 99\n0",
"output": "Yes"
},
{
"input": "4 1\n1 3\n0",
"output": "Yes"
},
{
"input": "4 5\n3 0 1 3\n4 0 1 3 4",
"output": "Yes"
},
{
"input": "100 99\n1 99\n0",
"output": "Yes"
},
{
"input": "2 3\n1 0\n2 0 2",
"output": "Yes"
}
] | 1,628,915,356
| 2,147,483,647
|
Python 3
|
WRONG_ANSWER
|
TESTS
| 3
| 77
| 6,963,200
|
from sys import stdin
n, m = [int(x) for x in stdin.readline().split()]
b = [0] * 101
g = [0] * 101
k = [int(x) for x in stdin.readline().split()]
for i in range(1, len(k)):
b[k[i]] = 1
k = [int(x) for x in stdin.readline().split()]
for i in range(1, len((k))):
b[k[i]] = 1
for i in range(101):
b1 = i % n
g1 = i % m
if b[b1] or g[g1]:
b[b1], g[g1] = 1 , 1
res = True
for i in range(n):
if b[i] == 1:
continue
res = False
break
if res:
for i in range(m):
if g[i] == 1:
continue
print(i)
res = False
break
if res:
print("Yes")
else:
print('No')
|
Title: Drazil and His Happy Friends
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
Drazil has many friends. Some of them are happy and some of them are unhappy. Drazil wants to make all his friends become happy. So he invented the following plan.
There are *n* boys and *m* girls among his friends. Let's number them from 0 to *n*<=-<=1 and 0 to *m*<=-<=1 separately. In *i*-th day, Drazil invites -th boy and -th girl to have dinner together (as Drazil is programmer, *i* starts from 0). If one of those two people is happy, the other one will also become happy. Otherwise, those two people remain in their states. Once a person becomes happy (or if he/she was happy originally), he stays happy forever.
Drazil wants to know whether he can use this plan to make all his friends become happy at some moment.
Input Specification:
The first line contains two integer *n* and *m* (1<=≤<=*n*,<=*m*<=≤<=100).
The second line contains integer *b* (0<=≤<=*b*<=≤<=*n*), denoting the number of happy boys among friends of Drazil, and then follow *b* distinct integers *x*1,<=*x*2,<=...,<=*x**b* (0<=≤<=*x**i*<=<<=*n*), denoting the list of indices of happy boys.
The third line conatins integer *g* (0<=≤<=*g*<=≤<=*m*), denoting the number of happy girls among friends of Drazil, and then follow *g* distinct integers *y*1,<=*y*2,<=... ,<=*y**g* (0<=≤<=*y**j*<=<<=*m*), denoting the list of indices of happy girls.
It is guaranteed that there is at least one person that is unhappy among his friends.
Output Specification:
If Drazil can make all his friends become happy by this plan, print "Yes". Otherwise, print "No".
Demo Input:
['2 3\n0\n1 0\n', '2 4\n1 0\n1 2\n', '2 3\n1 0\n1 1\n']
Demo Output:
['Yes\n', 'No\n', 'Yes\n']
Note:
By <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/169ade208e6eb4f9263c57aaff716529d59c3288.png" style="max-width: 100.0%;max-height: 100.0%;"/> we define the remainder of integer division of *i* by *k*.
In first sample case:
- On the 0-th day, Drazil invites 0-th boy and 0-th girl. Because 0-th girl is happy at the beginning, 0-th boy become happy at this day. - On the 1-st day, Drazil invites 1-st boy and 1-st girl. They are both unhappy, so nothing changes at this day. - On the 2-nd day, Drazil invites 0-th boy and 2-nd girl. Because 0-th boy is already happy he makes 2-nd girl become happy at this day. - On the 3-rd day, Drazil invites 1-st boy and 0-th girl. 0-th girl is happy, so she makes 1-st boy happy. - On the 4-th day, Drazil invites 0-th boy and 1-st girl. 0-th boy is happy, so he makes the 1-st girl happy. So, all friends become happy at this moment.
|
```python
from sys import stdin
n, m = [int(x) for x in stdin.readline().split()]
b = [0] * 101
g = [0] * 101
k = [int(x) for x in stdin.readline().split()]
for i in range(1, len(k)):
b[k[i]] = 1
k = [int(x) for x in stdin.readline().split()]
for i in range(1, len((k))):
b[k[i]] = 1
for i in range(101):
b1 = i % n
g1 = i % m
if b[b1] or g[g1]:
b[b1], g[g1] = 1 , 1
res = True
for i in range(n):
if b[i] == 1:
continue
res = False
break
if res:
for i in range(m):
if g[i] == 1:
continue
print(i)
res = False
break
if res:
print("Yes")
else:
print('No')
```
| 0
|
|
846
|
A
|
Curriculum Vitae
|
PROGRAMMING
| 1,500
|
[
"brute force",
"implementation"
] | null | null |
Hideo Kojima has just quit his job at Konami. Now he is going to find a new place to work. Despite being such a well-known person, he still needs a CV to apply for a job.
During all his career Hideo has produced *n* games. Some of them were successful, some were not. Hideo wants to remove several of them (possibly zero) from his CV to make a better impression on employers. As a result there should be no unsuccessful game which comes right after successful one in his CV.
More formally, you are given an array *s*1,<=*s*2,<=...,<=*s**n* of zeros and ones. Zero corresponds to an unsuccessful game, one — to a successful one. Games are given in order they were produced, and Hideo can't swap these values. He should remove some elements from this array in such a way that no zero comes right after one.
Besides that, Hideo still wants to mention as much games in his CV as possible. Help this genius of a man determine the maximum number of games he can leave in his CV.
|
The first line contains one integer number *n* (1<=≤<=*n*<=≤<=100).
The second line contains *n* space-separated integer numbers *s*1,<=*s*2,<=...,<=*s**n* (0<=≤<=*s**i*<=≤<=1). 0 corresponds to an unsuccessful game, 1 — to a successful one.
|
Print one integer — the maximum number of games Hideo can leave in his CV so that no unsuccessful game comes after a successful one.
|
[
"4\n1 1 0 1\n",
"6\n0 1 0 0 1 0\n",
"1\n0\n"
] |
[
"3\n",
"4\n",
"1\n"
] |
none
| 0
|
[
{
"input": "4\n1 1 0 1",
"output": "3"
},
{
"input": "6\n0 1 0 0 1 0",
"output": "4"
},
{
"input": "1\n0",
"output": "1"
},
{
"input": "100\n0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0",
"output": "100"
},
{
"input": "100\n0 0 1 1 1 0 0 0 0 1 0 0 0 0 0 0 0 0 0 0 0 0 0 0 1 0 0 0 1 0 0 0 0 0 0 1 1 1 0 0 1 0 1 0 0 0 1 1 0 0 0 0 0 1 1 0 1 0 0 0 0 0 0 0 0 0 1 0 0 0 0 0 0 1 0 0 0 0 0 0 0 0 0 1 0 0 1 0 0 0 0 0 0 0 0 0 0 0 0 0",
"output": "80"
},
{
"input": "1\n1",
"output": "1"
},
{
"input": "100\n1 1 0 1 1 0 0 0 0 1 0 1 1 1 0 1 1 1 1 0 1 1 1 1 1 1 0 1 1 0 0 1 1 1 0 0 0 1 0 0 1 0 1 1 0 1 0 0 1 0 0 1 1 0 0 1 0 0 1 1 0 1 0 1 0 0 0 0 0 1 0 0 0 0 0 0 1 1 0 0 0 1 1 1 0 1 1 0 1 1 1 0 0 1 1 0 0 0 0 1",
"output": "53"
},
{
"input": "100\n1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1",
"output": "100"
},
{
"input": "3\n1 0 0",
"output": "2"
},
{
"input": "10\n1 1 0 0 0 1 1 0 0 0",
"output": "6"
},
{
"input": "90\n1 0 0 1 1 0 0 1 0 0 0 0 1 1 1 0 1 0 1 0 0 0 0 1 0 0 1 1 1 1 1 0 0 0 1 0 1 0 1 0 1 0 0 1 0 1 0 1 0 1 0 1 0 0 1 0 0 1 1 0 0 1 0 0 0 0 1 1 1 0 1 0 1 0 0 0 0 1 0 0 1 1 1 1 1 0 0 0 1 0",
"output": "52"
},
{
"input": "78\n0 0 1 0 1 0 1 1 0 0 0 1 1 1 1 0 0 0 1 0 1 1 1 0 1 0 0 0 1 0 0 0 1 1 1 1 1 1 1 1 1 1 1 0 1 0 0 0 0 0 1 0 0 1 0 1 0 1 0 1 0 1 1 1 0 0 1 0 0 0 0 1 0 1 0 0 1 0",
"output": "42"
},
{
"input": "4\n1 0 0 1",
"output": "3"
},
{
"input": "2\n0 1",
"output": "2"
},
{
"input": "5\n0 1 0 0 1",
"output": "4"
},
{
"input": "3\n1 0 1",
"output": "2"
},
{
"input": "3\n1 1 0",
"output": "2"
},
{
"input": "16\n1 1 1 1 1 0 0 0 0 0 1 0 1 0 0 1",
"output": "9"
}
] | 1,504,625,632
| 1,732
|
Python 3
|
OK
|
TESTS
| 18
| 62
| 0
|
n = int(input())
def it():
A = list(map(int,input().split()))
A.reverse()
c1 = 0
r0 = len(A) - sum(A)
yield r0
for a in A:
if a == 1:
c1 += 1
yield c1 + r0
else:
r0 -= 1
print(max(it()))
|
Title: Curriculum Vitae
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
Hideo Kojima has just quit his job at Konami. Now he is going to find a new place to work. Despite being such a well-known person, he still needs a CV to apply for a job.
During all his career Hideo has produced *n* games. Some of them were successful, some were not. Hideo wants to remove several of them (possibly zero) from his CV to make a better impression on employers. As a result there should be no unsuccessful game which comes right after successful one in his CV.
More formally, you are given an array *s*1,<=*s*2,<=...,<=*s**n* of zeros and ones. Zero corresponds to an unsuccessful game, one — to a successful one. Games are given in order they were produced, and Hideo can't swap these values. He should remove some elements from this array in such a way that no zero comes right after one.
Besides that, Hideo still wants to mention as much games in his CV as possible. Help this genius of a man determine the maximum number of games he can leave in his CV.
Input Specification:
The first line contains one integer number *n* (1<=≤<=*n*<=≤<=100).
The second line contains *n* space-separated integer numbers *s*1,<=*s*2,<=...,<=*s**n* (0<=≤<=*s**i*<=≤<=1). 0 corresponds to an unsuccessful game, 1 — to a successful one.
Output Specification:
Print one integer — the maximum number of games Hideo can leave in his CV so that no unsuccessful game comes after a successful one.
Demo Input:
['4\n1 1 0 1\n', '6\n0 1 0 0 1 0\n', '1\n0\n']
Demo Output:
['3\n', '4\n', '1\n']
Note:
none
|
```python
n = int(input())
def it():
A = list(map(int,input().split()))
A.reverse()
c1 = 0
r0 = len(A) - sum(A)
yield r0
for a in A:
if a == 1:
c1 += 1
yield c1 + r0
else:
r0 -= 1
print(max(it()))
```
| 3
|
|
670
|
D1
|
Magic Powder - 1
|
PROGRAMMING
| 1,400
|
[
"binary search",
"brute force",
"implementation"
] | null | null |
This problem is given in two versions that differ only by constraints. If you can solve this problem in large constraints, then you can just write a single solution to the both versions. If you find the problem too difficult in large constraints, you can write solution to the simplified version only.
Waking up in the morning, Apollinaria decided to bake cookies. To bake one cookie, she needs *n* ingredients, and for each ingredient she knows the value *a**i* — how many grams of this ingredient one needs to bake a cookie. To prepare one cookie Apollinaria needs to use all *n* ingredients.
Apollinaria has *b**i* gram of the *i*-th ingredient. Also she has *k* grams of a magic powder. Each gram of magic powder can be turned to exactly 1 gram of any of the *n* ingredients and can be used for baking cookies.
Your task is to determine the maximum number of cookies, which Apollinaria is able to bake using the ingredients that she has and the magic powder.
|
The first line of the input contains two positive integers *n* and *k* (1<=≤<=*n*,<=*k*<=≤<=1000) — the number of ingredients and the number of grams of the magic powder.
The second line contains the sequence *a*1,<=*a*2,<=...,<=*a**n* (1<=≤<=*a**i*<=≤<=1000), where the *i*-th number is equal to the number of grams of the *i*-th ingredient, needed to bake one cookie.
The third line contains the sequence *b*1,<=*b*2,<=...,<=*b**n* (1<=≤<=*b**i*<=≤<=1000), where the *i*-th number is equal to the number of grams of the *i*-th ingredient, which Apollinaria has.
|
Print the maximum number of cookies, which Apollinaria will be able to bake using the ingredients that she has and the magic powder.
|
[
"3 1\n2 1 4\n11 3 16\n",
"4 3\n4 3 5 6\n11 12 14 20\n"
] |
[
"4\n",
"3\n"
] |
In the first sample it is profitably for Apollinaria to make the existing 1 gram of her magic powder to ingredient with the index 2, then Apollinaria will be able to bake 4 cookies.
In the second sample Apollinaria should turn 1 gram of magic powder to ingredient with the index 1 and 1 gram of magic powder to ingredient with the index 3. Then Apollinaria will be able to bake 3 cookies. The remaining 1 gram of the magic powder can be left, because it can't be used to increase the answer.
| 1,000
|
[
{
"input": "3 1\n2 1 4\n11 3 16",
"output": "4"
},
{
"input": "4 3\n4 3 5 6\n11 12 14 20",
"output": "3"
},
{
"input": "10 926\n5 6 8 1 2 5 1 8 4 4\n351 739 998 725 953 970 906 691 707 1000",
"output": "137"
},
{
"input": "20 925\n7 3 1 2 1 3 1 3 1 2 3 1 5 8 1 3 7 3 4 2\n837 898 965 807 786 670 626 873 968 745 878 359 760 781 829 882 777 740 907 779",
"output": "150"
},
{
"input": "30 300\n1 4 2 1 2 5 6 4 1 3 2 1 1 1 1 1 2 3 1 3 4 2 2 3 2 2 2 1 1 1\n997 817 767 860 835 809 817 565 630 804 586 953 977 356 905 890 958 916 740 583 902 945 313 956 871 729 976 707 516 788",
"output": "164"
},
{
"input": "40 538\n1 3 3 1 4 1 1 1 1 5 3 3 4 1 4 2 7 1 4 1 1 2 2 1 1 1 1 4 1 4 2 3 3 3 1 3 4 1 3 5\n975 635 795 835 982 965 639 787 688 796 988 779 839 942 491 696 396 995 718 810 796 879 957 783 844 765 968 783 647 214 995 868 318 453 989 889 504 962 945 925",
"output": "104"
},
{
"input": "50 530\n2 3 3 1 1 1 3 4 4 2 4 2 5 1 3 1 2 6 1 1 2 5 3 2 1 5 1 3 3 2 1 1 1 1 2 1 1 2 2 1 4 2 1 3 1 2 1 1 4 2\n959 972 201 990 675 679 972 268 976 886 488 924 795 959 647 994 969 862 898 646 763 797 978 763 995 641 923 856 829 921 934 883 904 986 728 980 1000 775 716 745 833 832 999 651 571 626 827 456 636 795",
"output": "133"
},
{
"input": "60 735\n3 1 4 7 1 7 3 1 1 5 4 7 3 3 3 2 5 3 1 2 3 6 1 1 1 1 1 2 5 3 2 1 3 5 2 1 2 2 2 2 1 3 3 3 6 4 3 5 1 3 2 2 1 3 1 1 1 7 1 2\n596 968 975 493 665 571 598 834 948 941 737 649 923 848 950 907 929 865 227 836 956 796 861 801 746 667 539 807 405 355 501 879 994 890 573 848 597 873 130 985 924 426 999 550 586 924 601 807 994 878 410 817 922 898 982 525 611 685 806 847",
"output": "103"
},
{
"input": "1 1\n1\n1",
"output": "2"
},
{
"input": "70 130\n2 1 2 2 3 3 2 5 2 2 3 3 3 1 1 4 3 5 3 2 1 3 7 1 2 7 5 2 1 6 3 4 1 2 1 1 1 1 3 6 4 2 2 8 2 2 4 1 4 2 1 4 4 3 5 1 1 1 1 1 2 3 1 5 1 3 3 4 2 2\n473 311 758 768 797 572 656 898 991 534 989 702 934 767 777 799 1000 655 806 727 718 948 834 965 832 778 706 861 799 874 745 970 772 967 984 886 835 795 832 837 950 952 475 891 947 952 903 929 689 478 725 945 585 943 771 631 729 887 557 738 824 758 999 786 669 992 918 762 964 941",
"output": "119"
},
{
"input": "80 979\n2 1 1 1 2 1 1 1 3 1 4 4 2 1 1 3 1 1 2 1 4 1 1 2 5 4 8 1 3 6 5 7 2 3 4 1 2 2 6 1 2 2 4 1 1 2 3 2 8 1 1 3 3 4 1 1 2 1 4 4 1 4 3 2 6 5 2 1 4 1 2 3 2 1 3 3 1 2 1 3\n498 976 513 869 917 914 664 656 957 893 981 947 985 693 576 958 987 822 981 718 884 729 295 683 485 998 730 894 731 975 739 854 906 740 987 976 606 689 990 775 522 994 920 893 529 651 989 799 643 215 946 987 297 868 425 810 694 908 736 903 970 751 625 904 955 945 839 777 977 974 905 900 666 680 799 873 565 919 536 686",
"output": "128"
},
{
"input": "1 1000\n1000\n1000",
"output": "2"
},
{
"input": "1 1000\n1\n1000",
"output": "2000"
},
{
"input": "1 1\n4\n6",
"output": "1"
},
{
"input": "1 1\n10\n2",
"output": "0"
},
{
"input": "2 1\n2 2\n1 1",
"output": "0"
},
{
"input": "2 6\n1 3\n6 2",
"output": "2"
}
] | 1,663,072,840
| 2,147,483,647
|
Python 3
|
OK
|
TESTS
| 119
| 77
| 0
|
inp = list(map(int,input().split()))
n = inp[0]
k = inp[1]
a = list(map(int,input().split()))
b = list(map(int,input().split()))
cnt = 0
while(True):
for i in range(n):
if(b[i]>=a[i]):
b[i] -= a[i]
else:
k = k-(a[i]-b[i])
b[i]=0
if(k>=0):
cnt += 1
else:
break
print(cnt)
|
Title: Magic Powder - 1
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
This problem is given in two versions that differ only by constraints. If you can solve this problem in large constraints, then you can just write a single solution to the both versions. If you find the problem too difficult in large constraints, you can write solution to the simplified version only.
Waking up in the morning, Apollinaria decided to bake cookies. To bake one cookie, she needs *n* ingredients, and for each ingredient she knows the value *a**i* — how many grams of this ingredient one needs to bake a cookie. To prepare one cookie Apollinaria needs to use all *n* ingredients.
Apollinaria has *b**i* gram of the *i*-th ingredient. Also she has *k* grams of a magic powder. Each gram of magic powder can be turned to exactly 1 gram of any of the *n* ingredients and can be used for baking cookies.
Your task is to determine the maximum number of cookies, which Apollinaria is able to bake using the ingredients that she has and the magic powder.
Input Specification:
The first line of the input contains two positive integers *n* and *k* (1<=≤<=*n*,<=*k*<=≤<=1000) — the number of ingredients and the number of grams of the magic powder.
The second line contains the sequence *a*1,<=*a*2,<=...,<=*a**n* (1<=≤<=*a**i*<=≤<=1000), where the *i*-th number is equal to the number of grams of the *i*-th ingredient, needed to bake one cookie.
The third line contains the sequence *b*1,<=*b*2,<=...,<=*b**n* (1<=≤<=*b**i*<=≤<=1000), where the *i*-th number is equal to the number of grams of the *i*-th ingredient, which Apollinaria has.
Output Specification:
Print the maximum number of cookies, which Apollinaria will be able to bake using the ingredients that she has and the magic powder.
Demo Input:
['3 1\n2 1 4\n11 3 16\n', '4 3\n4 3 5 6\n11 12 14 20\n']
Demo Output:
['4\n', '3\n']
Note:
In the first sample it is profitably for Apollinaria to make the existing 1 gram of her magic powder to ingredient with the index 2, then Apollinaria will be able to bake 4 cookies.
In the second sample Apollinaria should turn 1 gram of magic powder to ingredient with the index 1 and 1 gram of magic powder to ingredient with the index 3. Then Apollinaria will be able to bake 3 cookies. The remaining 1 gram of the magic powder can be left, because it can't be used to increase the answer.
|
```python
inp = list(map(int,input().split()))
n = inp[0]
k = inp[1]
a = list(map(int,input().split()))
b = list(map(int,input().split()))
cnt = 0
while(True):
for i in range(n):
if(b[i]>=a[i]):
b[i] -= a[i]
else:
k = k-(a[i]-b[i])
b[i]=0
if(k>=0):
cnt += 1
else:
break
print(cnt)
```
| 3
|
|
962
|
A
|
Equator
|
PROGRAMMING
| 1,300
|
[
"implementation"
] | null | null |
Polycarp has created his own training plan to prepare for the programming contests. He will train for $n$ days, all days are numbered from $1$ to $n$, beginning from the first.
On the $i$-th day Polycarp will necessarily solve $a_i$ problems. One evening Polycarp plans to celebrate the equator. He will celebrate it on the first evening of such a day that from the beginning of the training and to this day inclusive he will solve half or more of all the problems.
Determine the index of day when Polycarp will celebrate the equator.
|
The first line contains a single integer $n$ ($1 \le n \le 200\,000$) — the number of days to prepare for the programming contests.
The second line contains a sequence $a_1, a_2, \dots, a_n$ ($1 \le a_i \le 10\,000$), where $a_i$ equals to the number of problems, which Polycarp will solve on the $i$-th day.
|
Print the index of the day when Polycarp will celebrate the equator.
|
[
"4\n1 3 2 1\n",
"6\n2 2 2 2 2 2\n"
] |
[
"2\n",
"3\n"
] |
In the first example Polycarp will celebrate the equator on the evening of the second day, because up to this day (inclusive) he will solve $4$ out of $7$ scheduled problems on four days of the training.
In the second example Polycarp will celebrate the equator on the evening of the third day, because up to this day (inclusive) he will solve $6$ out of $12$ scheduled problems on six days of the training.
| 0
|
[
{
"input": "4\n1 3 2 1",
"output": "2"
},
{
"input": "6\n2 2 2 2 2 2",
"output": "3"
},
{
"input": "1\n10000",
"output": "1"
},
{
"input": "3\n2 1 1",
"output": "1"
},
{
"input": "2\n1 3",
"output": "2"
},
{
"input": "4\n2 1 1 3",
"output": "3"
},
{
"input": "3\n1 1 3",
"output": "3"
},
{
"input": "3\n1 1 1",
"output": "2"
},
{
"input": "2\n1 2",
"output": "2"
},
{
"input": "3\n2 1 2",
"output": "2"
},
{
"input": "5\n1 2 4 3 5",
"output": "4"
},
{
"input": "5\n2 2 2 4 3",
"output": "4"
},
{
"input": "4\n1 2 3 1",
"output": "3"
},
{
"input": "6\n7 3 10 7 3 11",
"output": "4"
},
{
"input": "2\n3 4",
"output": "2"
},
{
"input": "5\n1 1 1 1 1",
"output": "3"
},
{
"input": "4\n1 3 2 3",
"output": "3"
},
{
"input": "2\n2 3",
"output": "2"
},
{
"input": "3\n32 10 23",
"output": "2"
},
{
"input": "7\n1 1 1 1 1 1 1",
"output": "4"
},
{
"input": "3\n1 2 4",
"output": "3"
},
{
"input": "6\n3 3 3 2 4 4",
"output": "4"
},
{
"input": "9\n1 1 1 1 1 1 1 1 1",
"output": "5"
},
{
"input": "5\n1 3 3 1 1",
"output": "3"
},
{
"input": "4\n1 1 1 2",
"output": "3"
},
{
"input": "4\n1 2 1 3",
"output": "3"
},
{
"input": "3\n2 2 1",
"output": "2"
},
{
"input": "4\n2 3 3 3",
"output": "3"
},
{
"input": "4\n3 2 3 3",
"output": "3"
},
{
"input": "4\n2 1 1 1",
"output": "2"
},
{
"input": "3\n2 1 4",
"output": "3"
},
{
"input": "2\n6 7",
"output": "2"
},
{
"input": "4\n3 3 4 3",
"output": "3"
},
{
"input": "4\n1 1 2 5",
"output": "4"
},
{
"input": "4\n1 8 7 3",
"output": "3"
},
{
"input": "6\n2 2 2 2 2 3",
"output": "4"
},
{
"input": "3\n2 2 5",
"output": "3"
},
{
"input": "4\n1 1 2 1",
"output": "3"
},
{
"input": "5\n1 1 2 2 3",
"output": "4"
},
{
"input": "5\n9 5 3 4 8",
"output": "3"
},
{
"input": "3\n3 3 1",
"output": "2"
},
{
"input": "4\n1 2 2 2",
"output": "3"
},
{
"input": "3\n1 3 5",
"output": "3"
},
{
"input": "4\n1 1 3 6",
"output": "4"
},
{
"input": "6\n1 2 1 1 1 1",
"output": "3"
},
{
"input": "3\n3 1 3",
"output": "2"
},
{
"input": "5\n3 4 5 1 2",
"output": "3"
},
{
"input": "11\n1 1 1 1 1 1 1 1 1 1 1",
"output": "6"
},
{
"input": "5\n3 1 2 5 2",
"output": "4"
},
{
"input": "4\n1 1 1 4",
"output": "4"
},
{
"input": "4\n2 6 1 10",
"output": "4"
},
{
"input": "4\n2 2 3 2",
"output": "3"
},
{
"input": "4\n4 2 2 1",
"output": "2"
},
{
"input": "6\n1 1 1 1 1 4",
"output": "5"
},
{
"input": "3\n3 2 2",
"output": "2"
},
{
"input": "6\n1 3 5 1 7 4",
"output": "5"
},
{
"input": "5\n1 2 4 8 16",
"output": "5"
},
{
"input": "5\n1 2 4 4 4",
"output": "4"
},
{
"input": "6\n4 2 1 2 3 1",
"output": "3"
},
{
"input": "4\n3 2 1 5",
"output": "3"
},
{
"input": "1\n1",
"output": "1"
},
{
"input": "3\n2 4 7",
"output": "3"
},
{
"input": "5\n1 1 1 1 3",
"output": "4"
},
{
"input": "3\n3 1 5",
"output": "3"
},
{
"input": "4\n1 2 3 7",
"output": "4"
},
{
"input": "3\n1 4 6",
"output": "3"
},
{
"input": "4\n2 1 2 2",
"output": "3"
},
{
"input": "2\n4 5",
"output": "2"
},
{
"input": "5\n1 2 1 2 1",
"output": "3"
},
{
"input": "3\n2 3 6",
"output": "3"
},
{
"input": "6\n1 1 4 1 1 5",
"output": "4"
},
{
"input": "5\n2 2 2 2 1",
"output": "3"
},
{
"input": "2\n5 6",
"output": "2"
},
{
"input": "4\n2 2 1 4",
"output": "3"
},
{
"input": "5\n2 2 3 4 4",
"output": "4"
},
{
"input": "4\n3 1 1 2",
"output": "2"
},
{
"input": "5\n3 4 1 4 5",
"output": "4"
},
{
"input": "4\n1 3 1 6",
"output": "4"
},
{
"input": "5\n1 1 1 2 2",
"output": "4"
},
{
"input": "4\n1 4 2 4",
"output": "3"
},
{
"input": "10\n1 1 1 1 1 1 1 1 1 8",
"output": "9"
},
{
"input": "4\n1 4 5 1",
"output": "3"
},
{
"input": "5\n1 1 1 1 5",
"output": "5"
},
{
"input": "4\n1 3 4 1",
"output": "3"
},
{
"input": "4\n2 2 2 3",
"output": "3"
},
{
"input": "4\n2 3 2 4",
"output": "3"
},
{
"input": "5\n2 2 1 2 2",
"output": "3"
},
{
"input": "3\n4 3 2",
"output": "2"
},
{
"input": "3\n6 5 2",
"output": "2"
},
{
"input": "69\n1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1",
"output": "35"
},
{
"input": "6\n1 1 1 1 1 2",
"output": "4"
},
{
"input": "5\n1 2 5 4 5",
"output": "4"
},
{
"input": "2\n9 10",
"output": "2"
},
{
"input": "3\n1 1 5",
"output": "3"
},
{
"input": "4\n3 4 3 5",
"output": "3"
},
{
"input": "4\n1 4 3 3",
"output": "3"
},
{
"input": "4\n7 1 3 4",
"output": "2"
},
{
"input": "3\n100 100 1",
"output": "2"
},
{
"input": "4\n5 2 2 2",
"output": "2"
}
] | 1,647,085,925
| 2,147,483,647
|
Python 3
|
OK
|
TESTS
| 106
| 108
| 13,516,800
|
import math
n = int(input())
li = list(map(int,input().split()))
k = math.ceil(sum(li)/2)
s=0
for i in range(n):
s+=li[i]
if(s>=k):
print(i+1)
exit(0)
|
Title: Equator
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
Polycarp has created his own training plan to prepare for the programming contests. He will train for $n$ days, all days are numbered from $1$ to $n$, beginning from the first.
On the $i$-th day Polycarp will necessarily solve $a_i$ problems. One evening Polycarp plans to celebrate the equator. He will celebrate it on the first evening of such a day that from the beginning of the training and to this day inclusive he will solve half or more of all the problems.
Determine the index of day when Polycarp will celebrate the equator.
Input Specification:
The first line contains a single integer $n$ ($1 \le n \le 200\,000$) — the number of days to prepare for the programming contests.
The second line contains a sequence $a_1, a_2, \dots, a_n$ ($1 \le a_i \le 10\,000$), where $a_i$ equals to the number of problems, which Polycarp will solve on the $i$-th day.
Output Specification:
Print the index of the day when Polycarp will celebrate the equator.
Demo Input:
['4\n1 3 2 1\n', '6\n2 2 2 2 2 2\n']
Demo Output:
['2\n', '3\n']
Note:
In the first example Polycarp will celebrate the equator on the evening of the second day, because up to this day (inclusive) he will solve $4$ out of $7$ scheduled problems on four days of the training.
In the second example Polycarp will celebrate the equator on the evening of the third day, because up to this day (inclusive) he will solve $6$ out of $12$ scheduled problems on six days of the training.
|
```python
import math
n = int(input())
li = list(map(int,input().split()))
k = math.ceil(sum(li)/2)
s=0
for i in range(n):
s+=li[i]
if(s>=k):
print(i+1)
exit(0)
```
| 3
|
|
143
|
A
|
Help Vasilisa the Wise 2
|
PROGRAMMING
| 1,000
|
[
"brute force",
"math"
] | null | null |
Vasilisa the Wise from the Kingdom of Far Far Away got a magic box with a secret as a present from her friend Hellawisa the Wise from the Kingdom of A Little Closer. However, Vasilisa the Wise does not know what the box's secret is, since she cannot open it again. She hopes that you will help her one more time with that.
The box's lock looks as follows: it contains 4 identical deepenings for gems as a 2<=×<=2 square, and some integer numbers are written at the lock's edge near the deepenings. The example of a lock is given on the picture below.
The box is accompanied with 9 gems. Their shapes match the deepenings' shapes and each gem contains one number from 1 to 9 (each number is written on exactly one gem). The box will only open after it is decorated with gems correctly: that is, each deepening in the lock should be filled with exactly one gem. Also, the sums of numbers in the square's rows, columns and two diagonals of the square should match the numbers written at the lock's edge. For example, the above lock will open if we fill the deepenings with gems with numbers as is shown on the picture below.
Now Vasilisa the Wise wants to define, given the numbers on the box's lock, which gems she should put in the deepenings to open the box. Help Vasilisa to solve this challenging task.
|
The input contains numbers written on the edges of the lock of the box. The first line contains space-separated integers *r*1 and *r*2 that define the required sums of numbers in the rows of the square. The second line contains space-separated integers *c*1 and *c*2 that define the required sums of numbers in the columns of the square. The third line contains space-separated integers *d*1 and *d*2 that define the required sums of numbers on the main and on the side diagonals of the square (1<=≤<=*r*1,<=*r*2,<=*c*1,<=*c*2,<=*d*1,<=*d*2<=≤<=20). Correspondence between the above 6 variables and places where they are written is shown on the picture below. For more clarifications please look at the second sample test that demonstrates the example given in the problem statement.
|
Print the scheme of decorating the box with stones: two lines containing two space-separated integers from 1 to 9. The numbers should be pairwise different. If there is no solution for the given lock, then print the single number "-1" (without the quotes).
If there are several solutions, output any.
|
[
"3 7\n4 6\n5 5\n",
"11 10\n13 8\n5 16\n",
"1 2\n3 4\n5 6\n",
"10 10\n10 10\n10 10\n"
] |
[
"1 2\n3 4\n",
"4 7\n9 1\n",
"-1\n",
"-1\n"
] |
Pay attention to the last test from the statement: it is impossible to open the box because for that Vasilisa the Wise would need 4 identical gems containing number "5". However, Vasilisa only has one gem with each number from 1 to 9.
| 500
|
[
{
"input": "3 7\n4 6\n5 5",
"output": "1 2\n3 4"
},
{
"input": "11 10\n13 8\n5 16",
"output": "4 7\n9 1"
},
{
"input": "1 2\n3 4\n5 6",
"output": "-1"
},
{
"input": "10 10\n10 10\n10 10",
"output": "-1"
},
{
"input": "5 13\n8 10\n11 7",
"output": "3 2\n5 8"
},
{
"input": "12 17\n10 19\n13 16",
"output": "-1"
},
{
"input": "11 11\n17 5\n12 10",
"output": "9 2\n8 3"
},
{
"input": "12 11\n11 12\n16 7",
"output": "-1"
},
{
"input": "5 9\n7 7\n8 6",
"output": "3 2\n4 5"
},
{
"input": "10 7\n4 13\n11 6",
"output": "-1"
},
{
"input": "18 10\n16 12\n12 16",
"output": "-1"
},
{
"input": "13 6\n10 9\n6 13",
"output": "-1"
},
{
"input": "14 16\n16 14\n18 12",
"output": "-1"
},
{
"input": "16 10\n16 10\n12 14",
"output": "-1"
},
{
"input": "11 9\n12 8\n11 9",
"output": "-1"
},
{
"input": "5 14\n10 9\n10 9",
"output": "-1"
},
{
"input": "2 4\n1 5\n3 3",
"output": "-1"
},
{
"input": "17 16\n14 19\n18 15",
"output": "-1"
},
{
"input": "12 12\n14 10\n16 8",
"output": "9 3\n5 7"
},
{
"input": "15 11\n16 10\n9 17",
"output": "7 8\n9 2"
},
{
"input": "8 10\n9 9\n13 5",
"output": "6 2\n3 7"
},
{
"input": "13 7\n10 10\n5 15",
"output": "4 9\n6 1"
},
{
"input": "14 11\n9 16\n16 9",
"output": "-1"
},
{
"input": "12 8\n14 6\n8 12",
"output": "-1"
},
{
"input": "10 6\n6 10\n4 12",
"output": "-1"
},
{
"input": "10 8\n10 8\n4 14",
"output": "-1"
},
{
"input": "14 13\n9 18\n14 13",
"output": "-1"
},
{
"input": "9 14\n8 15\n8 15",
"output": "-1"
},
{
"input": "3 8\n2 9\n6 5",
"output": "-1"
},
{
"input": "14 17\n18 13\n15 16",
"output": "-1"
},
{
"input": "16 14\n15 15\n17 13",
"output": "9 7\n6 8"
},
{
"input": "14 11\n16 9\n13 12",
"output": "9 5\n7 4"
},
{
"input": "13 10\n11 12\n7 16",
"output": "4 9\n7 3"
},
{
"input": "14 8\n11 11\n13 9",
"output": "8 6\n3 5"
},
{
"input": "12 11\n13 10\n10 13",
"output": "-1"
},
{
"input": "6 5\n2 9\n5 6",
"output": "-1"
},
{
"input": "7 8\n8 7\n12 3",
"output": "-1"
},
{
"input": "7 11\n7 11\n6 12",
"output": "-1"
},
{
"input": "8 5\n11 2\n8 5",
"output": "-1"
},
{
"input": "10 16\n14 12\n14 12",
"output": "-1"
},
{
"input": "7 9\n4 12\n5 11",
"output": "-1"
},
{
"input": "11 13\n19 5\n12 12",
"output": "-1"
},
{
"input": "8 12\n5 15\n11 9",
"output": "2 6\n3 9"
},
{
"input": "16 5\n13 8\n10 11",
"output": "9 7\n4 1"
},
{
"input": "3 14\n8 9\n10 7",
"output": "2 1\n6 8"
},
{
"input": "12 14\n11 15\n9 17",
"output": "3 9\n8 6"
},
{
"input": "13 7\n9 11\n14 6",
"output": "8 5\n1 6"
},
{
"input": "13 8\n15 6\n11 10",
"output": "9 4\n6 2"
},
{
"input": "9 6\n5 10\n3 12",
"output": "1 8\n4 2"
},
{
"input": "12 7\n5 14\n8 11",
"output": "3 9\n2 5"
},
{
"input": "9 12\n3 17\n10 10",
"output": "-1"
},
{
"input": "3 8\n4 6\n5 5",
"output": "-1"
}
] | 1,684,529,580
| 2,147,483,647
|
Python 3
|
WRONG_ANSWER
|
TESTS
| 5
| 62
| 0
|
#Keshika Patwari
#Indian Institute Of Technology, Jodhpur
# 2022
import sys
input=sys.stdin.readline
def exe():
a=-1
b=-1
c=-1
d=-1
x=r1+c2-d1
if(x%2==0):
b=x//2
y=r1+c1-d2
if(y%2==0):
a=y//2
z=r2+c1-d1
if(z%2==0):
c=z//2
w=r2+c2-d2
if(w%2==0):
d=w//2
#print(a,b,c,d)
if(a==-1 or b==-1 or c==-1 or d==-1):
return [-1]
if(a==b or b==c or c==d or a==d or a==c or b==d):
return [-1]
print(a,end=' ')
print(b)
return [c,d]
r1,r2=map(int,input().split())
c1,c2=map(int,input().split())
d1,d2=map(int,input().split())
print(*exe())
|
Title: Help Vasilisa the Wise 2
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
Vasilisa the Wise from the Kingdom of Far Far Away got a magic box with a secret as a present from her friend Hellawisa the Wise from the Kingdom of A Little Closer. However, Vasilisa the Wise does not know what the box's secret is, since she cannot open it again. She hopes that you will help her one more time with that.
The box's lock looks as follows: it contains 4 identical deepenings for gems as a 2<=×<=2 square, and some integer numbers are written at the lock's edge near the deepenings. The example of a lock is given on the picture below.
The box is accompanied with 9 gems. Their shapes match the deepenings' shapes and each gem contains one number from 1 to 9 (each number is written on exactly one gem). The box will only open after it is decorated with gems correctly: that is, each deepening in the lock should be filled with exactly one gem. Also, the sums of numbers in the square's rows, columns and two diagonals of the square should match the numbers written at the lock's edge. For example, the above lock will open if we fill the deepenings with gems with numbers as is shown on the picture below.
Now Vasilisa the Wise wants to define, given the numbers on the box's lock, which gems she should put in the deepenings to open the box. Help Vasilisa to solve this challenging task.
Input Specification:
The input contains numbers written on the edges of the lock of the box. The first line contains space-separated integers *r*1 and *r*2 that define the required sums of numbers in the rows of the square. The second line contains space-separated integers *c*1 and *c*2 that define the required sums of numbers in the columns of the square. The third line contains space-separated integers *d*1 and *d*2 that define the required sums of numbers on the main and on the side diagonals of the square (1<=≤<=*r*1,<=*r*2,<=*c*1,<=*c*2,<=*d*1,<=*d*2<=≤<=20). Correspondence between the above 6 variables and places where they are written is shown on the picture below. For more clarifications please look at the second sample test that demonstrates the example given in the problem statement.
Output Specification:
Print the scheme of decorating the box with stones: two lines containing two space-separated integers from 1 to 9. The numbers should be pairwise different. If there is no solution for the given lock, then print the single number "-1" (without the quotes).
If there are several solutions, output any.
Demo Input:
['3 7\n4 6\n5 5\n', '11 10\n13 8\n5 16\n', '1 2\n3 4\n5 6\n', '10 10\n10 10\n10 10\n']
Demo Output:
['1 2\n3 4\n', '4 7\n9 1\n', '-1\n', '-1\n']
Note:
Pay attention to the last test from the statement: it is impossible to open the box because for that Vasilisa the Wise would need 4 identical gems containing number "5". However, Vasilisa only has one gem with each number from 1 to 9.
|
```python
#Keshika Patwari
#Indian Institute Of Technology, Jodhpur
# 2022
import sys
input=sys.stdin.readline
def exe():
a=-1
b=-1
c=-1
d=-1
x=r1+c2-d1
if(x%2==0):
b=x//2
y=r1+c1-d2
if(y%2==0):
a=y//2
z=r2+c1-d1
if(z%2==0):
c=z//2
w=r2+c2-d2
if(w%2==0):
d=w//2
#print(a,b,c,d)
if(a==-1 or b==-1 or c==-1 or d==-1):
return [-1]
if(a==b or b==c or c==d or a==d or a==c or b==d):
return [-1]
print(a,end=' ')
print(b)
return [c,d]
r1,r2=map(int,input().split())
c1,c2=map(int,input().split())
d1,d2=map(int,input().split())
print(*exe())
```
| 0
|
|
664
|
A
|
Complicated GCD
|
PROGRAMMING
| 800
|
[
"math",
"number theory"
] | null | null |
Greatest common divisor *GCD*(*a*,<=*b*) of two positive integers *a* and *b* is equal to the biggest integer *d* such that both integers *a* and *b* are divisible by *d*. There are many efficient algorithms to find greatest common divisor *GCD*(*a*,<=*b*), for example, Euclid algorithm.
Formally, find the biggest integer *d*, such that all integers *a*,<=*a*<=+<=1,<=*a*<=+<=2,<=...,<=*b* are divisible by *d*. To make the problem even more complicated we allow *a* and *b* to be up to googol, 10100 — such number do not fit even in 64-bit integer type!
|
The only line of the input contains two integers *a* and *b* (1<=≤<=*a*<=≤<=*b*<=≤<=10100).
|
Output one integer — greatest common divisor of all integers from *a* to *b* inclusive.
|
[
"1 2\n",
"61803398874989484820458683436563811772030917980576 61803398874989484820458683436563811772030917980576\n"
] |
[
"1\n",
"61803398874989484820458683436563811772030917980576\n"
] |
none
| 500
|
[
{
"input": "1 2",
"output": "1"
},
{
"input": "61803398874989484820458683436563811772030917980576 61803398874989484820458683436563811772030917980576",
"output": "61803398874989484820458683436563811772030917980576"
},
{
"input": "1 100",
"output": "1"
},
{
"input": "100 100000",
"output": "1"
},
{
"input": "12345 67890123456789123457",
"output": "1"
},
{
"input": "1 1",
"output": "1"
},
{
"input": "2 2",
"output": "2"
},
{
"input": "8392739158839273915883927391588392739158839273915883927391588392739158839273915883927391588392739158 8392739158839273915883927391588392739158839273915883927391588392739158839273915883927391588392739158",
"output": "8392739158839273915883927391588392739158839273915883927391588392739158839273915883927391588392739158"
},
{
"input": "1 10000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000",
"output": "1"
},
{
"input": "8328748239473982794239847237438782379810988324751 9328748239473982794239847237438782379810988324751",
"output": "1"
},
{
"input": "1029398958432734901284327523909481928483573793 1029398958432734901284327523909481928483573794",
"output": "1"
},
{
"input": "10000 1000000000",
"output": "1"
},
{
"input": "10000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000 10000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000",
"output": "10000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000"
},
{
"input": "11210171722243 65715435710585778347",
"output": "1"
},
{
"input": "2921881079263974825226940825843 767693191032295360887755303860323261471",
"output": "1"
},
{
"input": "8025352957265704896940312528736939363590612908210603 96027920417708260814607687034511406492969694925539085",
"output": "1"
},
{
"input": "23510978780782786207241069904470895053213996267165977112058175452757132930 210352653280909370107314249722987050753257161175393375412301228883856435481424",
"output": "1"
},
{
"input": "8150070767079366215626260746398623663859344142817267779361251788637547414925170226504788118262 49924902262298336032630839998470954964895251605110946547855439236151401194070172107435992986913614",
"output": "1"
},
{
"input": "15943150466658398903 15943150466658398903",
"output": "15943150466658398903"
},
{
"input": "410470228200245407491525399055972 410470228200245407491525399055972",
"output": "410470228200245407491525399055972"
},
{
"input": "51894705655711504622197349350106792045098781545973899451307 51894705655711504622197349350106792045098781545973899451307",
"output": "51894705655711504622197349350106792045098781545973899451307"
},
{
"input": "60353594589897438036015726222485085035927634677598681595162804007836722215668410 60353594589897438036015726222485085035927634677598681595162804007836722215668410",
"output": "60353594589897438036015726222485085035927634677598681595162804007836722215668410"
},
{
"input": "761733780145118977868180796896376577405349682060892737466239031663476251177476275459280340045369535 761733780145118977868180796896376577405349682060892737466239031663476251177476275459280340045369535",
"output": "761733780145118977868180796896376577405349682060892737466239031663476251177476275459280340045369535"
},
{
"input": "1 2000000000",
"output": "1"
},
{
"input": "13 1928834874",
"output": "1"
},
{
"input": "87 2938984237482934238",
"output": "1"
},
{
"input": "213 413",
"output": "1"
},
{
"input": "3 4",
"output": "1"
}
] | 1,672,247,035
| 2,147,483,647
|
Python 3
|
RUNTIME_ERROR
|
TESTS
| 1
| 31
| 0
|
x,y=map(int,input().split())
if(x==0):
print(y)
elif(y==0):
print(x)
elif(x==y):
print(X)
elif(x<y and y%x==0):
print(x)
elif(y<x and x%y==0):
print(y)
|
Title: Complicated GCD
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
Greatest common divisor *GCD*(*a*,<=*b*) of two positive integers *a* and *b* is equal to the biggest integer *d* such that both integers *a* and *b* are divisible by *d*. There are many efficient algorithms to find greatest common divisor *GCD*(*a*,<=*b*), for example, Euclid algorithm.
Formally, find the biggest integer *d*, such that all integers *a*,<=*a*<=+<=1,<=*a*<=+<=2,<=...,<=*b* are divisible by *d*. To make the problem even more complicated we allow *a* and *b* to be up to googol, 10100 — such number do not fit even in 64-bit integer type!
Input Specification:
The only line of the input contains two integers *a* and *b* (1<=≤<=*a*<=≤<=*b*<=≤<=10100).
Output Specification:
Output one integer — greatest common divisor of all integers from *a* to *b* inclusive.
Demo Input:
['1 2\n', '61803398874989484820458683436563811772030917980576 61803398874989484820458683436563811772030917980576\n']
Demo Output:
['1\n', '61803398874989484820458683436563811772030917980576\n']
Note:
none
|
```python
x,y=map(int,input().split())
if(x==0):
print(y)
elif(y==0):
print(x)
elif(x==y):
print(X)
elif(x<y and y%x==0):
print(x)
elif(y<x and x%y==0):
print(y)
```
| -1
|
|
386
|
A
|
Second-Price Auction
|
PROGRAMMING
| 800
|
[
"implementation"
] | null | null |
In this problem we consider a special type of an auction, which is called the second-price auction. As in regular auction *n* bidders place a bid which is price a bidder ready to pay. The auction is closed, that is, each bidder secretly informs the organizer of the auction price he is willing to pay. After that, the auction winner is the participant who offered the highest price. However, he pay not the price he offers, but the highest price among the offers of other participants (hence the name: the second-price auction).
Write a program that reads prices offered by bidders and finds the winner and the price he will pay. Consider that all of the offered prices are different.
|
The first line of the input contains *n* (2<=≤<=*n*<=≤<=1000) — number of bidders. The second line contains *n* distinct integer numbers *p*1,<=*p*2,<=... *p**n*, separated by single spaces (1<=≤<=*p**i*<=≤<=10000), where *p**i* stands for the price offered by the *i*-th bidder.
|
The single output line should contain two integers: index of the winner and the price he will pay. Indices are 1-based.
|
[
"2\n5 7\n",
"3\n10 2 8\n",
"6\n3 8 2 9 4 14\n"
] |
[
"2 5\n",
"1 8\n",
"6 9\n"
] |
none
| 500
|
[
{
"input": "2\n5 7",
"output": "2 5"
},
{
"input": "3\n10 2 8",
"output": "1 8"
},
{
"input": "6\n3 8 2 9 4 14",
"output": "6 9"
},
{
"input": "4\n4707 7586 4221 5842",
"output": "2 5842"
},
{
"input": "5\n3304 4227 4869 6937 6002",
"output": "4 6002"
},
{
"input": "6\n5083 3289 7708 5362 9031 7458",
"output": "5 7708"
},
{
"input": "7\n9038 6222 3392 1706 3778 1807 2657",
"output": "1 6222"
},
{
"input": "8\n7062 2194 4481 3864 7470 1814 8091 733",
"output": "7 7470"
},
{
"input": "9\n2678 5659 9199 2628 7906 7496 4524 2663 3408",
"output": "3 7906"
},
{
"input": "2\n3458 1504",
"output": "1 1504"
},
{
"input": "50\n9237 3904 407 9052 6657 9229 9752 3888 7732 2512 4614 1055 2355 7108 6506 6849 2529 8862 159 8630 7906 7941 960 8470 333 8659 54 9475 3163 5625 6393 6814 2656 3388 169 7918 4881 8468 9983 6281 6340 280 5108 2996 101 7617 3313 8172 326 1991",
"output": "39 9752"
},
{
"input": "100\n2515 3324 7975 6171 4240 1217 4829 5203 8603 6900 3031 4699 4732 6070 4221 3228 6497 7359 9130 4346 4619 1109 3945 5442 3271 16 9711 2045 6410 2301 3406 8125 6003 1892 1260 9661 3940 6692 4708 7027 4930 6925 1979 5361 4263 3144 867 8639 6230 5562 9714 3676 4231 3347 4733 4920 4881 3431 1059 7313 8912 3038 9308 72 9583 7009 3034 7425 2398 6141 3245 2495 2933 6710 8289 9806 1226 8393 7349 6462 1618 9613 3546 6012 2964 9995 1578 210 2123 4874 1252 8625 348 8020 803 7244 9080 5088 706 2602",
"output": "86 9806"
},
{
"input": "2\n2 1",
"output": "1 1"
},
{
"input": "2\n1 2",
"output": "2 1"
},
{
"input": "3\n10 20 30",
"output": "3 20"
},
{
"input": "3\n10 30 20",
"output": "2 20"
},
{
"input": "3\n20 10 30",
"output": "3 20"
},
{
"input": "3\n20 30 10",
"output": "2 20"
},
{
"input": "3\n30 10 20",
"output": "1 20"
},
{
"input": "3\n30 20 10",
"output": "1 20"
},
{
"input": "2\n1 10000",
"output": "2 1"
},
{
"input": "2\n10000 999",
"output": "1 999"
},
{
"input": "3\n3 4 1",
"output": "2 3"
},
{
"input": "6\n1 2 24 6 5 7",
"output": "3 7"
}
] | 1,620,769,186
| 2,147,483,647
|
Python 3
|
WRONG_ANSWER
|
TESTS
| 1
| 62
| 6,656,000
|
n=int(input())
s=input()
l=s.split(" ")
ch=max(l)
for j in range (len(l)):
if l[j]==ch:
print(j+1, end=" ")
break
l.sort(reverse=True)
print(l[1])
|
Title: Second-Price Auction
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
In this problem we consider a special type of an auction, which is called the second-price auction. As in regular auction *n* bidders place a bid which is price a bidder ready to pay. The auction is closed, that is, each bidder secretly informs the organizer of the auction price he is willing to pay. After that, the auction winner is the participant who offered the highest price. However, he pay not the price he offers, but the highest price among the offers of other participants (hence the name: the second-price auction).
Write a program that reads prices offered by bidders and finds the winner and the price he will pay. Consider that all of the offered prices are different.
Input Specification:
The first line of the input contains *n* (2<=≤<=*n*<=≤<=1000) — number of bidders. The second line contains *n* distinct integer numbers *p*1,<=*p*2,<=... *p**n*, separated by single spaces (1<=≤<=*p**i*<=≤<=10000), where *p**i* stands for the price offered by the *i*-th bidder.
Output Specification:
The single output line should contain two integers: index of the winner and the price he will pay. Indices are 1-based.
Demo Input:
['2\n5 7\n', '3\n10 2 8\n', '6\n3 8 2 9 4 14\n']
Demo Output:
['2 5\n', '1 8\n', '6 9\n']
Note:
none
|
```python
n=int(input())
s=input()
l=s.split(" ")
ch=max(l)
for j in range (len(l)):
if l[j]==ch:
print(j+1, end=" ")
break
l.sort(reverse=True)
print(l[1])
```
| 0
|
|
834
|
B
|
The Festive Evening
|
PROGRAMMING
| 1,100
|
[
"data structures",
"implementation"
] | null | null |
It's the end of July – the time when a festive evening is held at Jelly Castle! Guests from all over the kingdom gather here to discuss new trends in the world of confectionery. Yet some of the things discussed here are not supposed to be disclosed to the general public: the information can cause discord in the kingdom of Sweetland in case it turns out to reach the wrong hands. So it's a necessity to not let any uninvited guests in.
There are 26 entrances in Jelly Castle, enumerated with uppercase English letters from A to Z. Because of security measures, each guest is known to be assigned an entrance he should enter the castle through. The door of each entrance is opened right before the first guest's arrival and closed right after the arrival of the last guest that should enter the castle through this entrance. No two guests can enter the castle simultaneously.
For an entrance to be protected from possible intrusion, a candy guard should be assigned to it. There are *k* such guards in the castle, so if there are more than *k* opened doors, one of them is going to be left unguarded! Notice that a guard can't leave his post until the door he is assigned to is closed.
Slastyona had a suspicion that there could be uninvited guests at the evening. She knows the order in which the invited guests entered the castle, and wants you to help her check whether there was a moment when more than *k* doors were opened.
|
Two integers are given in the first string: the number of guests *n* and the number of guards *k* (1<=≤<=*n*<=≤<=106, 1<=≤<=*k*<=≤<=26).
In the second string, *n* uppercase English letters *s*1*s*2... *s**n* are given, where *s**i* is the entrance used by the *i*-th guest.
|
Output «YES» if at least one door was unguarded during some time, and «NO» otherwise.
You can output each letter in arbitrary case (upper or lower).
|
[
"5 1\nAABBB\n",
"5 1\nABABB\n"
] |
[
"NO\n",
"YES\n"
] |
In the first sample case, the door A is opened right before the first guest's arrival and closed when the second guest enters the castle. The door B is opened right before the arrival of the third guest, and closed after the fifth one arrives. One guard can handle both doors, as the first one is closed before the second one is opened.
In the second sample case, the door B is opened before the second guest's arrival, but the only guard can't leave the door A unattended, as there is still one more guest that should enter the castle through this door.
| 1,000
|
[
{
"input": "5 1\nAABBB",
"output": "NO"
},
{
"input": "5 1\nABABB",
"output": "YES"
},
{
"input": "26 1\nABCDEFGHIJKLMNOPQRSTUVWXYZ",
"output": "NO"
},
{
"input": "27 1\nABCDEFGHIJKLMNOPQRSTUVWXYZA",
"output": "YES"
},
{
"input": "5 2\nABACA",
"output": "NO"
},
{
"input": "6 2\nABCABC",
"output": "YES"
},
{
"input": "8 3\nABCBCDCA",
"output": "NO"
},
{
"input": "73 2\nDEBECECBBADAADEAABEAEEEAEBEAEBCDDBABBAEBACCBEEBBAEADEECACEDEEDABACDCDBBBD",
"output": "YES"
},
{
"input": "44 15\nHGJIFCGGCDGIJDHBIBGAEABCIABIGBDEADBBBAGDFDHA",
"output": "NO"
},
{
"input": "41 19\nTMEYYIIELFDCMBDKWWKYNRNDUPRONYROXQCLVQALP",
"output": "NO"
},
{
"input": "377 3\nEADADBBBBDEAABBAEBABACDBDBBCACAADBEAEACDEAABACADEEDEACACDADABBBBDDEECBDABACACBAECBADAEBDEEBDBCDAEADBCDDACACDCCEEDBCCBBCEDBECBABCDDBBDEADEDAEACDECECBEBACBCCDCDBDAECDECADBCBEDBBDAAEBCAAECCDCCDBDDEBADEEBDCAEABBDEDBBDDEAECCBDDCDEACDAECCBDDABABEAEDCDEDBAECBDEACEBCECEACDCBABCBAAEAADACADBBBBABEADBCADEBCBECCABBDDDEEBCDEBADEBDAAABBEABADEDEAEABCEEBEEDEAEBEABCEDDBACBCCADEBAAAAAEABABBCE",
"output": "YES"
},
{
"input": "433 3\nFZDDHMJGBZCHFUXBBPIEBBEFDWOMXXEPOMDGSMPIUZOMRZQNSJAVNATGIWPDFISKFQXJNVFXPHOZDAEZFDAHDXXQKZMGNSGKQNWGNGJGJZVVITKNFLVCPMZSDMCHBTVAWYVZLIXXIADXNYILEYNIQHKMOGMVOCWGHCWIYMPEPADSJAAKEGTUSEDWAHMNYJDIHBKHVUHLYGNGZDBULRXLSAJHPCMNWCEAAPYMHDTYWPADOTJTXTXUKLCHWKUSZRHEKQEFPVJEJJHRWCKYOIWALRTIBUMNOCRXLSIKQCJVQXEPGOHRUDJDKMUUUDORURWXJNVRVMNOUNRFKSVMTMZGOIJLXEPAMVGESOADYIGZXRBJDIWKNOWTCSROAQTBECHTOZVSQUOOJRZIBAUHMKAXDCIMDZJFMABGRNTGPUJAUNFPFWCJG",
"output": "YES"
},
{
"input": "5 2\nABCAB",
"output": "YES"
},
{
"input": "5 1\nAZAZA",
"output": "YES"
},
{
"input": "7 2\nABCDBCD",
"output": "YES"
},
{
"input": "3 26\nAAB",
"output": "NO"
}
] | 1,546,189,636
| 2,147,483,647
|
Python 3
|
WRONG_ANSWER
|
TESTS
| 2
| 108
| 0
|
m,n=map(int,input().split())
l=input()
guard=0
opened={}
for i in range(len(l)):
if l[i] not in opened:
guard+=1
opened[l[i]]=1
if guard>n:
print('YES')
quit()
else:
opened[l[i]]+=1
if opened[l[i]]==2:
guard-=1
print('NO')
|
Title: The Festive Evening
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
It's the end of July – the time when a festive evening is held at Jelly Castle! Guests from all over the kingdom gather here to discuss new trends in the world of confectionery. Yet some of the things discussed here are not supposed to be disclosed to the general public: the information can cause discord in the kingdom of Sweetland in case it turns out to reach the wrong hands. So it's a necessity to not let any uninvited guests in.
There are 26 entrances in Jelly Castle, enumerated with uppercase English letters from A to Z. Because of security measures, each guest is known to be assigned an entrance he should enter the castle through. The door of each entrance is opened right before the first guest's arrival and closed right after the arrival of the last guest that should enter the castle through this entrance. No two guests can enter the castle simultaneously.
For an entrance to be protected from possible intrusion, a candy guard should be assigned to it. There are *k* such guards in the castle, so if there are more than *k* opened doors, one of them is going to be left unguarded! Notice that a guard can't leave his post until the door he is assigned to is closed.
Slastyona had a suspicion that there could be uninvited guests at the evening. She knows the order in which the invited guests entered the castle, and wants you to help her check whether there was a moment when more than *k* doors were opened.
Input Specification:
Two integers are given in the first string: the number of guests *n* and the number of guards *k* (1<=≤<=*n*<=≤<=106, 1<=≤<=*k*<=≤<=26).
In the second string, *n* uppercase English letters *s*1*s*2... *s**n* are given, where *s**i* is the entrance used by the *i*-th guest.
Output Specification:
Output «YES» if at least one door was unguarded during some time, and «NO» otherwise.
You can output each letter in arbitrary case (upper or lower).
Demo Input:
['5 1\nAABBB\n', '5 1\nABABB\n']
Demo Output:
['NO\n', 'YES\n']
Note:
In the first sample case, the door A is opened right before the first guest's arrival and closed when the second guest enters the castle. The door B is opened right before the arrival of the third guest, and closed after the fifth one arrives. One guard can handle both doors, as the first one is closed before the second one is opened.
In the second sample case, the door B is opened before the second guest's arrival, but the only guard can't leave the door A unattended, as there is still one more guest that should enter the castle through this door.
|
```python
m,n=map(int,input().split())
l=input()
guard=0
opened={}
for i in range(len(l)):
if l[i] not in opened:
guard+=1
opened[l[i]]=1
if guard>n:
print('YES')
quit()
else:
opened[l[i]]+=1
if opened[l[i]]==2:
guard-=1
print('NO')
```
| 0
|
|
9
|
A
|
Die Roll
|
PROGRAMMING
| 800
|
[
"math",
"probabilities"
] |
A. Die Roll
|
1
|
64
|
Yakko, Wakko and Dot, world-famous animaniacs, decided to rest from acting in cartoons, and take a leave to travel a bit. Yakko dreamt to go to Pennsylvania, his Motherland and the Motherland of his ancestors. Wakko thought about Tasmania, its beaches, sun and sea. Dot chose Transylvania as the most mysterious and unpredictable place.
But to their great regret, the leave turned to be very short, so it will be enough to visit one of the three above named places. That's why Yakko, as the cleverest, came up with a truly genius idea: let each of the three roll an ordinary six-sided die, and the one with the highest amount of points will be the winner, and will take the other two to the place of his/her dreams.
Yakko thrown a die and got Y points, Wakko — W points. It was Dot's turn. But she didn't hurry. Dot wanted to know for sure what were her chances to visit Transylvania.
It is known that Yakko and Wakko are true gentlemen, that's why if they have the same amount of points with Dot, they will let Dot win.
|
The only line of the input file contains two natural numbers Y and W — the results of Yakko's and Wakko's die rolls.
|
Output the required probability in the form of irreducible fraction in format «A/B», where A — the numerator, and B — the denominator. If the required probability equals to zero, output «0/1». If the required probability equals to 1, output «1/1».
|
[
"4 2\n"
] |
[
"1/2\n"
] |
Dot will go to Transylvania, if she is lucky to roll 4, 5 or 6 points.
| 0
|
[
{
"input": "4 2",
"output": "1/2"
},
{
"input": "1 1",
"output": "1/1"
},
{
"input": "1 2",
"output": "5/6"
},
{
"input": "1 3",
"output": "2/3"
},
{
"input": "1 4",
"output": "1/2"
},
{
"input": "1 5",
"output": "1/3"
},
{
"input": "1 6",
"output": "1/6"
},
{
"input": "2 1",
"output": "5/6"
},
{
"input": "2 2",
"output": "5/6"
},
{
"input": "2 3",
"output": "2/3"
},
{
"input": "2 4",
"output": "1/2"
},
{
"input": "2 5",
"output": "1/3"
},
{
"input": "2 6",
"output": "1/6"
},
{
"input": "3 1",
"output": "2/3"
},
{
"input": "3 2",
"output": "2/3"
},
{
"input": "3 3",
"output": "2/3"
},
{
"input": "3 4",
"output": "1/2"
},
{
"input": "3 5",
"output": "1/3"
},
{
"input": "3 6",
"output": "1/6"
},
{
"input": "4 1",
"output": "1/2"
},
{
"input": "4 3",
"output": "1/2"
},
{
"input": "4 4",
"output": "1/2"
},
{
"input": "4 5",
"output": "1/3"
},
{
"input": "4 6",
"output": "1/6"
},
{
"input": "5 1",
"output": "1/3"
},
{
"input": "5 2",
"output": "1/3"
},
{
"input": "5 3",
"output": "1/3"
},
{
"input": "5 4",
"output": "1/3"
},
{
"input": "5 5",
"output": "1/3"
},
{
"input": "5 6",
"output": "1/6"
},
{
"input": "6 1",
"output": "1/6"
},
{
"input": "6 2",
"output": "1/6"
},
{
"input": "6 3",
"output": "1/6"
},
{
"input": "6 4",
"output": "1/6"
},
{
"input": "6 5",
"output": "1/6"
},
{
"input": "6 6",
"output": "1/6"
}
] | 1,611,238,090
| 2,147,483,647
|
Python 3
|
WRONG_ANSWER
|
TESTS
| 1
| 92
| 0
|
if __name__ == '__main__':
A = list(map(int, input().split()))
Prop = 7 - max(A[0], A[1])
if Prop == 1 or Prop == 5:
print(str(Prop) + '/6')
elif Prop == 2 or Prop == 4:
print(str(Prop // 2) + '/3')
elif Prop == 3 or Prop == 6:
print(str(Prop // 3) + '/2')
|
Title: Die Roll
Time Limit: 1 seconds
Memory Limit: 64 megabytes
Problem Description:
Yakko, Wakko and Dot, world-famous animaniacs, decided to rest from acting in cartoons, and take a leave to travel a bit. Yakko dreamt to go to Pennsylvania, his Motherland and the Motherland of his ancestors. Wakko thought about Tasmania, its beaches, sun and sea. Dot chose Transylvania as the most mysterious and unpredictable place.
But to their great regret, the leave turned to be very short, so it will be enough to visit one of the three above named places. That's why Yakko, as the cleverest, came up with a truly genius idea: let each of the three roll an ordinary six-sided die, and the one with the highest amount of points will be the winner, and will take the other two to the place of his/her dreams.
Yakko thrown a die and got Y points, Wakko — W points. It was Dot's turn. But she didn't hurry. Dot wanted to know for sure what were her chances to visit Transylvania.
It is known that Yakko and Wakko are true gentlemen, that's why if they have the same amount of points with Dot, they will let Dot win.
Input Specification:
The only line of the input file contains two natural numbers Y and W — the results of Yakko's and Wakko's die rolls.
Output Specification:
Output the required probability in the form of irreducible fraction in format «A/B», where A — the numerator, and B — the denominator. If the required probability equals to zero, output «0/1». If the required probability equals to 1, output «1/1».
Demo Input:
['4 2\n']
Demo Output:
['1/2\n']
Note:
Dot will go to Transylvania, if she is lucky to roll 4, 5 or 6 points.
|
```python
if __name__ == '__main__':
A = list(map(int, input().split()))
Prop = 7 - max(A[0], A[1])
if Prop == 1 or Prop == 5:
print(str(Prop) + '/6')
elif Prop == 2 or Prop == 4:
print(str(Prop // 2) + '/3')
elif Prop == 3 or Prop == 6:
print(str(Prop // 3) + '/2')
```
| 0
|
557
|
B
|
Pasha and Tea
|
PROGRAMMING
| 1,500
|
[
"constructive algorithms",
"implementation",
"math",
"sortings"
] | null | null |
Pasha decided to invite his friends to a tea party. For that occasion, he has a large teapot with the capacity of *w* milliliters and 2*n* tea cups, each cup is for one of Pasha's friends. The *i*-th cup can hold at most *a**i* milliliters of water.
It turned out that among Pasha's friends there are exactly *n* boys and exactly *n* girls and all of them are going to come to the tea party. To please everyone, Pasha decided to pour the water for the tea as follows:
- Pasha can boil the teapot exactly once by pouring there at most *w* milliliters of water; - Pasha pours the same amount of water to each girl; - Pasha pours the same amount of water to each boy; - if each girl gets *x* milliliters of water, then each boy gets 2*x* milliliters of water.
In the other words, each boy should get two times more water than each girl does.
Pasha is very kind and polite, so he wants to maximize the total amount of the water that he pours to his friends. Your task is to help him and determine the optimum distribution of cups between Pasha's friends.
|
The first line of the input contains two integers, *n* and *w* (1<=≤<=*n*<=≤<=105, 1<=≤<=*w*<=≤<=109) — the number of Pasha's friends that are boys (equal to the number of Pasha's friends that are girls) and the capacity of Pasha's teapot in milliliters.
The second line of the input contains the sequence of integers *a**i* (1<=≤<=*a**i*<=≤<=109, 1<=≤<=*i*<=≤<=2*n*) — the capacities of Pasha's tea cups in milliliters.
|
Print a single real number — the maximum total amount of water in milliliters that Pasha can pour to his friends without violating the given conditions. Your answer will be considered correct if its absolute or relative error doesn't exceed 10<=-<=6.
|
[
"2 4\n1 1 1 1\n",
"3 18\n4 4 4 2 2 2\n",
"1 5\n2 3\n"
] |
[
"3",
"18",
"4.5"
] |
Pasha also has candies that he is going to give to girls but that is another task...
| 1,000
|
[
{
"input": "2 4\n1 1 1 1",
"output": "3.0000000000"
},
{
"input": "3 18\n4 4 4 2 2 2",
"output": "18.0000000000"
},
{
"input": "1 5\n2 3",
"output": "4.5000000000"
},
{
"input": "1 1\n1000000000 1000000000",
"output": "1.0000000000"
},
{
"input": "4 1000000000\n1 1 1 1 1 1 1 1",
"output": "6.0000000000"
},
{
"input": "4 1000000000\n1 1 1 1 2 2 2 2",
"output": "12.0000000000"
},
{
"input": "4 1\n3 3 3 3 4 4 4 4",
"output": "1.0000000000"
},
{
"input": "2 19\n3 3 5 5",
"output": "15.0000000000"
},
{
"input": "3 31\n3 3 3 5 5 5",
"output": "22.5000000000"
},
{
"input": "5 15\n2 3 4 1 2 4 5 3 5 10",
"output": "15.0000000000"
},
{
"input": "5 14\n2 3 4 1 2 4 5 3 5 10",
"output": "14.0000000000"
},
{
"input": "5 16\n2 3 4 1 2 4 5 3 5 10",
"output": "15.0000000000"
},
{
"input": "1 100\n1 200",
"output": "3.0000000000"
},
{
"input": "1 1\n1 1",
"output": "1.0000000000"
},
{
"input": "2 1000000000\n1 1 1 100",
"output": "3.0000000000"
},
{
"input": "4 30\n3 3 3 3 4 5 6 7",
"output": "24.0000000000"
},
{
"input": "2 100\n1 1 1 10",
"output": "3.0000000000"
},
{
"input": "3 18\n1 1 1 1 1 5",
"output": "4.5000000000"
}
] | 1,593,099,098
| 2,147,483,647
|
Python 3
|
OK
|
TESTS
| 50
| 233
| 25,292,800
|
n, w = map(int, input().split())
arr = list(map(int, input().split()))
arr.sort()
res = 0
x_min = 0
if arr[0] * 2 <= arr[n]:
x_min = float(arr[0])
else:
x_min = float(arr[n] / 2)
if x_min * 3 * n <= w:
res = float(x_min * 3 * n)
else:
res = float(w)
if res % 1 != 0.0:
print(res)
else:
print(int(res))
|
Title: Pasha and Tea
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
Pasha decided to invite his friends to a tea party. For that occasion, he has a large teapot with the capacity of *w* milliliters and 2*n* tea cups, each cup is for one of Pasha's friends. The *i*-th cup can hold at most *a**i* milliliters of water.
It turned out that among Pasha's friends there are exactly *n* boys and exactly *n* girls and all of them are going to come to the tea party. To please everyone, Pasha decided to pour the water for the tea as follows:
- Pasha can boil the teapot exactly once by pouring there at most *w* milliliters of water; - Pasha pours the same amount of water to each girl; - Pasha pours the same amount of water to each boy; - if each girl gets *x* milliliters of water, then each boy gets 2*x* milliliters of water.
In the other words, each boy should get two times more water than each girl does.
Pasha is very kind and polite, so he wants to maximize the total amount of the water that he pours to his friends. Your task is to help him and determine the optimum distribution of cups between Pasha's friends.
Input Specification:
The first line of the input contains two integers, *n* and *w* (1<=≤<=*n*<=≤<=105, 1<=≤<=*w*<=≤<=109) — the number of Pasha's friends that are boys (equal to the number of Pasha's friends that are girls) and the capacity of Pasha's teapot in milliliters.
The second line of the input contains the sequence of integers *a**i* (1<=≤<=*a**i*<=≤<=109, 1<=≤<=*i*<=≤<=2*n*) — the capacities of Pasha's tea cups in milliliters.
Output Specification:
Print a single real number — the maximum total amount of water in milliliters that Pasha can pour to his friends without violating the given conditions. Your answer will be considered correct if its absolute or relative error doesn't exceed 10<=-<=6.
Demo Input:
['2 4\n1 1 1 1\n', '3 18\n4 4 4 2 2 2\n', '1 5\n2 3\n']
Demo Output:
['3', '18', '4.5']
Note:
Pasha also has candies that he is going to give to girls but that is another task...
|
```python
n, w = map(int, input().split())
arr = list(map(int, input().split()))
arr.sort()
res = 0
x_min = 0
if arr[0] * 2 <= arr[n]:
x_min = float(arr[0])
else:
x_min = float(arr[n] / 2)
if x_min * 3 * n <= w:
res = float(x_min * 3 * n)
else:
res = float(w)
if res % 1 != 0.0:
print(res)
else:
print(int(res))
```
| 3
|
|
339
|
A
|
Helpful Maths
|
PROGRAMMING
| 800
|
[
"greedy",
"implementation",
"sortings",
"strings"
] | null | null |
Xenia the beginner mathematician is a third year student at elementary school. She is now learning the addition operation.
The teacher has written down the sum of multiple numbers. Pupils should calculate the sum. To make the calculation easier, the sum only contains numbers 1, 2 and 3. Still, that isn't enough for Xenia. She is only beginning to count, so she can calculate a sum only if the summands follow in non-decreasing order. For example, she can't calculate sum 1+3+2+1 but she can calculate sums 1+1+2 and 3+3.
You've got the sum that was written on the board. Rearrange the summans and print the sum in such a way that Xenia can calculate the sum.
|
The first line contains a non-empty string *s* — the sum Xenia needs to count. String *s* contains no spaces. It only contains digits and characters "+". Besides, string *s* is a correct sum of numbers 1, 2 and 3. String *s* is at most 100 characters long.
|
Print the new sum that Xenia can count.
|
[
"3+2+1\n",
"1+1+3+1+3\n",
"2\n"
] |
[
"1+2+3\n",
"1+1+1+3+3\n",
"2\n"
] |
none
| 500
|
[
{
"input": "3+2+1",
"output": "1+2+3"
},
{
"input": "1+1+3+1+3",
"output": "1+1+1+3+3"
},
{
"input": "2",
"output": "2"
},
{
"input": "2+2+1+1+3",
"output": "1+1+2+2+3"
},
{
"input": "2+1+2+2+2+3+1+3+1+2",
"output": "1+1+1+2+2+2+2+2+3+3"
},
{
"input": "1+2+1+2+2+2+2+1+3+3",
"output": "1+1+1+2+2+2+2+2+3+3"
},
{
"input": "2+3+3+1+2+2+2+1+1+2+1+3+2+2+3+3+2+2+3+3+3+1+1+1+3+3+3+2+1+3+2+3+2+1+1+3+3+3+1+2+2+1+2+2+1+2+1+3+1+1",
"output": "1+1+1+1+1+1+1+1+1+1+1+1+1+1+1+1+2+2+2+2+2+2+2+2+2+2+2+2+2+2+2+2+2+3+3+3+3+3+3+3+3+3+3+3+3+3+3+3+3+3"
},
{
"input": "1",
"output": "1"
},
{
"input": "2+1+2+2+1+3+2+3+1+1+2+1+2+2+3+1+1+3+3+3+2+2+3+2+2+2+1+2+1+2+3+2+2+2+1+3+1+3+3+3+1+2+1+2+2+2+2+3+1+1",
"output": "1+1+1+1+1+1+1+1+1+1+1+1+1+1+1+2+2+2+2+2+2+2+2+2+2+2+2+2+2+2+2+2+2+2+2+2+2+3+3+3+3+3+3+3+3+3+3+3+3+3"
},
{
"input": "2+2+1+1+1+3+1+1+3+3+2+3+1+3+1+1+3+1+1+2+2+2+2+1+2+1+2+1+1+1+3+1+3+2+3+2+3+3+1+1+1+2+3+2+1+3+1+3+2+2",
"output": "1+1+1+1+1+1+1+1+1+1+1+1+1+1+1+1+1+1+1+1+1+2+2+2+2+2+2+2+2+2+2+2+2+2+2+2+3+3+3+3+3+3+3+3+3+3+3+3+3+3"
},
{
"input": "3+2+3+3+2+2+1+2+1+2+3+1+2+3+2+3+2+1+2+2+1+1+2+2+3+2+1+3+1+1+3+2+2+2+2+3+3+2+2+3+3+1+1+2+3+3+2+3+3+3",
"output": "1+1+1+1+1+1+1+1+1+1+1+2+2+2+2+2+2+2+2+2+2+2+2+2+2+2+2+2+2+2+2+2+3+3+3+3+3+3+3+3+3+3+3+3+3+3+3+3+3+3"
},
{
"input": "3",
"output": "3"
},
{
"input": "1+1",
"output": "1+1"
},
{
"input": "1+2",
"output": "1+2"
},
{
"input": "1+3",
"output": "1+3"
},
{
"input": "2+1",
"output": "1+2"
},
{
"input": "2+2",
"output": "2+2"
},
{
"input": "2+3",
"output": "2+3"
},
{
"input": "3+1",
"output": "1+3"
},
{
"input": "3+2",
"output": "2+3"
},
{
"input": "3+3",
"output": "3+3"
}
] | 1,697,123,458
| 2,147,483,647
|
Python 3
|
WRONG_ANSWER
|
TESTS
| 0
| 62
| 0
|
word = input('')
word = word.rsplit("+", len(word))
for i in range(len(word)):
for j in range(len(word)-1):
if (word[j] > word[j+1]):
save = word[j+1]
word[j+1] = word[j]
word[j] = save
print(word)
|
Title: Helpful Maths
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
Xenia the beginner mathematician is a third year student at elementary school. She is now learning the addition operation.
The teacher has written down the sum of multiple numbers. Pupils should calculate the sum. To make the calculation easier, the sum only contains numbers 1, 2 and 3. Still, that isn't enough for Xenia. She is only beginning to count, so she can calculate a sum only if the summands follow in non-decreasing order. For example, she can't calculate sum 1+3+2+1 but she can calculate sums 1+1+2 and 3+3.
You've got the sum that was written on the board. Rearrange the summans and print the sum in such a way that Xenia can calculate the sum.
Input Specification:
The first line contains a non-empty string *s* — the sum Xenia needs to count. String *s* contains no spaces. It only contains digits and characters "+". Besides, string *s* is a correct sum of numbers 1, 2 and 3. String *s* is at most 100 characters long.
Output Specification:
Print the new sum that Xenia can count.
Demo Input:
['3+2+1\n', '1+1+3+1+3\n', '2\n']
Demo Output:
['1+2+3\n', '1+1+1+3+3\n', '2\n']
Note:
none
|
```python
word = input('')
word = word.rsplit("+", len(word))
for i in range(len(word)):
for j in range(len(word)-1):
if (word[j] > word[j+1]):
save = word[j+1]
word[j+1] = word[j]
word[j] = save
print(word)
```
| 0
|
|
644
|
B
|
Processing Queries
|
PROGRAMMING
| 1,700
|
[
"*special",
"constructive algorithms",
"data structures",
"two pointers"
] | null | null |
In this problem you have to simulate the workflow of one-thread server. There are *n* queries to process, the *i*-th will be received at moment *t**i* and needs to be processed for *d**i* units of time. All *t**i* are guaranteed to be distinct.
When a query appears server may react in three possible ways:
1. If server is free and query queue is empty, then server immediately starts to process this query. 1. If server is busy and there are less than *b* queries in the queue, then new query is added to the end of the queue. 1. If server is busy and there are already *b* queries pending in the queue, then new query is just rejected and will never be processed.
As soon as server finished to process some query, it picks new one from the queue (if it's not empty, of course). If a new query comes at some moment *x*, and the server finishes to process another query at exactly the same moment, we consider that first query is picked from the queue and only then new query appears.
For each query find the moment when the server will finish to process it or print -1 if this query will be rejected.
|
The first line of the input contains two integers *n* and *b* (1<=≤<=*n*,<=*b*<=≤<=200<=000) — the number of queries and the maximum possible size of the query queue.
Then follow *n* lines with queries descriptions (in chronological order). Each description consists of two integers *t**i* and *d**i* (1<=≤<=*t**i*,<=*d**i*<=≤<=109), where *t**i* is the moment of time when the *i*-th query appears and *d**i* is the time server needs to process it. It is guaranteed that *t**i*<=-<=1<=<<=*t**i* for all *i*<=><=1.
|
Print the sequence of *n* integers *e*1,<=*e*2,<=...,<=*e**n*, where *e**i* is the moment the server will finish to process the *i*-th query (queries are numbered in the order they appear in the input) or <=-<=1 if the corresponding query will be rejected.
|
[
"5 1\n2 9\n4 8\n10 9\n15 2\n19 1\n",
"4 1\n2 8\n4 8\n10 9\n15 2\n"
] |
[
"11 19 -1 21 22 \n",
"10 18 27 -1 \n"
] |
Consider the first sample.
1. The server will start to process first query at the moment 2 and will finish to process it at the moment 11. 1. At the moment 4 second query appears and proceeds to the queue. 1. At the moment 10 third query appears. However, the server is still busy with query 1, *b* = 1 and there is already query 2 pending in the queue, so third query is just rejected. 1. At the moment 11 server will finish to process first query and will take the second query from the queue. 1. At the moment 15 fourth query appears. As the server is currently busy it proceeds to the queue. 1. At the moment 19 two events occur simultaneously: server finishes to proceed the second query and the fifth query appears. As was said in the statement above, first server will finish to process the second query, then it will pick the fourth query from the queue and only then will the fifth query appear. As the queue is empty fifth query is proceed there. 1. Server finishes to process query number 4 at the moment 21. Query number 5 is picked from the queue. 1. Server finishes to process query number 5 at the moment 22.
| 1,000
|
[
{
"input": "5 1\n2 9\n4 8\n10 9\n15 2\n19 1",
"output": "11 19 -1 21 22 "
},
{
"input": "4 1\n2 8\n4 8\n10 9\n15 2",
"output": "10 18 27 -1 "
},
{
"input": "1 1\n1000000000 1000000000",
"output": "2000000000 "
},
{
"input": "4 3\n999999996 1000000000\n999999997 1000000000\n999999998 1000000000\n999999999 1000000000",
"output": "1999999996 2999999996 3999999996 4999999996 "
},
{
"input": "5 1\n2 1\n3 6\n4 5\n6 4\n7 2",
"output": "3 9 14 -1 -1 "
},
{
"input": "10 2\n4 14\n5 2\n6 6\n7 11\n8 6\n9 5\n10 13\n11 8\n13 2\n20 2",
"output": "18 20 26 -1 -1 -1 -1 -1 -1 28 "
},
{
"input": "6 4\n2 4\n4 2\n5 2\n6 2\n7 2\n9 2",
"output": "6 8 10 12 14 16 "
},
{
"input": "8 3\n1 2\n3 1\n4 3\n5 3\n6 1\n7 2\n8 8\n9 7",
"output": "3 4 7 10 11 13 21 -1 "
},
{
"input": "10 3\n1 14\n3 2\n5 4\n6 9\n9 1\n12 22\n15 11\n18 8\n28 2\n29 4",
"output": "15 17 21 30 -1 -1 41 49 51 -1 "
},
{
"input": "5 2\n2 7\n3 3\n7 4\n9 1\n10 2",
"output": "9 12 16 17 -1 "
},
{
"input": "4 1\n2 1\n6 5\n9 2\n10 3",
"output": "3 11 13 -1 "
},
{
"input": "4 1\n1 2\n2 1\n3 1\n4 3",
"output": "3 4 5 8 "
},
{
"input": "6 3\n1 2\n2 3\n100 200\n200 300\n10000 20000\n20000 30000",
"output": "3 6 300 600 30000 60000 "
}
] | 1,458,130,478
| 11,678
|
Python 3
|
TIME_LIMIT_EXCEEDED
|
PRETESTS
| 2
| 5,000
| 204,800
|
def main():
# read program args
line = input().split(" ")
n = int(line[0]) # number of tasks
b = int(line[1]) # max length of the queue
tasks = list()
res = list()
# read tasks data
for x in range(n):
task_line = input().split(" ")
tasks.append([int(task_line[0]), int(task_line[1])]) # [time, duration]
res.append(-2)
# start the server
time_point = 0 # global server time
queue = list() # task queue to the server (indexes of the original tasks)
new_task_index = 0 # index of new incoming task
current_task_index = -1 # index of the current task
current_task_time_point = -1
tasks_empty = False
while True:
# check new task index
if new_task_index == n:
tasks_empty = True
if not tasks_empty:
# check if there is new task incoming
if time_point == tasks[new_task_index][0]:
# check if there is no current task
if current_task_index == -1:
# remember new current task
current_task_index = new_task_index
current_task_time_point = 0
else:
# check if queue length is maxed out
if len(queue) == b:
res[new_task_index] = -1
else:
# remember task index
queue.append(new_task_index)
new_task_index += 1 # next new task
# server does its job
time_point += 1
if current_task_index == -1:
continue # no current task
current_task_time_point += 1 # current task running
# check if current task is complete
if current_task_time_point == tasks[current_task_index][1]:
# remember time
res[current_task_index] = time_point
# check if there are tasks in the queue
if len(queue) == 0:
# if there are no tasks left - quit the program
if tasks_empty:
break
current_task_index = -1
current_task_time_point = -1
else:
current_task_index = queue.pop() # new task index
current_task_time_point = 0
line = ""
for x in range(len(res)):
line += str(res[x]) + " "
print(line)
main()
|
Title: Processing Queries
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
In this problem you have to simulate the workflow of one-thread server. There are *n* queries to process, the *i*-th will be received at moment *t**i* and needs to be processed for *d**i* units of time. All *t**i* are guaranteed to be distinct.
When a query appears server may react in three possible ways:
1. If server is free and query queue is empty, then server immediately starts to process this query. 1. If server is busy and there are less than *b* queries in the queue, then new query is added to the end of the queue. 1. If server is busy and there are already *b* queries pending in the queue, then new query is just rejected and will never be processed.
As soon as server finished to process some query, it picks new one from the queue (if it's not empty, of course). If a new query comes at some moment *x*, and the server finishes to process another query at exactly the same moment, we consider that first query is picked from the queue and only then new query appears.
For each query find the moment when the server will finish to process it or print -1 if this query will be rejected.
Input Specification:
The first line of the input contains two integers *n* and *b* (1<=≤<=*n*,<=*b*<=≤<=200<=000) — the number of queries and the maximum possible size of the query queue.
Then follow *n* lines with queries descriptions (in chronological order). Each description consists of two integers *t**i* and *d**i* (1<=≤<=*t**i*,<=*d**i*<=≤<=109), where *t**i* is the moment of time when the *i*-th query appears and *d**i* is the time server needs to process it. It is guaranteed that *t**i*<=-<=1<=<<=*t**i* for all *i*<=><=1.
Output Specification:
Print the sequence of *n* integers *e*1,<=*e*2,<=...,<=*e**n*, where *e**i* is the moment the server will finish to process the *i*-th query (queries are numbered in the order they appear in the input) or <=-<=1 if the corresponding query will be rejected.
Demo Input:
['5 1\n2 9\n4 8\n10 9\n15 2\n19 1\n', '4 1\n2 8\n4 8\n10 9\n15 2\n']
Demo Output:
['11 19 -1 21 22 \n', '10 18 27 -1 \n']
Note:
Consider the first sample.
1. The server will start to process first query at the moment 2 and will finish to process it at the moment 11. 1. At the moment 4 second query appears and proceeds to the queue. 1. At the moment 10 third query appears. However, the server is still busy with query 1, *b* = 1 and there is already query 2 pending in the queue, so third query is just rejected. 1. At the moment 11 server will finish to process first query and will take the second query from the queue. 1. At the moment 15 fourth query appears. As the server is currently busy it proceeds to the queue. 1. At the moment 19 two events occur simultaneously: server finishes to proceed the second query and the fifth query appears. As was said in the statement above, first server will finish to process the second query, then it will pick the fourth query from the queue and only then will the fifth query appear. As the queue is empty fifth query is proceed there. 1. Server finishes to process query number 4 at the moment 21. Query number 5 is picked from the queue. 1. Server finishes to process query number 5 at the moment 22.
|
```python
def main():
# read program args
line = input().split(" ")
n = int(line[0]) # number of tasks
b = int(line[1]) # max length of the queue
tasks = list()
res = list()
# read tasks data
for x in range(n):
task_line = input().split(" ")
tasks.append([int(task_line[0]), int(task_line[1])]) # [time, duration]
res.append(-2)
# start the server
time_point = 0 # global server time
queue = list() # task queue to the server (indexes of the original tasks)
new_task_index = 0 # index of new incoming task
current_task_index = -1 # index of the current task
current_task_time_point = -1
tasks_empty = False
while True:
# check new task index
if new_task_index == n:
tasks_empty = True
if not tasks_empty:
# check if there is new task incoming
if time_point == tasks[new_task_index][0]:
# check if there is no current task
if current_task_index == -1:
# remember new current task
current_task_index = new_task_index
current_task_time_point = 0
else:
# check if queue length is maxed out
if len(queue) == b:
res[new_task_index] = -1
else:
# remember task index
queue.append(new_task_index)
new_task_index += 1 # next new task
# server does its job
time_point += 1
if current_task_index == -1:
continue # no current task
current_task_time_point += 1 # current task running
# check if current task is complete
if current_task_time_point == tasks[current_task_index][1]:
# remember time
res[current_task_index] = time_point
# check if there are tasks in the queue
if len(queue) == 0:
# if there are no tasks left - quit the program
if tasks_empty:
break
current_task_index = -1
current_task_time_point = -1
else:
current_task_index = queue.pop() # new task index
current_task_time_point = 0
line = ""
for x in range(len(res)):
line += str(res[x]) + " "
print(line)
main()
```
| 0
|
|
268
|
A
|
Games
|
PROGRAMMING
| 800
|
[
"brute force"
] | null | null |
Manao works on a sports TV. He's spent much time watching the football games of some country. After a while he began to notice different patterns. For example, each team has two sets of uniforms: home uniform and guest uniform. When a team plays a game at home, the players put on the home uniform. When a team plays as a guest on somebody else's stadium, the players put on the guest uniform. The only exception to that rule is: when the home uniform color of the host team matches the guests' uniform, the host team puts on its guest uniform as well. For each team the color of the home and guest uniform is different.
There are *n* teams taking part in the national championship. The championship consists of *n*·(*n*<=-<=1) games: each team invites each other team to its stadium. At this point Manao wondered: how many times during the championship is a host team going to put on the guest uniform? Note that the order of the games does not affect this number.
You know the colors of the home and guest uniform for each team. For simplicity, the colors are numbered by integers in such a way that no two distinct colors have the same number. Help Manao find the answer to his question.
|
The first line contains an integer *n* (2<=≤<=*n*<=≤<=30). Each of the following *n* lines contains a pair of distinct space-separated integers *h**i*, *a**i* (1<=≤<=*h**i*,<=*a**i*<=≤<=100) — the colors of the *i*-th team's home and guest uniforms, respectively.
|
In a single line print the number of games where the host team is going to play in the guest uniform.
|
[
"3\n1 2\n2 4\n3 4\n",
"4\n100 42\n42 100\n5 42\n100 5\n",
"2\n1 2\n1 2\n"
] |
[
"1\n",
"5\n",
"0\n"
] |
In the first test case the championship consists of 6 games. The only game with the event in question is the game between teams 2 and 1 on the stadium of team 2.
In the second test sample the host team will have to wear guest uniform in the games between teams: 1 and 2, 2 and 1, 2 and 3, 3 and 4, 4 and 2 (the host team is written first).
| 500
|
[
{
"input": "3\n1 2\n2 4\n3 4",
"output": "1"
},
{
"input": "4\n100 42\n42 100\n5 42\n100 5",
"output": "5"
},
{
"input": "2\n1 2\n1 2",
"output": "0"
},
{
"input": "7\n4 7\n52 55\n16 4\n55 4\n20 99\n3 4\n7 52",
"output": "6"
},
{
"input": "10\n68 42\n1 35\n25 70\n59 79\n65 63\n46 6\n28 82\n92 62\n43 96\n37 28",
"output": "1"
},
{
"input": "30\n10 39\n89 1\n78 58\n75 99\n36 13\n77 50\n6 97\n79 28\n27 52\n56 5\n93 96\n40 21\n33 74\n26 37\n53 59\n98 56\n61 65\n42 57\n9 7\n25 63\n74 34\n96 84\n95 47\n12 23\n34 21\n71 6\n27 13\n15 47\n64 14\n12 77",
"output": "6"
},
{
"input": "30\n46 100\n87 53\n34 84\n44 66\n23 20\n50 34\n90 66\n17 39\n13 22\n94 33\n92 46\n63 78\n26 48\n44 61\n3 19\n41 84\n62 31\n65 89\n23 28\n58 57\n19 85\n26 60\n75 66\n69 67\n76 15\n64 15\n36 72\n90 89\n42 69\n45 35",
"output": "4"
},
{
"input": "2\n46 6\n6 46",
"output": "2"
},
{
"input": "29\n8 18\n33 75\n69 22\n97 95\n1 97\n78 10\n88 18\n13 3\n19 64\n98 12\n79 92\n41 72\n69 15\n98 31\n57 74\n15 56\n36 37\n15 66\n63 100\n16 42\n47 56\n6 4\n73 15\n30 24\n27 71\n12 19\n88 69\n85 6\n50 11",
"output": "10"
},
{
"input": "23\n43 78\n31 28\n58 80\n66 63\n20 4\n51 95\n40 20\n50 14\n5 34\n36 39\n77 42\n64 97\n62 89\n16 56\n8 34\n58 16\n37 35\n37 66\n8 54\n50 36\n24 8\n68 48\n85 33",
"output": "6"
},
{
"input": "13\n76 58\n32 85\n99 79\n23 58\n96 59\n72 35\n53 43\n96 55\n41 78\n75 10\n28 11\n72 7\n52 73",
"output": "0"
},
{
"input": "18\n6 90\n70 79\n26 52\n67 81\n29 95\n41 32\n94 88\n18 58\n59 65\n51 56\n64 68\n34 2\n6 98\n95 82\n34 2\n40 98\n83 78\n29 2",
"output": "1"
},
{
"input": "18\n6 90\n100 79\n26 100\n67 100\n29 100\n100 32\n94 88\n18 58\n59 65\n51 56\n64 68\n34 2\n6 98\n95 82\n34 2\n40 98\n83 78\n29 100",
"output": "8"
},
{
"input": "30\n1 2\n1 2\n1 2\n1 2\n1 2\n1 2\n1 2\n1 2\n1 2\n1 2\n1 2\n1 2\n1 2\n1 2\n1 2\n2 1\n2 1\n2 1\n2 1\n2 1\n2 1\n2 1\n2 1\n2 1\n2 1\n2 1\n2 1\n2 1\n2 1\n2 1",
"output": "450"
},
{
"input": "30\n100 99\n58 59\n56 57\n54 55\n52 53\n50 51\n48 49\n46 47\n44 45\n42 43\n40 41\n38 39\n36 37\n34 35\n32 33\n30 31\n28 29\n26 27\n24 25\n22 23\n20 21\n18 19\n16 17\n14 15\n12 13\n10 11\n8 9\n6 7\n4 5\n2 3",
"output": "0"
},
{
"input": "15\n9 3\n2 6\n7 6\n5 10\n9 5\n8 1\n10 5\n2 8\n4 5\n9 8\n5 3\n3 8\n9 8\n4 10\n8 5",
"output": "20"
},
{
"input": "15\n2 1\n1 2\n1 2\n1 2\n2 1\n2 1\n2 1\n1 2\n2 1\n2 1\n2 1\n1 2\n2 1\n2 1\n1 2",
"output": "108"
},
{
"input": "25\n2 1\n1 2\n1 2\n1 2\n2 1\n1 2\n1 2\n1 2\n2 1\n2 1\n2 1\n1 2\n1 2\n1 2\n2 1\n2 1\n2 1\n1 2\n2 1\n1 2\n2 1\n2 1\n2 1\n2 1\n1 2",
"output": "312"
},
{
"input": "25\n91 57\n2 73\n54 57\n2 57\n23 57\n2 6\n57 54\n57 23\n91 54\n91 23\n57 23\n91 57\n54 2\n6 91\n57 54\n2 57\n57 91\n73 91\n57 23\n91 57\n2 73\n91 2\n23 6\n2 73\n23 6",
"output": "96"
},
{
"input": "28\n31 66\n31 91\n91 31\n97 66\n31 66\n31 66\n66 91\n91 31\n97 31\n91 97\n97 31\n66 31\n66 97\n91 31\n31 66\n31 66\n66 31\n31 97\n66 97\n97 31\n31 91\n66 91\n91 66\n31 66\n91 66\n66 31\n66 31\n91 97",
"output": "210"
},
{
"input": "29\n78 27\n50 68\n24 26\n68 43\n38 78\n26 38\n78 28\n28 26\n27 24\n23 38\n24 26\n24 43\n61 50\n38 78\n27 23\n61 26\n27 28\n43 23\n28 78\n43 27\n43 78\n27 61\n28 38\n61 78\n50 26\n43 27\n26 78\n28 50\n43 78",
"output": "73"
},
{
"input": "29\n80 27\n69 80\n27 80\n69 80\n80 27\n80 27\n80 27\n80 69\n27 69\n80 69\n80 27\n27 69\n69 27\n80 69\n27 69\n69 80\n27 69\n80 69\n80 27\n69 27\n27 69\n27 80\n80 27\n69 80\n27 69\n80 69\n69 80\n69 80\n27 80",
"output": "277"
},
{
"input": "30\n19 71\n7 89\n89 71\n21 7\n19 21\n7 89\n19 71\n89 8\n89 21\n19 8\n21 7\n8 89\n19 89\n7 21\n19 8\n19 7\n7 19\n8 21\n71 21\n71 89\n7 19\n7 19\n21 7\n21 19\n21 19\n71 8\n21 8\n71 19\n19 71\n8 21",
"output": "154"
},
{
"input": "30\n44 17\n44 17\n44 17\n17 44\n44 17\n44 17\n17 44\n17 44\n17 44\n44 17\n44 17\n44 17\n44 17\n44 17\n17 44\n17 44\n17 44\n44 17\n44 17\n17 44\n44 17\n44 17\n44 17\n17 44\n17 44\n44 17\n17 44\n44 17\n44 17\n44 17",
"output": "418"
},
{
"input": "22\n78 92\n15 92\n92 78\n78 80\n92 16\n24 80\n92 16\n16 92\n78 16\n24 78\n80 78\n92 80\n16 80\n80 78\n15 78\n92 16\n24 15\n24 80\n80 16\n16 80\n92 80\n24 80",
"output": "74"
},
{
"input": "24\n9 83\n90 31\n83 3\n83 3\n21 31\n83 3\n32 31\n12 21\n31 21\n90 32\n32 21\n12 9\n12 31\n9 83\n83 12\n32 3\n32 83\n90 31\n9 32\n31 21\n83 90\n32 21\n21 3\n32 9",
"output": "59"
},
{
"input": "30\n67 21\n85 39\n85 87\n21 39\n66 85\n10 95\n10 21\n87 85\n82 21\n67 21\n95 10\n21 39\n82 21\n21 66\n66 39\n95 30\n67 85\n66 82\n85 82\n21 66\n10 39\n67 10\n21 85\n10 82\n85 95\n10 85\n21 39\n85 39\n39 10\n95 67",
"output": "100"
},
{
"input": "4\n8 7\n8 7\n7 8\n7 8",
"output": "8"
},
{
"input": "6\n1 2\n1 2\n1 2\n1 2\n1 2\n2 1",
"output": "10"
},
{
"input": "12\n1 2\n1 2\n1 2\n1 2\n1 2\n1 2\n2 1\n2 1\n2 1\n2 1\n2 1\n2 1",
"output": "72"
},
{
"input": "4\n1 2\n1 2\n2 1\n2 1",
"output": "8"
}
] | 1,678,870,330
| 2,147,483,647
|
Python 3
|
RUNTIME_ERROR
|
TESTS
| 0
| 30
| 0
|
n=int(input())
h=[]
g=[]
c=0
while(n):
a,b=map(int,input().split())
h.append(a)
g.append(b)
for i in h:
c+=g.count(i)
print(c)
|
Title: Games
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
Manao works on a sports TV. He's spent much time watching the football games of some country. After a while he began to notice different patterns. For example, each team has two sets of uniforms: home uniform and guest uniform. When a team plays a game at home, the players put on the home uniform. When a team plays as a guest on somebody else's stadium, the players put on the guest uniform. The only exception to that rule is: when the home uniform color of the host team matches the guests' uniform, the host team puts on its guest uniform as well. For each team the color of the home and guest uniform is different.
There are *n* teams taking part in the national championship. The championship consists of *n*·(*n*<=-<=1) games: each team invites each other team to its stadium. At this point Manao wondered: how many times during the championship is a host team going to put on the guest uniform? Note that the order of the games does not affect this number.
You know the colors of the home and guest uniform for each team. For simplicity, the colors are numbered by integers in such a way that no two distinct colors have the same number. Help Manao find the answer to his question.
Input Specification:
The first line contains an integer *n* (2<=≤<=*n*<=≤<=30). Each of the following *n* lines contains a pair of distinct space-separated integers *h**i*, *a**i* (1<=≤<=*h**i*,<=*a**i*<=≤<=100) — the colors of the *i*-th team's home and guest uniforms, respectively.
Output Specification:
In a single line print the number of games where the host team is going to play in the guest uniform.
Demo Input:
['3\n1 2\n2 4\n3 4\n', '4\n100 42\n42 100\n5 42\n100 5\n', '2\n1 2\n1 2\n']
Demo Output:
['1\n', '5\n', '0\n']
Note:
In the first test case the championship consists of 6 games. The only game with the event in question is the game between teams 2 and 1 on the stadium of team 2.
In the second test sample the host team will have to wear guest uniform in the games between teams: 1 and 2, 2 and 1, 2 and 3, 3 and 4, 4 and 2 (the host team is written first).
|
```python
n=int(input())
h=[]
g=[]
c=0
while(n):
a,b=map(int,input().split())
h.append(a)
g.append(b)
for i in h:
c+=g.count(i)
print(c)
```
| -1
|
|
373
|
B
|
Making Sequences is Fun
|
PROGRAMMING
| 1,600
|
[
"binary search",
"implementation",
"math"
] | null | null |
We'll define *S*(*n*) for positive integer *n* as follows: the number of the *n*'s digits in the decimal base. For example, *S*(893)<==<=3, *S*(114514)<==<=6.
You want to make a consecutive integer sequence starting from number *m* (*m*,<=*m*<=+<=1,<=...). But you need to pay *S*(*n*)·*k* to add the number *n* to the sequence.
You can spend a cost up to *w*, and you want to make the sequence as long as possible. Write a program that tells sequence's maximum length.
|
The first line contains three integers *w* (1<=≤<=*w*<=≤<=1016), *m* (1<=≤<=*m*<=≤<=1016), *k* (1<=≤<=*k*<=≤<=109).
Please, do not write the %lld specifier to read or write 64-bit integers in C++. It is preferred to use the cin, cout streams or the %I64d specifier.
|
The first line should contain a single integer — the answer to the problem.
|
[
"9 1 1\n",
"77 7 7\n",
"114 5 14\n",
"1 1 2\n"
] |
[
"9\n",
"7\n",
"6\n",
"0\n"
] |
none
| 1,000
|
[
{
"input": "9 1 1",
"output": "9"
},
{
"input": "77 7 7",
"output": "7"
},
{
"input": "114 5 14",
"output": "6"
},
{
"input": "1 1 2",
"output": "0"
},
{
"input": "462 183 8",
"output": "19"
},
{
"input": "462 183 8",
"output": "19"
},
{
"input": "462 183 8",
"output": "19"
},
{
"input": "462 183 8",
"output": "19"
},
{
"input": "462 183 8",
"output": "19"
},
{
"input": "462 183 8",
"output": "19"
},
{
"input": "462 183 8",
"output": "19"
},
{
"input": "10000000000000000 1 1",
"output": "674074074074073"
},
{
"input": "2155990066796462 2710473050636183 563261158",
"output": "239230"
},
{
"input": "552719169048748 7822730034794389 374302919",
"output": "92291"
},
{
"input": "6895788044242644 3474119895793364 732614708",
"output": "588285"
},
{
"input": "9230573804495452 8577408935470783 90893866",
"output": "6347082"
},
{
"input": "5363062262667637 2932858345469643 449197576",
"output": "746200"
},
{
"input": "1951414609070432 8979282171178729 260239468",
"output": "468658"
},
{
"input": "6289344232651169 4170875805886064 618522710",
"output": "635520"
},
{
"input": "111984789523940 8017182602114316 976839488",
"output": "7164"
},
{
"input": "3663662721733869 4845943245608254 787880219",
"output": "290626"
},
{
"input": "10000000000000000 10000000000000000 1",
"output": "588235294117647"
},
{
"input": "10000000000000000 9999999999999999 1",
"output": "588235294117647"
},
{
"input": "9999999999999999 1 1",
"output": "674074074074073"
},
{
"input": "3 1 4",
"output": "0"
},
{
"input": "9999999999999998 1 1",
"output": "674074074074072"
},
{
"input": "1 1000000000000000 1",
"output": "0"
},
{
"input": "1 1000000000000000 1000000000",
"output": "0"
},
{
"input": "10000000000000000 10000000000000000 1000000000",
"output": "588235"
},
{
"input": "10000000000000000 10000000000000000 1",
"output": "588235294117647"
},
{
"input": "121212121 3434343434 56",
"output": "216450"
},
{
"input": "1 1 1",
"output": "1"
},
{
"input": "98 55 1",
"output": "47"
},
{
"input": "1 10000000000000000 123456",
"output": "0"
},
{
"input": "10000000000000000 1000000000000001 1000000000",
"output": "625000"
}
] | 1,689,170,238
| 2,147,483,647
|
PyPy 3-64
|
WRONG_ANSWER
|
TESTS
| 0
| 30
| 0
|
print("_RANDOM_GUESS_1689170238.1781352")# 1689170238.1781561
|
Title: Making Sequences is Fun
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
We'll define *S*(*n*) for positive integer *n* as follows: the number of the *n*'s digits in the decimal base. For example, *S*(893)<==<=3, *S*(114514)<==<=6.
You want to make a consecutive integer sequence starting from number *m* (*m*,<=*m*<=+<=1,<=...). But you need to pay *S*(*n*)·*k* to add the number *n* to the sequence.
You can spend a cost up to *w*, and you want to make the sequence as long as possible. Write a program that tells sequence's maximum length.
Input Specification:
The first line contains three integers *w* (1<=≤<=*w*<=≤<=1016), *m* (1<=≤<=*m*<=≤<=1016), *k* (1<=≤<=*k*<=≤<=109).
Please, do not write the %lld specifier to read or write 64-bit integers in C++. It is preferred to use the cin, cout streams or the %I64d specifier.
Output Specification:
The first line should contain a single integer — the answer to the problem.
Demo Input:
['9 1 1\n', '77 7 7\n', '114 5 14\n', '1 1 2\n']
Demo Output:
['9\n', '7\n', '6\n', '0\n']
Note:
none
|
```python
print("_RANDOM_GUESS_1689170238.1781352")# 1689170238.1781561
```
| 0
|
|
839
|
C
|
Journey
|
PROGRAMMING
| 1,500
|
[
"dfs and similar",
"dp",
"graphs",
"probabilities",
"trees"
] | null | null |
There are *n* cities and *n*<=-<=1 roads in the Seven Kingdoms, each road connects two cities and we can reach any city from any other by the roads.
Theon and Yara Greyjoy are on a horse in the first city, they are starting traveling through the roads. But the weather is foggy, so they can’t see where the horse brings them. When the horse reaches a city (including the first one), it goes to one of the cities connected to the current city. But it is a strange horse, it only goes to cities in which they weren't before. In each such city, the horse goes with equal probabilities and it stops when there are no such cities.
Let the length of each road be 1. The journey starts in the city 1. What is the expected length (expected value of length) of their journey? You can read about expected (average) value by the link [https://en.wikipedia.org/wiki/Expected_value](https://en.wikipedia.org/wiki/Expected_value).
|
The first line contains a single integer *n* (1<=≤<=*n*<=≤<=100000) — number of cities.
Then *n*<=-<=1 lines follow. The *i*-th line of these lines contains two integers *u**i* and *v**i* (1<=≤<=*u**i*,<=*v**i*<=≤<=*n*, *u**i*<=≠<=*v**i*) — the cities connected by the *i*-th road.
It is guaranteed that one can reach any city from any other by the roads.
|
Print a number — the expected length of their journey. The journey starts in the city 1.
Your answer will be considered correct if its absolute or relative error does not exceed 10<=-<=6.
Namely: let's assume that your answer is *a*, and the answer of the jury is *b*. The checker program will consider your answer correct, if .
|
[
"4\n1 2\n1 3\n2 4\n",
"5\n1 2\n1 3\n3 4\n2 5\n"
] |
[
"1.500000000000000\n",
"2.000000000000000\n"
] |
In the first sample, their journey may end in cities 3 or 4 with equal probability. The distance to city 3 is 1 and to city 4 is 2, so the expected length is 1.5.
In the second sample, their journey may end in city 4 or 5. The distance to the both cities is 2, so the expected length is 2.
| 1,500
|
[
{
"input": "4\n1 2\n1 3\n2 4",
"output": "1.500000000000000"
},
{
"input": "5\n1 2\n1 3\n3 4\n2 5",
"output": "2.000000000000000"
},
{
"input": "70\n1 25\n57 1\n18 1\n65 1\n38 1\n1 41\n1 5\n1 69\n1 3\n31 1\n1 8\n1 9\n53 1\n70 1\n45 1\n1 24\n1 42\n1 30\n1 12\n1 37\n64 1\n1 28\n1 58\n1 22\n11 1\n1 4\n1 27\n1 16\n1 21\n54 1\n1 51\n1 43\n29 1\n56 1\n1 39\n32 1\n1 15\n1 17\n1 19\n1 40\n36 1\n48 1\n63 1\n1 7\n1 47\n1 13\n1 46\n60 1\n1 6\n23 1\n20 1\n1 52\n2 1\n26 1\n1 59\n1 66\n10 1\n1 62\n1 68\n1 55\n50 1\n33 1\n44 1\n1 34\n1 35\n1 61\n14 1\n67 1\n49 1",
"output": "1.000000000000000"
},
{
"input": "10\n8 6\n9 10\n8 7\n1 4\n1 8\n9 5\n9 8\n2 5\n3 1",
"output": "1.500000000000000"
},
{
"input": "1",
"output": "0.000000000000000"
}
] | 1,641,944,765
| 2,147,483,647
|
PyPy 3
|
RUNTIME_ERROR
|
TESTS
| 3
| 124
| 3,174,400
|
import sys
fin = sys.stdin
def solve(n, edges):
from_to = [[] for i in range(n)]
for a, b in edges:
from_to[a-1].append(b-1)
from_to[b-1].append(a-1)
path = [0]
visited = set([0])
length = []
for i in range(n - 1):
new_path = []
for j in path:
new_nodes = set(from_to[j]).difference(visited)
if not new_nodes:
length.append(i)
else:
for k in new_nodes:
visited.add(k)
new_path.append(k)
path = new_path
# print(length)
return sum(length) / len(length)
n = int(fin.readline())
edges = [tuple(map(int, fin.readline().split())) for i in range(n - 1)]
print(solve(n, edges))
|
Title: Journey
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
There are *n* cities and *n*<=-<=1 roads in the Seven Kingdoms, each road connects two cities and we can reach any city from any other by the roads.
Theon and Yara Greyjoy are on a horse in the first city, they are starting traveling through the roads. But the weather is foggy, so they can’t see where the horse brings them. When the horse reaches a city (including the first one), it goes to one of the cities connected to the current city. But it is a strange horse, it only goes to cities in which they weren't before. In each such city, the horse goes with equal probabilities and it stops when there are no such cities.
Let the length of each road be 1. The journey starts in the city 1. What is the expected length (expected value of length) of their journey? You can read about expected (average) value by the link [https://en.wikipedia.org/wiki/Expected_value](https://en.wikipedia.org/wiki/Expected_value).
Input Specification:
The first line contains a single integer *n* (1<=≤<=*n*<=≤<=100000) — number of cities.
Then *n*<=-<=1 lines follow. The *i*-th line of these lines contains two integers *u**i* and *v**i* (1<=≤<=*u**i*,<=*v**i*<=≤<=*n*, *u**i*<=≠<=*v**i*) — the cities connected by the *i*-th road.
It is guaranteed that one can reach any city from any other by the roads.
Output Specification:
Print a number — the expected length of their journey. The journey starts in the city 1.
Your answer will be considered correct if its absolute or relative error does not exceed 10<=-<=6.
Namely: let's assume that your answer is *a*, and the answer of the jury is *b*. The checker program will consider your answer correct, if .
Demo Input:
['4\n1 2\n1 3\n2 4\n', '5\n1 2\n1 3\n3 4\n2 5\n']
Demo Output:
['1.500000000000000\n', '2.000000000000000\n']
Note:
In the first sample, their journey may end in cities 3 or 4 with equal probability. The distance to city 3 is 1 and to city 4 is 2, so the expected length is 1.5.
In the second sample, their journey may end in city 4 or 5. The distance to the both cities is 2, so the expected length is 2.
|
```python
import sys
fin = sys.stdin
def solve(n, edges):
from_to = [[] for i in range(n)]
for a, b in edges:
from_to[a-1].append(b-1)
from_to[b-1].append(a-1)
path = [0]
visited = set([0])
length = []
for i in range(n - 1):
new_path = []
for j in path:
new_nodes = set(from_to[j]).difference(visited)
if not new_nodes:
length.append(i)
else:
for k in new_nodes:
visited.add(k)
new_path.append(k)
path = new_path
# print(length)
return sum(length) / len(length)
n = int(fin.readline())
edges = [tuple(map(int, fin.readline().split())) for i in range(n - 1)]
print(solve(n, edges))
```
| -1
|
|
59
|
A
|
Word
|
PROGRAMMING
| 800
|
[
"implementation",
"strings"
] |
A. Word
|
2
|
256
|
Vasya is very upset that many people on the Net mix uppercase and lowercase letters in one word. That's why he decided to invent an extension for his favorite browser that would change the letters' register in every word so that it either only consisted of lowercase letters or, vice versa, only of uppercase ones. At that as little as possible letters should be changed in the word. For example, the word HoUse must be replaced with house, and the word ViP — with VIP. If a word contains an equal number of uppercase and lowercase letters, you should replace all the letters with lowercase ones. For example, maTRIx should be replaced by matrix. Your task is to use the given method on one given word.
|
The first line contains a word *s* — it consists of uppercase and lowercase Latin letters and possesses the length from 1 to 100.
|
Print the corrected word *s*. If the given word *s* has strictly more uppercase letters, make the word written in the uppercase register, otherwise - in the lowercase one.
|
[
"HoUse\n",
"ViP\n",
"maTRIx\n"
] |
[
"house\n",
"VIP\n",
"matrix\n"
] |
none
| 500
|
[
{
"input": "HoUse",
"output": "house"
},
{
"input": "ViP",
"output": "VIP"
},
{
"input": "maTRIx",
"output": "matrix"
},
{
"input": "BNHWpnpawg",
"output": "bnhwpnpawg"
},
{
"input": "VTYGP",
"output": "VTYGP"
},
{
"input": "CHNenu",
"output": "chnenu"
},
{
"input": "ERPZGrodyu",
"output": "erpzgrodyu"
},
{
"input": "KSXBXWpebh",
"output": "KSXBXWPEBH"
},
{
"input": "qvxpqullmcbegsdskddortcvxyqlbvxmmkhevovnezubvpvnrcajpxraeaxizgaowtfkzywvhnbgzsxbhkaipcmoumtikkiyyaiv",
"output": "qvxpqullmcbegsdskddortcvxyqlbvxmmkhevovnezubvpvnrcajpxraeaxizgaowtfkzywvhnbgzsxbhkaipcmoumtikkiyyaiv"
},
{
"input": "Amnhaxtaopjzrkqlbroiyipitndczpunwygstmzevgyjdzyanxkdqnvgkikfabwouwkkbzuiuvgvxgpizsvqsbwepktpdrgdkmfd",
"output": "amnhaxtaopjzrkqlbroiyipitndczpunwygstmzevgyjdzyanxkdqnvgkikfabwouwkkbzuiuvgvxgpizsvqsbwepktpdrgdkmfd"
},
{
"input": "ISAGFJFARYFBLOPQDSHWGMCNKMFTLVFUGNJEWGWNBLXUIATXEkqiettmmjgydwcpafqrppdsrrrtguinqbgmzzfqwonkpgpcwenv",
"output": "isagfjfaryfblopqdshwgmcnkmftlvfugnjewgwnblxuiatxekqiettmmjgydwcpafqrppdsrrrtguinqbgmzzfqwonkpgpcwenv"
},
{
"input": "XHRPXZEGHSOCJPICUIXSKFUZUPYTSGJSDIYBCMNMNBPNDBXLXBzhbfnqvwcffvrdhtickyqhupmcehlsyvncqmfhautvxudqdhgg",
"output": "xhrpxzeghsocjpicuixskfuzupytsgjsdiybcmnmnbpndbxlxbzhbfnqvwcffvrdhtickyqhupmcehlsyvncqmfhautvxudqdhgg"
},
{
"input": "RJIQZMJCIMSNDBOHBRAWIENODSALETAKGKPYUFGVEFGCBRENZGAdkcetqjljtmttlonpekcovdzebzdkzggwfsxhapmjkdbuceak",
"output": "RJIQZMJCIMSNDBOHBRAWIENODSALETAKGKPYUFGVEFGCBRENZGADKCETQJLJTMTTLONPEKCOVDZEBZDKZGGWFSXHAPMJKDBUCEAK"
},
{
"input": "DWLWOBHNMMGTFOLFAECKBRNNGLYLYDXTGTVRLMEESZOIUATZZZXUFUZDLSJXMEVRTESSFBWLNZZCLCQWEVNNUCXYVHNGNXHCBDFw",
"output": "DWLWOBHNMMGTFOLFAECKBRNNGLYLYDXTGTVRLMEESZOIUATZZZXUFUZDLSJXMEVRTESSFBWLNZZCLCQWEVNNUCXYVHNGNXHCBDFW"
},
{
"input": "NYCNHJWGBOCOTSPETKKHVWFGAQYNHOVJWJHCIEFOUQZXOYUIEQDZALFKTEHTVDBVJMEUBJUBCMNVPWGDPNCHQHZJRCHYRFPVIGUB",
"output": "NYCNHJWGBOCOTSPETKKHVWFGAQYNHOVJWJHCIEFOUQZXOYUIEQDZALFKTEHTVDBVJMEUBJUBCMNVPWGDPNCHQHZJRCHYRFPVIGUB"
},
{
"input": "igxoixiecetohtgjgbqzvlaobkhstejxdklghowtvwunnnvauriohuspsdmpzckprwajyxldoyckgjivjpmbfqtszmtocovxwge",
"output": "igxoixiecetohtgjgbqzvlaobkhstejxdklghowtvwunnnvauriohuspsdmpzckprwajyxldoyckgjivjpmbfqtszmtocovxwge"
},
{
"input": "Ykkekrsqolzryiwsmdlnbmfautxxxauoojrddvwklgnlyrfcvhorrzbmtcrvpaypqhcffdqhwziipyyskcmztjprjqvmzzqhqnw",
"output": "ykkekrsqolzryiwsmdlnbmfautxxxauoojrddvwklgnlyrfcvhorrzbmtcrvpaypqhcffdqhwziipyyskcmztjprjqvmzzqhqnw"
},
{
"input": "YQOMLKYAORUQQUCQZCDYMIVDHGWZFFRMUVTAWCHERFPMNRYRIkgqrciokgajamehmcxgerpudvsqyonjonsxgbnefftzmygncks",
"output": "yqomlkyaoruqqucqzcdymivdhgwzffrmuvtawcherfpmnryrikgqrciokgajamehmcxgerpudvsqyonjonsxgbnefftzmygncks"
},
{
"input": "CDOZDPBVVVHNBJVBYHEOXWFLJKRWJCAJMIFCOZWWYFKVWOGTVJcuusigdqfkumewjtdyitveeiaybwrhomrwmpdipjwiuxfnwuz",
"output": "CDOZDPBVVVHNBJVBYHEOXWFLJKRWJCAJMIFCOZWWYFKVWOGTVJCUUSIGDQFKUMEWJTDYITVEEIAYBWRHOMRWMPDIPJWIUXFNWUZ"
},
{
"input": "WHIUVEXHVOOIJIDVJVPQUBJMEVPMPDKQWJKFBZSGSKUXMIPPMJWuckzcpxosodcjaaakvlxpbiigsiauviilylnnqlyucziihqg",
"output": "WHIUVEXHVOOIJIDVJVPQUBJMEVPMPDKQWJKFBZSGSKUXMIPPMJWUCKZCPXOSODCJAAAKVLXPBIIGSIAUVIILYLNNQLYUCZIIHQG"
},
{
"input": "VGHUNFOXKETUYMZDJNGTAOIOANYXSGYNFOGOFFLDAWEUKYFOZXCJTCAFXZYLQZERYZLRSQXYQGAPCSUDPMEYTNCTTTMFAGVDWBO",
"output": "VGHUNFOXKETUYMZDJNGTAOIOANYXSGYNFOGOFFLDAWEUKYFOZXCJTCAFXZYLQZERYZLRSQXYQGAPCSUDPMEYTNCTTTMFAGVDWBO"
},
{
"input": "EDUANHCQDOCJHFONTTSWBUJSTTIXBIXMAIUFSGFLXWAYIURTVAVZPYQDLAWIGCLMPHXCEFCJPFAAHXVNGQUFNHADAIUAZIDMHDd",
"output": "EDUANHCQDOCJHFONTTSWBUJSTTIXBIXMAIUFSGFLXWAYIURTVAVZPYQDLAWIGCLMPHXCEFCJPFAAHXVNGQUFNHADAIUAZIDMHDD"
},
{
"input": "EBWOVSNLYTWWXrnovgugogtjahnmatomubebyxakas",
"output": "ebwovsnlytwwxrnovgugogtjahnmatomubebyxakas"
},
{
"input": "AORNNDKTRLRVGDPXJKXFTPFpopuzrlqumrxssskvbm",
"output": "AORNNDKTRLRVGDPXJKXFTPFPOPUZRLQUMRXSSSKVBM"
},
{
"input": "DBBZJCWQEVGYHEEUHJAWRHBDPsnplijbwtdibqrrheebfxqcvn",
"output": "dbbzjcwqevgyheeuhjawrhbdpsnplijbwtdibqrrheebfxqcvn"
},
{
"input": "t",
"output": "t"
},
{
"input": "N",
"output": "N"
},
{
"input": "kv",
"output": "kv"
},
{
"input": "Ur",
"output": "ur"
},
{
"input": "CN",
"output": "CN"
}
] | 1,622,440,816
| 2,147,483,647
|
Python 3
|
OK
|
TESTS
| 30
| 154
| 512,000
|
from string import *
word = input()
counter_lower = 0
counter_upper = 0
for letter in word:
if letter in ascii_lowercase:
counter_lower += 1
elif letter in ascii_uppercase:
counter_upper += 1
if counter_lower >= counter_upper:
print(word.lower())
else:
print(word.upper())
|
Title: Word
Time Limit: 2 seconds
Memory Limit: 256 megabytes
Problem Description:
Vasya is very upset that many people on the Net mix uppercase and lowercase letters in one word. That's why he decided to invent an extension for his favorite browser that would change the letters' register in every word so that it either only consisted of lowercase letters or, vice versa, only of uppercase ones. At that as little as possible letters should be changed in the word. For example, the word HoUse must be replaced with house, and the word ViP — with VIP. If a word contains an equal number of uppercase and lowercase letters, you should replace all the letters with lowercase ones. For example, maTRIx should be replaced by matrix. Your task is to use the given method on one given word.
Input Specification:
The first line contains a word *s* — it consists of uppercase and lowercase Latin letters and possesses the length from 1 to 100.
Output Specification:
Print the corrected word *s*. If the given word *s* has strictly more uppercase letters, make the word written in the uppercase register, otherwise - in the lowercase one.
Demo Input:
['HoUse\n', 'ViP\n', 'maTRIx\n']
Demo Output:
['house\n', 'VIP\n', 'matrix\n']
Note:
none
|
```python
from string import *
word = input()
counter_lower = 0
counter_upper = 0
for letter in word:
if letter in ascii_lowercase:
counter_lower += 1
elif letter in ascii_uppercase:
counter_upper += 1
if counter_lower >= counter_upper:
print(word.lower())
else:
print(word.upper())
```
| 3.960546
|
620
|
B
|
Grandfather Dovlet’s calculator
|
PROGRAMMING
| 1,000
|
[
"implementation"
] | null | null |
Once Max found an electronic calculator from his grandfather Dovlet's chest. He noticed that the numbers were written with seven-segment indicators ([https://en.wikipedia.org/wiki/Seven-segment_display](https://en.wikipedia.org/wiki/Seven-segment_display)).
Max starts to type all the values from *a* to *b*. After typing each number Max resets the calculator. Find the total number of segments printed on the calculator.
For example if *a*<==<=1 and *b*<==<=3 then at first the calculator will print 2 segments, then — 5 segments and at last it will print 5 segments. So the total number of printed segments is 12.
|
The only line contains two integers *a*,<=*b* (1<=≤<=*a*<=≤<=*b*<=≤<=106) — the first and the last number typed by Max.
|
Print the only integer *a* — the total number of printed segments.
|
[
"1 3\n",
"10 15\n"
] |
[
"12\n",
"39\n"
] |
none
| 0
|
[
{
"input": "1 3",
"output": "12"
},
{
"input": "10 15",
"output": "39"
},
{
"input": "1 100",
"output": "928"
},
{
"input": "100 10000",
"output": "188446"
},
{
"input": "213 221442",
"output": "5645356"
},
{
"input": "1 1000000",
"output": "28733372"
},
{
"input": "1000000 1000000",
"output": "38"
},
{
"input": "222145 353252",
"output": "3860750"
},
{
"input": "2 1000000",
"output": "28733370"
},
{
"input": "1 999999",
"output": "28733334"
},
{
"input": "192 200",
"output": "122"
}
] | 1,637,648,763
| 2,147,483,647
|
Python 3
|
OK
|
TESTS
| 11
| 826
| 0
|
string_list = ['0', '1', '2', '3', '4', '5', '6', '7', '8', '9']
segments = [6, 2, 5, 5, 4, 5, 6, 3, 7, 6]
reference_dict = dict(zip(string_list, segments))
numlist = input().split()
first = int(numlist[0])
second = int(numlist[1])
def segment_find(reference_dict, first, second):
adder = 0
for i in range(first, second + 1):
for n in str(i):
adder += reference_dict[n]
print(adder)
segment_find(reference_dict, first, second)
|
Title: Grandfather Dovlet’s calculator
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
Once Max found an electronic calculator from his grandfather Dovlet's chest. He noticed that the numbers were written with seven-segment indicators ([https://en.wikipedia.org/wiki/Seven-segment_display](https://en.wikipedia.org/wiki/Seven-segment_display)).
Max starts to type all the values from *a* to *b*. After typing each number Max resets the calculator. Find the total number of segments printed on the calculator.
For example if *a*<==<=1 and *b*<==<=3 then at first the calculator will print 2 segments, then — 5 segments and at last it will print 5 segments. So the total number of printed segments is 12.
Input Specification:
The only line contains two integers *a*,<=*b* (1<=≤<=*a*<=≤<=*b*<=≤<=106) — the first and the last number typed by Max.
Output Specification:
Print the only integer *a* — the total number of printed segments.
Demo Input:
['1 3\n', '10 15\n']
Demo Output:
['12\n', '39\n']
Note:
none
|
```python
string_list = ['0', '1', '2', '3', '4', '5', '6', '7', '8', '9']
segments = [6, 2, 5, 5, 4, 5, 6, 3, 7, 6]
reference_dict = dict(zip(string_list, segments))
numlist = input().split()
first = int(numlist[0])
second = int(numlist[1])
def segment_find(reference_dict, first, second):
adder = 0
for i in range(first, second + 1):
for n in str(i):
adder += reference_dict[n]
print(adder)
segment_find(reference_dict, first, second)
```
| 3
|
|
3
|
C
|
Tic-tac-toe
|
PROGRAMMING
| 1,800
|
[
"brute force",
"games",
"implementation"
] |
C. Tic-tac-toe
|
1
|
64
|
Certainly, everyone is familiar with tic-tac-toe game. The rules are very simple indeed. Two players take turns marking the cells in a 3<=×<=3 grid (one player always draws crosses, the other — noughts). The player who succeeds first in placing three of his marks in a horizontal, vertical or diagonal line wins, and the game is finished. The player who draws crosses goes first. If the grid is filled, but neither Xs, nor 0s form the required line, a draw is announced.
You are given a 3<=×<=3 grid, each grid cell is empty, or occupied by a cross or a nought. You have to find the player (first or second), whose turn is next, or print one of the verdicts below:
- illegal — if the given board layout can't appear during a valid game; - the first player won — if in the given board layout the first player has just won; - the second player won — if in the given board layout the second player has just won; - draw — if the given board layout has just let to a draw.
|
The input consists of three lines, each of the lines contains characters ".", "X" or "0" (a period, a capital letter X, or a digit zero).
|
Print one of the six verdicts: first, second, illegal, the first player won, the second player won or draw.
|
[
"X0X\n.0.\n.X.\n"
] |
[
"second\n"
] |
none
| 0
|
[
{
"input": "X0X\n.0.\n.X.",
"output": "second"
},
{
"input": "0.X\nXX.\n000",
"output": "illegal"
},
{
"input": "XXX\n.0.\n000",
"output": "illegal"
},
{
"input": "XXX\n...\n000",
"output": "illegal"
},
{
"input": "X.X\nX..\n00.",
"output": "second"
},
{
"input": "X.X\nX.0\n0.0",
"output": "first"
},
{
"input": "XXX\nX00\nX00",
"output": "the first player won"
},
{
"input": "000\nX.X\nX.X",
"output": "illegal"
},
{
"input": "XXX\n0.0\n0..",
"output": "illegal"
},
{
"input": "X0X\n0X0\nX0X",
"output": "the first player won"
},
{
"input": "XX.\nX0X\nX..",
"output": "illegal"
},
{
"input": "X0X\n0X0\nX..",
"output": "the first player won"
},
{
"input": "XX0\n0..\n000",
"output": "illegal"
},
{
"input": "XXX\n0..\n.0.",
"output": "the first player won"
},
{
"input": "XXX\nX..\n.00",
"output": "illegal"
},
{
"input": "X00\n0.0\nXX0",
"output": "illegal"
},
{
"input": "0.0\n0XX\n..0",
"output": "illegal"
},
{
"input": ".00\nX.X\n0..",
"output": "illegal"
},
{
"input": "..0\n.00\n.0X",
"output": "illegal"
},
{
"input": "..0\n0..\n00X",
"output": "illegal"
},
{
"input": "..0\n.XX\nX..",
"output": "illegal"
},
{
"input": "0.X\n0X0\n.00",
"output": "illegal"
},
{
"input": "..X\n0X0\n0X.",
"output": "first"
},
{
"input": "0X0\nX..\nX.0",
"output": "first"
},
{
"input": ".0.\nX.X\n0..",
"output": "first"
},
{
"input": "0X0\n00X\n.00",
"output": "illegal"
},
{
"input": ".0.\n.X0\nX..",
"output": "first"
},
{
"input": "00X\n0.X\n00X",
"output": "illegal"
},
{
"input": "00X\n0XX\n0X.",
"output": "the second player won"
},
{
"input": "X00\n..0\nX.X",
"output": "first"
},
{
"input": "X00\nX00\n.X0",
"output": "illegal"
},
{
"input": "X0X\n.X0\n0..",
"output": "first"
},
{
"input": "..0\nXXX\n000",
"output": "illegal"
},
{
"input": "XXX\n...\n.0.",
"output": "illegal"
},
{
"input": "0..\n000\nX0X",
"output": "illegal"
},
{
"input": ".00\n0X.\n0.0",
"output": "illegal"
},
{
"input": "X..\nX00\n0.0",
"output": "illegal"
},
{
"input": ".X0\nXX0\nX.X",
"output": "illegal"
},
{
"input": "X.X\n0.0\nX..",
"output": "second"
},
{
"input": "00X\n.00\n..0",
"output": "illegal"
},
{
"input": "..0\n0.X\n00.",
"output": "illegal"
},
{
"input": "0.X\nX0X\n.X0",
"output": "illegal"
},
{
"input": "0X.\n.X.\n0X0",
"output": "illegal"
},
{
"input": "00.\nX0.\n..X",
"output": "illegal"
},
{
"input": "..X\n.00\nXX.",
"output": "second"
},
{
"input": ".00\n.0.\n.X.",
"output": "illegal"
},
{
"input": "XX0\nX.0\nXX0",
"output": "illegal"
},
{
"input": "00.\n00.\nX.X",
"output": "illegal"
},
{
"input": "X00\nX.0\nX.0",
"output": "illegal"
},
{
"input": "0X.\n0XX\n000",
"output": "illegal"
},
{
"input": "00.\n00.\n.X.",
"output": "illegal"
},
{
"input": "X0X\n00.\n0.X",
"output": "illegal"
},
{
"input": "XX0\nXXX\n0X0",
"output": "illegal"
},
{
"input": "XX0\n..X\nXX0",
"output": "illegal"
},
{
"input": "0X.\n..X\nX..",
"output": "illegal"
},
{
"input": "...\nX0.\nXX0",
"output": "second"
},
{
"input": "..X\n.0.\n0..",
"output": "illegal"
},
{
"input": "00X\nXX.\n00X",
"output": "first"
},
{
"input": "..0\nXX0\n..X",
"output": "second"
},
{
"input": ".0.\n.00\nX00",
"output": "illegal"
},
{
"input": "X00\n.XX\n00.",
"output": "illegal"
},
{
"input": ".00\n0.X\n000",
"output": "illegal"
},
{
"input": "X0.\n..0\nX.0",
"output": "illegal"
},
{
"input": "X0X\n.XX\n00.",
"output": "second"
},
{
"input": "0X.\n00.\n.X.",
"output": "illegal"
},
{
"input": ".0.\n...\n0.0",
"output": "illegal"
},
{
"input": "..X\nX00\n0.0",
"output": "illegal"
},
{
"input": "0XX\n...\nX0.",
"output": "second"
},
{
"input": "X.X\n0X.\n.0X",
"output": "illegal"
},
{
"input": "XX0\nX.X\n00.",
"output": "second"
},
{
"input": ".0X\n.00\n00.",
"output": "illegal"
},
{
"input": ".XX\nXXX\n0..",
"output": "illegal"
},
{
"input": "XX0\n.X0\n.0.",
"output": "first"
},
{
"input": "X00\n0.X\nX..",
"output": "first"
},
{
"input": "X..\n.X0\nX0.",
"output": "second"
},
{
"input": ".0X\nX..\nXXX",
"output": "illegal"
},
{
"input": "X0X\nXXX\nX.X",
"output": "illegal"
},
{
"input": ".00\nX0.\n00X",
"output": "illegal"
},
{
"input": "0XX\n.X0\n0.0",
"output": "illegal"
},
{
"input": "00X\nXXX\n..0",
"output": "the first player won"
},
{
"input": "X0X\n...\n.X.",
"output": "illegal"
},
{
"input": ".X0\n...\n0X.",
"output": "first"
},
{
"input": "X..\n0X0\nX.0",
"output": "first"
},
{
"input": "..0\n.00\nX.0",
"output": "illegal"
},
{
"input": ".XX\n.0.\nX0X",
"output": "illegal"
},
{
"input": "00.\n0XX\n..0",
"output": "illegal"
},
{
"input": ".0.\n00.\n00.",
"output": "illegal"
},
{
"input": "00.\n000\nX.X",
"output": "illegal"
},
{
"input": "0X0\n.X0\n.X.",
"output": "illegal"
},
{
"input": "00X\n0..\n0..",
"output": "illegal"
},
{
"input": ".X.\n.X0\nX.0",
"output": "second"
},
{
"input": ".0.\n0X0\nX0X",
"output": "illegal"
},
{
"input": "...\nX.0\n0..",
"output": "illegal"
},
{
"input": "..0\nXX.\n00X",
"output": "first"
},
{
"input": "0.X\n.0X\nX00",
"output": "illegal"
},
{
"input": "..X\n0X.\n.0.",
"output": "first"
},
{
"input": "..X\nX.0\n.0X",
"output": "second"
},
{
"input": "X0.\n.0X\nX0X",
"output": "illegal"
},
{
"input": "...\n.0.\n.X0",
"output": "illegal"
},
{
"input": ".X0\nXX0\n0..",
"output": "first"
},
{
"input": "0X.\n...\nX..",
"output": "second"
},
{
"input": ".0.\n0.0\n0.X",
"output": "illegal"
},
{
"input": "XX.\n.X0\n.0X",
"output": "illegal"
},
{
"input": ".0.\nX0X\nX00",
"output": "illegal"
},
{
"input": "0X.\n.X0\nX..",
"output": "second"
},
{
"input": "..0\n0X.\n000",
"output": "illegal"
},
{
"input": "0.0\nX.X\nXX.",
"output": "illegal"
},
{
"input": ".X.\n.XX\nX0.",
"output": "illegal"
},
{
"input": "X.X\n.XX\n0X.",
"output": "illegal"
},
{
"input": "X.0\n0XX\n..0",
"output": "first"
},
{
"input": "X.0\n0XX\n.X0",
"output": "second"
},
{
"input": "X00\n0XX\n.X0",
"output": "first"
},
{
"input": "X00\n0XX\nXX0",
"output": "draw"
},
{
"input": "X00\n0XX\n0X0",
"output": "illegal"
},
{
"input": "XXX\nXXX\nXXX",
"output": "illegal"
},
{
"input": "000\n000\n000",
"output": "illegal"
},
{
"input": "XX0\n00X\nXX0",
"output": "draw"
},
{
"input": "X00\n00X\nXX0",
"output": "illegal"
},
{
"input": "X.0\n00.\nXXX",
"output": "the first player won"
},
{
"input": "X..\nX0.\nX0.",
"output": "the first player won"
},
{
"input": ".XX\n000\nXX0",
"output": "the second player won"
},
{
"input": "X0.\nX.X\nX00",
"output": "the first player won"
},
{
"input": "00X\nX00\nXXX",
"output": "the first player won"
},
{
"input": "XXX\n.00\nX0.",
"output": "the first player won"
},
{
"input": "XX0\n000\nXX.",
"output": "the second player won"
},
{
"input": ".X0\n0.0\nXXX",
"output": "the first player won"
},
{
"input": "0XX\nX00\n0XX",
"output": "draw"
},
{
"input": "0XX\nX0X\n00X",
"output": "the first player won"
},
{
"input": "XX0\n0XX\n0X0",
"output": "the first player won"
},
{
"input": "0X0\nX0X\nX0X",
"output": "draw"
},
{
"input": "X0X\n0XX\n00X",
"output": "the first player won"
},
{
"input": "0XX\nX0.\nX00",
"output": "the second player won"
},
{
"input": "X.0\n0X0\nXX0",
"output": "the second player won"
},
{
"input": "X0X\nX0X\n0X0",
"output": "draw"
},
{
"input": "X.0\n00X\n0XX",
"output": "the second player won"
},
{
"input": "00X\nX0X\n.X0",
"output": "the second player won"
},
{
"input": "X0X\n.00\nX0X",
"output": "the second player won"
},
{
"input": "0XX\nX00\nX0X",
"output": "draw"
},
{
"input": "000\nX0X\n.XX",
"output": "the second player won"
},
{
"input": "0.0\n0.X\nXXX",
"output": "the first player won"
},
{
"input": "X.0\nX0.\n0X.",
"output": "the second player won"
},
{
"input": "X0X\n0X0\n..X",
"output": "the first player won"
},
{
"input": "0X0\nXX0\n.X.",
"output": "the first player won"
},
{
"input": "X0.\n.X.\n0.X",
"output": "the first player won"
},
{
"input": "0XX\nX00\n.X0",
"output": "the second player won"
},
{
"input": "0.0\nXXX\n0.X",
"output": "the first player won"
},
{
"input": ".0X\n.X.\nX.0",
"output": "the first player won"
},
{
"input": "XXX\nX.0\n0.0",
"output": "the first player won"
},
{
"input": "XX0\nX..\nX00",
"output": "the first player won"
},
{
"input": "XXX\n00X\n00X",
"output": "the first player won"
},
{
"input": "X00\n00X\nXXX",
"output": "the first player won"
},
{
"input": "0X0\nX0X\n0X.",
"output": "the second player won"
},
{
"input": "XX0\nX00\n0X.",
"output": "the second player won"
},
{
"input": "..X\n0X0\nX..",
"output": "the first player won"
},
{
"input": "X0.\n00.\nXXX",
"output": "the first player won"
},
{
"input": "0.X\nX00\nXX0",
"output": "the second player won"
},
{
"input": "X0.\n0X.\n..X",
"output": "the first player won"
},
{
"input": "00X\nX0.\nXX0",
"output": "the second player won"
},
{
"input": "XX.\n000\n0XX",
"output": "the second player won"
},
{
"input": "..X\n0.X\n.0X",
"output": "the first player won"
},
{
"input": "X00\n.0X\n0XX",
"output": "the second player won"
},
{
"input": "00X\n0X.\nXX.",
"output": "the first player won"
},
{
"input": "X00\nXX.\n0.X",
"output": "the first player won"
},
{
"input": "XXX\n00X\n0X0",
"output": "the first player won"
},
{
"input": "X00\nXX0\n0XX",
"output": "the first player won"
},
{
"input": "0X0\nX00\nXXX",
"output": "the first player won"
},
{
"input": "XX0\nX00\n.X0",
"output": "the second player won"
}
] | 1,673,498,057
| 2,147,483,647
|
PyPy 3
|
WRONG_ANSWER
|
TESTS
| 8
| 154
| 0
|
i = input
I = int
def isIllegal(inp):
x = 0
y = 0
for str in inp:
for char in str:
if char == "X":
x += 1
elif char == "0":
y += 1
else:
continue
if x > 5 or y > 4:
return True
elif y > x:
return True
else:
if len(inp.replace(".", "")) % 2 == 0:
if not x == y:
return True
else:
return False
else:
if not x == y + 1:
return True
else:
return False
def findValue(char):
if char == "X":
return 1
elif char == "0":
return 0
def findWin(game):
winning = ["036", "147", "258", "012", "345", "678", "048", "246"]
for str in winning:
if game[I(str[0])] == game[I(str[1])] == game[I(str[2])] and game[I(str[0])] != ".":
return findValue(game[I(str[0])])
return -1
def findTwoWin(inp):
win = findWin(inp)
if win == 1:
game = inp.replace("X", ".")
if findWin(game) == 0:
return True
else:
return False
elif win == 0:
game = inp.replace("0", ".")
if findWin(game) == 1:
return True
else:
return False
else:
return False
def count(inp, target):
count = 0
for char in inp:
if target == char:
count += 1
return count
inp = ""
for n in range(3):
inp += i()
if isIllegal(inp):
print("illegal")
else:
win = findWin(inp)
if win > -1:
if findTwoWin(inp):
print("illegal")
elif win == 0:
print("the second player won")
else:
print("the first player won")
else:
if not inp.__contains__("."):
print("draw")
elif count(inp, "X") == count(inp, "0"):
print("first")
else:
print("second")
# test if won
# test if lost
# test if drew
# test for first turn
|
Title: Tic-tac-toe
Time Limit: 1 seconds
Memory Limit: 64 megabytes
Problem Description:
Certainly, everyone is familiar with tic-tac-toe game. The rules are very simple indeed. Two players take turns marking the cells in a 3<=×<=3 grid (one player always draws crosses, the other — noughts). The player who succeeds first in placing three of his marks in a horizontal, vertical or diagonal line wins, and the game is finished. The player who draws crosses goes first. If the grid is filled, but neither Xs, nor 0s form the required line, a draw is announced.
You are given a 3<=×<=3 grid, each grid cell is empty, or occupied by a cross or a nought. You have to find the player (first or second), whose turn is next, or print one of the verdicts below:
- illegal — if the given board layout can't appear during a valid game; - the first player won — if in the given board layout the first player has just won; - the second player won — if in the given board layout the second player has just won; - draw — if the given board layout has just let to a draw.
Input Specification:
The input consists of three lines, each of the lines contains characters ".", "X" or "0" (a period, a capital letter X, or a digit zero).
Output Specification:
Print one of the six verdicts: first, second, illegal, the first player won, the second player won or draw.
Demo Input:
['X0X\n.0.\n.X.\n']
Demo Output:
['second\n']
Note:
none
|
```python
i = input
I = int
def isIllegal(inp):
x = 0
y = 0
for str in inp:
for char in str:
if char == "X":
x += 1
elif char == "0":
y += 1
else:
continue
if x > 5 or y > 4:
return True
elif y > x:
return True
else:
if len(inp.replace(".", "")) % 2 == 0:
if not x == y:
return True
else:
return False
else:
if not x == y + 1:
return True
else:
return False
def findValue(char):
if char == "X":
return 1
elif char == "0":
return 0
def findWin(game):
winning = ["036", "147", "258", "012", "345", "678", "048", "246"]
for str in winning:
if game[I(str[0])] == game[I(str[1])] == game[I(str[2])] and game[I(str[0])] != ".":
return findValue(game[I(str[0])])
return -1
def findTwoWin(inp):
win = findWin(inp)
if win == 1:
game = inp.replace("X", ".")
if findWin(game) == 0:
return True
else:
return False
elif win == 0:
game = inp.replace("0", ".")
if findWin(game) == 1:
return True
else:
return False
else:
return False
def count(inp, target):
count = 0
for char in inp:
if target == char:
count += 1
return count
inp = ""
for n in range(3):
inp += i()
if isIllegal(inp):
print("illegal")
else:
win = findWin(inp)
if win > -1:
if findTwoWin(inp):
print("illegal")
elif win == 0:
print("the second player won")
else:
print("the first player won")
else:
if not inp.__contains__("."):
print("draw")
elif count(inp, "X") == count(inp, "0"):
print("first")
else:
print("second")
# test if won
# test if lost
# test if drew
# test for first turn
```
| 0
|
669
|
A
|
Little Artem and Presents
|
PROGRAMMING
| 800
|
[
"math"
] | null | null |
Little Artem got *n* stones on his birthday and now wants to give some of them to Masha. He knows that Masha cares more about the fact of receiving the present, rather than the value of that present, so he wants to give her stones as many times as possible. However, Masha remembers the last present she received, so Artem can't give her the same number of stones twice in a row. For example, he can give her 3 stones, then 1 stone, then again 3 stones, but he can't give her 3 stones and then again 3 stones right after that.
How many times can Artem give presents to Masha?
|
The only line of the input contains a single integer *n* (1<=≤<=*n*<=≤<=109) — number of stones Artem received on his birthday.
|
Print the maximum possible number of times Artem can give presents to Masha.
|
[
"1\n",
"2\n",
"3\n",
"4\n"
] |
[
"1\n",
"1\n",
"2\n",
"3\n"
] |
In the first sample, Artem can only give 1 stone to Masha.
In the second sample, Atrem can give Masha 1 or 2 stones, though he can't give her 1 stone two times.
In the third sample, Atrem can first give Masha 2 stones, a then 1 more stone.
In the fourth sample, Atrem can first give Masha 1 stone, then 2 stones, and finally 1 stone again.
| 500
|
[
{
"input": "1",
"output": "1"
},
{
"input": "2",
"output": "1"
},
{
"input": "3",
"output": "2"
},
{
"input": "4",
"output": "3"
},
{
"input": "100",
"output": "67"
},
{
"input": "101",
"output": "67"
},
{
"input": "102",
"output": "68"
},
{
"input": "1000000000",
"output": "666666667"
},
{
"input": "5",
"output": "3"
},
{
"input": "6",
"output": "4"
},
{
"input": "999999999",
"output": "666666666"
},
{
"input": "999999998",
"output": "666666665"
},
{
"input": "999999997",
"output": "666666665"
},
{
"input": "999999996",
"output": "666666664"
},
{
"input": "999999995",
"output": "666666663"
},
{
"input": "999999994",
"output": "666666663"
},
{
"input": "999999993",
"output": "666666662"
},
{
"input": "999999992",
"output": "666666661"
},
{
"input": "999999991",
"output": "666666661"
},
{
"input": "1000",
"output": "667"
},
{
"input": "10000",
"output": "6667"
},
{
"input": "100000",
"output": "66667"
},
{
"input": "1000000",
"output": "666667"
},
{
"input": "10000000",
"output": "6666667"
},
{
"input": "100000000",
"output": "66666667"
},
{
"input": "7",
"output": "5"
}
] | 1,655,929,292
| 2,147,483,647
|
Python 3
|
OK
|
TESTS
| 26
| 46
| 0
|
n = int(input())
s = (n - (n % 3))//3
if n < 0:
print (1)
elif n % 3 == 0:
print (2 * s)
elif n % 3 == 1 or n % 3 == 2:
print (2 * s + 1)
|
Title: Little Artem and Presents
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
Little Artem got *n* stones on his birthday and now wants to give some of them to Masha. He knows that Masha cares more about the fact of receiving the present, rather than the value of that present, so he wants to give her stones as many times as possible. However, Masha remembers the last present she received, so Artem can't give her the same number of stones twice in a row. For example, he can give her 3 stones, then 1 stone, then again 3 stones, but he can't give her 3 stones and then again 3 stones right after that.
How many times can Artem give presents to Masha?
Input Specification:
The only line of the input contains a single integer *n* (1<=≤<=*n*<=≤<=109) — number of stones Artem received on his birthday.
Output Specification:
Print the maximum possible number of times Artem can give presents to Masha.
Demo Input:
['1\n', '2\n', '3\n', '4\n']
Demo Output:
['1\n', '1\n', '2\n', '3\n']
Note:
In the first sample, Artem can only give 1 stone to Masha.
In the second sample, Atrem can give Masha 1 or 2 stones, though he can't give her 1 stone two times.
In the third sample, Atrem can first give Masha 2 stones, a then 1 more stone.
In the fourth sample, Atrem can first give Masha 1 stone, then 2 stones, and finally 1 stone again.
|
```python
n = int(input())
s = (n - (n % 3))//3
if n < 0:
print (1)
elif n % 3 == 0:
print (2 * s)
elif n % 3 == 1 or n % 3 == 2:
print (2 * s + 1)
```
| 3
|
|
246
|
B
|
Increase and Decrease
|
PROGRAMMING
| 1,300
|
[
"greedy",
"math"
] | null | null |
Polycarpus has an array, consisting of *n* integers *a*1,<=*a*2,<=...,<=*a**n*. Polycarpus likes it when numbers in an array match. That's why he wants the array to have as many equal numbers as possible. For that Polycarpus performs the following operation multiple times:
- he chooses two elements of the array *a**i*, *a**j* (*i*<=≠<=*j*); - he simultaneously increases number *a**i* by 1 and decreases number *a**j* by 1, that is, executes *a**i*<==<=*a**i*<=+<=1 and *a**j*<==<=*a**j*<=-<=1.
The given operation changes exactly two distinct array elements. Polycarpus can apply the described operation an infinite number of times.
Now he wants to know what maximum number of equal array elements he can get if he performs an arbitrary number of such operation. Help Polycarpus.
|
The first line contains integer *n* (1<=≤<=*n*<=≤<=105) — the array size. The second line contains space-separated integers *a*1,<=*a*2,<=...,<=*a**n* (|*a**i*|<=≤<=104) — the original array.
|
Print a single integer — the maximum number of equal array elements he can get if he performs an arbitrary number of the given operation.
|
[
"2\n2 1\n",
"3\n1 4 1\n"
] |
[
"1\n",
"3\n"
] |
none
| 1,000
|
[
{
"input": "2\n2 1",
"output": "1"
},
{
"input": "3\n1 4 1",
"output": "3"
},
{
"input": "4\n2 -7 -2 -6",
"output": "3"
},
{
"input": "4\n2 0 -2 -1",
"output": "3"
},
{
"input": "6\n-1 1 0 0 -1 -1",
"output": "5"
},
{
"input": "5\n0 0 0 0 0",
"output": "5"
},
{
"input": "100\n968 793 -628 -416 942 -308 977 168 728 -879 952 781 -425 -475 -480 738 -740 142 -319 -116 -701 -183 41 324 -918 -391 -176 781 763 888 475 -617 134 -802 -133 -211 855 -869 -236 503 550 387 137 -221 -957 -800 -56 -673 440 -791 -217 -959 -892 886 -593 427 890 223 -425 -342 -262 693 -137 924 860 156 -110 444 -12 703 421 -638 725 -551 597 -206 -80 393 -441 -759 617 424 -506 209 579 -685 -861 507 312 597 -81 -491 424 222 -892 629 512 743 -452 -504",
"output": "99"
}
] | 1,657,286,595
| 2,147,483,647
|
PyPy 3-64
|
OK
|
TESTS
| 30
| 248
| 5,632,000
|
import math
import bisect
def input_list_int():
return list(map(int, input().split()))
n = int(input())
l = input_list_int()
if sum(l) % n == 0:
print(n)
else:
print(n-1)
|
Title: Increase and Decrease
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
Polycarpus has an array, consisting of *n* integers *a*1,<=*a*2,<=...,<=*a**n*. Polycarpus likes it when numbers in an array match. That's why he wants the array to have as many equal numbers as possible. For that Polycarpus performs the following operation multiple times:
- he chooses two elements of the array *a**i*, *a**j* (*i*<=≠<=*j*); - he simultaneously increases number *a**i* by 1 and decreases number *a**j* by 1, that is, executes *a**i*<==<=*a**i*<=+<=1 and *a**j*<==<=*a**j*<=-<=1.
The given operation changes exactly two distinct array elements. Polycarpus can apply the described operation an infinite number of times.
Now he wants to know what maximum number of equal array elements he can get if he performs an arbitrary number of such operation. Help Polycarpus.
Input Specification:
The first line contains integer *n* (1<=≤<=*n*<=≤<=105) — the array size. The second line contains space-separated integers *a*1,<=*a*2,<=...,<=*a**n* (|*a**i*|<=≤<=104) — the original array.
Output Specification:
Print a single integer — the maximum number of equal array elements he can get if he performs an arbitrary number of the given operation.
Demo Input:
['2\n2 1\n', '3\n1 4 1\n']
Demo Output:
['1\n', '3\n']
Note:
none
|
```python
import math
import bisect
def input_list_int():
return list(map(int, input().split()))
n = int(input())
l = input_list_int()
if sum(l) % n == 0:
print(n)
else:
print(n-1)
```
| 3
|
|
617
|
A
|
Elephant
|
PROGRAMMING
| 800
|
[
"math"
] | null | null |
An elephant decided to visit his friend. It turned out that the elephant's house is located at point 0 and his friend's house is located at point *x*(*x*<=><=0) of the coordinate line. In one step the elephant can move 1, 2, 3, 4 or 5 positions forward. Determine, what is the minimum number of steps he need to make in order to get to his friend's house.
|
The first line of the input contains an integer *x* (1<=≤<=*x*<=≤<=1<=000<=000) — The coordinate of the friend's house.
|
Print the minimum number of steps that elephant needs to make to get from point 0 to point *x*.
|
[
"5\n",
"12\n"
] |
[
"1\n",
"3\n"
] |
In the first sample the elephant needs to make one step of length 5 to reach the point *x*.
In the second sample the elephant can get to point *x* if he moves by 3, 5 and 4. There are other ways to get the optimal answer but the elephant cannot reach *x* in less than three moves.
| 500
|
[
{
"input": "5",
"output": "1"
},
{
"input": "12",
"output": "3"
},
{
"input": "999999",
"output": "200000"
},
{
"input": "41",
"output": "9"
},
{
"input": "1000000",
"output": "200000"
},
{
"input": "1",
"output": "1"
},
{
"input": "2",
"output": "1"
},
{
"input": "3",
"output": "1"
},
{
"input": "4",
"output": "1"
},
{
"input": "534204",
"output": "106841"
},
{
"input": "469569",
"output": "93914"
},
{
"input": "502877",
"output": "100576"
},
{
"input": "942212",
"output": "188443"
},
{
"input": "97",
"output": "20"
},
{
"input": "53",
"output": "11"
},
{
"input": "89",
"output": "18"
},
{
"input": "574",
"output": "115"
},
{
"input": "716",
"output": "144"
},
{
"input": "729",
"output": "146"
},
{
"input": "8901",
"output": "1781"
},
{
"input": "3645",
"output": "729"
},
{
"input": "4426",
"output": "886"
},
{
"input": "46573",
"output": "9315"
},
{
"input": "86380",
"output": "17276"
},
{
"input": "94190",
"output": "18838"
},
{
"input": "999990",
"output": "199998"
},
{
"input": "999991",
"output": "199999"
},
{
"input": "999992",
"output": "199999"
},
{
"input": "999993",
"output": "199999"
},
{
"input": "999994",
"output": "199999"
},
{
"input": "999995",
"output": "199999"
},
{
"input": "999996",
"output": "200000"
},
{
"input": "999997",
"output": "200000"
},
{
"input": "999998",
"output": "200000"
}
] | 1,698,309,426
| 2,147,483,647
|
PyPy 3-64
|
COMPILATION_ERROR
|
TESTS
| 0
| 0
| 0
|
import.math
x = int(input())
y = x/5
print("math.ceil(y)")
|
Title: Elephant
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
An elephant decided to visit his friend. It turned out that the elephant's house is located at point 0 and his friend's house is located at point *x*(*x*<=><=0) of the coordinate line. In one step the elephant can move 1, 2, 3, 4 or 5 positions forward. Determine, what is the minimum number of steps he need to make in order to get to his friend's house.
Input Specification:
The first line of the input contains an integer *x* (1<=≤<=*x*<=≤<=1<=000<=000) — The coordinate of the friend's house.
Output Specification:
Print the minimum number of steps that elephant needs to make to get from point 0 to point *x*.
Demo Input:
['5\n', '12\n']
Demo Output:
['1\n', '3\n']
Note:
In the first sample the elephant needs to make one step of length 5 to reach the point *x*.
In the second sample the elephant can get to point *x* if he moves by 3, 5 and 4. There are other ways to get the optimal answer but the elephant cannot reach *x* in less than three moves.
|
```python
import.math
x = int(input())
y = x/5
print("math.ceil(y)")
```
| -1
|
|
559
|
B
|
Equivalent Strings
|
PROGRAMMING
| 1,700
|
[
"divide and conquer",
"hashing",
"sortings",
"strings"
] | null | null |
Today on a lecture about strings Gerald learned a new definition of string equivalency. Two strings *a* and *b* of equal length are called equivalent in one of the two cases:
1. They are equal. 1. If we split string *a* into two halves of the same size *a*1 and *a*2, and string *b* into two halves of the same size *b*1 and *b*2, then one of the following is correct: *a*1 is equivalent to *b*1, and *a*2 is equivalent to *b*2 1. *a*1 is equivalent to *b*2, and *a*2 is equivalent to *b*1
As a home task, the teacher gave two strings to his students and asked to determine if they are equivalent.
Gerald has already completed this home task. Now it's your turn!
|
The first two lines of the input contain two strings given by the teacher. Each of them has the length from 1 to 200<=000 and consists of lowercase English letters. The strings have the same length.
|
Print "YES" (without the quotes), if these two strings are equivalent, and "NO" (without the quotes) otherwise.
|
[
"aaba\nabaa\n",
"aabb\nabab\n"
] |
[
"YES\n",
"NO\n"
] |
In the first sample you should split the first string into strings "aa" and "ba", the second one — into strings "ab" and "aa". "aa" is equivalent to "aa"; "ab" is equivalent to "ba" as "ab" = "a" + "b", "ba" = "b" + "a".
In the second sample the first string can be splitted into strings "aa" and "bb", that are equivalent only to themselves. That's why string "aabb" is equivalent only to itself and to string "bbaa".
| 1,000
|
[
{
"input": "aaba\nabaa",
"output": "YES"
},
{
"input": "aabb\nabab",
"output": "NO"
},
{
"input": "a\na",
"output": "YES"
},
{
"input": "a\nb",
"output": "NO"
},
{
"input": "ab\nab",
"output": "YES"
},
{
"input": "ab\nba",
"output": "YES"
},
{
"input": "ab\nbb",
"output": "NO"
},
{
"input": "zzaa\naazz",
"output": "YES"
},
{
"input": "azza\nzaaz",
"output": "YES"
},
{
"input": "abc\nabc",
"output": "YES"
},
{
"input": "abc\nacb",
"output": "NO"
},
{
"input": "azzz\nzzaz",
"output": "YES"
},
{
"input": "abcd\ndcab",
"output": "YES"
},
{
"input": "abcd\ncdab",
"output": "YES"
},
{
"input": "abcd\ndcba",
"output": "YES"
},
{
"input": "abcd\nacbd",
"output": "NO"
},
{
"input": "oloaxgddgujq\noloaxgujqddg",
"output": "YES"
},
{
"input": "uwzwdxfmosmqatyv\ndxfmzwwusomqvyta",
"output": "YES"
},
{
"input": "hagnzomowtledfdotnll\nledfdotnllomowthagnz",
"output": "YES"
},
{
"input": "snyaydaeobufdg\nsnyaydaeobufdg",
"output": "YES"
},
{
"input": "baaaaa\nabaaaa",
"output": "NO"
},
{
"input": "hhiisug\nmzdjwju",
"output": "NO"
},
{
"input": "bbbabbabaaab\naaaabbabbbbb",
"output": "NO"
},
{
"input": "bbaaab\naababb",
"output": "NO"
},
{
"input": "aabbaaaa\naaaaabab",
"output": "NO"
},
{
"input": "aab\naba",
"output": "NO"
},
{
"input": "abcddd\nbacddd",
"output": "NO"
},
{
"input": "qgiufelsfhanx\naaaaaaaaaaaaa",
"output": "NO"
},
{
"input": "aabaababaaba\naababaaababa",
"output": "NO"
},
{
"input": "nocdqzdriyyil\naaaaaaaaaaaaa",
"output": "NO"
},
{
"input": "zdmctxl\nkojqhgw",
"output": "NO"
},
{
"input": "yhwepqwyhwepqwyhwepqweahnqtueahnqtueahnqtuyhwepqwyhwepqwyhwepqwyhwepqweahnqtueahnqtuyhwepqweahnqtueahnqtueahnqtueahnqtueahnqtueahnqtu\neahnqtueahnqtueahnqtuyhwepqweahnqtuyhwepqwyhwepqweahnqtuyhwepqweahnqtuyhwepqweahnqtueahnqtuyhwepqweahnqtueahnqtuyhwepqwyhwepqwyhwepqw",
"output": "NO"
},
{
"input": "abc\nbac",
"output": "NO"
},
{
"input": "ottceez\npcstdvz",
"output": "NO"
}
] | 1,595,621,018
| 2,147,483,647
|
PyPy 3
|
MEMORY_LIMIT_EXCEEDED
|
TESTS
| 0
| 109
| 268,390,400
|
import sys
def input():
return sys.stdin.readline().split()
sys.setrecursionlimit(10 **8)
def check(s,t):
if s==t:
return True
m=len(s)
if m%2==1:
return False
n=int(m)//2
a1=s[:n]
a2=s[n:]
a3=t[:n]
a4=t[n:]
return (check(a1,a3) and check(a2,a4)) or (check(a1,a4) and check(a2,a3))
s=input()
t=input()
if check(s,t):
print("YES")
else:
print("No")
|
Title: Equivalent Strings
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
Today on a lecture about strings Gerald learned a new definition of string equivalency. Two strings *a* and *b* of equal length are called equivalent in one of the two cases:
1. They are equal. 1. If we split string *a* into two halves of the same size *a*1 and *a*2, and string *b* into two halves of the same size *b*1 and *b*2, then one of the following is correct: *a*1 is equivalent to *b*1, and *a*2 is equivalent to *b*2 1. *a*1 is equivalent to *b*2, and *a*2 is equivalent to *b*1
As a home task, the teacher gave two strings to his students and asked to determine if they are equivalent.
Gerald has already completed this home task. Now it's your turn!
Input Specification:
The first two lines of the input contain two strings given by the teacher. Each of them has the length from 1 to 200<=000 and consists of lowercase English letters. The strings have the same length.
Output Specification:
Print "YES" (without the quotes), if these two strings are equivalent, and "NO" (without the quotes) otherwise.
Demo Input:
['aaba\nabaa\n', 'aabb\nabab\n']
Demo Output:
['YES\n', 'NO\n']
Note:
In the first sample you should split the first string into strings "aa" and "ba", the second one — into strings "ab" and "aa". "aa" is equivalent to "aa"; "ab" is equivalent to "ba" as "ab" = "a" + "b", "ba" = "b" + "a".
In the second sample the first string can be splitted into strings "aa" and "bb", that are equivalent only to themselves. That's why string "aabb" is equivalent only to itself and to string "bbaa".
|
```python
import sys
def input():
return sys.stdin.readline().split()
sys.setrecursionlimit(10 **8)
def check(s,t):
if s==t:
return True
m=len(s)
if m%2==1:
return False
n=int(m)//2
a1=s[:n]
a2=s[n:]
a3=t[:n]
a4=t[n:]
return (check(a1,a3) and check(a2,a4)) or (check(a1,a4) and check(a2,a3))
s=input()
t=input()
if check(s,t):
print("YES")
else:
print("No")
```
| 0
|
|
342
|
B
|
Xenia and Spies
|
PROGRAMMING
| 1,500
|
[
"brute force",
"greedy",
"implementation"
] | null | null |
Xenia the vigorous detective faced *n* (*n*<=≥<=2) foreign spies lined up in a row. We'll consider the spies numbered from 1 to *n* from left to right.
Spy *s* has an important note. He has to pass the note to spy *f*. Xenia interrogates the spies in several steps. During one step the spy keeping the important note can pass the note to one of his neighbours in the row. In other words, if this spy's number is *x*, he can pass the note to another spy, either *x*<=-<=1 or *x*<=+<=1 (if *x*<==<=1 or *x*<==<=*n*, then the spy has only one neighbour). Also during a step the spy can keep a note and not pass it to anyone.
But nothing is that easy. During *m* steps Xenia watches some spies attentively. Specifically, during step *t**i* (steps are numbered from 1) Xenia watches spies numbers *l**i*,<=*l**i*<=+<=1,<=*l**i*<=+<=2,<=...,<=*r**i* (1<=≤<=*l**i*<=≤<=*r**i*<=≤<=*n*). Of course, if during some step a spy is watched, he can't do anything: neither give the note nor take it from some other spy. Otherwise, Xenia reveals the spies' cunning plot. Nevertheless, if the spy at the current step keeps the note, Xenia sees nothing suspicious even if she watches him.
You've got *s* and *f*. Also, you have the steps during which Xenia watches spies and which spies she is going to watch during each step. Find the best way the spies should act in order to pass the note from spy *s* to spy *f* as quickly as possible (in the minimum number of steps).
|
The first line contains four integers *n*, *m*, *s* and *f* (1<=≤<=*n*,<=*m*<=≤<=105; 1<=≤<=*s*,<=*f*<=≤<=*n*; *s*<=≠<=*f*; *n*<=≥<=2). Each of the following *m* lines contains three integers *t**i*,<=*l**i*,<=*r**i* (1<=≤<=*t**i*<=≤<=109,<=1<=≤<=*l**i*<=≤<=*r**i*<=≤<=*n*). It is guaranteed that *t*1<=<<=*t*2<=<<=*t*3<=<<=...<=<<=*t**m*.
|
Print *k* characters in a line: the *i*-th character in the line must represent the spies' actions on step *i*. If on step *i* the spy with the note must pass the note to the spy with a lesser number, the *i*-th character should equal "L". If on step *i* the spy with the note must pass it to the spy with a larger number, the *i*-th character must equal "R". If the spy must keep the note at the *i*-th step, the *i*-th character must equal "X".
As a result of applying the printed sequence of actions spy *s* must pass the note to spy *f*. The number of printed characters *k* must be as small as possible. Xenia must not catch the spies passing the note.
If there are miltiple optimal solutions, you can print any of them. It is guaranteed that the answer exists.
|
[
"3 5 1 3\n1 1 2\n2 2 3\n3 3 3\n4 1 1\n10 1 3\n"
] |
[
"XXRR\n"
] |
none
| 1,000
|
[
{
"input": "3 5 1 3\n1 1 2\n2 2 3\n3 3 3\n4 1 1\n10 1 3",
"output": "XXRR"
},
{
"input": "2 3 2 1\n1 1 2\n2 1 2\n4 1 2",
"output": "XXL"
},
{
"input": "5 11 1 5\n1 1 5\n2 2 2\n3 1 1\n4 3 3\n5 3 3\n6 1 1\n7 4 4\n8 4 5\n10 1 3\n11 5 5\n13 1 5",
"output": "XXXRXRXXRR"
},
{
"input": "4 6 4 2\n2 2 2\n3 3 3\n4 1 1\n10 1 4\n11 2 3\n12 2 4",
"output": "LXXL"
},
{
"input": "7 5 7 6\n1 4 5\n2 7 7\n3 6 6\n4 3 4\n5 1 3",
"output": "L"
},
{
"input": "4 4 3 4\n1 2 4\n2 1 2\n3 3 4\n4 2 3",
"output": "XR"
},
{
"input": "10 10 1 10\n1 1 10\n2 1 1\n3 7 10\n4 6 7\n5 9 9\n6 4 9\n7 2 5\n8 3 10\n9 2 10\n10 7 9",
"output": "XXRRRXXXXRRRRRR"
},
{
"input": "20 20 17 20\n1 16 20\n2 12 13\n3 14 16\n4 13 15\n5 3 15\n6 2 11\n7 18 18\n8 5 15\n9 6 12\n10 19 19\n11 9 11\n12 14 17\n13 19 19\n14 12 20\n15 1 1\n16 11 17\n17 13 14\n18 5 17\n19 2 10\n20 19 20",
"output": "XRRR"
},
{
"input": "100000 1 11500 70856\n1 9881 75626",
"output": "XRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRR..."
},
{
"input": "100000 2 37212 89918\n1 24285 99164\n2 67042 82268",
"output": "XRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRRR..."
},
{
"input": "100 5 99 1\n1 1 2\n2 2 3\n3 3 3\n4 1 1\n10 1 3",
"output": "LLLLLLLLLLLLLLLLLLLLLLLLLLLLLLLLLLLLLLLLLLLLLLLLLLLLLLLLLLLLLLLLLLLLLLLLLLLLLLLLLLLLLLLLLLLLLLLLLL"
},
{
"input": "5 1 1 5\n1 1 1",
"output": "XRRRR"
},
{
"input": "3 5 1 3\n1 1 2\n2 2 3\n3 3 3\n4 1 1\n1000000000 1 3",
"output": "XXRR"
},
{
"input": "2 2 1 2\n1 1 2\n1000000000 1 2",
"output": "XR"
},
{
"input": "10 1 1 10\n1 5 6",
"output": "RRRRRRRRR"
}
] | 1,683,972,455
| 2,147,483,647
|
PyPy 3
|
WRONG_ANSWER
|
TESTS
| 1
| 61
| 0
|
def main():
n, m, s, f = map(int, input().split())
right_direction = True if f > s else False
current_msg = s
for _ in range(m):
t, l, r = map(int, input().split())
if l <= current_msg <= r:
print("X", end='')
continue
if right_direction and l <= current_msg + 1 <= r:
print("X", end='')
continue
if not right_direction and l <= current_msg - 1 <= r:
print("X", end='')
continue
if right_direction:
current_msg += 1
print("R", end='')
else:
current_msg -= 1
print("L", end='')
if current_msg == f:
return
main()
|
Title: Xenia and Spies
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
Xenia the vigorous detective faced *n* (*n*<=≥<=2) foreign spies lined up in a row. We'll consider the spies numbered from 1 to *n* from left to right.
Spy *s* has an important note. He has to pass the note to spy *f*. Xenia interrogates the spies in several steps. During one step the spy keeping the important note can pass the note to one of his neighbours in the row. In other words, if this spy's number is *x*, he can pass the note to another spy, either *x*<=-<=1 or *x*<=+<=1 (if *x*<==<=1 or *x*<==<=*n*, then the spy has only one neighbour). Also during a step the spy can keep a note and not pass it to anyone.
But nothing is that easy. During *m* steps Xenia watches some spies attentively. Specifically, during step *t**i* (steps are numbered from 1) Xenia watches spies numbers *l**i*,<=*l**i*<=+<=1,<=*l**i*<=+<=2,<=...,<=*r**i* (1<=≤<=*l**i*<=≤<=*r**i*<=≤<=*n*). Of course, if during some step a spy is watched, he can't do anything: neither give the note nor take it from some other spy. Otherwise, Xenia reveals the spies' cunning plot. Nevertheless, if the spy at the current step keeps the note, Xenia sees nothing suspicious even if she watches him.
You've got *s* and *f*. Also, you have the steps during which Xenia watches spies and which spies she is going to watch during each step. Find the best way the spies should act in order to pass the note from spy *s* to spy *f* as quickly as possible (in the minimum number of steps).
Input Specification:
The first line contains four integers *n*, *m*, *s* and *f* (1<=≤<=*n*,<=*m*<=≤<=105; 1<=≤<=*s*,<=*f*<=≤<=*n*; *s*<=≠<=*f*; *n*<=≥<=2). Each of the following *m* lines contains three integers *t**i*,<=*l**i*,<=*r**i* (1<=≤<=*t**i*<=≤<=109,<=1<=≤<=*l**i*<=≤<=*r**i*<=≤<=*n*). It is guaranteed that *t*1<=<<=*t*2<=<<=*t*3<=<<=...<=<<=*t**m*.
Output Specification:
Print *k* characters in a line: the *i*-th character in the line must represent the spies' actions on step *i*. If on step *i* the spy with the note must pass the note to the spy with a lesser number, the *i*-th character should equal "L". If on step *i* the spy with the note must pass it to the spy with a larger number, the *i*-th character must equal "R". If the spy must keep the note at the *i*-th step, the *i*-th character must equal "X".
As a result of applying the printed sequence of actions spy *s* must pass the note to spy *f*. The number of printed characters *k* must be as small as possible. Xenia must not catch the spies passing the note.
If there are miltiple optimal solutions, you can print any of them. It is guaranteed that the answer exists.
Demo Input:
['3 5 1 3\n1 1 2\n2 2 3\n3 3 3\n4 1 1\n10 1 3\n']
Demo Output:
['XXRR\n']
Note:
none
|
```python
def main():
n, m, s, f = map(int, input().split())
right_direction = True if f > s else False
current_msg = s
for _ in range(m):
t, l, r = map(int, input().split())
if l <= current_msg <= r:
print("X", end='')
continue
if right_direction and l <= current_msg + 1 <= r:
print("X", end='')
continue
if not right_direction and l <= current_msg - 1 <= r:
print("X", end='')
continue
if right_direction:
current_msg += 1
print("R", end='')
else:
current_msg -= 1
print("L", end='')
if current_msg == f:
return
main()
```
| 0
|
|
479
|
A
|
Expression
|
PROGRAMMING
| 1,000
|
[
"brute force",
"math"
] | null | null |
Petya studies in a school and he adores Maths. His class has been studying arithmetic expressions. On the last class the teacher wrote three positive integers *a*, *b*, *c* on the blackboard. The task was to insert signs of operations '+' and '*', and probably brackets between the numbers so that the value of the resulting expression is as large as possible. Let's consider an example: assume that the teacher wrote numbers 1, 2 and 3 on the blackboard. Here are some ways of placing signs and brackets:
- 1+2*3=7 - 1*(2+3)=5 - 1*2*3=6 - (1+2)*3=9
Note that you can insert operation signs only between *a* and *b*, and between *b* and *c*, that is, you cannot swap integers. For instance, in the given sample you cannot get expression (1+3)*2.
It's easy to see that the maximum value that you can obtain is 9.
Your task is: given *a*, *b* and *c* print the maximum value that you can get.
|
The input contains three integers *a*, *b* and *c*, each on a single line (1<=≤<=*a*,<=*b*,<=*c*<=≤<=10).
|
Print the maximum value of the expression that you can obtain.
|
[
"1\n2\n3\n",
"2\n10\n3\n"
] |
[
"9\n",
"60\n"
] |
none
| 500
|
[
{
"input": "1\n2\n3",
"output": "9"
},
{
"input": "2\n10\n3",
"output": "60"
},
{
"input": "1\n1\n1",
"output": "3"
},
{
"input": "1\n2\n1",
"output": "4"
},
{
"input": "10\n10\n10",
"output": "1000"
},
{
"input": "5\n1\n3",
"output": "20"
},
{
"input": "3\n1\n5",
"output": "20"
},
{
"input": "6\n7\n1",
"output": "48"
},
{
"input": "1\n8\n3",
"output": "27"
},
{
"input": "9\n7\n2",
"output": "126"
},
{
"input": "1\n1\n10",
"output": "20"
},
{
"input": "9\n1\n1",
"output": "18"
},
{
"input": "10\n5\n6",
"output": "300"
},
{
"input": "8\n9\n7",
"output": "504"
},
{
"input": "4\n2\n10",
"output": "80"
},
{
"input": "2\n8\n3",
"output": "48"
},
{
"input": "3\n5\n7",
"output": "105"
},
{
"input": "1\n10\n1",
"output": "12"
},
{
"input": "2\n2\n2",
"output": "8"
},
{
"input": "5\n6\n1",
"output": "35"
},
{
"input": "10\n1\n1",
"output": "20"
},
{
"input": "1\n6\n1",
"output": "8"
},
{
"input": "1\n9\n1",
"output": "11"
},
{
"input": "2\n1\n2",
"output": "6"
},
{
"input": "2\n6\n1",
"output": "14"
},
{
"input": "9\n2\n1",
"output": "27"
},
{
"input": "1\n9\n2",
"output": "20"
},
{
"input": "1\n3\n1",
"output": "5"
},
{
"input": "2\n1\n1",
"output": "4"
}
] | 1,692,620,916
| 2,147,483,647
|
Python 3
|
WRONG_ANSWER
|
TESTS
| 1
| 31
| 0
|
def main():
a,b,c =int(input()),int(input()),int(input())
x =max(a,b,c)
y=[a,b,c] ; y.remove(x)
return sum(y)*x
print(main())
|
Title: Expression
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
Petya studies in a school and he adores Maths. His class has been studying arithmetic expressions. On the last class the teacher wrote three positive integers *a*, *b*, *c* on the blackboard. The task was to insert signs of operations '+' and '*', and probably brackets between the numbers so that the value of the resulting expression is as large as possible. Let's consider an example: assume that the teacher wrote numbers 1, 2 and 3 on the blackboard. Here are some ways of placing signs and brackets:
- 1+2*3=7 - 1*(2+3)=5 - 1*2*3=6 - (1+2)*3=9
Note that you can insert operation signs only between *a* and *b*, and between *b* and *c*, that is, you cannot swap integers. For instance, in the given sample you cannot get expression (1+3)*2.
It's easy to see that the maximum value that you can obtain is 9.
Your task is: given *a*, *b* and *c* print the maximum value that you can get.
Input Specification:
The input contains three integers *a*, *b* and *c*, each on a single line (1<=≤<=*a*,<=*b*,<=*c*<=≤<=10).
Output Specification:
Print the maximum value of the expression that you can obtain.
Demo Input:
['1\n2\n3\n', '2\n10\n3\n']
Demo Output:
['9\n', '60\n']
Note:
none
|
```python
def main():
a,b,c =int(input()),int(input()),int(input())
x =max(a,b,c)
y=[a,b,c] ; y.remove(x)
return sum(y)*x
print(main())
```
| 0
|
|
171
|
E
|
MYSTERIOUS LANGUAGE
|
PROGRAMMING
| 2,000
|
[
"*special"
] | null | null |
You are given a mysterious language (codenamed "Secret") available in "Custom Test" tab. Find out what this language is and write a program which outputs its name. Note that the program must be written in this language.
|
This program has only one test, and it's empty (it doesn't give your program anything to read).
|
Output the name of the mysterious language.
|
[] |
[] |
none
| 0
|
[
{
"input": "1",
"output": "INTERCAL"
}
] | 1,681,761,595
| 2,147,483,647
|
Python 3
|
WRONG_ANSWER
|
TESTS
| 0
| 92
| 0
|
a=input()
print()
|
Title: MYSTERIOUS LANGUAGE
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
You are given a mysterious language (codenamed "Secret") available in "Custom Test" tab. Find out what this language is and write a program which outputs its name. Note that the program must be written in this language.
Input Specification:
This program has only one test, and it's empty (it doesn't give your program anything to read).
Output Specification:
Output the name of the mysterious language.
Note:
none
|
```python
a=input()
print()
```
| 0
|
|
556
|
A
|
Case of the Zeros and Ones
|
PROGRAMMING
| 900
|
[
"greedy"
] | null | null |
Andrewid the Android is a galaxy-famous detective. In his free time he likes to think about strings containing zeros and ones.
Once he thought about a string of length *n* consisting of zeroes and ones. Consider the following operation: we choose any two adjacent positions in the string, and if one them contains 0, and the other contains 1, then we are allowed to remove these two digits from the string, obtaining a string of length *n*<=-<=2 as a result.
Now Andreid thinks about what is the minimum length of the string that can remain after applying the described operation several times (possibly, zero)? Help him to calculate this number.
|
First line of the input contains a single integer *n* (1<=≤<=*n*<=≤<=2·105), the length of the string that Andreid has.
The second line contains the string of length *n* consisting only from zeros and ones.
|
Output the minimum length of the string that may remain after applying the described operations several times.
|
[
"4\n1100\n",
"5\n01010\n",
"8\n11101111\n"
] |
[
"0\n",
"1\n",
"6\n"
] |
In the first sample test it is possible to change the string like the following: <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/10df55364c21c6e8d5da31b6ab6f6294c4fc26b3.png" style="max-width: 100.0%;max-height: 100.0%;"/>.
In the second sample test it is possible to change the string like the following: <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/19ec5dcd85f0b5cf757aa076ace72df39634de2d.png" style="max-width: 100.0%;max-height: 100.0%;"/>.
In the third sample test it is possible to change the string like the following: <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/dc34a159e4230375fa325555527ebc748811f188.png" style="max-width: 100.0%;max-height: 100.0%;"/>.
| 250
|
[
{
"input": "4\n1100",
"output": "0"
},
{
"input": "5\n01010",
"output": "1"
},
{
"input": "8\n11101111",
"output": "6"
},
{
"input": "1\n0",
"output": "1"
},
{
"input": "1\n1",
"output": "1"
},
{
"input": "2\n00",
"output": "2"
},
{
"input": "2\n01",
"output": "0"
},
{
"input": "2\n10",
"output": "0"
},
{
"input": "2\n11",
"output": "2"
},
{
"input": "3\n001",
"output": "1"
},
{
"input": "6\n110110",
"output": "2"
},
{
"input": "7\n0000011",
"output": "3"
},
{
"input": "6\n110010",
"output": "0"
},
{
"input": "6\n110100",
"output": "0"
},
{
"input": "3\n100",
"output": "1"
},
{
"input": "6\n010111",
"output": "2"
},
{
"input": "8\n01011100",
"output": "0"
},
{
"input": "6\n001011",
"output": "0"
},
{
"input": "7\n1110000",
"output": "1"
},
{
"input": "9\n011111101",
"output": "5"
}
] | 1,650,307,790
| 2,147,483,647
|
Python 3
|
TIME_LIMIT_EXCEEDED
|
TESTS
| 11
| 1,000
| 204,800
|
n = int(input())
s = str(input())
i = 0
while i < len(s) - 1:
if s[i] != s[i + 1]:
s = s[:i] + s[i + 2:]
i = -1
i += 1
print(len(s))
|
Title: Case of the Zeros and Ones
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
Andrewid the Android is a galaxy-famous detective. In his free time he likes to think about strings containing zeros and ones.
Once he thought about a string of length *n* consisting of zeroes and ones. Consider the following operation: we choose any two adjacent positions in the string, and if one them contains 0, and the other contains 1, then we are allowed to remove these two digits from the string, obtaining a string of length *n*<=-<=2 as a result.
Now Andreid thinks about what is the minimum length of the string that can remain after applying the described operation several times (possibly, zero)? Help him to calculate this number.
Input Specification:
First line of the input contains a single integer *n* (1<=≤<=*n*<=≤<=2·105), the length of the string that Andreid has.
The second line contains the string of length *n* consisting only from zeros and ones.
Output Specification:
Output the minimum length of the string that may remain after applying the described operations several times.
Demo Input:
['4\n1100\n', '5\n01010\n', '8\n11101111\n']
Demo Output:
['0\n', '1\n', '6\n']
Note:
In the first sample test it is possible to change the string like the following: <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/10df55364c21c6e8d5da31b6ab6f6294c4fc26b3.png" style="max-width: 100.0%;max-height: 100.0%;"/>.
In the second sample test it is possible to change the string like the following: <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/19ec5dcd85f0b5cf757aa076ace72df39634de2d.png" style="max-width: 100.0%;max-height: 100.0%;"/>.
In the third sample test it is possible to change the string like the following: <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/dc34a159e4230375fa325555527ebc748811f188.png" style="max-width: 100.0%;max-height: 100.0%;"/>.
|
```python
n = int(input())
s = str(input())
i = 0
while i < len(s) - 1:
if s[i] != s[i + 1]:
s = s[:i] + s[i + 2:]
i = -1
i += 1
print(len(s))
```
| 0
|
|
660
|
E
|
Different Subsets For All Tuples
|
PROGRAMMING
| 2,300
|
[
"combinatorics",
"math"
] | null | null |
For a sequence *a* of *n* integers between 1 and *m*, inclusive, denote *f*(*a*) as the number of distinct subsequences of *a* (including the empty subsequence).
You are given two positive integers *n* and *m*. Let *S* be the set of all sequences of length *n* consisting of numbers from 1 to *m*. Compute the sum *f*(*a*) over all *a* in *S* modulo 109<=+<=7.
|
The only line contains two integers *n* and *m* (1<=≤<=*n*,<=*m*<=≤<=106) — the number of elements in arrays and the upper bound for elements.
|
Print the only integer *c* — the desired sum modulo 109<=+<=7.
|
[
"1 3\n",
"2 2\n",
"3 3\n"
] |
[
"6\n",
"14\n",
"174\n"
] |
none
| 0
|
[
{
"input": "1 3",
"output": "6"
},
{
"input": "2 2",
"output": "14"
},
{
"input": "3 3",
"output": "174"
},
{
"input": "1 1000000",
"output": "2000000"
},
{
"input": "1000000 1",
"output": "1000001"
},
{
"input": "500 500",
"output": "383255233"
},
{
"input": "1000000 1000000",
"output": "247171672"
}
] | 1,633,804,831
| 2,147,483,647
|
PyPy 3
|
WRONG_ANSWER
|
TESTS
| 5
| 1,169
| 20,172,800
|
import sys
input = sys.stdin.readline
n, m = map(int, input().split())
mod = pow(10, 9) + 7
ans = (n + 1) * pow(m, n, mod) % mod
for i in range(n - 1, 0, -1):
ans += pow(m, i, mod) * (i * (i + 1) // 2) % mod * pow(m - 1, n - i, mod) % mod
ans %= mod
print(ans)
|
Title: Different Subsets For All Tuples
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
For a sequence *a* of *n* integers between 1 and *m*, inclusive, denote *f*(*a*) as the number of distinct subsequences of *a* (including the empty subsequence).
You are given two positive integers *n* and *m*. Let *S* be the set of all sequences of length *n* consisting of numbers from 1 to *m*. Compute the sum *f*(*a*) over all *a* in *S* modulo 109<=+<=7.
Input Specification:
The only line contains two integers *n* and *m* (1<=≤<=*n*,<=*m*<=≤<=106) — the number of elements in arrays and the upper bound for elements.
Output Specification:
Print the only integer *c* — the desired sum modulo 109<=+<=7.
Demo Input:
['1 3\n', '2 2\n', '3 3\n']
Demo Output:
['6\n', '14\n', '174\n']
Note:
none
|
```python
import sys
input = sys.stdin.readline
n, m = map(int, input().split())
mod = pow(10, 9) + 7
ans = (n + 1) * pow(m, n, mod) % mod
for i in range(n - 1, 0, -1):
ans += pow(m, i, mod) * (i * (i + 1) // 2) % mod * pow(m - 1, n - i, mod) % mod
ans %= mod
print(ans)
```
| 0
|
|
680
|
B
|
Bear and Finding Criminals
|
PROGRAMMING
| 1,000
|
[
"constructive algorithms",
"implementation"
] | null | null |
There are *n* cities in Bearland, numbered 1 through *n*. Cities are arranged in one long row. The distance between cities *i* and *j* is equal to |*i*<=-<=*j*|.
Limak is a police officer. He lives in a city *a*. His job is to catch criminals. It's hard because he doesn't know in which cities criminals are. Though, he knows that there is at most one criminal in each city.
Limak is going to use a BCD (Bear Criminal Detector). The BCD will tell Limak how many criminals there are for every distance from a city *a*. After that, Limak can catch a criminal in each city for which he is sure that there must be a criminal.
You know in which cities criminals are. Count the number of criminals Limak will catch, after he uses the BCD.
|
The first line of the input contains two integers *n* and *a* (1<=≤<=*a*<=≤<=*n*<=≤<=100) — the number of cities and the index of city where Limak lives.
The second line contains *n* integers *t*1,<=*t*2,<=...,<=*t**n* (0<=≤<=*t**i*<=≤<=1). There are *t**i* criminals in the *i*-th city.
|
Print the number of criminals Limak will catch.
|
[
"6 3\n1 1 1 0 1 0\n",
"5 2\n0 0 0 1 0\n"
] |
[
"3\n",
"1\n"
] |
In the first sample, there are six cities and Limak lives in the third one (blue arrow below). Criminals are in cities marked red.
Using the BCD gives Limak the following information:
- There is one criminal at distance 0 from the third city — Limak is sure that this criminal is exactly in the third city. - There is one criminal at distance 1 from the third city — Limak doesn't know if a criminal is in the second or fourth city. - There are two criminals at distance 2 from the third city — Limak is sure that there is one criminal in the first city and one in the fifth city. - There are zero criminals for every greater distance.
So, Limak will catch criminals in cities 1, 3 and 5, that is 3 criminals in total.
In the second sample (drawing below), the BCD gives Limak the information that there is one criminal at distance 2 from Limak's city. There is only one city at distance 2 so Limak is sure where a criminal is.
| 1,000
|
[
{
"input": "6 3\n1 1 1 0 1 0",
"output": "3"
},
{
"input": "5 2\n0 0 0 1 0",
"output": "1"
},
{
"input": "1 1\n1",
"output": "1"
},
{
"input": "1 1\n0",
"output": "0"
},
{
"input": "9 3\n1 1 1 1 1 1 1 1 0",
"output": "8"
},
{
"input": "9 5\n1 0 1 0 1 0 1 0 1",
"output": "5"
},
{
"input": "20 17\n1 1 0 1 1 1 1 0 1 0 1 1 1 0 1 1 0 0 0 0",
"output": "10"
},
{
"input": "100 60\n1 1 1 1 1 1 0 1 0 0 1 1 0 1 1 1 1 1 0 0 1 1 0 0 0 0 0 1 0 1 1 0 1 0 1 0 1 0 1 1 0 0 0 0 0 1 1 1 0 1 1 0 0 0 1 0 0 0 1 1 1 0 1 0 0 1 1 1 0 1 1 1 0 0 1 1 0 1 0 0 0 1 0 0 0 0 0 0 1 1 1 0 0 1 1 1 0 1 0 0",
"output": "27"
},
{
"input": "8 1\n1 0 1 1 0 0 1 0",
"output": "4"
},
{
"input": "11 11\n0 1 0 0 1 1 1 0 0 0 0",
"output": "4"
},
{
"input": "19 10\n0 1 1 0 1 0 0 1 1 0 0 1 0 1 0 0 1 0 1",
"output": "4"
},
{
"input": "100 38\n1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0",
"output": "0"
},
{
"input": "100 38\n1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0",
"output": "1"
},
{
"input": "100 38\n1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0",
"output": "3"
},
{
"input": "99 38\n0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1",
"output": "25"
},
{
"input": "99 38\n0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1",
"output": "24"
},
{
"input": "99 38\n0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1",
"output": "24"
},
{
"input": "98 70\n1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0",
"output": "41"
},
{
"input": "99 70\n0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1",
"output": "9"
},
{
"input": "99 60\n0 0 0 1 1 0 1 1 0 0 1 0 0 0 0 0 1 0 1 0 0 0 1 0 1 1 1 0 1 1 1 1 0 0 1 1 1 0 1 1 1 1 1 0 1 1 0 0 0 0 0 1 0 0 1 0 1 1 1 1 1 0 1 0 1 1 0 0 1 0 1 0 0 1 0 0 1 1 1 0 0 0 0 1 1 0 1 1 1 1 0 0 0 0 0 0 1 1 1",
"output": "34"
},
{
"input": "98 24\n0 0 0 1 1 0 1 1 0 0 0 0 1 0 0 1 0 0 1 1 1 0 0 1 0 0 1 0 1 0 0 1 1 0 1 1 1 0 1 0 0 1 0 0 0 1 1 1 1 0 1 1 1 0 1 1 1 1 0 0 1 0 0 0 1 0 1 1 0 1 0 1 1 1 0 0 1 0 0 0 1 1 0 0 1 1 1 1 1 1 0 1 0 1 0 0 1 1",
"output": "39"
},
{
"input": "100 100\n1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1 1",
"output": "100"
},
{
"input": "100 1\n0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0",
"output": "0"
},
{
"input": "2 1\n0 1",
"output": "1"
}
] | 1,614,192,507
| 2,147,483,647
|
PyPy 3
|
WRONG_ANSWER
|
TESTS
| 2
| 93
| 0
|
import sys
n,a = map(int,input().split())
arr = list(map(int,input().split()))
i,j = a-1,a-1
ans = 0
while i>0 and j<n-1:
if i == j:
ans = ans + (arr[i] and arr[j])
else:
ans = ans + 2*(arr[i] and arr[j])
i-=1
j+=1
ans+=2*(arr[i] and arr[j])
if i==0 and j==n-1:
print(ans)
elif i==0 and j!=n-1:
print(ans+arr[j+1:].count(1))
else:
print(ans+arr[0:i].count(1))
|
Title: Bear and Finding Criminals
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
There are *n* cities in Bearland, numbered 1 through *n*. Cities are arranged in one long row. The distance between cities *i* and *j* is equal to |*i*<=-<=*j*|.
Limak is a police officer. He lives in a city *a*. His job is to catch criminals. It's hard because he doesn't know in which cities criminals are. Though, he knows that there is at most one criminal in each city.
Limak is going to use a BCD (Bear Criminal Detector). The BCD will tell Limak how many criminals there are for every distance from a city *a*. After that, Limak can catch a criminal in each city for which he is sure that there must be a criminal.
You know in which cities criminals are. Count the number of criminals Limak will catch, after he uses the BCD.
Input Specification:
The first line of the input contains two integers *n* and *a* (1<=≤<=*a*<=≤<=*n*<=≤<=100) — the number of cities and the index of city where Limak lives.
The second line contains *n* integers *t*1,<=*t*2,<=...,<=*t**n* (0<=≤<=*t**i*<=≤<=1). There are *t**i* criminals in the *i*-th city.
Output Specification:
Print the number of criminals Limak will catch.
Demo Input:
['6 3\n1 1 1 0 1 0\n', '5 2\n0 0 0 1 0\n']
Demo Output:
['3\n', '1\n']
Note:
In the first sample, there are six cities and Limak lives in the third one (blue arrow below). Criminals are in cities marked red.
Using the BCD gives Limak the following information:
- There is one criminal at distance 0 from the third city — Limak is sure that this criminal is exactly in the third city. - There is one criminal at distance 1 from the third city — Limak doesn't know if a criminal is in the second or fourth city. - There are two criminals at distance 2 from the third city — Limak is sure that there is one criminal in the first city and one in the fifth city. - There are zero criminals for every greater distance.
So, Limak will catch criminals in cities 1, 3 and 5, that is 3 criminals in total.
In the second sample (drawing below), the BCD gives Limak the information that there is one criminal at distance 2 from Limak's city. There is only one city at distance 2 so Limak is sure where a criminal is.
|
```python
import sys
n,a = map(int,input().split())
arr = list(map(int,input().split()))
i,j = a-1,a-1
ans = 0
while i>0 and j<n-1:
if i == j:
ans = ans + (arr[i] and arr[j])
else:
ans = ans + 2*(arr[i] and arr[j])
i-=1
j+=1
ans+=2*(arr[i] and arr[j])
if i==0 and j==n-1:
print(ans)
elif i==0 and j!=n-1:
print(ans+arr[j+1:].count(1))
else:
print(ans+arr[0:i].count(1))
```
| 0
|
|
908
|
A
|
New Year and Counting Cards
|
PROGRAMMING
| 800
|
[
"brute force",
"implementation"
] | null | null |
Your friend has *n* cards.
You know that each card has a lowercase English letter on one side and a digit on the other.
Currently, your friend has laid out the cards on a table so only one side of each card is visible.
You would like to know if the following statement is true for cards that your friend owns: "If a card has a vowel on one side, then it has an even digit on the other side." More specifically, a vowel is one of 'a', 'e', 'i', 'o' or 'u', and even digit is one of '0', '2', '4', '6' or '8'.
For example, if a card has 'a' on one side, and '6' on the other side, then this statement is true for it. Also, the statement is true, for example, for a card with 'b' and '4', and for a card with 'b' and '3' (since the letter is not a vowel). The statement is false, for example, for card with 'e' and '5'. You are interested if the statement is true for all cards. In particular, if no card has a vowel, the statement is true.
To determine this, you can flip over some cards to reveal the other side. You would like to know what is the minimum number of cards you need to flip in the worst case in order to verify that the statement is true.
|
The first and only line of input will contain a string *s* (1<=≤<=|*s*|<=≤<=50), denoting the sides of the cards that you can see on the table currently. Each character of *s* is either a lowercase English letter or a digit.
|
Print a single integer, the minimum number of cards you must turn over to verify your claim.
|
[
"ee\n",
"z\n",
"0ay1\n"
] |
[
"2\n",
"0\n",
"2\n"
] |
In the first sample, we must turn over both cards. Note that even though both cards have the same letter, they could possibly have different numbers on the other side.
In the second sample, we don't need to turn over any cards. The statement is vacuously true, since you know your friend has no cards with a vowel on them.
In the third sample, we need to flip the second and fourth cards.
| 500
|
[
{
"input": "ee",
"output": "2"
},
{
"input": "z",
"output": "0"
},
{
"input": "0ay1",
"output": "2"
},
{
"input": "0abcdefghijklmnopqrstuvwxyz1234567896",
"output": "10"
},
{
"input": "0a0a9e9e2i2i9o9o6u6u9z9z4x4x9b9b",
"output": "18"
},
{
"input": "01234567890123456789012345678901234567890123456789",
"output": "25"
},
{
"input": "qwertyuioplkjhgfdsazxcvbnmqwertyuioplkjhgfdsazxcvb",
"output": "10"
},
{
"input": "cjw2dwmr10pku4yxohe0wglktd",
"output": "4"
},
{
"input": "6z2tx805jie8cfybwtfqvmlveec3iak5z5u3lu62vbxyqht6",
"output": "13"
},
{
"input": "kaq7jyialrfp4ilkni90eq8v3amcbygon7py0hb8z26fbl8ss1",
"output": "13"
},
{
"input": "hpwn50zgbmct80k9rizjqg40nycgs0acwikjqt11nr6m61krfs",
"output": "8"
},
{
"input": "l3rw91a4m25l8iytxyeuixsegzcbm4h41ornf3pixkrmwznrzc",
"output": "14"
},
{
"input": "2222",
"output": "0"
},
{
"input": "13579",
"output": "5"
},
{
"input": "1",
"output": "1"
},
{
"input": "0",
"output": "0"
},
{
"input": "a",
"output": "1"
},
{
"input": "y",
"output": "0"
},
{
"input": "w",
"output": "0"
},
{
"input": "oo",
"output": "2"
},
{
"input": "oy",
"output": "1"
},
{
"input": "yo",
"output": "1"
},
{
"input": "yy",
"output": "0"
},
{
"input": "a0",
"output": "1"
},
{
"input": "a9",
"output": "2"
},
{
"input": "y0",
"output": "0"
},
{
"input": "y7",
"output": "1"
},
{
"input": "0a",
"output": "1"
},
{
"input": "3a",
"output": "2"
},
{
"input": "06",
"output": "0"
},
{
"input": "07",
"output": "1"
},
{
"input": "70",
"output": "1"
},
{
"input": "77",
"output": "2"
},
{
"input": "13570",
"output": "4"
},
{
"input": "0000000000011111",
"output": "5"
},
{
"input": "1357",
"output": "4"
},
{
"input": "uuuuuuuuuuuuuuuuuu",
"output": "18"
},
{
"input": "gabieurat",
"output": "5"
}
] | 1,531,450,409
| 2,147,483,647
|
Python 3
|
WRONG_ANSWER
|
TESTS
| 3
| 109
| 0
|
flipped_cards = {'a', 'e', 'i', 'o', 'u', '1'}
x = 0
for c in input():
if c in flipped_cards:
x += 1
print(x)
|
Title: New Year and Counting Cards
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
Your friend has *n* cards.
You know that each card has a lowercase English letter on one side and a digit on the other.
Currently, your friend has laid out the cards on a table so only one side of each card is visible.
You would like to know if the following statement is true for cards that your friend owns: "If a card has a vowel on one side, then it has an even digit on the other side." More specifically, a vowel is one of 'a', 'e', 'i', 'o' or 'u', and even digit is one of '0', '2', '4', '6' or '8'.
For example, if a card has 'a' on one side, and '6' on the other side, then this statement is true for it. Also, the statement is true, for example, for a card with 'b' and '4', and for a card with 'b' and '3' (since the letter is not a vowel). The statement is false, for example, for card with 'e' and '5'. You are interested if the statement is true for all cards. In particular, if no card has a vowel, the statement is true.
To determine this, you can flip over some cards to reveal the other side. You would like to know what is the minimum number of cards you need to flip in the worst case in order to verify that the statement is true.
Input Specification:
The first and only line of input will contain a string *s* (1<=≤<=|*s*|<=≤<=50), denoting the sides of the cards that you can see on the table currently. Each character of *s* is either a lowercase English letter or a digit.
Output Specification:
Print a single integer, the minimum number of cards you must turn over to verify your claim.
Demo Input:
['ee\n', 'z\n', '0ay1\n']
Demo Output:
['2\n', '0\n', '2\n']
Note:
In the first sample, we must turn over both cards. Note that even though both cards have the same letter, they could possibly have different numbers on the other side.
In the second sample, we don't need to turn over any cards. The statement is vacuously true, since you know your friend has no cards with a vowel on them.
In the third sample, we need to flip the second and fourth cards.
|
```python
flipped_cards = {'a', 'e', 'i', 'o', 'u', '1'}
x = 0
for c in input():
if c in flipped_cards:
x += 1
print(x)
```
| 0
|
|
858
|
A
|
k-rounding
|
PROGRAMMING
| 1,100
|
[
"brute force",
"math",
"number theory"
] | null | null |
For a given positive integer *n* denote its *k*-rounding as the minimum positive integer *x*, such that *x* ends with *k* or more zeros in base 10 and is divisible by *n*.
For example, 4-rounding of 375 is 375·80<==<=30000. 30000 is the minimum integer such that it ends with 4 or more zeros and is divisible by 375.
Write a program that will perform the *k*-rounding of *n*.
|
The only line contains two integers *n* and *k* (1<=≤<=*n*<=≤<=109, 0<=≤<=*k*<=≤<=8).
|
Print the *k*-rounding of *n*.
|
[
"375 4\n",
"10000 1\n",
"38101 0\n",
"123456789 8\n"
] |
[
"30000\n",
"10000\n",
"38101\n",
"12345678900000000\n"
] |
none
| 750
|
[
{
"input": "375 4",
"output": "30000"
},
{
"input": "10000 1",
"output": "10000"
},
{
"input": "38101 0",
"output": "38101"
},
{
"input": "123456789 8",
"output": "12345678900000000"
},
{
"input": "1 0",
"output": "1"
},
{
"input": "2 0",
"output": "2"
},
{
"input": "100 0",
"output": "100"
},
{
"input": "1000000000 0",
"output": "1000000000"
},
{
"input": "160 2",
"output": "800"
},
{
"input": "3 0",
"output": "3"
},
{
"input": "10 0",
"output": "10"
},
{
"input": "1 1",
"output": "10"
},
{
"input": "2 1",
"output": "10"
},
{
"input": "3 1",
"output": "30"
},
{
"input": "4 1",
"output": "20"
},
{
"input": "5 1",
"output": "10"
},
{
"input": "6 1",
"output": "30"
},
{
"input": "7 1",
"output": "70"
},
{
"input": "8 1",
"output": "40"
},
{
"input": "9 1",
"output": "90"
},
{
"input": "10 1",
"output": "10"
},
{
"input": "11 1",
"output": "110"
},
{
"input": "12 1",
"output": "60"
},
{
"input": "16 2",
"output": "400"
},
{
"input": "2 2",
"output": "100"
},
{
"input": "1 2",
"output": "100"
},
{
"input": "5 2",
"output": "100"
},
{
"input": "15 2",
"output": "300"
},
{
"input": "36 2",
"output": "900"
},
{
"input": "1 8",
"output": "100000000"
},
{
"input": "8 8",
"output": "100000000"
},
{
"input": "96 8",
"output": "300000000"
},
{
"input": "175 8",
"output": "700000000"
},
{
"input": "9999995 8",
"output": "199999900000000"
},
{
"input": "999999999 8",
"output": "99999999900000000"
},
{
"input": "12345678 8",
"output": "617283900000000"
},
{
"input": "78125 8",
"output": "100000000"
},
{
"input": "390625 8",
"output": "100000000"
},
{
"input": "1953125 8",
"output": "500000000"
},
{
"input": "9765625 8",
"output": "2500000000"
},
{
"input": "68359375 8",
"output": "17500000000"
},
{
"input": "268435456 8",
"output": "104857600000000"
},
{
"input": "125829120 8",
"output": "9830400000000"
},
{
"input": "128000 8",
"output": "400000000"
},
{
"input": "300000 8",
"output": "300000000"
},
{
"input": "3711871 8",
"output": "371187100000000"
},
{
"input": "55555 8",
"output": "1111100000000"
},
{
"input": "222222222 8",
"output": "11111111100000000"
},
{
"input": "479001600 8",
"output": "7484400000000"
},
{
"input": "655360001 7",
"output": "6553600010000000"
},
{
"input": "655360001 8",
"output": "65536000100000000"
},
{
"input": "1000000000 1",
"output": "1000000000"
},
{
"input": "1000000000 7",
"output": "1000000000"
},
{
"input": "1000000000 8",
"output": "1000000000"
},
{
"input": "100000000 8",
"output": "100000000"
},
{
"input": "10000000 8",
"output": "100000000"
},
{
"input": "1000000 8",
"output": "100000000"
},
{
"input": "10000009 8",
"output": "1000000900000000"
},
{
"input": "10000005 8",
"output": "200000100000000"
},
{
"input": "10000002 8",
"output": "500000100000000"
},
{
"input": "999999997 8",
"output": "99999999700000000"
},
{
"input": "999999997 7",
"output": "9999999970000000"
},
{
"input": "999999995 8",
"output": "19999999900000000"
},
{
"input": "123 8",
"output": "12300000000"
},
{
"input": "24 2",
"output": "600"
},
{
"input": "16 4",
"output": "10000"
},
{
"input": "123456787 8",
"output": "12345678700000000"
},
{
"input": "100000000 8",
"output": "100000000"
},
{
"input": "7 1",
"output": "70"
},
{
"input": "101 1",
"output": "1010"
},
{
"input": "50 2",
"output": "100"
},
{
"input": "999999818 1",
"output": "4999999090"
},
{
"input": "2 1",
"output": "10"
},
{
"input": "123 1",
"output": "1230"
},
{
"input": "16 1",
"output": "80"
},
{
"input": "1 1",
"output": "10"
},
{
"input": "1000000000 8",
"output": "1000000000"
},
{
"input": "15304 6",
"output": "1913000000"
},
{
"input": "3 8",
"output": "300000000"
},
{
"input": "4 2",
"output": "100"
},
{
"input": "100000 7",
"output": "10000000"
},
{
"input": "5 8",
"output": "100000000"
},
{
"input": "16724 6",
"output": "4181000000"
},
{
"input": "999999999 1",
"output": "9999999990"
},
{
"input": "999999990 8",
"output": "9999999900000000"
},
{
"input": "999999999 8",
"output": "99999999900000000"
},
{
"input": "100000 1",
"output": "100000"
},
{
"input": "8 3",
"output": "1000"
},
{
"input": "16768 6",
"output": "262000000"
},
{
"input": "123456789 1",
"output": "1234567890"
},
{
"input": "2 8",
"output": "100000000"
},
{
"input": "999999937 8",
"output": "99999993700000000"
},
{
"input": "5 1",
"output": "10"
},
{
"input": "2000000 7",
"output": "10000000"
},
{
"input": "1999998 2",
"output": "99999900"
},
{
"input": "125 3",
"output": "1000"
}
] | 1,598,716,335
| 2,147,483,647
|
Python 3
|
WRONG_ANSWER
|
TESTS
| 29
| 108
| 0
|
n,k = map(int, input().split());s = 10**k
if k==0:
print(n)
elif s>10**4:
for i in range(s-1,n):
if n*i%s==0:
print(n*i)
break
else:
for i in range(1,s+1):
if n*i%s==0:
print(n*i)
break
|
Title: k-rounding
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
For a given positive integer *n* denote its *k*-rounding as the minimum positive integer *x*, such that *x* ends with *k* or more zeros in base 10 and is divisible by *n*.
For example, 4-rounding of 375 is 375·80<==<=30000. 30000 is the minimum integer such that it ends with 4 or more zeros and is divisible by 375.
Write a program that will perform the *k*-rounding of *n*.
Input Specification:
The only line contains two integers *n* and *k* (1<=≤<=*n*<=≤<=109, 0<=≤<=*k*<=≤<=8).
Output Specification:
Print the *k*-rounding of *n*.
Demo Input:
['375 4\n', '10000 1\n', '38101 0\n', '123456789 8\n']
Demo Output:
['30000\n', '10000\n', '38101\n', '12345678900000000\n']
Note:
none
|
```python
n,k = map(int, input().split());s = 10**k
if k==0:
print(n)
elif s>10**4:
for i in range(s-1,n):
if n*i%s==0:
print(n*i)
break
else:
for i in range(1,s+1):
if n*i%s==0:
print(n*i)
break
```
| 0
|
|
0
|
none
|
none
|
none
| 0
|
[
"none"
] | null | null |
Slastyona and her loyal dog Pushok are playing a meaningless game that is indeed very interesting.
The game consists of multiple rounds. Its rules are very simple: in each round, a natural number *k* is chosen. Then, the one who says (or barks) it faster than the other wins the round. After that, the winner's score is multiplied by *k*2, and the loser's score is multiplied by *k*. In the beginning of the game, both Slastyona and Pushok have scores equal to one.
Unfortunately, Slastyona had lost her notepad where the history of all *n* games was recorded. She managed to recall the final results for each games, though, but all of her memories of them are vague. Help Slastyona verify their correctness, or, to put it another way, for each given pair of scores determine whether it was possible for a game to finish with such result or not.
|
In the first string, the number of games *n* (1<=≤<=*n*<=≤<=350000) is given.
Each game is represented by a pair of scores *a*, *b* (1<=≤<=*a*,<=*b*<=≤<=109) – the results of Slastyona and Pushok, correspondingly.
|
For each pair of scores, answer "Yes" if it's possible for a game to finish with given score, and "No" otherwise.
You can output each letter in arbitrary case (upper or lower).
|
[
"6\n2 4\n75 45\n8 8\n16 16\n247 994\n1000000000 1000000\n"
] |
[
"Yes\nYes\nYes\nNo\nNo\nYes\n"
] |
First game might have been consisted of one round, in which the number 2 would have been chosen and Pushok would have won.
The second game needs exactly two rounds to finish with such result: in the first one, Slastyona would have said the number 5, and in the second one, Pushok would have barked the number 3.
| 0
|
[
{
"input": "6\n2 4\n75 45\n8 8\n16 16\n247 994\n1000000000 1000000",
"output": "Yes\nYes\nYes\nNo\nNo\nYes"
},
{
"input": "3\n1 1\n8 27\n1000 1331",
"output": "Yes\nNo\nNo"
},
{
"input": "1\n12004 18012002",
"output": "Yes"
},
{
"input": "1\n3331 11095561",
"output": "Yes"
},
{
"input": "1\n2 3",
"output": "No"
},
{
"input": "1\n1062961 1031",
"output": "Yes"
},
{
"input": "1\n6 12",
"output": "No"
},
{
"input": "1\n3 1",
"output": "No"
},
{
"input": "1\n3 10",
"output": "No"
},
{
"input": "1\n31159 970883281",
"output": "Yes"
},
{
"input": "1\n9907 98148649",
"output": "Yes"
},
{
"input": "1\n16 8",
"output": "No"
},
{
"input": "1\n90 72",
"output": "No"
}
] | 1,683,989,618
| 2,147,483,647
|
PyPy 3-64
|
COMPILATION_ERROR
|
TESTS
| 0
| 0
| 0
|
#include <bits/stdc++.h>
using namespace std;
///Solved by @sHau to @1110011110111111101101110101110111011010011100001<3
#define ll long long
#define ld long double
map < ll, bool > mp;
void __MAIN__()
{
ll a, b;
cin >> a >> b;
ll x = a * b;
if(cbrt(x) == (ll)cbrt(x))
x = cbrt(x);
else
{
cout << "No";
return;
}
if(a % x or b % x)
cout << "No";
else
cout << "Yes";
}
int main () {
// freopen("input.txt", "r", stdin);
// freopen("output.txt", "w", stdout);
ios_base::sync_with_stdio(false);cin.tie(0);cout.tie(0);
ll __T__ = 1; cin >> __T__;
while(__T__--)
__MAIN__(), cout << "\n";
return 0;
}
|
Title: none
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
Slastyona and her loyal dog Pushok are playing a meaningless game that is indeed very interesting.
The game consists of multiple rounds. Its rules are very simple: in each round, a natural number *k* is chosen. Then, the one who says (or barks) it faster than the other wins the round. After that, the winner's score is multiplied by *k*2, and the loser's score is multiplied by *k*. In the beginning of the game, both Slastyona and Pushok have scores equal to one.
Unfortunately, Slastyona had lost her notepad where the history of all *n* games was recorded. She managed to recall the final results for each games, though, but all of her memories of them are vague. Help Slastyona verify their correctness, or, to put it another way, for each given pair of scores determine whether it was possible for a game to finish with such result or not.
Input Specification:
In the first string, the number of games *n* (1<=≤<=*n*<=≤<=350000) is given.
Each game is represented by a pair of scores *a*, *b* (1<=≤<=*a*,<=*b*<=≤<=109) – the results of Slastyona and Pushok, correspondingly.
Output Specification:
For each pair of scores, answer "Yes" if it's possible for a game to finish with given score, and "No" otherwise.
You can output each letter in arbitrary case (upper or lower).
Demo Input:
['6\n2 4\n75 45\n8 8\n16 16\n247 994\n1000000000 1000000\n']
Demo Output:
['Yes\nYes\nYes\nNo\nNo\nYes\n']
Note:
First game might have been consisted of one round, in which the number 2 would have been chosen and Pushok would have won.
The second game needs exactly two rounds to finish with such result: in the first one, Slastyona would have said the number 5, and in the second one, Pushok would have barked the number 3.
|
```python
#include <bits/stdc++.h>
using namespace std;
///Solved by @sHau to @1110011110111111101101110101110111011010011100001<3
#define ll long long
#define ld long double
map < ll, bool > mp;
void __MAIN__()
{
ll a, b;
cin >> a >> b;
ll x = a * b;
if(cbrt(x) == (ll)cbrt(x))
x = cbrt(x);
else
{
cout << "No";
return;
}
if(a % x or b % x)
cout << "No";
else
cout << "Yes";
}
int main () {
// freopen("input.txt", "r", stdin);
// freopen("output.txt", "w", stdout);
ios_base::sync_with_stdio(false);cin.tie(0);cout.tie(0);
ll __T__ = 1; cin >> __T__;
while(__T__--)
__MAIN__(), cout << "\n";
return 0;
}
```
| -1
|
|
846
|
C
|
Four Segments
|
PROGRAMMING
| 1,800
|
[
"brute force",
"data structures",
"dp"
] | null | null |
You are given an array of *n* integer numbers. Let *sum*(*l*,<=*r*) be the sum of all numbers on positions from *l* to *r* non-inclusive (*l*-th element is counted, *r*-th element is not counted). For indices *l* and *r* holds 0<=≤<=*l*<=≤<=*r*<=≤<=*n*. Indices in array are numbered from 0.
For example, if *a*<==<=[<=-<=5,<=3,<=9,<=4], then *sum*(0,<=1)<==<=<=-<=5, *sum*(0,<=2)<==<=<=-<=2, *sum*(1,<=4)<==<=16 and *sum*(*i*,<=*i*)<==<=0 for each *i* from 0 to 4.
Choose the indices of three delimiters *delim*0, *delim*1, *delim*2 (0<=≤<=*delim*0<=≤<=*delim*1<=≤<=*delim*2<=≤<=*n*) and divide the array in such a way that the value of *res*<==<=*sum*(0,<=*delim*0) - *sum*(*delim*0,<=*delim*1) + *sum*(*delim*1,<=*delim*2) - *sum*(*delim*2,<=*n*) is maximal.
Note that some of the expressions *sum*(*l*,<=*r*) can correspond to empty segments (if *l*<==<=*r* for some segment).
|
The first line contains one integer number *n* (1<=≤<=*n*<=≤<=5000).
The second line contains *n* numbers *a*0,<=*a*1,<=...,<=*a**n*<=-<=1 (<=-<=109<=≤<=*a**i*<=≤<=109).
|
Choose three indices so that the value of *res* is maximal. If there are multiple answers, print any of them.
|
[
"3\n-1 2 3\n",
"4\n0 0 -1 0\n",
"1\n10000\n"
] |
[
"0 1 3\n",
"0 0 0\n",
"1 1 1\n"
] |
none
| 0
|
[
{
"input": "3\n-1 2 3",
"output": "0 1 3"
},
{
"input": "4\n0 0 -1 0",
"output": "0 0 0"
},
{
"input": "1\n10000",
"output": "0 0 1"
},
{
"input": "1\n-1",
"output": "0 0 0"
},
{
"input": "1\n0",
"output": "0 0 0"
},
{
"input": "10\n0 0 0 0 0 0 0 0 0 0",
"output": "0 0 0"
},
{
"input": "100\n-1 -1 0 1 -1 0 0 -1 -1 1 1 0 1 0 -1 1 0 0 -1 0 0 0 1 0 0 1 1 1 1 0 -1 -1 0 0 0 1 1 -1 0 0 1 1 1 0 -1 -1 0 -1 0 -1 -1 0 1 0 1 -1 1 -1 -1 -1 0 0 -1 0 -1 -1 0 -1 1 1 -1 1 0 1 -1 -1 1 1 -1 1 0 -1 1 -1 1 1 1 1 1 -1 0 1 0 0 -1 0 1 1 -1 -1",
"output": "43 68 98"
},
{
"input": "100\n2 1 -2 -1 -2 0 -1 -2 1 2 0 1 0 -2 -1 -2 0 2 0 1 -2 -2 2 0 -2 2 -2 0 2 0 2 0 -1 0 -2 2 -1 -1 -2 -1 0 -2 2 0 -2 -2 -2 -1 1 0 -2 -1 2 -1 -2 1 -1 1 1 2 -2 1 -2 1 2 2 -2 1 -2 0 -1 -1 -2 -2 1 0 -1 -1 2 0 2 0 -1 2 1 -1 2 0 2 1 1 1 -1 -1 1 -2 0 0 -2 0",
"output": "2 78 92"
},
{
"input": "10\n-6 -4 -7 0 7 9 8 3 8 7",
"output": "0 3 10"
},
{
"input": "4\n-1 1 -2 -2",
"output": "0 1 2"
},
{
"input": "2\n-3 -1",
"output": "0 0 0"
}
] | 1,612,373,726
| 2,147,483,647
|
PyPy 3
|
TIME_LIMIT_EXCEEDED
|
TESTS
| 12
| 1,000
| 11,161,600
|
from sys import stdin
def arr_sum(arr):
tem = [0]
for i in range(len(arr)):
tem.append(tem[-1] + arr[i])
return tem
n, a = int(input()), [int(x) for x in stdin.readline().split()]
ans, mem = [n, n, n, -float('inf')], arr_sum(a)
pre, suf = [-10 ** 13] * (n + 1), [-10 ** 13] * (n + 1)
preix, sufix = [-1] * (n + 1), [-1] * (n + 1)
for i in range(n + 1):
for j in range(i, n + 1):
su1, su2 = mem[i], mem[j] - mem[i]
if su1 - su2 > pre[j]:
pre[j], preix[j] = su1 - su2, i
su1 = mem[-1] - mem[j]
if su2 - su1 > suf[i]:
suf[i], sufix[i] = su2 - su1, j
for i in range(n + 1):
val = pre[i] + suf[i]
if val > ans[-1]:
ans = [preix[i], i, sufix[i], val]
print(f'{ans[0]} {ans[1]} {ans[2]}')
|
Title: Four Segments
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
You are given an array of *n* integer numbers. Let *sum*(*l*,<=*r*) be the sum of all numbers on positions from *l* to *r* non-inclusive (*l*-th element is counted, *r*-th element is not counted). For indices *l* and *r* holds 0<=≤<=*l*<=≤<=*r*<=≤<=*n*. Indices in array are numbered from 0.
For example, if *a*<==<=[<=-<=5,<=3,<=9,<=4], then *sum*(0,<=1)<==<=<=-<=5, *sum*(0,<=2)<==<=<=-<=2, *sum*(1,<=4)<==<=16 and *sum*(*i*,<=*i*)<==<=0 for each *i* from 0 to 4.
Choose the indices of three delimiters *delim*0, *delim*1, *delim*2 (0<=≤<=*delim*0<=≤<=*delim*1<=≤<=*delim*2<=≤<=*n*) and divide the array in such a way that the value of *res*<==<=*sum*(0,<=*delim*0) - *sum*(*delim*0,<=*delim*1) + *sum*(*delim*1,<=*delim*2) - *sum*(*delim*2,<=*n*) is maximal.
Note that some of the expressions *sum*(*l*,<=*r*) can correspond to empty segments (if *l*<==<=*r* for some segment).
Input Specification:
The first line contains one integer number *n* (1<=≤<=*n*<=≤<=5000).
The second line contains *n* numbers *a*0,<=*a*1,<=...,<=*a**n*<=-<=1 (<=-<=109<=≤<=*a**i*<=≤<=109).
Output Specification:
Choose three indices so that the value of *res* is maximal. If there are multiple answers, print any of them.
Demo Input:
['3\n-1 2 3\n', '4\n0 0 -1 0\n', '1\n10000\n']
Demo Output:
['0 1 3\n', '0 0 0\n', '1 1 1\n']
Note:
none
|
```python
from sys import stdin
def arr_sum(arr):
tem = [0]
for i in range(len(arr)):
tem.append(tem[-1] + arr[i])
return tem
n, a = int(input()), [int(x) for x in stdin.readline().split()]
ans, mem = [n, n, n, -float('inf')], arr_sum(a)
pre, suf = [-10 ** 13] * (n + 1), [-10 ** 13] * (n + 1)
preix, sufix = [-1] * (n + 1), [-1] * (n + 1)
for i in range(n + 1):
for j in range(i, n + 1):
su1, su2 = mem[i], mem[j] - mem[i]
if su1 - su2 > pre[j]:
pre[j], preix[j] = su1 - su2, i
su1 = mem[-1] - mem[j]
if su2 - su1 > suf[i]:
suf[i], sufix[i] = su2 - su1, j
for i in range(n + 1):
val = pre[i] + suf[i]
if val > ans[-1]:
ans = [preix[i], i, sufix[i], val]
print(f'{ans[0]} {ans[1]} {ans[2]}')
```
| 0
|
|
550
|
C
|
Divisibility by Eight
|
PROGRAMMING
| 1,500
|
[
"brute force",
"dp",
"math"
] | null | null |
You are given a non-negative integer *n*, its decimal representation consists of at most 100 digits and doesn't contain leading zeroes.
Your task is to determine if it is possible in this case to remove some of the digits (possibly not remove any digit at all) so that the result contains at least one digit, forms a non-negative integer, doesn't have leading zeroes and is divisible by 8. After the removing, it is forbidden to rearrange the digits.
If a solution exists, you should print it.
|
The single line of the input contains a non-negative integer *n*. The representation of number *n* doesn't contain any leading zeroes and its length doesn't exceed 100 digits.
|
Print "NO" (without quotes), if there is no such way to remove some digits from number *n*.
Otherwise, print "YES" in the first line and the resulting number after removing digits from number *n* in the second line. The printed number must be divisible by 8.
If there are multiple possible answers, you may print any of them.
|
[
"3454\n",
"10\n",
"111111\n"
] |
[
"YES\n344\n",
"YES\n0\n",
"NO\n"
] |
none
| 1,000
|
[
{
"input": "3454",
"output": "YES\n344"
},
{
"input": "10",
"output": "YES\n0"
},
{
"input": "111111",
"output": "NO"
},
{
"input": "8996988892",
"output": "YES\n8"
},
{
"input": "5555555555",
"output": "NO"
},
{
"input": "1",
"output": "NO"
},
{
"input": "8147522776919916277306861346922924221557534659480258977017038624458370459299847590937757625791239188",
"output": "YES\n8"
},
{
"input": "8",
"output": "YES\n8"
},
{
"input": "14",
"output": "NO"
},
{
"input": "2363",
"output": "NO"
},
{
"input": "3554",
"output": "NO"
},
{
"input": "312",
"output": "YES\n32"
},
{
"input": "7674",
"output": "YES\n64"
},
{
"input": "126",
"output": "YES\n16"
},
{
"input": "344",
"output": "YES\n344"
},
{
"input": "976",
"output": "YES\n96"
},
{
"input": "3144",
"output": "YES\n344"
},
{
"input": "1492",
"output": "YES\n192"
},
{
"input": "1000",
"output": "YES\n0"
},
{
"input": "303",
"output": "YES\n0"
},
{
"input": "111111111111111111111171111111111111111111111111111112",
"output": "YES\n72"
},
{
"input": "3111111111111111111111411111111111111111111141111111441",
"output": "YES\n344"
},
{
"input": "7486897358699809313898215064443112428113331907121460549315254356705507612143346801724124391167293733",
"output": "YES\n8"
},
{
"input": "1787075866",
"output": "YES\n8"
},
{
"input": "836501278190105055089734832290981",
"output": "YES\n8"
},
{
"input": "1111111111111111111111111111111111111111111111111111111111111111111111111111111111111111111111111111",
"output": "NO"
},
{
"input": "2222222222222222222222222222222222222222222222222222222222222222222222222222222222222222222222222222",
"output": "NO"
},
{
"input": "3333333333333333333333333333333333333333333333333333333333333333333333333333333333333333333333333333",
"output": "NO"
},
{
"input": "1000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000000",
"output": "YES\n0"
},
{
"input": "5555555555555555555555555555555555555555555555555555555555555555555555555555555555555555555555555555",
"output": "NO"
},
{
"input": "66666666666666666666666666666666666666666666666666666666666666666666666666666",
"output": "NO"
},
{
"input": "88888888888888888888888888888888888888888888888888888888888888888888888888888888",
"output": "YES\n8"
},
{
"input": "9999999999999999999999999999999999999999999999999999999999999999999999999999999999999999999",
"output": "NO"
},
{
"input": "353",
"output": "NO"
},
{
"input": "39",
"output": "NO"
},
{
"input": "3697519",
"output": "NO"
},
{
"input": "6673177113",
"output": "NO"
},
{
"input": "6666351371557713735",
"output": "NO"
},
{
"input": "17943911115335733153157373517",
"output": "NO"
},
{
"input": "619715515939999957957971971757533319177373",
"output": "NO"
},
{
"input": "4655797151375799393395377959959573533195153397997597195199777159133",
"output": "NO"
},
{
"input": "5531399953495399131957773999751571911139197159755793777773799119333593915333593153173775755771193715",
"output": "NO"
},
{
"input": "1319571733331774579193199551977735199771153997797535591739153377377111795579371959933533573517995559",
"output": "NO"
},
{
"input": "3313393139519343957311771319713797711159791515393917539133957799131393735795317131513557337319131993",
"output": "NO"
},
{
"input": "526",
"output": "YES\n56"
},
{
"input": "513",
"output": "NO"
},
{
"input": "674",
"output": "YES\n64"
},
{
"input": "8353",
"output": "YES\n8"
},
{
"input": "3957",
"output": "NO"
},
{
"input": "4426155776626276881222352363321488266188669874572115686737742545442766138617391954346963915982759371",
"output": "YES\n8"
},
{
"input": "9592419524227735697379444145348135927975358347769514686865768941989693174565893724972575152874281772",
"output": "YES\n8"
},
{
"input": "94552498866729239313265973246288189853135485783461",
"output": "YES\n8"
},
{
"input": "647934465937812",
"output": "YES\n8"
},
{
"input": "1327917795375366484539554526312125336",
"output": "YES\n8"
},
{
"input": "295971811535848297878828225646878276486982655866912496735794542",
"output": "YES\n8"
},
{
"input": "7217495392264549817889283233368819844137671271383133997418139697797385729777632527678136",
"output": "YES\n8"
},
{
"input": "11111111111111111111112111111111",
"output": "YES\n112"
},
{
"input": "262626262626262626262626262626262626",
"output": "NO"
},
{
"input": "1000000000000000000000000000000000000",
"output": "YES\n0"
},
{
"input": "9969929446",
"output": "YES\n96"
},
{
"input": "43523522125549722432232256557771715456345544922144",
"output": "YES\n32"
},
{
"input": "9344661521956564755454992376342544254667536539463277572111263273131199437332443253296774957",
"output": "YES\n96"
},
{
"input": "1946374341357914632311595531429723377642197432217137651552992479954116463332543456759911377223599715",
"output": "YES\n16"
},
{
"input": "461259",
"output": "NO"
},
{
"input": "461592",
"output": "YES\n152"
},
{
"input": "46159237",
"output": "YES\n152"
},
{
"input": "42367",
"output": "NO"
},
{
"input": "42376",
"output": "YES\n376"
},
{
"input": "42376159",
"output": "YES\n376"
},
{
"input": "444444444444444444444444444444666666666666666666666666666666222222222222222222222222222222",
"output": "NO"
},
{
"input": "0",
"output": "YES\n0"
},
{
"input": "33332",
"output": "YES\n32"
},
{
"input": "6499999999",
"output": "YES\n64"
}
] | 1,692,820,613
| 2,147,483,647
|
PyPy 3-64
|
COMPILATION_ERROR
|
TESTS
| 0
| 0
| 0
|
numbers = str(input())
new_numbers = []
for number in numbers:
new_numbers.append(int(number))
new_numbers.reverse()
found_nums = {}
multiples_of_8 = []
looking_for = {}
for i in range(100):
value = i * 8
key_digit = value % 10
multiples_of_8.append(value)
if value == 144:
if key_digit in looking_for:
looking_for[key_digit].append(len(multiples_of_8) - 1)
else:
looking_for[key_digit] = [len(multiples_of_8) - 1]
def find_answer():
for number in new_numbers:
if number in looking_for:
new_list = []
for index in looking_for[number]:
value = multiples_of_8[index]
value -= number
if value == 0:
print(index * 8)
return
value /= 10
multiples_of_8[index] = int(value)
key_digit = int(value % 10)
if key_digit == number:
new_list.append(index)
elif key_digit in looking_for:
looking_for[key_digit].append(index)
else:
looking_for[key_digit] = [index]
looking_for[number] = new_list
find_answer()
|
Title: Divisibility by Eight
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
You are given a non-negative integer *n*, its decimal representation consists of at most 100 digits and doesn't contain leading zeroes.
Your task is to determine if it is possible in this case to remove some of the digits (possibly not remove any digit at all) so that the result contains at least one digit, forms a non-negative integer, doesn't have leading zeroes and is divisible by 8. After the removing, it is forbidden to rearrange the digits.
If a solution exists, you should print it.
Input Specification:
The single line of the input contains a non-negative integer *n*. The representation of number *n* doesn't contain any leading zeroes and its length doesn't exceed 100 digits.
Output Specification:
Print "NO" (without quotes), if there is no such way to remove some digits from number *n*.
Otherwise, print "YES" in the first line and the resulting number after removing digits from number *n* in the second line. The printed number must be divisible by 8.
If there are multiple possible answers, you may print any of them.
Demo Input:
['3454\n', '10\n', '111111\n']
Demo Output:
['YES\n344\n', 'YES\n0\n', 'NO\n']
Note:
none
|
```python
numbers = str(input())
new_numbers = []
for number in numbers:
new_numbers.append(int(number))
new_numbers.reverse()
found_nums = {}
multiples_of_8 = []
looking_for = {}
for i in range(100):
value = i * 8
key_digit = value % 10
multiples_of_8.append(value)
if value == 144:
if key_digit in looking_for:
looking_for[key_digit].append(len(multiples_of_8) - 1)
else:
looking_for[key_digit] = [len(multiples_of_8) - 1]
def find_answer():
for number in new_numbers:
if number in looking_for:
new_list = []
for index in looking_for[number]:
value = multiples_of_8[index]
value -= number
if value == 0:
print(index * 8)
return
value /= 10
multiples_of_8[index] = int(value)
key_digit = int(value % 10)
if key_digit == number:
new_list.append(index)
elif key_digit in looking_for:
looking_for[key_digit].append(index)
else:
looking_for[key_digit] = [index]
looking_for[number] = new_list
find_answer()
```
| -1
|
|
820
|
B
|
Mister B and Angle in Polygon
|
PROGRAMMING
| 1,300
|
[
"constructive algorithms",
"geometry",
"math"
] | null | null |
On one quiet day all of sudden Mister B decided to draw angle *a* on his field. Aliens have already visited his field and left many different geometric figures on it. One of the figures is regular convex *n*-gon (regular convex polygon with *n* sides).
That's why Mister B decided to use this polygon. Now Mister B must find three distinct vertices *v*1, *v*2, *v*3 such that the angle (where *v*2 is the vertex of the angle, and *v*1 and *v*3 lie on its sides) is as close as possible to *a*. In other words, the value should be minimum possible.
If there are many optimal solutions, Mister B should be satisfied with any of them.
|
First and only line contains two space-separated integers *n* and *a* (3<=≤<=*n*<=≤<=105, 1<=≤<=*a*<=≤<=180) — the number of vertices in the polygon and the needed angle, in degrees.
|
Print three space-separated integers: the vertices *v*1, *v*2, *v*3, which form . If there are multiple optimal solutions, print any of them. The vertices are numbered from 1 to *n* in clockwise order.
|
[
"3 15\n",
"4 67\n",
"4 68\n"
] |
[
"1 2 3\n",
"2 1 3\n",
"4 1 2\n"
] |
In first sample test vertices of regular triangle can create only angle of 60 degrees, that's why every possible angle is correct.
Vertices of square can create 45 or 90 degrees angles only. That's why in second sample test the angle of 45 degrees was chosen, since |45 - 67| < |90 - 67|. Other correct answers are: "3 1 2", "3 2 4", "4 2 3", "4 3 1", "1 3 4", "1 4 2", "2 4 1", "4 1 3", "3 1 4", "3 4 2", "2 4 3", "2 3 1", "1 3 2", "1 2 4", "4 2 1".
In third sample test, on the contrary, the angle of 90 degrees was chosen, since |90 - 68| < |45 - 68|. Other correct answers are: "2 1 4", "3 2 1", "1 2 3", "4 3 2", "2 3 4", "1 4 3", "3 4 1".
| 1,000
|
[
{
"input": "3 15",
"output": "2 1 3"
},
{
"input": "4 67",
"output": "2 1 3"
},
{
"input": "4 68",
"output": "2 1 4"
},
{
"input": "3 1",
"output": "2 1 3"
},
{
"input": "3 180",
"output": "2 1 3"
},
{
"input": "100000 1",
"output": "2 1 558"
},
{
"input": "100000 180",
"output": "2 1 100000"
},
{
"input": "100000 42",
"output": "2 1 23335"
},
{
"input": "100000 123",
"output": "2 1 68335"
},
{
"input": "5 1",
"output": "2 1 3"
},
{
"input": "5 36",
"output": "2 1 3"
},
{
"input": "5 54",
"output": "2 1 3"
},
{
"input": "5 55",
"output": "2 1 4"
},
{
"input": "5 70",
"output": "2 1 4"
},
{
"input": "5 89",
"output": "2 1 4"
},
{
"input": "5 90",
"output": "2 1 4"
},
{
"input": "5 91",
"output": "2 1 5"
},
{
"input": "5 111",
"output": "2 1 5"
},
{
"input": "5 126",
"output": "2 1 5"
},
{
"input": "5 127",
"output": "2 1 5"
},
{
"input": "5 141",
"output": "2 1 5"
},
{
"input": "5 162",
"output": "2 1 5"
},
{
"input": "5 180",
"output": "2 1 5"
},
{
"input": "6 46",
"output": "2 1 4"
},
{
"input": "6 33",
"output": "2 1 3"
},
{
"input": "13 4",
"output": "2 1 3"
},
{
"input": "23 11",
"output": "2 1 3"
},
{
"input": "11 119",
"output": "2 1 9"
},
{
"input": "13 117",
"output": "2 1 10"
},
{
"input": "18 174",
"output": "2 1 18"
},
{
"input": "8509 139",
"output": "2 1 6573"
},
{
"input": "29770 76",
"output": "2 1 12572"
},
{
"input": "59115 40",
"output": "2 1 13139"
},
{
"input": "68459 88",
"output": "2 1 33471"
},
{
"input": "85100 129",
"output": "2 1 60990"
},
{
"input": "100000 13",
"output": "2 1 7224"
},
{
"input": "100000 35",
"output": "2 1 19446"
},
{
"input": "100000 49",
"output": "2 1 27224"
},
{
"input": "100000 71",
"output": "2 1 39446"
},
{
"input": "100000 79",
"output": "2 1 43891"
},
{
"input": "100000 101",
"output": "2 1 56113"
},
{
"input": "100000 109",
"output": "2 1 60558"
},
{
"input": "100000 143",
"output": "2 1 79446"
},
{
"input": "100000 148",
"output": "2 1 82224"
},
{
"input": "100000 176",
"output": "2 1 97780"
},
{
"input": "4 16",
"output": "2 1 3"
}
] | 1,498,578,748
| 4,648
|
Python 3
|
OK
|
TESTS
| 46
| 109
| 5,529,600
|
n,a=[int(x) for x in input().split()]
c=180/n
x=2*c
min=a-c
min_v=n
for i in range(n-1,2,-1):
if(abs(a-x)<min):
min=abs(a-x)
min_v=i
x+=c
print("1 2 "+str(min_v) )
|
Title: Mister B and Angle in Polygon
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
On one quiet day all of sudden Mister B decided to draw angle *a* on his field. Aliens have already visited his field and left many different geometric figures on it. One of the figures is regular convex *n*-gon (regular convex polygon with *n* sides).
That's why Mister B decided to use this polygon. Now Mister B must find three distinct vertices *v*1, *v*2, *v*3 such that the angle (where *v*2 is the vertex of the angle, and *v*1 and *v*3 lie on its sides) is as close as possible to *a*. In other words, the value should be minimum possible.
If there are many optimal solutions, Mister B should be satisfied with any of them.
Input Specification:
First and only line contains two space-separated integers *n* and *a* (3<=≤<=*n*<=≤<=105, 1<=≤<=*a*<=≤<=180) — the number of vertices in the polygon and the needed angle, in degrees.
Output Specification:
Print three space-separated integers: the vertices *v*1, *v*2, *v*3, which form . If there are multiple optimal solutions, print any of them. The vertices are numbered from 1 to *n* in clockwise order.
Demo Input:
['3 15\n', '4 67\n', '4 68\n']
Demo Output:
['1 2 3\n', '2 1 3\n', '4 1 2\n']
Note:
In first sample test vertices of regular triangle can create only angle of 60 degrees, that's why every possible angle is correct.
Vertices of square can create 45 or 90 degrees angles only. That's why in second sample test the angle of 45 degrees was chosen, since |45 - 67| < |90 - 67|. Other correct answers are: "3 1 2", "3 2 4", "4 2 3", "4 3 1", "1 3 4", "1 4 2", "2 4 1", "4 1 3", "3 1 4", "3 4 2", "2 4 3", "2 3 1", "1 3 2", "1 2 4", "4 2 1".
In third sample test, on the contrary, the angle of 90 degrees was chosen, since |90 - 68| < |45 - 68|. Other correct answers are: "2 1 4", "3 2 1", "1 2 3", "4 3 2", "2 3 4", "1 4 3", "3 4 1".
|
```python
n,a=[int(x) for x in input().split()]
c=180/n
x=2*c
min=a-c
min_v=n
for i in range(n-1,2,-1):
if(abs(a-x)<min):
min=abs(a-x)
min_v=i
x+=c
print("1 2 "+str(min_v) )
```
| 3
|
|
450
|
A
|
Jzzhu and Children
|
PROGRAMMING
| 1,000
|
[
"implementation"
] | null | null |
There are *n* children in Jzzhu's school. Jzzhu is going to give some candies to them. Let's number all the children from 1 to *n*. The *i*-th child wants to get at least *a**i* candies.
Jzzhu asks children to line up. Initially, the *i*-th child stands at the *i*-th place of the line. Then Jzzhu start distribution of the candies. He follows the algorithm:
1. Give *m* candies to the first child of the line. 1. If this child still haven't got enough candies, then the child goes to the end of the line, else the child go home. 1. Repeat the first two steps while the line is not empty.
Consider all the children in the order they go home. Jzzhu wants to know, which child will be the last in this order?
|
The first line contains two integers *n*,<=*m* (1<=≤<=*n*<=≤<=100; 1<=≤<=*m*<=≤<=100). The second line contains *n* integers *a*1,<=*a*2,<=...,<=*a**n* (1<=≤<=*a**i*<=≤<=100).
|
Output a single integer, representing the number of the last child.
|
[
"5 2\n1 3 1 4 2\n",
"6 4\n1 1 2 2 3 3\n"
] |
[
"4\n",
"6\n"
] |
Let's consider the first sample.
Firstly child 1 gets 2 candies and go home. Then child 2 gets 2 candies and go to the end of the line. Currently the line looks like [3, 4, 5, 2] (indices of the children in order of the line). Then child 3 gets 2 candies and go home, and then child 4 gets 2 candies and goes to the end of the line. Currently the line looks like [5, 2, 4]. Then child 5 gets 2 candies and goes home. Then child 2 gets two candies and goes home, and finally child 4 gets 2 candies and goes home.
Child 4 is the last one who goes home.
| 500
|
[
{
"input": "5 2\n1 3 1 4 2",
"output": "4"
},
{
"input": "6 4\n1 1 2 2 3 3",
"output": "6"
},
{
"input": "7 3\n6 1 5 4 2 3 1",
"output": "4"
},
{
"input": "10 5\n2 7 3 6 2 5 1 3 4 5",
"output": "4"
},
{
"input": "100 1\n1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 16 17 18 19 20 21 22 23 24 25 26 27 28 29 30 31 32 33 34 35 36 37 38 39 40 41 42 43 44 45 46 47 48 49 50 51 52 53 54 55 56 57 58 59 60 61 62 63 64 65 66 67 68 69 70 71 72 73 74 75 76 77 78 79 80 81 82 83 84 85 86 87 88 89 90 91 92 93 94 95 96 97 98 99 100",
"output": "100"
},
{
"input": "9 3\n9 5 2 3 7 1 8 4 6",
"output": "7"
},
{
"input": "20 10\n58 4 32 10 73 7 30 39 47 6 59 21 24 66 79 79 46 13 29 58",
"output": "16"
},
{
"input": "50 5\n89 56 3 2 40 37 56 52 83 59 43 83 43 59 29 74 22 58 53 41 53 67 78 30 57 32 58 29 95 46 45 85 60 49 41 82 8 71 52 40 45 26 6 71 84 91 4 93 40 54",
"output": "48"
},
{
"input": "50 1\n4 3 9 7 6 8 3 7 10 9 8 8 10 2 9 3 2 4 4 10 4 6 8 10 9 9 4 2 8 9 4 4 9 5 1 5 2 4 4 9 10 2 5 10 7 2 8 6 8 1",
"output": "44"
},
{
"input": "50 5\n3 9 10 8 3 3 4 6 8 2 9 9 3 1 2 10 6 8 7 2 7 4 2 7 5 10 2 2 2 5 10 5 6 6 8 7 10 4 3 2 10 8 6 6 8 6 4 4 1 3",
"output": "46"
},
{
"input": "50 2\n56 69 72 15 95 92 51 1 74 87 100 29 46 54 18 81 84 72 84 83 20 63 71 27 45 74 50 89 48 8 21 15 47 3 39 73 80 84 6 99 17 25 56 3 74 64 71 39 89 78",
"output": "40"
},
{
"input": "50 3\n31 39 64 16 86 3 1 9 25 54 98 42 20 3 49 41 73 37 55 62 33 77 64 22 33 82 26 13 10 13 7 40 48 18 46 79 94 72 19 12 11 61 16 37 10 49 14 94 48 69",
"output": "11"
},
{
"input": "50 100\n67 67 61 68 42 29 70 77 12 61 71 27 4 73 87 52 59 38 93 90 31 27 87 47 26 57 76 6 28 72 81 68 50 84 69 79 39 93 52 6 88 12 46 13 90 68 71 38 90 95",
"output": "50"
},
{
"input": "100 3\n4 14 20 11 19 11 14 20 5 7 6 12 11 17 5 11 7 6 2 10 13 5 12 8 5 17 20 18 7 19 11 7 7 20 20 8 10 17 17 19 20 5 15 16 19 7 11 16 4 17 2 10 1 20 20 16 19 9 9 11 5 7 12 9 9 6 20 18 13 19 8 4 8 1 2 4 10 11 15 14 1 7 17 12 13 19 12 2 3 14 15 15 5 17 14 12 17 14 16 9",
"output": "86"
},
{
"input": "100 5\n16 8 14 16 12 11 17 19 19 2 8 9 5 6 19 9 11 18 6 9 14 16 14 18 17 17 17 5 15 20 19 7 7 10 10 5 14 20 5 19 11 16 16 19 17 9 7 12 14 10 2 11 14 5 20 8 10 11 19 2 14 14 19 17 5 10 8 8 4 2 1 10 20 12 14 11 7 6 6 15 1 5 9 15 3 17 16 17 5 14 11 9 16 15 1 11 10 6 15 7",
"output": "93"
},
{
"input": "100 1\n58 94 18 50 17 14 96 62 83 80 75 5 9 22 25 41 3 96 74 45 66 37 2 37 13 85 68 54 77 11 85 19 25 21 52 59 90 61 72 89 82 22 10 16 3 68 61 29 55 76 28 85 65 76 27 3 14 10 56 37 86 18 35 38 56 68 23 88 33 38 52 87 55 83 94 34 100 41 83 56 91 77 32 74 97 13 67 31 57 81 53 39 5 88 46 1 79 4 49 42",
"output": "77"
},
{
"input": "100 2\n1 51 76 62 34 93 90 43 57 59 52 78 3 48 11 60 57 48 5 54 28 81 87 23 44 77 67 61 14 73 29 53 21 89 67 41 47 9 63 37 1 71 40 85 4 14 77 40 78 75 89 74 4 70 32 65 81 95 49 90 72 41 76 55 69 83 73 84 85 93 46 6 74 90 62 37 97 7 7 37 83 30 37 88 34 16 11 59 85 19 57 63 85 20 63 97 97 65 61 48",
"output": "97"
},
{
"input": "100 3\n30 83 14 55 61 66 34 98 90 62 89 74 45 93 33 31 75 35 82 100 63 69 48 18 99 2 36 71 14 30 70 76 96 85 97 90 49 36 6 76 37 94 70 3 63 73 75 48 39 29 13 2 46 26 9 56 1 18 54 53 85 34 2 12 1 93 75 67 77 77 14 26 33 25 55 9 57 70 75 6 87 66 18 3 41 69 73 24 49 2 20 72 39 58 91 54 74 56 66 78",
"output": "20"
},
{
"input": "100 4\n69 92 76 3 32 50 15 38 21 22 14 3 67 41 95 12 10 62 83 52 78 1 18 58 94 35 62 71 58 75 13 73 60 34 50 97 50 70 19 96 53 10 100 26 20 39 62 59 88 26 24 83 70 68 66 8 6 38 16 93 2 91 81 89 78 74 21 8 31 56 28 53 77 5 81 5 94 42 77 75 92 15 59 36 61 18 55 45 69 68 81 51 12 42 85 74 98 31 17 41",
"output": "97"
},
{
"input": "100 5\n2 72 10 60 6 50 72 34 97 77 35 43 80 64 40 53 46 6 90 22 29 70 26 68 52 19 72 88 83 18 55 32 99 81 11 21 39 42 41 63 60 97 30 23 55 78 89 35 24 50 99 52 27 76 24 8 20 27 51 37 17 82 69 18 46 19 26 77 52 83 76 65 43 66 84 84 13 30 66 88 84 23 37 1 17 26 11 50 73 56 54 37 40 29 35 8 1 39 50 82",
"output": "51"
},
{
"input": "100 7\n6 73 7 54 92 33 66 65 80 47 2 53 28 59 61 16 54 89 37 48 77 40 49 59 27 52 17 22 78 80 81 80 8 93 50 7 87 57 29 16 89 55 20 7 51 54 30 98 44 96 27 70 1 1 32 61 22 92 84 98 31 89 91 90 28 56 49 25 86 49 55 16 19 1 18 8 88 47 16 18 73 86 2 96 16 91 74 49 38 98 94 25 34 85 29 27 99 31 31 58",
"output": "97"
},
{
"input": "100 9\n36 4 45 16 19 6 10 87 44 82 71 49 70 35 83 19 40 76 45 94 44 96 10 54 82 77 86 63 11 37 21 3 15 89 80 88 89 16 72 23 25 9 51 25 10 45 96 5 6 18 51 31 42 57 41 51 42 15 89 61 45 82 16 48 61 67 19 40 9 33 90 36 78 36 79 79 16 10 83 87 9 22 84 12 23 76 36 14 2 81 56 33 56 23 57 84 76 55 35 88",
"output": "47"
},
{
"input": "100 10\n75 81 39 64 90 58 92 28 75 9 96 78 92 83 77 68 76 71 14 46 58 60 80 25 78 11 13 63 22 82 65 68 47 6 33 63 90 50 85 43 73 94 80 48 67 11 83 17 22 15 94 80 66 99 66 4 46 35 52 1 62 39 96 57 37 47 97 49 64 12 36 63 90 16 4 75 85 82 85 56 13 4 92 45 44 93 17 35 22 46 18 44 29 7 52 4 100 98 87 51",
"output": "98"
},
{
"input": "100 20\n21 19 61 70 54 97 98 14 61 72 25 94 24 56 55 25 12 80 76 11 35 17 80 26 11 94 52 47 84 61 10 2 74 25 10 21 2 79 55 50 30 75 10 64 44 5 60 96 52 16 74 41 20 77 20 44 8 86 74 36 49 61 99 13 54 64 19 99 50 43 12 73 48 48 83 55 72 73 63 81 30 27 95 9 97 82 24 3 89 90 33 14 47 88 22 78 12 75 58 67",
"output": "94"
},
{
"input": "100 30\n56 79 59 23 11 23 67 82 81 80 99 79 8 58 93 36 98 81 46 39 34 67 3 50 4 68 70 71 2 21 52 30 75 23 33 21 16 100 56 43 8 27 40 8 56 24 17 40 94 10 67 49 61 36 95 87 17 41 7 94 33 19 17 50 26 11 94 54 38 46 77 9 53 35 98 42 50 20 43 6 78 6 38 24 100 45 43 16 1 50 16 46 14 91 95 88 10 1 50 19",
"output": "95"
},
{
"input": "100 40\n86 11 97 17 38 95 11 5 13 83 67 75 50 2 46 39 84 68 22 85 70 23 64 46 59 93 39 80 35 78 93 21 83 19 64 1 49 59 99 83 44 81 70 58 15 82 83 47 55 65 91 10 2 92 4 77 37 32 12 57 78 11 42 8 59 21 96 69 61 30 44 29 12 70 91 14 10 83 11 75 14 10 19 39 8 98 5 81 66 66 79 55 36 29 22 45 19 24 55 49",
"output": "88"
},
{
"input": "100 50\n22 39 95 69 94 53 80 73 33 90 40 60 2 4 84 50 70 38 92 12 36 74 87 70 51 36 57 5 54 6 35 81 52 17 55 100 95 81 32 76 21 1 100 1 95 1 40 91 98 59 84 19 11 51 79 19 47 86 45 15 62 2 59 77 31 68 71 92 17 33 10 33 85 57 5 2 88 97 91 99 63 20 63 54 79 93 24 62 46 27 30 87 3 64 95 88 16 50 79 1",
"output": "99"
},
{
"input": "100 70\n61 48 89 17 97 6 93 13 64 50 66 88 24 52 46 99 6 65 93 64 82 37 57 41 47 1 84 5 97 83 79 46 16 35 40 7 64 15 44 96 37 17 30 92 51 67 26 3 14 56 27 68 66 93 36 39 51 6 40 55 79 26 71 54 8 48 18 2 71 12 55 60 29 37 31 97 26 37 25 68 67 70 3 87 100 41 5 82 65 92 24 66 76 48 89 8 40 93 31 95",
"output": "100"
},
{
"input": "100 90\n87 32 30 15 10 52 93 63 84 1 82 41 27 51 75 32 42 94 39 53 70 13 4 22 99 35 44 38 5 23 18 100 61 80 9 12 42 93 9 77 3 7 60 95 66 78 95 42 69 8 1 88 93 66 96 20 76 63 15 36 92 52 2 72 36 57 48 63 29 20 74 88 49 47 81 61 94 74 70 93 47 3 19 52 59 41 5 40 22 3 76 97 91 37 95 88 91 99 76 15",
"output": "98"
},
{
"input": "100 100\n79 75 7 28 6 96 38 35 57 95 41 74 24 96 32 78 81 13 63 84 24 95 3 23 66 1 60 6 96 49 41 5 14 18 31 97 66 19 49 89 49 70 51 28 20 99 18 1 28 77 24 46 69 21 40 32 31 66 28 6 66 97 9 16 70 90 91 30 34 82 93 41 65 11 39 52 1 88 63 43 80 50 60 49 28 56 18 76 24 57 74 1 28 99 36 35 79 54 18 16",
"output": "100"
},
{
"input": "1 3\n5",
"output": "1"
},
{
"input": "1 1\n100",
"output": "1"
},
{
"input": "2 3\n4 2",
"output": "1"
},
{
"input": "2 5\n99 97",
"output": "2"
},
{
"input": "3 4\n7 5 2",
"output": "2"
},
{
"input": "3 50\n47 86 51",
"output": "3"
},
{
"input": "5 100\n82 100 85 1 37",
"output": "5"
},
{
"input": "5 20\n40 39 21 5 20",
"output": "3"
},
{
"input": "1 27\n81",
"output": "1"
},
{
"input": "20 13\n7 8 29 83 74 28 93 85 7 8 3 9 8 70 49 50 39 41 57 1",
"output": "7"
},
{
"input": "2 1\n100 2",
"output": "1"
},
{
"input": "2 2\n6 4",
"output": "1"
},
{
"input": "5 2\n6 4 4 1 1",
"output": "1"
},
{
"input": "1 4\n3",
"output": "1"
},
{
"input": "3 2\n1 5 3",
"output": "2"
},
{
"input": "3 1\n3 2 2",
"output": "1"
},
{
"input": "3 1\n2 3 2",
"output": "2"
},
{
"input": "5 1\n5 1 1 1 1",
"output": "1"
},
{
"input": "2 3\n7 4",
"output": "1"
}
] | 1,664,228,500
| 2,147,483,647
|
Python 3
|
WRONG_ANSWER
|
TESTS
| 0
| 31
| 0
|
def main():
str1 = input()
str2 = input()
n1 = len(str1)
if (n1 > 0 and n1 <= 100):
for i in range(n1):
if (str1[i].lower() == str2[i].lower()):
i += 1
elif (ord(str1[i].lower()) < ord(str2[i].lower())):
return -1
else:
return 1
return 0
print(main())
|
Title: Jzzhu and Children
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
There are *n* children in Jzzhu's school. Jzzhu is going to give some candies to them. Let's number all the children from 1 to *n*. The *i*-th child wants to get at least *a**i* candies.
Jzzhu asks children to line up. Initially, the *i*-th child stands at the *i*-th place of the line. Then Jzzhu start distribution of the candies. He follows the algorithm:
1. Give *m* candies to the first child of the line. 1. If this child still haven't got enough candies, then the child goes to the end of the line, else the child go home. 1. Repeat the first two steps while the line is not empty.
Consider all the children in the order they go home. Jzzhu wants to know, which child will be the last in this order?
Input Specification:
The first line contains two integers *n*,<=*m* (1<=≤<=*n*<=≤<=100; 1<=≤<=*m*<=≤<=100). The second line contains *n* integers *a*1,<=*a*2,<=...,<=*a**n* (1<=≤<=*a**i*<=≤<=100).
Output Specification:
Output a single integer, representing the number of the last child.
Demo Input:
['5 2\n1 3 1 4 2\n', '6 4\n1 1 2 2 3 3\n']
Demo Output:
['4\n', '6\n']
Note:
Let's consider the first sample.
Firstly child 1 gets 2 candies and go home. Then child 2 gets 2 candies and go to the end of the line. Currently the line looks like [3, 4, 5, 2] (indices of the children in order of the line). Then child 3 gets 2 candies and go home, and then child 4 gets 2 candies and goes to the end of the line. Currently the line looks like [5, 2, 4]. Then child 5 gets 2 candies and goes home. Then child 2 gets two candies and goes home, and finally child 4 gets 2 candies and goes home.
Child 4 is the last one who goes home.
|
```python
def main():
str1 = input()
str2 = input()
n1 = len(str1)
if (n1 > 0 and n1 <= 100):
for i in range(n1):
if (str1[i].lower() == str2[i].lower()):
i += 1
elif (ord(str1[i].lower()) < ord(str2[i].lower())):
return -1
else:
return 1
return 0
print(main())
```
| 0
|
|
281
|
A
|
Word Capitalization
|
PROGRAMMING
| 800
|
[
"implementation",
"strings"
] | null | null |
Capitalization is writing a word with its first letter as a capital letter. Your task is to capitalize the given word.
Note, that during capitalization all the letters except the first one remains unchanged.
|
A single line contains a non-empty word. This word consists of lowercase and uppercase English letters. The length of the word will not exceed 103.
|
Output the given word after capitalization.
|
[
"ApPLe\n",
"konjac\n"
] |
[
"ApPLe\n",
"Konjac\n"
] |
none
| 500
|
[
{
"input": "ApPLe",
"output": "ApPLe"
},
{
"input": "konjac",
"output": "Konjac"
},
{
"input": "a",
"output": "A"
},
{
"input": "A",
"output": "A"
},
{
"input": "z",
"output": "Z"
},
{
"input": "ABACABA",
"output": "ABACABA"
},
{
"input": "xYaPxPxHxGePfGtQySlNrLxSjDtNnTaRaEpAhPaQpWnDzMqGgRgEwJxGiBdZnMtHxFbObCaGiCeZkUqIgBhHtNvAqAlHpMnQhNeQbMyZrCdElVwHtKrPpJjIaHuIlYwHaRkAkUpPlOhNlBtXwDsKzPyHrPiUwNlXtTaPuMwTqYtJySgFoXvLiHbQwMjSvXsQfKhVlOxGdQkWjBhEyQvBjPoFkThNeRhTuIzFjInJtEfPjOlOsJpJuLgLzFnZmKvFgFrNsOnVqFcNiMfCqTpKnVyLwNqFiTySpWeTdFnWuTwDkRjVxNyQvTrOoEiExYiFaIrLoFmJfZcDkHuWjYfCeEqCvEsZiWnJaEmFbMjDvYwEeJeGcKbVbChGsIzNlExHzHiTlHcSaKxLuZxX",
"output": "XYaPxPxHxGePfGtQySlNrLxSjDtNnTaRaEpAhPaQpWnDzMqGgRgEwJxGiBdZnMtHxFbObCaGiCeZkUqIgBhHtNvAqAlHpMnQhNeQbMyZrCdElVwHtKrPpJjIaHuIlYwHaRkAkUpPlOhNlBtXwDsKzPyHrPiUwNlXtTaPuMwTqYtJySgFoXvLiHbQwMjSvXsQfKhVlOxGdQkWjBhEyQvBjPoFkThNeRhTuIzFjInJtEfPjOlOsJpJuLgLzFnZmKvFgFrNsOnVqFcNiMfCqTpKnVyLwNqFiTySpWeTdFnWuTwDkRjVxNyQvTrOoEiExYiFaIrLoFmJfZcDkHuWjYfCeEqCvEsZiWnJaEmFbMjDvYwEeJeGcKbVbChGsIzNlExHzHiTlHcSaKxLuZxX"
},
{
"input": "rZhIcQlXpNcPgXrOjTiOlMoTgXgIhCfMwZfWoFzGhEkQlOoMjIuShPlZfWkNnMyQfYdUhVgQuSmYoElEtZpDyHtOxXgCpWbZqSbYnPqBcNqRtPgCnJnAyIvNsAhRbNeVlMwZyRyJnFgIsCnSbOdLvUyIeOzQvRpMoMoHfNhHwKvTcHuYnYySfPmAiNwAiWdZnWlLvGfBbRbRrCrBqIgIdWkWiBsNyYkKdNxZdGaToSsDnXpRaGrKxBpQsCzBdQgZzBkGeHgGxNrIyQlSzWsTmSnZwOcHqQpNcQvJlPvKaPiQaMaYsQjUeCqQdCjPgUbDmWiJmNiXgExLqOcCtSwSePnUxIuZfIfBeWbEiVbXnUsPwWyAiXyRbZgKwOqFfCtQuKxEmVeRlAkOeXkO",
"output": "RZhIcQlXpNcPgXrOjTiOlMoTgXgIhCfMwZfWoFzGhEkQlOoMjIuShPlZfWkNnMyQfYdUhVgQuSmYoElEtZpDyHtOxXgCpWbZqSbYnPqBcNqRtPgCnJnAyIvNsAhRbNeVlMwZyRyJnFgIsCnSbOdLvUyIeOzQvRpMoMoHfNhHwKvTcHuYnYySfPmAiNwAiWdZnWlLvGfBbRbRrCrBqIgIdWkWiBsNyYkKdNxZdGaToSsDnXpRaGrKxBpQsCzBdQgZzBkGeHgGxNrIyQlSzWsTmSnZwOcHqQpNcQvJlPvKaPiQaMaYsQjUeCqQdCjPgUbDmWiJmNiXgExLqOcCtSwSePnUxIuZfIfBeWbEiVbXnUsPwWyAiXyRbZgKwOqFfCtQuKxEmVeRlAkOeXkO"
},
{
"input": "hDgZlUmLhYbLkLcNcKeOwJwTePbOvLaRvNzQbSbLsPeHqLhUqWtUbNdQfQqFfXeJqJwWuOrFnDdZiPxIkDyVmHbHvXfIlFqSgAcSyWbOlSlRuPhWdEpEzEeLnXwCtWuVcHaUeRgCiYsIvOaIgDnFuDbRnMoCmPrZfLeFpSjQaTfHgZwZvAzDuSeNwSoWuJvLqKqAuUxFaCxFfRcEjEsJpOfCtDiVrBqNsNwPuGoRgPzRpLpYnNyQxKaNnDnYiJrCrVcHlOxPiPcDbEgKfLwBjLhKcNeMgJhJmOiJvPfOaPaEuGqWvRbErKrIpDkEoQnKwJnTlStLyNsHyOjZfKoIjXwUvRrWpSyYhRpQdLqGmErAiNcGqAqIrTeTiMuPmCrEkHdBrLyCxPtYpRqD",
"output": "HDgZlUmLhYbLkLcNcKeOwJwTePbOvLaRvNzQbSbLsPeHqLhUqWtUbNdQfQqFfXeJqJwWuOrFnDdZiPxIkDyVmHbHvXfIlFqSgAcSyWbOlSlRuPhWdEpEzEeLnXwCtWuVcHaUeRgCiYsIvOaIgDnFuDbRnMoCmPrZfLeFpSjQaTfHgZwZvAzDuSeNwSoWuJvLqKqAuUxFaCxFfRcEjEsJpOfCtDiVrBqNsNwPuGoRgPzRpLpYnNyQxKaNnDnYiJrCrVcHlOxPiPcDbEgKfLwBjLhKcNeMgJhJmOiJvPfOaPaEuGqWvRbErKrIpDkEoQnKwJnTlStLyNsHyOjZfKoIjXwUvRrWpSyYhRpQdLqGmErAiNcGqAqIrTeTiMuPmCrEkHdBrLyCxPtYpRqD"
},
{
"input": "qUdLgGrJeGmIzIeZrCjUtBpYfRvNdXdRpGsThIsEmJjTiMqEwRxBeBaSxEuWrNvExKePjPnXhPzBpWnHiDhTvZhBuIjDnZpTcEkCvRkAcTmMuXhGgErWgFyGyToOyVwYlCuQpTfJkVdWmFyBqQhJjYtXrBbFdHzDlGsFbHmHbFgXgFhIyDhZyEqEiEwNxSeByBwLiVeSnCxIdHbGjOjJrZeVkOzGeMmQrJkVyGhDtCzOlPeAzGrBlWwEnAdUfVaIjNrRyJjCnHkUvFuKuKeKbLzSbEmUcXtVkZzXzKlOrPgQiDmCcCvIyAdBwOeUuLbRmScNcWxIkOkJuIsBxTrIqXhDzLcYdVtPgZdZfAxTmUtByGiTsJkSySjXdJvEwNmSmNoWsChPdAzJrBoW",
"output": "QUdLgGrJeGmIzIeZrCjUtBpYfRvNdXdRpGsThIsEmJjTiMqEwRxBeBaSxEuWrNvExKePjPnXhPzBpWnHiDhTvZhBuIjDnZpTcEkCvRkAcTmMuXhGgErWgFyGyToOyVwYlCuQpTfJkVdWmFyBqQhJjYtXrBbFdHzDlGsFbHmHbFgXgFhIyDhZyEqEiEwNxSeByBwLiVeSnCxIdHbGjOjJrZeVkOzGeMmQrJkVyGhDtCzOlPeAzGrBlWwEnAdUfVaIjNrRyJjCnHkUvFuKuKeKbLzSbEmUcXtVkZzXzKlOrPgQiDmCcCvIyAdBwOeUuLbRmScNcWxIkOkJuIsBxTrIqXhDzLcYdVtPgZdZfAxTmUtByGiTsJkSySjXdJvEwNmSmNoWsChPdAzJrBoW"
},
{
"input": "kHbApGoBcLmIwUlXkVgUmWzYeLoDbGaOkWbIuXoRwMfKuOoMzAoXrBoTvYxGrMbRjDuRxAbGsTnErIiHnHoLeRnTbFiRfDdOkNlWiAcOsChLdLqFqXlDpDoDtPxXqAmSvYgPvOcCpOlWtOjYwFkGkHuCaHwZcFdOfHjBmIxTeSiHkWjXyFcCtOlSuJsZkDxUgPeZkJwMmNpErUlBcGuMlJwKkWnOzFeFiSiPsEvMmQiCsYeHlLuHoMgBjFoZkXlObDkSoQcVyReTmRsFzRhTuIvCeBqVsQdQyTyZjStGrTyDcEcAgTgMiIcVkLbZbGvWeHtXwEqWkXfTcPyHhHjYwIeVxLyVmHmMkUsGiHmNnQuMsXaFyPpVqNrBhOiWmNkBbQuHvQdOjPjKiZcL",
"output": "KHbApGoBcLmIwUlXkVgUmWzYeLoDbGaOkWbIuXoRwMfKuOoMzAoXrBoTvYxGrMbRjDuRxAbGsTnErIiHnHoLeRnTbFiRfDdOkNlWiAcOsChLdLqFqXlDpDoDtPxXqAmSvYgPvOcCpOlWtOjYwFkGkHuCaHwZcFdOfHjBmIxTeSiHkWjXyFcCtOlSuJsZkDxUgPeZkJwMmNpErUlBcGuMlJwKkWnOzFeFiSiPsEvMmQiCsYeHlLuHoMgBjFoZkXlObDkSoQcVyReTmRsFzRhTuIvCeBqVsQdQyTyZjStGrTyDcEcAgTgMiIcVkLbZbGvWeHtXwEqWkXfTcPyHhHjYwIeVxLyVmHmMkUsGiHmNnQuMsXaFyPpVqNrBhOiWmNkBbQuHvQdOjPjKiZcL"
},
{
"input": "aHmRbLgNuWkLxLnWvUbYwTeZeYiOlLhTuOvKfLnVmCiPcMkSgVrYjZiLuRjCiXhAnVzVcTlVeJdBvPdDfFvHkTuIhCdBjEsXbVmGcLrPfNvRdFsZkSdNpYsJeIhIcNqSoLkOjUlYlDmXsOxPbQtIoUxFjGnRtBhFaJvBeEzHsAtVoQbAfYjJqReBiKeUwRqYrUjPjBoHkOkPzDwEwUgTxQxAvKzUpMhKyOhPmEhYhItQwPeKsKaKlUhGuMcTtSwFtXfJsDsFlTtOjVvVfGtBtFlQyIcBaMsPaJlPqUcUvLmReZiFbXxVtRhTzJkLkAjVqTyVuFeKlTyQgUzMsXjOxQnVfTaWmThEnEoIhZeZdStBkKeLpAhJnFoJvQyGwDiStLjEwGfZwBuWsEfC",
"output": "AHmRbLgNuWkLxLnWvUbYwTeZeYiOlLhTuOvKfLnVmCiPcMkSgVrYjZiLuRjCiXhAnVzVcTlVeJdBvPdDfFvHkTuIhCdBjEsXbVmGcLrPfNvRdFsZkSdNpYsJeIhIcNqSoLkOjUlYlDmXsOxPbQtIoUxFjGnRtBhFaJvBeEzHsAtVoQbAfYjJqReBiKeUwRqYrUjPjBoHkOkPzDwEwUgTxQxAvKzUpMhKyOhPmEhYhItQwPeKsKaKlUhGuMcTtSwFtXfJsDsFlTtOjVvVfGtBtFlQyIcBaMsPaJlPqUcUvLmReZiFbXxVtRhTzJkLkAjVqTyVuFeKlTyQgUzMsXjOxQnVfTaWmThEnEoIhZeZdStBkKeLpAhJnFoJvQyGwDiStLjEwGfZwBuWsEfC"
},
{
"input": "sLlZkDiDmEdNaXuUuJwHqYvRtOdGfTiTpEpAoSqAbJaChOiCvHgSwZwEuPkMmXiLcKdXqSsEyViEbZpZsHeZpTuXoGcRmOiQfBfApPjDqSqElWeSeOhUyWjLyNoRuYeGfGwNqUsQoTyVvWeNgNdZfDxGwGfLsDjIdInSqDlMuNvFaHbScZkTlVwNcJpEjMaPaOtFgJjBjOcLlLmDnQrShIrJhOcUmPnZhTxNeClQsZaEaVaReLyQpLwEqJpUwYhLiRzCzKfOoFeTiXzPiNbOsZaZaLgCiNnMkBcFwGgAwPeNyTxJcCtBgXcToKlWaWcBaIvBpNxPeClQlWeQqRyEtAkJdBtSrFdDvAbUlKyLdCuTtXxFvRcKnYnWzVdYqDeCmOqPxUaFjQdTdCtN",
"output": "SLlZkDiDmEdNaXuUuJwHqYvRtOdGfTiTpEpAoSqAbJaChOiCvHgSwZwEuPkMmXiLcKdXqSsEyViEbZpZsHeZpTuXoGcRmOiQfBfApPjDqSqElWeSeOhUyWjLyNoRuYeGfGwNqUsQoTyVvWeNgNdZfDxGwGfLsDjIdInSqDlMuNvFaHbScZkTlVwNcJpEjMaPaOtFgJjBjOcLlLmDnQrShIrJhOcUmPnZhTxNeClQsZaEaVaReLyQpLwEqJpUwYhLiRzCzKfOoFeTiXzPiNbOsZaZaLgCiNnMkBcFwGgAwPeNyTxJcCtBgXcToKlWaWcBaIvBpNxPeClQlWeQqRyEtAkJdBtSrFdDvAbUlKyLdCuTtXxFvRcKnYnWzVdYqDeCmOqPxUaFjQdTdCtN"
},
{
"input": "iRuStKvVhJdJbQwRoIuLiVdTpKaOqKfYlYwAzIpPtUwUtMeKyCaOlXmVrKwWeImYmVuXdLkRlHwFxKqZbZtTzNgOzDbGqTfZnKmUzAcIjDcEmQgYyFbEfWzRpKvCkDmAqDiIiRcLvMxWaJqCgYqXgIcLdNaZlBnXtJyKaMnEaWfXfXwTbDnAiYnWqKbAtDpYdUbZrCzWgRnHzYxFgCdDbOkAgTqBuLqMeStHcDxGnVhSgMzVeTaZoTfLjMxQfRuPcFqVlRyYdHyOdJsDoCeWrUuJyIiAqHwHyVpEeEoMaJwAoUfPtBeJqGhMaHiBjKwAlXoZpUsDhHgMxBkVbLcEvNtJbGnPsUwAvXrAkTlXwYvEnOpNeWyIkRnEnTrIyAcLkRgMyYcKrGiDaAyE",
"output": "IRuStKvVhJdJbQwRoIuLiVdTpKaOqKfYlYwAzIpPtUwUtMeKyCaOlXmVrKwWeImYmVuXdLkRlHwFxKqZbZtTzNgOzDbGqTfZnKmUzAcIjDcEmQgYyFbEfWzRpKvCkDmAqDiIiRcLvMxWaJqCgYqXgIcLdNaZlBnXtJyKaMnEaWfXfXwTbDnAiYnWqKbAtDpYdUbZrCzWgRnHzYxFgCdDbOkAgTqBuLqMeStHcDxGnVhSgMzVeTaZoTfLjMxQfRuPcFqVlRyYdHyOdJsDoCeWrUuJyIiAqHwHyVpEeEoMaJwAoUfPtBeJqGhMaHiBjKwAlXoZpUsDhHgMxBkVbLcEvNtJbGnPsUwAvXrAkTlXwYvEnOpNeWyIkRnEnTrIyAcLkRgMyYcKrGiDaAyE"
},
{
"input": "cRtJkOxHzUbJcDdHzJtLbVmSoWuHoTkVrPqQaVmXeBrHxJbQfNrQbAaMrEhVdQnPxNyCjErKxPoEdWkVrBbDeNmEgBxYiBtWdAfHiLuSwIxJuHpSkAxPoYdNkGoLySsNhUmGoZhDzAfWhJdPlJzQkZbOnMtTkClIoCqOlIcJcMlGjUyOiEmHdYfIcPtTgQhLlLcPqQjAnQnUzHpCaQsCnYgQsBcJrQwBnWsIwFfSfGuYgTzQmShFpKqEeRlRkVfMuZbUsDoFoPrNuNwTtJqFkRiXxPvKyElDzLoUnIwAaBaOiNxMpEvPzSpGpFhMtGhGdJrFnZmNiMcUfMtBnDuUnXqDcMsNyGoLwLeNnLfRsIwRfBtXkHrFcPsLdXaAoYaDzYnZuQeVcZrElWmP",
"output": "CRtJkOxHzUbJcDdHzJtLbVmSoWuHoTkVrPqQaVmXeBrHxJbQfNrQbAaMrEhVdQnPxNyCjErKxPoEdWkVrBbDeNmEgBxYiBtWdAfHiLuSwIxJuHpSkAxPoYdNkGoLySsNhUmGoZhDzAfWhJdPlJzQkZbOnMtTkClIoCqOlIcJcMlGjUyOiEmHdYfIcPtTgQhLlLcPqQjAnQnUzHpCaQsCnYgQsBcJrQwBnWsIwFfSfGuYgTzQmShFpKqEeRlRkVfMuZbUsDoFoPrNuNwTtJqFkRiXxPvKyElDzLoUnIwAaBaOiNxMpEvPzSpGpFhMtGhGdJrFnZmNiMcUfMtBnDuUnXqDcMsNyGoLwLeNnLfRsIwRfBtXkHrFcPsLdXaAoYaDzYnZuQeVcZrElWmP"
},
{
"input": "wVaCsGxZrBbFnTbKsCoYlAvUkIpBaYpYmJkMlPwCaFvUkDxAiJgIqWsFqZlFvTtAnGzEwXbYiBdFfFxRiDoUkLmRfAwOlKeOlKgXdUnVqLkTuXtNdQpBpXtLvZxWoBeNePyHcWmZyRiUkPlRqYiQdGeXwOhHbCqVjDcEvJmBkRwWnMqPjXpUsIyXqGjHsEsDwZiFpIbTkQaUlUeFxMwJzSaHdHnDhLaLdTuYgFuJsEcMmDvXyPjKsSeBaRwNtPuOuBtNeOhQdVgKzPzOdYtPjPfDzQzHoWcYjFbSvRgGdGsCmGnQsErToBkCwGeQaCbBpYkLhHxTbUvRnJpZtXjKrHdRiUmUbSlJyGaLnWsCrJbBnSjFaZrIzIrThCmGhQcMsTtOxCuUcRaEyPaG",
"output": "WVaCsGxZrBbFnTbKsCoYlAvUkIpBaYpYmJkMlPwCaFvUkDxAiJgIqWsFqZlFvTtAnGzEwXbYiBdFfFxRiDoUkLmRfAwOlKeOlKgXdUnVqLkTuXtNdQpBpXtLvZxWoBeNePyHcWmZyRiUkPlRqYiQdGeXwOhHbCqVjDcEvJmBkRwWnMqPjXpUsIyXqGjHsEsDwZiFpIbTkQaUlUeFxMwJzSaHdHnDhLaLdTuYgFuJsEcMmDvXyPjKsSeBaRwNtPuOuBtNeOhQdVgKzPzOdYtPjPfDzQzHoWcYjFbSvRgGdGsCmGnQsErToBkCwGeQaCbBpYkLhHxTbUvRnJpZtXjKrHdRiUmUbSlJyGaLnWsCrJbBnSjFaZrIzIrThCmGhQcMsTtOxCuUcRaEyPaG"
},
{
"input": "kEiLxLmPjGzNoGkJdBlAfXhThYhMsHmZoZbGyCvNiUoLoZdAxUbGyQiEfXvPzZzJrPbEcMpHsMjIkRrVvDvQtHuKmXvGpQtXbPzJpFjJdUgWcPdFxLjLtXgVpEiFhImHnKkGiWnZbJqRjCyEwHsNbYfYfTyBaEuKlCtWnOqHmIgGrFmQiYrBnLiFcGuZxXlMfEuVoCxPkVrQvZoIpEhKsYtXrPxLcSfQqXsWaDgVlOnAzUvAhOhMrJfGtWcOwQfRjPmGhDyAeXrNqBvEiDfCiIvWxPjTwPlXpVsMjVjUnCkXgBuWnZaDyJpWkCfBrWnHxMhJgItHdRqNrQaEeRjAuUwRkUdRhEeGlSqVqGmOjNcUhFfXjCmWzBrGvIuZpRyWkWiLyUwFpYjNmNfV",
"output": "KEiLxLmPjGzNoGkJdBlAfXhThYhMsHmZoZbGyCvNiUoLoZdAxUbGyQiEfXvPzZzJrPbEcMpHsMjIkRrVvDvQtHuKmXvGpQtXbPzJpFjJdUgWcPdFxLjLtXgVpEiFhImHnKkGiWnZbJqRjCyEwHsNbYfYfTyBaEuKlCtWnOqHmIgGrFmQiYrBnLiFcGuZxXlMfEuVoCxPkVrQvZoIpEhKsYtXrPxLcSfQqXsWaDgVlOnAzUvAhOhMrJfGtWcOwQfRjPmGhDyAeXrNqBvEiDfCiIvWxPjTwPlXpVsMjVjUnCkXgBuWnZaDyJpWkCfBrWnHxMhJgItHdRqNrQaEeRjAuUwRkUdRhEeGlSqVqGmOjNcUhFfXjCmWzBrGvIuZpRyWkWiLyUwFpYjNmNfV"
},
{
"input": "eIhDoLmDeReKqXsHcVgFxUqNfScAiQnFrTlCgSuTtXiYvBxKaPaGvUeYfSgHqEaWcHxKpFaSlCxGqAmNeFcIzFcZsBiVoZhUjXaDaIcKoBzYdIlEnKfScRqSkYpPtVsVhXsBwUsUfAqRoCkBxWbHgDiCkRtPvUwVgDjOzObYwNiQwXlGnAqEkHdSqLgUkOdZiWaHqQnOhUnDhIzCiQtVcJlGoRfLuVlFjWqSuMsLgLwOdZvKtWdRuRqDoBoInKqPbJdXpIqLtFlMlDaWgSiKbFpCxOnQeNeQzXeKsBzIjCyPxCmBnYuHzQoYxZgGzSgGtZiTeQmUeWlNzZeKiJbQmEjIiDhPeSyZlNdHpZnIkPdJzSeJpPiXxToKyBjJfPwNzZpWzIzGySqPxLtI",
"output": "EIhDoLmDeReKqXsHcVgFxUqNfScAiQnFrTlCgSuTtXiYvBxKaPaGvUeYfSgHqEaWcHxKpFaSlCxGqAmNeFcIzFcZsBiVoZhUjXaDaIcKoBzYdIlEnKfScRqSkYpPtVsVhXsBwUsUfAqRoCkBxWbHgDiCkRtPvUwVgDjOzObYwNiQwXlGnAqEkHdSqLgUkOdZiWaHqQnOhUnDhIzCiQtVcJlGoRfLuVlFjWqSuMsLgLwOdZvKtWdRuRqDoBoInKqPbJdXpIqLtFlMlDaWgSiKbFpCxOnQeNeQzXeKsBzIjCyPxCmBnYuHzQoYxZgGzSgGtZiTeQmUeWlNzZeKiJbQmEjIiDhPeSyZlNdHpZnIkPdJzSeJpPiXxToKyBjJfPwNzZpWzIzGySqPxLtI"
},
{
"input": "uOoQzIeTwYeKpJtGoUdNiXbPgEwVsZkAnJcArHxIpEnEhZwQhZvAiOuLeMkVqLeDsAyKeYgFxGmRoLaRsZjAeXgNfYhBkHeDrHdPuTuYhKmDlAvYzYxCdYgYfVaYlGeVqTeSfBxQePbQrKsTaIkGzMjFrQlJuYaMxWpQkLdEcDsIiMnHnDtThRvAcKyGwBsHqKdXpJfIeTeZtYjFbMeUoXoXzGrShTwSwBpQlKeDrZdCjRqNtXoTsIzBkWbMsObTtDvYaPhUeLeHqHeMpZmTaCcIqXzAmGnPfNdDaFhOqWqDrWuFiBpRjZrQmAdViOuMbFfRyXyWfHgRkGpPnDrEqQcEmHcKpEvWlBrOtJbUaXbThJaSxCbVoGvTmHvZrHvXpCvLaYbRiHzYuQyX",
"output": "UOoQzIeTwYeKpJtGoUdNiXbPgEwVsZkAnJcArHxIpEnEhZwQhZvAiOuLeMkVqLeDsAyKeYgFxGmRoLaRsZjAeXgNfYhBkHeDrHdPuTuYhKmDlAvYzYxCdYgYfVaYlGeVqTeSfBxQePbQrKsTaIkGzMjFrQlJuYaMxWpQkLdEcDsIiMnHnDtThRvAcKyGwBsHqKdXpJfIeTeZtYjFbMeUoXoXzGrShTwSwBpQlKeDrZdCjRqNtXoTsIzBkWbMsObTtDvYaPhUeLeHqHeMpZmTaCcIqXzAmGnPfNdDaFhOqWqDrWuFiBpRjZrQmAdViOuMbFfRyXyWfHgRkGpPnDrEqQcEmHcKpEvWlBrOtJbUaXbThJaSxCbVoGvTmHvZrHvXpCvLaYbRiHzYuQyX"
},
{
"input": "lZqBqKeGvNdSeYuWxRiVnFtYbKuJwQtUcKnVtQhAlOeUzMaAuTaEnDdPfDcNyHgEoBmYjZyFePeJrRiKyAzFnBfAuGiUyLrIeLrNhBeBdVcEeKgCcBrQzDsPwGcNnZvTsEaYmFfMeOmMdNuZbUtDoQoNcGwDqEkEjIdQaPwAxJbXeNxOgKgXoEbZiIsVkRrNpNyAkLeHkNfEpLuQvEcMbIoGaDzXbEtNsLgGfOkZaFiUsOvEjVeCaMcZqMzKeAdXxJsVeCrZaFpJtZxInQxFaSmGgSsVyGeLlFgFqTpIbAvPkIfJrVcJeBxSdEvPyVwIjHpYrLrKqLnAmCuGmPoZrSbOtGaLaTmBmSuUyAmAsRiMqOtRjJhPhAfXaJnTpLbFqPmJgFcBxImTqIiJ",
"output": "LZqBqKeGvNdSeYuWxRiVnFtYbKuJwQtUcKnVtQhAlOeUzMaAuTaEnDdPfDcNyHgEoBmYjZyFePeJrRiKyAzFnBfAuGiUyLrIeLrNhBeBdVcEeKgCcBrQzDsPwGcNnZvTsEaYmFfMeOmMdNuZbUtDoQoNcGwDqEkEjIdQaPwAxJbXeNxOgKgXoEbZiIsVkRrNpNyAkLeHkNfEpLuQvEcMbIoGaDzXbEtNsLgGfOkZaFiUsOvEjVeCaMcZqMzKeAdXxJsVeCrZaFpJtZxInQxFaSmGgSsVyGeLlFgFqTpIbAvPkIfJrVcJeBxSdEvPyVwIjHpYrLrKqLnAmCuGmPoZrSbOtGaLaTmBmSuUyAmAsRiMqOtRjJhPhAfXaJnTpLbFqPmJgFcBxImTqIiJ"
},
{
"input": "P",
"output": "P"
},
{
"input": "Xyzzy",
"output": "Xyzzy"
},
{
"input": "Zzz",
"output": "Zzz"
},
{
"input": "Zp",
"output": "Zp"
}
] | 1,697,631,581
| 2,147,483,647
|
Python 3
|
WRONG_ANSWER
|
TESTS
| 0
| 60
| 0
|
a = input()
print(a. capitalize())
|
Title: Word Capitalization
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
Capitalization is writing a word with its first letter as a capital letter. Your task is to capitalize the given word.
Note, that during capitalization all the letters except the first one remains unchanged.
Input Specification:
A single line contains a non-empty word. This word consists of lowercase and uppercase English letters. The length of the word will not exceed 103.
Output Specification:
Output the given word after capitalization.
Demo Input:
['ApPLe\n', 'konjac\n']
Demo Output:
['ApPLe\n', 'Konjac\n']
Note:
none
|
```python
a = input()
print(a. capitalize())
```
| 0
|
|
606
|
A
|
Magic Spheres
|
PROGRAMMING
| 1,200
|
[
"implementation"
] | null | null |
Carl is a beginner magician. He has *a* blue, *b* violet and *c* orange magic spheres. In one move he can transform two spheres of the same color into one sphere of any other color. To make a spell that has never been seen before, he needs at least *x* blue, *y* violet and *z* orange spheres. Can he get them (possible, in multiple actions)?
|
The first line of the input contains three integers *a*, *b* and *c* (0<=≤<=*a*,<=*b*,<=*c*<=≤<=1<=000<=000) — the number of blue, violet and orange spheres that are in the magician's disposal.
The second line of the input contains three integers, *x*, *y* and *z* (0<=≤<=*x*,<=*y*,<=*z*<=≤<=1<=000<=000) — the number of blue, violet and orange spheres that he needs to get.
|
If the wizard is able to obtain the required numbers of spheres, print "Yes". Otherwise, print "No".
|
[
"4 4 0\n2 1 2\n",
"5 6 1\n2 7 2\n",
"3 3 3\n2 2 2\n"
] |
[
"Yes\n",
"No\n",
"Yes\n"
] |
In the first sample the wizard has 4 blue and 4 violet spheres. In his first action he can turn two blue spheres into one violet one. After that he will have 2 blue and 5 violet spheres. Then he turns 4 violet spheres into 2 orange spheres and he ends up with 2 blue, 1 violet and 2 orange spheres, which is exactly what he needs.
| 500
|
[
{
"input": "4 4 0\n2 1 2",
"output": "Yes"
},
{
"input": "5 6 1\n2 7 2",
"output": "No"
},
{
"input": "3 3 3\n2 2 2",
"output": "Yes"
},
{
"input": "0 0 0\n0 0 0",
"output": "Yes"
},
{
"input": "0 0 0\n0 0 1",
"output": "No"
},
{
"input": "0 1 0\n0 0 0",
"output": "Yes"
},
{
"input": "1 0 0\n1 0 0",
"output": "Yes"
},
{
"input": "2 2 1\n1 1 2",
"output": "No"
},
{
"input": "1 3 1\n2 1 1",
"output": "Yes"
},
{
"input": "1000000 1000000 1000000\n1000000 1000000 1000000",
"output": "Yes"
},
{
"input": "1000000 500000 500000\n0 750000 750000",
"output": "Yes"
},
{
"input": "500000 1000000 500000\n750001 0 750000",
"output": "No"
},
{
"input": "499999 500000 1000000\n750000 750000 0",
"output": "No"
},
{
"input": "500000 500000 0\n0 0 500000",
"output": "Yes"
},
{
"input": "0 500001 499999\n500000 0 0",
"output": "No"
},
{
"input": "1000000 500000 1000000\n500000 1000000 500000",
"output": "Yes"
},
{
"input": "1000000 1000000 499999\n500000 500000 1000000",
"output": "No"
},
{
"input": "500000 1000000 1000000\n1000000 500001 500000",
"output": "No"
},
{
"input": "1000000 500000 500000\n0 1000000 500000",
"output": "Yes"
},
{
"input": "500000 500000 1000000\n500001 1000000 0",
"output": "No"
},
{
"input": "500000 999999 500000\n1000000 0 500000",
"output": "No"
},
{
"input": "4 0 3\n2 2 1",
"output": "Yes"
},
{
"input": "0 2 4\n2 0 2",
"output": "Yes"
},
{
"input": "3 1 0\n1 1 1",
"output": "Yes"
},
{
"input": "4 4 1\n1 3 2",
"output": "Yes"
},
{
"input": "1 2 4\n2 1 3",
"output": "No"
},
{
"input": "1 1 0\n0 0 1",
"output": "No"
},
{
"input": "4 0 0\n0 1 1",
"output": "Yes"
},
{
"input": "0 3 0\n1 0 1",
"output": "No"
},
{
"input": "0 0 3\n1 0 1",
"output": "Yes"
},
{
"input": "1 12 1\n4 0 4",
"output": "Yes"
},
{
"input": "4 0 4\n1 2 1",
"output": "Yes"
},
{
"input": "4 4 0\n1 1 3",
"output": "No"
},
{
"input": "0 9 0\n2 2 2",
"output": "No"
},
{
"input": "0 10 0\n2 2 2",
"output": "Yes"
},
{
"input": "9 0 9\n0 8 0",
"output": "Yes"
},
{
"input": "0 9 9\n9 0 0",
"output": "No"
},
{
"input": "9 10 0\n0 0 9",
"output": "Yes"
},
{
"input": "10 0 9\n0 10 0",
"output": "No"
},
{
"input": "0 10 10\n10 0 0",
"output": "Yes"
},
{
"input": "10 10 0\n0 0 11",
"output": "No"
},
{
"input": "307075 152060 414033\n381653 222949 123101",
"output": "No"
},
{
"input": "569950 228830 153718\n162186 357079 229352",
"output": "No"
},
{
"input": "149416 303568 749016\n238307 493997 190377",
"output": "No"
},
{
"input": "438332 298094 225324\n194220 400244 245231",
"output": "No"
},
{
"input": "293792 300060 511272\n400687 382150 133304",
"output": "No"
},
{
"input": "295449 518151 368838\n382897 137148 471892",
"output": "No"
},
{
"input": "191789 291147 691092\n324321 416045 176232",
"output": "Yes"
},
{
"input": "286845 704749 266526\n392296 104421 461239",
"output": "Yes"
},
{
"input": "135522 188282 377041\n245719 212473 108265",
"output": "Yes"
},
{
"input": "404239 359124 133292\n180069 184791 332544",
"output": "No"
},
{
"input": "191906 624432 244408\n340002 367217 205432",
"output": "No"
},
{
"input": "275980 429361 101824\n274288 302579 166062",
"output": "No"
},
{
"input": "136092 364927 395302\n149173 343146 390922",
"output": "No"
},
{
"input": "613852 334661 146012\n363786 326286 275233",
"output": "No"
},
{
"input": "348369 104625 525203\n285621 215396 366411",
"output": "No"
},
{
"input": "225307 153572 114545\n154753 153282 149967",
"output": "Yes"
},
{
"input": "438576 124465 629784\n375118 276028 390116",
"output": "Yes"
},
{
"input": "447521 327510 158732\n395759 178458 259139",
"output": "Yes"
},
{
"input": "8 5 5\n5 5 5",
"output": "Yes"
},
{
"input": "100 100 100\n1 1 1",
"output": "Yes"
},
{
"input": "100 100 100\n0 0 0",
"output": "Yes"
},
{
"input": "3 2 3\n2 3 2",
"output": "No"
},
{
"input": "5 4 3\n2 2 2",
"output": "Yes"
},
{
"input": "14 9 8\n12 5 10",
"output": "Yes"
},
{
"input": "10 10 10\n1 1 1",
"output": "Yes"
},
{
"input": "6 3 3\n3 3 3",
"output": "Yes"
},
{
"input": "10 0 4\n2 4 2",
"output": "Yes"
},
{
"input": "100 100 100\n2 2 2",
"output": "Yes"
},
{
"input": "4 6 0\n2 1 2",
"output": "Yes"
},
{
"input": "4 6 3\n4 2 3",
"output": "Yes"
},
{
"input": "5 5 5\n1 1 1",
"output": "Yes"
},
{
"input": "41 17 34\n0 19 24",
"output": "Yes"
},
{
"input": "8 8 8\n3 3 3",
"output": "Yes"
},
{
"input": "7 7 1\n1 1 2",
"output": "Yes"
},
{
"input": "6 6 0\n2 2 2",
"output": "Yes"
},
{
"input": "5 5 5\n2 2 2",
"output": "Yes"
},
{
"input": "400 400 400\n1 1 1",
"output": "Yes"
},
{
"input": "4 4 4\n2 2 2",
"output": "Yes"
}
] | 1,449,678,129
| 1,029
|
Python 3
|
OK
|
TESTS
| 79
| 77
| 0
|
#!/usr/bin/env python3
# -*- coding: utf-8 -*-
import time
# = input()
# = int(input())
#() = (i for i in input().split())
# = [i for i in input().split()]
a = [int(i) for i in input().split()]
x = [int(i) for i in input().split()]
start = time.time()
ans = 0
for i in range(3):
a[i] -= x[i]
if a[i] > 0:
ans += divmod(a[i], 2)[0]
else:
ans += a[i]
if ans >=0:
print("Yes")
else:
print("No")
finish = time.time()
#print(finish - start)
|
Title: Magic Spheres
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
Carl is a beginner magician. He has *a* blue, *b* violet and *c* orange magic spheres. In one move he can transform two spheres of the same color into one sphere of any other color. To make a spell that has never been seen before, he needs at least *x* blue, *y* violet and *z* orange spheres. Can he get them (possible, in multiple actions)?
Input Specification:
The first line of the input contains three integers *a*, *b* and *c* (0<=≤<=*a*,<=*b*,<=*c*<=≤<=1<=000<=000) — the number of blue, violet and orange spheres that are in the magician's disposal.
The second line of the input contains three integers, *x*, *y* and *z* (0<=≤<=*x*,<=*y*,<=*z*<=≤<=1<=000<=000) — the number of blue, violet and orange spheres that he needs to get.
Output Specification:
If the wizard is able to obtain the required numbers of spheres, print "Yes". Otherwise, print "No".
Demo Input:
['4 4 0\n2 1 2\n', '5 6 1\n2 7 2\n', '3 3 3\n2 2 2\n']
Demo Output:
['Yes\n', 'No\n', 'Yes\n']
Note:
In the first sample the wizard has 4 blue and 4 violet spheres. In his first action he can turn two blue spheres into one violet one. After that he will have 2 blue and 5 violet spheres. Then he turns 4 violet spheres into 2 orange spheres and he ends up with 2 blue, 1 violet and 2 orange spheres, which is exactly what he needs.
|
```python
#!/usr/bin/env python3
# -*- coding: utf-8 -*-
import time
# = input()
# = int(input())
#() = (i for i in input().split())
# = [i for i in input().split()]
a = [int(i) for i in input().split()]
x = [int(i) for i in input().split()]
start = time.time()
ans = 0
for i in range(3):
a[i] -= x[i]
if a[i] > 0:
ans += divmod(a[i], 2)[0]
else:
ans += a[i]
if ans >=0:
print("Yes")
else:
print("No")
finish = time.time()
#print(finish - start)
```
| 3
|
|
869
|
B
|
The Eternal Immortality
|
PROGRAMMING
| 1,100
|
[
"math"
] | null | null |
Even if the world is full of counterfeits, I still regard it as wonderful.
Pile up herbs and incense, and arise again from the flames and ashes of its predecessor — as is known to many, the phoenix does it like this.
The phoenix has a rather long lifespan, and reincarnates itself once every *a*! years. Here *a*! denotes the factorial of integer *a*, that is, *a*!<==<=1<=×<=2<=×<=...<=×<=*a*. Specifically, 0!<==<=1.
Koyomi doesn't care much about this, but before he gets into another mess with oddities, he is interested in the number of times the phoenix will reincarnate in a timespan of *b*! years, that is, . Note that when *b*<=≥<=*a* this value is always integer.
As the answer can be quite large, it would be enough for Koyomi just to know the last digit of the answer in decimal representation. And you're here to provide Koyomi with this knowledge.
|
The first and only line of input contains two space-separated integers *a* and *b* (0<=≤<=*a*<=≤<=*b*<=≤<=1018).
|
Output one line containing a single decimal digit — the last digit of the value that interests Koyomi.
|
[
"2 4\n",
"0 10\n",
"107 109\n"
] |
[
"2\n",
"0\n",
"2\n"
] |
In the first example, the last digit of <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/99c47ca8b182f097e38094d12f0c06ce0b081b76.png" style="max-width: 100.0%;max-height: 100.0%;"/> is 2;
In the second example, the last digit of <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/9642ef11a23e7c5a3f3c2b1255c1b1b3533802a4.png" style="max-width: 100.0%;max-height: 100.0%;"/> is 0;
In the third example, the last digit of <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/844938cef52ee264c183246d2a9df05cca94dc60.png" style="max-width: 100.0%;max-height: 100.0%;"/> is 2.
| 1,000
|
[
{
"input": "2 4",
"output": "2"
},
{
"input": "0 10",
"output": "0"
},
{
"input": "107 109",
"output": "2"
},
{
"input": "10 13",
"output": "6"
},
{
"input": "998244355 998244359",
"output": "4"
},
{
"input": "999999999000000000 1000000000000000000",
"output": "0"
},
{
"input": "2 3",
"output": "3"
},
{
"input": "3 15",
"output": "0"
},
{
"input": "24 26",
"output": "0"
},
{
"input": "14 60",
"output": "0"
},
{
"input": "11 79",
"output": "0"
},
{
"input": "1230 1232",
"output": "2"
},
{
"input": "2633 2634",
"output": "4"
},
{
"input": "535 536",
"output": "6"
},
{
"input": "344319135 396746843",
"output": "0"
},
{
"input": "696667767 696667767",
"output": "1"
},
{
"input": "419530302 610096911",
"output": "0"
},
{
"input": "238965115 821731161",
"output": "0"
},
{
"input": "414626436 728903812",
"output": "0"
},
{
"input": "274410639 293308324",
"output": "0"
},
{
"input": "650636673091305697 650636673091305702",
"output": "0"
},
{
"input": "651240548333620923 651240548333620924",
"output": "4"
},
{
"input": "500000000000000000 1000000000000000000",
"output": "0"
},
{
"input": "999999999999999999 1000000000000000000",
"output": "0"
},
{
"input": "1000000000000000000 1000000000000000000",
"output": "1"
},
{
"input": "0 4",
"output": "4"
},
{
"input": "50000000062000007 50000000062000011",
"output": "0"
},
{
"input": "0 0",
"output": "1"
},
{
"input": "1 1",
"output": "1"
},
{
"input": "0 2",
"output": "2"
},
{
"input": "10000000000012 10000000000015",
"output": "0"
},
{
"input": "5 5",
"output": "1"
},
{
"input": "12 23",
"output": "0"
},
{
"input": "0 11",
"output": "0"
},
{
"input": "11111234567890 11111234567898",
"output": "0"
},
{
"input": "0 3",
"output": "6"
},
{
"input": "1 2",
"output": "2"
},
{
"input": "999999999999999997 999999999999999999",
"output": "2"
},
{
"input": "4 5",
"output": "5"
},
{
"input": "0 1",
"output": "1"
},
{
"input": "101 1002",
"output": "0"
},
{
"input": "0 100000000000000001",
"output": "0"
},
{
"input": "99999999999999997 99999999999999999",
"output": "2"
},
{
"input": "14 15",
"output": "5"
},
{
"input": "8 19",
"output": "0"
},
{
"input": "12 22",
"output": "0"
},
{
"input": "999999999999996 999999999999999",
"output": "4"
},
{
"input": "1 3",
"output": "6"
},
{
"input": "124 125",
"output": "5"
},
{
"input": "11 32",
"output": "0"
},
{
"input": "0 5",
"output": "0"
},
{
"input": "0 999999",
"output": "0"
},
{
"input": "151151151515 151151151526",
"output": "0"
},
{
"input": "6 107",
"output": "0"
},
{
"input": "5 16",
"output": "0"
},
{
"input": "7 16",
"output": "0"
},
{
"input": "6 19",
"output": "0"
},
{
"input": "11113111111111 13111111111111",
"output": "0"
},
{
"input": "1 1000",
"output": "0"
},
{
"input": "24 25",
"output": "5"
},
{
"input": "0 100000000000",
"output": "0"
},
{
"input": "1 22",
"output": "0"
},
{
"input": "999999999999999996 999999999999999999",
"output": "4"
}
] | 1,643,219,031
| 2,147,483,647
|
Python 3
|
OK
|
TESTS
| 63
| 46
| 0
|
a, b = map(int, input().split())
if b < a:
print(0)
else:
if b-a == 4:
ans = ((b%10)*((b-1)%10)*((b-2)%10)*((b-3)%10))%10
elif b-a == 3:
ans = ((b%10)*((b-1)%10)*((b-2)%10))%10
elif b-a == 2:
ans = ((b%10)*((b-1)%10))%10
elif b-a == 1:
ans = b%10
elif b-a == 0:
ans = 1
else:
ans = 0
print(ans)
|
Title: The Eternal Immortality
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
Even if the world is full of counterfeits, I still regard it as wonderful.
Pile up herbs and incense, and arise again from the flames and ashes of its predecessor — as is known to many, the phoenix does it like this.
The phoenix has a rather long lifespan, and reincarnates itself once every *a*! years. Here *a*! denotes the factorial of integer *a*, that is, *a*!<==<=1<=×<=2<=×<=...<=×<=*a*. Specifically, 0!<==<=1.
Koyomi doesn't care much about this, but before he gets into another mess with oddities, he is interested in the number of times the phoenix will reincarnate in a timespan of *b*! years, that is, . Note that when *b*<=≥<=*a* this value is always integer.
As the answer can be quite large, it would be enough for Koyomi just to know the last digit of the answer in decimal representation. And you're here to provide Koyomi with this knowledge.
Input Specification:
The first and only line of input contains two space-separated integers *a* and *b* (0<=≤<=*a*<=≤<=*b*<=≤<=1018).
Output Specification:
Output one line containing a single decimal digit — the last digit of the value that interests Koyomi.
Demo Input:
['2 4\n', '0 10\n', '107 109\n']
Demo Output:
['2\n', '0\n', '2\n']
Note:
In the first example, the last digit of <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/99c47ca8b182f097e38094d12f0c06ce0b081b76.png" style="max-width: 100.0%;max-height: 100.0%;"/> is 2;
In the second example, the last digit of <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/9642ef11a23e7c5a3f3c2b1255c1b1b3533802a4.png" style="max-width: 100.0%;max-height: 100.0%;"/> is 0;
In the third example, the last digit of <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/844938cef52ee264c183246d2a9df05cca94dc60.png" style="max-width: 100.0%;max-height: 100.0%;"/> is 2.
|
```python
a, b = map(int, input().split())
if b < a:
print(0)
else:
if b-a == 4:
ans = ((b%10)*((b-1)%10)*((b-2)%10)*((b-3)%10))%10
elif b-a == 3:
ans = ((b%10)*((b-1)%10)*((b-2)%10))%10
elif b-a == 2:
ans = ((b%10)*((b-1)%10))%10
elif b-a == 1:
ans = b%10
elif b-a == 0:
ans = 1
else:
ans = 0
print(ans)
```
| 3
|
|
456
|
B
|
Fedya and Maths
|
PROGRAMMING
| 1,200
|
[
"math",
"number theory"
] | null | null |
Fedya studies in a gymnasium. Fedya's maths hometask is to calculate the following expression:
for given value of *n*. Fedya managed to complete the task. Can you? Note that given number *n* can be extremely large (e.g. it can exceed any integer type of your programming language).
|
The single line contains a single integer *n* (0<=≤<=*n*<=≤<=10105). The number doesn't contain any leading zeroes.
|
Print the value of the expression without leading zeros.
|
[
"4\n",
"124356983594583453458888889\n"
] |
[
"4\n",
"0\n"
] |
Operation *x* *mod* *y* means taking remainder after division *x* by *y*.
Note to the first sample:
<img align="middle" class="tex-formula" src="https://espresso.codeforces.com/825f244180bb10323db01645118c3cfdb312fa89.png" style="max-width: 100.0%;max-height: 100.0%;"/>
| 1,000
|
[
{
"input": "4",
"output": "4"
},
{
"input": "124356983594583453458888889",
"output": "0"
},
{
"input": "2",
"output": "0"
},
{
"input": "7854",
"output": "0"
},
{
"input": "584660",
"output": "4"
},
{
"input": "464",
"output": "4"
},
{
"input": "192329",
"output": "0"
},
{
"input": "85447",
"output": "0"
},
{
"input": "956",
"output": "4"
},
{
"input": "83",
"output": "0"
},
{
"input": "33",
"output": "0"
},
{
"input": "64",
"output": "4"
},
{
"input": "971836",
"output": "4"
},
{
"input": "578487",
"output": "0"
},
{
"input": "71752",
"output": "4"
},
{
"input": "2563",
"output": "0"
},
{
"input": "51494",
"output": "0"
},
{
"input": "247",
"output": "0"
},
{
"input": "52577",
"output": "0"
},
{
"input": "13",
"output": "0"
},
{
"input": "26232",
"output": "4"
},
{
"input": "0",
"output": "4"
},
{
"input": "10",
"output": "0"
},
{
"input": "12",
"output": "4"
},
{
"input": "8",
"output": "4"
},
{
"input": "1",
"output": "0"
}
] | 1,680,875,913
| 2,147,483,647
|
Python 3
|
OK
|
TESTS
| 47
| 234
| 0
|
# Topicos Especiais em Programacao | UFRJ | 2023.1
# Gabriele Jandres Cavalcanti | 119159948
# Aula 1 | Problema A | Fedya and Maths
def calculate_mod_5(num):
result = 4 if num % 4 == 0 else 0 # todos os numeros que forem multiplos de 4 vao deixar resto 1 quando fizermos x^n, onde x = {1, 2, 3, 4}, quando fizermos a soma deles mod 5, o resultado sera 4, todos os outros casos a soma mod 5 sera 0
print(result)
def main():
num = int(input())
calculate_mod_5(num)
if __name__ == '__main__':
main()
|
Title: Fedya and Maths
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
Fedya studies in a gymnasium. Fedya's maths hometask is to calculate the following expression:
for given value of *n*. Fedya managed to complete the task. Can you? Note that given number *n* can be extremely large (e.g. it can exceed any integer type of your programming language).
Input Specification:
The single line contains a single integer *n* (0<=≤<=*n*<=≤<=10105). The number doesn't contain any leading zeroes.
Output Specification:
Print the value of the expression without leading zeros.
Demo Input:
['4\n', '124356983594583453458888889\n']
Demo Output:
['4\n', '0\n']
Note:
Operation *x* *mod* *y* means taking remainder after division *x* by *y*.
Note to the first sample:
<img align="middle" class="tex-formula" src="https://espresso.codeforces.com/825f244180bb10323db01645118c3cfdb312fa89.png" style="max-width: 100.0%;max-height: 100.0%;"/>
|
```python
# Topicos Especiais em Programacao | UFRJ | 2023.1
# Gabriele Jandres Cavalcanti | 119159948
# Aula 1 | Problema A | Fedya and Maths
def calculate_mod_5(num):
result = 4 if num % 4 == 0 else 0 # todos os numeros que forem multiplos de 4 vao deixar resto 1 quando fizermos x^n, onde x = {1, 2, 3, 4}, quando fizermos a soma deles mod 5, o resultado sera 4, todos os outros casos a soma mod 5 sera 0
print(result)
def main():
num = int(input())
calculate_mod_5(num)
if __name__ == '__main__':
main()
```
| 3
|
|
0
|
none
|
none
|
none
| 0
|
[
"none"
] | null | null |
Appleman and Toastman play a game. Initially Appleman gives one group of *n* numbers to the Toastman, then they start to complete the following tasks:
- Each time Toastman gets a group of numbers, he sums up all the numbers and adds this sum to the score. Then he gives the group to the Appleman. - Each time Appleman gets a group consisting of a single number, he throws this group out. Each time Appleman gets a group consisting of more than one number, he splits the group into two non-empty groups (he can do it in any way) and gives each of them to Toastman.
After guys complete all the tasks they look at the score value. What is the maximum possible value of score they can get?
|
The first line contains a single integer *n* (1<=≤<=*n*<=≤<=3·105). The second line contains *n* integers *a*1, *a*2, ..., *a**n* (1<=≤<=*a**i*<=≤<=106) — the initial group that is given to Toastman.
|
Print a single integer — the largest possible score.
|
[
"3\n3 1 5\n",
"1\n10\n"
] |
[
"26\n",
"10\n"
] |
Consider the following situation in the first example. Initially Toastman gets group [3, 1, 5] and adds 9 to the score, then he give the group to Appleman. Appleman splits group [3, 1, 5] into two groups: [3, 5] and [1]. Both of them should be given to Toastman. When Toastman receives group [1], he adds 1 to score and gives the group to Appleman (he will throw it out). When Toastman receives group [3, 5], he adds 8 to the score and gives the group to Appleman. Appleman splits [3, 5] in the only possible way: [5] and [3]. Then he gives both groups to Toastman. When Toastman receives [5], he adds 5 to the score and gives the group to Appleman (he will throws it out). When Toastman receives [3], he adds 3 to the score and gives the group to Appleman (he will throws it out). Finally Toastman have added 9 + 1 + 8 + 5 + 3 = 26 to the score. This is the optimal sequence of actions.
| 0
|
[
{
"input": "3\n3 1 5",
"output": "26"
},
{
"input": "1\n10",
"output": "10"
},
{
"input": "10\n8 10 2 5 6 2 4 7 2 1",
"output": "376"
},
{
"input": "10\n171308 397870 724672 431255 228496 892002 542924 718337 888642 161821",
"output": "40204082"
},
{
"input": "10\n1 2 2 2 4 5 6 7 8 10",
"output": "376"
},
{
"input": "10\n161821 171308 228496 397870 431255 542924 718337 724672 888642 892002",
"output": "40204082"
},
{
"input": "1\n397870",
"output": "397870"
},
{
"input": "1\n1000000",
"output": "1000000"
},
{
"input": "10\n10 8 7 6 5 4 2 2 2 1",
"output": "376"
},
{
"input": "10\n892002 888642 724672 718337 542924 431255 397870 228496 171308 161821",
"output": "40204082"
},
{
"input": "10\n5 2 6 10 10 10 10 2 2 5",
"output": "485"
},
{
"input": "10\n431255 724672 228496 397870 397870 397870 397870 724672 888642 431255",
"output": "36742665"
},
{
"input": "10\n2 2 2 5 5 6 10 10 10 10",
"output": "485"
},
{
"input": "10\n228496 397870 397870 397870 397870 431255 431255 724672 724672 888642",
"output": "36742665"
},
{
"input": "10\n10 10 10 10 6 5 5 2 2 2",
"output": "485"
},
{
"input": "10\n888642 724672 724672 431255 431255 397870 397870 397870 397870 228496",
"output": "36742665"
},
{
"input": "10\n10 10 10 10 10 10 10 10 10 10",
"output": "640"
},
{
"input": "10\n1000000 1000000 1000000 1000000 1000000 1000000 1000000 1000000 1000000 1000000",
"output": "64000000"
},
{
"input": "1\n397870",
"output": "397870"
},
{
"input": "2\n1 2",
"output": "6"
},
{
"input": "2\n2 3",
"output": "10"
},
{
"input": "2\n1 1",
"output": "4"
}
] | 1,557,386,280
| 2,147,483,647
|
PyPy 3
|
WRONG_ANSWER
|
TESTS
| 0
| 108
| 0
|
#!/snap/bin/pypy3
def main():
n = int(input())
numbers = set(map(int, input().split()))
ans = 0
while len(numbers) > 1:
print(numbers)
a = max(numbers)
numbers.remove(a)
b = max(numbers)
numbers.remove(b)
ans += a + b
numbers.add(a + b)
print(ans + sum(numbers))
if __name__ == '__main__':
main()
|
Title: none
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
Appleman and Toastman play a game. Initially Appleman gives one group of *n* numbers to the Toastman, then they start to complete the following tasks:
- Each time Toastman gets a group of numbers, he sums up all the numbers and adds this sum to the score. Then he gives the group to the Appleman. - Each time Appleman gets a group consisting of a single number, he throws this group out. Each time Appleman gets a group consisting of more than one number, he splits the group into two non-empty groups (he can do it in any way) and gives each of them to Toastman.
After guys complete all the tasks they look at the score value. What is the maximum possible value of score they can get?
Input Specification:
The first line contains a single integer *n* (1<=≤<=*n*<=≤<=3·105). The second line contains *n* integers *a*1, *a*2, ..., *a**n* (1<=≤<=*a**i*<=≤<=106) — the initial group that is given to Toastman.
Output Specification:
Print a single integer — the largest possible score.
Demo Input:
['3\n3 1 5\n', '1\n10\n']
Demo Output:
['26\n', '10\n']
Note:
Consider the following situation in the first example. Initially Toastman gets group [3, 1, 5] and adds 9 to the score, then he give the group to Appleman. Appleman splits group [3, 1, 5] into two groups: [3, 5] and [1]. Both of them should be given to Toastman. When Toastman receives group [1], he adds 1 to score and gives the group to Appleman (he will throw it out). When Toastman receives group [3, 5], he adds 8 to the score and gives the group to Appleman. Appleman splits [3, 5] in the only possible way: [5] and [3]. Then he gives both groups to Toastman. When Toastman receives [5], he adds 5 to the score and gives the group to Appleman (he will throws it out). When Toastman receives [3], he adds 3 to the score and gives the group to Appleman (he will throws it out). Finally Toastman have added 9 + 1 + 8 + 5 + 3 = 26 to the score. This is the optimal sequence of actions.
|
```python
#!/snap/bin/pypy3
def main():
n = int(input())
numbers = set(map(int, input().split()))
ans = 0
while len(numbers) > 1:
print(numbers)
a = max(numbers)
numbers.remove(a)
b = max(numbers)
numbers.remove(b)
ans += a + b
numbers.add(a + b)
print(ans + sum(numbers))
if __name__ == '__main__':
main()
```
| 0
|
|
651
|
A
|
Joysticks
|
PROGRAMMING
| 1,100
|
[
"dp",
"greedy",
"implementation",
"math"
] | null | null |
Friends are going to play console. They have two joysticks and only one charger for them. Initially first joystick is charged at *a*1 percent and second one is charged at *a*2 percent. You can connect charger to a joystick only at the beginning of each minute. In one minute joystick either discharges by 2 percent (if not connected to a charger) or charges by 1 percent (if connected to a charger).
Game continues while both joysticks have a positive charge. Hence, if at the beginning of minute some joystick is charged by 1 percent, it has to be connected to a charger, otherwise the game stops. If some joystick completely discharges (its charge turns to 0), the game also stops.
Determine the maximum number of minutes that game can last. It is prohibited to pause the game, i. e. at each moment both joysticks should be enabled. It is allowed for joystick to be charged by more than 100 percent.
|
The first line of the input contains two positive integers *a*1 and *a*2 (1<=≤<=*a*1,<=*a*2<=≤<=100), the initial charge level of first and second joystick respectively.
|
Output the only integer, the maximum number of minutes that the game can last. Game continues until some joystick is discharged.
|
[
"3 5\n",
"4 4\n"
] |
[
"6\n",
"5\n"
] |
In the first sample game lasts for 6 minute by using the following algorithm:
- at the beginning of the first minute connect first joystick to the charger, by the end of this minute first joystick is at 4%, second is at 3%; - continue the game without changing charger, by the end of the second minute the first joystick is at 5%, second is at 1%; - at the beginning of the third minute connect second joystick to the charger, after this minute the first joystick is at 3%, the second one is at 2%; - continue the game without changing charger, by the end of the fourth minute first joystick is at 1%, second one is at 3%; - at the beginning of the fifth minute connect first joystick to the charger, after this minute the first joystick is at 2%, the second one is at 1%; - at the beginning of the sixth minute connect second joystick to the charger, after this minute the first joystick is at 0%, the second one is at 2%.
After that the first joystick is completely discharged and the game is stopped.
| 500
|
[
{
"input": "3 5",
"output": "6"
},
{
"input": "4 4",
"output": "5"
},
{
"input": "100 100",
"output": "197"
},
{
"input": "1 100",
"output": "98"
},
{
"input": "100 1",
"output": "98"
},
{
"input": "1 4",
"output": "2"
},
{
"input": "1 1",
"output": "0"
},
{
"input": "8 8",
"output": "13"
},
{
"input": "7 2",
"output": "7"
},
{
"input": "24 15",
"output": "36"
},
{
"input": "19 30",
"output": "47"
},
{
"input": "15 31",
"output": "44"
},
{
"input": "14 15",
"output": "27"
},
{
"input": "58 33",
"output": "89"
},
{
"input": "15 25",
"output": "38"
},
{
"input": "59 45",
"output": "102"
},
{
"input": "3 73",
"output": "74"
},
{
"input": "48 1",
"output": "47"
},
{
"input": "100 25",
"output": "122"
},
{
"input": "40 49",
"output": "86"
},
{
"input": "85 73",
"output": "155"
},
{
"input": "29 1",
"output": "28"
},
{
"input": "74 25",
"output": "97"
},
{
"input": "24 57",
"output": "78"
},
{
"input": "23 12",
"output": "33"
},
{
"input": "2 99",
"output": "99"
},
{
"input": "98 2",
"output": "97"
},
{
"input": "2 97",
"output": "97"
},
{
"input": "30 54",
"output": "81"
},
{
"input": "32 53",
"output": "82"
},
{
"input": "32 54",
"output": "84"
},
{
"input": "1 2",
"output": "1"
},
{
"input": "2 1",
"output": "1"
},
{
"input": "2 2",
"output": "1"
},
{
"input": "1 3",
"output": "2"
},
{
"input": "3 1",
"output": "2"
},
{
"input": "1 4",
"output": "2"
},
{
"input": "2 3",
"output": "3"
},
{
"input": "3 2",
"output": "3"
}
] | 1,635,053,570
| 2,147,483,647
|
Python 3
|
OK
|
TESTS
| 39
| 62
| 4,505,600
|
a,b=map(int, input().split())
cnt=0
while (a>=1 and b>=2) or (a>=2 and b>=1):
if a<b:
a+=1
b-=2
else:
b+=1
a-=2
cnt+=1
print(cnt)
|
Title: Joysticks
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
Friends are going to play console. They have two joysticks and only one charger for them. Initially first joystick is charged at *a*1 percent and second one is charged at *a*2 percent. You can connect charger to a joystick only at the beginning of each minute. In one minute joystick either discharges by 2 percent (if not connected to a charger) or charges by 1 percent (if connected to a charger).
Game continues while both joysticks have a positive charge. Hence, if at the beginning of minute some joystick is charged by 1 percent, it has to be connected to a charger, otherwise the game stops. If some joystick completely discharges (its charge turns to 0), the game also stops.
Determine the maximum number of minutes that game can last. It is prohibited to pause the game, i. e. at each moment both joysticks should be enabled. It is allowed for joystick to be charged by more than 100 percent.
Input Specification:
The first line of the input contains two positive integers *a*1 and *a*2 (1<=≤<=*a*1,<=*a*2<=≤<=100), the initial charge level of first and second joystick respectively.
Output Specification:
Output the only integer, the maximum number of minutes that the game can last. Game continues until some joystick is discharged.
Demo Input:
['3 5\n', '4 4\n']
Demo Output:
['6\n', '5\n']
Note:
In the first sample game lasts for 6 minute by using the following algorithm:
- at the beginning of the first minute connect first joystick to the charger, by the end of this minute first joystick is at 4%, second is at 3%; - continue the game without changing charger, by the end of the second minute the first joystick is at 5%, second is at 1%; - at the beginning of the third minute connect second joystick to the charger, after this minute the first joystick is at 3%, the second one is at 2%; - continue the game without changing charger, by the end of the fourth minute first joystick is at 1%, second one is at 3%; - at the beginning of the fifth minute connect first joystick to the charger, after this minute the first joystick is at 2%, the second one is at 1%; - at the beginning of the sixth minute connect second joystick to the charger, after this minute the first joystick is at 0%, the second one is at 2%.
After that the first joystick is completely discharged and the game is stopped.
|
```python
a,b=map(int, input().split())
cnt=0
while (a>=1 and b>=2) or (a>=2 and b>=1):
if a<b:
a+=1
b-=2
else:
b+=1
a-=2
cnt+=1
print(cnt)
```
| 3
|
|
139
|
A
|
Petr and Book
|
PROGRAMMING
| 1,000
|
[
"implementation"
] | null | null |
One Sunday Petr went to a bookshop and bought a new book on sports programming. The book had exactly *n* pages.
Petr decided to start reading it starting from the next day, that is, from Monday. Petr's got a very tight schedule and for each day of the week he knows how many pages he will be able to read on that day. Some days are so busy that Petr will have no time to read whatsoever. However, we know that he will be able to read at least one page a week.
Assuming that Petr will not skip days and will read as much as he can every day, determine on which day of the week he will read the last page of the book.
|
The first input line contains the single integer *n* (1<=≤<=*n*<=≤<=1000) — the number of pages in the book.
The second line contains seven non-negative space-separated integers that do not exceed 1000 — those integers represent how many pages Petr can read on Monday, Tuesday, Wednesday, Thursday, Friday, Saturday and Sunday correspondingly. It is guaranteed that at least one of those numbers is larger than zero.
|
Print a single number — the number of the day of the week, when Petr will finish reading the book. The days of the week are numbered starting with one in the natural order: Monday, Tuesday, Wednesday, Thursday, Friday, Saturday, Sunday.
|
[
"100\n15 20 20 15 10 30 45\n",
"2\n1 0 0 0 0 0 0\n"
] |
[
"6\n",
"1\n"
] |
Note to the first sample:
By the end of Monday and therefore, by the beginning of Tuesday Petr has 85 pages left. He has 65 pages left by Wednesday, 45 by Thursday, 30 by Friday, 20 by Saturday and on Saturday Petr finishes reading the book (and he also has time to read 10 pages of something else).
Note to the second sample:
On Monday of the first week Petr will read the first page. On Monday of the second week Petr will read the second page and will finish reading the book.
| 500
|
[
{
"input": "100\n15 20 20 15 10 30 45",
"output": "6"
},
{
"input": "2\n1 0 0 0 0 0 0",
"output": "1"
},
{
"input": "100\n100 200 100 200 300 400 500",
"output": "1"
},
{
"input": "3\n1 1 1 1 1 1 1",
"output": "3"
},
{
"input": "1\n1 1 1 1 1 1 1",
"output": "1"
},
{
"input": "20\n5 3 7 2 1 6 4",
"output": "6"
},
{
"input": "10\n5 1 1 1 1 1 5",
"output": "6"
},
{
"input": "50\n10 1 10 1 10 1 10",
"output": "1"
},
{
"input": "77\n11 11 11 11 11 11 10",
"output": "1"
},
{
"input": "1\n1000 1000 1000 1000 1000 1000 1000",
"output": "1"
},
{
"input": "1000\n100 100 100 100 100 100 100",
"output": "3"
},
{
"input": "999\n10 20 10 20 30 20 10",
"output": "3"
},
{
"input": "433\n109 58 77 10 39 125 15",
"output": "7"
},
{
"input": "1\n0 0 0 0 0 0 1",
"output": "7"
},
{
"input": "5\n1 0 1 0 1 0 1",
"output": "1"
},
{
"input": "997\n1 1 0 0 1 0 1",
"output": "1"
},
{
"input": "1000\n1 1 1 1 1 1 1",
"output": "6"
},
{
"input": "1000\n1000 1000 1000 1000 1000 1000 1000",
"output": "1"
},
{
"input": "1000\n1 0 0 0 0 0 0",
"output": "1"
},
{
"input": "1000\n0 0 0 0 0 0 1",
"output": "7"
},
{
"input": "1000\n1 0 0 1 0 0 1",
"output": "1"
},
{
"input": "509\n105 23 98 0 7 0 155",
"output": "2"
},
{
"input": "7\n1 1 1 1 1 1 1",
"output": "7"
},
{
"input": "2\n1 1 0 0 0 0 0",
"output": "2"
},
{
"input": "1\n0 0 0 0 0 1 0",
"output": "6"
},
{
"input": "10\n0 0 0 0 0 0 1",
"output": "7"
},
{
"input": "5\n0 0 0 0 0 6 0",
"output": "6"
},
{
"input": "3\n0 1 0 0 0 0 0",
"output": "2"
},
{
"input": "10\n0 0 0 0 0 0 10",
"output": "7"
},
{
"input": "28\n1 2 3 4 5 6 7",
"output": "7"
},
{
"input": "100\n5 5 5 5 5 5 5",
"output": "6"
},
{
"input": "4\n1 0 0 0 0 0 1",
"output": "7"
},
{
"input": "2\n0 0 0 0 0 0 1",
"output": "7"
},
{
"input": "7\n0 0 0 0 0 0 7",
"output": "7"
},
{
"input": "7\n2 1 1 1 1 1 0",
"output": "6"
},
{
"input": "2\n0 0 1 1 0 0 0",
"output": "4"
},
{
"input": "6\n1 1 1 1 1 1 0",
"output": "6"
},
{
"input": "5\n1 1 1 0 0 1 1",
"output": "7"
},
{
"input": "100\n10 20 30 10 10 10 10",
"output": "7"
},
{
"input": "1\n0 0 0 1 0 0 0",
"output": "4"
},
{
"input": "70\n10 10 10 10 10 10 10",
"output": "7"
},
{
"input": "22\n1 2 3 4 5 6 10",
"output": "7"
},
{
"input": "5\n0 0 0 1 0 0 0",
"output": "4"
},
{
"input": "2\n0 0 0 1 0 0 0",
"output": "4"
},
{
"input": "6\n1 0 0 0 0 0 2",
"output": "7"
},
{
"input": "10\n1 2 2 1 2 1 1",
"output": "7"
},
{
"input": "5\n0 0 0 0 0 0 10",
"output": "7"
},
{
"input": "4\n0 1 1 0 0 0 0",
"output": "3"
},
{
"input": "100\n0 0 0 0 0 1 0",
"output": "6"
}
] | 1,682,414,155
| 2,147,483,647
|
PyPy 3-64
|
OK
|
TESTS
| 49
| 184
| 1,536,000
|
n=int(input())
days=input().split()
sum=0
i=0
while True:
sum+=int(days[i])
if sum>=n:
print(i+1)
break
elif i==6:
i=0
else:
i+=1
|
Title: Petr and Book
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
One Sunday Petr went to a bookshop and bought a new book on sports programming. The book had exactly *n* pages.
Petr decided to start reading it starting from the next day, that is, from Monday. Petr's got a very tight schedule and for each day of the week he knows how many pages he will be able to read on that day. Some days are so busy that Petr will have no time to read whatsoever. However, we know that he will be able to read at least one page a week.
Assuming that Petr will not skip days and will read as much as he can every day, determine on which day of the week he will read the last page of the book.
Input Specification:
The first input line contains the single integer *n* (1<=≤<=*n*<=≤<=1000) — the number of pages in the book.
The second line contains seven non-negative space-separated integers that do not exceed 1000 — those integers represent how many pages Petr can read on Monday, Tuesday, Wednesday, Thursday, Friday, Saturday and Sunday correspondingly. It is guaranteed that at least one of those numbers is larger than zero.
Output Specification:
Print a single number — the number of the day of the week, when Petr will finish reading the book. The days of the week are numbered starting with one in the natural order: Monday, Tuesday, Wednesday, Thursday, Friday, Saturday, Sunday.
Demo Input:
['100\n15 20 20 15 10 30 45\n', '2\n1 0 0 0 0 0 0\n']
Demo Output:
['6\n', '1\n']
Note:
Note to the first sample:
By the end of Monday and therefore, by the beginning of Tuesday Petr has 85 pages left. He has 65 pages left by Wednesday, 45 by Thursday, 30 by Friday, 20 by Saturday and on Saturday Petr finishes reading the book (and he also has time to read 10 pages of something else).
Note to the second sample:
On Monday of the first week Petr will read the first page. On Monday of the second week Petr will read the second page and will finish reading the book.
|
```python
n=int(input())
days=input().split()
sum=0
i=0
while True:
sum+=int(days[i])
if sum>=n:
print(i+1)
break
elif i==6:
i=0
else:
i+=1
```
| 3
|
|
922
|
B
|
Magic Forest
|
PROGRAMMING
| 1,300
|
[
"brute force"
] | null | null |
Imp is in a magic forest, where xorangles grow (wut?)
A xorangle of order *n* is such a non-degenerate triangle, that lengths of its sides are integers not exceeding *n*, and the xor-sum of the lengths is equal to zero. Imp has to count the number of distinct xorangles of order *n* to get out of the forest.
Formally, for a given integer *n* you have to find the number of such triples (*a*,<=*b*,<=*c*), that:
- 1<=≤<=*a*<=≤<=*b*<=≤<=*c*<=≤<=*n*; - , where denotes the [bitwise xor](https://en.wikipedia.org/wiki/Bitwise_operation#XOR) of integers *x* and *y*. - (*a*,<=*b*,<=*c*) form a non-degenerate (with strictly positive area) triangle.
|
The only line contains a single integer *n* (1<=≤<=*n*<=≤<=2500).
|
Print the number of xorangles of order *n*.
|
[
"6\n",
"10\n"
] |
[
"1\n",
"2\n"
] |
The only xorangle in the first sample is (3, 5, 6).
| 1,000
|
[
{
"input": "6",
"output": "1"
},
{
"input": "10",
"output": "2"
},
{
"input": "3",
"output": "0"
},
{
"input": "4",
"output": "0"
},
{
"input": "5",
"output": "0"
},
{
"input": "2500",
"output": "700393"
},
{
"input": "952",
"output": "118547"
},
{
"input": "88",
"output": "536"
},
{
"input": "1216",
"output": "160822"
},
{
"input": "2140",
"output": "614785"
},
{
"input": "564",
"output": "35087"
},
{
"input": "1488",
"output": "239580"
},
{
"input": "116",
"output": "1332"
},
{
"input": "1040",
"output": "145820"
},
{
"input": "1965",
"output": "545494"
},
{
"input": "593",
"output": "36605"
},
{
"input": "779",
"output": "63500"
},
{
"input": "1703",
"output": "352045"
},
{
"input": "331",
"output": "9877"
},
{
"input": "1051",
"output": "145985"
},
{
"input": "2179",
"output": "618074"
},
{
"input": "603",
"output": "37312"
},
{
"input": "1731",
"output": "369691"
},
{
"input": "2451",
"output": "681980"
},
{
"input": "1079",
"output": "146833"
},
{
"input": "2207",
"output": "621708"
},
{
"input": "2394",
"output": "663240"
},
{
"input": "818",
"output": "73972"
},
{
"input": "1946",
"output": "529383"
},
{
"input": "166",
"output": "2200"
},
{
"input": "1294",
"output": "175915"
},
{
"input": "2218",
"output": "623386"
},
{
"input": "846",
"output": "82106"
},
{
"input": "1566",
"output": "273341"
},
{
"input": "194",
"output": "3240"
},
{
"input": "1322",
"output": "183405"
},
{
"input": "1508",
"output": "247634"
},
{
"input": "2433",
"output": "675245"
},
{
"input": "857",
"output": "85529"
},
{
"input": "1781",
"output": "402718"
},
{
"input": "1",
"output": "0"
},
{
"input": "2",
"output": "0"
},
{
"input": "2444",
"output": "679373"
},
{
"input": "2498",
"output": "699536"
}
] | 1,616,698,913
| 2,147,483,647
|
Python 3
|
TIME_LIMIT_EXCEEDED
|
TESTS
| 5
| 1,000
| 307,200
|
n = int(input())
def triangle_check(a, b, c):
return (a < b + c) and (b < a + c) and (c < a + b)
flags = [False] * (n + 1)
for i in range(1, n + 1):
flags[i] = True
count = 0
for a in range(1, n + 1):
for b in range(a + 1, n + 1):
c = a ^ b
if (c <= n and c > b):
if (flags[c] and triangle_check(a, b, c)):
count += 1
print(count)
|
Title: Magic Forest
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
Imp is in a magic forest, where xorangles grow (wut?)
A xorangle of order *n* is such a non-degenerate triangle, that lengths of its sides are integers not exceeding *n*, and the xor-sum of the lengths is equal to zero. Imp has to count the number of distinct xorangles of order *n* to get out of the forest.
Formally, for a given integer *n* you have to find the number of such triples (*a*,<=*b*,<=*c*), that:
- 1<=≤<=*a*<=≤<=*b*<=≤<=*c*<=≤<=*n*; - , where denotes the [bitwise xor](https://en.wikipedia.org/wiki/Bitwise_operation#XOR) of integers *x* and *y*. - (*a*,<=*b*,<=*c*) form a non-degenerate (with strictly positive area) triangle.
Input Specification:
The only line contains a single integer *n* (1<=≤<=*n*<=≤<=2500).
Output Specification:
Print the number of xorangles of order *n*.
Demo Input:
['6\n', '10\n']
Demo Output:
['1\n', '2\n']
Note:
The only xorangle in the first sample is (3, 5, 6).
|
```python
n = int(input())
def triangle_check(a, b, c):
return (a < b + c) and (b < a + c) and (c < a + b)
flags = [False] * (n + 1)
for i in range(1, n + 1):
flags[i] = True
count = 0
for a in range(1, n + 1):
for b in range(a + 1, n + 1):
c = a ^ b
if (c <= n and c > b):
if (flags[c] and triangle_check(a, b, c)):
count += 1
print(count)
```
| 0
|
|
559
|
A
|
Gerald's Hexagon
|
PROGRAMMING
| 1,600
|
[
"brute force",
"geometry",
"math"
] | null | null |
Gerald got a very curious hexagon for his birthday. The boy found out that all the angles of the hexagon are equal to . Then he measured the length of its sides, and found that each of them is equal to an integer number of centimeters. There the properties of the hexagon ended and Gerald decided to draw on it.
He painted a few lines, parallel to the sides of the hexagon. The lines split the hexagon into regular triangles with sides of 1 centimeter. Now Gerald wonders how many triangles he has got. But there were so many of them that Gerald lost the track of his counting. Help the boy count the triangles.
|
The first and the single line of the input contains 6 space-separated integers *a*1,<=*a*2,<=*a*3,<=*a*4,<=*a*5 and *a*6 (1<=≤<=*a**i*<=≤<=1000) — the lengths of the sides of the hexagons in centimeters in the clockwise order. It is guaranteed that the hexagon with the indicated properties and the exactly such sides exists.
|
Print a single integer — the number of triangles with the sides of one 1 centimeter, into which the hexagon is split.
|
[
"1 1 1 1 1 1\n",
"1 2 1 2 1 2\n"
] |
[
"6\n",
"13\n"
] |
This is what Gerald's hexagon looks like in the first sample:
<img class="tex-graphics" src="https://espresso.codeforces.com/84d193e27b02c38eb1eadc536602a2ec0b9f9519.png" style="max-width: 100.0%;max-height: 100.0%;"/>
And that's what it looks like in the second sample:
<img class="tex-graphics" src="https://espresso.codeforces.com/e29076a96da8ca864654cc6195654d9bf07d31ce.png" style="max-width: 100.0%;max-height: 100.0%;"/>
| 500
|
[
{
"input": "1 1 1 1 1 1",
"output": "6"
},
{
"input": "1 2 1 2 1 2",
"output": "13"
},
{
"input": "2 4 5 3 3 6",
"output": "83"
},
{
"input": "45 19 48 18 46 21",
"output": "6099"
},
{
"input": "66 6 65 6 66 5",
"output": "5832"
},
{
"input": "7 5 4 8 4 5",
"output": "175"
},
{
"input": "3 2 1 4 1 2",
"output": "25"
},
{
"input": "7 1 7 3 5 3",
"output": "102"
},
{
"input": "9 2 9 3 8 3",
"output": "174"
},
{
"input": "1 6 1 5 2 5",
"output": "58"
},
{
"input": "41 64 48 61 44 68",
"output": "17488"
},
{
"input": "1 59 2 59 1 60",
"output": "3838"
},
{
"input": "30 36 36 32 34 38",
"output": "7052"
},
{
"input": "50 40 46 38 52 34",
"output": "11176"
},
{
"input": "4 60 4 60 4 60",
"output": "4576"
},
{
"input": "718 466 729 470 714 481",
"output": "2102808"
},
{
"input": "131 425 143 461 95 473",
"output": "441966"
},
{
"input": "125 7 128 8 124 11",
"output": "20215"
},
{
"input": "677 303 685 288 692 296",
"output": "1365807"
},
{
"input": "1 577 7 576 2 582",
"output": "342171"
},
{
"input": "1000 1000 1000 1000 1000 1000",
"output": "6000000"
},
{
"input": "1 1 1000 1 1 1000",
"output": "4002"
},
{
"input": "1000 1000 1 1000 1000 1",
"output": "2004000"
},
{
"input": "1000 1 1000 999 2 999",
"output": "2003997"
},
{
"input": "1 1000 1 1 1000 1",
"output": "4002"
},
{
"input": "888 888 888 887 889 887",
"output": "4729487"
}
] | 1,672,736,626
| 2,147,483,647
|
PyPy 3-64
|
WRONG_ANSWER
|
TESTS
| 2
| 46
| 0
|
import math
a1, a2, a3, b1, b2, b3 = map(int, input().split(' '))
# print(a2, b2)
print(((a2 + a1) * (a2 + a1) - a2 * a2) + ((b2 + b1) * (b2 + b1) - b2 * b2))
|
Title: Gerald's Hexagon
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
Gerald got a very curious hexagon for his birthday. The boy found out that all the angles of the hexagon are equal to . Then he measured the length of its sides, and found that each of them is equal to an integer number of centimeters. There the properties of the hexagon ended and Gerald decided to draw on it.
He painted a few lines, parallel to the sides of the hexagon. The lines split the hexagon into regular triangles with sides of 1 centimeter. Now Gerald wonders how many triangles he has got. But there were so many of them that Gerald lost the track of his counting. Help the boy count the triangles.
Input Specification:
The first and the single line of the input contains 6 space-separated integers *a*1,<=*a*2,<=*a*3,<=*a*4,<=*a*5 and *a*6 (1<=≤<=*a**i*<=≤<=1000) — the lengths of the sides of the hexagons in centimeters in the clockwise order. It is guaranteed that the hexagon with the indicated properties and the exactly such sides exists.
Output Specification:
Print a single integer — the number of triangles with the sides of one 1 centimeter, into which the hexagon is split.
Demo Input:
['1 1 1 1 1 1\n', '1 2 1 2 1 2\n']
Demo Output:
['6\n', '13\n']
Note:
This is what Gerald's hexagon looks like in the first sample:
<img class="tex-graphics" src="https://espresso.codeforces.com/84d193e27b02c38eb1eadc536602a2ec0b9f9519.png" style="max-width: 100.0%;max-height: 100.0%;"/>
And that's what it looks like in the second sample:
<img class="tex-graphics" src="https://espresso.codeforces.com/e29076a96da8ca864654cc6195654d9bf07d31ce.png" style="max-width: 100.0%;max-height: 100.0%;"/>
|
```python
import math
a1, a2, a3, b1, b2, b3 = map(int, input().split(' '))
# print(a2, b2)
print(((a2 + a1) * (a2 + a1) - a2 * a2) + ((b2 + b1) * (b2 + b1) - b2 * b2))
```
| 0
|
|
604
|
A
|
Uncowed Forces
|
PROGRAMMING
| 1,000
|
[
"implementation"
] | null | null |
Kevin Sun has just finished competing in Codeforces Round #334! The round was 120 minutes long and featured five problems with maximum point values of 500, 1000, 1500, 2000, and 2500, respectively. Despite the challenging tasks, Kevin was uncowed and bulldozed through all of them, distinguishing himself from the herd as the best cowmputer scientist in all of Bovinia. Kevin knows his submission time for each problem, the number of wrong submissions that he made on each problem, and his total numbers of successful and unsuccessful hacks. Because Codeforces scoring is complicated, Kevin wants you to write a program to compute his final score.
Codeforces scores are computed as follows: If the maximum point value of a problem is *x*, and Kevin submitted correctly at minute *m* but made *w* wrong submissions, then his score on that problem is . His total score is equal to the sum of his scores for each problem. In addition, Kevin's total score gets increased by 100 points for each successful hack, but gets decreased by 50 points for each unsuccessful hack.
All arithmetic operations are performed with absolute precision and no rounding. It is guaranteed that Kevin's final score is an integer.
|
The first line of the input contains five space-separated integers *m*1, *m*2, *m*3, *m*4, *m*5, where *m**i* (0<=≤<=*m**i*<=≤<=119) is the time of Kevin's last submission for problem *i*. His last submission is always correct and gets accepted.
The second line contains five space-separated integers *w*1, *w*2, *w*3, *w*4, *w*5, where *w**i* (0<=≤<=*w**i*<=≤<=10) is Kevin's number of wrong submissions on problem *i*.
The last line contains two space-separated integers *h**s* and *h**u* (0<=≤<=*h**s*,<=*h**u*<=≤<=20), denoting the Kevin's numbers of successful and unsuccessful hacks, respectively.
|
Print a single integer, the value of Kevin's final score.
|
[
"20 40 60 80 100\n0 1 2 3 4\n1 0\n",
"119 119 119 119 119\n0 0 0 0 0\n10 0\n"
] |
[
"4900\n",
"4930\n"
] |
In the second sample, Kevin takes 119 minutes on all of the problems. Therefore, he gets <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/42158dc2bc78cd21fa679530ae9ef8b9ea298d15.png" style="max-width: 100.0%;max-height: 100.0%;"/> of the points on each problem. So his score from solving problems is <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/fdf392d8508500b57f8057ac0c4c892ab5f925a2.png" style="max-width: 100.0%;max-height: 100.0%;"/>. Adding in 10·100 = 1000 points from hacks, his total score becomes 3930 + 1000 = 4930.
| 500
|
[
{
"input": "20 40 60 80 100\n0 1 2 3 4\n1 0",
"output": "4900"
},
{
"input": "119 119 119 119 119\n0 0 0 0 0\n10 0",
"output": "4930"
},
{
"input": "3 6 13 38 60\n6 10 10 3 8\n9 9",
"output": "5088"
},
{
"input": "21 44 11 68 75\n6 2 4 8 4\n2 8",
"output": "4522"
},
{
"input": "16 112 50 114 68\n1 4 8 4 9\n19 11",
"output": "5178"
},
{
"input": "55 66 75 44 47\n6 0 6 6 10\n19 0",
"output": "6414"
},
{
"input": "47 11 88 5 110\n6 10 4 2 3\n10 6",
"output": "5188"
},
{
"input": "5 44 61 103 92\n9 0 10 4 8\n15 7",
"output": "4914"
},
{
"input": "115 53 96 62 110\n7 8 1 7 9\n7 16",
"output": "3416"
},
{
"input": "102 83 26 6 11\n3 4 1 8 3\n17 14",
"output": "6704"
},
{
"input": "36 102 73 101 19\n5 9 2 2 6\n4 13",
"output": "4292"
},
{
"input": "40 115 93 107 113\n5 7 2 6 8\n6 17",
"output": "2876"
},
{
"input": "53 34 53 107 81\n4 3 1 10 8\n7 7",
"output": "4324"
},
{
"input": "113 37 4 84 66\n2 0 10 3 0\n20 19",
"output": "6070"
},
{
"input": "10 53 101 62 1\n8 0 9 7 9\n0 11",
"output": "4032"
},
{
"input": "45 45 75 36 76\n6 2 2 0 0\n8 17",
"output": "5222"
},
{
"input": "47 16 44 78 111\n7 9 8 0 2\n1 19",
"output": "3288"
},
{
"input": "7 54 39 102 31\n6 0 2 10 1\n18 3",
"output": "6610"
},
{
"input": "0 46 86 72 40\n1 5 5 5 9\n6 5",
"output": "4924"
},
{
"input": "114 4 45 78 113\n0 4 8 10 2\n10 12",
"output": "4432"
},
{
"input": "56 56 96 105 107\n4 9 10 4 8\n2 1",
"output": "3104"
},
{
"input": "113 107 59 50 56\n3 7 10 6 3\n10 12",
"output": "4586"
},
{
"input": "96 104 9 94 84\n6 10 7 8 3\n14 11",
"output": "4754"
},
{
"input": "98 15 116 43 55\n4 3 0 9 3\n10 7",
"output": "5400"
},
{
"input": "0 26 99 108 35\n0 4 3 0 10\n9 5",
"output": "5388"
},
{
"input": "89 24 51 49 84\n5 6 2 2 9\n2 14",
"output": "4066"
},
{
"input": "57 51 76 45 96\n1 0 4 3 6\n12 15",
"output": "5156"
},
{
"input": "79 112 37 36 116\n2 8 4 7 5\n4 12",
"output": "3872"
},
{
"input": "71 42 60 20 7\n7 1 1 10 6\n1 7",
"output": "5242"
},
{
"input": "86 10 66 80 55\n0 2 5 10 5\n15 6",
"output": "5802"
},
{
"input": "66 109 22 22 62\n3 1 5 4 5\n10 5",
"output": "5854"
},
{
"input": "97 17 43 84 58\n2 8 3 8 6\n10 7",
"output": "5028"
},
{
"input": "109 83 5 114 104\n6 0 3 9 5\n5 2",
"output": "4386"
},
{
"input": "94 18 24 91 105\n2 0 7 10 3\n1 4",
"output": "4118"
},
{
"input": "64 17 86 59 45\n8 0 10 2 2\n4 4",
"output": "5144"
},
{
"input": "70 84 31 57 2\n7 0 0 2 7\n12 5",
"output": "6652"
},
{
"input": "98 118 117 86 4\n2 10 9 7 5\n11 15",
"output": "4476"
},
{
"input": "103 110 101 97 70\n4 2 1 0 5\n7 5",
"output": "4678"
},
{
"input": "78 96 6 97 62\n7 7 9 2 9\n10 3",
"output": "4868"
},
{
"input": "95 28 3 31 115\n1 9 0 7 3\n10 13",
"output": "5132"
},
{
"input": "45 17 116 58 3\n8 8 7 6 4\n3 19",
"output": "3992"
},
{
"input": "19 12 0 113 77\n3 0 10 9 2\n8 6",
"output": "5040"
},
{
"input": "0 0 0 0 0\n0 0 0 0 0\n0 0",
"output": "7500"
},
{
"input": "0 0 0 0 0\n0 0 0 0 0\n20 0",
"output": "9500"
},
{
"input": "119 119 119 119 119\n10 10 10 10 10\n0 20",
"output": "1310"
},
{
"input": "0 0 0 0 0\n10 10 10 10 10\n0 20",
"output": "4150"
},
{
"input": "119 0 0 0 0\n10 0 0 0 0\n5 5",
"output": "7400"
},
{
"input": "0 119 0 0 0\n0 10 0 0 0\n5 5",
"output": "7050"
},
{
"input": "0 0 119 0 0\n0 0 10 0 0\n0 0",
"output": "6450"
},
{
"input": "0 0 0 119 0\n0 0 0 10 0\n5 5",
"output": "6350"
},
{
"input": "0 0 0 0 119\n0 0 0 0 10\n5 5",
"output": "6060"
},
{
"input": "119 0 0 0 0\n2 0 0 0 0\n5 5",
"output": "7412"
},
{
"input": "0 119 0 0 0\n0 2 0 0 0\n5 5",
"output": "7174"
},
{
"input": "0 0 119 0 0\n0 0 2 0 0\n5 5",
"output": "6936"
},
{
"input": "0 0 0 119 0\n0 0 0 2 0\n5 5",
"output": "6698"
},
{
"input": "0 0 0 0 119\n0 0 0 0 2\n5 5",
"output": "6460"
},
{
"input": "119 0 0 0 0\n0 0 0 0 0\n4 9",
"output": "7212"
}
] | 1,689,640,802
| 2,147,483,647
|
PyPy 3-64
|
WRONG_ANSWER
|
TESTS
| 0
| 46
| 0
|
print("_RANDOM_GUESS_1689640802.6199908")# 1689640802.6200087
|
Title: Uncowed Forces
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
Kevin Sun has just finished competing in Codeforces Round #334! The round was 120 minutes long and featured five problems with maximum point values of 500, 1000, 1500, 2000, and 2500, respectively. Despite the challenging tasks, Kevin was uncowed and bulldozed through all of them, distinguishing himself from the herd as the best cowmputer scientist in all of Bovinia. Kevin knows his submission time for each problem, the number of wrong submissions that he made on each problem, and his total numbers of successful and unsuccessful hacks. Because Codeforces scoring is complicated, Kevin wants you to write a program to compute his final score.
Codeforces scores are computed as follows: If the maximum point value of a problem is *x*, and Kevin submitted correctly at minute *m* but made *w* wrong submissions, then his score on that problem is . His total score is equal to the sum of his scores for each problem. In addition, Kevin's total score gets increased by 100 points for each successful hack, but gets decreased by 50 points for each unsuccessful hack.
All arithmetic operations are performed with absolute precision and no rounding. It is guaranteed that Kevin's final score is an integer.
Input Specification:
The first line of the input contains five space-separated integers *m*1, *m*2, *m*3, *m*4, *m*5, where *m**i* (0<=≤<=*m**i*<=≤<=119) is the time of Kevin's last submission for problem *i*. His last submission is always correct and gets accepted.
The second line contains five space-separated integers *w*1, *w*2, *w*3, *w*4, *w*5, where *w**i* (0<=≤<=*w**i*<=≤<=10) is Kevin's number of wrong submissions on problem *i*.
The last line contains two space-separated integers *h**s* and *h**u* (0<=≤<=*h**s*,<=*h**u*<=≤<=20), denoting the Kevin's numbers of successful and unsuccessful hacks, respectively.
Output Specification:
Print a single integer, the value of Kevin's final score.
Demo Input:
['20 40 60 80 100\n0 1 2 3 4\n1 0\n', '119 119 119 119 119\n0 0 0 0 0\n10 0\n']
Demo Output:
['4900\n', '4930\n']
Note:
In the second sample, Kevin takes 119 minutes on all of the problems. Therefore, he gets <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/42158dc2bc78cd21fa679530ae9ef8b9ea298d15.png" style="max-width: 100.0%;max-height: 100.0%;"/> of the points on each problem. So his score from solving problems is <img align="middle" class="tex-formula" src="https://espresso.codeforces.com/fdf392d8508500b57f8057ac0c4c892ab5f925a2.png" style="max-width: 100.0%;max-height: 100.0%;"/>. Adding in 10·100 = 1000 points from hacks, his total score becomes 3930 + 1000 = 4930.
|
```python
print("_RANDOM_GUESS_1689640802.6199908")# 1689640802.6200087
```
| 0
|
|
764
|
A
|
Taymyr is calling you
|
PROGRAMMING
| 800
|
[
"brute force",
"implementation",
"math"
] | null | null |
Comrade Dujikov is busy choosing artists for Timofey's birthday and is recieving calls from Taymyr from Ilia-alpinist.
Ilia-alpinist calls every *n* minutes, i.e. in minutes *n*, 2*n*, 3*n* and so on. Artists come to the comrade every *m* minutes, i.e. in minutes *m*, 2*m*, 3*m* and so on. The day is *z* minutes long, i.e. the day consists of minutes 1,<=2,<=...,<=*z*. How many artists should be killed so that there are no artists in the room when Ilia calls? Consider that a call and a talk with an artist take exactly one minute.
|
The only string contains three integers — *n*, *m* and *z* (1<=≤<=*n*,<=*m*,<=*z*<=≤<=104).
|
Print single integer — the minimum number of artists that should be killed so that there are no artists in the room when Ilia calls.
|
[
"1 1 10\n",
"1 2 5\n",
"2 3 9\n"
] |
[
"10\n",
"2\n",
"1\n"
] |
Taymyr is a place in the north of Russia.
In the first test the artists come each minute, as well as the calls, so we need to kill all of them.
In the second test we need to kill artists which come on the second and the fourth minutes.
In the third test — only the artist which comes on the sixth minute.
| 500
|
[
{
"input": "1 1 10",
"output": "10"
},
{
"input": "1 2 5",
"output": "2"
},
{
"input": "2 3 9",
"output": "1"
},
{
"input": "4 8 9",
"output": "1"
},
{
"input": "7 9 2",
"output": "0"
},
{
"input": "10000 10000 10000",
"output": "1"
},
{
"input": "24 22 9235",
"output": "34"
},
{
"input": "74 8 417",
"output": "1"
},
{
"input": "972 1 203",
"output": "0"
},
{
"input": "550 1 754",
"output": "1"
},
{
"input": "860 1 884",
"output": "1"
},
{
"input": "358 2 809",
"output": "2"
},
{
"input": "33 27 216",
"output": "0"
},
{
"input": "2940 1 9311",
"output": "3"
},
{
"input": "4624 1 1953",
"output": "0"
},
{
"input": "2696 2 7345",
"output": "2"
},
{
"input": "3443 2 6701",
"output": "0"
},
{
"input": "3 613 2275",
"output": "1"
},
{
"input": "1 10000 10000",
"output": "1"
},
{
"input": "10000 1 10000",
"output": "1"
},
{
"input": "1 1 1",
"output": "1"
},
{
"input": "1 1 10000",
"output": "10000"
},
{
"input": "34 27 10000",
"output": "10"
},
{
"input": "2 2 9999",
"output": "4999"
},
{
"input": "2 2 1",
"output": "0"
},
{
"input": "6 4 36",
"output": "3"
},
{
"input": "33 6 3005",
"output": "45"
},
{
"input": "5 1 20",
"output": "4"
},
{
"input": "1 2 10",
"output": "5"
},
{
"input": "2 1 100",
"output": "50"
},
{
"input": "10 20 10000",
"output": "500"
},
{
"input": "8 12 12",
"output": "0"
}
] | 1,581,451,304
| 2,147,483,647
|
PyPy 3
|
OK
|
TESTS
| 32
| 140
| 1,228,800
|
x,y,z=map(int,input().split())
m=[i for i in range(1,z+1) if i%x==0 and i%y==0]
print(len(m))
|
Title: Taymyr is calling you
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
Comrade Dujikov is busy choosing artists for Timofey's birthday and is recieving calls from Taymyr from Ilia-alpinist.
Ilia-alpinist calls every *n* minutes, i.e. in minutes *n*, 2*n*, 3*n* and so on. Artists come to the comrade every *m* minutes, i.e. in minutes *m*, 2*m*, 3*m* and so on. The day is *z* minutes long, i.e. the day consists of minutes 1,<=2,<=...,<=*z*. How many artists should be killed so that there are no artists in the room when Ilia calls? Consider that a call and a talk with an artist take exactly one minute.
Input Specification:
The only string contains three integers — *n*, *m* and *z* (1<=≤<=*n*,<=*m*,<=*z*<=≤<=104).
Output Specification:
Print single integer — the minimum number of artists that should be killed so that there are no artists in the room when Ilia calls.
Demo Input:
['1 1 10\n', '1 2 5\n', '2 3 9\n']
Demo Output:
['10\n', '2\n', '1\n']
Note:
Taymyr is a place in the north of Russia.
In the first test the artists come each minute, as well as the calls, so we need to kill all of them.
In the second test we need to kill artists which come on the second and the fourth minutes.
In the third test — only the artist which comes on the sixth minute.
|
```python
x,y,z=map(int,input().split())
m=[i for i in range(1,z+1) if i%x==0 and i%y==0]
print(len(m))
```
| 3
|
|
20
|
C
|
Dijkstra?
|
PROGRAMMING
| 1,900
|
[
"graphs",
"shortest paths"
] |
C. Dijkstra?
|
1
|
64
|
You are given a weighted undirected graph. The vertices are enumerated from 1 to *n*. Your task is to find the shortest path between the vertex 1 and the vertex *n*.
|
The first line contains two integers *n* and *m* (2<=≤<=*n*<=≤<=105,<=0<=≤<=*m*<=≤<=105), where *n* is the number of vertices and *m* is the number of edges. Following *m* lines contain one edge each in form *a**i*, *b**i* and *w**i* (1<=≤<=*a**i*,<=*b**i*<=≤<=*n*,<=1<=≤<=*w**i*<=≤<=106), where *a**i*,<=*b**i* are edge endpoints and *w**i* is the length of the edge.
It is possible that the graph has loops and multiple edges between pair of vertices.
|
Write the only integer -1 in case of no path. Write the shortest path in opposite case. If there are many solutions, print any of them.
|
[
"5 6\n1 2 2\n2 5 5\n2 3 4\n1 4 1\n4 3 3\n3 5 1\n",
"5 6\n1 2 2\n2 5 5\n2 3 4\n1 4 1\n4 3 3\n3 5 1\n"
] |
[
"1 4 3 5 ",
"1 4 3 5 "
] |
none
| 1,500
|
[
{
"input": "5 6\n1 2 2\n2 5 5\n2 3 4\n1 4 1\n4 3 3\n3 5 1",
"output": "1 4 3 5 "
},
{
"input": "5 6\n1 2 2\n2 5 5\n2 3 4\n1 4 1\n4 3 3\n3 5 1",
"output": "1 4 3 5 "
},
{
"input": "2 1\n1 2 1",
"output": "1 2 "
},
{
"input": "3 1\n1 2 1",
"output": "-1"
},
{
"input": "3 3\n1 2 1\n1 3 2\n2 3 1",
"output": "1 3 "
},
{
"input": "10 10\n1 5 12\n2 4 140\n2 10 149\n3 6 154\n3 7 9\n3 8 226\n3 10 132\n4 10 55\n5 8 33\n7 8 173",
"output": "1 5 8 7 3 10 "
},
{
"input": "10 10\n1 5 178\n1 8 221\n2 7 92\n2 8 159\n3 5 55\n3 6 179\n3 10 237\n4 8 205\n5 6 191\n8 10 157",
"output": "1 8 10 "
},
{
"input": "10 10\n1 4 200\n1 9 197\n3 4 79\n3 5 213\n3 6 149\n5 8 3\n5 9 189\n6 7 130\n6 9 51\n8 10 135",
"output": "1 9 5 8 10 "
},
{
"input": "10 10\n1 4 201\n2 3 238\n3 4 40\n3 6 231\n3 8 45\n4 5 227\n4 6 58\n4 9 55\n5 7 14\n6 10 242",
"output": "1 4 6 10 "
}
] | 1,608,754,877
| 2,147,483,647
|
PyPy 3
|
RUNTIME_ERROR
|
TESTS
| 5
| 202
| 2,457,600
|
from math import sqrt
from collections import defaultdict
enum = enumerate
def dijkstra(n, es, ws):
g = {}
for i, e in enum(es):
if e in g:
g[e] = min(g[e], ws[i])
else:
g[e] = ws[i]
vs = list(range(1, n + 1))
ds = {i: float('inf') for i in vs[1: ]}
ds[1] = 0
ps = {}
for v in vs:
for vv in vs:
if (v, vv) in g:
# print((v, vv), 'is edge being considered', 'weight is')
if g[(v, vv)] < ds[vv]:
ds[vv] = g[(v, vv)]
ps[v] = vv
# print('graph updated, new graph is now', ds)
# print(g)
# print(ds)
if ds[n] == float('inf'):
print(-1)
else:
path = []
i = 1
while i != n:
path.append(i)
i = ps[i]
path.append(n)
print(' '.join(str(i) for i in path))
if __name__ == "__main__":
n, m = [int(i) for i in input().split()]
es = []
ws = []
for _ in range(m):
i, j, weight = [int(i) for i in input().split()]
es.append((i, j))
ws.append(weight)
dijkstra(n, es, ws)
|
Title: Dijkstra?
Time Limit: 1 seconds
Memory Limit: 64 megabytes
Problem Description:
You are given a weighted undirected graph. The vertices are enumerated from 1 to *n*. Your task is to find the shortest path between the vertex 1 and the vertex *n*.
Input Specification:
The first line contains two integers *n* and *m* (2<=≤<=*n*<=≤<=105,<=0<=≤<=*m*<=≤<=105), where *n* is the number of vertices and *m* is the number of edges. Following *m* lines contain one edge each in form *a**i*, *b**i* and *w**i* (1<=≤<=*a**i*,<=*b**i*<=≤<=*n*,<=1<=≤<=*w**i*<=≤<=106), where *a**i*,<=*b**i* are edge endpoints and *w**i* is the length of the edge.
It is possible that the graph has loops and multiple edges between pair of vertices.
Output Specification:
Write the only integer -1 in case of no path. Write the shortest path in opposite case. If there are many solutions, print any of them.
Demo Input:
['5 6\n1 2 2\n2 5 5\n2 3 4\n1 4 1\n4 3 3\n3 5 1\n', '5 6\n1 2 2\n2 5 5\n2 3 4\n1 4 1\n4 3 3\n3 5 1\n']
Demo Output:
['1 4 3 5 ', '1 4 3 5 ']
Note:
none
|
```python
from math import sqrt
from collections import defaultdict
enum = enumerate
def dijkstra(n, es, ws):
g = {}
for i, e in enum(es):
if e in g:
g[e] = min(g[e], ws[i])
else:
g[e] = ws[i]
vs = list(range(1, n + 1))
ds = {i: float('inf') for i in vs[1: ]}
ds[1] = 0
ps = {}
for v in vs:
for vv in vs:
if (v, vv) in g:
# print((v, vv), 'is edge being considered', 'weight is')
if g[(v, vv)] < ds[vv]:
ds[vv] = g[(v, vv)]
ps[v] = vv
# print('graph updated, new graph is now', ds)
# print(g)
# print(ds)
if ds[n] == float('inf'):
print(-1)
else:
path = []
i = 1
while i != n:
path.append(i)
i = ps[i]
path.append(n)
print(' '.join(str(i) for i in path))
if __name__ == "__main__":
n, m = [int(i) for i in input().split()]
es = []
ws = []
for _ in range(m):
i, j, weight = [int(i) for i in input().split()]
es.append((i, j))
ws.append(weight)
dijkstra(n, es, ws)
```
| -1
|
313
|
A
|
Ilya and Bank Account
|
PROGRAMMING
| 900
|
[
"implementation",
"number theory"
] | null | null |
Ilya is a very clever lion, he lives in an unusual city ZooVille. In this city all the animals have their rights and obligations. Moreover, they even have their own bank accounts. The state of a bank account is an integer. The state of a bank account can be a negative number. This means that the owner of the account owes the bank money.
Ilya the Lion has recently had a birthday, so he got a lot of gifts. One of them (the gift of the main ZooVille bank) is the opportunity to delete the last digit or the digit before last from the state of his bank account no more than once. For example, if the state of Ilya's bank account is -123, then Ilya can delete the last digit and get his account balance equal to -12, also he can remove its digit before last and get the account balance equal to -13. Of course, Ilya is permitted not to use the opportunity to delete a digit from the balance.
Ilya is not very good at math, and that's why he asks you to help him maximize his bank account. Find the maximum state of the bank account that can be obtained using the bank's gift.
|
The single line contains integer *n* (10<=≤<=|*n*|<=≤<=109) — the state of Ilya's bank account.
|
In a single line print an integer — the maximum state of the bank account that Ilya can get.
|
[
"2230\n",
"-10\n",
"-100003\n"
] |
[
"2230\n",
"0\n",
"-10000\n"
] |
In the first test sample Ilya doesn't profit from using the present.
In the second test sample you can delete digit 1 and get the state of the account equal to 0.
| 500
|
[
{
"input": "2230",
"output": "2230"
},
{
"input": "-10",
"output": "0"
},
{
"input": "-100003",
"output": "-10000"
},
{
"input": "544883178",
"output": "544883178"
},
{
"input": "-847251738",
"output": "-84725173"
},
{
"input": "423654797",
"output": "423654797"
},
{
"input": "-623563697",
"output": "-62356367"
},
{
"input": "645894116",
"output": "645894116"
},
{
"input": "-384381709",
"output": "-38438170"
},
{
"input": "437587210",
"output": "437587210"
},
{
"input": "-297534606",
"output": "-29753460"
},
{
"input": "891773002",
"output": "891773002"
},
{
"input": "-56712976",
"output": "-5671296"
},
{
"input": "963662765",
"output": "963662765"
},
{
"input": "-272656295",
"output": "-27265625"
},
{
"input": "383441522",
"output": "383441522"
},
{
"input": "-477665112",
"output": "-47766511"
},
{
"input": "791725034",
"output": "791725034"
},
{
"input": "-812168727",
"output": "-81216872"
},
{
"input": "528894922",
"output": "528894922"
},
{
"input": "-479977172",
"output": "-47997712"
},
{
"input": "568044564",
"output": "568044564"
},
{
"input": "-392784794",
"output": "-39278474"
},
{
"input": "925596634",
"output": "925596634"
},
{
"input": "-836078769",
"output": "-83607876"
},
{
"input": "71036059",
"output": "71036059"
},
{
"input": "-337396162",
"output": "-33739612"
},
{
"input": "87129297",
"output": "87129297"
},
{
"input": "-648171877",
"output": "-64817187"
},
{
"input": "20218400",
"output": "20218400"
},
{
"input": "10",
"output": "10"
},
{
"input": "1000000000",
"output": "1000000000"
},
{
"input": "-1000000000",
"output": "-100000000"
},
{
"input": "-102",
"output": "-10"
},
{
"input": "-120",
"output": "-10"
},
{
"input": "-20",
"output": "0"
},
{
"input": "-15",
"output": "-1"
},
{
"input": "-5575533",
"output": "-557553"
},
{
"input": "-50",
"output": "0"
},
{
"input": "-31",
"output": "-1"
},
{
"input": "-55",
"output": "-5"
},
{
"input": "-81",
"output": "-1"
},
{
"input": "-99",
"output": "-9"
},
{
"input": "-23",
"output": "-2"
},
{
"input": "-41",
"output": "-1"
},
{
"input": "-24",
"output": "-2"
},
{
"input": "46",
"output": "46"
}
] | 1,694,257,314
| 2,147,483,647
|
Python 3
|
RUNTIME_ERROR
|
TESTS
| 0
| 60
| 0
|
n = int(input())
f = 0
if n < 0 and len(str(n)) >= 2:
f1 = n + int(str(n)[-2])*10
f2 = n + int(str(n)[-1])
if f1 > f2:
print(f1)
else:
print(f2)
|
Title: Ilya and Bank Account
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
Ilya is a very clever lion, he lives in an unusual city ZooVille. In this city all the animals have their rights and obligations. Moreover, they even have their own bank accounts. The state of a bank account is an integer. The state of a bank account can be a negative number. This means that the owner of the account owes the bank money.
Ilya the Lion has recently had a birthday, so he got a lot of gifts. One of them (the gift of the main ZooVille bank) is the opportunity to delete the last digit or the digit before last from the state of his bank account no more than once. For example, if the state of Ilya's bank account is -123, then Ilya can delete the last digit and get his account balance equal to -12, also he can remove its digit before last and get the account balance equal to -13. Of course, Ilya is permitted not to use the opportunity to delete a digit from the balance.
Ilya is not very good at math, and that's why he asks you to help him maximize his bank account. Find the maximum state of the bank account that can be obtained using the bank's gift.
Input Specification:
The single line contains integer *n* (10<=≤<=|*n*|<=≤<=109) — the state of Ilya's bank account.
Output Specification:
In a single line print an integer — the maximum state of the bank account that Ilya can get.
Demo Input:
['2230\n', '-10\n', '-100003\n']
Demo Output:
['2230\n', '0\n', '-10000\n']
Note:
In the first test sample Ilya doesn't profit from using the present.
In the second test sample you can delete digit 1 and get the state of the account equal to 0.
|
```python
n = int(input())
f = 0
if n < 0 and len(str(n)) >= 2:
f1 = n + int(str(n)[-2])*10
f2 = n + int(str(n)[-1])
if f1 > f2:
print(f1)
else:
print(f2)
```
| -1
|
|
0
|
none
|
none
|
none
| 0
|
[
"none"
] | null | null |
Students love to celebrate their holidays. Especially if the holiday is the day of the end of exams!
Despite the fact that Igor K., unlike his groupmates, failed to pass a programming test, he decided to invite them to go to a cafe so that each of them could drink a bottle of... fresh cow milk. Having entered the cafe, the *m* friends found *n* different kinds of milk on the menu, that's why they ordered *n* bottles — one bottle of each kind. We know that the volume of milk in each bottle equals *w*.
When the bottles were brought in, they decided to pour all the milk evenly among the *m* cups, so that each got a cup. As a punishment for not passing the test Igor was appointed the person to pour the milk. He protested that he was afraid to mix something up and suggested to distribute the drink so that the milk from each bottle was in no more than two different cups. His friends agreed but they suddenly faced the following problem — and what is actually the way to do it?
Help them and write the program that will help to distribute the milk among the cups and drink it as quickly as possible!
Note that due to Igor K.'s perfectly accurate eye and unswerving hands, he can pour any fractional amount of milk from any bottle to any cup.
|
The only input data file contains three integers *n*, *w* and *m* (1<=≤<=*n*<=≤<=50, 100<=≤<=*w*<=≤<=1000, 2<=≤<=*m*<=≤<=50), where *n* stands for the number of ordered bottles, *w* stands for the volume of each of them and *m* stands for the number of friends in the company.
|
Print on the first line "YES" if it is possible to pour the milk so that the milk from each bottle was in no more than two different cups. If there's no solution, print "NO".
If there is a solution, then print *m* more lines, where the *i*-th of them describes the content of the *i*-th student's cup. The line should consist of one or more pairs that would look like "*b* *v*". Each such pair means that *v* (*v*<=><=0) units of milk were poured into the *i*-th cup from bottle *b* (1<=≤<=*b*<=≤<=*n*). All numbers *b* on each line should be different.
If there are several variants to solve the problem, print any of them. Print the real numbers with no less than 6 digits after the decimal point.
|
[
"2 500 3\n",
"4 100 5\n",
"4 100 7\n",
"5 500 2\n"
] |
[
"YES\n1 333.333333\n2 333.333333\n2 166.666667 1 166.666667\n",
"YES\n3 20.000000 4 60.000000\n1 80.000000\n4 40.000000 2 40.000000\n3 80.000000\n2 60.000000 1 20.000000\n",
"NO\n",
"YES\n4 250.000000 5 500.000000 2 500.000000\n3 500.000000 1 500.000000 4 250.000000\n"
] |
none
| 0
|
[
{
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"output": "YES\n13 408.000000\n17 51.000000 24 357.000000\n15 255.000000 14 153.000000\n2 357.000000 13 51.000000\n15 204.000000 6 204.000000\n10 153.000000 3 255.000000\n16 102.000000 19 306.000000\n8 357.000000 22 51.000000\n9 255.000000 20 153.000000\n18 204.000000 9 204.000000\n19 153.000000 6 255.000000\n11 408.000000\n17 408.000000\n7 408.000000\n22 408.000000\n11 51.000000 23 357.000000\n23 102.000000 20 306.000000\n21 153.000000 18 255.000000\n10 306.000000 2 102.000000\n24 102.000000 14 306.000000\n4 357.000..."
},
{
"input": "25 531 26",
"output": "YES\n7 183.807692 17 326.769231\n5 183.807692 16 326.769231\n18 122.538462 21 388.038462\n10 469.730769 2 40.846154\n4 367.615385 21 142.961538\n15 265.500000 14 245.076923\n25 81.692308 1 428.884615\n9 428.884615 20 81.692308\n13 20.423077 2 490.153846\n18 408.461538 9 102.115385\n19 306.346154 16 204.230769\n3 20.423077 11 490.153846\n19 224.653846 6 285.923077\n13 510.576923\n25 449.307692 10 61.269231\n8 388.038462 12 122.538462\n5 347.192308 22 163.384615\n3 510.576923\n23 61.269231 20 449.307692\n12 ..."
},
{
"input": "40 897 42",
"output": "YES\n15 555.285714 36 299.000000\n21 811.571429 18 42.714286\n6 512.571429 12 341.714286\n30 512.571429 32 341.714286\n29 384.428571 19 469.857143\n15 341.714286 22 512.571429\n7 598.000000 8 256.285714\n38 128.142857 27 726.142857\n9 854.285714\n13 854.285714\n28 256.285714 37 598.000000\n23 768.857143 20 85.428571\n1 683.428571 25 170.857143\n6 384.428571 5 469.857143\n2 811.571429 13 42.714286\n23 128.142857 35 726.142857\n2 85.428571 10 768.857143\n24 256.285714 39 598.000000\n8 640.714286 31 213.57142..."
},
{
"input": "24 371 26",
"output": "YES\n13 342.461538\n24 85.615385 17 256.846154\n14 313.923077 15 28.538462\n13 28.538462 2 313.923077\n15 342.461538\n3 256.846154 10 85.615385\n6 28.538462 19 313.923077\n8 199.769231 22 142.692308\n20 285.384615 23 57.076923\n9 256.846154 20 85.615385\n6 342.461538\n21 199.769231 18 142.692308\n17 114.153846 7 228.307692\n7 142.692308 4 199.769231\n5 114.153846 22 228.307692\n11 342.461538\n11 28.538462 23 313.923077\n18 228.307692 9 114.153846\n10 285.384615 2 57.076923\n24 285.384615 14 57.076923\n21 1..."
},
{
"input": "18 169 20",
"output": "YES\n17 118.300000 7 33.800000\n6 50.700000 15 101.400000\n15 67.600000 14 84.500000\n8 50.700000 12 101.400000\n18 135.200000 5 16.900000\n10 50.700000 3 101.400000\n10 118.300000 2 33.800000\n7 135.200000 4 16.900000\n16 16.900000 9 135.200000\n2 135.200000 13 16.900000\n9 33.800000 6 118.300000\n16 152.100000\n4 152.100000\n8 118.300000 18 33.800000\n14 84.500000 11 67.600000\n17 50.700000 11 101.400000\n5 152.100000\n1 84.500000 12 67.600000\n1 84.500000 3 67.600000\n13 152.100000"
},
{
"input": "24 264 25",
"output": "YES\n13 253.440000\n17 168.960000 7 84.480000\n14 147.840000 24 105.600000\n2 242.880000 13 10.560000\n15 137.280000 14 116.160000\n3 221.760000 10 31.680000\n6 137.280000 19 116.160000\n8 73.920000 22 179.520000\n23 242.880000 11 10.560000\n20 232.320000 23 21.120000\n6 126.720000 15 126.720000\n18 211.200000 9 42.240000\n7 179.520000 4 73.920000\n21 63.360000 4 190.080000\n5 168.960000 22 84.480000\n5 95.040000 16 158.400000\n11 253.440000\n20 31.680000 9 221.760000\n10 232.320000 2 21.120000\n17 95.0400..."
},
{
"input": "27 884 28",
"output": "YES\n6 378.857143 15 473.571429\n13 31.571429 2 820.857143\n18 631.428571 9 221.000000\n26 221.000000 22 631.428571\n13 852.428571\n23 726.142857 11 126.285714\n20 694.571429 23 157.857143\n10 789.285714 2 63.142857\n1 726.142857 25 126.285714\n4 568.285714 21 284.142857\n25 757.714286 10 94.714286\n27 347.285714 17 505.142857\n5 599.857143 22 252.571429\n18 252.571429 21 599.857143\n7 852.428571\n8 63.142857 3 789.285714\n14 442.000000 15 410.428571\n19 536.714286 16 315.714286\n3 94.714286 11 757.714286\n..."
},
{
"input": "18 922 21",
"output": "YES\n11 395.142857 17 395.142857\n6 790.285714\n15 790.285714\n12 790.285714\n8 131.714286 18 658.571429\n4 790.285714\n10 526.857143 2 263.428571\n17 526.857143 7 263.428571\n16 526.857143 9 263.428571\n2 658.571429 13 131.714286\n9 658.571429 6 131.714286\n5 395.142857 16 395.142857\n4 131.714286 7 658.571429\n8 790.285714\n15 131.714286 14 658.571429\n14 263.428571 11 526.857143\n18 263.428571 5 526.857143\n12 131.714286 1 658.571429\n3 526.857143 1 263.428571\n13 790.285714\n3 395.142857 10 395.142857\n..."
},
{
"input": "37 772 38",
"output": "YES\n16 203.157895 19 548.526316\n35 284.421053 23 467.263158\n27 426.631579 34 325.052632\n11 60.947368 36 690.736842\n28 121.894737 37 629.789474\n5 609.473684 3 142.210526\n26 751.684211\n9 345.368421 18 406.315789\n10 60.947368 25 690.736842\n19 223.473684 29 528.210526\n4 406.315789 27 345.368421\n7 223.473684 8 528.210526\n23 304.736842 20 446.947368\n24 467.263158 14 284.421053\n26 20.315789 17 731.368421\n6 182.842105 12 568.842105\n3 629.789474 22 121.894737\n18 365.684211 21 386.000000\n5 162.526..."
},
{
"input": "32 610 40",
"output": "YES\n17 122.000000 24 366.000000\n13 488.000000\n9 122.000000 20 366.000000\n29 488.000000\n30 488.000000\n19 244.000000 16 244.000000\n7 366.000000 12 122.000000\n24 244.000000 14 244.000000\n22 488.000000\n31 488.000000\n6 488.000000\n27 488.000000\n3 244.000000 5 244.000000\n1 488.000000\n7 244.000000 8 244.000000\n9 488.000000\n28 244.000000 26 244.000000\n26 366.000000 32 122.000000\n2 366.000000 13 122.000000\n15 488.000000\n15 122.000000 14 366.000000\n21 366.000000 18 122.000000\n25 122.000000 10 3..."
},
{
"input": "22 771 23",
"output": "YES\n13 33.521739 2 703.956522\n7 569.869565 4 167.608696\n14 301.695652 15 435.782609\n6 402.260870 15 335.217391\n8 234.652174 22 502.826087\n5 301.695652 16 435.782609\n6 368.739130 19 368.739130\n9 703.956522 20 33.521739\n17 234.652174 11 502.826087\n11 268.173913 14 469.304348\n3 134.086957 1 603.391304\n4 603.391304 21 134.086957\n13 737.478261\n16 335.217391 19 402.260870\n21 636.913043 18 100.565217\n22 268.173913 5 469.304348\n12 201.130435 8 536.347826\n9 67.043478 18 670.434783\n10 670.434783 2..."
},
{
"input": "22 792 24",
"output": "YES\n13 66.000000 2 660.000000\n7 396.000000 17 330.000000\n6 66.000000 15 660.000000\n6 726.000000\n8 462.000000 22 264.000000\n5 594.000000 16 132.000000\n19 726.000000\n9 132.000000 18 594.000000\n14 198.000000 11 528.000000\n14 594.000000 15 132.000000\n1 462.000000 3 264.000000\n7 396.000000 4 330.000000\n13 726.000000\n16 660.000000 19 66.000000\n4 462.000000 21 264.000000\n22 528.000000 5 198.000000\n12 396.000000 8 330.000000\n21 528.000000 18 198.000000\n10 594.000000 2 132.000000\n20 66.000000 9 ..."
},
{
"input": "40 100 48",
"output": "YES\n5 16.666667 6 66.666667\n27 66.666667 34 16.666667\n31 83.333333\n14 66.666667 17 16.666667\n16 83.333333\n6 33.333333 12 50.000000\n35 33.333333 23 50.000000\n24 83.333333\n38 50.000000 21 33.333333\n4 50.000000 26 33.333333\n28 83.333333\n18 83.333333\n25 66.666667 1 16.666667\n8 83.333333\n13 16.666667 2 66.666667\n9 83.333333\n10 50.000000 2 33.333333\n33 50.000000 29 33.333333\n23 50.000000 20 33.333333\n27 33.333333 38 50.000000\n11 83.333333\n40 83.333333\n9 16.666667 20 66.666667\n7 33.333333 ..."
},
{
"input": "42 501 48",
"output": "YES\n28 375.750000 37 62.625000\n25 250.500000 10 187.875000\n24 438.375000\n34 375.750000 24 62.625000\n26 125.250000 4 313.125000\n16 313.125000 30 125.250000\n19 250.500000 29 187.875000\n37 438.375000\n31 250.500000 8 187.875000\n28 125.250000 1 313.125000\n3 313.125000 5 125.250000\n12 62.625000 7 375.750000\n33 375.750000 41 62.625000\n20 438.375000\n3 187.875000 22 250.500000\n29 313.125000 33 125.250000\n32 438.375000\n15 313.125000 36 125.250000\n17 313.125000 39 125.250000\n1 187.875000 25 250.50..."
},
{
"input": "36 100 39",
"output": "YES\n3 53.846154 22 38.461538\n4 53.846154 27 38.461538\n30 30.769231 32 61.538462\n18 38.461538 21 53.846154\n15 69.230769 36 23.076923\n8 15.384615 7 76.923077\n20 23.076923 9 69.230769\n16 76.923077 19 15.384615\n33 7.692308 14 84.615385\n6 61.538462 12 30.769231\n26 46.153846 28 46.153846\n8 84.615385 31 7.692308\n12 69.230769 7 23.076923\n34 69.230769 24 23.076923\n15 30.769231 22 61.538462\n13 7.692308 2 84.615385\n10 76.923077 2 15.384615\n17 92.307692\n13 92.307692\n29 7.692308 19 84.615385\n30 69...."
},
{
"input": "42 171 49",
"output": "YES\n28 146.571429\n25 73.285714 10 73.285714\n24 97.714286 41 48.857143\n24 73.285714 34 73.285714\n26 146.571429\n16 73.285714 30 73.285714\n19 122.142857 29 24.428571\n37 146.571429\n31 146.571429\n1 122.142857 28 24.428571\n5 146.571429\n7 97.714286 8 48.857143\n33 146.571429\n20 73.285714 9 73.285714\n3 146.571429\n38 146.571429\n32 122.142857 37 24.428571\n22 48.857143 15 97.714286\n14 73.285714 17 73.285714\n25 97.714286 1 48.857143\n2 48.857143 10 97.714286\n3 24.428571 22 122.142857\n4 122.142857 ..."
},
{
"input": "17 100 10",
"output": "YES\n17 30.000000 14 40.000000 11 100.000000\n4 100.000000 8 20.000000 5 50.000000\n17 70.000000 7 100.000000\n9 20.000000 16 100.000000 5 50.000000\n3 40.000000 10 100.000000 2 30.000000\n12 90.000000 8 80.000000\n15 100.000000 6 10.000000 14 60.000000\n3 60.000000 12 10.000000 1 100.000000\n2 70.000000 13 100.000000\n9 80.000000 6 90.000000"
},
{
"input": "5 100 7",
"output": "NO"
}
] | 1,690,484,837
| 2,147,483,647
|
PyPy 3-64
|
WRONG_ANSWER
|
TESTS
| 0
| 31
| 0
|
print("_RANDOM_GUESS_1690484837.353048")# 1690484837.3530657
|
Title: none
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
Students love to celebrate their holidays. Especially if the holiday is the day of the end of exams!
Despite the fact that Igor K., unlike his groupmates, failed to pass a programming test, he decided to invite them to go to a cafe so that each of them could drink a bottle of... fresh cow milk. Having entered the cafe, the *m* friends found *n* different kinds of milk on the menu, that's why they ordered *n* bottles — one bottle of each kind. We know that the volume of milk in each bottle equals *w*.
When the bottles were brought in, they decided to pour all the milk evenly among the *m* cups, so that each got a cup. As a punishment for not passing the test Igor was appointed the person to pour the milk. He protested that he was afraid to mix something up and suggested to distribute the drink so that the milk from each bottle was in no more than two different cups. His friends agreed but they suddenly faced the following problem — and what is actually the way to do it?
Help them and write the program that will help to distribute the milk among the cups and drink it as quickly as possible!
Note that due to Igor K.'s perfectly accurate eye and unswerving hands, he can pour any fractional amount of milk from any bottle to any cup.
Input Specification:
The only input data file contains three integers *n*, *w* and *m* (1<=≤<=*n*<=≤<=50, 100<=≤<=*w*<=≤<=1000, 2<=≤<=*m*<=≤<=50), where *n* stands for the number of ordered bottles, *w* stands for the volume of each of them and *m* stands for the number of friends in the company.
Output Specification:
Print on the first line "YES" if it is possible to pour the milk so that the milk from each bottle was in no more than two different cups. If there's no solution, print "NO".
If there is a solution, then print *m* more lines, where the *i*-th of them describes the content of the *i*-th student's cup. The line should consist of one or more pairs that would look like "*b* *v*". Each such pair means that *v* (*v*<=><=0) units of milk were poured into the *i*-th cup from bottle *b* (1<=≤<=*b*<=≤<=*n*). All numbers *b* on each line should be different.
If there are several variants to solve the problem, print any of them. Print the real numbers with no less than 6 digits after the decimal point.
Demo Input:
['2 500 3\n', '4 100 5\n', '4 100 7\n', '5 500 2\n']
Demo Output:
['YES\n1 333.333333\n2 333.333333\n2 166.666667 1 166.666667\n', 'YES\n3 20.000000 4 60.000000\n1 80.000000\n4 40.000000 2 40.000000\n3 80.000000\n2 60.000000 1 20.000000\n', 'NO\n', 'YES\n4 250.000000 5 500.000000 2 500.000000\n3 500.000000 1 500.000000 4 250.000000\n']
Note:
none
|
```python
print("_RANDOM_GUESS_1690484837.353048")# 1690484837.3530657
```
| 0
|
|
868
|
B
|
Race Against Time
|
PROGRAMMING
| 1,400
|
[
"implementation"
] | null | null |
Have you ever tried to explain to the coordinator, why it is eight hours to the contest and not a single problem has been prepared yet? Misha had. And this time he has a really strong excuse: he faced a space-time paradox! Space and time replaced each other.
The entire universe turned into an enormous clock face with three hands — hour, minute, and second. Time froze, and clocks now show the time *h* hours, *m* minutes, *s* seconds.
Last time Misha talked with the coordinator at *t*1 o'clock, so now he stands on the number *t*1 on the clock face. The contest should be ready by *t*2 o'clock. In the terms of paradox it means that Misha has to go to number *t*2 somehow. Note that he doesn't have to move forward only: in these circumstances time has no direction.
Clock hands are very long, and Misha cannot get round them. He also cannot step over as it leads to the collapse of space-time. That is, if hour clock points 12 and Misha stands at 11 then he cannot move to 1 along the top arc. He has to follow all the way round the clock center (of course, if there are no other hands on his way).
Given the hands' positions, *t*1, and *t*2, find if Misha can prepare the contest on time (or should we say on space?). That is, find if he can move from *t*1 to *t*2 by the clock face.
|
Five integers *h*, *m*, *s*, *t*1, *t*2 (1<=≤<=*h*<=≤<=12, 0<=≤<=*m*,<=*s*<=≤<=59, 1<=≤<=*t*1,<=*t*2<=≤<=12, *t*1<=≠<=*t*2).
Misha's position and the target time do not coincide with the position of any hand.
|
Print "YES" (quotes for clarity), if Misha can prepare the contest on time, and "NO" otherwise.
You can print each character either upper- or lowercase ("YeS" and "yes" are valid when the answer is "YES").
|
[
"12 30 45 3 11\n",
"12 0 1 12 1\n",
"3 47 0 4 9\n"
] |
[
"NO\n",
"YES\n",
"YES\n"
] |
The three examples are shown on the pictures below from left to right. The starting position of Misha is shown with green, the ending position is shown with pink. Note that the positions of the hands on the pictures are not exact, but are close to the exact and the answer is the same.
| 500
|
[
{
"input": "12 30 45 3 11",
"output": "NO"
},
{
"input": "12 0 1 12 1",
"output": "YES"
},
{
"input": "3 47 0 4 9",
"output": "YES"
},
{
"input": "10 22 59 6 10",
"output": "YES"
},
{
"input": "3 1 13 12 3",
"output": "NO"
},
{
"input": "11 19 28 9 10",
"output": "YES"
},
{
"input": "9 38 22 6 1",
"output": "NO"
},
{
"input": "5 41 11 5 8",
"output": "NO"
},
{
"input": "11 2 53 10 4",
"output": "YES"
},
{
"input": "9 41 17 10 1",
"output": "YES"
},
{
"input": "6 54 48 12 6",
"output": "YES"
},
{
"input": "12 55 9 5 1",
"output": "NO"
},
{
"input": "8 55 35 9 3",
"output": "NO"
},
{
"input": "3 21 34 3 10",
"output": "YES"
},
{
"input": "2 52 1 12 3",
"output": "NO"
},
{
"input": "7 17 11 1 7",
"output": "NO"
},
{
"input": "11 6 37 6 4",
"output": "YES"
},
{
"input": "9 6 22 8 1",
"output": "NO"
},
{
"input": "3 10 5 5 9",
"output": "YES"
},
{
"input": "7 12 22 11 2",
"output": "YES"
},
{
"input": "7 19 4 7 3",
"output": "NO"
},
{
"input": "11 36 21 4 6",
"output": "NO"
},
{
"input": "10 32 49 1 3",
"output": "YES"
},
{
"input": "1 9 43 11 3",
"output": "NO"
},
{
"input": "1 8 33 4 8",
"output": "NO"
},
{
"input": "3 0 33 9 4",
"output": "NO"
},
{
"input": "7 15 9 10 3",
"output": "NO"
},
{
"input": "8 3 57 11 1",
"output": "NO"
},
{
"input": "1 33 49 5 9",
"output": "NO"
},
{
"input": "3 40 0 5 7",
"output": "YES"
},
{
"input": "5 50 9 2 7",
"output": "NO"
},
{
"input": "10 0 52 6 1",
"output": "YES"
},
{
"input": "3 10 4 1 11",
"output": "NO"
},
{
"input": "2 41 53 4 6",
"output": "YES"
},
{
"input": "10 29 30 4 7",
"output": "NO"
},
{
"input": "5 13 54 9 11",
"output": "NO"
},
{
"input": "1 0 23 3 9",
"output": "NO"
},
{
"input": "1 0 41 12 1",
"output": "NO"
},
{
"input": "6 30 30 3 9",
"output": "YES"
},
{
"input": "3 7 32 11 10",
"output": "YES"
},
{
"input": "1 0 25 12 4",
"output": "NO"
},
{
"input": "12 0 0 5 6",
"output": "YES"
},
{
"input": "1 5 4 3 2",
"output": "YES"
},
{
"input": "6 30 30 9 10",
"output": "YES"
},
{
"input": "6 0 0 2 8",
"output": "NO"
},
{
"input": "10 50 59 9 10",
"output": "YES"
},
{
"input": "12 59 59 12 6",
"output": "NO"
},
{
"input": "3 0 30 3 4",
"output": "NO"
},
{
"input": "2 10 10 1 11",
"output": "YES"
},
{
"input": "10 5 30 1 12",
"output": "YES"
},
{
"input": "5 29 31 5 10",
"output": "YES"
},
{
"input": "5 2 2 11 2",
"output": "NO"
},
{
"input": "5 15 46 3 10",
"output": "YES"
},
{
"input": "1 30 50 1 2",
"output": "NO"
},
{
"input": "5 26 14 1 12",
"output": "YES"
},
{
"input": "1 58 43 12 1",
"output": "YES"
},
{
"input": "12 0 12 11 1",
"output": "NO"
},
{
"input": "6 52 41 6 5",
"output": "YES"
},
{
"input": "5 8 2 1 3",
"output": "NO"
},
{
"input": "2 0 0 1 3",
"output": "NO"
},
{
"input": "1 5 6 2 1",
"output": "YES"
},
{
"input": "9 5 5 11 12",
"output": "YES"
},
{
"input": "12 5 19 3 4",
"output": "NO"
},
{
"input": "6 14 59 1 3",
"output": "NO"
},
{
"input": "10 38 34 4 12",
"output": "YES"
},
{
"input": "2 54 14 2 12",
"output": "YES"
},
{
"input": "5 31 0 6 7",
"output": "NO"
},
{
"input": "6 15 30 3 9",
"output": "YES"
},
{
"input": "3 54 41 8 10",
"output": "NO"
},
{
"input": "3 39 10 10 12",
"output": "YES"
},
{
"input": "1 11 50 1 2",
"output": "NO"
},
{
"input": "5 40 24 8 1",
"output": "NO"
},
{
"input": "9 5 59 1 3",
"output": "NO"
},
{
"input": "5 0 0 6 7",
"output": "YES"
},
{
"input": "4 40 59 6 8",
"output": "YES"
},
{
"input": "10 13 55 12 1",
"output": "YES"
},
{
"input": "6 50 0 5 6",
"output": "YES"
},
{
"input": "7 59 3 7 4",
"output": "YES"
},
{
"input": "6 0 1 6 7",
"output": "NO"
},
{
"input": "6 15 55 3 5",
"output": "NO"
},
{
"input": "12 9 55 10 2",
"output": "YES"
},
{
"input": "2 0 1 11 2",
"output": "NO"
},
{
"input": "8 45 17 12 9",
"output": "NO"
},
{
"input": "5 30 31 11 3",
"output": "YES"
},
{
"input": "6 43 0 10 6",
"output": "NO"
},
{
"input": "6 30 30 1 11",
"output": "YES"
},
{
"input": "11 59 59 11 12",
"output": "YES"
},
{
"input": "5 45 35 9 5",
"output": "NO"
},
{
"input": "2 43 4 9 7",
"output": "NO"
},
{
"input": "12 30 50 6 9",
"output": "NO"
},
{
"input": "1 10 1 2 3",
"output": "NO"
},
{
"input": "10 5 55 9 1",
"output": "NO"
},
{
"input": "1 59 59 2 3",
"output": "YES"
},
{
"input": "1 49 14 10 3",
"output": "NO"
},
{
"input": "3 15 15 2 4",
"output": "YES"
},
{
"input": "10 5 55 1 5",
"output": "NO"
},
{
"input": "6 33 45 12 6",
"output": "YES"
},
{
"input": "1 20 20 11 1",
"output": "YES"
},
{
"input": "2 30 45 1 11",
"output": "YES"
},
{
"input": "1 55 1 11 10",
"output": "YES"
},
{
"input": "3 0 1 11 1",
"output": "NO"
},
{
"input": "1 5 6 1 12",
"output": "YES"
},
{
"input": "12 10 5 11 4",
"output": "YES"
},
{
"input": "6 5 59 12 1",
"output": "YES"
},
{
"input": "12 0 20 11 12",
"output": "YES"
},
{
"input": "3 25 30 4 5",
"output": "YES"
},
{
"input": "2 15 18 11 1",
"output": "YES"
},
{
"input": "12 5 48 11 9",
"output": "NO"
},
{
"input": "6 30 30 10 2",
"output": "YES"
},
{
"input": "1 0 11 1 2",
"output": "NO"
},
{
"input": "10 0 1 10 11",
"output": "NO"
},
{
"input": "3 30 45 10 1",
"output": "YES"
},
{
"input": "11 21 56 3 12",
"output": "YES"
},
{
"input": "3 16 16 3 4",
"output": "YES"
},
{
"input": "11 55 55 1 12",
"output": "YES"
},
{
"input": "12 12 12 11 12",
"output": "YES"
},
{
"input": "3 5 1 1 2",
"output": "NO"
},
{
"input": "3 30 45 10 11",
"output": "YES"
},
{
"input": "10 0 1 9 10",
"output": "YES"
},
{
"input": "3 0 5 3 6",
"output": "NO"
},
{
"input": "1 1 49 1 10",
"output": "NO"
},
{
"input": "9 45 15 11 12",
"output": "YES"
},
{
"input": "12 15 59 3 8",
"output": "NO"
},
{
"input": "5 0 5 3 6",
"output": "NO"
},
{
"input": "3 30 45 1 2",
"output": "YES"
},
{
"input": "2 10 11 2 4",
"output": "YES"
},
{
"input": "2 10 10 4 3",
"output": "YES"
},
{
"input": "3 30 59 1 2",
"output": "YES"
},
{
"input": "11 59 59 12 11",
"output": "YES"
},
{
"input": "10 25 50 5 6",
"output": "NO"
},
{
"input": "6 30 30 9 3",
"output": "YES"
},
{
"input": "8 14 40 12 3",
"output": "NO"
},
{
"input": "2 10 10 1 6",
"output": "YES"
}
] | 1,680,693,514
| 2,147,483,647
|
PyPy 3-64
|
WRONG_ANSWER
|
TESTS
| 2
| 46
| 0
|
from math import ceil
from sys import stdin
def input(): return stdin.readline()[:-1]
h,m,s,t1,t2=map(int,input().split())
h=h+m/60
m=m/5
s=s/5
l=[h,m,s,t1,t2]
l.sort()
if l.index(t1)-l.index(t2)==1 or l.index(t1)-l.index(t2)==4:
print("YES")
else:
print("NO")
|
Title: Race Against Time
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
Have you ever tried to explain to the coordinator, why it is eight hours to the contest and not a single problem has been prepared yet? Misha had. And this time he has a really strong excuse: he faced a space-time paradox! Space and time replaced each other.
The entire universe turned into an enormous clock face with three hands — hour, minute, and second. Time froze, and clocks now show the time *h* hours, *m* minutes, *s* seconds.
Last time Misha talked with the coordinator at *t*1 o'clock, so now he stands on the number *t*1 on the clock face. The contest should be ready by *t*2 o'clock. In the terms of paradox it means that Misha has to go to number *t*2 somehow. Note that he doesn't have to move forward only: in these circumstances time has no direction.
Clock hands are very long, and Misha cannot get round them. He also cannot step over as it leads to the collapse of space-time. That is, if hour clock points 12 and Misha stands at 11 then he cannot move to 1 along the top arc. He has to follow all the way round the clock center (of course, if there are no other hands on his way).
Given the hands' positions, *t*1, and *t*2, find if Misha can prepare the contest on time (or should we say on space?). That is, find if he can move from *t*1 to *t*2 by the clock face.
Input Specification:
Five integers *h*, *m*, *s*, *t*1, *t*2 (1<=≤<=*h*<=≤<=12, 0<=≤<=*m*,<=*s*<=≤<=59, 1<=≤<=*t*1,<=*t*2<=≤<=12, *t*1<=≠<=*t*2).
Misha's position and the target time do not coincide with the position of any hand.
Output Specification:
Print "YES" (quotes for clarity), if Misha can prepare the contest on time, and "NO" otherwise.
You can print each character either upper- or lowercase ("YeS" and "yes" are valid when the answer is "YES").
Demo Input:
['12 30 45 3 11\n', '12 0 1 12 1\n', '3 47 0 4 9\n']
Demo Output:
['NO\n', 'YES\n', 'YES\n']
Note:
The three examples are shown on the pictures below from left to right. The starting position of Misha is shown with green, the ending position is shown with pink. Note that the positions of the hands on the pictures are not exact, but are close to the exact and the answer is the same.
|
```python
from math import ceil
from sys import stdin
def input(): return stdin.readline()[:-1]
h,m,s,t1,t2=map(int,input().split())
h=h+m/60
m=m/5
s=s/5
l=[h,m,s,t1,t2]
l.sort()
if l.index(t1)-l.index(t2)==1 or l.index(t1)-l.index(t2)==4:
print("YES")
else:
print("NO")
```
| 0
|
|
1,005
|
A
|
Tanya and Stairways
|
PROGRAMMING
| 800
|
[
"implementation"
] | null | null |
Little girl Tanya climbs the stairs inside a multi-storey building. Every time Tanya climbs a stairway, she starts counting steps from $1$ to the number of steps in this stairway. She speaks every number aloud. For example, if she climbs two stairways, the first of which contains $3$ steps, and the second contains $4$ steps, she will pronounce the numbers $1, 2, 3, 1, 2, 3, 4$.
You are given all the numbers pronounced by Tanya. How many stairways did she climb? Also, output the number of steps in each stairway.
The given sequence will be a valid sequence that Tanya could have pronounced when climbing one or more stairways.
|
The first line contains $n$ ($1 \le n \le 1000$) — the total number of numbers pronounced by Tanya.
The second line contains integers $a_1, a_2, \dots, a_n$ ($1 \le a_i \le 1000$) — all the numbers Tanya pronounced while climbing the stairs, in order from the first to the last pronounced number. Passing a stairway with $x$ steps, she will pronounce the numbers $1, 2, \dots, x$ in that order.
The given sequence will be a valid sequence that Tanya could have pronounced when climbing one or more stairways.
|
In the first line, output $t$ — the number of stairways that Tanya climbed. In the second line, output $t$ numbers — the number of steps in each stairway she climbed. Write the numbers in the correct order of passage of the stairways.
|
[
"7\n1 2 3 1 2 3 4\n",
"4\n1 1 1 1\n",
"5\n1 2 3 4 5\n",
"5\n1 2 1 2 1\n"
] |
[
"2\n3 4 ",
"4\n1 1 1 1 ",
"1\n5 ",
"3\n2 2 1 "
] |
none
| 0
|
[
{
"input": "7\n1 2 3 1 2 3 4",
"output": "2\n3 4 "
},
{
"input": "4\n1 1 1 1",
"output": "4\n1 1 1 1 "
},
{
"input": "5\n1 2 3 4 5",
"output": "1\n5 "
},
{
"input": "5\n1 2 1 2 1",
"output": "3\n2 2 1 "
},
{
"input": "1\n1",
"output": "1\n1 "
},
{
"input": "48\n1 2 3 4 1 2 3 1 1 2 3 1 2 3 4 1 1 2 3 4 1 2 3 4 1 2 3 4 1 1 2 1 2 1 2 1 1 2 1 2 1 2 3 1 2 1 2 1",
"output": "20\n4 3 1 3 4 1 4 4 4 1 2 2 2 1 2 2 3 2 2 1 "
},
{
"input": "2\n1 2",
"output": "1\n2 "
},
{
"input": "3\n1 1 2",
"output": "2\n1 2 "
},
{
"input": "4\n1 1 2 3",
"output": "2\n1 3 "
},
{
"input": "8\n1 2 3 1 2 3 4 5",
"output": "2\n3 5 "
},
{
"input": "5\n1 1 1 2 3",
"output": "3\n1 1 3 "
}
] | 1,692,620,944
| 2,147,483,647
|
Python 3
|
OK
|
TESTS
| 16
| 46
| 0
|
a = int(input())
b = list(map(int, input().split()))
print(b.count(1))
for i in range(a - 1):
if b[i + 1] == 1:
print(b[i], end=' ')
print(b[-1])
|
Title: Tanya and Stairways
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
Little girl Tanya climbs the stairs inside a multi-storey building. Every time Tanya climbs a stairway, she starts counting steps from $1$ to the number of steps in this stairway. She speaks every number aloud. For example, if she climbs two stairways, the first of which contains $3$ steps, and the second contains $4$ steps, she will pronounce the numbers $1, 2, 3, 1, 2, 3, 4$.
You are given all the numbers pronounced by Tanya. How many stairways did she climb? Also, output the number of steps in each stairway.
The given sequence will be a valid sequence that Tanya could have pronounced when climbing one or more stairways.
Input Specification:
The first line contains $n$ ($1 \le n \le 1000$) — the total number of numbers pronounced by Tanya.
The second line contains integers $a_1, a_2, \dots, a_n$ ($1 \le a_i \le 1000$) — all the numbers Tanya pronounced while climbing the stairs, in order from the first to the last pronounced number. Passing a stairway with $x$ steps, she will pronounce the numbers $1, 2, \dots, x$ in that order.
The given sequence will be a valid sequence that Tanya could have pronounced when climbing one or more stairways.
Output Specification:
In the first line, output $t$ — the number of stairways that Tanya climbed. In the second line, output $t$ numbers — the number of steps in each stairway she climbed. Write the numbers in the correct order of passage of the stairways.
Demo Input:
['7\n1 2 3 1 2 3 4\n', '4\n1 1 1 1\n', '5\n1 2 3 4 5\n', '5\n1 2 1 2 1\n']
Demo Output:
['2\n3 4 ', '4\n1 1 1 1 ', '1\n5 ', '3\n2 2 1 ']
Note:
none
|
```python
a = int(input())
b = list(map(int, input().split()))
print(b.count(1))
for i in range(a - 1):
if b[i + 1] == 1:
print(b[i], end=' ')
print(b[-1])
```
| 3
|
|
902
|
B
|
Coloring a Tree
|
PROGRAMMING
| 1,200
|
[
"dfs and similar",
"dsu",
"greedy"
] | null | null |
You are given a rooted tree with *n* vertices. The vertices are numbered from 1 to *n*, the root is the vertex number 1.
Each vertex has a color, let's denote the color of vertex *v* by *c**v*. Initially *c**v*<==<=0.
You have to color the tree into the given colors using the smallest possible number of steps. On each step you can choose a vertex *v* and a color *x*, and then color all vectices in the subtree of *v* (including *v* itself) in color *x*. In other words, for every vertex *u*, such that the path from root to *u* passes through *v*, set *c**u*<==<=*x*.
It is guaranteed that you have to color each vertex in a color different from 0.
You can learn what a rooted tree is using the link: [https://en.wikipedia.org/wiki/Tree_(graph_theory)](https://en.wikipedia.org/wiki/Tree_(graph_theory)).
|
The first line contains a single integer *n* (2<=≤<=*n*<=≤<=104) — the number of vertices in the tree.
The second line contains *n*<=-<=1 integers *p*2,<=*p*3,<=...,<=*p**n* (1<=≤<=*p**i*<=<<=*i*), where *p**i* means that there is an edge between vertices *i* and *p**i*.
The third line contains *n* integers *c*1,<=*c*2,<=...,<=*c**n* (1<=≤<=*c**i*<=≤<=*n*), where *c**i* is the color you should color the *i*-th vertex into.
It is guaranteed that the given graph is a tree.
|
Print a single integer — the minimum number of steps you have to perform to color the tree into given colors.
|
[
"6\n1 2 2 1 5\n2 1 1 1 1 1\n",
"7\n1 1 2 3 1 4\n3 3 1 1 1 2 3\n"
] |
[
"3\n",
"5\n"
] |
The tree from the first sample is shown on the picture (numbers are vetices' indices):
<img class="tex-graphics" src="https://espresso.codeforces.com/10324ccdc37f95343acc4f3c6050d8c334334ffa.png" style="max-width: 100.0%;max-height: 100.0%;"/>
On first step we color all vertices in the subtree of vertex 1 into color 2 (numbers are colors):
<img class="tex-graphics" src="https://espresso.codeforces.com/1c7bb267e2c1a006132248a43121400189309e2f.png" style="max-width: 100.0%;max-height: 100.0%;"/>
On seond step we color all vertices in the subtree of vertex 5 into color 1:
<img class="tex-graphics" src="https://espresso.codeforces.com/2201a6d49b89ba850ff0d0bdcbb3f8e9dd3871a8.png" style="max-width: 100.0%;max-height: 100.0%;"/>
On third step we color all vertices in the subtree of vertex 2 into color 1:
<img class="tex-graphics" src="https://espresso.codeforces.com/6fa977fcdebdde94c47695151e0427b33d0102c5.png" style="max-width: 100.0%;max-height: 100.0%;"/>
The tree from the second sample is shown on the picture (numbers are vetices' indices):
<img class="tex-graphics" src="https://espresso.codeforces.com/d70f9ae72a2ed429dd6531cac757e375dd3c953d.png" style="max-width: 100.0%;max-height: 100.0%;"/>
On first step we color all vertices in the subtree of vertex 1 into color 3 (numbers are colors):
<img class="tex-graphics" src="https://espresso.codeforces.com/7289e8895d0dd56c47b6b17969b9cf77b36786b5.png" style="max-width: 100.0%;max-height: 100.0%;"/>
On second step we color all vertices in the subtree of vertex 3 into color 1:
<img class="tex-graphics" src="https://espresso.codeforces.com/819001df7229138db3a407713744d1e3be88b64e.png" style="max-width: 100.0%;max-height: 100.0%;"/>
On third step we color all vertices in the subtree of vertex 6 into color 2:
<img class="tex-graphics" src="https://espresso.codeforces.com/80ebbd870a0a339636a21b9acdaf9de046458b43.png" style="max-width: 100.0%;max-height: 100.0%;"/>
On fourth step we color all vertices in the subtree of vertex 4 into color 1:
<img class="tex-graphics" src="https://espresso.codeforces.com/ed836aa723ac0176abde4e32988e3ac205014e93.png" style="max-width: 100.0%;max-height: 100.0%;"/>
On fith step we color all vertices in the subtree of vertex 7 into color 3:
<img class="tex-graphics" src="https://espresso.codeforces.com/8132909e11b41c27b8df2f0b0c10bc841f35e58a.png" style="max-width: 100.0%;max-height: 100.0%;"/>
| 1,000
|
[
{
"input": "6\n1 2 2 1 5\n2 1 1 1 1 1",
"output": "3"
},
{
"input": "7\n1 1 2 3 1 4\n3 3 1 1 1 2 3",
"output": "5"
},
{
"input": "2\n1\n2 2",
"output": "1"
},
{
"input": "3\n1 1\n2 2 2",
"output": "1"
},
{
"input": "4\n1 2 1\n1 2 3 4",
"output": "4"
},
{
"input": "4\n1 2 3\n4 1 2 4",
"output": "4"
},
{
"input": "5\n1 2 1 4\n1 1 1 2 2",
"output": "2"
},
{
"input": "3\n1 2\n2 1 1",
"output": "2"
},
{
"input": "4\n1 1 1\n3 1 3 1",
"output": "3"
},
{
"input": "4\n1 1 2\n4 1 4 1",
"output": "2"
},
{
"input": "4\n1 2 2\n3 1 2 3",
"output": "4"
},
{
"input": "3\n1 1\n1 2 2",
"output": "3"
}
] | 1,693,200,374
| 2,147,483,647
|
Python 3
|
TIME_LIMIT_EXCEEDED
|
TESTS
| 17
| 1,000
| 6,348,800
|
import sys
sys.setrecursionlimit(100000)
def func(d,node,color,color_scheme):
if color_scheme.get(node,-1)==color:
return
color_scheme[node]=color
for i in d[node]:
func(d,i,color,color_scheme)
n=int(input())
ls=list(map(int,input().split()))
d={}
color_scheme={}
for i in range(1,n+1):
d[i]=[]
color_scheme[i]=[0]
for i in range(len(ls)):
d[ls[i]].append(i+2)
colors=list(map(int,input().split()))
count=0
for i in range(1,len(colors)+1):
if color_scheme.get(i,-1)!=colors[i-1]:
func(d,i,colors[i-1],color_scheme)
count+=1
print(count)
|
Title: Coloring a Tree
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
You are given a rooted tree with *n* vertices. The vertices are numbered from 1 to *n*, the root is the vertex number 1.
Each vertex has a color, let's denote the color of vertex *v* by *c**v*. Initially *c**v*<==<=0.
You have to color the tree into the given colors using the smallest possible number of steps. On each step you can choose a vertex *v* and a color *x*, and then color all vectices in the subtree of *v* (including *v* itself) in color *x*. In other words, for every vertex *u*, such that the path from root to *u* passes through *v*, set *c**u*<==<=*x*.
It is guaranteed that you have to color each vertex in a color different from 0.
You can learn what a rooted tree is using the link: [https://en.wikipedia.org/wiki/Tree_(graph_theory)](https://en.wikipedia.org/wiki/Tree_(graph_theory)).
Input Specification:
The first line contains a single integer *n* (2<=≤<=*n*<=≤<=104) — the number of vertices in the tree.
The second line contains *n*<=-<=1 integers *p*2,<=*p*3,<=...,<=*p**n* (1<=≤<=*p**i*<=<<=*i*), where *p**i* means that there is an edge between vertices *i* and *p**i*.
The third line contains *n* integers *c*1,<=*c*2,<=...,<=*c**n* (1<=≤<=*c**i*<=≤<=*n*), where *c**i* is the color you should color the *i*-th vertex into.
It is guaranteed that the given graph is a tree.
Output Specification:
Print a single integer — the minimum number of steps you have to perform to color the tree into given colors.
Demo Input:
['6\n1 2 2 1 5\n2 1 1 1 1 1\n', '7\n1 1 2 3 1 4\n3 3 1 1 1 2 3\n']
Demo Output:
['3\n', '5\n']
Note:
The tree from the first sample is shown on the picture (numbers are vetices' indices):
<img class="tex-graphics" src="https://espresso.codeforces.com/10324ccdc37f95343acc4f3c6050d8c334334ffa.png" style="max-width: 100.0%;max-height: 100.0%;"/>
On first step we color all vertices in the subtree of vertex 1 into color 2 (numbers are colors):
<img class="tex-graphics" src="https://espresso.codeforces.com/1c7bb267e2c1a006132248a43121400189309e2f.png" style="max-width: 100.0%;max-height: 100.0%;"/>
On seond step we color all vertices in the subtree of vertex 5 into color 1:
<img class="tex-graphics" src="https://espresso.codeforces.com/2201a6d49b89ba850ff0d0bdcbb3f8e9dd3871a8.png" style="max-width: 100.0%;max-height: 100.0%;"/>
On third step we color all vertices in the subtree of vertex 2 into color 1:
<img class="tex-graphics" src="https://espresso.codeforces.com/6fa977fcdebdde94c47695151e0427b33d0102c5.png" style="max-width: 100.0%;max-height: 100.0%;"/>
The tree from the second sample is shown on the picture (numbers are vetices' indices):
<img class="tex-graphics" src="https://espresso.codeforces.com/d70f9ae72a2ed429dd6531cac757e375dd3c953d.png" style="max-width: 100.0%;max-height: 100.0%;"/>
On first step we color all vertices in the subtree of vertex 1 into color 3 (numbers are colors):
<img class="tex-graphics" src="https://espresso.codeforces.com/7289e8895d0dd56c47b6b17969b9cf77b36786b5.png" style="max-width: 100.0%;max-height: 100.0%;"/>
On second step we color all vertices in the subtree of vertex 3 into color 1:
<img class="tex-graphics" src="https://espresso.codeforces.com/819001df7229138db3a407713744d1e3be88b64e.png" style="max-width: 100.0%;max-height: 100.0%;"/>
On third step we color all vertices in the subtree of vertex 6 into color 2:
<img class="tex-graphics" src="https://espresso.codeforces.com/80ebbd870a0a339636a21b9acdaf9de046458b43.png" style="max-width: 100.0%;max-height: 100.0%;"/>
On fourth step we color all vertices in the subtree of vertex 4 into color 1:
<img class="tex-graphics" src="https://espresso.codeforces.com/ed836aa723ac0176abde4e32988e3ac205014e93.png" style="max-width: 100.0%;max-height: 100.0%;"/>
On fith step we color all vertices in the subtree of vertex 7 into color 3:
<img class="tex-graphics" src="https://espresso.codeforces.com/8132909e11b41c27b8df2f0b0c10bc841f35e58a.png" style="max-width: 100.0%;max-height: 100.0%;"/>
|
```python
import sys
sys.setrecursionlimit(100000)
def func(d,node,color,color_scheme):
if color_scheme.get(node,-1)==color:
return
color_scheme[node]=color
for i in d[node]:
func(d,i,color,color_scheme)
n=int(input())
ls=list(map(int,input().split()))
d={}
color_scheme={}
for i in range(1,n+1):
d[i]=[]
color_scheme[i]=[0]
for i in range(len(ls)):
d[ls[i]].append(i+2)
colors=list(map(int,input().split()))
count=0
for i in range(1,len(colors)+1):
if color_scheme.get(i,-1)!=colors[i-1]:
func(d,i,colors[i-1],color_scheme)
count+=1
print(count)
```
| 0
|
|
362
|
B
|
Petya and Staircases
|
PROGRAMMING
| 1,100
|
[
"implementation",
"sortings"
] | null | null |
Little boy Petya loves stairs very much. But he is bored from simple going up and down them — he loves jumping over several stairs at a time. As he stands on some stair, he can either jump to the next one or jump over one or two stairs at a time. But some stairs are too dirty and Petya doesn't want to step on them.
Now Petya is on the first stair of the staircase, consisting of *n* stairs. He also knows the numbers of the dirty stairs of this staircase. Help Petya find out if he can jump through the entire staircase and reach the last stair number *n* without touching a dirty stair once.
One has to note that anyway Petya should step on the first and last stairs, so if the first or the last stair is dirty, then Petya cannot choose a path with clean steps only.
|
The first line contains two integers *n* and *m* (1<=≤<=*n*<=≤<=109, 0<=≤<=*m*<=≤<=3000) — the number of stairs in the staircase and the number of dirty stairs, correspondingly. The second line contains *m* different space-separated integers *d*1,<=*d*2,<=...,<=*d**m* (1<=≤<=*d**i*<=≤<=*n*) — the numbers of the dirty stairs (in an arbitrary order).
|
Print "YES" if Petya can reach stair number *n*, stepping only on the clean stairs. Otherwise print "NO".
|
[
"10 5\n2 4 8 3 6\n",
"10 5\n2 4 5 7 9\n"
] |
[
"NO",
"YES"
] |
none
| 500
|
[
{
"input": "10 5\n2 4 8 3 6",
"output": "NO"
},
{
"input": "10 5\n2 4 5 7 9",
"output": "YES"
},
{
"input": "10 9\n2 3 4 5 6 7 8 9 10",
"output": "NO"
},
{
"input": "5 2\n4 5",
"output": "NO"
},
{
"input": "123 13\n36 73 111 2 92 5 47 55 48 113 7 78 37",
"output": "YES"
},
{
"input": "10 10\n7 6 4 2 5 10 8 3 9 1",
"output": "NO"
},
{
"input": "12312 0",
"output": "YES"
},
{
"input": "9817239 1\n6323187",
"output": "YES"
},
{
"input": "1 1\n1",
"output": "NO"
},
{
"input": "5 4\n4 2 5 1",
"output": "NO"
},
{
"input": "5 3\n4 3 5",
"output": "NO"
},
{
"input": "500 3\n18 62 445",
"output": "YES"
},
{
"input": "500 50\n72 474 467 241 442 437 336 234 410 120 438 164 405 177 142 114 27 20 445 235 46 176 88 488 242 391 28 414 145 92 206 334 152 343 367 254 100 243 155 348 148 450 461 483 97 34 471 69 416 362",
"output": "NO"
},
{
"input": "500 8\n365 313 338 410 482 417 325 384",
"output": "YES"
},
{
"input": "1000000000 10\n2 3 5 6 8 9 123 874 1230 1000000000",
"output": "NO"
},
{
"input": "1000000000 10\n1 2 3 5 6 8 9 123 874 1230",
"output": "NO"
},
{
"input": "10 1\n1",
"output": "NO"
},
{
"input": "10 4\n1 2 4 5",
"output": "NO"
},
{
"input": "50 20\n22 33 17 23 27 5 26 31 41 20 8 24 6 3 4 29 40 25 13 16",
"output": "NO"
},
{
"input": "50 40\n14 27 19 30 31 20 28 11 37 29 23 33 7 26 22 16 1 6 18 3 47 36 38 2 48 9 41 8 5 50 4 45 44 25 39 12 43 42 40 46",
"output": "NO"
},
{
"input": "123 12\n35 95 47 99 79 122 58 94 31 57 18 10",
"output": "YES"
},
{
"input": "10 5\n1 3 5 7 9",
"output": "NO"
},
{
"input": "100 7\n2 3 5 6 8 9 100",
"output": "NO"
},
{
"input": "100 3\n98 99 100",
"output": "NO"
},
{
"input": "100 3\n97 98 99",
"output": "NO"
},
{
"input": "100 3\n96 98 99",
"output": "YES"
},
{
"input": "10 6\n2 3 5 6 8 9",
"output": "YES"
},
{
"input": "1000000000 10\n2 4 10 18 40 42 49 58 59 60",
"output": "NO"
},
{
"input": "10 3\n1 4 6",
"output": "NO"
},
{
"input": "8 3\n2 3 4",
"output": "NO"
},
{
"input": "100 3\n4 5 6",
"output": "NO"
},
{
"input": "10 2\n10 1",
"output": "NO"
},
{
"input": "10 1\n10",
"output": "NO"
},
{
"input": "4 2\n2 3",
"output": "YES"
},
{
"input": "2 1\n1",
"output": "NO"
},
{
"input": "2 0",
"output": "YES"
},
{
"input": "4 3\n2 3 4",
"output": "NO"
},
{
"input": "5 3\n4 2 3",
"output": "NO"
}
] | 1,628,502,373
| 2,147,483,647
|
PyPy 3
|
RUNTIME_ERROR
|
TESTS
| 7
| 108
| 22,220,800
|
def solve(n,m,arr):
if m==0:
return "YES"
arr.sort()
if arr[0]==1 or arr[m-1]==n:
return "NO"
for i in range(0,m-3):
if arr[i+1]-arr[i]==1:
if arr[i+2]-arr[i+1]==1:
return "NO"
return "YES"
n,m=map(int,input().split())
arr=list(map(int,input().split()))
print(solve(n,m,arr))
|
Title: Petya and Staircases
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
Little boy Petya loves stairs very much. But he is bored from simple going up and down them — he loves jumping over several stairs at a time. As he stands on some stair, he can either jump to the next one or jump over one or two stairs at a time. But some stairs are too dirty and Petya doesn't want to step on them.
Now Petya is on the first stair of the staircase, consisting of *n* stairs. He also knows the numbers of the dirty stairs of this staircase. Help Petya find out if he can jump through the entire staircase and reach the last stair number *n* without touching a dirty stair once.
One has to note that anyway Petya should step on the first and last stairs, so if the first or the last stair is dirty, then Petya cannot choose a path with clean steps only.
Input Specification:
The first line contains two integers *n* and *m* (1<=≤<=*n*<=≤<=109, 0<=≤<=*m*<=≤<=3000) — the number of stairs in the staircase and the number of dirty stairs, correspondingly. The second line contains *m* different space-separated integers *d*1,<=*d*2,<=...,<=*d**m* (1<=≤<=*d**i*<=≤<=*n*) — the numbers of the dirty stairs (in an arbitrary order).
Output Specification:
Print "YES" if Petya can reach stair number *n*, stepping only on the clean stairs. Otherwise print "NO".
Demo Input:
['10 5\n2 4 8 3 6\n', '10 5\n2 4 5 7 9\n']
Demo Output:
['NO', 'YES']
Note:
none
|
```python
def solve(n,m,arr):
if m==0:
return "YES"
arr.sort()
if arr[0]==1 or arr[m-1]==n:
return "NO"
for i in range(0,m-3):
if arr[i+1]-arr[i]==1:
if arr[i+2]-arr[i+1]==1:
return "NO"
return "YES"
n,m=map(int,input().split())
arr=list(map(int,input().split()))
print(solve(n,m,arr))
```
| -1
|
|
141
|
A
|
Amusing Joke
|
PROGRAMMING
| 800
|
[
"implementation",
"sortings",
"strings"
] | null | null |
So, the New Year holidays are over. Santa Claus and his colleagues can take a rest and have guests at last. When two "New Year and Christmas Men" meet, thear assistants cut out of cardboard the letters from the guest's name and the host's name in honor of this event. Then the hung the letters above the main entrance. One night, when everyone went to bed, someone took all the letters of our characters' names. Then he may have shuffled the letters and put them in one pile in front of the door.
The next morning it was impossible to find the culprit who had made the disorder. But everybody wondered whether it is possible to restore the names of the host and his guests from the letters lying at the door? That is, we need to verify that there are no extra letters, and that nobody will need to cut more letters.
Help the "New Year and Christmas Men" and their friends to cope with this problem. You are given both inscriptions that hung over the front door the previous night, and a pile of letters that were found at the front door next morning.
|
The input file consists of three lines: the first line contains the guest's name, the second line contains the name of the residence host and the third line contains letters in a pile that were found at the door in the morning. All lines are not empty and contain only uppercase Latin letters. The length of each line does not exceed 100.
|
Print "YES" without the quotes, if the letters in the pile could be permuted to make the names of the "New Year and Christmas Men". Otherwise, print "NO" without the quotes.
|
[
"SANTACLAUS\nDEDMOROZ\nSANTAMOROZDEDCLAUS\n",
"PAPAINOEL\nJOULUPUKKI\nJOULNAPAOILELUPUKKI\n",
"BABBONATALE\nFATHERCHRISTMAS\nBABCHRISTMASBONATALLEFATHER\n"
] |
[
"YES\n",
"NO\n",
"NO\n"
] |
In the first sample the letters written in the last line can be used to write the names and there won't be any extra letters left.
In the second sample letter "P" is missing from the pile and there's an extra letter "L".
In the third sample there's an extra letter "L".
| 500
|
[
{
"input": "SANTACLAUS\nDEDMOROZ\nSANTAMOROZDEDCLAUS",
"output": "YES"
},
{
"input": "PAPAINOEL\nJOULUPUKKI\nJOULNAPAOILELUPUKKI",
"output": "NO"
},
{
"input": "BABBONATALE\nFATHERCHRISTMAS\nBABCHRISTMASBONATALLEFATHER",
"output": "NO"
},
{
"input": "B\nA\nAB",
"output": "YES"
},
{
"input": "ONDOL\nJNPB\nONLNJBODP",
"output": "YES"
},
{
"input": "Y\nW\nYW",
"output": "YES"
},
{
"input": "OI\nM\nIMO",
"output": "YES"
},
{
"input": "VFQRWWWACX\nGHZJPOQUSXRAQDGOGMR\nOPAWDOUSGWWCGQXXQAZJRQRGHRMVF",
"output": "YES"
},
{
"input": "JUTCN\nPIGMZOPMEUFADQBW\nNWQGZMAIPUPOMCDUB",
"output": "NO"
},
{
"input": "Z\nO\nZOCNDOLTBZKQLTBOLDEGXRHZGTTPBJBLSJCVSVXISQZCSFDEBXRCSGBGTHWOVIXYHACAGBRYBKBJAEPIQZHVEGLYH",
"output": "NO"
},
{
"input": "IQ\nOQ\nQOQIGGKFNHJSGCGM",
"output": "NO"
},
{
"input": "ROUWANOPNIGTVMIITVMZ\nOQTUPZMTKUGY\nVTVNGZITGPUNPMQOOATUUIYIWMMKZOTR",
"output": "YES"
},
{
"input": "OVQELLOGFIOLEHXMEMBJDIGBPGEYFG\nJNKFPFFIJOFHRIFHXEWYZOPDJBZTJZKBWQTECNHRFSJPJOAPQT\nYAIPFFFEXJJNEJPLREIGODEGQZVMCOBDFKWTMWJSBEBTOFFQOHIQJLHFNXIGOHEZRZLFOKJBJPTPHPGY",
"output": "YES"
},
{
"input": "NBJGVNGUISUXQTBOBKYHQCOOVQWUXWPXBUDLXPKX\nNSFQDFUMQDQWQ\nWXKKVNTDQQFXCUQBIMQGQHSLVGWSBFYBUPOWPBDUUJUXQNOQDNXOX",
"output": "YES"
},
{
"input": "IJHHGKCXWDBRWJUPRDBZJLNTTNWKXLUGJSBWBOAUKWRAQWGFNL\nNJMWRMBCNPHXTDQQNZ\nWDNJRCLILNQRHWBANLTXWMJBPKUPGKJDJZAQWKTZFBRCTXHHBNXRGUQUNBNMWODGSJWW",
"output": "YES"
},
{
"input": "SRROWANGUGZHCIEFYMQVTWVOMDWPUZJFRDUMVFHYNHNTTGNXCJ\nDJYWGLBFCCECXFHOLORDGDCNRHPWXNHXFCXQCEZUHRRNAEKUIX\nWCUJDNYHNHYOPWMHLDCDYRWBVOGHFFUKOZTXJRXJHRGWICCMRNEVNEGQWTZPNFCSHDRFCFQDCXMHTLUGZAXOFNXNVGUEXIACRERU",
"output": "YES"
},
{
"input": "H\nJKFGHMIAHNDBMFXWYQLZRSVNOTEGCQSVUBYUOZBTNKTXPFQDCMKAGFITEUGOYDFIYQIORMFJEOJDNTFVIQEBICSNGKOSNLNXJWC\nBQSVDOGIHCHXSYNYTQFCHNJGYFIXTSOQINZOKSVQJMTKNTGFNXAVTUYEONMBQMGJLEWJOFGEARIOPKFUFCEMUBRBDNIIDFZDCLWK",
"output": "YES"
},
{
"input": "DSWNZRFVXQ\nPVULCZGOOU\nUOLVZXNUPOQRZGWFVDSCANQTCLEIE",
"output": "NO"
},
{
"input": "EUHTSCENIPXLTSBMLFHD\nIZAVSZPDLXOAGESUSE\nLXAELAZ",
"output": "NO"
},
{
"input": "WYSJFEREGELSKRQRXDXCGBODEFZVSI\nPEJKMGFLBFFDWRCRFSHVEFLEBTJCVCHRJTLDTISHPOGFWPLEWNYJLMXWIAOTYOXMV\nHXERTZWLEXTPIOTFRVMEJVYFFJLRPFMXDEBNSGCEOFFCWTKIDDGCFYSJKGLHBORWEPLDRXRSJYBGASSVCMHEEJFLVI",
"output": "NO"
},
{
"input": "EPBMDIUQAAUGLBIETKOKFLMTCVEPETWJRHHYKCKU\nHGMAETVPCFZYNNKDQXVXUALHYLOTCHM\nECGXACVKEYMCEDOTMKAUFHLHOMT",
"output": "NO"
},
{
"input": "NUBKQEJHALANSHEIFUZHYEZKKDRFHQKAJHLAOWTZIMOCWOVVDW\nEFVOBIGAUAUSQGVSNBKNOBDMINODMFSHDL\nKLAMKNTHBFFOHVKWICHBKNDDQNEISODUSDNLUSIOAVWY",
"output": "NO"
},
{
"input": "VXINHOMEQCATZUGAJEIUIZZLPYFGUTVLNBNWCUVMEENUXKBWBGZTMRJJVJDLVSLBABVCEUDDSQFHOYPYQTWVAGTWOLKYISAGHBMC\nZMRGXPZSHOGCSAECAPGVOIGCWEOWWOJXLGYRDMPXBLOKZVRACPYQLEQGFQCVYXAGBEBELUTDAYEAGPFKXRULZCKFHZCHVCWIRGPK\nRCVUXGQVNWFGRUDLLENNDQEJHYYVWMKTLOVIPELKPWCLSQPTAXAYEMGWCBXEVAIZGGDDRBRT",
"output": "NO"
},
{
"input": "PHBDHHWUUTZAHELGSGGOPOQXSXEZIXHZTOKYFBQLBDYWPVCNQSXHEAXRRPVHFJBVBYCJIFOTQTWSUOWXLKMVJJBNLGTVITWTCZZ\nFUPDLNVIHRWTEEEHOOEC\nLOUSUUSZCHJBPEWIILUOXEXRQNCJEGTOBRVZLTTZAHTKVEJSNGHFTAYGY",
"output": "NO"
},
{
"input": "GDSLNIIKTO\nJF\nPDQYFKDTNOLI",
"output": "NO"
},
{
"input": "AHOKHEKKPJLJIIWJRCGY\nORELJCSIX\nZVWPXVFWFSWOXXLIHJKPXIOKRELYE",
"output": "NO"
},
{
"input": "ZWCOJFORBPHXCOVJIDPKVECMHVHCOC\nTEV\nJVGTBFTLFVIEPCCHODOFOMCVZHWXVCPEH",
"output": "NO"
},
{
"input": "AGFIGYWJLVMYZGNQHEHWKJIAWBPUAQFERMCDROFN\nPMJNHMVNRGCYZAVRWNDSMLSZHFNYIUWFPUSKKIGU\nMCDVPPRXGUAYLSDRHRURZASXUWZSIIEZCPXUVEONKNGNWRYGOSFMCKESMVJZHWWUCHWDQMLASLNNMHAU",
"output": "NO"
},
{
"input": "XLOWVFCZSSXCSYQTIIDKHNTKNKEEDFMDZKXSPVLBIDIREDUAIN\nZKIWNDGBISDB\nSLPKLYFYSRNRMOSWYLJJDGFFENPOXYLPZFTQDANKBDNZDIIEWSUTTKYBKVICLG",
"output": "NO"
},
{
"input": "PMUKBTRKFIAYVGBKHZHUSJYSSEPEOEWPOSPJLWLOCTUYZODLTUAFCMVKGQKRRUSOMPAYOTBTFPXYAZXLOADDEJBDLYOTXJCJYTHA\nTWRRAJLCQJTKOKWCGUH\nEWDPNXVCXWCDQCOYKKSOYTFSZTOOPKPRDKFJDETKSRAJRVCPDOBWUGPYRJPUWJYWCBLKOOTUPBESTOFXZHTYLLMCAXDYAEBUTAHM",
"output": "NO"
},
{
"input": "QMIMGQRQDMJDPNFEFXSXQMCHEJKTWCTCVZPUAYICOIRYOWKUSIWXJLHDYWSBOITHTMINXFKBKAWZTXXBJIVYCRWKXNKIYKLDDXL\nV\nFWACCXBVDOJFIUAVYRALBYJKXXWIIFORRUHKHCXLDBZMXIYJWISFEAWTIQFIZSBXMKNOCQKVKRWDNDAMQSTKYLDNYVTUCGOJXJTW",
"output": "NO"
},
{
"input": "XJXPVOOQODELPPWUISSYVVXRJTYBPDHJNENQEVQNVFIXSESKXVYPVVHPMOSX\nLEXOPFPVPSZK\nZVXVPYEYOYXVOISVLXPOVHEQVXPNQJIOPFDTXEUNMPEPPHELNXKKWSVSOXSBPSJDPVJVSRFQ",
"output": "YES"
},
{
"input": "OSKFHGYNQLSRFSAHPXKGPXUHXTRBJNAQRBSSWJVEENLJCDDHFXVCUNPZAIVVO\nFNUOCXAGRRHNDJAHVVLGGEZQHWARYHENBKHP\nUOEFNWVXCUNERLKVTHAGPSHKHDYFPYWZHJKHQLSNFBJHVJANRXCNSDUGVDABGHVAOVHBJZXGRACHRXEGNRPQEAPORQSILNXFS",
"output": "YES"
},
{
"input": "VYXYVVACMLPDHONBUTQFZTRREERBLKUJYKAHZRCTRLRCLOZYWVPBRGDQPFPQIF\nFE\nRNRPEVDRLYUQFYRZBCQLCYZEABKLRXCJLKVZBVFUEYRATOMDRTHFPGOWQVTIFPPH",
"output": "YES"
},
{
"input": "WYXUZQJQNLASEGLHPMSARWMTTQMQLVAZLGHPIZTRVTCXDXBOLNXZPOFCTEHCXBZ\nBLQZRRWP\nGIQZXPLTTMNHQVWPPEAPLOCDMBSTHRCFLCQRRZXLVAOQEGZBRUZJXXZTMAWLZHSLWNQTYXB",
"output": "YES"
},
{
"input": "MKVJTSSTDGKPVVDPYSRJJYEVGKBMSIOKHLZQAEWLRIBINVRDAJIBCEITKDHUCCVY\nPUJJQFHOGZKTAVNUGKQUHMKTNHCCTI\nQVJKUSIGTSVYUMOMLEGHWYKSKQTGATTKBNTKCJKJPCAIRJIRMHKBIZISEGFHVUVQZBDERJCVAKDLNTHUDCHONDCVVJIYPP",
"output": "YES"
},
{
"input": "OKNJOEYVMZXJMLVJHCSPLUCNYGTDASKSGKKCRVIDGEIBEWRVBVRVZZTLMCJLXHJIA\nDJBFVRTARTFZOWN\nAGHNVUNJVCPLWSVYBJKZSVTFGLELZASLWTIXDDJXCZDICTVIJOTMVEYOVRNMJGRKKHRMEBORAKFCZJBR",
"output": "YES"
},
{
"input": "OQZACLPSAGYDWHFXDFYFRRXWGIEJGSXWUONAFWNFXDTGVNDEWNQPHUXUJNZWWLBPYL\nOHBKWRFDRQUAFRCMT\nWIQRYXRJQWWRUWCYXNXALKFZGXFTLOODWRDPGURFUFUQOHPWBASZNVWXNCAGHWEHFYESJNFBMNFDDAPLDGT",
"output": "YES"
},
{
"input": "OVIRQRFQOOWVDEPLCJETWQSINIOPLTLXHSQWUYUJNFBMKDNOSHNJQQCDHZOJVPRYVSV\nMYYDQKOOYPOOUELCRIT\nNZSOTVLJTTVQLFHDQEJONEOUOFOLYVSOIYUDNOSIQVIRMVOERCLMYSHPCQKIDRDOQPCUPQBWWRYYOXJWJQPNKH",
"output": "YES"
},
{
"input": "WGMBZWNMSJXNGDUQUJTCNXDSJJLYRDOPEGPQXYUGBESDLFTJRZDDCAAFGCOCYCQMDBWK\nYOBMOVYTUATTFGJLYUQD\nDYXVTLQCYFJUNJTUXPUYOPCBCLBWNSDUJRJGWDOJDSQAAMUOJWSYERDYDXYTMTOTMQCGQZDCGNFBALGGDFKZMEBG",
"output": "YES"
},
{
"input": "CWLRBPMEZCXAPUUQFXCUHAQTLPBTXUUKWVXKBHKNSSJFEXLZMXGVFHHVTPYAQYTIKXJJE\nMUFOSEUEXEQTOVLGDSCWM\nJUKEQCXOXWEHCGKFPBIGMWVJLXUONFXBYTUAXERYTXKCESKLXAEHVPZMMUFTHLXTTZSDMBJLQPEUWCVUHSQQVUASPF",
"output": "YES"
},
{
"input": "IDQRX\nWETHO\nODPDGBHVUVSSISROHQJTUKPUCLXABIZQQPPBPKOSEWGEHRSRRNBAVLYEMZISMWWGKHVTXKUGUXEFBSWOIWUHRJGMWBMHQLDZHBWA",
"output": "NO"
},
{
"input": "IXFDY\nJRMOU\nDF",
"output": "NO"
},
{
"input": "JPSPZ\nUGCUB\nJMZZZZZZZZ",
"output": "NO"
},
{
"input": "AC\nA\nBBA",
"output": "NO"
},
{
"input": "UIKWWKXLSHTOOZOVGXKYSOJEHAUEEG\nKZXQDWJJWRXFHKJDQHJK\nXMZHTFOGEXAUJXXJUYVJIFOTKLZHDKELJWERHMGAWGKWAQKEKHIDWGGZVYOHKXRPWSJDPESFJUMKQYWBYUTHQYEFZUGKQOBHYDWB",
"output": "NO"
},
{
"input": "PXWRXRPFLR\nPJRWWXIVHODV\nXW",
"output": "NO"
},
{
"input": "CHTAZVHGSHCVIBK\nEQINEBKXEPYJSAZIMLDF\nZCZZZZDZMCZZEZDZZEZZZZQZZBZZZOZZCZE",
"output": "NO"
},
{
"input": "GXPZFSELJJNDAXYRV\nUYBKPMVBSOVOJWMONLTJOJCNQKMTAHEWLHOWIIBH\nHCWNFWJPEJIWOVPTBMVCRJLSISSVNOHCKLBFMIUAIMASQWPXEYXBOXQGFEMYJLBKDCZIMJNHOJEDGGANIVYKQTUOSOVOPWHVJGXH",
"output": "NO"
},
{
"input": "LFGJCJJDUTUP\nOVSBILTIYCJCRHKCIXCETJQJJ\nGIJJTJCLTJJJ",
"output": "NO"
},
{
"input": "GIO\nPRL\nPRL",
"output": "NO"
},
{
"input": "A\nB\nABC",
"output": "NO"
},
{
"input": "KKK\nKKK\nZZZZZ",
"output": "NO"
},
{
"input": "ZMYGQLDBLAPN\nZFJBKWHROVNPSJQUDFTHOCGREUFLYIWYICD\nZMJZZEDAZANKZZZZZZEZZBZDZZZZZZKHZZFZZZDZNZMDZZA",
"output": "NO"
}
] | 1,685,769,207
| 2,147,483,647
|
Python 3
|
WRONG_ANSWER
|
TESTS
| 26
| 92
| 0
|
a=input()
b=input()
c=input()
d=a+b
d=list(d)
c=list(c)
if len(d)==len(c):
for i in d:
if i in c:
c.remove(i)
d.remove(i)
else:
print("NO")
break
else:
print("YES")
else:
print("NO")
|
Title: Amusing Joke
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
So, the New Year holidays are over. Santa Claus and his colleagues can take a rest and have guests at last. When two "New Year and Christmas Men" meet, thear assistants cut out of cardboard the letters from the guest's name and the host's name in honor of this event. Then the hung the letters above the main entrance. One night, when everyone went to bed, someone took all the letters of our characters' names. Then he may have shuffled the letters and put them in one pile in front of the door.
The next morning it was impossible to find the culprit who had made the disorder. But everybody wondered whether it is possible to restore the names of the host and his guests from the letters lying at the door? That is, we need to verify that there are no extra letters, and that nobody will need to cut more letters.
Help the "New Year and Christmas Men" and their friends to cope with this problem. You are given both inscriptions that hung over the front door the previous night, and a pile of letters that were found at the front door next morning.
Input Specification:
The input file consists of three lines: the first line contains the guest's name, the second line contains the name of the residence host and the third line contains letters in a pile that were found at the door in the morning. All lines are not empty and contain only uppercase Latin letters. The length of each line does not exceed 100.
Output Specification:
Print "YES" without the quotes, if the letters in the pile could be permuted to make the names of the "New Year and Christmas Men". Otherwise, print "NO" without the quotes.
Demo Input:
['SANTACLAUS\nDEDMOROZ\nSANTAMOROZDEDCLAUS\n', 'PAPAINOEL\nJOULUPUKKI\nJOULNAPAOILELUPUKKI\n', 'BABBONATALE\nFATHERCHRISTMAS\nBABCHRISTMASBONATALLEFATHER\n']
Demo Output:
['YES\n', 'NO\n', 'NO\n']
Note:
In the first sample the letters written in the last line can be used to write the names and there won't be any extra letters left.
In the second sample letter "P" is missing from the pile and there's an extra letter "L".
In the third sample there's an extra letter "L".
|
```python
a=input()
b=input()
c=input()
d=a+b
d=list(d)
c=list(c)
if len(d)==len(c):
for i in d:
if i in c:
c.remove(i)
d.remove(i)
else:
print("NO")
break
else:
print("YES")
else:
print("NO")
```
| 0
|
|
227
|
B
|
Effective Approach
|
PROGRAMMING
| 1,100
|
[
"implementation"
] | null | null |
Once at a team training Vasya, Petya and Sasha got a problem on implementing linear search in an array.
According to the boys, linear search works as follows. The array elements in a pre-selected order are in turn compared with the number that you need to find. Once you find the array element that is equal to the required one, the search ends. The efficiency of the algorithm is the number of performed comparisons. The fewer comparisons the linear search has made, the more effective it is.
Vasya believes that a linear search would work better if it sequentially iterates through the elements, starting with the 1-st one (in this problem we consider the elements of the array indexed from 1 to *n*) and ending with the *n*-th one. And Petya says that Vasya is wrong: the search will need less comparisons if it sequentially iterates the elements starting from the *n*-th and ending with the 1-st one. Sasha argues that the two approaches are equivalent.
To finally begin the task, the teammates decided to settle the debate and compare the two approaches on an example. For this, they took an array that is a permutation of integers from 1 to *n*, and generated *m* queries of the form: find element with value *b**i* in the array. They want to calculate for both approaches how many comparisons in total the linear search will need to respond to all queries. If the first search needs fewer comparisons, then the winner of the dispute is Vasya. If the second one does, then the winner is Petya. If both approaches make the same number of comparisons, then Sasha's got the upper hand.
But the problem is, linear search is too slow. That's why the boys aren't going to find out who is right before the end of the training, unless you come in here. Help them to determine who will win the dispute.
|
The first line contains integer *n* (1<=≤<=*n*<=≤<=105) — the number of elements in the array. The second line contains *n* distinct space-separated integers *a*1,<=*a*2,<=...,<=*a**n* (1<=≤<=*a**i*<=≤<=*n*) — the elements of array.
The third line contains integer *m* (1<=≤<=*m*<=≤<=105) — the number of queries. The last line contains *m* space-separated integers *b*1,<=*b*2,<=...,<=*b**m* (1<=≤<=*b**i*<=≤<=*n*) — the search queries. Note that the queries can repeat.
|
Print two integers, showing how many comparisons Vasya's approach needs and how many comparisons Petya's approach needs. Separate the numbers by spaces.
Please, do not use the %lld specifier to read or write 64-bit integers in С++. It is preferred to use cin, cout streams or the %I64d specifier.
|
[
"2\n1 2\n1\n1\n",
"2\n2 1\n1\n1\n",
"3\n3 1 2\n3\n1 2 3\n"
] |
[
"1 2\n",
"2 1\n",
"6 6\n"
] |
In the first sample Vasya's approach will make one comparison (it starts with the 1-st element and immediately finds the required number), and Petya's approach makes two comparisons (first he compares with the 2-nd array element, doesn't find the search item and compares with the 1-st element).
In the second sample, on the contrary, Vasya's approach will need two comparisons (first with 1-st element, and then with the 2-nd), and Petya's approach will find the required value in one comparison (the first comparison with the 2-nd element).
| 1,000
|
[
{
"input": "2\n1 2\n1\n1",
"output": "1 2"
},
{
"input": "2\n2 1\n1\n1",
"output": "2 1"
},
{
"input": "3\n3 1 2\n3\n1 2 3",
"output": "6 6"
},
{
"input": "9\n2 9 3 1 6 4 7 8 5\n9\n5 1 5 2 8 4 4 4 5",
"output": "58 32"
},
{
"input": "10\n3 10 9 2 7 6 5 8 4 1\n1\n4",
"output": "9 2"
},
{
"input": "10\n5 2 10 8 3 1 9 7 6 4\n9\n2 5 9 2 3 2 5 9 8",
"output": "31 68"
},
{
"input": "9\n3 8 4 7 1 2 5 6 9\n3\n2 7 1",
"output": "15 15"
},
{
"input": "9\n5 3 8 4 2 6 1 7 9\n4\n6 1 9 2",
"output": "27 13"
},
{
"input": "4\n1 3 2 4\n4\n3 1 2 3",
"output": "8 12"
},
{
"input": "3\n1 2 3\n8\n3 2 1 1 2 3 1 2",
"output": "15 17"
}
] | 1,683,470,233
| 2,147,483,647
|
PyPy 3-64
|
TIME_LIMIT_EXCEEDED
|
TESTS
| 6
| 2,000
| 20,172,800
|
n = int(input())
a = list(map(int, input().split(' ')))
m = int(input())
b = list(map(int, input().split(' ')))
v, p = 0, 0
for x in b:
v += a.index(x) + 1
p += n-a.index(x)
print(v, p)
|
Title: Effective Approach
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
Once at a team training Vasya, Petya and Sasha got a problem on implementing linear search in an array.
According to the boys, linear search works as follows. The array elements in a pre-selected order are in turn compared with the number that you need to find. Once you find the array element that is equal to the required one, the search ends. The efficiency of the algorithm is the number of performed comparisons. The fewer comparisons the linear search has made, the more effective it is.
Vasya believes that a linear search would work better if it sequentially iterates through the elements, starting with the 1-st one (in this problem we consider the elements of the array indexed from 1 to *n*) and ending with the *n*-th one. And Petya says that Vasya is wrong: the search will need less comparisons if it sequentially iterates the elements starting from the *n*-th and ending with the 1-st one. Sasha argues that the two approaches are equivalent.
To finally begin the task, the teammates decided to settle the debate and compare the two approaches on an example. For this, they took an array that is a permutation of integers from 1 to *n*, and generated *m* queries of the form: find element with value *b**i* in the array. They want to calculate for both approaches how many comparisons in total the linear search will need to respond to all queries. If the first search needs fewer comparisons, then the winner of the dispute is Vasya. If the second one does, then the winner is Petya. If both approaches make the same number of comparisons, then Sasha's got the upper hand.
But the problem is, linear search is too slow. That's why the boys aren't going to find out who is right before the end of the training, unless you come in here. Help them to determine who will win the dispute.
Input Specification:
The first line contains integer *n* (1<=≤<=*n*<=≤<=105) — the number of elements in the array. The second line contains *n* distinct space-separated integers *a*1,<=*a*2,<=...,<=*a**n* (1<=≤<=*a**i*<=≤<=*n*) — the elements of array.
The third line contains integer *m* (1<=≤<=*m*<=≤<=105) — the number of queries. The last line contains *m* space-separated integers *b*1,<=*b*2,<=...,<=*b**m* (1<=≤<=*b**i*<=≤<=*n*) — the search queries. Note that the queries can repeat.
Output Specification:
Print two integers, showing how many comparisons Vasya's approach needs and how many comparisons Petya's approach needs. Separate the numbers by spaces.
Please, do not use the %lld specifier to read or write 64-bit integers in С++. It is preferred to use cin, cout streams or the %I64d specifier.
Demo Input:
['2\n1 2\n1\n1\n', '2\n2 1\n1\n1\n', '3\n3 1 2\n3\n1 2 3\n']
Demo Output:
['1 2\n', '2 1\n', '6 6\n']
Note:
In the first sample Vasya's approach will make one comparison (it starts with the 1-st element and immediately finds the required number), and Petya's approach makes two comparisons (first he compares with the 2-nd array element, doesn't find the search item and compares with the 1-st element).
In the second sample, on the contrary, Vasya's approach will need two comparisons (first with 1-st element, and then with the 2-nd), and Petya's approach will find the required value in one comparison (the first comparison with the 2-nd element).
|
```python
n = int(input())
a = list(map(int, input().split(' ')))
m = int(input())
b = list(map(int, input().split(' ')))
v, p = 0, 0
for x in b:
v += a.index(x) + 1
p += n-a.index(x)
print(v, p)
```
| 0
|
|
651
|
A
|
Joysticks
|
PROGRAMMING
| 1,100
|
[
"dp",
"greedy",
"implementation",
"math"
] | null | null |
Friends are going to play console. They have two joysticks and only one charger for them. Initially first joystick is charged at *a*1 percent and second one is charged at *a*2 percent. You can connect charger to a joystick only at the beginning of each minute. In one minute joystick either discharges by 2 percent (if not connected to a charger) or charges by 1 percent (if connected to a charger).
Game continues while both joysticks have a positive charge. Hence, if at the beginning of minute some joystick is charged by 1 percent, it has to be connected to a charger, otherwise the game stops. If some joystick completely discharges (its charge turns to 0), the game also stops.
Determine the maximum number of minutes that game can last. It is prohibited to pause the game, i. e. at each moment both joysticks should be enabled. It is allowed for joystick to be charged by more than 100 percent.
|
The first line of the input contains two positive integers *a*1 and *a*2 (1<=≤<=*a*1,<=*a*2<=≤<=100), the initial charge level of first and second joystick respectively.
|
Output the only integer, the maximum number of minutes that the game can last. Game continues until some joystick is discharged.
|
[
"3 5\n",
"4 4\n"
] |
[
"6\n",
"5\n"
] |
In the first sample game lasts for 6 minute by using the following algorithm:
- at the beginning of the first minute connect first joystick to the charger, by the end of this minute first joystick is at 4%, second is at 3%; - continue the game without changing charger, by the end of the second minute the first joystick is at 5%, second is at 1%; - at the beginning of the third minute connect second joystick to the charger, after this minute the first joystick is at 3%, the second one is at 2%; - continue the game without changing charger, by the end of the fourth minute first joystick is at 1%, second one is at 3%; - at the beginning of the fifth minute connect first joystick to the charger, after this minute the first joystick is at 2%, the second one is at 1%; - at the beginning of the sixth minute connect second joystick to the charger, after this minute the first joystick is at 0%, the second one is at 2%.
After that the first joystick is completely discharged and the game is stopped.
| 500
|
[
{
"input": "3 5",
"output": "6"
},
{
"input": "4 4",
"output": "5"
},
{
"input": "100 100",
"output": "197"
},
{
"input": "1 100",
"output": "98"
},
{
"input": "100 1",
"output": "98"
},
{
"input": "1 4",
"output": "2"
},
{
"input": "1 1",
"output": "0"
},
{
"input": "8 8",
"output": "13"
},
{
"input": "7 2",
"output": "7"
},
{
"input": "24 15",
"output": "36"
},
{
"input": "19 30",
"output": "47"
},
{
"input": "15 31",
"output": "44"
},
{
"input": "14 15",
"output": "27"
},
{
"input": "58 33",
"output": "89"
},
{
"input": "15 25",
"output": "38"
},
{
"input": "59 45",
"output": "102"
},
{
"input": "3 73",
"output": "74"
},
{
"input": "48 1",
"output": "47"
},
{
"input": "100 25",
"output": "122"
},
{
"input": "40 49",
"output": "86"
},
{
"input": "85 73",
"output": "155"
},
{
"input": "29 1",
"output": "28"
},
{
"input": "74 25",
"output": "97"
},
{
"input": "24 57",
"output": "78"
},
{
"input": "23 12",
"output": "33"
},
{
"input": "2 99",
"output": "99"
},
{
"input": "98 2",
"output": "97"
},
{
"input": "2 97",
"output": "97"
},
{
"input": "30 54",
"output": "81"
},
{
"input": "32 53",
"output": "82"
},
{
"input": "32 54",
"output": "84"
},
{
"input": "1 2",
"output": "1"
},
{
"input": "2 1",
"output": "1"
},
{
"input": "2 2",
"output": "1"
},
{
"input": "1 3",
"output": "2"
},
{
"input": "3 1",
"output": "2"
},
{
"input": "1 4",
"output": "2"
},
{
"input": "2 3",
"output": "3"
},
{
"input": "3 2",
"output": "3"
}
] | 1,637,225,387
| 2,147,483,647
|
Python 3
|
WRONG_ANSWER
|
TESTS
| 6
| 46
| 614,400
|
from collections import deque
def answer(battery):
queue, visited, result = deque([(battery[0], battery[1], 0)]), set(), 0
while queue:
first, second, time = queue.popleft()
if first <= 0 or second <= 0:
result = max(result, time)
continue
if (first, second) in visited:
continue
visited.add((first, second))
queue.append((first-2, second+1, time+1))
queue.append((first+1, second-2, time+1))
return result
battery = list(map(int, input().split()))
print(answer(battery))
|
Title: Joysticks
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
Friends are going to play console. They have two joysticks and only one charger for them. Initially first joystick is charged at *a*1 percent and second one is charged at *a*2 percent. You can connect charger to a joystick only at the beginning of each minute. In one minute joystick either discharges by 2 percent (if not connected to a charger) or charges by 1 percent (if connected to a charger).
Game continues while both joysticks have a positive charge. Hence, if at the beginning of minute some joystick is charged by 1 percent, it has to be connected to a charger, otherwise the game stops. If some joystick completely discharges (its charge turns to 0), the game also stops.
Determine the maximum number of minutes that game can last. It is prohibited to pause the game, i. e. at each moment both joysticks should be enabled. It is allowed for joystick to be charged by more than 100 percent.
Input Specification:
The first line of the input contains two positive integers *a*1 and *a*2 (1<=≤<=*a*1,<=*a*2<=≤<=100), the initial charge level of first and second joystick respectively.
Output Specification:
Output the only integer, the maximum number of minutes that the game can last. Game continues until some joystick is discharged.
Demo Input:
['3 5\n', '4 4\n']
Demo Output:
['6\n', '5\n']
Note:
In the first sample game lasts for 6 minute by using the following algorithm:
- at the beginning of the first minute connect first joystick to the charger, by the end of this minute first joystick is at 4%, second is at 3%; - continue the game without changing charger, by the end of the second minute the first joystick is at 5%, second is at 1%; - at the beginning of the third minute connect second joystick to the charger, after this minute the first joystick is at 3%, the second one is at 2%; - continue the game without changing charger, by the end of the fourth minute first joystick is at 1%, second one is at 3%; - at the beginning of the fifth minute connect first joystick to the charger, after this minute the first joystick is at 2%, the second one is at 1%; - at the beginning of the sixth minute connect second joystick to the charger, after this minute the first joystick is at 0%, the second one is at 2%.
After that the first joystick is completely discharged and the game is stopped.
|
```python
from collections import deque
def answer(battery):
queue, visited, result = deque([(battery[0], battery[1], 0)]), set(), 0
while queue:
first, second, time = queue.popleft()
if first <= 0 or second <= 0:
result = max(result, time)
continue
if (first, second) in visited:
continue
visited.add((first, second))
queue.append((first-2, second+1, time+1))
queue.append((first+1, second-2, time+1))
return result
battery = list(map(int, input().split()))
print(answer(battery))
```
| 0
|
|
876
|
B
|
Divisiblity of Differences
|
PROGRAMMING
| 1,300
|
[
"implementation",
"math",
"number theory"
] | null | null |
You are given a multiset of *n* integers. You should select exactly *k* of them in a such way that the difference between any two of them is divisible by *m*, or tell that it is impossible.
Numbers can be repeated in the original multiset and in the multiset of selected numbers, but number of occurrences of any number in multiset of selected numbers should not exceed the number of its occurrences in the original multiset.
|
First line contains three integers *n*, *k* and *m* (2<=≤<=*k*<=≤<=*n*<=≤<=100<=000, 1<=≤<=*m*<=≤<=100<=000) — number of integers in the multiset, number of integers you should select and the required divisor of any pair of selected integers.
Second line contains *n* integers *a*1,<=*a*2,<=...,<=*a**n* (0<=≤<=*a**i*<=≤<=109) — the numbers in the multiset.
|
If it is not possible to select *k* numbers in the desired way, output «No» (without the quotes).
Otherwise, in the first line of output print «Yes» (without the quotes). In the second line print *k* integers *b*1,<=*b*2,<=...,<=*b**k* — the selected numbers. If there are multiple possible solutions, print any of them.
|
[
"3 2 3\n1 8 4\n",
"3 3 3\n1 8 4\n",
"4 3 5\n2 7 7 7\n"
] |
[
"Yes\n1 4 ",
"No",
"Yes\n2 7 7 "
] |
none
| 1,000
|
[
{
"input": "3 2 3\n1 8 4",
"output": "Yes\n1 4 "
},
{
"input": "3 3 3\n1 8 4",
"output": "No"
},
{
"input": "4 3 5\n2 7 7 7",
"output": "Yes\n2 7 7 "
},
{
"input": "9 9 5\n389149775 833127990 969340400 364457730 48649145 316121525 640054660 924273385 973207825",
"output": "Yes\n389149775 833127990 969340400 364457730 48649145 316121525 640054660 924273385 973207825 "
},
{
"input": "15 8 10\n216175135 15241965 611723934 987180005 151601897 403701727 533996295 207637446 875331635 46172555 604086315 350146655 401084142 156540458 982110455",
"output": "Yes\n216175135 15241965 987180005 533996295 875331635 46172555 604086315 350146655 "
},
{
"input": "2 2 100000\n0 1",
"output": "No"
},
{
"input": "101 25 64\n451 230 14 53 7 520 709 102 678 358 166 870 807 230 230 279 166 230 765 176 742 358 924 976 647 806 870 473 976 994 750 146 802 224 503 801 105 614 882 203 390 338 29 587 214 213 405 806 102 102 621 358 521 742 678 205 309 871 796 326 162 693 268 486 68 627 304 829 806 623 748 934 714 672 712 614 587 589 846 260 593 85 839 257 711 395 336 358 472 133 324 527 599 5 845 920 989 494 358 70 882",
"output": "Yes\n230 102 678 358 166 870 230 230 166 230 742 358 806 870 614 806 102 102 358 742 678 486 806 934 614 "
},
{
"input": "108 29 72\n738 619 711 235 288 288 679 36 785 233 706 71 216 144 216 781 338 583 495 648 144 432 72 720 541 288 158 328 154 202 10 533 635 176 707 216 314 397 440 142 326 458 568 701 745 144 61 634 520 720 744 144 409 127 526 476 101 469 72 432 738 432 235 641 695 276 144 144 231 555 630 9 109 319 437 288 288 317 453 432 601 0 449 576 743 352 333 504 504 369 228 288 381 142 500 72 297 359 230 773 216 576 144 244 437 772 483 51",
"output": "Yes\n288 288 216 144 216 648 144 432 72 720 288 216 144 720 144 72 432 432 144 144 288 288 432 0 576 504 504 288 72 "
},
{
"input": "8 2 6\n750462183 165947982 770714338 368445737 363145692 966611485 376672869 678687947",
"output": "Yes\n165947982 363145692 "
},
{
"input": "12 2 1\n512497388 499105388 575265677 864726520 678272195 667107176 809432109 439696443 770034376 873126825 690514828 541499950",
"output": "Yes\n512497388 499105388 "
},
{
"input": "9 3 1\n506004039 471451660 614118177 518013571 43210072 454727076 285905913 543002174 298515615",
"output": "Yes\n506004039 471451660 614118177 "
},
{
"input": "8 4 6\n344417267 377591123 938158786 682031413 804153975 89006697 275945670 735510539",
"output": "No"
},
{
"input": "8 8 1\n314088413 315795280 271532387 241073087 961218399 884234132 419866508 286799253",
"output": "Yes\n314088413 315795280 271532387 241073087 961218399 884234132 419866508 286799253 "
},
{
"input": "7 7 1\n0 0 0 0 0 0 0",
"output": "Yes\n0 0 0 0 0 0 0 "
},
{
"input": "11 4 3\n0 1 0 1 1 0 0 0 0 0 0",
"output": "Yes\n0 0 0 0 "
},
{
"input": "13 4 4\n1 1 0 3 2 4 1 0 3 4 2 4 3",
"output": "Yes\n0 4 0 4 "
},
{
"input": "5 5 1\n6 4 6 0 4",
"output": "Yes\n6 4 6 0 4 "
},
{
"input": "3 2 3\n1 2 3",
"output": "No"
},
{
"input": "6 3 4\n5 9 10 6 7 8",
"output": "No"
},
{
"input": "4 4 3\n4 7 2 5",
"output": "No"
},
{
"input": "4 2 6\n5 5 5 5",
"output": "Yes\n5 5 "
},
{
"input": "4 3 3\n5 1 4 7",
"output": "Yes\n1 4 7 "
},
{
"input": "4 3 10\n0 1 11 11",
"output": "Yes\n1 11 11 "
},
{
"input": "5 2 4\n1 2 2 2 2",
"output": "Yes\n2 2 "
},
{
"input": "5 5 9\n8 17 26 35 44",
"output": "Yes\n8 17 26 35 44 "
},
{
"input": "3 2 2\n1 2 4",
"output": "Yes\n2 4 "
},
{
"input": "5 4 2\n1 3 6 10 12",
"output": "No"
},
{
"input": "3 2 4\n1 2 3",
"output": "No"
},
{
"input": "8 3 5\n1 2 3 4 1 2 3 4",
"output": "No"
},
{
"input": "5 2 9\n8 8 8 8 8",
"output": "Yes\n8 8 "
},
{
"input": "3 3 3\n1 3 6",
"output": "No"
},
{
"input": "5 2 10\n4 5 6 19 29",
"output": "Yes\n19 29 "
},
{
"input": "5 3 3\n3 6 4 7 10",
"output": "Yes\n4 7 10 "
}
] | 1,508,155,429
| 3,529
|
Python 3
|
RUNTIME_ERROR
|
PRETESTS
| 1
| 62
| 512,000
|
from collections import defaultdict
n, k, m = tuple(map(int, input().split()))
A = sorted(list(map(int, input().split())))
D = defaultdict(int)
for a in A:
D[a] += 1
maxx = A[-1]
for i in range(n):
mm = A[i]
t = [mm]
DD = dict(D)
while mm < maxx:
mm += m
while DD[mm] > 0:
DD[mm] -= 1
t.append(mm)
if len(t) == k:
print('Yes')
print(' '.join(map(str, t)))
exit(0)
print('No')
|
Title: Divisiblity of Differences
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
You are given a multiset of *n* integers. You should select exactly *k* of them in a such way that the difference between any two of them is divisible by *m*, or tell that it is impossible.
Numbers can be repeated in the original multiset and in the multiset of selected numbers, but number of occurrences of any number in multiset of selected numbers should not exceed the number of its occurrences in the original multiset.
Input Specification:
First line contains three integers *n*, *k* and *m* (2<=≤<=*k*<=≤<=*n*<=≤<=100<=000, 1<=≤<=*m*<=≤<=100<=000) — number of integers in the multiset, number of integers you should select and the required divisor of any pair of selected integers.
Second line contains *n* integers *a*1,<=*a*2,<=...,<=*a**n* (0<=≤<=*a**i*<=≤<=109) — the numbers in the multiset.
Output Specification:
If it is not possible to select *k* numbers in the desired way, output «No» (without the quotes).
Otherwise, in the first line of output print «Yes» (without the quotes). In the second line print *k* integers *b*1,<=*b*2,<=...,<=*b**k* — the selected numbers. If there are multiple possible solutions, print any of them.
Demo Input:
['3 2 3\n1 8 4\n', '3 3 3\n1 8 4\n', '4 3 5\n2 7 7 7\n']
Demo Output:
['Yes\n1 4 ', 'No', 'Yes\n2 7 7 ']
Note:
none
|
```python
from collections import defaultdict
n, k, m = tuple(map(int, input().split()))
A = sorted(list(map(int, input().split())))
D = defaultdict(int)
for a in A:
D[a] += 1
maxx = A[-1]
for i in range(n):
mm = A[i]
t = [mm]
DD = dict(D)
while mm < maxx:
mm += m
while DD[mm] > 0:
DD[mm] -= 1
t.append(mm)
if len(t) == k:
print('Yes')
print(' '.join(map(str, t)))
exit(0)
print('No')
```
| -1
|
|
9
|
B
|
Running Student
|
PROGRAMMING
| 1,200
|
[
"brute force",
"geometry",
"implementation"
] |
B. Running Student
|
1
|
64
|
And again a misfortune fell on Poor Student. He is being late for an exam.
Having rushed to a bus stop that is in point (0,<=0), he got on a minibus and they drove along a straight line, parallel to axis *OX*, in the direction of increasing *x*.
Poor Student knows the following:
- during one run the minibus makes *n* stops, the *i*-th stop is in point (*x**i*,<=0) - coordinates of all the stops are different - the minibus drives at a constant speed, equal to *v**b* - it can be assumed the passengers get on and off the minibus at a bus stop momentarily - Student can get off the minibus only at a bus stop - Student will have to get off the minibus at a terminal stop, if he does not get off earlier - the University, where the exam will be held, is in point (*x**u*,<=*y**u*) - Student can run from a bus stop to the University at a constant speed *v**s* as long as needed - a distance between two points can be calculated according to the following formula: - Student is already on the minibus, so, he cannot get off at the first bus stop
Poor Student wants to get to the University as soon as possible. Help him to choose the bus stop, where he should get off. If such bus stops are multiple, choose the bus stop closest to the University.
|
The first line contains three integer numbers: 2<=≤<=*n*<=≤<=100, 1<=≤<=*v**b*,<=*v**s*<=≤<=1000. The second line contains *n* non-negative integers in ascending order: coordinates *x**i* of the bus stop with index *i*. It is guaranteed that *x*1 equals to zero, and *x**n*<=≤<=105. The third line contains the coordinates of the University, integers *x**u* and *y**u*, not exceeding 105 in absolute value.
|
In the only line output the answer to the problem — index of the optimum bus stop.
|
[
"4 5 2\n0 2 4 6\n4 1\n",
"2 1 1\n0 100000\n100000 100000\n"
] |
[
"3",
"2"
] |
As you know, students are a special sort of people, and minibuses usually do not hurry. That's why you should not be surprised, if Student's speed is higher than the speed of the minibus.
| 0
|
[
{
"input": "4 5 2\n0 2 4 6\n4 1",
"output": "3"
},
{
"input": "2 1 1\n0 100000\n100000 100000",
"output": "2"
},
{
"input": "6 5 1\n0 1 2 3 4 5\n0 0",
"output": "2"
},
{
"input": "4 100 10\n0 118 121 178\n220 220",
"output": "4"
},
{
"input": "4 3 3\n0 6 8 10\n7 -4",
"output": "2"
},
{
"input": "5 900 1\n0 37474 80030 85359 97616\n-1 -1",
"output": "2"
},
{
"input": "5 200 400\n0 8068 28563 51720 66113\n5423 -34",
"output": "2"
},
{
"input": "6 10 3\n0 12 14 16 19 20\n14 0",
"output": "3"
},
{
"input": "6 13 11\n0 16 27 31 39 42\n54 3",
"output": "6"
},
{
"input": "11 853 721\n0 134 1971 2369 3381 3997 4452 6875 8983 9360 9399\n7345 333",
"output": "8"
},
{
"input": "35 35 12\n0 90486 90543 90763 91127 91310 92047 92405 93654 93814 94633 94752 94969 94994 95287 96349 96362 96723 96855 96883 97470 97482 97683 97844 97926 98437 98724 98899 98921 99230 99253 99328 99444 99691 99947\n96233 -7777",
"output": "9"
},
{
"input": "55 11 44\n0 3343 3387 3470 3825 3832 3971 4026 4043 4389 4492 4886 5015 5084 5161 5436 5595 5616 5677 5987 6251 6312 6369 6469 6487 6493 6507 6641 6928 7067 7159 7280 7303 7385 7387 7465 7536 7572 7664 7895 7921 7955 8110 8191 8243 8280 8523 8525 8581 8877 9221 9462 9505 9594 9596\n8000 0",
"output": "2"
},
{
"input": "72 1000 777\n0 215 2814 5104 5226 5925 6734 9213 11697 13739 14015 16101 17234 19013 19566 19683 20283 20837 21332 21432 25490 26284 27728 29911 30112 30133 31494 31595 32499 32932 33289 36611 37736 43548 44440 44537 47656 47699 48327 50942 52178 53759 56925 57671 62024 65441 67958 70346 71606 75235 75466 75553 75905 76173 76512 77784 78183 80425 81339 81543 84537 88384 89953 90214 92107 92274 93328 93550 93987 97546 99459 99532\n63421 35",
"output": "45"
},
{
"input": "76 1 1\n0 1000 1754 2749 3687 4983 8121 10299 11043 12986 14125 15910 17070 17189 17551 17953 17973 20816 25436 26150 27446 27788 28466 28941 29537 33965 37566 40845 40930 41304 41614 41615 43042 45098 45844 49878 50453 50936 55480 58410 59258 59287 62789 64127 64333 64450 64862 65404 66451 67626 69294 69804 71988 72165 74196 74560 75407 76611 77055 77344 79470 83566 84550 87458 87627 88205 89880 90255 90586 91970 93795 95308 99032 99442 99547 99549\n0 0",
"output": "2"
},
{
"input": "94 2 1\n0 5000 5001 5002 5003 5004 5005 5006 5007 5008 5009 5010 5011 5012 5013 5014 5015 5016 5017 5018 5019 5020 5021 5022 5023 5024 5025 5026 5027 5028 5029 5030 5031 5032 5033 5034 5035 5036 5037 5038 5040 5041 5042 5043 5044 5045 5046 5047 5048 5049 5050 5051 5052 5053 5054 5055 5056 5057 5058 5059 5060 5061 5062 5063 5064 5065 5066 5067 5068 5069 5070 5071 5072 5073 5074 5075 5076 5077 5078 5079 5080 5081 5082 5083 5084 5085 5086 5087 5088 5089 5090 5091 5092 5093\n5050 -100000",
"output": "2"
},
{
"input": "100 1 2\n0 1 2 3 4 5 6 7 8 9 10 12 13 14 15 16 17 18 19 20 21 22 23 24 25 26 27 28 29 30 31 32 33 34 35 36 37 38 39 40 41 42 43 44 45 46 47 48 49 50 51 52 53 54 55 56 57 58 59 60 61 62 63 64 65 66 67 68 69 70 71 72 73 74 75 76 77 78 79 80 81 82 83 84 85 86 87 88 89 90 91 92 93 94 95 96 97 98 99 100\n100 0",
"output": "2"
},
{
"input": "100 1000 1\n0 505 506 514 515 520 523 527 529 530 538 547 550 554 559 562 566 568 569 580 582 584 588 597 609 621 624 629 630 631 634 641 646 653 657 666 673 678 680 683 685 690 695 698 699 700 705 709 716 731 734 735 736 738 756 761 762 765 769 772 776 779 784 790 794 812 814 816 833 837 842 845 850 854 855 863 868 872 882 892 893 898 899 900 901 902 915 916 917 932 936 954 962 968 975 978 983 992 996 998\n600 7778",
"output": "23"
},
{
"input": "2 1 1\n0 100000\n-100000 -100000",
"output": "2"
},
{
"input": "2 1000 1000\n0 1\n1 0",
"output": "2"
},
{
"input": "3 1 1\n0 1 2\n2 0",
"output": "3"
}
] | 1,570,947,764
| 2,147,483,647
|
Python 3
|
WRONG_ANSWER
|
TESTS
| 22
| 218
| 0
|
from math import sqrt
n, vb, vs = [float(i) for i in input().split()]
mi = 10**18
ix = 1
x = [float(i) for i in input().split()]
x2, y2 = [float(i) for i in input().split()]
for i in range(1,len(x)):
l = sqrt((abs(x2-x[i]))**2+(abs(y2-0))**2)
if (x[i]/vb) + (l / vs) < mi:
mi = (x[i]/vb) + (l / vs)
ix = i + 1
print(ix)
|
Title: Running Student
Time Limit: 1 seconds
Memory Limit: 64 megabytes
Problem Description:
And again a misfortune fell on Poor Student. He is being late for an exam.
Having rushed to a bus stop that is in point (0,<=0), he got on a minibus and they drove along a straight line, parallel to axis *OX*, in the direction of increasing *x*.
Poor Student knows the following:
- during one run the minibus makes *n* stops, the *i*-th stop is in point (*x**i*,<=0) - coordinates of all the stops are different - the minibus drives at a constant speed, equal to *v**b* - it can be assumed the passengers get on and off the minibus at a bus stop momentarily - Student can get off the minibus only at a bus stop - Student will have to get off the minibus at a terminal stop, if he does not get off earlier - the University, where the exam will be held, is in point (*x**u*,<=*y**u*) - Student can run from a bus stop to the University at a constant speed *v**s* as long as needed - a distance between two points can be calculated according to the following formula: - Student is already on the minibus, so, he cannot get off at the first bus stop
Poor Student wants to get to the University as soon as possible. Help him to choose the bus stop, where he should get off. If such bus stops are multiple, choose the bus stop closest to the University.
Input Specification:
The first line contains three integer numbers: 2<=≤<=*n*<=≤<=100, 1<=≤<=*v**b*,<=*v**s*<=≤<=1000. The second line contains *n* non-negative integers in ascending order: coordinates *x**i* of the bus stop with index *i*. It is guaranteed that *x*1 equals to zero, and *x**n*<=≤<=105. The third line contains the coordinates of the University, integers *x**u* and *y**u*, not exceeding 105 in absolute value.
Output Specification:
In the only line output the answer to the problem — index of the optimum bus stop.
Demo Input:
['4 5 2\n0 2 4 6\n4 1\n', '2 1 1\n0 100000\n100000 100000\n']
Demo Output:
['3', '2']
Note:
As you know, students are a special sort of people, and minibuses usually do not hurry. That's why you should not be surprised, if Student's speed is higher than the speed of the minibus.
|
```python
from math import sqrt
n, vb, vs = [float(i) for i in input().split()]
mi = 10**18
ix = 1
x = [float(i) for i in input().split()]
x2, y2 = [float(i) for i in input().split()]
for i in range(1,len(x)):
l = sqrt((abs(x2-x[i]))**2+(abs(y2-0))**2)
if (x[i]/vb) + (l / vs) < mi:
mi = (x[i]/vb) + (l / vs)
ix = i + 1
print(ix)
```
| 0
|
877
|
B
|
Nikita and string
|
PROGRAMMING
| 1,500
|
[
"brute force",
"dp"
] | null | null |
One day Nikita found the string containing letters "a" and "b" only.
Nikita thinks that string is beautiful if it can be cut into 3 strings (possibly empty) without changing the order of the letters, where the 1-st and the 3-rd one contain only letters "a" and the 2-nd contains only letters "b".
Nikita wants to make the string beautiful by removing some (possibly none) of its characters, but without changing their order. What is the maximum length of the string he can get?
|
The first line contains a non-empty string of length not greater than 5<=000 containing only lowercase English letters "a" and "b".
|
Print a single integer — the maximum possible size of beautiful string Nikita can get.
|
[
"abba\n",
"bab\n"
] |
[
"4",
"2"
] |
It the first sample the string is already beautiful.
In the second sample he needs to delete one of "b" to make it beautiful.
| 1,000
|
[
{
"input": "abba",
"output": "4"
},
{
"input": "bab",
"output": "2"
},
{
"input": "bbabbbaabbbb",
"output": "9"
},
{
"input": "bbabbbbbaaba",
"output": "10"
},
{
"input": "bbabbbababaa",
"output": "9"
},
{
"input": "aabbaababbab",
"output": "8"
},
{
"input": "a",
"output": "1"
},
{
"input": "b",
"output": "1"
},
{
"input": "ab",
"output": "2"
},
{
"input": "ba",
"output": "2"
},
{
"input": "bb",
"output": "2"
},
{
"input": "aa",
"output": "2"
},
{
"input": "babbbaab",
"output": "6"
},
{
"input": "abaaaa",
"output": "6"
},
{
"input": "aaa",
"output": "3"
}
] | 1,679,597,582
| 2,147,483,647
|
PyPy 3-64
|
OK
|
TESTS
| 46
| 171
| 3,379,200
|
s = input()
freq_a = [0]
freq_b = [0]
b_occurences = []
for i in range(len(s)):
if s[i] == 'b': b_occurences.append(i)
freq_b.append(freq_b[i] + int(s[i] == 'b'))
freq_a.append(freq_a[i] + int(s[i] == 'a'))
if len(b_occurences) < 2:
print(len(s))
else:
ans = 5001
for i in range(len(b_occurences)):
for j in range(i, len(b_occurences)):
ans = min(ans, freq_a[b_occurences[j] + 1] - freq_a[b_occurences[i]] + freq_b[-1] - (freq_b[b_occurences[j] + 1] - freq_b[b_occurences[i]]))
print(len(s) - ans)
|
Title: Nikita and string
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
One day Nikita found the string containing letters "a" and "b" only.
Nikita thinks that string is beautiful if it can be cut into 3 strings (possibly empty) without changing the order of the letters, where the 1-st and the 3-rd one contain only letters "a" and the 2-nd contains only letters "b".
Nikita wants to make the string beautiful by removing some (possibly none) of its characters, but without changing their order. What is the maximum length of the string he can get?
Input Specification:
The first line contains a non-empty string of length not greater than 5<=000 containing only lowercase English letters "a" and "b".
Output Specification:
Print a single integer — the maximum possible size of beautiful string Nikita can get.
Demo Input:
['abba\n', 'bab\n']
Demo Output:
['4', '2']
Note:
It the first sample the string is already beautiful.
In the second sample he needs to delete one of "b" to make it beautiful.
|
```python
s = input()
freq_a = [0]
freq_b = [0]
b_occurences = []
for i in range(len(s)):
if s[i] == 'b': b_occurences.append(i)
freq_b.append(freq_b[i] + int(s[i] == 'b'))
freq_a.append(freq_a[i] + int(s[i] == 'a'))
if len(b_occurences) < 2:
print(len(s))
else:
ans = 5001
for i in range(len(b_occurences)):
for j in range(i, len(b_occurences)):
ans = min(ans, freq_a[b_occurences[j] + 1] - freq_a[b_occurences[i]] + freq_b[-1] - (freq_b[b_occurences[j] + 1] - freq_b[b_occurences[i]]))
print(len(s) - ans)
```
| 3
|
|
916
|
A
|
Jamie and Alarm Snooze
|
PROGRAMMING
| 900
|
[
"brute force",
"implementation",
"math"
] | null | null |
Jamie loves sleeping. One day, he decides that he needs to wake up at exactly *hh*:<=*mm*. However, he hates waking up, so he wants to make waking up less painful by setting the alarm at a lucky time. He will then press the snooze button every *x* minutes until *hh*:<=*mm* is reached, and only then he will wake up. He wants to know what is the smallest number of times he needs to press the snooze button.
A time is considered lucky if it contains a digit '7'. For example, 13:<=07 and 17:<=27 are lucky, while 00:<=48 and 21:<=34 are not lucky.
Note that it is not necessary that the time set for the alarm and the wake-up time are on the same day. It is guaranteed that there is a lucky time Jamie can set so that he can wake at *hh*:<=*mm*.
Formally, find the smallest possible non-negative integer *y* such that the time representation of the time *x*·*y* minutes before *hh*:<=*mm* contains the digit '7'.
Jamie uses 24-hours clock, so after 23:<=59 comes 00:<=00.
|
The first line contains a single integer *x* (1<=≤<=*x*<=≤<=60).
The second line contains two two-digit integers, *hh* and *mm* (00<=≤<=*hh*<=≤<=23,<=00<=≤<=*mm*<=≤<=59).
|
Print the minimum number of times he needs to press the button.
|
[
"3\n11 23\n",
"5\n01 07\n"
] |
[
"2\n",
"0\n"
] |
In the first sample, Jamie needs to wake up at 11:23. So, he can set his alarm at 11:17. He would press the snooze button when the alarm rings at 11:17 and at 11:20.
In the second sample, Jamie can set his alarm at exactly at 01:07 which is lucky.
| 500
|
[
{
"input": "3\n11 23",
"output": "2"
},
{
"input": "5\n01 07",
"output": "0"
},
{
"input": "34\n09 24",
"output": "3"
},
{
"input": "2\n14 37",
"output": "0"
},
{
"input": "14\n19 54",
"output": "9"
},
{
"input": "42\n15 44",
"output": "12"
},
{
"input": "46\n02 43",
"output": "1"
},
{
"input": "14\n06 41",
"output": "1"
},
{
"input": "26\n04 58",
"output": "26"
},
{
"input": "54\n16 47",
"output": "0"
},
{
"input": "38\n20 01",
"output": "3"
},
{
"input": "11\n02 05",
"output": "8"
},
{
"input": "55\n22 10",
"output": "5"
},
{
"input": "23\n10 08",
"output": "6"
},
{
"input": "23\n23 14",
"output": "9"
},
{
"input": "51\n03 27",
"output": "0"
},
{
"input": "35\n15 25",
"output": "13"
},
{
"input": "3\n12 15",
"output": "6"
},
{
"input": "47\n00 28",
"output": "3"
},
{
"input": "31\n13 34",
"output": "7"
},
{
"input": "59\n17 32",
"output": "0"
},
{
"input": "25\n11 03",
"output": "8"
},
{
"input": "9\n16 53",
"output": "4"
},
{
"input": "53\n04 06",
"output": "3"
},
{
"input": "37\n00 12",
"output": "5"
},
{
"input": "5\n13 10",
"output": "63"
},
{
"input": "50\n01 59",
"output": "10"
},
{
"input": "34\n06 13",
"output": "4"
},
{
"input": "2\n18 19",
"output": "1"
},
{
"input": "46\n06 16",
"output": "17"
},
{
"input": "14\n03 30",
"output": "41"
},
{
"input": "40\n13 37",
"output": "0"
},
{
"input": "24\n17 51",
"output": "0"
},
{
"input": "8\n14 57",
"output": "0"
},
{
"input": "52\n18 54",
"output": "2"
},
{
"input": "20\n15 52",
"output": "24"
},
{
"input": "20\n03 58",
"output": "30"
},
{
"input": "48\n07 11",
"output": "0"
},
{
"input": "32\n04 01",
"output": "2"
},
{
"input": "60\n08 15",
"output": "1"
},
{
"input": "44\n20 20",
"output": "4"
},
{
"input": "55\n15 35",
"output": "9"
},
{
"input": "55\n03 49",
"output": "11"
},
{
"input": "23\n16 39",
"output": "4"
},
{
"input": "7\n20 36",
"output": "7"
},
{
"input": "35\n16 42",
"output": "1"
},
{
"input": "35\n05 56",
"output": "21"
},
{
"input": "3\n17 45",
"output": "0"
},
{
"input": "47\n05 59",
"output": "6"
},
{
"input": "15\n10 13",
"output": "9"
},
{
"input": "59\n06 18",
"output": "9"
},
{
"input": "34\n17 18",
"output": "0"
},
{
"input": "18\n05 23",
"output": "2"
},
{
"input": "46\n17 21",
"output": "0"
},
{
"input": "30\n06 27",
"output": "0"
},
{
"input": "14\n18 40",
"output": "3"
},
{
"input": "58\n22 54",
"output": "6"
},
{
"input": "26\n19 44",
"output": "5"
},
{
"input": "10\n15 57",
"output": "0"
},
{
"input": "54\n20 47",
"output": "0"
},
{
"input": "22\n08 45",
"output": "3"
},
{
"input": "48\n18 08",
"output": "1"
},
{
"input": "32\n07 06",
"output": "0"
},
{
"input": "60\n19 19",
"output": "2"
},
{
"input": "45\n07 25",
"output": "0"
},
{
"input": "29\n12 39",
"output": "8"
},
{
"input": "13\n08 28",
"output": "3"
},
{
"input": "41\n21 42",
"output": "5"
},
{
"input": "41\n09 32",
"output": "3"
},
{
"input": "9\n21 45",
"output": "2"
},
{
"input": "37\n10 43",
"output": "5"
},
{
"input": "3\n20 50",
"output": "1"
},
{
"input": "47\n00 04",
"output": "1"
},
{
"input": "15\n13 10",
"output": "21"
},
{
"input": "15\n17 23",
"output": "0"
},
{
"input": "43\n22 13",
"output": "2"
},
{
"input": "27\n10 26",
"output": "6"
},
{
"input": "55\n22 24",
"output": "5"
},
{
"input": "55\n03 30",
"output": "11"
},
{
"input": "24\n23 27",
"output": "0"
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{
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{
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{
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{
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{
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{
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},
{
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{
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"output": "0"
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{
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"output": "4"
},
{
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"output": "12"
},
{
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"output": "4"
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{
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"output": "4"
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{
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{
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{
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{
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{
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{
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"output": "2"
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{
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"output": "8"
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{
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{
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{
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},
{
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"output": "8"
},
{
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"output": "4"
},
{
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"output": "91"
},
{
"input": "60\n00 01",
"output": "7"
},
{
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"output": "1"
},
{
"input": "13\n00 00",
"output": "1"
},
{
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"output": "2"
},
{
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"output": "145"
},
{
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"output": "11"
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{
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"output": "96"
},
{
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"output": "47"
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{
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"output": "2"
},
{
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},
{
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{
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{
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{
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{
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{
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{
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{
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},
{
"input": "60\n03 00",
"output": "10"
},
{
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},
{
"input": "5\n01 13",
"output": "87"
},
{
"input": "30\n02 43",
"output": "18"
},
{
"input": "17\n00 08",
"output": "3"
},
{
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"output": "1"
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{
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"output": "7"
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{
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{
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"output": "14"
},
{
"input": "1\n00 06",
"output": "9"
},
{
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"output": "7"
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{
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{
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"output": "9"
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{
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{
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{
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{
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"output": "1"
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{
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{
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{
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{
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{
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{
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{
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{
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{
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{
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{
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{
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{
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{
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{
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{
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{
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{
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{
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{
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{
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{
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{
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{
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{
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{
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},
{
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{
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{
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{
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{
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{
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{
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{
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{
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"output": "1"
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{
"input": "10\n06 58",
"output": "78"
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{
"input": "59\n00 58",
"output": "8"
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{
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"output": "1"
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{
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"output": "9"
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{
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"output": "2"
},
{
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"output": "4"
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"output": "87"
},
{
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"output": "7"
},
{
"input": "16\n18 16",
"output": "2"
},
{
"input": "5\n01 05",
"output": "86"
},
{
"input": "5\n05 00",
"output": "133"
},
{
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{
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"output": "0"
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"output": "1"
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{
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"output": "8"
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{
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"output": "2"
},
{
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"output": "211"
},
{
"input": "60\n00 24",
"output": "7"
},
{
"input": "10\n00 08",
"output": "37"
},
{
"input": "10\n00 06",
"output": "37"
},
{
"input": "60\n01 24",
"output": "8"
},
{
"input": "50\n00 10",
"output": "8"
},
{
"input": "2\n03 00",
"output": "271"
},
{
"input": "4\n19 04",
"output": "17"
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{
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"output": "16"
},
{
"input": "10\n01 01",
"output": "43"
}
] | 1,516,374,573
| 2,073
|
Python 3
|
OK
|
TESTS
| 254
| 78
| 5,632,000
|
from sys import stdin, stdout
x = int(stdin.readline())
h, m = map(int, stdin.readline().split())
cnt = 0
while '7' not in str(h) and '7' not in str(m):
if m < x:
if h == 0:
h = 23
m = m + 60 - x
cnt += 1
else:
h -= 1
m = m + 60 - x
cnt += 1
else:
m -= x
cnt += 1
stdout.write(str(cnt))
|
Title: Jamie and Alarm Snooze
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
Jamie loves sleeping. One day, he decides that he needs to wake up at exactly *hh*:<=*mm*. However, he hates waking up, so he wants to make waking up less painful by setting the alarm at a lucky time. He will then press the snooze button every *x* minutes until *hh*:<=*mm* is reached, and only then he will wake up. He wants to know what is the smallest number of times he needs to press the snooze button.
A time is considered lucky if it contains a digit '7'. For example, 13:<=07 and 17:<=27 are lucky, while 00:<=48 and 21:<=34 are not lucky.
Note that it is not necessary that the time set for the alarm and the wake-up time are on the same day. It is guaranteed that there is a lucky time Jamie can set so that he can wake at *hh*:<=*mm*.
Formally, find the smallest possible non-negative integer *y* such that the time representation of the time *x*·*y* minutes before *hh*:<=*mm* contains the digit '7'.
Jamie uses 24-hours clock, so after 23:<=59 comes 00:<=00.
Input Specification:
The first line contains a single integer *x* (1<=≤<=*x*<=≤<=60).
The second line contains two two-digit integers, *hh* and *mm* (00<=≤<=*hh*<=≤<=23,<=00<=≤<=*mm*<=≤<=59).
Output Specification:
Print the minimum number of times he needs to press the button.
Demo Input:
['3\n11 23\n', '5\n01 07\n']
Demo Output:
['2\n', '0\n']
Note:
In the first sample, Jamie needs to wake up at 11:23. So, he can set his alarm at 11:17. He would press the snooze button when the alarm rings at 11:17 and at 11:20.
In the second sample, Jamie can set his alarm at exactly at 01:07 which is lucky.
|
```python
from sys import stdin, stdout
x = int(stdin.readline())
h, m = map(int, stdin.readline().split())
cnt = 0
while '7' not in str(h) and '7' not in str(m):
if m < x:
if h == 0:
h = 23
m = m + 60 - x
cnt += 1
else:
h -= 1
m = m + 60 - x
cnt += 1
else:
m -= x
cnt += 1
stdout.write(str(cnt))
```
| 3
|
|
810
|
B
|
Summer sell-off
|
PROGRAMMING
| 1,300
|
[
"greedy",
"sortings"
] | null | null |
Summer holidays! Someone is going on trips, someone is visiting grandparents, but someone is trying to get a part-time job. This summer Noora decided that she wants to earn some money, and took a job in a shop as an assistant.
Shop, where Noora is working, has a plan on the following *n* days. For each day sales manager knows exactly, that in *i*-th day *k**i* products will be put up for sale and exactly *l**i* clients will come to the shop that day. Also, the manager is sure, that everyone, who comes to the shop, buys exactly one product or, if there aren't any left, leaves the shop without buying anything. Moreover, due to the short shelf-life of the products, manager established the following rule: if some part of the products left on the shelves at the end of the day, that products aren't kept on the next day and are sent to the dump.
For advertising purposes manager offered to start a sell-out in the shop. He asked Noora to choose any *f* days from *n* next for sell-outs. On each of *f* chosen days the number of products were put up for sale would be doubled. Thus, if on *i*-th day shop planned to put up for sale *k**i* products and Noora has chosen this day for sell-out, shelves of the shop would keep 2·*k**i* products. Consequently, there is an opportunity to sell two times more products on days of sell-out.
Noora's task is to choose *f* days to maximize total number of sold products. She asks you to help her with such a difficult problem.
|
The first line contains two integers *n* and *f* (1<=≤<=*n*<=≤<=105,<=0<=≤<=*f*<=≤<=*n*) denoting the number of days in shop's plan and the number of days that Noora has to choose for sell-out.
Each line of the following *n* subsequent lines contains two integers *k**i*,<=*l**i* (0<=≤<=*k**i*,<=*l**i*<=≤<=109) denoting the number of products on the shelves of the shop on the *i*-th day and the number of clients that will come to the shop on *i*-th day.
|
Print a single integer denoting the maximal number of products that shop can sell.
|
[
"4 2\n2 1\n3 5\n2 3\n1 5\n",
"4 1\n0 2\n0 3\n3 5\n0 6\n"
] |
[
"10",
"5"
] |
In the first example we can choose days with numbers 2 and 4 for sell-out. In this case new numbers of products for sale would be equal to [2, 6, 2, 2] respectively. So on the first day shop will sell 1 product, on the second — 5, on the third — 2, on the fourth — 2. In total 1 + 5 + 2 + 2 = 10 product units.
In the second example it is possible to sell 5 products, if you choose third day for sell-out.
| 1,000
|
[
{
"input": "4 2\n2 1\n3 5\n2 3\n1 5",
"output": "10"
},
{
"input": "4 1\n0 2\n0 3\n3 5\n0 6",
"output": "5"
},
{
"input": "1 1\n5 8",
"output": "8"
},
{
"input": "2 1\n8 12\n6 11",
"output": "19"
},
{
"input": "2 1\n6 7\n5 7",
"output": "13"
},
{
"input": "2 1\n5 7\n6 7",
"output": "13"
},
{
"input": "2 1\n7 8\n3 6",
"output": "13"
},
{
"input": "2 1\n9 10\n5 8",
"output": "17"
},
{
"input": "2 1\n3 6\n7 8",
"output": "13"
},
{
"input": "1 0\n10 20",
"output": "10"
},
{
"input": "2 1\n99 100\n3 6",
"output": "105"
},
{
"input": "4 2\n2 10\n3 10\n9 9\n5 10",
"output": "27"
},
{
"input": "2 1\n3 4\n2 8",
"output": "7"
},
{
"input": "50 2\n74 90\n68 33\n49 88\n52 13\n73 21\n77 63\n27 62\n8 52\n60 57\n42 83\n98 15\n79 11\n77 46\n55 91\n72 100\n70 86\n50 51\n57 39\n20 54\n64 95\n66 22\n79 64\n31 28\n11 89\n1 36\n13 4\n75 62\n16 62\n100 35\n43 96\n97 54\n86 33\n62 63\n94 24\n19 6\n20 58\n38 38\n11 76\n70 40\n44 24\n32 96\n28 100\n62 45\n41 68\n90 52\n16 0\n98 32\n81 79\n67 82\n28 2",
"output": "1889"
},
{
"input": "2 1\n10 5\n2 4",
"output": "9"
},
{
"input": "2 1\n50 51\n30 40",
"output": "90"
},
{
"input": "3 2\n5 10\n5 10\n7 9",
"output": "27"
},
{
"input": "3 1\n1000 1000\n50 100\n2 2",
"output": "1102"
},
{
"input": "2 1\n2 4\n12 12",
"output": "16"
},
{
"input": "2 1\n4 4\n1 2",
"output": "6"
},
{
"input": "2 1\n4000 4000\n1 2",
"output": "4002"
},
{
"input": "2 1\n5 6\n2 4",
"output": "9"
},
{
"input": "3 2\n10 10\n10 10\n1 2",
"output": "22"
},
{
"input": "10 5\n9 1\n11 1\n12 1\n13 1\n14 1\n2 4\n2 4\n2 4\n2 4\n2 4",
"output": "25"
},
{
"input": "2 1\n30 30\n10 20",
"output": "50"
},
{
"input": "1 1\n1 1",
"output": "1"
},
{
"input": "2 1\n10 2\n2 10",
"output": "6"
},
{
"input": "2 1\n4 5\n3 9",
"output": "10"
},
{
"input": "2 1\n100 100\n5 10",
"output": "110"
},
{
"input": "2 1\n14 28\n15 28",
"output": "43"
},
{
"input": "2 1\n100 1\n20 40",
"output": "41"
},
{
"input": "2 1\n5 10\n6 10",
"output": "16"
},
{
"input": "2 1\n29 30\n10 20",
"output": "49"
},
{
"input": "1 0\n12 12",
"output": "12"
},
{
"input": "2 1\n7 8\n4 7",
"output": "14"
},
{
"input": "2 1\n5 5\n2 4",
"output": "9"
},
{
"input": "2 1\n1 2\n228 2",
"output": "4"
},
{
"input": "2 1\n5 10\n100 20",
"output": "30"
},
{
"input": "2 1\n1000 1001\n2 4",
"output": "1004"
},
{
"input": "2 1\n3 9\n7 7",
"output": "13"
},
{
"input": "2 0\n1 1\n1 1",
"output": "2"
},
{
"input": "4 1\n10 10\n10 10\n10 10\n4 6",
"output": "36"
},
{
"input": "18 13\n63 8\n87 100\n18 89\n35 29\n66 81\n27 85\n64 51\n60 52\n32 94\n74 22\n86 31\n43 78\n12 2\n36 2\n67 23\n2 16\n78 71\n34 64",
"output": "772"
},
{
"input": "2 1\n10 18\n17 19",
"output": "35"
},
{
"input": "3 0\n1 1\n1 1\n1 1",
"output": "3"
},
{
"input": "2 1\n4 7\n8 9",
"output": "15"
},
{
"input": "4 2\n2 10\n3 10\n9 10\n5 10",
"output": "27"
},
{
"input": "2 1\n5 7\n3 6",
"output": "11"
},
{
"input": "2 1\n3 4\n12 12",
"output": "16"
},
{
"input": "2 1\n10 11\n9 20",
"output": "28"
},
{
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"output": "11"
},
{
"input": "2 1\n5 10\n7 10",
"output": "17"
},
{
"input": "4 2\n2 10\n3 10\n5 10\n9 10",
"output": "27"
},
{
"input": "2 1\n99 100\n5 10",
"output": "109"
},
{
"input": "4 2\n2 10\n3 10\n5 10\n9 9",
"output": "27"
},
{
"input": "2 1\n3 7\n5 7",
"output": "11"
},
{
"input": "2 1\n10 10\n3 6",
"output": "16"
},
{
"input": "2 1\n100 1\n2 4",
"output": "5"
},
{
"input": "5 0\n1 1\n1 1\n1 1\n1 1\n1 1",
"output": "5"
},
{
"input": "3 1\n3 7\n4 5\n2 3",
"output": "12"
},
{
"input": "2 1\n3 9\n7 8",
"output": "13"
},
{
"input": "2 1\n10 2\n3 4",
"output": "6"
},
{
"input": "2 1\n40 40\n3 5",
"output": "45"
},
{
"input": "2 1\n5 3\n1 2",
"output": "5"
},
{
"input": "10 5\n9 5\n10 5\n11 5\n12 5\n13 5\n2 4\n2 4\n2 4\n2 4\n2 4",
"output": "45"
},
{
"input": "3 1\n1 5\n1 5\n4 4",
"output": "7"
},
{
"input": "4 0\n1 1\n1 1\n1 1\n1 1",
"output": "4"
},
{
"input": "4 1\n1000 1001\n1000 1001\n2 4\n1 2",
"output": "2005"
},
{
"input": "2 1\n15 30\n50 59",
"output": "80"
},
{
"input": "2 1\n8 8\n3 5",
"output": "13"
},
{
"input": "2 1\n4 5\n2 5",
"output": "8"
},
{
"input": "3 2\n3 3\n1 2\n1 2",
"output": "7"
},
{
"input": "3 1\n2 5\n2 5\n4 4",
"output": "10"
},
{
"input": "2 1\n3 10\n50 51",
"output": "56"
},
{
"input": "4 2\n2 4\n2 4\n9 10\n9 10",
"output": "26"
},
{
"input": "2 1\n3 5\n8 8",
"output": "13"
},
{
"input": "2 1\n100 150\n70 150",
"output": "240"
},
{
"input": "2 1\n4 5\n3 6",
"output": "10"
},
{
"input": "2 1\n20 10\n3 5",
"output": "15"
},
{
"input": "15 13\n76167099 92301116\n83163126 84046805\n45309500 65037149\n29982002 77381688\n76738161 52935441\n37889502 25466134\n55955619 14197941\n31462620 12999429\n64648384 8824773\n3552934 68992494\n2823376 9338427\n86832070 3763091\n67753633 2162190\n302887 92011825\n84894984 410533",
"output": "435467000"
},
{
"input": "2 1\n8 7\n3 6",
"output": "13"
},
{
"input": "2 1\n7 8\n3 5",
"output": "12"
},
{
"input": "2 1\n10 10\n1 3",
"output": "12"
},
{
"input": "2 1\n9 10\n2 4",
"output": "13"
},
{
"input": "3 1\n10 11\n12 13\n8 10",
"output": "32"
},
{
"input": "2 1\n5 10\n7 7",
"output": "17"
},
{
"input": "4 2\n90 91\n2 10\n2 10\n2 10",
"output": "100"
},
{
"input": "2 1\n2 4\n4 4",
"output": "8"
},
{
"input": "2 1\n2 3\n4 3",
"output": "6"
},
{
"input": "2 1\n40 45\n50 52",
"output": "95"
},
{
"input": "3 1\n1 4\n2 4\n3 4",
"output": "8"
},
{
"input": "2 1\n1 2\n1000 1000",
"output": "1002"
},
{
"input": "2 1\n80 100\n70 95",
"output": "175"
}
] | 1,641,821,570
| 2,147,483,647
|
Python 3
|
WRONG_ANSWER
|
TESTS
| 6
| 46
| 0
|
n , days = map(int,input().split())
l = []
for i in range(n):
t = [int(i) for i in input().split()]
l.append(t)
l.sort(key = lambda x : x[1]-x[0])
s = 0
for i in range(n-1,-1,-1):
if days > 0 and l[i][0] != 0:
if 2 * l[i][0] >= l[i][1]:
s += l[i][1]
else:
s += 2 * l[i][0]
days -= 1
else:
s += min(l[i][0],l[i][1])
print(s)
|
Title: Summer sell-off
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
Summer holidays! Someone is going on trips, someone is visiting grandparents, but someone is trying to get a part-time job. This summer Noora decided that she wants to earn some money, and took a job in a shop as an assistant.
Shop, where Noora is working, has a plan on the following *n* days. For each day sales manager knows exactly, that in *i*-th day *k**i* products will be put up for sale and exactly *l**i* clients will come to the shop that day. Also, the manager is sure, that everyone, who comes to the shop, buys exactly one product or, if there aren't any left, leaves the shop without buying anything. Moreover, due to the short shelf-life of the products, manager established the following rule: if some part of the products left on the shelves at the end of the day, that products aren't kept on the next day and are sent to the dump.
For advertising purposes manager offered to start a sell-out in the shop. He asked Noora to choose any *f* days from *n* next for sell-outs. On each of *f* chosen days the number of products were put up for sale would be doubled. Thus, if on *i*-th day shop planned to put up for sale *k**i* products and Noora has chosen this day for sell-out, shelves of the shop would keep 2·*k**i* products. Consequently, there is an opportunity to sell two times more products on days of sell-out.
Noora's task is to choose *f* days to maximize total number of sold products. She asks you to help her with such a difficult problem.
Input Specification:
The first line contains two integers *n* and *f* (1<=≤<=*n*<=≤<=105,<=0<=≤<=*f*<=≤<=*n*) denoting the number of days in shop's plan and the number of days that Noora has to choose for sell-out.
Each line of the following *n* subsequent lines contains two integers *k**i*,<=*l**i* (0<=≤<=*k**i*,<=*l**i*<=≤<=109) denoting the number of products on the shelves of the shop on the *i*-th day and the number of clients that will come to the shop on *i*-th day.
Output Specification:
Print a single integer denoting the maximal number of products that shop can sell.
Demo Input:
['4 2\n2 1\n3 5\n2 3\n1 5\n', '4 1\n0 2\n0 3\n3 5\n0 6\n']
Demo Output:
['10', '5']
Note:
In the first example we can choose days with numbers 2 and 4 for sell-out. In this case new numbers of products for sale would be equal to [2, 6, 2, 2] respectively. So on the first day shop will sell 1 product, on the second — 5, on the third — 2, on the fourth — 2. In total 1 + 5 + 2 + 2 = 10 product units.
In the second example it is possible to sell 5 products, if you choose third day for sell-out.
|
```python
n , days = map(int,input().split())
l = []
for i in range(n):
t = [int(i) for i in input().split()]
l.append(t)
l.sort(key = lambda x : x[1]-x[0])
s = 0
for i in range(n-1,-1,-1):
if days > 0 and l[i][0] != 0:
if 2 * l[i][0] >= l[i][1]:
s += l[i][1]
else:
s += 2 * l[i][0]
days -= 1
else:
s += min(l[i][0],l[i][1])
print(s)
```
| 0
|
|
496
|
C
|
Removing Columns
|
PROGRAMMING
| 1,500
|
[
"brute force",
"constructive algorithms",
"implementation"
] | null | null |
You are given an *n*<=×<=*m* rectangular table consisting of lower case English letters. In one operation you can completely remove one column from the table. The remaining parts are combined forming a new table. For example, after removing the second column from the table
we obtain the table:
A table is called good if its rows are ordered from top to bottom lexicographically, i.e. each row is lexicographically no larger than the following one. Determine the minimum number of operations of removing a column needed to make a given table good.
|
The first line contains two integers — *n* and *m* (1<=≤<=*n*,<=*m*<=≤<=100).
Next *n* lines contain *m* small English letters each — the characters of the table.
|
Print a single number — the minimum number of columns that you need to remove in order to make the table good.
|
[
"1 10\ncodeforces\n",
"4 4\ncase\ncare\ntest\ncode\n",
"5 4\ncode\nforc\nesco\ndefo\nrces\n"
] |
[
"0\n",
"2\n",
"4\n"
] |
In the first sample the table is already good.
In the second sample you may remove the first and third column.
In the third sample you have to remove all the columns (note that the table where all rows are empty is considered good by definition).
Let strings *s* and *t* have equal length. Then, *s* is lexicographically larger than *t* if they are not equal and the character following the largest common prefix of *s* and *t* (the prefix may be empty) in *s* is alphabetically larger than the corresponding character of *t*.
| 1,750
|
[
{
"input": "1 10\ncodeforces",
"output": "0"
},
{
"input": "4 4\ncase\ncare\ntest\ncode",
"output": "2"
},
{
"input": "5 4\ncode\nforc\nesco\ndefo\nrces",
"output": "4"
},
{
"input": "2 2\nfb\nye",
"output": "0"
},
{
"input": "5 5\nrzrzh\nrzrzh\nrzrzh\nrzrzh\nrzrzh",
"output": "0"
},
{
"input": "10 10\nddorannorz\nmdrnzqvqgo\ngdtdjmlsuf\neoxbrntqdp\nhribwlslgo\newlqrontvk\nnxibmnawnh\nvxiwdjvdom\nhyhhewmzmp\niysgvzayst",
"output": "1"
},
{
"input": "9 7\nygqartj\nlgwxlqv\nancjjpr\nwnnhkpx\ncnnhvty\nxsfrbqp\nxsolyne\nbsoojiq\nxstetjb",
"output": "1"
},
{
"input": "4 50\nulkteempxafxafcvfwmwhsixwzgbmubcqqceevbbwijeerqbsj\neyqxsievaratndjoekltlqwppfgcukjwxdxexhejbfhzklppkk\npskatxpbjdbmjpwhussetytneohgzxgirluwnbraxtxmaupuid\neappatavdzktqlrjqttmwwroathnulubpjgsjazcycecwmxwvn",
"output": "20"
},
{
"input": "5 50\nvlrkwhvbigkhihwqjpvmohdsszvndheqlmdsspkkxxiedobizr\nmhnzwdefqmttclfxocdmvvtdjtvqhmdllrtrrlnewuqowmtrmp\nrihlhxrqfhpcddslxepesvjqmlqgwyehvxjcsytevujfegeewh\nqrdyiymanvbdjomyruspreihahjhgkcixwowfzczundxqydldq\nkgnrbjlrmkuoiuzeiqwhnyjpuzfnsinqiamlnuzksrdnlvaxjd",
"output": "50"
},
{
"input": "100 1\ni\ni\ni\ni\ni\ni\ni\ni\ni\ni\ni\ni\ni\ni\ni\ni\ni\ni\ni\ni\ni\ni\ni\ni\ni\ni\ni\ni\ni\nv\nv\nv\nv\nv\nv\nv\nv\nv\nv\nv\nv\nv\nv\nv\nv\nv\nv\nv\nv\nv\nv\nv\nv\nv\nv\nv\nv\nv\nv\nv\nv\nv\nv\nx\nx\nx\nx\nx\nx\nx\nx\nx\nx\nx\nx\nx\nx\nx\nx\nx\nx\nx\nx\nx\nx\nx\nx\nx\nx\nx\nx\nx\nx\nx\nx\nx\nx\nx\nx\nx",
"output": "0"
},
{
"input": "1 100\nteloaetuldspjqdlcktjlishwynmjjhlomvemhoyyplbltfwmrlnazbbjvyvwvoxjvvoadkznvxqubgwesoxrznvbdizjdzixecb",
"output": "0"
},
{
"input": "4 100\ngdgmmejiigzsmlarrnfsypvlbutvoxazcigpcospgztqkowfhhbnnbxxrbmwbxwkvxlxzabjjjdtbebedukdelooqlxnadjwjpnp\ndmtsnsbsfdzqvydxcdcnkkfcbseicxhvclsligbhqlkccwujpirymoshkqcosbtlxdypsdqkqaolrqtiibymavcwmbfryttdckhw\njtdmpdljcpciuuoznvqqmafvoqychzfslmwqouuarxctunlzegxsucrwontjplkkxhgixgdbvnewphnatxnwqxqshcexpxlyjuwq\nvhdtvexkyhjmahejbhyfeaompjkdvxmbtdbmvrxrixhnkkjgyvfbxlviatbikfejnqhkrtafftmsgyznpsfxsnzaqdzhxridzilo",
"output": "4"
},
{
"input": "5 2\nab\ndc\ngd\ngc\nhx",
"output": "1"
},
{
"input": "2 1\nb\na",
"output": "1"
},
{
"input": "4 3\nabd\nacc\nbdx\nbcy",
"output": "2"
},
{
"input": "4 2\nad\nac\nbd\nbc",
"output": "1"
},
{
"input": "3 3\naac\nabb\nbba",
"output": "0"
},
{
"input": "3 3\nadc\nbdb\ncda",
"output": "0"
},
{
"input": "4 3\nabz\ndby\ngbx\nhbw",
"output": "0"
},
{
"input": "3 3\naac\nbab\ncaa",
"output": "0"
},
{
"input": "5 6\naaaeaa\nababab\nacacac\nadadad\naeaeae",
"output": "0"
},
{
"input": "3 2\naa\nbc\nba",
"output": "1"
},
{
"input": "3 3\naaz\ndaa\nbaa",
"output": "2"
},
{
"input": "3 3\nabc\nbbb\ncba",
"output": "0"
},
{
"input": "2 3\naxc\nbxa",
"output": "0"
}
] | 1,698,263,302
| 2,147,483,647
|
PyPy 3-64
|
WRONG_ANSWER
|
TESTS
| 14
| 93
| 5,939,200
|
from os import path
from sys import stdin, stdout
from types import GeneratorType
filename = "../templates/input.txt"
if path.exists(filename):
stdin = open(filename, 'r')
def input():
return stdin.readline().rstrip()
def print(*args, sep=' ', end='\n'):
stdout.write(sep.join(map(str, args)))
stdout.write(end)
def bootstrap(f, stack=[]):
def wrappedfunc(*args, **kwargs):
if stack:
return f(*args, **kwargs)
to = f(*args, **kwargs)
while True:
if type(to) is GeneratorType:
stack.append(to)
to = next(to)
else:
stack.pop()
if not stack:
break
to = stack[-1].send(to)
return to
return wrappedfunc
def solution():
@bootstrap
def dp(j: int, prev: int) -> int:
if (j, prev) in cache:
yield cache[(j, prev)]
if j == m:
ans = 0
else:
ans = 10 ** 20
for i in range(1, n):
if a[i - 1][prev] == a[i][prev] and a[i][j] < a[i - 1][j]:
ans = min(ans, 1 + (yield dp(j + 1, prev)))
break
else:
ans = min(ans, 1 + (yield dp(j + 1, prev)))
ans = min(ans, (yield dp(j + 1, j)))
cache[(j, prev)] = ans
yield ans
n, m = [int(num) for num in input().split()]
a = []
for i in range(n):
a.append(input() + 'a')
cache = dict()
print(dp(0, -1))
def main():
t = 1
while t:
solution()
t -= 1
if __name__ == '__main__':
main()
|
Title: Removing Columns
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
You are given an *n*<=×<=*m* rectangular table consisting of lower case English letters. In one operation you can completely remove one column from the table. The remaining parts are combined forming a new table. For example, after removing the second column from the table
we obtain the table:
A table is called good if its rows are ordered from top to bottom lexicographically, i.e. each row is lexicographically no larger than the following one. Determine the minimum number of operations of removing a column needed to make a given table good.
Input Specification:
The first line contains two integers — *n* and *m* (1<=≤<=*n*,<=*m*<=≤<=100).
Next *n* lines contain *m* small English letters each — the characters of the table.
Output Specification:
Print a single number — the minimum number of columns that you need to remove in order to make the table good.
Demo Input:
['1 10\ncodeforces\n', '4 4\ncase\ncare\ntest\ncode\n', '5 4\ncode\nforc\nesco\ndefo\nrces\n']
Demo Output:
['0\n', '2\n', '4\n']
Note:
In the first sample the table is already good.
In the second sample you may remove the first and third column.
In the third sample you have to remove all the columns (note that the table where all rows are empty is considered good by definition).
Let strings *s* and *t* have equal length. Then, *s* is lexicographically larger than *t* if they are not equal and the character following the largest common prefix of *s* and *t* (the prefix may be empty) in *s* is alphabetically larger than the corresponding character of *t*.
|
```python
from os import path
from sys import stdin, stdout
from types import GeneratorType
filename = "../templates/input.txt"
if path.exists(filename):
stdin = open(filename, 'r')
def input():
return stdin.readline().rstrip()
def print(*args, sep=' ', end='\n'):
stdout.write(sep.join(map(str, args)))
stdout.write(end)
def bootstrap(f, stack=[]):
def wrappedfunc(*args, **kwargs):
if stack:
return f(*args, **kwargs)
to = f(*args, **kwargs)
while True:
if type(to) is GeneratorType:
stack.append(to)
to = next(to)
else:
stack.pop()
if not stack:
break
to = stack[-1].send(to)
return to
return wrappedfunc
def solution():
@bootstrap
def dp(j: int, prev: int) -> int:
if (j, prev) in cache:
yield cache[(j, prev)]
if j == m:
ans = 0
else:
ans = 10 ** 20
for i in range(1, n):
if a[i - 1][prev] == a[i][prev] and a[i][j] < a[i - 1][j]:
ans = min(ans, 1 + (yield dp(j + 1, prev)))
break
else:
ans = min(ans, 1 + (yield dp(j + 1, prev)))
ans = min(ans, (yield dp(j + 1, j)))
cache[(j, prev)] = ans
yield ans
n, m = [int(num) for num in input().split()]
a = []
for i in range(n):
a.append(input() + 'a')
cache = dict()
print(dp(0, -1))
def main():
t = 1
while t:
solution()
t -= 1
if __name__ == '__main__':
main()
```
| 0
|
|
769
|
D
|
k-Interesting Pairs Of Integers
|
PROGRAMMING
| 1,700
|
[
"*special",
"bitmasks",
"brute force",
"meet-in-the-middle"
] | null | null |
Vasya has the sequence consisting of *n* integers. Vasya consider the pair of integers *x* and *y* k-interesting, if their binary representation differs from each other exactly in *k* bits. For example, if *k*<==<=2, the pair of integers *x*<==<=5 and *y*<==<=3 is k-interesting, because their binary representation *x*=101 and *y*=011 differs exactly in two bits.
Vasya wants to know how many pairs of indexes (*i*, *j*) are in his sequence so that *i*<=<<=*j* and the pair of integers *a**i* and *a**j* is k-interesting. Your task is to help Vasya and determine this number.
|
The first line contains two integers *n* and *k* (2<=≤<=*n*<=≤<=105, 0<=≤<=*k*<=≤<=14) — the number of integers in Vasya's sequence and the number of bits in which integers in k-interesting pair should differ.
The second line contains the sequence *a*1,<=*a*2,<=...,<=*a**n* (0<=≤<=*a**i*<=≤<=104), which Vasya has.
|
Print the number of pairs (*i*, *j*) so that *i*<=<<=*j* and the pair of integers *a**i* and *a**j* is k-interesting.
|
[
"4 1\n0 3 2 1\n",
"6 0\n200 100 100 100 200 200\n"
] |
[
"4\n",
"6\n"
] |
In the first test there are 4 k-interesting pairs:
- (1, 3), - (1, 4), - (2, 3), - (2, 4).
In the second test *k* = 0. Consequently, integers in any k-interesting pair should be equal to themselves. Thus, for the second test there are 6 k-interesting pairs:
- (1, 5), - (1, 6), - (2, 3), - (2, 4), - (3, 4), - (5, 6).
| 2,000
|
[
{
"input": "4 1\n0 3 2 1",
"output": "4"
},
{
"input": "6 0\n200 100 100 100 200 200",
"output": "6"
},
{
"input": "2 0\n1 1",
"output": "1"
},
{
"input": "2 0\n0 0",
"output": "1"
},
{
"input": "2 0\n10000 10000",
"output": "1"
},
{
"input": "2 0\n0 10000",
"output": "0"
},
{
"input": "2 1\n0 1",
"output": "1"
},
{
"input": "2 1\n0 2",
"output": "1"
},
{
"input": "3 1\n0 1 2",
"output": "2"
},
{
"input": "3 2\n0 3 3",
"output": "2"
},
{
"input": "3 2\n3 3 3",
"output": "0"
},
{
"input": "10 0\n1 1 1 1 1 1 1 1 1 1",
"output": "45"
},
{
"input": "100 14\n8192 8192 8192 8192 8191 8192 8192 8192 8192 8192 8191 8191 8191 8192 8191 8191 8191 8192 8192 8192 8192 8192 8191 8191 8191 8192 8191 8192 8192 8192 8192 8192 8192 8191 8191 8192 8192 8191 8191 8192 8192 8192 8191 8191 8192 8191 8191 8191 8191 8191 8191 8192 8191 8191 8192 8191 8191 8192 8192 8191 8192 8192 8192 8192 8192 8192 8192 8191 8192 8192 8192 8191 8191 8192 8192 8192 8191 8192 8192 8192 8192 8192 8191 8192 8192 8191 8192 8192 8192 8192 8191 8192 8191 8191 8192 8191 8192 8192 8191 8191",
"output": "2400"
}
] | 1,488,643,499
| 14,699
|
Python 3
|
WRONG_ANSWER
|
PRETESTS
| 2
| 46
| 4,608,000
|
n, k = map(int, input().split())
a = [int(t) for t in input().split()]
ans = 0
for l in range(n):
for r in range(l + 1, n):
dif = 0
for i in range(len(bin(l))):
if bin(l)[i] != bin(r)[i]:
dif += 1
if dif == k:
ans += 1
print(ans)
|
Title: k-Interesting Pairs Of Integers
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
Vasya has the sequence consisting of *n* integers. Vasya consider the pair of integers *x* and *y* k-interesting, if their binary representation differs from each other exactly in *k* bits. For example, if *k*<==<=2, the pair of integers *x*<==<=5 and *y*<==<=3 is k-interesting, because their binary representation *x*=101 and *y*=011 differs exactly in two bits.
Vasya wants to know how many pairs of indexes (*i*, *j*) are in his sequence so that *i*<=<<=*j* and the pair of integers *a**i* and *a**j* is k-interesting. Your task is to help Vasya and determine this number.
Input Specification:
The first line contains two integers *n* and *k* (2<=≤<=*n*<=≤<=105, 0<=≤<=*k*<=≤<=14) — the number of integers in Vasya's sequence and the number of bits in which integers in k-interesting pair should differ.
The second line contains the sequence *a*1,<=*a*2,<=...,<=*a**n* (0<=≤<=*a**i*<=≤<=104), which Vasya has.
Output Specification:
Print the number of pairs (*i*, *j*) so that *i*<=<<=*j* and the pair of integers *a**i* and *a**j* is k-interesting.
Demo Input:
['4 1\n0 3 2 1\n', '6 0\n200 100 100 100 200 200\n']
Demo Output:
['4\n', '6\n']
Note:
In the first test there are 4 k-interesting pairs:
- (1, 3), - (1, 4), - (2, 3), - (2, 4).
In the second test *k* = 0. Consequently, integers in any k-interesting pair should be equal to themselves. Thus, for the second test there are 6 k-interesting pairs:
- (1, 5), - (1, 6), - (2, 3), - (2, 4), - (3, 4), - (5, 6).
|
```python
n, k = map(int, input().split())
a = [int(t) for t in input().split()]
ans = 0
for l in range(n):
for r in range(l + 1, n):
dif = 0
for i in range(len(bin(l))):
if bin(l)[i] != bin(r)[i]:
dif += 1
if dif == k:
ans += 1
print(ans)
```
| 0
|
|
282
|
A
|
Bit++
|
PROGRAMMING
| 800
|
[
"implementation"
] | null | null |
The classic programming language of Bitland is Bit++. This language is so peculiar and complicated.
The language is that peculiar as it has exactly one variable, called *x*. Also, there are two operations:
- Operation ++ increases the value of variable *x* by 1. - Operation -- decreases the value of variable *x* by 1.
A statement in language Bit++ is a sequence, consisting of exactly one operation and one variable *x*. The statement is written without spaces, that is, it can only contain characters "+", "-", "X". Executing a statement means applying the operation it contains.
A programme in Bit++ is a sequence of statements, each of them needs to be executed. Executing a programme means executing all the statements it contains.
You're given a programme in language Bit++. The initial value of *x* is 0. Execute the programme and find its final value (the value of the variable when this programme is executed).
|
The first line contains a single integer *n* (1<=≤<=*n*<=≤<=150) — the number of statements in the programme.
Next *n* lines contain a statement each. Each statement contains exactly one operation (++ or --) and exactly one variable *x* (denoted as letter «X»). Thus, there are no empty statements. The operation and the variable can be written in any order.
|
Print a single integer — the final value of *x*.
|
[
"1\n++X\n",
"2\nX++\n--X\n"
] |
[
"1\n",
"0\n"
] |
none
| 500
|
[
{
"input": "1\n++X",
"output": "1"
},
{
"input": "2\nX++\n--X",
"output": "0"
},
{
"input": "3\n++X\n++X\n++X",
"output": "3"
},
{
"input": "2\n--X\n--X",
"output": "-2"
},
{
"input": "5\n++X\n--X\n++X\n--X\n--X",
"output": "-1"
},
{
"input": "28\nX--\n++X\nX++\nX++\nX++\n--X\n--X\nX++\nX--\n++X\nX++\n--X\nX--\nX++\nX--\n++X\n++X\nX++\nX++\nX++\nX++\n--X\n++X\n--X\n--X\n--X\n--X\nX++",
"output": "4"
},
{
"input": "94\nX++\nX++\n++X\n++X\nX--\n--X\nX++\n--X\nX++\n++X\nX++\n++X\n--X\n--X\n++X\nX++\n--X\nX--\nX--\n--X\nX--\nX--\n--X\n++X\n--X\nX--\nX--\nX++\n++X\n--X\nX--\n++X\n--X\n--X\nX--\nX--\nX++\nX++\nX--\nX++\nX--\nX--\nX--\n--X\nX--\nX--\nX--\nX++\n++X\nX--\n++X\nX++\n--X\n--X\n--X\n--X\n++X\nX--\n--X\n--X\n++X\nX--\nX--\nX++\n++X\nX++\n++X\n--X\n--X\nX--\n++X\nX--\nX--\n++X\n++X\n++X\n++X\nX++\n++X\n--X\nX++\n--X\n--X\n++X\n--X\nX++\n++X\nX++\n--X\nX--\nX--\n--X\n++X\nX++",
"output": "-10"
},
{
"input": "56\n--X\nX--\n--X\n--X\nX--\nX--\n--X\nX++\n++X\n--X\nX++\nX--\n--X\n++X\n--X\nX--\nX--\n++X\nX--\nX--\n--X\n++X\n--X\n++X\n--X\nX++\n++X\nX++\n--X\n++X\nX++\nX++\n--X\nX++\nX--\n--X\nX--\n--X\nX++\n++X\n--X\n++X\nX++\nX--\n--X\n--X\n++X\nX--\nX--\n--X\nX--\n--X\nX++\n--X\n++X\n--X",
"output": "-14"
},
{
"input": "59\nX--\n--X\nX++\n++X\nX--\n--X\n--X\n++X\n++X\n++X\n++X\nX++\n++X\n++X\nX++\n--X\nX--\nX++\n++X\n--X\nX++\n--X\n++X\nX++\n--X\n--X\nX++\nX++\n--X\nX++\nX++\nX++\nX--\nX--\n--X\nX++\nX--\nX--\n++X\nX--\nX++\n--X\nX++\nX--\nX--\nX--\nX--\n++X\n--X\nX++\nX++\nX--\nX++\n++X\nX--\nX++\nX--\nX--\n++X",
"output": "3"
},
{
"input": "87\n--X\n++X\n--X\nX++\n--X\nX--\n--X\n++X\nX--\n++X\n--X\n--X\nX++\n--X\nX--\nX++\n++X\n--X\n++X\n++X\n--X\n++X\n--X\nX--\n++X\n++X\nX--\nX++\nX++\n--X\n--X\n++X\nX--\n--X\n++X\n--X\nX++\n--X\n--X\nX--\n++X\n++X\n--X\nX--\nX--\nX--\nX--\nX--\nX++\n--X\n++X\n--X\nX++\n++X\nX++\n++X\n--X\nX++\n++X\nX--\n--X\nX++\n++X\nX++\nX++\n--X\n--X\n++X\n--X\nX++\nX++\n++X\nX++\nX++\nX++\nX++\n--X\n--X\n--X\n--X\n--X\n--X\n--X\nX--\n--X\n++X\n++X",
"output": "-5"
},
{
"input": "101\nX++\nX++\nX++\n++X\n--X\nX--\nX++\nX--\nX--\n--X\n--X\n++X\nX++\n++X\n++X\nX--\n--X\n++X\nX++\nX--\n++X\n--X\n--X\n--X\n++X\n--X\n++X\nX++\nX++\n++X\n--X\nX++\nX--\nX++\n++X\n++X\nX--\nX--\nX--\nX++\nX++\nX--\nX--\nX++\n++X\n++X\n++X\n--X\n--X\n++X\nX--\nX--\n--X\n++X\nX--\n++X\nX++\n++X\nX--\nX--\n--X\n++X\n--X\n++X\n++X\n--X\nX++\n++X\nX--\n++X\nX--\n++X\nX++\nX--\n++X\nX++\n--X\nX++\nX++\n++X\n--X\n++X\n--X\nX++\n--X\nX--\n--X\n++X\n++X\n++X\n--X\nX--\nX--\nX--\nX--\n--X\n--X\n--X\n++X\n--X\n--X",
"output": "1"
},
{
"input": "63\n--X\nX--\n++X\n--X\n++X\nX++\n--X\n--X\nX++\n--X\n--X\nX++\nX--\nX--\n--X\n++X\nX--\nX--\nX++\n++X\nX++\nX++\n--X\n--X\n++X\nX--\nX--\nX--\n++X\nX++\nX--\n--X\nX--\n++X\n++X\nX++\n++X\nX++\nX++\n--X\nX--\n++X\nX--\n--X\nX--\nX--\nX--\n++X\n++X\n++X\n++X\nX++\nX++\n++X\n--X\n--X\n++X\n++X\n++X\nX--\n++X\n++X\nX--",
"output": "1"
},
{
"input": "45\n--X\n++X\nX--\n++X\n++X\nX++\n--X\n--X\n--X\n--X\n--X\n--X\n--X\nX++\n++X\nX--\n++X\n++X\nX--\nX++\nX--\n--X\nX--\n++X\n++X\n--X\n--X\nX--\nX--\n--X\n++X\nX--\n--X\n++X\n++X\n--X\n--X\nX--\n++X\n++X\nX++\nX++\n++X\n++X\nX++",
"output": "-3"
},
{
"input": "21\n++X\nX++\n--X\nX--\nX++\n++X\n--X\nX--\nX++\nX--\nX--\nX--\nX++\n++X\nX++\n++X\n--X\nX--\n--X\nX++\n++X",
"output": "1"
},
{
"input": "100\n--X\n++X\nX++\n++X\nX--\n++X\nX--\nX++\n--X\nX++\nX--\nX--\nX--\n++X\nX--\nX++\nX++\n++X\nX++\nX++\nX++\nX++\n++X\nX++\n++X\nX--\n--X\n++X\nX--\n--X\n++X\n++X\nX--\nX++\nX++\nX++\n++X\n--X\n++X\nX++\nX--\n++X\n++X\n--X\n++X\nX--\nX--\nX--\nX++\nX--\nX--\nX++\nX++\n--X\nX++\nX++\n--X\nX--\n--X\n++X\n--X\n++X\n++X\nX--\n--X\n++X\n++X\n--X\n--X\n++X\nX++\nX--\nX++\nX--\nX++\nX++\n--X\nX--\nX--\n++X\nX--\n--X\n--X\nX++\n--X\n--X\nX--\nX--\n++X\n++X\nX--\n++X\nX++\n--X\n++X\n++X\nX++\n--X\n--X\nX++",
"output": "8"
},
{
"input": "17\nX++\nX++\n++X\n--X\n--X\n++X\n++X\n--X\nX--\nX++\nX--\n--X\n--X\nX--\n++X\nX--\nX++",
"output": "-1"
},
{
"input": "77\n++X\nX++\n--X\nX--\n--X\n--X\nX--\nX++\nX--\nX++\nX--\n++X\n--X\n--X\n--X\n--X\n++X\nX--\nX++\nX--\n--X\nX--\n--X\nX--\n++X\n--X\n++X\n++X\nX++\nX++\nX--\n--X\nX--\nX--\nX++\n--X\n--X\n++X\nX--\nX--\n++X\nX++\nX--\n++X\n--X\nX++\nX--\n++X\n++X\n++X\nX--\nX--\nX--\n--X\n++X\n++X\n++X\nX++\n--X\n--X\n++X\n--X\nX--\nX++\n++X\nX++\n++X\nX--\nX++\nX++\n--X\nX++\nX++\nX++\n--X\nX++\nX--",
"output": "-5"
},
{
"input": "21\nX--\n++X\n--X\nX--\n++X\nX--\n++X\nX--\n--X\n++X\nX++\n++X\nX++\n++X\nX--\n--X\nX++\nX++\nX--\n++X\nX--",
"output": "1"
},
{
"input": "1\nX--",
"output": "-1"
}
] | 1,699,045,098
| 2,147,483,647
|
Python 3
|
WRONG_ANSWER
|
TESTS
| 0
| 15
| 0
|
n = int(input())
x = 0
for j in range(n):
y = input()
rep = y.replace('x','')
if rep == '--':
x-=1
elif rep == '++':
x+=1
print(x)
|
Title: Bit++
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
The classic programming language of Bitland is Bit++. This language is so peculiar and complicated.
The language is that peculiar as it has exactly one variable, called *x*. Also, there are two operations:
- Operation ++ increases the value of variable *x* by 1. - Operation -- decreases the value of variable *x* by 1.
A statement in language Bit++ is a sequence, consisting of exactly one operation and one variable *x*. The statement is written without spaces, that is, it can only contain characters "+", "-", "X". Executing a statement means applying the operation it contains.
A programme in Bit++ is a sequence of statements, each of them needs to be executed. Executing a programme means executing all the statements it contains.
You're given a programme in language Bit++. The initial value of *x* is 0. Execute the programme and find its final value (the value of the variable when this programme is executed).
Input Specification:
The first line contains a single integer *n* (1<=≤<=*n*<=≤<=150) — the number of statements in the programme.
Next *n* lines contain a statement each. Each statement contains exactly one operation (++ or --) and exactly one variable *x* (denoted as letter «X»). Thus, there are no empty statements. The operation and the variable can be written in any order.
Output Specification:
Print a single integer — the final value of *x*.
Demo Input:
['1\n++X\n', '2\nX++\n--X\n']
Demo Output:
['1\n', '0\n']
Note:
none
|
```python
n = int(input())
x = 0
for j in range(n):
y = input()
rep = y.replace('x','')
if rep == '--':
x-=1
elif rep == '++':
x+=1
print(x)
```
| 0
|
|
719
|
A
|
Vitya in the Countryside
|
PROGRAMMING
| 1,100
|
[
"implementation"
] | null | null |
Every summer Vitya comes to visit his grandmother in the countryside. This summer, he got a huge wart. Every grandma knows that one should treat warts when the moon goes down. Thus, Vitya has to catch the moment when the moon is down.
Moon cycle lasts 30 days. The size of the visible part of the moon (in Vitya's units) for each day is 0, 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 14, 13, 12, 11, 10, 9, 8, 7, 6, 5, 4, 3, 2, 1, and then cycle repeats, thus after the second 1 again goes 0.
As there is no internet in the countryside, Vitya has been watching the moon for *n* consecutive days and for each of these days he wrote down the size of the visible part of the moon. Help him find out whether the moon will be up or down next day, or this cannot be determined by the data he has.
|
The first line of the input contains a single integer *n* (1<=≤<=*n*<=≤<=92) — the number of consecutive days Vitya was watching the size of the visible part of the moon.
The second line contains *n* integers *a**i* (0<=≤<=*a**i*<=≤<=15) — Vitya's records.
It's guaranteed that the input data is consistent.
|
If Vitya can be sure that the size of visible part of the moon on day *n*<=+<=1 will be less than the size of the visible part on day *n*, then print "DOWN" at the only line of the output. If he might be sure that the size of the visible part will increase, then print "UP". If it's impossible to determine what exactly will happen with the moon, print -1.
|
[
"5\n3 4 5 6 7\n",
"7\n12 13 14 15 14 13 12\n",
"1\n8\n"
] |
[
"UP\n",
"DOWN\n",
"-1\n"
] |
In the first sample, the size of the moon on the next day will be equal to 8, thus the answer is "UP".
In the second sample, the size of the moon on the next day will be 11, thus the answer is "DOWN".
In the third sample, there is no way to determine whether the size of the moon on the next day will be 7 or 9, thus the answer is -1.
| 500
|
[
{
"input": "5\n3 4 5 6 7",
"output": "UP"
},
{
"input": "7\n12 13 14 15 14 13 12",
"output": "DOWN"
},
{
"input": "1\n8",
"output": "-1"
},
{
"input": "44\n7 8 9 10 11 12 13 14 15 14 13 12 11 10 9 8 7 6 5 4 3 2 1 0 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 14 13 12 11 10",
"output": "DOWN"
},
{
"input": "92\n3 4 5 6 7 8 9 10 11 12 13 14 15 14 13 12 11 10 9 8 7 6 5 4 3 2 1 0 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 14 13 12 11 10 9 8 7 6 5 4 3 2 1 0 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 14 13 12 11 10 9 8 7 6 5 4 3 2 1 0 1 2 3 4",
"output": "UP"
},
{
"input": "6\n10 11 12 13 14 15",
"output": "DOWN"
},
{
"input": "27\n11 10 9 8 7 6 5 4 3 2 1 0 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15",
"output": "DOWN"
},
{
"input": "6\n8 7 6 5 4 3",
"output": "DOWN"
},
{
"input": "27\n14 15 14 13 12 11 10 9 8 7 6 5 4 3 2 1 0 1 2 3 4 5 6 7 8 9 10",
"output": "UP"
},
{
"input": "79\n7 8 9 10 11 12 13 14 15 14 13 12 11 10 9 8 7 6 5 4 3 2 1 0 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 14 13 12 11 10 9 8 7 6 5 4 3 2 1 0 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 14 13 12 11 10 9 8 7 6 5",
"output": "DOWN"
},
{
"input": "25\n1 0 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 14 13 12 11 10 9 8 7",
"output": "DOWN"
},
{
"input": "21\n3 4 5 6 7 8 9 10 11 12 13 14 15 14 13 12 11 10 9 8 7",
"output": "DOWN"
},
{
"input": "56\n1 0 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 14 13 12 11 10 9 8 7 6 5 4 3 2 1 0 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 14 13 12 11 10 9 8 7 6",
"output": "DOWN"
},
{
"input": "19\n4 3 2 1 0 1 2 3 4 5 6 7 8 9 10 11 12 13 14",
"output": "UP"
},
{
"input": "79\n5 4 3 2 1 0 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 14 13 12 11 10 9 8 7 6 5 4 3 2 1 0 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 14 13 12 11 10 9 8 7 6 5 4 3 2 1 0 1 2 3 4 5 6 7 8 9 10 11 12 13",
"output": "UP"
},
{
"input": "87\n14 15 14 13 12 11 10 9 8 7 6 5 4 3 2 1 0 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 14 13 12 11 10 9 8 7 6 5 4 3 2 1 0 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 14 13 12 11 10 9 8 7 6 5 4 3 2 1 0 1 2 3 4 5 6 7 8 9 10",
"output": "UP"
},
{
"input": "13\n10 9 8 7 6 5 4 3 2 1 0 1 2",
"output": "UP"
},
{
"input": "2\n8 9",
"output": "UP"
},
{
"input": "3\n10 11 12",
"output": "UP"
},
{
"input": "1\n1",
"output": "-1"
},
{
"input": "1\n2",
"output": "-1"
},
{
"input": "1\n3",
"output": "-1"
},
{
"input": "1\n4",
"output": "-1"
},
{
"input": "1\n5",
"output": "-1"
},
{
"input": "1\n6",
"output": "-1"
},
{
"input": "1\n7",
"output": "-1"
},
{
"input": "1\n9",
"output": "-1"
},
{
"input": "1\n10",
"output": "-1"
},
{
"input": "1\n11",
"output": "-1"
},
{
"input": "1\n12",
"output": "-1"
},
{
"input": "1\n13",
"output": "-1"
},
{
"input": "1\n14",
"output": "-1"
},
{
"input": "1\n15",
"output": "DOWN"
},
{
"input": "1\n0",
"output": "UP"
},
{
"input": "3\n11 12 13",
"output": "UP"
},
{
"input": "2\n10 9",
"output": "DOWN"
},
{
"input": "92\n10 11 12 13 14 15 14 13 12 11 10 9 8 7 6 5 4 3 2 1 0 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 14 13 12 11 10 9 8 7 6 5 4 3 2 1 0 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 14 13 12 11 10 9 8 7 6 5 4 3 2 1 0 1 2 3 4 5 6 7 8 9 10 11",
"output": "UP"
},
{
"input": "92\n7 6 5 4 3 2 1 0 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 14 13 12 11 10 9 8 7 6 5 4 3 2 1 0 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 14 13 12 11 10 9 8 7 6 5 4 3 2 1 0 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 14 13 12 11 10 9 8 7 6",
"output": "DOWN"
},
{
"input": "2\n14 15",
"output": "DOWN"
},
{
"input": "2\n1 0",
"output": "UP"
},
{
"input": "2\n15 14",
"output": "DOWN"
},
{
"input": "92\n7 8 9 10 11 12 13 14 15 14 13 12 11 10 9 8 7 6 5 4 3 2 1 0 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 14 13 12 11 10 9 8 7 6 5 4 3 2 1 0 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 14 13 12 11 10 9 8 7 6 5 4 3 2 1 0 1 2 3 4 5 6 7 8",
"output": "UP"
},
{
"input": "92\n13 12 11 10 9 8 7 6 5 4 3 2 1 0 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 14 13 12 11 10 9 8 7 6 5 4 3 2 1 0 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 14 13 12 11 10 9 8 7 6 5 4 3 2 1 0 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 14 13 12",
"output": "DOWN"
},
{
"input": "92\n4 3 2 1 0 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 14 13 12 11 10 9 8 7 6 5 4 3 2 1 0 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 14 13 12 11 10 9 8 7 6 5 4 3 2 1 0 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 14 13 12 11 10 9 8 7 6 5 4 3",
"output": "DOWN"
},
{
"input": "92\n14 15 14 13 12 11 10 9 8 7 6 5 4 3 2 1 0 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 14 13 12 11 10 9 8 7 6 5 4 3 2 1 0 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 14 13 12 11 10 9 8 7 6 5 4 3 2 1 0 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15",
"output": "DOWN"
},
{
"input": "92\n1 0 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 14 13 12 11 10 9 8 7 6 5 4 3 2 1 0 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 14 13 12 11 10 9 8 7 6 5 4 3 2 1 0 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 14 13 12 11 10 9 8 7 6 5 4 3 2 1 0",
"output": "UP"
},
{
"input": "2\n2 1",
"output": "DOWN"
},
{
"input": "3\n2 1 0",
"output": "UP"
},
{
"input": "5\n4 3 2 1 0",
"output": "UP"
},
{
"input": "2\n5 4",
"output": "DOWN"
},
{
"input": "4\n3 2 1 0",
"output": "UP"
},
{
"input": "3\n13 12 11",
"output": "DOWN"
},
{
"input": "2\n1 2",
"output": "UP"
},
{
"input": "2\n0 1",
"output": "UP"
},
{
"input": "2\n13 14",
"output": "UP"
},
{
"input": "14\n13 12 11 10 9 8 7 6 5 4 3 2 1 0",
"output": "UP"
}
] | 1,597,487,834
| 2,147,483,647
|
PyPy 3
|
WRONG_ANSWER
|
TESTS
| 4
| 139
| 0
|
n=int(input())
a=[int(i) for i in input().split()]
if(len(a)==1):
print(-1)
else:
if(15 in a):
print('DOWN')
else:
print('UP')
|
Title: Vitya in the Countryside
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
Every summer Vitya comes to visit his grandmother in the countryside. This summer, he got a huge wart. Every grandma knows that one should treat warts when the moon goes down. Thus, Vitya has to catch the moment when the moon is down.
Moon cycle lasts 30 days. The size of the visible part of the moon (in Vitya's units) for each day is 0, 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 14, 13, 12, 11, 10, 9, 8, 7, 6, 5, 4, 3, 2, 1, and then cycle repeats, thus after the second 1 again goes 0.
As there is no internet in the countryside, Vitya has been watching the moon for *n* consecutive days and for each of these days he wrote down the size of the visible part of the moon. Help him find out whether the moon will be up or down next day, or this cannot be determined by the data he has.
Input Specification:
The first line of the input contains a single integer *n* (1<=≤<=*n*<=≤<=92) — the number of consecutive days Vitya was watching the size of the visible part of the moon.
The second line contains *n* integers *a**i* (0<=≤<=*a**i*<=≤<=15) — Vitya's records.
It's guaranteed that the input data is consistent.
Output Specification:
If Vitya can be sure that the size of visible part of the moon on day *n*<=+<=1 will be less than the size of the visible part on day *n*, then print "DOWN" at the only line of the output. If he might be sure that the size of the visible part will increase, then print "UP". If it's impossible to determine what exactly will happen with the moon, print -1.
Demo Input:
['5\n3 4 5 6 7\n', '7\n12 13 14 15 14 13 12\n', '1\n8\n']
Demo Output:
['UP\n', 'DOWN\n', '-1\n']
Note:
In the first sample, the size of the moon on the next day will be equal to 8, thus the answer is "UP".
In the second sample, the size of the moon on the next day will be 11, thus the answer is "DOWN".
In the third sample, there is no way to determine whether the size of the moon on the next day will be 7 or 9, thus the answer is -1.
|
```python
n=int(input())
a=[int(i) for i in input().split()]
if(len(a)==1):
print(-1)
else:
if(15 in a):
print('DOWN')
else:
print('UP')
```
| 0
|
|
125
|
B
|
Simple XML
|
PROGRAMMING
| 1,000
|
[
"implementation"
] | null | null |
Let's define a string <x> as an opening tag, where *x* is any small letter of the Latin alphabet. Each opening tag matches a closing tag of the type </x>, where *x* is the same letter.
Tegs can be nested into each other: in this case one opening and closing tag pair is located inside another pair.
Let's define the notion of a XML-text:
- an empty string is a XML-text - if *s* is a XML-text, then *s*'=<a>+*s*+</a> also is a XML-text, where *a* is any small Latin letter - if *s*1, *s*2 are XML-texts, then *s*1+*s*2 also is a XML-text
You are given a XML-text (it is guaranteed that the text is valid), your task is to print in the following form:
- each tag (opening and closing) is located on a single line - print before the tag 2<=*<=*h* spaces, where *h* is the level of the tag's nestedness.
|
The input data consists on the only non-empty string — the XML-text, its length does not exceed 1000 characters. It is guaranteed that the text is valid. The text contains no spaces.
|
Print the given XML-text according to the above-given rules.
|
[
"<a><b><c></c></b></a>\n",
"<a><b></b><d><c></c></d></a>\n"
] |
[
"<a>\n <b>\n <c>\n </c>\n </b>\n</a>\n",
"<a>\n <b>\n </b>\n <d>\n <c>\n </c>\n </d>\n</a>\n"
] |
none
| 1,500
|
[
{
"input": "<a><b><c></c></b></a>",
"output": "<a>\n <b>\n <c>\n </c>\n </b>\n</a>"
},
{
"input": "<a><b></b><d><c></c></d></a>",
"output": "<a>\n <b>\n </b>\n <d>\n <c>\n </c>\n </d>\n</a>"
},
{
"input": "<z></z>",
"output": "<z>\n</z>"
},
{
"input": "<u><d></d></u><j></j>",
"output": "<u>\n <d>\n </d>\n</u>\n<j>\n</j>"
},
{
"input": "<a></a><n></n><v><r></r></v><z></z>",
"output": "<a>\n</a>\n<n>\n</n>\n<v>\n <r>\n </r>\n</v>\n<z>\n</z>"
},
{
"input": "<c><l></l><b><w><f><t><m></m></t></f><w></w></w></b></c>",
"output": "<c>\n <l>\n </l>\n <b>\n <w>\n <f>\n <t>\n <m>\n </m>\n </t>\n </f>\n <w>\n </w>\n </w>\n </b>\n</c>"
},
{
"input": "<u><d><g><k><m><a><u><j><d></d></j></u></a></m><m></m></k></g></d></u>",
"output": "<u>\n <d>\n <g>\n <k>\n <m>\n <a>\n <u>\n <j>\n <d>\n </d>\n </j>\n </u>\n </a>\n </m>\n <m>\n </m>\n </k>\n </g>\n </d>\n</u>"
},
{
"input": "<x><a><l></l></a><g><v></v><d></d></g><z></z><y></y></x><q><h></h><s></s></q><c></c><w></w><q></q>",
"output": "<x>\n <a>\n <l>\n </l>\n </a>\n <g>\n <v>\n </v>\n <d>\n </d>\n </g>\n <z>\n </z>\n <y>\n </y>\n</x>\n<q>\n <h>\n </h>\n <s>\n </s>\n</q>\n<c>\n</c>\n<w>\n</w>\n<q>\n</q>"
},
{
"input": "<b><k><t></t></k><j></j><t></t><q></q></b><x><h></h></x><r></r><k></k><i></i><t><b></b></t><z></z><x></x><p></p><u></u>",
"output": "<b>\n <k>\n <t>\n </t>\n </k>\n <j>\n </j>\n <t>\n </t>\n <q>\n </q>\n</b>\n<x>\n <h>\n </h>\n</x>\n<r>\n</r>\n<k>\n</k>\n<i>\n</i>\n<t>\n <b>\n </b>\n</t>\n<z>\n</z>\n<x>\n</x>\n<p>\n</p>\n<u>\n</u>"
},
{
"input": "<c><l><i><h><z></z></h><y><k></k><o></o></y></i><a></a><x></x></l><r><y></y><k><s></s></k></r><j><a><f></f></a></j><h></h><p></p></c><h></h>",
"output": "<c>\n <l>\n <i>\n <h>\n <z>\n </z>\n </h>\n <y>\n <k>\n </k>\n <o>\n </o>\n </y>\n </i>\n <a>\n </a>\n <x>\n </x>\n </l>\n <r>\n <y>\n </y>\n <k>\n <s>\n </s>\n </k>\n </r>\n <j>\n <a>\n <f>\n </f>\n </a>\n </j>\n <h>\n </h>\n <p>\n </p>\n</c>\n<h>\n</h>"
},
{
"input": "<p><q><l></l><q><k><r><n></n></r></k></q></q><x><z></z><r><k></k></r><h></h></x><c><p></p><o></o></c><n></n><c></c></p><b><c><z></z></c><u><u><f><a><d></d><q></q></a><x><i></i></x><r></r></f></u></u></b><j></j>",
"output": "<p>\n <q>\n <l>\n </l>\n <q>\n <k>\n <r>\n <n>\n </n>\n </r>\n </k>\n </q>\n </q>\n <x>\n <z>\n </z>\n <r>\n <k>\n </k>\n </r>\n <h>\n </h>\n </x>\n <c>\n <p>\n </p>\n <o>\n </o>\n </c>\n <n>\n </n>\n <c>\n </c>\n</p>\n<b>\n <c>\n <z>\n </z>\n </c>\n <u>\n <u>\n <f>\n <a>\n <d>\n </d>\n <q>\n </q>\n </a>\n <x>\n <i>\n ..."
},
{
"input": "<w><q><x></x></q><r></r><o></o><u></u><o></o></w><d><z></z><n><x></x></n><y></y><s></s><k></k><q></q><a></a></d><h><u></u><s></s><y></y><t></t><f></f></h><v><w><q></q></w><s></s><h></h></v><q><o></o><k></k><w></w></q><c></c><p><j></j></p><c><u></u></c><s></s><x></x><b></b><i></i>",
"output": "<w>\n <q>\n <x>\n </x>\n </q>\n <r>\n </r>\n <o>\n </o>\n <u>\n </u>\n <o>\n </o>\n</w>\n<d>\n <z>\n </z>\n <n>\n <x>\n </x>\n </n>\n <y>\n </y>\n <s>\n </s>\n <k>\n </k>\n <q>\n </q>\n <a>\n </a>\n</d>\n<h>\n <u>\n </u>\n <s>\n </s>\n <y>\n </y>\n <t>\n </t>\n <f>\n </f>\n</h>\n<v>\n <w>\n <q>\n </q>\n </w>\n <s>\n </s>\n <h>\n </h>\n</v>\n<q>\n <o>\n </o>\n <k>\n </k>\n <w>\n </w>\n</q>\n<c>\n</c>\n<p>\n <j>\n </j>\n</p>\n<c>\n <u>\n </u..."
},
{
"input": "<g><t><m><x><f><w><z><b><d><j></j><g><z></z><q><l><j></j><l><k></k><l><n><d></d><m></m></n></l><i><m><j></j></m></i></l></l><w><t><h><r><h></h><b></b></r></h></t><d><j></j></d><x><w><r><s><s></s></s></r></w><x></x></x></w><m><m><d></d><x><r><x><o><v></v><d><n></n></d></o></x></r></x></m></m></q></g><y></y></d></b></z></w></f></x><a></a></m></t></g>",
"output": "<g>\n <t>\n <m>\n <x>\n <f>\n <w>\n <z>\n <b>\n <d>\n <j>\n </j>\n <g>\n <z>\n </z>\n <q>\n <l>\n <j>\n </j>\n <l>\n <k>\n </k>\n <l>\n <n>\n ..."
},
{
"input": "<d><d><w><v><g><m></m></g><b><u></u><j><h><n><q><q><c></c></q></q></n></h><c></c><l><r><l></l><b><d></d><x><k><o><w><q><x></x></q></w></o></k><p></p></x><g><m></m></g></b></r></l></j><k><l></l></k><c><v><g><p><p><d><e><z><x></x></z></e><v></v></d><u><o><u></u><k></k></o></u><m><x><h><z><f></f></z></h></x><w></w></m></p></p></g></v><t><n><u><b><h></h></b></u><r><m><k><z></z></k></m><j><e><w><s></s><e><s><p></p><o></o></s><g></g></e><u></u></w></e></j></r></n></t></c></b></v></w></d></d>",
"output": "<d>\n <d>\n <w>\n <v>\n <g>\n <m>\n </m>\n </g>\n <b>\n <u>\n </u>\n <j>\n <h>\n <n>\n <q>\n <q>\n <c>\n </c>\n </q>\n </q>\n </n>\n </h>\n <c>\n </c>\n <l>\n <r>\n <l>\n </l>\n <b>\n ..."
}
] | 1,659,692,493
| 2,147,483,647
|
Python 3
|
OK
|
TESTS
| 27
| 92
| 0
|
xml = input().split('><')
xml[0] = xml[0][1:]
xml[-1] = xml[-1][:len(xml[-1])-1]
num = 0
print('<'+xml[0]+'>')
for i in range(1, len(xml)):
if xml[i-1][0]=='/' and xml[i][0]=='/':
num = num-2
else:
if xml[i-1][0]!='/' and xml[i-1]!=xml[i][1:]:
num = num+2
print(num*' '+'<'+xml[i]+'>')
|
Title: Simple XML
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
Let's define a string <x> as an opening tag, where *x* is any small letter of the Latin alphabet. Each opening tag matches a closing tag of the type </x>, where *x* is the same letter.
Tegs can be nested into each other: in this case one opening and closing tag pair is located inside another pair.
Let's define the notion of a XML-text:
- an empty string is a XML-text - if *s* is a XML-text, then *s*'=<a>+*s*+</a> also is a XML-text, where *a* is any small Latin letter - if *s*1, *s*2 are XML-texts, then *s*1+*s*2 also is a XML-text
You are given a XML-text (it is guaranteed that the text is valid), your task is to print in the following form:
- each tag (opening and closing) is located on a single line - print before the tag 2<=*<=*h* spaces, where *h* is the level of the tag's nestedness.
Input Specification:
The input data consists on the only non-empty string — the XML-text, its length does not exceed 1000 characters. It is guaranteed that the text is valid. The text contains no spaces.
Output Specification:
Print the given XML-text according to the above-given rules.
Demo Input:
['<a><b><c></c></b></a>\n', '<a><b></b><d><c></c></d></a>\n']
Demo Output:
['<a>\n <b>\n <c>\n </c>\n </b>\n</a>\n', '<a>\n <b>\n </b>\n <d>\n <c>\n </c>\n </d>\n</a>\n']
Note:
none
|
```python
xml = input().split('><')
xml[0] = xml[0][1:]
xml[-1] = xml[-1][:len(xml[-1])-1]
num = 0
print('<'+xml[0]+'>')
for i in range(1, len(xml)):
if xml[i-1][0]=='/' and xml[i][0]=='/':
num = num-2
else:
if xml[i-1][0]!='/' and xml[i-1]!=xml[i][1:]:
num = num+2
print(num*' '+'<'+xml[i]+'>')
```
| 3
|
|
991
|
B
|
Getting an A
|
PROGRAMMING
| 900
|
[
"greedy",
"sortings"
] | null | null |
Translator's note: in Russia's most widespread grading system, there are four grades: 5, 4, 3, 2, the higher the better, roughly corresponding to A, B, C and F respectively in American grading system.
The term is coming to an end and students start thinking about their grades. Today, a professor told his students that the grades for his course would be given out automatically — he would calculate the simple average (arithmetic mean) of all grades given out for lab works this term and round to the nearest integer. The rounding would be done in favour of the student — $4.5$ would be rounded up to $5$ (as in example 3), but $4.4$ would be rounded down to $4$.
This does not bode well for Vasya who didn't think those lab works would influence anything, so he may receive a grade worse than $5$ (maybe even the dreaded $2$). However, the professor allowed him to redo some of his works of Vasya's choosing to increase his average grade. Vasya wants to redo as as few lab works as possible in order to get $5$ for the course. Of course, Vasya will get $5$ for the lab works he chooses to redo.
Help Vasya — calculate the minimum amount of lab works Vasya has to redo.
|
The first line contains a single integer $n$ — the number of Vasya's grades ($1 \leq n \leq 100$).
The second line contains $n$ integers from $2$ to $5$ — Vasya's grades for his lab works.
|
Output a single integer — the minimum amount of lab works that Vasya has to redo. It can be shown that Vasya can always redo enough lab works to get a $5$.
|
[
"3\n4 4 4\n",
"4\n5 4 5 5\n",
"4\n5 3 3 5\n"
] |
[
"2\n",
"0\n",
"1\n"
] |
In the first sample, it is enough to redo two lab works to make two $4$s into $5$s.
In the second sample, Vasya's average is already $4.75$ so he doesn't have to redo anything to get a $5$.
In the second sample Vasya has to redo one lab work to get rid of one of the $3$s, that will make the average exactly $4.5$ so the final grade would be $5$.
| 1,000
|
[
{
"input": "3\n4 4 4",
"output": "2"
},
{
"input": "4\n5 4 5 5",
"output": "0"
},
{
"input": "4\n5 3 3 5",
"output": "1"
},
{
"input": "1\n5",
"output": "0"
},
{
"input": "4\n3 2 5 4",
"output": "2"
},
{
"input": "5\n5 4 3 2 5",
"output": "2"
},
{
"input": "8\n5 4 2 5 5 2 5 5",
"output": "1"
},
{
"input": "5\n5 5 2 5 5",
"output": "1"
},
{
"input": "6\n5 5 5 5 5 2",
"output": "0"
},
{
"input": "6\n2 2 2 2 2 2",
"output": "5"
},
{
"input": "100\n3 2 4 3 3 3 4 2 3 5 5 2 5 2 3 2 4 4 4 5 5 4 2 5 4 3 2 5 3 4 3 4 2 4 5 4 2 4 3 4 5 2 5 3 3 4 2 2 4 4 4 5 4 3 3 3 2 5 2 2 2 3 5 4 3 2 4 5 5 5 2 2 4 2 3 3 3 5 3 2 2 4 5 5 4 5 5 4 2 3 2 2 2 2 5 3 5 2 3 4",
"output": "40"
},
{
"input": "1\n2",
"output": "1"
},
{
"input": "1\n3",
"output": "1"
},
{
"input": "1\n4",
"output": "1"
},
{
"input": "4\n3 2 5 5",
"output": "1"
},
{
"input": "6\n4 3 3 3 3 4",
"output": "4"
},
{
"input": "8\n3 3 5 3 3 3 5 5",
"output": "3"
},
{
"input": "10\n2 4 5 5 5 5 2 3 3 2",
"output": "3"
},
{
"input": "20\n5 2 5 2 2 2 2 2 5 2 2 5 2 5 5 2 2 5 2 2",
"output": "10"
},
{
"input": "25\n4 4 4 4 3 4 3 3 3 3 3 4 4 3 4 4 4 4 4 3 3 3 4 3 4",
"output": "13"
},
{
"input": "30\n4 2 4 2 4 2 2 4 4 4 4 2 4 4 4 2 2 2 2 4 2 4 4 4 2 4 2 4 2 2",
"output": "15"
},
{
"input": "52\n5 3 4 4 4 3 5 3 4 5 3 4 4 3 5 5 4 3 3 3 4 5 4 4 5 3 5 3 5 4 5 5 4 3 4 5 3 4 3 3 4 4 4 3 5 3 4 5 3 5 4 5",
"output": "14"
},
{
"input": "77\n5 3 2 3 2 3 2 3 5 2 2 3 3 3 3 5 3 3 2 2 2 5 5 5 5 3 2 2 5 2 3 2 2 5 2 5 3 3 2 2 5 5 2 3 3 2 3 3 3 2 5 5 2 2 3 3 5 5 2 2 5 5 3 3 5 5 2 2 5 2 2 5 5 5 2 5 2",
"output": "33"
},
{
"input": "55\n3 4 2 3 3 2 4 4 3 3 4 2 4 4 3 3 2 3 2 2 3 3 2 3 2 3 2 4 4 3 2 3 2 3 3 2 2 4 2 4 4 3 4 3 2 4 3 2 4 2 2 3 2 3 4",
"output": "34"
},
{
"input": "66\n5 4 5 5 4 4 4 4 4 2 5 5 2 4 2 2 2 5 4 4 4 4 5 2 2 5 5 2 2 4 4 2 4 2 2 5 2 5 4 5 4 5 4 4 2 5 2 4 4 4 2 2 5 5 5 5 4 4 4 4 4 2 4 5 5 5",
"output": "16"
},
{
"input": "99\n2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2",
"output": "83"
},
{
"input": "100\n2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2",
"output": "84"
},
{
"input": "99\n3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3",
"output": "75"
},
{
"input": "100\n3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3 3",
"output": "75"
},
{
"input": "99\n2 2 3 3 3 3 3 2 2 3 2 3 2 3 2 2 3 2 3 2 3 3 3 3 2 2 2 2 3 2 3 3 3 3 3 2 3 3 3 3 2 3 2 3 3 3 2 3 2 3 3 3 3 2 2 3 2 3 2 3 2 3 2 2 2 3 3 2 3 2 2 2 2 2 2 2 2 3 3 3 3 2 3 2 3 3 2 3 2 3 2 3 3 2 2 2 3 2 3",
"output": "75"
},
{
"input": "100\n3 2 3 3 2 2 3 2 2 3 3 2 3 2 2 2 2 2 3 2 2 2 3 2 3 3 2 2 3 2 2 2 2 3 2 3 3 2 2 3 2 2 3 2 3 2 2 3 2 3 2 2 3 2 2 3 3 3 3 3 2 2 3 2 3 3 2 2 3 2 2 2 3 2 2 3 3 2 2 3 3 3 3 2 3 2 2 2 3 3 2 2 3 2 2 2 2 3 2 2",
"output": "75"
},
{
"input": "99\n4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4",
"output": "50"
},
{
"input": "100\n4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4",
"output": "50"
},
{
"input": "99\n2 2 2 2 4 2 2 2 2 4 4 4 4 2 4 4 2 2 4 4 2 2 2 4 4 2 4 4 2 4 4 2 2 2 4 4 2 2 2 2 4 4 4 2 2 2 4 4 2 4 2 4 2 2 4 2 4 4 4 4 4 2 2 4 4 4 2 2 2 2 4 2 4 2 2 2 2 2 2 4 4 2 4 2 2 4 2 2 2 2 2 4 2 4 2 2 4 4 4",
"output": "54"
},
{
"input": "100\n4 2 4 4 2 4 2 2 4 4 4 4 4 4 4 4 4 2 4 4 2 2 4 4 2 2 4 4 2 2 2 4 4 2 4 4 2 4 2 2 4 4 2 4 2 4 4 4 2 2 2 2 2 2 2 4 2 2 2 4 4 4 2 2 2 2 4 2 2 2 2 2 2 2 4 4 4 4 4 4 4 4 4 2 2 2 2 2 2 2 2 4 4 4 4 2 4 2 2 4",
"output": "50"
},
{
"input": "99\n4 3 4 4 4 4 4 3 4 3 3 4 3 3 4 4 3 3 3 4 3 4 3 3 4 3 3 3 3 4 3 4 4 3 4 4 3 3 4 4 4 3 3 3 4 4 3 3 4 3 4 3 4 3 4 3 3 3 3 4 3 4 4 4 4 4 4 3 4 4 3 3 3 3 3 3 3 3 4 3 3 3 4 4 4 4 4 4 3 3 3 3 4 4 4 3 3 4 3",
"output": "51"
},
{
"input": "100\n3 3 4 4 4 4 4 3 4 4 3 3 3 3 4 4 4 4 4 4 3 3 3 4 3 4 3 4 3 3 4 3 3 3 3 3 3 3 3 4 3 4 3 3 4 3 3 3 4 4 3 4 4 3 3 4 4 4 4 4 4 3 4 4 3 4 3 3 3 4 4 3 3 4 4 3 4 4 4 3 3 4 3 3 4 3 4 3 4 3 3 4 4 4 3 3 4 3 3 4",
"output": "51"
},
{
"input": "99\n3 3 4 4 4 2 4 4 3 2 3 4 4 4 2 2 2 3 2 4 4 2 4 3 2 2 2 4 2 3 4 3 4 2 3 3 4 2 3 3 2 3 4 4 3 2 4 3 4 3 3 3 3 3 4 4 3 3 4 4 2 4 3 4 3 2 3 3 3 4 4 2 4 4 2 3 4 2 3 3 3 4 2 2 3 2 4 3 2 3 3 2 3 4 2 3 3 2 3",
"output": "58"
},
{
"input": "100\n2 2 4 2 2 3 2 3 4 4 3 3 4 4 4 2 3 2 2 3 4 2 3 2 4 3 4 2 3 3 3 2 4 3 3 2 2 3 2 4 4 2 4 3 4 4 3 3 3 2 4 2 2 2 2 2 2 3 2 3 2 3 4 4 4 2 2 3 4 4 3 4 3 3 2 3 3 3 4 3 2 3 3 2 4 2 3 3 4 4 3 3 4 3 4 3 3 4 3 3",
"output": "61"
},
{
"input": "99\n5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5",
"output": "0"
},
{
"input": "100\n5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5",
"output": "0"
},
{
"input": "99\n2 2 2 2 2 5 2 2 5 2 5 2 5 2 2 2 2 2 5 2 2 2 5 2 2 5 2 2 2 5 5 2 5 2 2 5 2 5 2 2 5 5 2 2 2 2 5 5 2 2 2 5 2 2 5 2 2 2 2 2 5 5 5 5 2 2 5 2 5 2 2 2 2 2 5 2 2 5 5 2 2 2 2 2 5 5 2 2 5 5 2 2 2 2 5 5 5 2 5",
"output": "48"
},
{
"input": "100\n5 5 2 2 2 2 2 2 5 5 2 5 2 2 2 2 5 2 5 2 5 5 2 5 5 2 2 2 2 2 2 5 2 2 2 5 2 2 5 2 2 5 5 5 2 5 5 5 5 5 5 2 2 5 2 2 5 5 5 5 5 2 5 2 5 2 2 2 5 2 5 2 5 5 2 5 5 2 2 5 2 5 5 2 5 2 2 5 2 2 2 5 2 2 2 2 5 5 2 5",
"output": "38"
},
{
"input": "99\n5 3 3 3 5 3 3 3 3 3 3 3 3 5 3 3 3 3 3 3 3 3 5 3 3 3 5 5 3 5 5 3 3 5 5 5 3 5 3 3 3 3 5 3 3 5 5 3 5 5 5 3 5 3 5 3 5 5 5 5 3 3 3 5 3 5 3 3 3 5 5 5 5 5 3 5 5 3 3 5 5 3 5 5 3 5 5 3 3 5 5 5 3 3 3 5 3 3 3",
"output": "32"
},
{
"input": "100\n3 3 3 5 3 3 3 3 3 3 5 5 5 5 3 3 3 3 5 3 3 3 3 3 5 3 5 3 3 5 5 5 5 5 5 3 3 5 3 3 5 3 5 5 5 3 5 3 3 3 3 3 3 3 3 3 3 3 5 5 3 5 3 5 5 3 5 3 3 5 3 5 5 5 5 3 5 3 3 3 5 5 5 3 3 3 5 3 5 5 5 3 3 3 5 3 5 5 3 5",
"output": "32"
},
{
"input": "99\n5 3 5 5 3 3 3 2 2 5 2 5 3 2 5 2 5 2 3 5 3 2 3 2 5 5 2 2 3 3 5 5 3 5 5 2 3 3 5 2 2 5 3 2 5 2 3 5 5 2 5 2 2 5 3 3 5 3 3 5 3 2 3 5 3 2 3 2 3 2 2 2 2 5 2 2 3 2 5 5 5 3 3 2 5 3 5 5 5 2 3 2 5 5 2 5 2 5 3",
"output": "39"
},
{
"input": "100\n3 5 3 3 5 5 3 3 2 5 5 3 3 3 2 2 3 2 5 3 2 2 3 3 3 3 2 5 3 2 3 3 5 2 2 2 3 2 3 5 5 3 2 5 2 2 5 5 3 5 5 5 2 2 5 5 3 3 2 2 2 5 3 3 2 2 3 5 3 2 3 5 5 3 2 3 5 5 3 3 2 3 5 2 5 5 5 5 5 5 3 5 3 2 3 3 2 5 2 2",
"output": "42"
},
{
"input": "99\n4 4 4 5 4 4 5 5 4 4 5 5 5 4 5 4 5 5 5 4 4 5 5 5 5 4 5 5 5 4 4 5 5 4 5 4 4 4 5 5 5 5 4 4 5 4 4 5 4 4 4 4 5 5 5 4 5 4 5 5 5 5 5 4 5 4 5 4 4 4 4 5 5 5 4 5 5 4 4 5 5 5 4 5 4 4 5 5 4 5 5 5 5 4 5 5 4 4 4",
"output": "0"
},
{
"input": "100\n4 4 5 5 5 5 5 5 4 4 5 5 4 4 5 5 4 5 4 4 4 4 4 4 4 4 5 5 5 5 5 4 4 4 4 4 5 4 4 5 4 4 4 5 5 5 4 5 5 5 5 5 5 4 4 4 4 4 4 5 5 4 5 4 4 5 4 4 4 4 5 5 4 5 5 4 4 4 5 5 5 5 4 5 5 5 4 4 5 5 5 4 5 4 5 4 4 5 5 4",
"output": "1"
},
{
"input": "99\n2 2 2 5 2 2 2 2 2 4 4 5 5 2 2 4 2 5 2 2 2 5 2 2 5 5 5 4 5 5 4 4 2 2 5 2 2 2 2 5 5 2 2 4 4 4 2 2 2 5 2 4 4 2 4 2 4 2 5 4 2 2 5 2 4 4 4 2 5 2 2 5 4 2 2 5 5 5 2 4 5 4 5 5 4 4 4 5 4 5 4 5 4 2 5 2 2 2 4",
"output": "37"
},
{
"input": "100\n4 4 5 2 2 5 4 5 2 2 2 4 2 5 4 4 2 2 4 5 2 4 2 5 5 4 2 4 4 2 2 5 4 2 5 4 5 2 5 2 4 2 5 4 5 2 2 2 5 2 5 2 5 2 2 4 4 5 5 5 5 5 5 5 4 2 2 2 4 2 2 4 5 5 4 5 4 2 2 2 2 4 2 2 5 5 4 2 2 5 4 5 5 5 4 5 5 5 2 2",
"output": "31"
},
{
"input": "99\n5 3 4 4 5 4 4 4 3 5 4 3 3 4 3 5 5 5 5 4 3 3 5 3 4 5 3 5 4 4 3 5 5 4 4 4 4 3 5 3 3 5 5 5 5 5 4 3 4 4 3 5 5 3 3 4 4 4 5 4 4 5 4 4 4 4 5 5 4 3 3 4 3 5 3 3 3 3 4 4 4 4 3 4 5 4 4 5 5 5 3 4 5 3 4 5 4 3 3",
"output": "24"
},
{
"input": "100\n5 4 4 4 5 5 5 4 5 4 4 3 3 4 4 4 5 4 5 5 3 5 5 4 5 5 5 4 4 5 3 5 3 5 3 3 5 4 4 5 5 4 5 5 3 4 5 4 4 3 4 4 3 3 5 4 5 4 5 3 4 5 3 4 5 4 3 5 4 5 4 4 4 3 4 5 3 4 3 5 3 4 4 4 3 4 4 5 3 3 4 4 5 5 4 3 4 4 3 5",
"output": "19"
},
{
"input": "99\n2 2 5 2 5 3 4 2 3 5 4 3 4 2 5 3 2 2 4 2 4 4 5 4 4 5 2 5 5 3 2 3 2 2 3 4 5 3 5 2 5 4 4 5 4 2 2 3 2 3 3 3 4 4 3 2 2 4 4 2 5 3 5 3 5 4 4 4 5 4 5 2 2 5 4 4 4 3 3 2 5 2 5 2 3 2 5 2 2 5 5 3 4 5 3 4 4 4 4",
"output": "37"
},
{
"input": "2\n5 2",
"output": "1"
},
{
"input": "5\n2 2 2 2 2",
"output": "5"
},
{
"input": "100\n2 3 2 2 2 3 2 3 3 3 3 3 2 3 3 2 2 3 3 2 3 2 3 2 3 4 4 4 3 3 3 3 3 4 4 3 3 4 3 2 3 4 3 3 3 3 2 3 4 3 4 3 3 2 4 4 2 4 4 3 3 3 3 4 3 2 3 4 3 4 4 4 4 4 3 2 2 3 4 2 4 4 4 2 2 4 2 2 3 2 2 4 4 3 4 2 3 3 2 2",
"output": "61"
},
{
"input": "100\n5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 5 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4 4",
"output": "1"
},
{
"input": "100\n5 4 3 5 3 5 4 2 3 3 4 5 4 5 5 4 2 4 2 2 5 2 5 3 4 4 4 5 5 5 3 4 4 4 3 5 3 2 5 4 3 3 3 5 2 3 4 2 5 4 3 4 5 2 2 3 4 4 2 3 3 3 2 5 2 3 4 3 3 3 2 5 4 3 4 5 4 2 5 4 5 2 2 4 2 2 5 5 4 5 2 2 2 2 5 2 4 4 4 5",
"output": "35"
},
{
"input": "2\n2 2",
"output": "2"
},
{
"input": "20\n4 4 4 4 4 4 4 4 4 4 4 5 5 5 5 5 5 5 5 5",
"output": "1"
}
] | 1,627,993,965
| 2,147,483,647
|
Python 3
|
OK
|
TESTS
| 61
| 77
| 6,758,400
|
n = int(input())
grades = list(map(int,input().split()))
if sum(grades)/len(grades) >= 4.5:
print(0)
else:
grades.sort()
c = 0
for i in range(len(grades)):
grades[i] = 5
c+=1
if sum(grades)/len(grades) >= 4.5:
print(c)
break
|
Title: Getting an A
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
Translator's note: in Russia's most widespread grading system, there are four grades: 5, 4, 3, 2, the higher the better, roughly corresponding to A, B, C and F respectively in American grading system.
The term is coming to an end and students start thinking about their grades. Today, a professor told his students that the grades for his course would be given out automatically — he would calculate the simple average (arithmetic mean) of all grades given out for lab works this term and round to the nearest integer. The rounding would be done in favour of the student — $4.5$ would be rounded up to $5$ (as in example 3), but $4.4$ would be rounded down to $4$.
This does not bode well for Vasya who didn't think those lab works would influence anything, so he may receive a grade worse than $5$ (maybe even the dreaded $2$). However, the professor allowed him to redo some of his works of Vasya's choosing to increase his average grade. Vasya wants to redo as as few lab works as possible in order to get $5$ for the course. Of course, Vasya will get $5$ for the lab works he chooses to redo.
Help Vasya — calculate the minimum amount of lab works Vasya has to redo.
Input Specification:
The first line contains a single integer $n$ — the number of Vasya's grades ($1 \leq n \leq 100$).
The second line contains $n$ integers from $2$ to $5$ — Vasya's grades for his lab works.
Output Specification:
Output a single integer — the minimum amount of lab works that Vasya has to redo. It can be shown that Vasya can always redo enough lab works to get a $5$.
Demo Input:
['3\n4 4 4\n', '4\n5 4 5 5\n', '4\n5 3 3 5\n']
Demo Output:
['2\n', '0\n', '1\n']
Note:
In the first sample, it is enough to redo two lab works to make two $4$s into $5$s.
In the second sample, Vasya's average is already $4.75$ so he doesn't have to redo anything to get a $5$.
In the second sample Vasya has to redo one lab work to get rid of one of the $3$s, that will make the average exactly $4.5$ so the final grade would be $5$.
|
```python
n = int(input())
grades = list(map(int,input().split()))
if sum(grades)/len(grades) >= 4.5:
print(0)
else:
grades.sort()
c = 0
for i in range(len(grades)):
grades[i] = 5
c+=1
if sum(grades)/len(grades) >= 4.5:
print(c)
break
```
| 3
|
|
25
|
A
|
IQ test
|
PROGRAMMING
| 1,300
|
[
"brute force"
] |
A. IQ test
|
2
|
256
|
Bob is preparing to pass IQ test. The most frequent task in this test is to find out which one of the given *n* numbers differs from the others. Bob observed that one number usually differs from the others in evenness. Help Bob — to check his answers, he needs a program that among the given *n* numbers finds one that is different in evenness.
|
The first line contains integer *n* (3<=≤<=*n*<=≤<=100) — amount of numbers in the task. The second line contains *n* space-separated natural numbers, not exceeding 100. It is guaranteed, that exactly one of these numbers differs from the others in evenness.
|
Output index of number that differs from the others in evenness. Numbers are numbered from 1 in the input order.
|
[
"5\n2 4 7 8 10\n",
"4\n1 2 1 1\n"
] |
[
"3\n",
"2\n"
] |
none
| 0
|
[
{
"input": "5\n2 4 7 8 10",
"output": "3"
},
{
"input": "4\n1 2 1 1",
"output": "2"
},
{
"input": "3\n1 2 2",
"output": "1"
},
{
"input": "3\n100 99 100",
"output": "2"
},
{
"input": "3\n5 3 2",
"output": "3"
},
{
"input": "4\n43 28 1 91",
"output": "2"
},
{
"input": "4\n75 13 94 77",
"output": "3"
},
{
"input": "4\n97 8 27 3",
"output": "2"
},
{
"input": "10\n95 51 12 91 85 3 1 31 25 7",
"output": "3"
},
{
"input": "20\n88 96 66 51 14 88 2 92 18 72 18 88 20 30 4 82 90 100 24 46",
"output": "4"
},
{
"input": "30\n20 94 56 50 10 98 52 32 14 22 24 60 4 8 98 46 34 68 82 82 98 90 50 20 78 49 52 94 64 36",
"output": "26"
},
{
"input": "50\n79 27 77 57 37 45 27 49 65 33 57 21 71 19 75 85 65 61 23 97 85 9 23 1 9 3 99 77 77 21 79 69 15 37 15 7 93 81 13 89 91 31 45 93 15 97 55 80 85 83",
"output": "48"
},
{
"input": "60\n46 11 73 65 3 69 3 53 43 53 97 47 55 93 31 75 35 3 9 73 23 31 3 81 91 79 61 21 15 11 11 11 81 7 83 75 39 87 83 59 89 55 93 27 49 67 67 29 1 93 11 17 9 19 35 21 63 31 31 25",
"output": "1"
},
{
"input": "70\n28 42 42 92 64 54 22 38 38 78 62 38 4 38 14 66 4 92 66 58 94 26 4 44 41 88 48 82 44 26 74 44 48 4 16 92 34 38 26 64 94 4 30 78 50 54 12 90 8 16 80 98 28 100 74 50 36 42 92 18 76 98 8 22 2 50 58 50 64 46",
"output": "25"
},
{
"input": "100\n43 35 79 53 13 91 91 45 65 83 57 9 42 39 85 45 71 51 61 59 31 13 63 39 25 21 79 39 91 67 21 61 97 75 93 83 29 79 59 97 11 37 63 51 39 55 91 23 21 17 47 23 35 75 49 5 69 99 5 7 41 17 25 89 15 79 21 63 53 81 43 91 59 91 69 99 85 15 91 51 49 37 65 7 89 81 21 93 61 63 97 93 45 17 13 69 57 25 75 73",
"output": "13"
},
{
"input": "100\n50 24 68 60 70 30 52 22 18 74 68 98 20 82 4 46 26 68 100 78 84 58 74 98 38 88 68 86 64 80 82 100 20 22 98 98 52 6 94 10 48 68 2 18 38 22 22 82 44 20 66 72 36 58 64 6 36 60 4 96 76 64 12 90 10 58 64 60 74 28 90 26 24 60 40 58 2 16 76 48 58 36 82 60 24 44 4 78 28 38 8 12 40 16 38 6 66 24 31 76",
"output": "99"
},
{
"input": "100\n47 48 94 48 14 18 94 36 96 22 12 30 94 20 48 98 40 58 2 94 8 36 98 18 98 68 2 60 76 38 18 100 8 72 100 68 2 86 92 72 58 16 48 14 6 58 72 76 6 88 80 66 20 28 74 62 86 68 90 86 2 56 34 38 56 90 4 8 76 44 32 86 12 98 38 34 54 92 70 94 10 24 82 66 90 58 62 2 32 58 100 22 58 72 2 22 68 72 42 14",
"output": "1"
},
{
"input": "99\n38 20 68 60 84 16 28 88 60 48 80 28 4 92 70 60 46 46 20 34 12 100 76 2 40 10 8 86 6 80 50 66 12 34 14 28 26 70 46 64 34 96 10 90 98 96 56 88 50 74 70 94 2 94 24 66 68 46 22 30 6 10 64 32 88 14 98 100 64 58 50 18 50 50 8 38 8 16 54 2 60 54 62 84 92 98 4 72 66 26 14 88 99 16 10 6 88 56 22",
"output": "93"
},
{
"input": "99\n50 83 43 89 53 47 69 1 5 37 63 87 95 15 55 95 75 89 33 53 89 75 93 75 11 85 49 29 11 97 49 67 87 11 25 37 97 73 67 49 87 43 53 97 43 29 53 33 45 91 37 73 39 49 59 5 21 43 87 35 5 63 89 57 63 47 29 99 19 85 13 13 3 13 43 19 5 9 61 51 51 57 15 89 13 97 41 13 99 79 13 27 97 95 73 33 99 27 23",
"output": "1"
},
{
"input": "98\n61 56 44 30 58 14 20 24 88 28 46 56 96 52 58 42 94 50 46 30 46 80 72 88 68 16 6 60 26 90 10 98 76 20 56 40 30 16 96 20 88 32 62 30 74 58 36 76 60 4 24 36 42 54 24 92 28 14 2 74 86 90 14 52 34 82 40 76 8 64 2 56 10 8 78 16 70 86 70 42 70 74 22 18 76 98 88 28 62 70 36 72 20 68 34 48 80 98",
"output": "1"
},
{
"input": "98\n66 26 46 42 78 32 76 42 26 82 8 12 4 10 24 26 64 44 100 46 94 64 30 18 88 28 8 66 30 82 82 28 74 52 62 80 80 60 94 86 64 32 44 88 92 20 12 74 94 28 34 58 4 22 16 10 94 76 82 58 40 66 22 6 30 32 92 54 16 76 74 98 18 48 48 30 92 2 16 42 84 74 30 60 64 52 50 26 16 86 58 96 79 60 20 62 82 94",
"output": "93"
},
{
"input": "95\n9 31 27 93 17 77 75 9 9 53 89 39 51 99 5 1 11 39 27 49 91 17 27 79 81 71 37 75 35 13 93 4 99 55 85 11 23 57 5 43 5 61 15 35 23 91 3 81 99 85 43 37 39 27 5 67 7 33 75 59 13 71 51 27 15 93 51 63 91 53 43 99 25 47 17 71 81 15 53 31 59 83 41 23 73 25 91 91 13 17 25 13 55 57 29",
"output": "32"
},
{
"input": "100\n91 89 81 45 53 1 41 3 77 93 55 97 55 97 87 27 69 95 73 41 93 21 75 35 53 56 5 51 87 59 91 67 33 3 99 45 83 17 97 47 75 97 7 89 17 99 23 23 81 25 55 97 27 35 69 5 77 35 93 19 55 59 37 21 31 37 49 41 91 53 73 69 7 37 37 39 17 71 7 97 55 17 47 23 15 73 31 39 57 37 9 5 61 41 65 57 77 79 35 47",
"output": "26"
},
{
"input": "99\n38 56 58 98 80 54 26 90 14 16 78 92 52 74 40 30 84 14 44 80 16 90 98 68 26 24 78 72 42 16 84 40 14 44 2 52 50 2 12 96 58 66 8 80 44 52 34 34 72 98 74 4 66 74 56 21 8 38 76 40 10 22 48 32 98 34 12 62 80 68 64 82 22 78 58 74 20 22 48 56 12 38 32 72 6 16 74 24 94 84 26 38 18 24 76 78 98 94 72",
"output": "56"
},
{
"input": "100\n44 40 6 40 56 90 98 8 36 64 76 86 98 76 36 92 6 30 98 70 24 98 96 60 24 82 88 68 86 96 34 42 58 10 40 26 56 10 88 58 70 32 24 28 14 82 52 12 62 36 70 60 52 34 74 30 78 76 10 16 42 94 66 90 70 38 52 12 58 22 98 96 14 68 24 70 4 30 84 98 8 50 14 52 66 34 100 10 28 100 56 48 38 12 38 14 91 80 70 86",
"output": "97"
},
{
"input": "100\n96 62 64 20 90 46 56 90 68 36 30 56 70 28 16 64 94 34 6 32 34 50 94 22 90 32 40 2 72 10 88 38 28 92 20 26 56 80 4 100 100 90 16 74 74 84 8 2 30 20 80 32 16 46 92 56 42 12 96 64 64 42 64 58 50 42 74 28 2 4 36 32 70 50 54 92 70 16 45 76 28 16 18 50 48 2 62 94 4 12 52 52 4 100 70 60 82 62 98 42",
"output": "79"
},
{
"input": "99\n14 26 34 68 90 58 50 36 8 16 18 6 2 74 54 20 36 84 32 50 52 2 26 24 3 64 20 10 54 26 66 44 28 72 4 96 78 90 96 86 68 28 94 4 12 46 100 32 22 36 84 32 44 94 76 94 4 52 12 30 74 4 34 64 58 72 44 16 70 56 54 8 14 74 8 6 58 62 98 54 14 40 80 20 36 72 28 98 20 58 40 52 90 64 22 48 54 70 52",
"output": "25"
},
{
"input": "95\n82 86 30 78 6 46 80 66 74 72 16 24 18 52 52 38 60 36 86 26 62 28 22 46 96 26 94 84 20 46 66 88 76 32 12 86 74 18 34 88 4 48 94 6 58 6 100 82 4 24 88 32 54 98 34 48 6 76 42 88 42 28 100 4 22 2 10 66 82 54 98 20 60 66 38 98 32 47 86 58 6 100 12 46 2 42 8 84 78 28 24 70 34 28 86",
"output": "78"
},
{
"input": "90\n40 50 8 42 76 24 58 42 26 68 20 48 54 12 34 84 14 36 32 88 6 50 96 56 20 92 48 16 40 34 96 46 20 84 30 50 20 98 8 44 96 42 8 76 70 38 84 30 40 88 84 72 2 22 52 58 16 62 100 66 80 40 50 32 14 62 88 72 22 99 76 50 84 82 8 82 98 46 26 40 2 98 18 78 30 72 70 18 34 68",
"output": "70"
},
{
"input": "80\n81 43 87 1 55 43 53 61 27 19 43 13 89 9 33 83 75 55 97 71 91 37 95 5 21 69 81 93 95 69 31 83 55 7 97 7 79 57 8 61 27 85 49 1 15 97 63 79 29 73 41 85 5 41 31 93 67 11 63 59 15 99 91 77 43 69 23 23 81 73 19 1 67 51 1 75 99 67 3 81",
"output": "39"
},
{
"input": "98\n13 83 61 27 35 1 85 95 97 73 95 65 73 45 5 43 27 83 91 19 11 3 85 59 9 39 69 23 45 7 51 85 5 71 5 95 1 51 75 3 43 57 3 11 33 71 21 99 47 41 87 39 71 87 31 85 91 49 83 5 49 85 47 91 55 99 33 23 31 23 23 73 29 77 55 31 25 5 81 49 91 15 15 39 87 5 9 40 69 47 29 33 11 21 49 79 51 83",
"output": "88"
},
{
"input": "3\n100 100 1",
"output": "3"
}
] | 1,669,815,987
| 2,147,483,647
|
Python 3
|
RUNTIME_ERROR
|
TESTS
| 0
| 62
| 0
|
n = int(input())
l = list(map(int,input().split()))
l2 = []
l3 = []
for i in range(n):
if l[i] % 2== 0:
l2.append(l[i])
else:
l3.append(l[i])
if len(l2) < len(l1):
for i in range(n):
if l[i] == l2[0]:
print(i+1)
else:
for i in range(n):
if l[i] == l3[0]:
print(i+1)
|
Title: IQ test
Time Limit: 2 seconds
Memory Limit: 256 megabytes
Problem Description:
Bob is preparing to pass IQ test. The most frequent task in this test is to find out which one of the given *n* numbers differs from the others. Bob observed that one number usually differs from the others in evenness. Help Bob — to check his answers, he needs a program that among the given *n* numbers finds one that is different in evenness.
Input Specification:
The first line contains integer *n* (3<=≤<=*n*<=≤<=100) — amount of numbers in the task. The second line contains *n* space-separated natural numbers, not exceeding 100. It is guaranteed, that exactly one of these numbers differs from the others in evenness.
Output Specification:
Output index of number that differs from the others in evenness. Numbers are numbered from 1 in the input order.
Demo Input:
['5\n2 4 7 8 10\n', '4\n1 2 1 1\n']
Demo Output:
['3\n', '2\n']
Note:
none
|
```python
n = int(input())
l = list(map(int,input().split()))
l2 = []
l3 = []
for i in range(n):
if l[i] % 2== 0:
l2.append(l[i])
else:
l3.append(l[i])
if len(l2) < len(l1):
for i in range(n):
if l[i] == l2[0]:
print(i+1)
else:
for i in range(n):
if l[i] == l3[0]:
print(i+1)
```
| -1
|
237
|
A
|
Free Cash
|
PROGRAMMING
| 1,000
|
[
"implementation"
] | null | null |
Valera runs a 24/7 fast food cafe. He magically learned that next day *n* people will visit his cafe. For each person we know the arrival time: the *i*-th person comes exactly at *h**i* hours *m**i* minutes. The cafe spends less than a minute to serve each client, but if a client comes in and sees that there is no free cash, than he doesn't want to wait and leaves the cafe immediately.
Valera is very greedy, so he wants to serve all *n* customers next day (and get more profit). However, for that he needs to ensure that at each moment of time the number of working cashes is no less than the number of clients in the cafe.
Help Valera count the minimum number of cashes to work at his cafe next day, so that they can serve all visitors.
|
The first line contains a single integer *n* (1<=≤<=*n*<=≤<=105), that is the number of cafe visitors.
Each of the following *n* lines has two space-separated integers *h**i* and *m**i* (0<=≤<=*h**i*<=≤<=23; 0<=≤<=*m**i*<=≤<=59), representing the time when the *i*-th person comes into the cafe.
Note that the time is given in the chronological order. All time is given within one 24-hour period.
|
Print a single integer — the minimum number of cashes, needed to serve all clients next day.
|
[
"4\n8 0\n8 10\n8 10\n8 45\n",
"3\n0 12\n10 11\n22 22\n"
] |
[
"2\n",
"1\n"
] |
In the first sample it is not enough one cash to serve all clients, because two visitors will come into cafe in 8:10. Therefore, if there will be one cash in cafe, then one customer will be served by it, and another one will not wait and will go away.
In the second sample all visitors will come in different times, so it will be enough one cash.
| 500
|
[
{
"input": "4\n8 0\n8 10\n8 10\n8 45",
"output": "2"
},
{
"input": "3\n0 12\n10 11\n22 22",
"output": "1"
},
{
"input": "5\n12 8\n15 27\n15 27\n16 2\n19 52",
"output": "2"
},
{
"input": "7\n5 6\n7 34\n7 34\n7 34\n12 29\n15 19\n20 23",
"output": "3"
},
{
"input": "8\n0 36\n4 7\n4 7\n4 7\n11 46\n12 4\n15 39\n18 6",
"output": "3"
},
{
"input": "20\n4 12\n4 21\n4 27\n4 56\n5 55\n7 56\n11 28\n11 36\n14 58\n15 59\n16 8\n17 12\n17 23\n17 23\n17 23\n17 23\n17 23\n17 23\n20 50\n22 32",
"output": "6"
},
{
"input": "10\n1 30\n1 30\n1 30\n1 30\n1 30\n1 30\n1 30\n1 30\n1 30\n1 30",
"output": "10"
},
{
"input": "50\n0 23\n1 21\n2 8\n2 45\n3 1\n4 19\n4 37\n7 7\n7 40\n8 43\n9 51\n10 13\n11 2\n11 19\n11 30\n12 37\n12 37\n12 37\n12 37\n12 37\n12 37\n12 37\n12 37\n12 54\n13 32\n13 42\n14 29\n14 34\n14 48\n15 0\n15 27\n16 22\n16 31\n17 25\n17 26\n17 33\n18 14\n18 16\n18 20\n19 0\n19 5\n19 56\n20 22\n21 26\n22 0\n22 10\n22 11\n22 36\n23 17\n23 20",
"output": "8"
},
{
"input": "10\n0 39\n1 35\n1 49\n1 51\n5 24\n7 40\n7 56\n16 42\n23 33\n23 49",
"output": "1"
},
{
"input": "15\n0 16\n6 15\n8 2\n8 6\n8 7\n10 1\n10 1\n10 3\n10 12\n13 5\n14 16\n14 16\n14 16\n14 16\n14 16",
"output": "5"
},
{
"input": "2\n0 24\n1 0",
"output": "1"
},
{
"input": "1\n0 0",
"output": "1"
},
{
"input": "1\n1 5",
"output": "1"
},
{
"input": "1\n1 1",
"output": "1"
},
{
"input": "3\n0 0\n0 0\n0 0",
"output": "3"
},
{
"input": "1\n5 0",
"output": "1"
},
{
"input": "5\n0 0\n0 0\n0 0\n0 0\n0 0",
"output": "5"
},
{
"input": "1\n10 10",
"output": "1"
},
{
"input": "1\n8 0",
"output": "1"
},
{
"input": "10\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0\n0 0",
"output": "10"
},
{
"input": "2\n0 0\n0 1",
"output": "1"
},
{
"input": "2\n8 5\n8 5",
"output": "2"
}
] | 1,633,517,481
| 2,147,483,647
|
Python 3
|
TIME_LIMIT_EXCEEDED
|
TESTS
| 8
| 2,000
| 7,270,400
|
n = int(input())
arr = []
for i in range(n):
x,y = [int(i) for i in input().split()]
arr.append((x,y))
ans = max([arr.count(i) for i in arr])
print(ans)
|
Title: Free Cash
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
Valera runs a 24/7 fast food cafe. He magically learned that next day *n* people will visit his cafe. For each person we know the arrival time: the *i*-th person comes exactly at *h**i* hours *m**i* minutes. The cafe spends less than a minute to serve each client, but if a client comes in and sees that there is no free cash, than he doesn't want to wait and leaves the cafe immediately.
Valera is very greedy, so he wants to serve all *n* customers next day (and get more profit). However, for that he needs to ensure that at each moment of time the number of working cashes is no less than the number of clients in the cafe.
Help Valera count the minimum number of cashes to work at his cafe next day, so that they can serve all visitors.
Input Specification:
The first line contains a single integer *n* (1<=≤<=*n*<=≤<=105), that is the number of cafe visitors.
Each of the following *n* lines has two space-separated integers *h**i* and *m**i* (0<=≤<=*h**i*<=≤<=23; 0<=≤<=*m**i*<=≤<=59), representing the time when the *i*-th person comes into the cafe.
Note that the time is given in the chronological order. All time is given within one 24-hour period.
Output Specification:
Print a single integer — the minimum number of cashes, needed to serve all clients next day.
Demo Input:
['4\n8 0\n8 10\n8 10\n8 45\n', '3\n0 12\n10 11\n22 22\n']
Demo Output:
['2\n', '1\n']
Note:
In the first sample it is not enough one cash to serve all clients, because two visitors will come into cafe in 8:10. Therefore, if there will be one cash in cafe, then one customer will be served by it, and another one will not wait and will go away.
In the second sample all visitors will come in different times, so it will be enough one cash.
|
```python
n = int(input())
arr = []
for i in range(n):
x,y = [int(i) for i in input().split()]
arr.append((x,y))
ans = max([arr.count(i) for i in arr])
print(ans)
```
| 0
|
|
471
|
D
|
MUH and Cube Walls
|
PROGRAMMING
| 1,800
|
[
"string suffix structures",
"strings"
] | null | null |
Polar bears Menshykov and Uslada from the zoo of St. Petersburg and elephant Horace from the zoo of Kiev got hold of lots of wooden cubes somewhere. They started making cube towers by placing the cubes one on top of the other. They defined multiple towers standing in a line as a wall. A wall can consist of towers of different heights.
Horace was the first to finish making his wall. He called his wall an elephant. The wall consists of *w* towers. The bears also finished making their wall but they didn't give it a name. Their wall consists of *n* towers. Horace looked at the bears' tower and wondered: in how many parts of the wall can he "see an elephant"? He can "see an elephant" on a segment of *w* contiguous towers if the heights of the towers on the segment match as a sequence the heights of the towers in Horace's wall. In order to see as many elephants as possible, Horace can raise and lower his wall. He even can lower the wall below the ground level (see the pictures to the samples for clarification).
Your task is to count the number of segments where Horace can "see an elephant".
|
The first line contains two integers *n* and *w* (1<=≤<=*n*,<=*w*<=≤<=2·105) — the number of towers in the bears' and the elephant's walls correspondingly. The second line contains *n* integers *a**i* (1<=≤<=*a**i*<=≤<=109) — the heights of the towers in the bears' wall. The third line contains *w* integers *b**i* (1<=≤<=*b**i*<=≤<=109) — the heights of the towers in the elephant's wall.
|
Print the number of segments in the bears' wall where Horace can "see an elephant".
|
[
"13 5\n2 4 5 5 4 3 2 2 2 3 3 2 1\n3 4 4 3 2\n"
] |
[
"2"
] |
The picture to the left shows Horace's wall from the sample, the picture to the right shows the bears' wall. The segments where Horace can "see an elephant" are in gray.
| 2,000
|
[
{
"input": "13 5\n2 4 5 5 4 3 2 2 2 3 3 2 1\n3 4 4 3 2",
"output": "2"
},
{
"input": "5 1\n8 71 1 24 2\n31",
"output": "5"
},
{
"input": "6 3\n2 2 2 2 2 2\n5 5 5",
"output": "4"
},
{
"input": "1 1\n576560149\n691846236",
"output": "1"
},
{
"input": "10 5\n5 10 8 10 11 9 11 12 10 15\n4 2 4 5 3",
"output": "2"
},
{
"input": "10 10\n6 8 1 2 5 1 4 24 2 4\n6 8 1 2 5 1 4 24 2 4",
"output": "1"
},
{
"input": "10 10\n6 8 1 2 5 1 14 24 12 4\n7 9 2 3 6 2 15 25 13 5",
"output": "1"
},
{
"input": "8 4\n1 2 3 4 5 6 7 8\n10 11 12 13",
"output": "5"
},
{
"input": "10 5\n172960147 951061917 502625539 319177159 720665763 402410416 880790711 734191412 452846733 449904402\n640219326 792464591 173792179 691347674 125427306",
"output": "0"
},
{
"input": "10 3\n2 3 3 2 1 1 3 1 3 1\n2 1 2",
"output": "0"
},
{
"input": "10 5\n260725416 260725506 260725422 260725512 260725428 260725518 260725434 260725524 260725440 260725530\n925033135 925033225 925033141 925033231 925033147",
"output": "3"
},
{
"input": "2 2\n1000000000 10\n1 20",
"output": "0"
},
{
"input": "7 3\n1 1 1 1 1 1 1\n1000 1256 1512",
"output": "0"
},
{
"input": "3 3\n1 132 3\n2 1 3",
"output": "0"
},
{
"input": "53 3\n1 3 4 4 5 7 10 14 19 25 32 40 49 59 70 82 95 109 124 140 157 175 194 214 235 257 280 304 329 355 382 410 439 469 500 532 565 599 634 670 707 745 784 824 865 907 950 994 1039 1085 1132 1180 1229\n1 2 40",
"output": "0"
}
] | 1,411,747,771
| 2,371
|
Python 3
|
TIME_LIMIT_EXCEEDED
|
PRETESTS
| 3
| 2,000
| 3,584,000
|
n,m = map(int, input().split(' ') )
nlist = list()
mlist = list()
nlist[:] = map(int, input().split(' ') )
mlist[:] = map(int, input().split(' ') )
j = min(mlist)
for i in range(m):
mlist[i] -= j
tlist = mlist[:]
for i in range(m - 1):
tlist[i+1] = mlist[i+1] - mlist[i]
mlist = tlist[:]
sslon = 0
for i in range( n - m + 1 ):
if nlist[i] >= mlist[0]:
slon = 1
for j in range(m - 1):
x = nlist[i+j+1] - nlist[i+j]
if not ( x == mlist[j+1] ):
slon = 0
if slon == 1:
sslon += 1
print(sslon)
|
Title: MUH and Cube Walls
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
Polar bears Menshykov and Uslada from the zoo of St. Petersburg and elephant Horace from the zoo of Kiev got hold of lots of wooden cubes somewhere. They started making cube towers by placing the cubes one on top of the other. They defined multiple towers standing in a line as a wall. A wall can consist of towers of different heights.
Horace was the first to finish making his wall. He called his wall an elephant. The wall consists of *w* towers. The bears also finished making their wall but they didn't give it a name. Their wall consists of *n* towers. Horace looked at the bears' tower and wondered: in how many parts of the wall can he "see an elephant"? He can "see an elephant" on a segment of *w* contiguous towers if the heights of the towers on the segment match as a sequence the heights of the towers in Horace's wall. In order to see as many elephants as possible, Horace can raise and lower his wall. He even can lower the wall below the ground level (see the pictures to the samples for clarification).
Your task is to count the number of segments where Horace can "see an elephant".
Input Specification:
The first line contains two integers *n* and *w* (1<=≤<=*n*,<=*w*<=≤<=2·105) — the number of towers in the bears' and the elephant's walls correspondingly. The second line contains *n* integers *a**i* (1<=≤<=*a**i*<=≤<=109) — the heights of the towers in the bears' wall. The third line contains *w* integers *b**i* (1<=≤<=*b**i*<=≤<=109) — the heights of the towers in the elephant's wall.
Output Specification:
Print the number of segments in the bears' wall where Horace can "see an elephant".
Demo Input:
['13 5\n2 4 5 5 4 3 2 2 2 3 3 2 1\n3 4 4 3 2\n']
Demo Output:
['2']
Note:
The picture to the left shows Horace's wall from the sample, the picture to the right shows the bears' wall. The segments where Horace can "see an elephant" are in gray.
|
```python
n,m = map(int, input().split(' ') )
nlist = list()
mlist = list()
nlist[:] = map(int, input().split(' ') )
mlist[:] = map(int, input().split(' ') )
j = min(mlist)
for i in range(m):
mlist[i] -= j
tlist = mlist[:]
for i in range(m - 1):
tlist[i+1] = mlist[i+1] - mlist[i]
mlist = tlist[:]
sslon = 0
for i in range( n - m + 1 ):
if nlist[i] >= mlist[0]:
slon = 1
for j in range(m - 1):
x = nlist[i+j+1] - nlist[i+j]
if not ( x == mlist[j+1] ):
slon = 0
if slon == 1:
sslon += 1
print(sslon)
```
| 0
|
|
996
|
B
|
World Cup
|
PROGRAMMING
| 1,300
|
[
"binary search",
"math"
] | null | null |
Allen wants to enter a fan zone that occupies a round square and has $n$ entrances.
There already is a queue of $a_i$ people in front of the $i$-th entrance. Each entrance allows one person from its queue to enter the fan zone in one minute.
Allen uses the following strategy to enter the fan zone:
- Initially he stands in the end of the queue in front of the first entrance. - Each minute, if he is not allowed into the fan zone during the minute (meaning he is not the first in the queue), he leaves the current queue and stands in the end of the queue of the next entrance (or the first entrance if he leaves the last entrance).
Determine the entrance through which Allen will finally enter the fan zone.
|
The first line contains a single integer $n$ ($2 \le n \le 10^5$) — the number of entrances.
The second line contains $n$ integers $a_1, a_2, \ldots, a_n$ ($0 \le a_i \le 10^9$) — the number of people in queues. These numbers do not include Allen.
|
Print a single integer — the number of entrance that Allen will use.
|
[
"4\n2 3 2 0\n",
"2\n10 10\n",
"6\n5 2 6 5 7 4\n"
] |
[
"3\n",
"1\n",
"6\n"
] |
In the first example the number of people (not including Allen) changes as follows: $[\textbf{2}, 3, 2, 0] \to [1, \textbf{2}, 1, 0] \to [0, 1, \textbf{0}, 0]$. The number in bold is the queue Alles stands in. We see that he will enter the fan zone through the third entrance.
In the second example the number of people (not including Allen) changes as follows: $[\textbf{10}, 10] \to [9, \textbf{9}] \to [\textbf{8}, 8] \to [7, \textbf{7}] \to [\textbf{6}, 6] \to \\ [5, \textbf{5}] \to [\textbf{4}, 4] \to [3, \textbf{3}] \to [\textbf{2}, 2] \to [1, \textbf{1}] \to [\textbf{0}, 0]$.
In the third example the number of people (not including Allen) changes as follows: $[\textbf{5}, 2, 6, 5, 7, 4] \to [4, \textbf{1}, 5, 4, 6, 3] \to [3, 0, \textbf{4}, 3, 5, 2] \to \\ [2, 0, 3, \textbf{2}, 4, 1] \to [1, 0, 2, 1, \textbf{3}, 0] \to [0, 0, 1, 0, 2, \textbf{0}]$.
| 1,000
|
[
{
"input": "4\n2 3 2 0",
"output": "3"
},
{
"input": "2\n10 10",
"output": "1"
},
{
"input": "6\n5 2 6 5 7 4",
"output": "6"
},
{
"input": "2\n483544186 940350702",
"output": "1"
},
{
"input": "10\n3 3 3 5 6 9 3 1 7 3",
"output": "7"
},
{
"input": "10\n0 8 45 88 48 68 28 55 17 24",
"output": "1"
},
{
"input": "100\n8 8 9 10 6 8 2 4 2 2 10 6 6 10 10 2 3 5 1 2 10 4 2 0 9 4 9 3 0 6 3 2 3 10 10 6 4 6 4 4 2 5 1 4 1 1 9 8 9 5 3 5 5 4 5 5 6 5 3 3 7 2 0 10 9 7 7 3 5 1 0 9 6 3 1 3 4 4 3 6 3 2 1 4 10 2 3 4 4 3 6 7 6 2 1 7 0 6 8 10",
"output": "7"
},
{
"input": "10\n5 6 7 8 9 10 11 12 13 14",
"output": "1"
},
{
"input": "10\n15 14 13 12 11 10 9 8 7 6",
"output": "9"
},
{
"input": "2\n1000000000 1000000000",
"output": "1"
},
{
"input": "3\n3 3 1",
"output": "3"
},
{
"input": "10\n1000000000 1000000000 1000000000 1000000000 1000000000 1000000000 1000000000 1000000000 1000000000 1000000000",
"output": "1"
},
{
"input": "3\n15 8 9",
"output": "2"
},
{
"input": "3\n5 5 5",
"output": "3"
},
{
"input": "3\n41 5 6",
"output": "2"
},
{
"input": "2\n999999999 1000000000",
"output": "1"
},
{
"input": "2\n0 1",
"output": "1"
},
{
"input": "3\n3 2 3",
"output": "1"
},
{
"input": "3\n8 5 8",
"output": "2"
},
{
"input": "4\n5 2 3 4",
"output": "2"
},
{
"input": "2\n0 0",
"output": "1"
},
{
"input": "2\n3 3",
"output": "2"
},
{
"input": "4\n9 2 4 7",
"output": "2"
},
{
"input": "30\n1000000000 1000000000 1000000000 1000000000 1000000000 1000000000 1000000000 1000000000 1000000000 1000000000 1000000000 1000000000 1000000000 1000000000 1000000000 1000000000 1000000000 1000000000 1000000000 1000000000 1000000000 1000000000 1000000000 1000000000 1000000000 1000000000 1000000000 1000000000 1000000000 1000000000",
"output": "11"
},
{
"input": "4\n11 10 12 12",
"output": "1"
},
{
"input": "2\n1 0",
"output": "2"
},
{
"input": "6\n7 2 6 5 7 9",
"output": "2"
},
{
"input": "3\n1000000000 1000000000 1000000000",
"output": "2"
},
{
"input": "2\n999999999 999999699",
"output": "2"
},
{
"input": "5\n5 5 5 5 5",
"output": "1"
},
{
"input": "2\n1 1",
"output": "2"
}
] | 1,697,609,111
| 2,147,483,647
|
PyPy 3
|
WRONG_ANSWER
|
TESTS
| 0
| 77
| 0
|
n=int(input())
l=list(map(int,input().split()))
for i in range(n):
i%=n
if(l[i]<=0):
print(i)
break
for j in range(n):
l[j]+=-1
|
Title: World Cup
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
Allen wants to enter a fan zone that occupies a round square and has $n$ entrances.
There already is a queue of $a_i$ people in front of the $i$-th entrance. Each entrance allows one person from its queue to enter the fan zone in one minute.
Allen uses the following strategy to enter the fan zone:
- Initially he stands in the end of the queue in front of the first entrance. - Each minute, if he is not allowed into the fan zone during the minute (meaning he is not the first in the queue), he leaves the current queue and stands in the end of the queue of the next entrance (or the first entrance if he leaves the last entrance).
Determine the entrance through which Allen will finally enter the fan zone.
Input Specification:
The first line contains a single integer $n$ ($2 \le n \le 10^5$) — the number of entrances.
The second line contains $n$ integers $a_1, a_2, \ldots, a_n$ ($0 \le a_i \le 10^9$) — the number of people in queues. These numbers do not include Allen.
Output Specification:
Print a single integer — the number of entrance that Allen will use.
Demo Input:
['4\n2 3 2 0\n', '2\n10 10\n', '6\n5 2 6 5 7 4\n']
Demo Output:
['3\n', '1\n', '6\n']
Note:
In the first example the number of people (not including Allen) changes as follows: $[\textbf{2}, 3, 2, 0] \to [1, \textbf{2}, 1, 0] \to [0, 1, \textbf{0}, 0]$. The number in bold is the queue Alles stands in. We see that he will enter the fan zone through the third entrance.
In the second example the number of people (not including Allen) changes as follows: $[\textbf{10}, 10] \to [9, \textbf{9}] \to [\textbf{8}, 8] \to [7, \textbf{7}] \to [\textbf{6}, 6] \to \\ [5, \textbf{5}] \to [\textbf{4}, 4] \to [3, \textbf{3}] \to [\textbf{2}, 2] \to [1, \textbf{1}] \to [\textbf{0}, 0]$.
In the third example the number of people (not including Allen) changes as follows: $[\textbf{5}, 2, 6, 5, 7, 4] \to [4, \textbf{1}, 5, 4, 6, 3] \to [3, 0, \textbf{4}, 3, 5, 2] \to \\ [2, 0, 3, \textbf{2}, 4, 1] \to [1, 0, 2, 1, \textbf{3}, 0] \to [0, 0, 1, 0, 2, \textbf{0}]$.
|
```python
n=int(input())
l=list(map(int,input().split()))
for i in range(n):
i%=n
if(l[i]<=0):
print(i)
break
for j in range(n):
l[j]+=-1
```
| 0
|
|
71
|
A
|
Way Too Long Words
|
PROGRAMMING
| 800
|
[
"strings"
] |
A. Way Too Long Words
|
1
|
256
|
Sometimes some words like "localization" or "internationalization" are so long that writing them many times in one text is quite tiresome.
Let's consider a word too long, if its length is strictly more than 10 characters. All too long words should be replaced with a special abbreviation.
This abbreviation is made like this: we write down the first and the last letter of a word and between them we write the number of letters between the first and the last letters. That number is in decimal system and doesn't contain any leading zeroes.
Thus, "localization" will be spelt as "l10n", and "internationalization» will be spelt as "i18n".
You are suggested to automatize the process of changing the words with abbreviations. At that all too long words should be replaced by the abbreviation and the words that are not too long should not undergo any changes.
|
The first line contains an integer *n* (1<=≤<=*n*<=≤<=100). Each of the following *n* lines contains one word. All the words consist of lowercase Latin letters and possess the lengths of from 1 to 100 characters.
|
Print *n* lines. The *i*-th line should contain the result of replacing of the *i*-th word from the input data.
|
[
"4\nword\nlocalization\ninternationalization\npneumonoultramicroscopicsilicovolcanoconiosis\n"
] |
[
"word\nl10n\ni18n\np43s\n"
] |
none
| 500
|
[
{
"input": "4\nword\nlocalization\ninternationalization\npneumonoultramicroscopicsilicovolcanoconiosis",
"output": "word\nl10n\ni18n\np43s"
},
{
"input": "5\nabcdefgh\nabcdefghi\nabcdefghij\nabcdefghijk\nabcdefghijklm",
"output": "abcdefgh\nabcdefghi\nabcdefghij\na9k\na11m"
},
{
"input": "3\nnjfngnrurunrgunrunvurn\njfvnjfdnvjdbfvsbdubruvbubvkdb\nksdnvidnviudbvibd",
"output": "n20n\nj27b\nk15d"
},
{
"input": "1\ntcyctkktcctrcyvbyiuhihhhgyvyvyvyvjvytchjckt",
"output": "t41t"
},
{
"input": "24\nyou\nare\nregistered\nfor\npractice\nyou\ncan\nsolve\nproblems\nunofficially\nresults\ncan\nbe\nfound\nin\nthe\ncontest\nstatus\nand\nin\nthe\nbottom\nof\nstandings",
"output": "you\nare\nregistered\nfor\npractice\nyou\ncan\nsolve\nproblems\nu10y\nresults\ncan\nbe\nfound\nin\nthe\ncontest\nstatus\nand\nin\nthe\nbottom\nof\nstandings"
},
{
"input": "1\na",
"output": "a"
},
{
"input": "26\na\nb\nc\nd\ne\nf\ng\nh\ni\nj\nk\nl\nm\nn\no\np\nq\nr\ns\nt\nu\nv\nw\nx\ny\nz",
"output": "a\nb\nc\nd\ne\nf\ng\nh\ni\nj\nk\nl\nm\nn\no\np\nq\nr\ns\nt\nu\nv\nw\nx\ny\nz"
},
{
"input": "1\nabcdefghijabcdefghijabcdefghijabcdefghijabcdefghijabcdefghijabcdefghijabcdefghijabcdefghijabcdefghij",
"output": "a98j"
},
{
"input": "10\ngyartjdxxlcl\nfzsck\nuidwu\nxbymclornemdmtj\nilppyoapitawgje\ncibzc\ndrgbeu\nhezplmsdekhhbo\nfeuzlrimbqbytdu\nkgdco",
"output": "g10l\nfzsck\nuidwu\nx13j\ni13e\ncibzc\ndrgbeu\nh12o\nf13u\nkgdco"
},
{
"input": "20\nlkpmx\nkovxmxorlgwaomlswjxlpnbvltfv\nhykasjxqyjrmybejnmeumzha\ntuevlumpqbbhbww\nqgqsphvrmupxxc\ntrissbaf\nqfgrlinkzvzqdryckaizutd\nzzqtoaxkvwoscyx\noswytrlnhpjvvnwookx\nlpuzqgec\ngyzqfwxggtvpjhzmzmdw\nrlxjgmvdftvrmvbdwudra\nvsntnjpepnvdaxiporggmglhagv\nxlvcqkqgcrbgtgglj\nlyxwxbiszyhlsrgzeedzprbmcpduvq\nyrmqqvrkqskqukzqrwukpsifgtdc\nxpuohcsjhhuhvr\nvvlfrlxpvqejngwrbfbpmqeirxlw\nsvmasocxdvadmaxtrpakysmeaympy\nyuflqboqfdt",
"output": "lkpmx\nk26v\nh22a\nt13w\nq12c\ntrissbaf\nq21d\nz13x\no17x\nlpuzqgec\ng18w\nr19a\nv25v\nx15j\nl28q\ny26c\nx12r\nv26w\ns27y\ny9t"
},
{
"input": "100\nm\nz\ns\nv\nd\nr\nv\ny\ny\ne\np\nt\nc\na\nn\nm\np\ng\ni\nj\nc\na\nb\nq\ne\nn\nv\no\nk\nx\nf\ni\nl\na\nq\nr\nu\nb\ns\nl\nc\nl\ne\nv\nj\nm\nx\nb\na\nq\nb\na\nf\nj\nv\nm\nq\nc\nt\nt\nn\nx\no\ny\nr\nu\nh\nm\nj\np\nj\nq\nz\ns\nj\no\ng\nc\nm\nn\no\nm\nr\no\ns\nt\nh\nr\np\nk\nb\nz\ng\no\nc\nc\nz\nz\ng\nr",
"output": "m\nz\ns\nv\nd\nr\nv\ny\ny\ne\np\nt\nc\na\nn\nm\np\ng\ni\nj\nc\na\nb\nq\ne\nn\nv\no\nk\nx\nf\ni\nl\na\nq\nr\nu\nb\ns\nl\nc\nl\ne\nv\nj\nm\nx\nb\na\nq\nb\na\nf\nj\nv\nm\nq\nc\nt\nt\nn\nx\no\ny\nr\nu\nh\nm\nj\np\nj\nq\nz\ns\nj\no\ng\nc\nm\nn\no\nm\nr\no\ns\nt\nh\nr\np\nk\nb\nz\ng\no\nc\nc\nz\nz\ng\nr"
}
] | 1,691,149,629
| 2,147,483,647
|
Python 3
|
WRONG_ANSWER
|
TESTS
| 0
| 30
| 0
|
i = str(input())
x = len(i)
if x>=10:
a = i[0]
b = i[-1]
y = str(x)
ABB = a+y+b
print(ABB)
else:
print(i)
|
Title: Way Too Long Words
Time Limit: 1 seconds
Memory Limit: 256 megabytes
Problem Description:
Sometimes some words like "localization" or "internationalization" are so long that writing them many times in one text is quite tiresome.
Let's consider a word too long, if its length is strictly more than 10 characters. All too long words should be replaced with a special abbreviation.
This abbreviation is made like this: we write down the first and the last letter of a word and between them we write the number of letters between the first and the last letters. That number is in decimal system and doesn't contain any leading zeroes.
Thus, "localization" will be spelt as "l10n", and "internationalization» will be spelt as "i18n".
You are suggested to automatize the process of changing the words with abbreviations. At that all too long words should be replaced by the abbreviation and the words that are not too long should not undergo any changes.
Input Specification:
The first line contains an integer *n* (1<=≤<=*n*<=≤<=100). Each of the following *n* lines contains one word. All the words consist of lowercase Latin letters and possess the lengths of from 1 to 100 characters.
Output Specification:
Print *n* lines. The *i*-th line should contain the result of replacing of the *i*-th word from the input data.
Demo Input:
['4\nword\nlocalization\ninternationalization\npneumonoultramicroscopicsilicovolcanoconiosis\n']
Demo Output:
['word\nl10n\ni18n\np43s\n']
Note:
none
|
```python
i = str(input())
x = len(i)
if x>=10:
a = i[0]
b = i[-1]
y = str(x)
ABB = a+y+b
print(ABB)
else:
print(i)
```
| 0
|
814
|
A
|
An abandoned sentiment from past
|
PROGRAMMING
| 900
|
[
"constructive algorithms",
"greedy",
"implementation",
"sortings"
] | null | null |
A few years ago, Hitagi encountered a giant crab, who stole the whole of her body weight. Ever since, she tried to avoid contact with others, for fear that this secret might be noticed.
To get rid of the oddity and recover her weight, a special integer sequence is needed. Hitagi's sequence has been broken for a long time, but now Kaiki provides an opportunity.
Hitagi's sequence *a* has a length of *n*. Lost elements in it are denoted by zeros. Kaiki provides another sequence *b*, whose length *k* equals the number of lost elements in *a* (i.e. the number of zeros). Hitagi is to replace each zero in *a* with an element from *b* so that each element in *b* should be used exactly once. Hitagi knows, however, that, apart from 0, no integer occurs in *a* and *b* more than once in total.
If the resulting sequence is not an increasing sequence, then it has the power to recover Hitagi from the oddity. You are to determine whether this is possible, or Kaiki's sequence is just another fake. In other words, you should detect whether it is possible to replace each zero in *a* with an integer from *b* so that each integer from *b* is used exactly once, and the resulting sequence is not increasing.
|
The first line of input contains two space-separated positive integers *n* (2<=≤<=*n*<=≤<=100) and *k* (1<=≤<=*k*<=≤<=*n*) — the lengths of sequence *a* and *b* respectively.
The second line contains *n* space-separated integers *a*1,<=*a*2,<=...,<=*a**n* (0<=≤<=*a**i*<=≤<=200) — Hitagi's broken sequence with exactly *k* zero elements.
The third line contains *k* space-separated integers *b*1,<=*b*2,<=...,<=*b**k* (1<=≤<=*b**i*<=≤<=200) — the elements to fill into Hitagi's sequence.
Input guarantees that apart from 0, no integer occurs in *a* and *b* more than once in total.
|
Output "Yes" if it's possible to replace zeros in *a* with elements in *b* and make the resulting sequence not increasing, and "No" otherwise.
|
[
"4 2\n11 0 0 14\n5 4\n",
"6 1\n2 3 0 8 9 10\n5\n",
"4 1\n8 94 0 4\n89\n",
"7 7\n0 0 0 0 0 0 0\n1 2 3 4 5 6 7\n"
] |
[
"Yes\n",
"No\n",
"Yes\n",
"Yes\n"
] |
In the first sample:
- Sequence *a* is 11, 0, 0, 14. - Two of the elements are lost, and the candidates in *b* are 5 and 4. - There are two possible resulting sequences: 11, 5, 4, 14 and 11, 4, 5, 14, both of which fulfill the requirements. Thus the answer is "Yes".
In the second sample, the only possible resulting sequence is 2, 3, 5, 8, 9, 10, which is an increasing sequence and therefore invalid.
| 500
|
[
{
"input": "4 2\n11 0 0 14\n5 4",
"output": "Yes"
},
{
"input": "6 1\n2 3 0 8 9 10\n5",
"output": "No"
},
{
"input": "4 1\n8 94 0 4\n89",
"output": "Yes"
},
{
"input": "7 7\n0 0 0 0 0 0 0\n1 2 3 4 5 6 7",
"output": "Yes"
},
{
"input": "40 1\n23 26 27 28 31 35 38 40 43 50 52 53 56 57 59 61 65 73 75 76 79 0 82 84 85 86 88 93 99 101 103 104 105 106 110 111 112 117 119 120\n80",
"output": "No"
},
{
"input": "100 1\n99 95 22 110 47 20 37 34 23 0 16 69 64 49 111 42 112 96 13 40 18 77 44 46 74 55 15 54 56 75 78 100 82 101 31 83 53 80 52 63 30 57 104 36 67 65 103 51 48 26 68 59 35 92 85 38 107 98 73 90 62 43 32 89 19 106 17 88 41 72 113 86 66 102 81 27 29 50 71 79 109 91 70 39 61 76 93 84 108 97 24 25 45 105 94 60 33 87 14 21\n58",
"output": "Yes"
},
{
"input": "4 1\n2 1 0 4\n3",
"output": "Yes"
},
{
"input": "2 1\n199 0\n200",
"output": "No"
},
{
"input": "3 2\n115 0 0\n145 191",
"output": "Yes"
},
{
"input": "5 1\n196 197 198 0 200\n199",
"output": "No"
},
{
"input": "5 1\n92 0 97 99 100\n93",
"output": "No"
},
{
"input": "3 1\n3 87 0\n81",
"output": "Yes"
},
{
"input": "3 1\n0 92 192\n118",
"output": "Yes"
},
{
"input": "10 1\n1 3 0 7 35 46 66 72 83 90\n22",
"output": "Yes"
},
{
"input": "100 1\n14 15 16 17 18 19 20 21 22 23 24 25 26 27 28 29 30 31 32 33 34 35 36 37 38 39 40 41 42 43 44 45 46 47 48 49 50 51 52 53 54 55 56 57 58 59 60 61 62 63 64 65 66 0 68 69 70 71 72 73 74 75 76 77 78 79 80 81 82 83 84 85 86 87 88 89 90 91 92 93 94 95 96 97 98 99 100 101 102 103 104 105 106 107 108 109 110 111 112 113\n67",
"output": "No"
},
{
"input": "100 5\n1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 16 17 18 19 20 21 22 23 24 25 26 27 28 0 30 31 32 33 34 35 36 37 38 39 40 41 42 43 44 45 46 47 48 49 50 51 0 53 54 0 56 57 58 59 60 61 62 63 0 65 66 67 68 69 70 71 72 73 74 75 76 77 78 79 80 81 82 83 84 85 86 87 88 89 90 91 92 93 94 95 96 97 0 99 100\n98 64 55 52 29",
"output": "Yes"
},
{
"input": "100 5\n175 30 124 0 12 111 6 0 119 108 0 38 127 3 151 114 95 54 4 128 91 11 168 120 80 107 18 21 149 169 0 141 195 20 78 157 33 118 17 69 105 130 197 57 74 110 138 84 71 172 132 93 191 44 152 156 24 101 146 26 2 36 143 122 104 42 103 97 39 116 115 0 155 87 53 85 7 43 65 196 136 154 16 79 45 129 67 150 35 73 55 76 37 147 112 82 162 58 40 75\n121 199 62 193 27",
"output": "Yes"
},
{
"input": "100 1\n1 2 3 4 5 6 7 8 9 0 10 12 13 14 15 16 17 18 19 20 21 22 23 24 25 26 27 28 29 30 31 32 33 34 35 36 37 38 39 40 41 42 43 44 45 46 47 48 49 50 51 52 53 54 55 56 57 58 59 60 61 62 63 64 65 66 67 68 69 70 71 72 73 74 75 76 77 78 79 80 81 82 83 84 85 86 87 88 89 90 91 92 93 94 95 96 97 98 99 100\n11",
"output": "Yes"
},
{
"input": "100 1\n0 2 3 4 5 6 7 8 9 10 11 12 13 14 15 16 17 18 19 20 21 22 23 24 25 26 27 28 29 30 31 32 33 34 35 36 37 38 39 40 41 42 43 44 45 46 47 48 49 50 51 52 53 54 55 56 57 58 59 60 61 62 63 64 65 66 67 68 69 70 71 72 73 74 75 76 77 78 79 80 81 82 83 84 85 86 87 88 89 90 91 92 93 94 95 96 97 98 99 100\n1",
"output": "No"
},
{
"input": "100 1\n1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 16 17 18 19 20 21 22 23 24 25 26 27 28 29 30 31 32 33 34 35 36 37 38 39 40 41 42 43 44 45 46 47 48 49 50 51 52 53 54 55 56 57 58 59 60 61 62 63 64 65 66 67 68 69 70 71 72 73 74 75 76 77 78 79 80 81 82 83 84 85 86 87 88 89 90 91 92 93 94 95 96 97 98 99 0\n100",
"output": "No"
},
{
"input": "100 1\n9 79 7 98 10 50 28 99 43 74 89 20 32 66 23 45 87 78 81 41 86 71 75 85 5 39 14 53 42 48 40 52 3 51 11 34 35 76 77 61 47 19 55 91 62 56 8 72 88 4 33 0 97 92 31 83 18 49 54 21 17 16 63 44 84 22 2 96 70 36 68 60 80 82 13 73 26 94 27 58 1 30 100 38 12 15 93 90 57 59 67 6 64 46 25 29 37 95 69 24\n65",
"output": "Yes"
},
{
"input": "100 2\n0 2 3 4 5 6 7 8 9 10 11 12 13 14 15 16 17 18 19 20 21 22 23 24 25 26 27 28 29 30 31 32 33 34 35 36 37 38 39 40 41 42 43 44 45 46 47 0 49 50 51 52 53 54 55 56 57 58 59 60 61 62 63 64 65 66 67 68 69 70 71 72 73 74 75 76 77 78 79 80 81 82 83 84 85 86 87 88 89 90 91 92 93 94 95 96 97 98 99 100\n48 1",
"output": "Yes"
},
{
"input": "100 1\n2 7 11 17 20 22 23 24 25 27 29 30 31 33 34 35 36 38 39 40 42 44 46 47 50 52 53 58 59 60 61 62 63 66 0 67 71 72 75 79 80 81 86 91 93 94 99 100 101 102 103 104 105 108 109 110 111 113 114 118 119 120 122 123 127 129 130 131 132 133 134 135 136 138 139 140 141 142 147 154 155 156 160 168 170 171 172 176 179 180 181 182 185 186 187 188 189 190 194 198\n69",
"output": "Yes"
},
{
"input": "100 1\n3 5 7 9 11 12 13 18 20 21 22 23 24 27 28 29 31 34 36 38 39 43 46 48 49 50 52 53 55 59 60 61 62 63 66 68 70 72 73 74 75 77 78 79 80 81 83 85 86 88 89 91 92 94 97 98 102 109 110 115 116 117 118 120 122 126 127 128 0 133 134 136 137 141 142 144 145 147 151 152 157 159 160 163 164 171 172 175 176 178 179 180 181 184 186 188 190 192 193 200\n129",
"output": "No"
},
{
"input": "5 2\n0 2 7 0 10\n1 8",
"output": "Yes"
},
{
"input": "3 1\n5 4 0\n1",
"output": "Yes"
},
{
"input": "3 1\n1 0 3\n4",
"output": "Yes"
},
{
"input": "2 1\n0 2\n1",
"output": "No"
},
{
"input": "2 1\n0 5\n7",
"output": "Yes"
},
{
"input": "5 1\n10 11 0 12 13\n1",
"output": "Yes"
},
{
"input": "5 1\n0 2 3 4 5\n6",
"output": "Yes"
},
{
"input": "6 2\n1 0 3 4 0 6\n2 5",
"output": "Yes"
},
{
"input": "7 2\n1 2 3 0 0 6 7\n4 5",
"output": "Yes"
},
{
"input": "4 1\n1 2 3 0\n4",
"output": "No"
},
{
"input": "2 2\n0 0\n1 2",
"output": "Yes"
},
{
"input": "3 2\n1 0 0\n2 3",
"output": "Yes"
},
{
"input": "4 2\n1 0 4 0\n5 2",
"output": "Yes"
},
{
"input": "2 1\n0 1\n2",
"output": "Yes"
},
{
"input": "5 2\n1 0 4 0 6\n2 5",
"output": "Yes"
},
{
"input": "5 1\n2 3 0 4 5\n1",
"output": "Yes"
},
{
"input": "3 1\n0 2 3\n5",
"output": "Yes"
},
{
"input": "6 1\n1 2 3 4 5 0\n6",
"output": "No"
},
{
"input": "5 1\n1 2 0 4 5\n6",
"output": "Yes"
},
{
"input": "3 1\n5 0 2\n7",
"output": "Yes"
},
{
"input": "4 1\n4 5 0 8\n3",
"output": "Yes"
},
{
"input": "5 1\n10 11 12 0 14\n13",
"output": "No"
},
{
"input": "4 1\n1 2 0 4\n5",
"output": "Yes"
},
{
"input": "3 1\n0 11 14\n12",
"output": "Yes"
},
{
"input": "4 1\n1 3 0 4\n2",
"output": "Yes"
},
{
"input": "2 1\n0 5\n1",
"output": "No"
},
{
"input": "5 1\n1 2 0 4 7\n5",
"output": "Yes"
},
{
"input": "3 1\n2 3 0\n1",
"output": "Yes"
},
{
"input": "6 1\n1 2 3 0 5 4\n6",
"output": "Yes"
},
{
"input": "4 2\n11 0 0 14\n13 12",
"output": "Yes"
},
{
"input": "2 1\n1 0\n2",
"output": "No"
},
{
"input": "3 1\n1 2 0\n3",
"output": "No"
},
{
"input": "4 1\n1 0 3 2\n4",
"output": "Yes"
},
{
"input": "3 1\n0 1 2\n5",
"output": "Yes"
},
{
"input": "3 1\n0 1 2\n3",
"output": "Yes"
},
{
"input": "4 1\n0 2 3 4\n5",
"output": "Yes"
},
{
"input": "6 1\n1 2 3 0 4 5\n6",
"output": "Yes"
},
{
"input": "3 1\n1 2 0\n5",
"output": "No"
},
{
"input": "4 2\n1 0 0 4\n3 2",
"output": "Yes"
},
{
"input": "5 1\n2 3 0 5 7\n6",
"output": "Yes"
},
{
"input": "3 1\n2 3 0\n4",
"output": "No"
},
{
"input": "3 1\n1 0 11\n5",
"output": "No"
},
{
"input": "4 1\n7 9 5 0\n8",
"output": "Yes"
},
{
"input": "6 2\n1 2 3 0 5 0\n6 4",
"output": "Yes"
},
{
"input": "3 2\n0 1 0\n3 2",
"output": "Yes"
},
{
"input": "4 1\n6 9 5 0\n8",
"output": "Yes"
},
{
"input": "2 1\n0 3\n6",
"output": "Yes"
},
{
"input": "5 2\n1 2 0 0 5\n4 3",
"output": "Yes"
},
{
"input": "4 2\n2 0 0 8\n3 4",
"output": "Yes"
},
{
"input": "2 1\n0 2\n3",
"output": "Yes"
},
{
"input": "3 1\n0 4 5\n6",
"output": "Yes"
},
{
"input": "6 1\n1 2 3 4 0 5\n6",
"output": "Yes"
},
{
"input": "2 1\n2 0\n3",
"output": "No"
},
{
"input": "4 2\n11 0 0 200\n100 199",
"output": "Yes"
},
{
"input": "2 1\n5 0\n4",
"output": "Yes"
},
{
"input": "3 1\n1 0 5\n10",
"output": "Yes"
},
{
"input": "6 2\n1 2 0 0 5 6\n3 4",
"output": "Yes"
},
{
"input": "5 2\n1 0 3 0 5\n2 4",
"output": "Yes"
},
{
"input": "4 1\n1 4 0 8\n3",
"output": "Yes"
},
{
"input": "4 1\n5 9 4 0\n8",
"output": "Yes"
},
{
"input": "4 2\n1 0 0 7\n3 2",
"output": "Yes"
},
{
"input": "3 3\n0 0 0\n1 4 3",
"output": "Yes"
},
{
"input": "5 5\n0 0 0 0 0\n5 4 3 2 1",
"output": "Yes"
},
{
"input": "4 1\n3 9 4 0\n8",
"output": "Yes"
},
{
"input": "4 2\n1 0 0 4\n2 3",
"output": "Yes"
},
{
"input": "6 1\n2 4 0 8 9 10\n3",
"output": "Yes"
},
{
"input": "4 1\n0 3 5 6\n9",
"output": "Yes"
},
{
"input": "4 2\n1 2 0 0\n3 4",
"output": "Yes"
},
{
"input": "5 1\n2 3 4 5 0\n1",
"output": "Yes"
},
{
"input": "3 1\n2 0 4\n5",
"output": "Yes"
}
] | 1,515,094,790
| 2,147,483,647
|
Python 3
|
RUNTIME_ERROR
|
TESTS
| 8
| 62
| 5,529,600
|
l1=input()
l1=l1.split()
n=int(l1[0])
k=int(l1[1])
a=input()
a=a.split()
b=input()
b=b.split()
for i in range(n):
a[i]=int(a[i])
for i in range(k):
b[i]=int(b[i])
def Increasing(aa):
f=0
for i in range(len(aa)-1):
if aa[i]!=0 and aa[i+1]!=0:
if aa[i]>aa[i+1]:
f=1
return f
def Check1(a,b):
f=0
aa=a.copy()
bb=b.copy()
while 0 in aa and f!=1:
i=aa.index(0)
if aa[i+1]==0:
f=1
continue
if i>=1:
for j in bb:
if j<aa[i-1] and aa[i-1]!=0:
f=1
break
aa.pop(i)
if f==1:
return f
else:
f=Increasing(aa)
return f
f=Check1(a,b)
if f==0:
print('NO')
else:
print('YES')
|
Title: An abandoned sentiment from past
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
A few years ago, Hitagi encountered a giant crab, who stole the whole of her body weight. Ever since, she tried to avoid contact with others, for fear that this secret might be noticed.
To get rid of the oddity and recover her weight, a special integer sequence is needed. Hitagi's sequence has been broken for a long time, but now Kaiki provides an opportunity.
Hitagi's sequence *a* has a length of *n*. Lost elements in it are denoted by zeros. Kaiki provides another sequence *b*, whose length *k* equals the number of lost elements in *a* (i.e. the number of zeros). Hitagi is to replace each zero in *a* with an element from *b* so that each element in *b* should be used exactly once. Hitagi knows, however, that, apart from 0, no integer occurs in *a* and *b* more than once in total.
If the resulting sequence is not an increasing sequence, then it has the power to recover Hitagi from the oddity. You are to determine whether this is possible, or Kaiki's sequence is just another fake. In other words, you should detect whether it is possible to replace each zero in *a* with an integer from *b* so that each integer from *b* is used exactly once, and the resulting sequence is not increasing.
Input Specification:
The first line of input contains two space-separated positive integers *n* (2<=≤<=*n*<=≤<=100) and *k* (1<=≤<=*k*<=≤<=*n*) — the lengths of sequence *a* and *b* respectively.
The second line contains *n* space-separated integers *a*1,<=*a*2,<=...,<=*a**n* (0<=≤<=*a**i*<=≤<=200) — Hitagi's broken sequence with exactly *k* zero elements.
The third line contains *k* space-separated integers *b*1,<=*b*2,<=...,<=*b**k* (1<=≤<=*b**i*<=≤<=200) — the elements to fill into Hitagi's sequence.
Input guarantees that apart from 0, no integer occurs in *a* and *b* more than once in total.
Output Specification:
Output "Yes" if it's possible to replace zeros in *a* with elements in *b* and make the resulting sequence not increasing, and "No" otherwise.
Demo Input:
['4 2\n11 0 0 14\n5 4\n', '6 1\n2 3 0 8 9 10\n5\n', '4 1\n8 94 0 4\n89\n', '7 7\n0 0 0 0 0 0 0\n1 2 3 4 5 6 7\n']
Demo Output:
['Yes\n', 'No\n', 'Yes\n', 'Yes\n']
Note:
In the first sample:
- Sequence *a* is 11, 0, 0, 14. - Two of the elements are lost, and the candidates in *b* are 5 and 4. - There are two possible resulting sequences: 11, 5, 4, 14 and 11, 4, 5, 14, both of which fulfill the requirements. Thus the answer is "Yes".
In the second sample, the only possible resulting sequence is 2, 3, 5, 8, 9, 10, which is an increasing sequence and therefore invalid.
|
```python
l1=input()
l1=l1.split()
n=int(l1[0])
k=int(l1[1])
a=input()
a=a.split()
b=input()
b=b.split()
for i in range(n):
a[i]=int(a[i])
for i in range(k):
b[i]=int(b[i])
def Increasing(aa):
f=0
for i in range(len(aa)-1):
if aa[i]!=0 and aa[i+1]!=0:
if aa[i]>aa[i+1]:
f=1
return f
def Check1(a,b):
f=0
aa=a.copy()
bb=b.copy()
while 0 in aa and f!=1:
i=aa.index(0)
if aa[i+1]==0:
f=1
continue
if i>=1:
for j in bb:
if j<aa[i-1] and aa[i-1]!=0:
f=1
break
aa.pop(i)
if f==1:
return f
else:
f=Increasing(aa)
return f
f=Check1(a,b)
if f==0:
print('NO')
else:
print('YES')
```
| -1
|
|
749
|
A
|
Bachgold Problem
|
PROGRAMMING
| 800
|
[
"greedy",
"implementation",
"math",
"number theory"
] | null | null |
Bachgold problem is very easy to formulate. Given a positive integer *n* represent it as a sum of maximum possible number of prime numbers. One can prove that such representation exists for any integer greater than 1.
Recall that integer *k* is called prime if it is greater than 1 and has exactly two positive integer divisors — 1 and *k*.
|
The only line of the input contains a single integer *n* (2<=≤<=*n*<=≤<=100<=000).
|
The first line of the output contains a single integer *k* — maximum possible number of primes in representation.
The second line should contain *k* primes with their sum equal to *n*. You can print them in any order. If there are several optimal solution, print any of them.
|
[
"5\n",
"6\n"
] |
[
"2\n2 3\n",
"3\n2 2 2\n"
] |
none
| 500
|
[
{
"input": "5",
"output": "2\n2 3"
},
{
"input": "6",
"output": "3\n2 2 2"
},
{
"input": "2",
"output": "1\n2"
},
{
"input": "3",
"output": "1\n3"
},
{
"input": "99999",
"output": "49999\n2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 ..."
},
{
"input": "100000",
"output": "50000\n2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 ..."
},
{
"input": "7",
"output": "3\n2 2 3"
},
{
"input": "4",
"output": "2\n2 2"
},
{
"input": "8",
"output": "4\n2 2 2 2"
},
{
"input": "9",
"output": "4\n2 2 2 3"
},
{
"input": "99995",
"output": "49997\n2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 ..."
},
{
"input": "99996",
"output": "49998\n2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 ..."
},
{
"input": "10",
"output": "5\n2 2 2 2 2"
},
{
"input": "11",
"output": "5\n2 2 2 2 3"
},
{
"input": "99997",
"output": "49998\n2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 ..."
},
{
"input": "99998",
"output": "49999\n2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 ..."
},
{
"input": "12",
"output": "6\n2 2 2 2 2 2"
},
{
"input": "13",
"output": "6\n2 2 2 2 2 3"
},
{
"input": "99993",
"output": "49996\n2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 ..."
},
{
"input": "99994",
"output": "49997\n2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 ..."
},
{
"input": "14",
"output": "7\n2 2 2 2 2 2 2"
},
{
"input": "15",
"output": "7\n2 2 2 2 2 2 3"
},
{
"input": "53",
"output": "26\n2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 3"
},
{
"input": "57",
"output": "28\n2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 3"
},
{
"input": "61",
"output": "30\n2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 3"
},
{
"input": "774",
"output": "387\n2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 ..."
},
{
"input": "202",
"output": "101\n2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2"
},
{
"input": "530",
"output": "265\n2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 ..."
},
{
"input": "7166",
"output": "3583\n2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2..."
},
{
"input": "9294",
"output": "4647\n2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2..."
},
{
"input": "2422",
"output": "1211\n2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2..."
},
{
"input": "15326",
"output": "7663\n2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2..."
},
{
"input": "11454",
"output": "5727\n2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2..."
},
{
"input": "14878",
"output": "7439\n2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2..."
},
{
"input": "90672",
"output": "45336\n2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 ..."
},
{
"input": "99544",
"output": "49772\n2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 ..."
},
{
"input": "90472",
"output": "45236\n2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 ..."
},
{
"input": "23",
"output": "11\n2 2 2 2 2 2 2 2 2 2 3"
},
{
"input": "93",
"output": "46\n2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 3"
},
{
"input": "19",
"output": "9\n2 2 2 2 2 2 2 2 3"
},
{
"input": "11110",
"output": "5555\n2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2 2..."
}
] | 1,636,045,832
| 2,147,483,647
|
Python 3
|
WRONG_ANSWER
|
TESTS
| 0
| 15
| 4,198,400
|
numb = int(input())
ans = ''
n = 0
if numb%2:
n+=numb//2+1
ans+='2 '*(numb//2-1)+'3'
else:
n+=numb//2
ans+='2 '*(numb//2)
print(n)
print(ans)
|
Title: Bachgold Problem
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
Bachgold problem is very easy to formulate. Given a positive integer *n* represent it as a sum of maximum possible number of prime numbers. One can prove that such representation exists for any integer greater than 1.
Recall that integer *k* is called prime if it is greater than 1 and has exactly two positive integer divisors — 1 and *k*.
Input Specification:
The only line of the input contains a single integer *n* (2<=≤<=*n*<=≤<=100<=000).
Output Specification:
The first line of the output contains a single integer *k* — maximum possible number of primes in representation.
The second line should contain *k* primes with their sum equal to *n*. You can print them in any order. If there are several optimal solution, print any of them.
Demo Input:
['5\n', '6\n']
Demo Output:
['2\n2 3\n', '3\n2 2 2\n']
Note:
none
|
```python
numb = int(input())
ans = ''
n = 0
if numb%2:
n+=numb//2+1
ans+='2 '*(numb//2-1)+'3'
else:
n+=numb//2
ans+='2 '*(numb//2)
print(n)
print(ans)
```
| 0
|
|
59
|
A
|
Word
|
PROGRAMMING
| 800
|
[
"implementation",
"strings"
] |
A. Word
|
2
|
256
|
Vasya is very upset that many people on the Net mix uppercase and lowercase letters in one word. That's why he decided to invent an extension for his favorite browser that would change the letters' register in every word so that it either only consisted of lowercase letters or, vice versa, only of uppercase ones. At that as little as possible letters should be changed in the word. For example, the word HoUse must be replaced with house, and the word ViP — with VIP. If a word contains an equal number of uppercase and lowercase letters, you should replace all the letters with lowercase ones. For example, maTRIx should be replaced by matrix. Your task is to use the given method on one given word.
|
The first line contains a word *s* — it consists of uppercase and lowercase Latin letters and possesses the length from 1 to 100.
|
Print the corrected word *s*. If the given word *s* has strictly more uppercase letters, make the word written in the uppercase register, otherwise - in the lowercase one.
|
[
"HoUse\n",
"ViP\n",
"maTRIx\n"
] |
[
"house\n",
"VIP\n",
"matrix\n"
] |
none
| 500
|
[
{
"input": "HoUse",
"output": "house"
},
{
"input": "ViP",
"output": "VIP"
},
{
"input": "maTRIx",
"output": "matrix"
},
{
"input": "BNHWpnpawg",
"output": "bnhwpnpawg"
},
{
"input": "VTYGP",
"output": "VTYGP"
},
{
"input": "CHNenu",
"output": "chnenu"
},
{
"input": "ERPZGrodyu",
"output": "erpzgrodyu"
},
{
"input": "KSXBXWpebh",
"output": "KSXBXWPEBH"
},
{
"input": "qvxpqullmcbegsdskddortcvxyqlbvxmmkhevovnezubvpvnrcajpxraeaxizgaowtfkzywvhnbgzsxbhkaipcmoumtikkiyyaiv",
"output": "qvxpqullmcbegsdskddortcvxyqlbvxmmkhevovnezubvpvnrcajpxraeaxizgaowtfkzywvhnbgzsxbhkaipcmoumtikkiyyaiv"
},
{
"input": "Amnhaxtaopjzrkqlbroiyipitndczpunwygstmzevgyjdzyanxkdqnvgkikfabwouwkkbzuiuvgvxgpizsvqsbwepktpdrgdkmfd",
"output": "amnhaxtaopjzrkqlbroiyipitndczpunwygstmzevgyjdzyanxkdqnvgkikfabwouwkkbzuiuvgvxgpizsvqsbwepktpdrgdkmfd"
},
{
"input": "ISAGFJFARYFBLOPQDSHWGMCNKMFTLVFUGNJEWGWNBLXUIATXEkqiettmmjgydwcpafqrppdsrrrtguinqbgmzzfqwonkpgpcwenv",
"output": "isagfjfaryfblopqdshwgmcnkmftlvfugnjewgwnblxuiatxekqiettmmjgydwcpafqrppdsrrrtguinqbgmzzfqwonkpgpcwenv"
},
{
"input": "XHRPXZEGHSOCJPICUIXSKFUZUPYTSGJSDIYBCMNMNBPNDBXLXBzhbfnqvwcffvrdhtickyqhupmcehlsyvncqmfhautvxudqdhgg",
"output": "xhrpxzeghsocjpicuixskfuzupytsgjsdiybcmnmnbpndbxlxbzhbfnqvwcffvrdhtickyqhupmcehlsyvncqmfhautvxudqdhgg"
},
{
"input": "RJIQZMJCIMSNDBOHBRAWIENODSALETAKGKPYUFGVEFGCBRENZGAdkcetqjljtmttlonpekcovdzebzdkzggwfsxhapmjkdbuceak",
"output": "RJIQZMJCIMSNDBOHBRAWIENODSALETAKGKPYUFGVEFGCBRENZGADKCETQJLJTMTTLONPEKCOVDZEBZDKZGGWFSXHAPMJKDBUCEAK"
},
{
"input": "DWLWOBHNMMGTFOLFAECKBRNNGLYLYDXTGTVRLMEESZOIUATZZZXUFUZDLSJXMEVRTESSFBWLNZZCLCQWEVNNUCXYVHNGNXHCBDFw",
"output": "DWLWOBHNMMGTFOLFAECKBRNNGLYLYDXTGTVRLMEESZOIUATZZZXUFUZDLSJXMEVRTESSFBWLNZZCLCQWEVNNUCXYVHNGNXHCBDFW"
},
{
"input": "NYCNHJWGBOCOTSPETKKHVWFGAQYNHOVJWJHCIEFOUQZXOYUIEQDZALFKTEHTVDBVJMEUBJUBCMNVPWGDPNCHQHZJRCHYRFPVIGUB",
"output": "NYCNHJWGBOCOTSPETKKHVWFGAQYNHOVJWJHCIEFOUQZXOYUIEQDZALFKTEHTVDBVJMEUBJUBCMNVPWGDPNCHQHZJRCHYRFPVIGUB"
},
{
"input": "igxoixiecetohtgjgbqzvlaobkhstejxdklghowtvwunnnvauriohuspsdmpzckprwajyxldoyckgjivjpmbfqtszmtocovxwge",
"output": "igxoixiecetohtgjgbqzvlaobkhstejxdklghowtvwunnnvauriohuspsdmpzckprwajyxldoyckgjivjpmbfqtszmtocovxwge"
},
{
"input": "Ykkekrsqolzryiwsmdlnbmfautxxxauoojrddvwklgnlyrfcvhorrzbmtcrvpaypqhcffdqhwziipyyskcmztjprjqvmzzqhqnw",
"output": "ykkekrsqolzryiwsmdlnbmfautxxxauoojrddvwklgnlyrfcvhorrzbmtcrvpaypqhcffdqhwziipyyskcmztjprjqvmzzqhqnw"
},
{
"input": "YQOMLKYAORUQQUCQZCDYMIVDHGWZFFRMUVTAWCHERFPMNRYRIkgqrciokgajamehmcxgerpudvsqyonjonsxgbnefftzmygncks",
"output": "yqomlkyaoruqqucqzcdymivdhgwzffrmuvtawcherfpmnryrikgqrciokgajamehmcxgerpudvsqyonjonsxgbnefftzmygncks"
},
{
"input": "CDOZDPBVVVHNBJVBYHEOXWFLJKRWJCAJMIFCOZWWYFKVWOGTVJcuusigdqfkumewjtdyitveeiaybwrhomrwmpdipjwiuxfnwuz",
"output": "CDOZDPBVVVHNBJVBYHEOXWFLJKRWJCAJMIFCOZWWYFKVWOGTVJCUUSIGDQFKUMEWJTDYITVEEIAYBWRHOMRWMPDIPJWIUXFNWUZ"
},
{
"input": "WHIUVEXHVOOIJIDVJVPQUBJMEVPMPDKQWJKFBZSGSKUXMIPPMJWuckzcpxosodcjaaakvlxpbiigsiauviilylnnqlyucziihqg",
"output": "WHIUVEXHVOOIJIDVJVPQUBJMEVPMPDKQWJKFBZSGSKUXMIPPMJWUCKZCPXOSODCJAAAKVLXPBIIGSIAUVIILYLNNQLYUCZIIHQG"
},
{
"input": "VGHUNFOXKETUYMZDJNGTAOIOANYXSGYNFOGOFFLDAWEUKYFOZXCJTCAFXZYLQZERYZLRSQXYQGAPCSUDPMEYTNCTTTMFAGVDWBO",
"output": "VGHUNFOXKETUYMZDJNGTAOIOANYXSGYNFOGOFFLDAWEUKYFOZXCJTCAFXZYLQZERYZLRSQXYQGAPCSUDPMEYTNCTTTMFAGVDWBO"
},
{
"input": "EDUANHCQDOCJHFONTTSWBUJSTTIXBIXMAIUFSGFLXWAYIURTVAVZPYQDLAWIGCLMPHXCEFCJPFAAHXVNGQUFNHADAIUAZIDMHDd",
"output": "EDUANHCQDOCJHFONTTSWBUJSTTIXBIXMAIUFSGFLXWAYIURTVAVZPYQDLAWIGCLMPHXCEFCJPFAAHXVNGQUFNHADAIUAZIDMHDD"
},
{
"input": "EBWOVSNLYTWWXrnovgugogtjahnmatomubebyxakas",
"output": "ebwovsnlytwwxrnovgugogtjahnmatomubebyxakas"
},
{
"input": "AORNNDKTRLRVGDPXJKXFTPFpopuzrlqumrxssskvbm",
"output": "AORNNDKTRLRVGDPXJKXFTPFPOPUZRLQUMRXSSSKVBM"
},
{
"input": "DBBZJCWQEVGYHEEUHJAWRHBDPsnplijbwtdibqrrheebfxqcvn",
"output": "dbbzjcwqevgyheeuhjawrhbdpsnplijbwtdibqrrheebfxqcvn"
},
{
"input": "t",
"output": "t"
},
{
"input": "N",
"output": "N"
},
{
"input": "kv",
"output": "kv"
},
{
"input": "Ur",
"output": "ur"
},
{
"input": "CN",
"output": "CN"
}
] | 1,607,515,513
| 2,147,483,647
|
Python 3
|
OK
|
TESTS
| 30
| 218
| 0
|
s=input()
uppernum=0
lowernum=0
for _ in s:
if _>'Z':
lowernum+=1
else:
uppernum+=1
if uppernum>lowernum:
s=str.upper(s)
else:
s=str.lower(s)
print(s)
|
Title: Word
Time Limit: 2 seconds
Memory Limit: 256 megabytes
Problem Description:
Vasya is very upset that many people on the Net mix uppercase and lowercase letters in one word. That's why he decided to invent an extension for his favorite browser that would change the letters' register in every word so that it either only consisted of lowercase letters or, vice versa, only of uppercase ones. At that as little as possible letters should be changed in the word. For example, the word HoUse must be replaced with house, and the word ViP — with VIP. If a word contains an equal number of uppercase and lowercase letters, you should replace all the letters with lowercase ones. For example, maTRIx should be replaced by matrix. Your task is to use the given method on one given word.
Input Specification:
The first line contains a word *s* — it consists of uppercase and lowercase Latin letters and possesses the length from 1 to 100.
Output Specification:
Print the corrected word *s*. If the given word *s* has strictly more uppercase letters, make the word written in the uppercase register, otherwise - in the lowercase one.
Demo Input:
['HoUse\n', 'ViP\n', 'maTRIx\n']
Demo Output:
['house\n', 'VIP\n', 'matrix\n']
Note:
none
|
```python
s=input()
uppernum=0
lowernum=0
for _ in s:
if _>'Z':
lowernum+=1
else:
uppernum+=1
if uppernum>lowernum:
s=str.upper(s)
else:
s=str.lower(s)
print(s)
```
| 3.9455
|
155
|
A
|
I_love_\%username\%
|
PROGRAMMING
| 800
|
[
"brute force"
] | null | null |
Vasya adores sport programming. He can't write programs but he loves to watch the contests' progress. Vasya even has a favorite coder and Vasya pays special attention to him.
One day Vasya decided to collect the results of all contests where his favorite coder participated and track the progress of his coolness. For each contest where this coder participated, he wrote out a single non-negative number — the number of points his favorite coder earned in the contest. Vasya wrote out the points for the contest in the order, in which the contests run (naturally, no two contests ran simultaneously).
Vasya considers a coder's performance in a contest amazing in two situations: he can break either his best or his worst performance record. First, it is amazing if during the contest the coder earns strictly more points that he earned on each past contest. Second, it is amazing if during the contest the coder earns strictly less points that he earned on each past contest. A coder's first contest isn't considered amazing. Now he wants to count the number of amazing performances the coder had throughout his whole history of participating in contests. But the list of earned points turned out long and Vasya can't code... That's why he asks you to help him.
|
The first line contains the single integer *n* (1<=≤<=*n*<=≤<=1000) — the number of contests where the coder participated.
The next line contains *n* space-separated non-negative integer numbers — they are the points which the coder has earned. The points are given in the chronological order. All points do not exceed 10000.
|
Print the single number — the number of amazing performances the coder has had during his whole history of participating in the contests.
|
[
"5\n100 50 200 150 200\n",
"10\n4664 6496 5814 7010 5762 5736 6944 4850 3698 7242\n"
] |
[
"2\n",
"4\n"
] |
In the first sample the performances number 2 and 3 are amazing.
In the second sample the performances number 2, 4, 9 and 10 are amazing.
| 500
|
[
{
"input": "5\n100 50 200 150 200",
"output": "2"
},
{
"input": "10\n4664 6496 5814 7010 5762 5736 6944 4850 3698 7242",
"output": "4"
},
{
"input": "1\n6",
"output": "0"
},
{
"input": "2\n2 1",
"output": "1"
},
{
"input": "5\n100 36 53 7 81",
"output": "2"
},
{
"input": "5\n7 36 53 81 100",
"output": "4"
},
{
"input": "5\n100 81 53 36 7",
"output": "4"
},
{
"input": "10\n8 6 3 4 9 10 7 7 1 3",
"output": "5"
},
{
"input": "10\n1627 1675 1488 1390 1812 1137 1746 1324 1952 1862",
"output": "6"
},
{
"input": "10\n1 3 3 4 6 7 7 8 9 10",
"output": "7"
},
{
"input": "10\n1952 1862 1812 1746 1675 1627 1488 1390 1324 1137",
"output": "9"
},
{
"input": "25\n1448 4549 2310 2725 2091 3509 1565 2475 2232 3989 4231 779 2967 2702 608 3739 721 1552 2767 530 3114 665 1940 48 4198",
"output": "5"
},
{
"input": "33\n1097 1132 1091 1104 1049 1038 1023 1080 1104 1029 1035 1061 1049 1060 1088 1106 1105 1087 1063 1076 1054 1103 1047 1041 1028 1120 1126 1063 1117 1110 1044 1093 1101",
"output": "5"
},
{
"input": "34\n821 5536 2491 6074 7216 9885 764 1603 778 8736 8987 771 617 1587 8943 7922 439 7367 4115 8886 7878 6899 8811 5752 3184 3401 9760 9400 8995 4681 1323 6637 6554 6498",
"output": "7"
},
{
"input": "68\n6764 6877 6950 6768 6839 6755 6726 6778 6699 6805 6777 6985 6821 6801 6791 6805 6940 6761 6677 6999 6911 6699 6959 6933 6903 6843 6972 6717 6997 6756 6789 6668 6735 6852 6735 6880 6723 6834 6810 6694 6780 6679 6698 6857 6826 6896 6979 6968 6957 6988 6960 6700 6919 6892 6984 6685 6813 6678 6715 6857 6976 6902 6780 6686 6777 6686 6842 6679",
"output": "9"
},
{
"input": "60\n9000 9014 9034 9081 9131 9162 9174 9199 9202 9220 9221 9223 9229 9235 9251 9260 9268 9269 9270 9298 9307 9309 9313 9323 9386 9399 9407 9495 9497 9529 9531 9544 9614 9615 9627 9627 9643 9654 9656 9657 9685 9699 9701 9736 9745 9758 9799 9827 9843 9845 9854 9854 9885 9891 9896 9913 9942 9963 9986 9992",
"output": "57"
},
{
"input": "100\n7 61 12 52 41 16 34 99 30 44 48 89 31 54 21 1 48 52 61 15 35 87 21 76 64 92 44 81 16 93 84 92 32 15 68 76 53 39 26 4 11 26 7 4 99 99 61 65 55 85 65 67 47 39 2 74 63 49 98 87 5 94 22 30 25 42 31 84 49 23 89 60 16 26 92 27 9 57 75 61 94 35 83 47 99 100 63 24 91 88 79 10 15 45 22 64 3 11 89 83",
"output": "4"
},
{
"input": "100\n9999 9999 9999 9998 9998 9998 9997 9996 9996 9995 9993 9993 9991 9990 9989 9986 9984 9984 9983 9981 9981 9980 9980 9980 9979 9977 9977 9977 9977 9977 9976 9976 9975 9975 9973 9972 9972 9972 9972 9971 9969 9969 9969 9968 9967 9965 9962 9962 9962 9962 9960 9958 9958 9955 9954 9954 9954 9954 9950 9949 9949 9947 9943 9943 9940 9940 9939 9937 9937 9937 9936 9935 9932 9932 9931 9929 9927 9927 9926 9923 9919 9919 9918 9918 9918 9917 9917 9916 9916 9915 9914 9911 9910 9907 9907 9906 9905 9905 9904 9901",
"output": "57"
},
{
"input": "100\n158 159 157 156 155 154 160 153 161 152 162 163 151 164 150 165 149 148 147 166 146 167 145 144 143 142 168 141 169 170 140 139 138 137 171 136 135 134 172 173 174 133 175 132 177 178 131 179 180 130 129 181 128 127 182 126 183 125 124 184 123 122 121 120 119 118 117 185 186 187 188 189 116 190 115 191 192 193 114 113 112 111 110 109 108 194 195 107 106 105 196 197 104 198 199 103 102 200 101 100",
"output": "99"
},
{
"input": "2\n0 10000",
"output": "1"
},
{
"input": "2\n5 5",
"output": "0"
},
{
"input": "2\n1 1",
"output": "0"
},
{
"input": "2\n10 10",
"output": "0"
},
{
"input": "1\n0",
"output": "0"
}
] | 1,690,621,369
| 2,147,483,647
|
Python 3
|
OK
|
TESTS
| 37
| 62
| 0
|
t=int(input())
n=list(map(int,input().split()))
a=n[0]
b=n[0]
count=0
i=1
while i<len(n):
if (n[i]>a):
count+=1
a=n[i]
elif(n[i]<b):
count+=1
b=n[i]
i+=1
print(count)
|
Title: I_love_\%username\%
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
Vasya adores sport programming. He can't write programs but he loves to watch the contests' progress. Vasya even has a favorite coder and Vasya pays special attention to him.
One day Vasya decided to collect the results of all contests where his favorite coder participated and track the progress of his coolness. For each contest where this coder participated, he wrote out a single non-negative number — the number of points his favorite coder earned in the contest. Vasya wrote out the points for the contest in the order, in which the contests run (naturally, no two contests ran simultaneously).
Vasya considers a coder's performance in a contest amazing in two situations: he can break either his best or his worst performance record. First, it is amazing if during the contest the coder earns strictly more points that he earned on each past contest. Second, it is amazing if during the contest the coder earns strictly less points that he earned on each past contest. A coder's first contest isn't considered amazing. Now he wants to count the number of amazing performances the coder had throughout his whole history of participating in contests. But the list of earned points turned out long and Vasya can't code... That's why he asks you to help him.
Input Specification:
The first line contains the single integer *n* (1<=≤<=*n*<=≤<=1000) — the number of contests where the coder participated.
The next line contains *n* space-separated non-negative integer numbers — they are the points which the coder has earned. The points are given in the chronological order. All points do not exceed 10000.
Output Specification:
Print the single number — the number of amazing performances the coder has had during his whole history of participating in the contests.
Demo Input:
['5\n100 50 200 150 200\n', '10\n4664 6496 5814 7010 5762 5736 6944 4850 3698 7242\n']
Demo Output:
['2\n', '4\n']
Note:
In the first sample the performances number 2 and 3 are amazing.
In the second sample the performances number 2, 4, 9 and 10 are amazing.
|
```python
t=int(input())
n=list(map(int,input().split()))
a=n[0]
b=n[0]
count=0
i=1
while i<len(n):
if (n[i]>a):
count+=1
a=n[i]
elif(n[i]<b):
count+=1
b=n[i]
i+=1
print(count)
```
| 3
|
|
785
|
A
|
Anton and Polyhedrons
|
PROGRAMMING
| 800
|
[
"implementation",
"strings"
] | null | null |
Anton's favourite geometric figures are regular polyhedrons. Note that there are five kinds of regular polyhedrons:
- Tetrahedron. Tetrahedron has 4 triangular faces. - Cube. Cube has 6 square faces. - Octahedron. Octahedron has 8 triangular faces. - Dodecahedron. Dodecahedron has 12 pentagonal faces. - Icosahedron. Icosahedron has 20 triangular faces.
All five kinds of polyhedrons are shown on the picture below:
Anton has a collection of *n* polyhedrons. One day he decided to know, how many faces his polyhedrons have in total. Help Anton and find this number!
|
The first line of the input contains a single integer *n* (1<=≤<=*n*<=≤<=200<=000) — the number of polyhedrons in Anton's collection.
Each of the following *n* lines of the input contains a string *s**i* — the name of the *i*-th polyhedron in Anton's collection. The string can look like this:
- "Tetrahedron" (without quotes), if the *i*-th polyhedron in Anton's collection is a tetrahedron. - "Cube" (without quotes), if the *i*-th polyhedron in Anton's collection is a cube. - "Octahedron" (without quotes), if the *i*-th polyhedron in Anton's collection is an octahedron. - "Dodecahedron" (without quotes), if the *i*-th polyhedron in Anton's collection is a dodecahedron. - "Icosahedron" (without quotes), if the *i*-th polyhedron in Anton's collection is an icosahedron.
|
Output one number — the total number of faces in all the polyhedrons in Anton's collection.
|
[
"4\nIcosahedron\nCube\nTetrahedron\nDodecahedron\n",
"3\nDodecahedron\nOctahedron\nOctahedron\n"
] |
[
"42\n",
"28\n"
] |
In the first sample Anton has one icosahedron, one cube, one tetrahedron and one dodecahedron. Icosahedron has 20 faces, cube has 6 faces, tetrahedron has 4 faces and dodecahedron has 12 faces. In total, they have 20 + 6 + 4 + 12 = 42 faces.
| 500
|
[
{
"input": "4\nIcosahedron\nCube\nTetrahedron\nDodecahedron",
"output": "42"
},
{
"input": "3\nDodecahedron\nOctahedron\nOctahedron",
"output": "28"
},
{
"input": "25\nIcosahedron\nOctahedron\nTetrahedron\nDodecahedron\nCube\nIcosahedron\nOctahedron\nCube\nTetrahedron\nIcosahedron\nIcosahedron\nTetrahedron\nOctahedron\nDodecahedron\nIcosahedron\nOctahedron\nIcosahedron\nTetrahedron\nDodecahedron\nTetrahedron\nOctahedron\nCube\nCube\nDodecahedron\nTetrahedron",
"output": "256"
},
{
"input": "1\nTetrahedron",
"output": "4"
},
{
"input": "1\nCube",
"output": "6"
},
{
"input": "1\nOctahedron",
"output": "8"
},
{
"input": "1\nDodecahedron",
"output": "12"
},
{
"input": "1\nIcosahedron",
"output": "20"
},
{
"input": "28\nOctahedron\nDodecahedron\nOctahedron\nOctahedron\nDodecahedron\nIcosahedron\nIcosahedron\nDodecahedron\nDodecahedron\nDodecahedron\nCube\nDodecahedron\nCube\nTetrahedron\nCube\nCube\nTetrahedron\nDodecahedron\nDodecahedron\nDodecahedron\nIcosahedron\nIcosahedron\nDodecahedron\nIcosahedron\nDodecahedron\nDodecahedron\nIcosahedron\nIcosahedron",
"output": "340"
}
] | 1,699,622,931
| 2,147,483,647
|
Python 3
|
OK
|
TESTS
| 30
| 187
| 102,400
|
k = {
"Tetrahedron":4,
"Cube":6,
"Octahedron":8,
"Dodecahedron":12,
"Icosahedron":20
}
n = int(input())
ans = 0
for i in range(n):
ans += k[input()]
print(ans)
|
Title: Anton and Polyhedrons
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
Anton's favourite geometric figures are regular polyhedrons. Note that there are five kinds of regular polyhedrons:
- Tetrahedron. Tetrahedron has 4 triangular faces. - Cube. Cube has 6 square faces. - Octahedron. Octahedron has 8 triangular faces. - Dodecahedron. Dodecahedron has 12 pentagonal faces. - Icosahedron. Icosahedron has 20 triangular faces.
All five kinds of polyhedrons are shown on the picture below:
Anton has a collection of *n* polyhedrons. One day he decided to know, how many faces his polyhedrons have in total. Help Anton and find this number!
Input Specification:
The first line of the input contains a single integer *n* (1<=≤<=*n*<=≤<=200<=000) — the number of polyhedrons in Anton's collection.
Each of the following *n* lines of the input contains a string *s**i* — the name of the *i*-th polyhedron in Anton's collection. The string can look like this:
- "Tetrahedron" (without quotes), if the *i*-th polyhedron in Anton's collection is a tetrahedron. - "Cube" (without quotes), if the *i*-th polyhedron in Anton's collection is a cube. - "Octahedron" (without quotes), if the *i*-th polyhedron in Anton's collection is an octahedron. - "Dodecahedron" (without quotes), if the *i*-th polyhedron in Anton's collection is a dodecahedron. - "Icosahedron" (without quotes), if the *i*-th polyhedron in Anton's collection is an icosahedron.
Output Specification:
Output one number — the total number of faces in all the polyhedrons in Anton's collection.
Demo Input:
['4\nIcosahedron\nCube\nTetrahedron\nDodecahedron\n', '3\nDodecahedron\nOctahedron\nOctahedron\n']
Demo Output:
['42\n', '28\n']
Note:
In the first sample Anton has one icosahedron, one cube, one tetrahedron and one dodecahedron. Icosahedron has 20 faces, cube has 6 faces, tetrahedron has 4 faces and dodecahedron has 12 faces. In total, they have 20 + 6 + 4 + 12 = 42 faces.
|
```python
k = {
"Tetrahedron":4,
"Cube":6,
"Octahedron":8,
"Dodecahedron":12,
"Icosahedron":20
}
n = int(input())
ans = 0
for i in range(n):
ans += k[input()]
print(ans)
```
| 3
|
|
844
|
A
|
Diversity
|
PROGRAMMING
| 1,000
|
[
"greedy",
"implementation",
"strings"
] | null | null |
Calculate the minimum number of characters you need to change in the string *s*, so that it contains at least *k* different letters, or print that it is impossible.
String *s* consists only of lowercase Latin letters, and it is allowed to change characters only to lowercase Latin letters too.
|
First line of input contains string *s*, consisting only of lowercase Latin letters (1<=≤<=|*s*|<=≤<=1000, |*s*| denotes the length of *s*).
Second line of input contains integer *k* (1<=≤<=*k*<=≤<=26).
|
Print single line with a minimum number of necessary changes, or the word «impossible» (without quotes) if it is impossible.
|
[
"yandex\n6\n",
"yahoo\n5\n",
"google\n7\n"
] |
[
"0\n",
"1\n",
"impossible\n"
] |
In the first test case string contains 6 different letters, so we don't need to change anything.
In the second test case string contains 4 different letters: {'*a*', '*h*', '*o*', '*y*'}. To get 5 different letters it is necessary to change one occurrence of '*o*' to some letter, which doesn't occur in the string, for example, {'*b*'}.
In the third test case, it is impossible to make 7 different letters because the length of the string is 6.
| 500
|
[
{
"input": "yandex\n6",
"output": "0"
},
{
"input": "yahoo\n5",
"output": "1"
},
{
"input": "google\n7",
"output": "impossible"
},
{
"input": "a\n1",
"output": "0"
},
{
"input": "z\n2",
"output": "impossible"
},
{
"input": "fwgfrwgkuwghfiruhewgirueguhergiqrbvgrgf\n26",
"output": "14"
},
{
"input": "nfevghreuoghrueighoqghbnebvnejbvnbgneluqe\n26",
"output": "12"
},
{
"input": "a\n3",
"output": "impossible"
},
{
"input": "smaxpqplaqqbxuqxalqmbmmgubbpspxhawbxsuqhhegpmmpebqmqpbbeplwaepxmsahuepuhuhwxeqmmlgqubuaxehwuwasgxpqmugbmuawuhwqlswllssueglbxepbmwgs\n1",
"output": "0"
},
{
"input": "cuguccgcugcugucgggggcgcgucgucugcuuuccccuugccg\n4",
"output": "1"
},
{
"input": "fcfccfcfccfcfcffcffffffcfccfccfcffccccfcffffccfccfcffcfcccccffcfffcccffcfccfffffcccfccffffffccfccccf\n20",
"output": "18"
},
{
"input": "swmkwaruyv\n5",
"output": "0"
},
{
"input": "tnbqpsuhkczmejirvyfdolxwga\n22",
"output": "0"
},
{
"input": "abcde\n3",
"output": "0"
},
{
"input": "abb\n1",
"output": "0"
},
{
"input": "aaaa\n1",
"output": "0"
},
{
"input": "abcde\n2",
"output": "0"
},
{
"input": "yandex\n4",
"output": "0"
},
{
"input": "aaabbbccc\n1",
"output": "0"
},
{
"input": "abcd\n2",
"output": "0"
},
{
"input": "asdfgh\n2",
"output": "0"
},
{
"input": "aab\n1",
"output": "0"
},
{
"input": "mynameissako\n5",
"output": "0"
},
{
"input": "abcde\n1",
"output": "0"
},
{
"input": "abcd\n3",
"output": "0"
},
{
"input": "abcdef\n2",
"output": "0"
},
{
"input": "abcdefg\n4",
"output": "0"
},
{
"input": "abc\n1",
"output": "0"
},
{
"input": "asdafjsgljdllgjdgkl\n5",
"output": "0"
},
{
"input": "yaay\n3",
"output": "1"
},
{
"input": "yaay\n4",
"output": "2"
},
{
"input": "zzzzzz\n2",
"output": "1"
}
] | 1,692,728,892
| 2,147,483,647
|
PyPy 3-64
|
OK
|
TESTS
| 41
| 62
| 0
|
s=input()
n=len(s)
k=int(input())
if(n<k):
print("impossible")
else:
print(max(0,k-len({*s})))
|
Title: Diversity
Time Limit: None seconds
Memory Limit: None megabytes
Problem Description:
Calculate the minimum number of characters you need to change in the string *s*, so that it contains at least *k* different letters, or print that it is impossible.
String *s* consists only of lowercase Latin letters, and it is allowed to change characters only to lowercase Latin letters too.
Input Specification:
First line of input contains string *s*, consisting only of lowercase Latin letters (1<=≤<=|*s*|<=≤<=1000, |*s*| denotes the length of *s*).
Second line of input contains integer *k* (1<=≤<=*k*<=≤<=26).
Output Specification:
Print single line with a minimum number of necessary changes, or the word «impossible» (without quotes) if it is impossible.
Demo Input:
['yandex\n6\n', 'yahoo\n5\n', 'google\n7\n']
Demo Output:
['0\n', '1\n', 'impossible\n']
Note:
In the first test case string contains 6 different letters, so we don't need to change anything.
In the second test case string contains 4 different letters: {'*a*', '*h*', '*o*', '*y*'}. To get 5 different letters it is necessary to change one occurrence of '*o*' to some letter, which doesn't occur in the string, for example, {'*b*'}.
In the third test case, it is impossible to make 7 different letters because the length of the string is 6.
|
```python
s=input()
n=len(s)
k=int(input())
if(n<k):
print("impossible")
else:
print(max(0,k-len({*s})))
```
| 3
|
Subsets and Splits
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