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#pragma once
#include <atomic>
#include <chrono>
namespace tf {
/**
* @brief rounds the given 64-bit unsigned integer to the nearest power of 2
*/
template <typename T, std::enable_if_t<
(std::is_unsigned_v<std::decay_t<T>> && sizeof(T) == 8), void
>* = nullptr>
constexpr T next_pow2(T x) {
if(x == 0) return 1;
x--;
x |= x >> 1;
x |= x >> 2;
x |= x >> 4;
x |= x >> 8;
x |= x >> 16;
x |= x >> 32;
x++;
return x;
}
/**
* @brief rounds the given 32-bit unsigned integer to the nearest power of 2
*/
template <typename T, std::enable_if_t<
(std::is_unsigned_v<std::decay_t<T>> && sizeof(T) == 4), void
>* = nullptr>
constexpr T next_pow2(T y) {
if(y == 0) return 1;
y--;
y |= y >> 1;
y |= y >> 2;
y |= y >> 4;
y |= y >> 8;
y |= y >> 16;
y++;
return y;
}
/**
* @brief checks if the given number is a power of 2
*
* This function determines if the given integer is a power of 2.
*
* @tparam T The type of the input. Must be an integral type.
* @param x The integer to check.
* @return `true` if `x` is a power of 2, otherwise `false`.
*
* @attention This function is constexpr and can be evaluated at compile time.
*
*/
template <typename T, std::enable_if_t<
std::is_integral_v<std::decay_t<T>>, void>* = nullptr
>
constexpr bool is_pow2(const T& x) {
return x && (!(x&(x-1)));
}
/**
* @brief computes the floor of the base-2 logarithm of a number using count-leading-zeros (CTL).
*
* This function efficiently calculates the floor of `log2(n)` for both 32-bit and 64-bit integers.
*
* @tparam T integer type (uint32_t or uint64_t).
* @param n input number.
* @return floor of `log2(n)`
*/
template <typename T>
constexpr size_t floor_log2(T n) {
static_assert(std::is_unsigned_v<T>, "log2 only supports unsigned integer types");
#if defined(_MSC_VER)
unsigned long index;
if constexpr (sizeof(T) == 8) {
_BitScanReverse64(&index, n);
} else {
_BitScanReverse(&index, static_cast<unsigned long>(n));
}
return static_cast<size_t>(index);
#elif defined(__GNUC__) || defined(__clang__)
if constexpr (sizeof(T) == 8) {
return 63 - __builtin_clzll(n);
} else {
return 31 - __builtin_clz(n);
}
#else
// Portable fallback: Uses bit shifts to count leading zeros manually
size_t log = 0;
while (n >>= 1) {
++log;
}
return log;
#endif
}
/**
@brief returns the floor of `log2(N)` at compile time
*/
template<size_t N>
constexpr size_t static_floor_log2() {
return (N < 2) ? 0 : 1 + static_floor_log2<N / 2>();
//auto log = 0;
//while (N >>= 1) {
// ++log;
//}
//return log;
}
/**
* @brief finds the median of three numbers pointed to by iterators using the given comparator
*
* This function determines the median value of the elements pointed to by
* three random-access iterators using the provided comparator.
*
* @tparam RandItr The type of the random-access iterator.
* @tparam C The type of the comparator.
* @param l Iterator to the first element.
* @param m Iterator to the second element.
* @param r Iterator to the third element.
* @param cmp The comparator used to compare the dereferenced iterator values.
* @return The iterator pointing to the median value among the three elements.
*
*/
template <typename RandItr, typename C>
RandItr median_of_three(RandItr l, RandItr m, RandItr r, C cmp) {
return cmp(*l, *m) ? (cmp(*m, *r) ? m : (cmp(*l, *r) ? r : l ))
: (cmp(*r, *m) ? m : (cmp(*r, *l) ? r : l ));
}
/**
* @brief finds the pseudo median of a range of items using a spread of nine numbers
*
* This function computes an approximate median of a range of items by sampling
* nine values spread across the range and finding their median. It uses a
* combination of the `median_of_three` function to determine the pseudo median.
*
* @tparam RandItr The type of the random-access iterator.
* @tparam C The type of the comparator.
* @param beg Iterator to the beginning of the range.
* @param end Iterator to the end of the range.
* @param cmp The comparator used to compare the dereferenced iterator values.
* @return The iterator pointing to the pseudo median of the range.
*
* @attention The pseudo median is an approximation of the true median and may not
* be the exact middle value of the range.
*
*/
template <typename RandItr, typename C>
RandItr pseudo_median_of_nine(RandItr beg, RandItr end, C cmp) {
size_t N = std::distance(beg, end);
size_t offset = N >> 3;
return median_of_three(
median_of_three(beg, beg+offset, beg+(offset*2), cmp),
median_of_three(beg+(offset*3), beg+(offset*4), beg+(offset*5), cmp),
median_of_three(beg+(offset*6), beg+(offset*7), end-1, cmp),
cmp
);
}
/**
* @brief sorts two elements of dereferenced iterators using the given comparison function
*
* This function compares two elements pointed to by iterators and swaps them
* if they are out of order according to the provided comparator.
*
* @tparam Iter The type of the iterator.
* @tparam Compare The type of the comparator.
* @param a Iterator to the first element.
* @param b Iterator to the second element.
* @param comp The comparator used to compare the dereferenced iterator values.
*
*/
template<typename Iter, typename Compare>
void sort2(Iter a, Iter b, Compare comp) {
if (comp(*b, *a)) std::iter_swap(a, b);
}
/**
* @brief Sorts three elements of dereferenced iterators using the given comparison function.
*
* This function sorts three elements pointed to by iterators in ascending order
* according to the provided comparator. The sorting is performed using a sequence
* of calls to the `sort2` function to ensure the correct order of elements.
*
* @tparam Iter The type of the iterator.
* @tparam Compare The type of the comparator.
* @param a Iterator to the first element.
* @param b Iterator to the second element.
* @param c Iterator to the third element.
* @param comp The comparator used to compare the dereferenced iterator values.
*
*/
template<typename Iter, typename Compare>
void sort3(Iter a, Iter b, Iter c, Compare comp) {
sort2(a, b, comp);
sort2(b, c, comp);
sort2(a, b, comp);
}
/**
* @brief generates a program-wide unique ID of the given type in a thread-safe manner
*
* This function provides a globally unique identifier of the specified integral type.
* It uses a static `std::atomic` counter to ensure thread safety and increments the
* counter in a relaxed memory ordering for efficiency.
*
* @tparam T The type of the ID to generate. Must be an integral type.
* @return A unique ID of type `T`.
*
* @attention The uniqueness of the ID is guaranteed only within the program's lifetime.
* @attention The function does not throw exceptions.
*
*/
template <typename T, std::enable_if_t<std::is_integral_v<T>, void>* = nullptr>
T unique_id() {
static std::atomic<T> counter{0};
return counter.fetch_add(1, std::memory_order_relaxed);
}
/**
* @brief updates an atomic variable with the maximum value
*
* This function atomically updates the provided atomic variable `v` to hold
* the maximum of its current value and `max_v`. The update is performed using
* a relaxed memory ordering for efficiency in non-synchronizing contexts.
*
* @tparam T The type of the atomic variable. Must be trivially copyable and comparable.
* @param v The atomic variable to update.
* @param max_v The value to compare with the current value of `v`.
*
* @attention If multiple threads call this function concurrently, the value of `v`
* will be the maximum value seen across all threads.
*
*/
template <typename T>
inline void atomic_max(std::atomic<T>& v, const T& max_v) noexcept {
T prev = v.load(std::memory_order_relaxed);
while(prev < max_v &&
!v.compare_exchange_weak(prev, max_v, std::memory_order_relaxed,
std::memory_order_relaxed)) {
}
}
/**
* @brief updates an atomic variable with the minimum value
*
* This function atomically updates the provided atomic variable `v` to hold
* the minimum of its current value and `min_v`. The update is performed using
* a relaxed memory ordering for efficiency in non-synchronizing contexts.
*
* @tparam T The type of the atomic variable. Must be trivially copyable and comparable.
* @param v The atomic variable to update.
* @param min_v The value to compare with the current value of `v`.
*
* @attention If multiple threads call this function concurrently, the value of `v`
* will be the minimum value seen across all threads.
*
*/
template <typename T>
inline void atomic_min(std::atomic<T>& v, const T& min_v) noexcept {
T prev = v.load(std::memory_order_relaxed);
while(prev > min_v &&
!v.compare_exchange_weak(prev, min_v, std::memory_order_relaxed,
std::memory_order_relaxed)) {
}
}
/**
* @brief generates a random seed based on the current system clock
*
* This function returns a seed value derived from the number of clock ticks
* since the epoch as measured by the system clock. The seed can be used
* to initialize random number generators.
*
* @tparam T The type of the returned seed. Must be an integral type.
* @return A seed value based on the system clock.
*
*/
template <typename T>
inline T seed() noexcept {
return std::chrono::system_clock::now().time_since_epoch().count();
}
/**
* @brief counts the number of trailing zeros in an integer.
*
* This function provides a portable implementation for counting the number of
* trailing zeros across different platforms and integer sizes (32-bit and 64-bit).
*
* @tparam T integer type (32-bit or 64-bit).
* @param x non-zero integer to count trailing zeros from
* @return the number of trailing zeros in @c x
*
* @attention
* The behavior is undefined when @c x is 0.
*/
template <typename T, typename = std::enable_if_t<std::is_unsigned_v<T>>>
auto ctz(T x) {
#if defined(_MSC_VER)
unsigned long index;
if constexpr (sizeof(T) == 8) {
_BitScanForward64(&index, x);
} else {
_BitScanForward(&index, (unsigned long)x);
}
return index;
#elif defined(__GNUC__) || defined(__clang__)
if constexpr (sizeof(T) == 8) {
return __builtin_ctzll(x);
} else {
return __builtin_ctz(x);
}
#else
size_t r = 0;
while ((x & 1) == 0) {
x >>= 1;
r++;
}
return r;
#endif
}
// ------------------------------------------------------------------------------------------------
// coprime
// ------------------------------------------------------------------------------------------------
/**
* @brief computes a coprime of a given number
*
* This function finds the largest number less than N that is coprime (i.e., has a greatest common divisor of 1) with @c N.
* If @c N is less than 3, it returns 1 as a default coprime.
*
* @param N input number for which a coprime is to be found.
* @return the largest number < @c N that is coprime to N
*/
constexpr size_t coprime(size_t N) {
if(N < 3) {
return 1;
}
for (size_t x = N; --x > 0;) {
if (std::gcd(x, N) == 1) {
return x;
}
}
return 1;
}
/**
* @brief generates a compile-time array of coprimes for numbers from 0 to N-1
*
* This function constructs a constexpr array where each element at index `i` contains a coprime of `i`
* (the largest number less than `i` that is coprime to it).
*
* @tparam N the size of the array to generate (should be greater than 0).
* @return a constexpr array of size @c N where each index holds a coprime of its value.
*/
template <size_t N>
constexpr std::array<size_t, N> make_coprime_lut() {
static_assert(N>0, "N must be greater than 0");
std::array<size_t, N> coprimes{};
for (size_t n = 0; n < N; ++n) {
coprimes[n] = coprime(n);
}
return coprimes;
}
//class XorShift64 {
//
// public:
//
// explicit XorShift64(uint64_t seed) : _state(seed) {}
//
// uint64_t next() {
// _state ^= _state >> 12;
// _state ^= _state << 25;
// _state ^= _state >> 27;
// return _state * 0x2545F4914F6CDD1DULL; // Scramble for better randomness
// }
//
// size_t random_range(size_t min, size_t max) {
// return min + (next() % (max - min + 1));
// }
//
// private:
//
// uint64_t _state;
//};
//inline int generate_random_excluding(int worker_id, int W, XorShift64& rng) {
// int random_number = rng.random_range(0, 2 * W - 2); // Range: [0, 2W-2]
// return random_number + (random_number >= worker_id); // Skip worker_id
//}
//
//
//class Xoroshiro128Plus {
//
// public:
//
// explicit Xoroshiro128Plus(uint64_t seed1, uint64_t seed2) : _state{seed1, seed2} {}
//
// uint64_t next() {
// uint64_t s0 = _state[0];
// uint64_t s1 = _state[1];
// uint64_t result = s0 + s1;
//
// s1 ^= s0;
// _state[0] = _rotl(s0, 55) ^ s1 ^ (s1 << 14); // Scramble _state
// _state[1] = _rotl(s1, 36);
//
// return result;
// }
//
// int random_range(int min, int max) {
// return min + (next() % (max - min + 1));
// }
//
// private:
//
// std::array<uint64_t, 2> _state;
//
// static uint64_t _rotl(uint64_t x, int k) {
// return (x << k) | (x >> (64 - k));
// }
//};
} // end of namespace tf -----------------------------------------------------