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serenity/AK/StdLibExtras.h
Ali Mohammad Pur c38fafbf4e AK: Make {min,max,clamp}(T, U) work when U can be implicitly cast to T
It was really annoying to `static_cast` the arguments to be the same
type, so instead of doing that, just convert the second one to the first
one, and let the compiler warn about sign differences and truncation.
2021-06-23 19:04:08 +02:00

131 lines
2.4 KiB
C++

/*
* Copyright (c) 2018-2021, Andreas Kling <kling@serenityos.org>
*
* SPDX-License-Identifier: BSD-2-Clause
*/
#pragma once
#include <AK/StdLibExtraDetails.h>
#include <AK/Assertions.h>
template<typename T, typename U>
constexpr auto round_up_to_power_of_two(T value, U power_of_two) requires(IsIntegral<T>&& IsIntegral<U>)
{
return ((value - 1) & ~(power_of_two - 1)) + power_of_two;
}
namespace std {
// NOTE: This is in the "std" namespace since some compiler features rely on it.
template<typename T>
constexpr T&& move(T& arg)
{
return static_cast<T&&>(arg);
}
}
using std::move;
namespace AK::Detail {
template<typename T>
struct _RawPtr {
using Type = T*;
};
}
namespace AK {
template<class T>
constexpr T&& forward(RemoveReference<T>& param)
{
return static_cast<T&&>(param);
}
template<class T>
constexpr T&& forward(RemoveReference<T>&& param) noexcept
{
static_assert(!IsLvalueReference<T>, "Can't forward an rvalue as an lvalue.");
return static_cast<T&&>(param);
}
template<typename T, typename SizeType = decltype(sizeof(T)), SizeType N>
constexpr SizeType array_size(T (&)[N])
{
return N;
}
template<typename T>
constexpr T min(const T& a, const IdentityType<T>& b)
{
return b < a ? b : a;
}
template<typename T>
constexpr T max(const T& a, const IdentityType<T>& b)
{
return a < b ? b : a;
}
template<typename T>
constexpr T clamp(const T& value, const IdentityType<T>& min, const IdentityType<T>& max)
{
VERIFY(max >= min);
if (value > max)
return max;
if (value < min)
return min;
return value;
}
template<typename T, typename U>
constexpr T ceil_div(T a, U b)
{
static_assert(sizeof(T) == sizeof(U));
T result = a / b;
if ((a % b) != 0)
++result;
return result;
}
template<typename T, typename U>
inline void swap(T& a, U& b)
{
U tmp = move((U&)a);
a = (T &&) move(b);
b = move(tmp);
}
template<typename T, typename U = T>
constexpr T exchange(T& slot, U&& value)
{
T old_value = move(slot);
slot = forward<U>(value);
return old_value;
}
template<typename T>
using RawPtr = typename Detail::_RawPtr<T>::Type;
template<typename V>
constexpr decltype(auto) to_underlying(V value) requires(IsEnum<V>)
{
return static_cast<UnderlyingType<V>>(value);
}
}
using AK::array_size;
using AK::ceil_div;
using AK::clamp;
using AK::exchange;
using AK::forward;
using AK::max;
using AK::min;
using AK::RawPtr;
using AK::swap;
using AK::to_underlying;