mirror of
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522 lines
19 KiB
C++
522 lines
19 KiB
C++
/*
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This file is part of Fennix Kernel.
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Fennix Kernel is free software: you can redistribute it and/or
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modify it under the terms of the GNU General Public License as
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published by the Free Software Foundation, either version 3 of
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the License, or (at your option) any later version.
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Fennix Kernel is distributed in the hope that it will be useful,
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but WITHOUT ANY WARRANTY; without even the implied warranty of
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MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
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GNU General Public License for more details.
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You should have received a copy of the GNU General Public License
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along with Fennix Kernel. If not, see <https://www.gnu.org/licenses/>.
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*/
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#ifndef __FENNIX_KERNEL_STD_ATOMIC_H__
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#define __FENNIX_KERNEL_STD_ATOMIC_H__
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#include <types.h>
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#include <cstddef>
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#include <debug.h>
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namespace std
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{
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#define _atomic(T) T
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#define builtin_atomic_n(name) __atomic_##name##_n
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#define builtin_atomic(name) __atomic_##name
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/**
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* @brief Specifies the memory ordering constraints for atomic operations.
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*
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* This enum specifies the possible values for the memory order parameter of atomic operations.
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*
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* Possible values are:
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*
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* - memory_order_relaxed: There are no synchronization
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* or ordering constraints imposed on other reads or writes,
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* only this operation's atomicity is guaranteed.
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*
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* - memory_order_consume: A load operation with this
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* memory order performs a consume operation on the
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* affected memory location: no reads or writes in the
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* current thread dependent on the value currently loaded
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* can be reordered before this load.
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*
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* - memory_order_acquire: A load operation with this
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* memory order performs the acquire operation on the
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* affected memory location: no reads or writes in the
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* current thread can be reordered before this load.
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*
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* - memory_order_release: A store operation with this
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* memory order performs the release operation: no reads
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* or writes in the current thread can be reordered after
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* this store.
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*
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* - memory_order_acq_rel: A read-modify-write operation
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* with this memory order is both an acquire operation
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* and a release operation.
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*
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* - memory_order_seq_cst: A load operation with this
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* memory order performs an acquire operation, a store
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* performs a release operation, and read-modify-write
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* performs both an acquire operation and a release
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* operation, plus a single total order exists in which
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* all threads observe all modifications in the same order.
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*/
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enum class memory_order : int
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{
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relaxed,
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consume,
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acquire,
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release,
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acq_rel,
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seq_cst
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};
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inline constexpr memory_order memory_order_relaxed = memory_order::relaxed;
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inline constexpr memory_order memory_order_consume = memory_order::consume;
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inline constexpr memory_order memory_order_acquire = memory_order::acquire;
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inline constexpr memory_order memory_order_release = memory_order::release;
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inline constexpr memory_order memory_order_acq_rel = memory_order::acq_rel;
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inline constexpr memory_order memory_order_seq_cst = memory_order::seq_cst;
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template <typename T>
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class atomic
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{
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_atomic(T) value;
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public:
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atomic() noexcept : value(0) {}
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atomic(T desired) noexcept : value(desired) {}
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// atomic(const atomic &) = delete;
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/**
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* @brief Load the value of the atomic variable
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*
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* @note Order must be one of memory_order::relaxed, memory_order::consume, memory_order::acquire or memory_order::seq_cst
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*
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* @param order Memory order constraint to use
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* @return The value of the atomic variable
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*/
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T load(memory_order order = memory_order::seq_cst) const noexcept
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{
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return builtin_atomic_n(load)(&this->value, static_cast<int>(order));
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}
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/**
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* @copydoc load()
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*/
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T load(memory_order order = memory_order::seq_cst) const volatile noexcept
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{
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return builtin_atomic_n(load)(&this->value, static_cast<int>(order));
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}
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/**
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* @brief Store the value of the atomic variable
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*
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* @note Order must be one of memory_order::relaxed, memory_order::release or memory_order::seq_cst
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*
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* @param desired The value to store
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* @param order Memory order constraint to use
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*/
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void store(T desired, memory_order order = memory_order::seq_cst) noexcept
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{
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builtin_atomic_n(store)(&this->value, desired, static_cast<int>(order));
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}
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/**
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* @copydoc store()
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*/
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void store(T desired, memory_order order = memory_order::seq_cst) volatile noexcept
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{
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builtin_atomic_n(store)(&this->value, desired, static_cast<int>(order));
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}
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/**
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* @brief Exchange the value of the atomic variable
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*
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* @param desired The value to exchange
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* @param order Memory order constraint to use
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* @return The value of the atomic variable before the exchange
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*/
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T exchange(T desired, memory_order order = memory_order::seq_cst) noexcept
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{
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return builtin_atomic_n(exchange)(&this->value, desired, static_cast<int>(order));
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}
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/**
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* @copydoc exchange()
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*/
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T exchange(T desired, memory_order order = memory_order::seq_cst) volatile noexcept
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{
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return builtin_atomic_n(exchange)(&this->value, desired, static_cast<int>(order));
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}
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/**
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* @brief Compare and exchange the value of the atomic variable
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*
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* @param expected The expected value
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* @param desired The desired value
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* @param success Memory order constraint to use if the exchange succeeds
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* @param failure Memory order constraint to use if the exchange fails
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* @return True if the exchange succeeded, false otherwise
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*/
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bool compare_exchange_weak(T &expected, T desired, std::memory_order success, std::memory_order failure) noexcept
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{
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return builtin_atomic(compare_exchange_weak)(&this->value, &expected, desired, false, success, failure);
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}
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/**
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* @copydoc compare_exchange_weak()
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*/
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bool compare_exchange_weak(T &expected, T desired, std::memory_order success, std::memory_order failure) volatile noexcept
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{
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return builtin_atomic(compare_exchange_weak)(&this->value, &expected, desired, false, success, failure);
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}
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/**
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* @brief Compare and exchange the value of the atomic variable
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*
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* @param expected The expected value
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* @param desired The desired value
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* @param order Memory order constraint to use
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* @return True if the exchange succeeded, false otherwise
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*/
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bool compare_exchange_weak(T &expected, T desired, std::memory_order order = std::memory_order_seq_cst) noexcept
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{
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return builtin_atomic(compare_exchange_weak)(&this->value, &expected, desired, false, order, static_cast<int>(order));
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}
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/**
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* @copydoc compare_exchange_weak()
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*/
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bool compare_exchange_weak(T &expected, T desired, std::memory_order order = std::memory_order_seq_cst) volatile noexcept
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{
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return builtin_atomic(compare_exchange_weak)(&this->value, &expected, desired, false, order, static_cast<int>(order));
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}
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/**
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* @brief Compare and exchange the value of the atomic variable
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*
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* @param expected The expected value
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* @param desired The desired value
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* @param success Memory order constraint to use if the exchange succeeds
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* @param failure Memory order constraint to use if the exchange fails
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* @return True if the exchange succeeded, false otherwise
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*/
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bool compare_exchange_strong(T &expected, T desired, std::memory_order success, std::memory_order failure) noexcept
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{
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return builtin_atomic(compare_exchange_strong)(&this->value, &expected, desired, true, success, failure);
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}
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/**
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* @copydoc compare_exchange_strong()
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*/
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bool compare_exchange_strong(T &expected, T desired, std::memory_order success, std::memory_order failure) volatile noexcept
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{
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return builtin_atomic(compare_exchange_strong)(&this->value, &expected, desired, true, success, failure);
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}
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/**
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* @brief Compare and exchange the value of the atomic variable
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*
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* @param expected The expected value
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* @param desired The desired value
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* @param order Memory order constraint to use
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* @return True if the exchange succeeded, false otherwise
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*/
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bool compare_exchange_strong(T &expected, T desired, std::memory_order order = std::memory_order_seq_cst) noexcept
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{
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return builtin_atomic(compare_exchange_strong)(&this->value, &expected, desired, true, order, static_cast<int>(order));
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}
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/**
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* @copydoc compare_exchange_strong()
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*/
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bool compare_exchange_strong(T &expected, T desired, std::memory_order order = std::memory_order_seq_cst) volatile noexcept
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{
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return builtin_atomic(compare_exchange_strong)(&this->value, &expected, desired, true, order, static_cast<int>(order));
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}
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/**
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* @brief Fetch and add the value of the atomic variable
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*
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* @param arg The value to add
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* @param order Memory order constraint to use
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* @return The value of the atomic variable before the addition
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*/
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T fetch_add(T arg, std::memory_order order = std::memory_order_seq_cst) noexcept
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{
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return builtin_atomic(fetch_add)(&this->value, arg, static_cast<int>(order));
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}
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/**
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* @copydoc fetch_add()
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*/
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T fetch_add(T arg, std::memory_order order = std::memory_order_seq_cst) volatile noexcept
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{
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return builtin_atomic(fetch_add)(&this->value, arg, static_cast<int>(order));
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}
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/**
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* @brief Fetch and subtract the value of the atomic variable
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*
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* @param arg The value to subtract
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* @param order Memory order constraint to use
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* @return The value of the atomic variable before the subtraction
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*/
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T fetch_sub(T arg, std::memory_order order = std::memory_order_seq_cst) noexcept
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{
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return builtin_atomic(fetch_sub)(&this->value, arg, static_cast<int>(order));
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}
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/**
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* @copydoc fetch_sub()
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*/
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T fetch_sub(T arg, std::memory_order order = std::memory_order_seq_cst) volatile noexcept
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{
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return builtin_atomic(fetch_sub)(&this->value, arg, static_cast<int>(order));
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}
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/**
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* @brief Fetch and bitwise AND the value of the atomic variable
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*
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* @param arg The value to AND
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* @param order Memory order constraint to use
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* @return The value of the atomic variable before the AND
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*/
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T fetch_and(T arg, std::memory_order order = std::memory_order_seq_cst) noexcept
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{
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return builtin_atomic(fetch_and)(&this->value, arg, static_cast<int>(order));
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}
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/**
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* @copydoc fetch_and()
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*/
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T fetch_and(T arg, std::memory_order order = std::memory_order_seq_cst) volatile noexcept
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{
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return builtin_atomic(fetch_and)(&this->value, arg, static_cast<int>(order));
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}
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/**
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* @brief Fetch and bitwise OR the value of the atomic variable
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*
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* @param arg The value to OR
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* @param order Memory order constraint to use
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* @return The value of the atomic variable before the OR
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*/
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T fetch_or(T arg, std::memory_order order = std::memory_order_seq_cst) noexcept
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{
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return builtin_atomic(fetch_or)(&this->value, arg, static_cast<int>(order));
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}
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/**
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* @copydoc fetch_or()
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*/
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T fetch_or(T arg, std::memory_order order = std::memory_order_seq_cst) volatile noexcept
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{
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return builtin_atomic(fetch_or)(&this->value, arg, static_cast<int>(order));
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}
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/**
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* @brief Fetch and bitwise XOR the value of the atomic variable
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*
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* @param arg The value to XOR
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* @param order Memory order constraint to use
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* @return The value of the atomic variable before the XOR
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*/
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T fetch_xor(T arg, std::memory_order order = std::memory_order_seq_cst) noexcept
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{
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return builtin_atomic(fetch_xor)(&this->value, arg, static_cast<int>(order));
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}
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/**
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* @copydoc fetch_xor()
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*/
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T fetch_xor(T arg, std::memory_order order = std::memory_order_seq_cst) volatile noexcept
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{
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return builtin_atomic(fetch_xor)(&this->value, arg, static_cast<int>(order));
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}
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/**
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* @brief Fetch and bitwise NAND the value of the atomic variable
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*
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* @param arg The value to NAND
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* @param order Memory order constraint to use
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* @return The value of the atomic variable before the NAND
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*/
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T fetch_nand(T arg, std::memory_order order = std::memory_order_seq_cst) noexcept
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{
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return builtin_atomic(fetch_nand)(&this->value, arg, static_cast<int>(order));
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}
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/**
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* @copydoc fetch_nand()
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*/
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T fetch_nand(T arg, std::memory_order order = std::memory_order_seq_cst) volatile noexcept
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{
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return builtin_atomic(fetch_nand)(&this->value, arg, static_cast<int>(order));
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}
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/**
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* @brief Notify all threads waiting on this atomic variable
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*/
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void notify_all() noexcept
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{
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fixme("not implemented");
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}
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/**
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* @copydoc notify_all()
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*/
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void notify_all() volatile noexcept
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{
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fixme("not implemented");
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}
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/**
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* @brief Notify one thread waiting on this atomic variable
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*/
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void notify_one() noexcept
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{
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fixme("not implemented");
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}
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/**
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* @copydoc notify_one()
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*/
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void notify_one() volatile noexcept
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{
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fixme("not implemented");
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}
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/**
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* @brief Wait for the atomic variable to change
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*
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* @param old The value to wait for
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* @param order Memory order constraint to use
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*/
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void wait(T old, std::memory_order order = std::memory_order::seq_cst) const noexcept
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{
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fixme("not implemented");
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}
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/**
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* @copydoc wait()
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*/
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void wait(T old, std::memory_order order = std::memory_order::seq_cst) const volatile noexcept
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{
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fixme("not implemented");
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}
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/**
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* @brief Check whether this atomic type is lock-free
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* @return True if this atomic type is lock-free
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*/
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bool is_lock_free() const noexcept
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{
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fixme("not implemented");
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return true;
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}
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/**
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* @copydoc is_lock_free()
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*/
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bool is_lock_free() const volatile noexcept
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{
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fixme("not implemented");
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return true;
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}
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/**
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* @brief Equals true if this atomic type is always lock-free
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*/
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static constexpr bool is_always_lock_free = true;
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T operator++() noexcept { return this->fetch_add(1) + 1; }
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T operator--() noexcept { return this->fetch_sub(1) - 1; }
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T operator++(int) noexcept { return this->fetch_add(1); }
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T operator--(int) noexcept { return this->fetch_sub(1); }
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T operator+=(T desired) noexcept { return this->fetch_add(desired) + desired; }
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T operator-=(T desired) noexcept { return this->fetch_sub(desired) - desired; }
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// T operator+=(std::ptrdiff_t desired) noexcept { return this->fetch_add(desired) + desired; }
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// T operator-=(std::ptrdiff_t desired) noexcept { return this->fetch_sub(desired) - desired; }
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T operator&=(T desired) noexcept { return this->fetch_and(desired) & desired; }
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T operator|=(T desired) noexcept { return this->fetch_or(desired) | desired; }
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T operator^=(T desired) noexcept { return this->fetch_xor(desired) ^ desired; }
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T operator->() noexcept { return this->load(); }
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T operator~() noexcept { return this->fetch_nand(-1); }
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bool operator==(const atomic &other) const noexcept { return this->load() == other.load(); }
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bool operator==(T other) const noexcept { return this->load() == other; }
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atomic &operator=(const atomic &) = delete;
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T operator=(T desired) noexcept
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{
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this->store(desired);
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return desired;
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}
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operator bool() noexcept { return this->load() != 0; }
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// operator T() noexcept { return this->load(); }
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operator T() const noexcept { return this->load(); }
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};
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typedef atomic<bool> atomic_bool;
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typedef atomic<char> atomic_char;
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typedef atomic<signed char> atomic_schar;
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typedef atomic<unsigned char> atomic_uchar;
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typedef atomic<short> atomic_short;
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typedef atomic<unsigned short> atomic_ushort;
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typedef atomic<int> atomic_int;
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typedef atomic<unsigned int> atomic_uint;
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typedef atomic<long> atomic_long;
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typedef atomic<unsigned long> atomic_ulong;
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typedef atomic<long long> atomic_llong;
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typedef atomic<unsigned long long> atomic_ullong;
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typedef atomic<char16_t> atomic_char16_t;
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typedef atomic<char32_t> atomic_char32_t;
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typedef atomic<wchar_t> atomic_wchar_t;
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typedef atomic<int8_t> atomic_int8_t;
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typedef atomic<uint8_t> atomic_uint8_t;
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typedef atomic<int16_t> atomic_int16_t;
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typedef atomic<uint16_t> atomic_uint16_t;
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typedef atomic<int32_t> atomic_int32_t;
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typedef atomic<uint32_t> atomic_uint32_t;
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typedef atomic<int64_t> atomic_int64_t;
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typedef atomic<uint64_t> atomic_uint64_t;
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typedef atomic<int_least8_t> atomic_int_least8_t;
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typedef atomic<uint_least8_t> atomic_uint_least8_t;
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typedef atomic<int_least16_t> atomic_int_least16_t;
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typedef atomic<uint_least16_t> atomic_uint_least16_t;
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typedef atomic<int_least32_t> atomic_int_least32_t;
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typedef atomic<uint_least32_t> atomic_uint_least32_t;
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typedef atomic<int_least64_t> atomic_int_least64_t;
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typedef atomic<uint_least64_t> atomic_uint_least64_t;
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typedef atomic<int_fast8_t> atomic_int_fast8_t;
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typedef atomic<uint_fast8_t> atomic_uint_fast8_t;
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typedef atomic<int_fast16_t> atomic_int_fast16_t;
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typedef atomic<uint_fast16_t> atomic_uint_fast16_t;
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typedef atomic<int_fast32_t> atomic_int_fast32_t;
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typedef atomic<uint_fast32_t> atomic_uint_fast32_t;
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typedef atomic<int_fast64_t> atomic_int_fast64_t;
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typedef atomic<uint_fast64_t> atomic_uint_fast64_t;
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typedef atomic<intptr_t> atomic_intptr_t;
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typedef atomic<uintptr_t> atomic_uintptr_t;
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typedef atomic<size_t> atomic_size_t;
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typedef atomic<ptrdiff_t> atomic_ptrdiff_t;
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typedef atomic<intmax_t> atomic_intmax_t;
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typedef atomic<uintmax_t> atomic_uintmax_t;
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}
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#undef builtin_atomic_n
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#undef builtin_atomic
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#endif // !__FENNIX_KERNEL_STD_ATOMIC_H__
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