Removed Moodycamel's queue
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6 changed files with 0 additions and 6241 deletions
676
src/external/moodycamel/atomicops.h
vendored
676
src/external/moodycamel/atomicops.h
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// ©2013-2016 Cameron Desrochers.
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// Distributed under the simplified BSD license (see the license file that
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// should have come with this header).
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// Uses Jeff Preshing's semaphore implementation (under the terms of its
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// separate zlib license, embedded below).
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#pragma once
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// Provides portable (VC++2010+, Intel ICC 13, GCC 4.7+, and anything C++11 compliant) implementation
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// of low-level memory barriers, plus a few semi-portable utility macros (for inlining and alignment).
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// Also has a basic atomic type (limited to hardware-supported atomics with no memory ordering guarantees).
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// Uses the AE_* prefix for macros (historical reasons), and the "moodycamel" namespace for symbols.
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#include <cassert>
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#include <type_traits>
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#include <cerrno>
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#include <cstdint>
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#include <ctime>
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// Platform detection
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#if defined(__INTEL_COMPILER)
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#define AE_ICC
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#elif defined(_MSC_VER)
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#define AE_VCPP
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#elif defined(__GNUC__)
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#define AE_GCC
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#endif
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#if defined(_M_IA64) || defined(__ia64__)
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#define AE_ARCH_IA64
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#elif defined(_WIN64) || defined(__amd64__) || defined(_M_X64) || defined(__x86_64__)
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#define AE_ARCH_X64
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#elif defined(_M_IX86) || defined(__i386__)
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#define AE_ARCH_X86
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#elif defined(_M_PPC) || defined(__powerpc__)
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#define AE_ARCH_PPC
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#else
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#define AE_ARCH_UNKNOWN
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#endif
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// AE_UNUSED
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#define AE_UNUSED(x) ((void)x)
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// AE_NO_TSAN
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#if defined(__has_feature)
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#if __has_feature(thread_sanitizer)
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#define AE_NO_TSAN __attribute__((no_sanitize("thread")))
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#else
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#define AE_NO_TSAN
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#endif
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#else
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#define AE_NO_TSAN
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#endif
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// AE_FORCEINLINE
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#if defined(AE_VCPP) || defined(AE_ICC)
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#define AE_FORCEINLINE __forceinline
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#elif defined(AE_GCC)
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//#define AE_FORCEINLINE __attribute__((always_inline))
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#define AE_FORCEINLINE inline
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#else
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#define AE_FORCEINLINE inline
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#endif
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// AE_ALIGN
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#if defined(AE_VCPP) || defined(AE_ICC)
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#define AE_ALIGN(x) __declspec(align(x))
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#elif defined(AE_GCC)
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#define AE_ALIGN(x) __attribute__((aligned(x)))
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#else
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// Assume GCC compliant syntax...
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#define AE_ALIGN(x) __attribute__((aligned(x)))
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#endif
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// Portable atomic fences implemented below:
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namespace moodycamel {
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enum memory_order {
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memory_order_relaxed,
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memory_order_acquire,
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memory_order_release,
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memory_order_acq_rel,
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memory_order_seq_cst,
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// memory_order_sync: Forces a full sync:
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// #LoadLoad, #LoadStore, #StoreStore, and most significantly, #StoreLoad
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memory_order_sync = memory_order_seq_cst
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};
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} // end namespace moodycamel
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#if (defined(AE_VCPP) && (_MSC_VER < 1700 || defined(__cplusplus_cli))) || (defined(AE_ICC) && __INTEL_COMPILER < 1600)
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// VS2010 and ICC13 don't support std::atomic_*_fence, implement our own fences
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#include <intrin.h>
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#if defined(AE_ARCH_X64) || defined(AE_ARCH_X86)
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#define AeFullSync _mm_mfence
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#define AeLiteSync _mm_mfence
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#elif defined(AE_ARCH_IA64)
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#define AeFullSync __mf
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#define AeLiteSync __mf
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#elif defined(AE_ARCH_PPC)
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#include <ppcintrinsics.h>
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#define AeFullSync __sync
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#define AeLiteSync __lwsync
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#endif
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#ifdef AE_VCPP
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#pragma warning(push)
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#pragma warning(disable: 4365) // Disable erroneous 'conversion from long to unsigned int, signed/unsigned mismatch' error when using `assert`
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#ifdef __cplusplus_cli
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#pragma managed(push, off)
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#endif
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#endif
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namespace moodycamel {
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AE_FORCEINLINE void compiler_fence(memory_order order) AE_NO_TSAN
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{
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switch (order) {
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case memory_order_relaxed: break;
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case memory_order_acquire: _ReadBarrier(); break;
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case memory_order_release: _WriteBarrier(); break;
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case memory_order_acq_rel: _ReadWriteBarrier(); break;
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case memory_order_seq_cst: _ReadWriteBarrier(); break;
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default: assert(false);
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}
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}
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// x86/x64 have a strong memory model -- all loads and stores have
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// acquire and release semantics automatically (so only need compiler
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// barriers for those).
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#if defined(AE_ARCH_X86) || defined(AE_ARCH_X64)
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AE_FORCEINLINE void fence(memory_order order) AE_NO_TSAN
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{
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switch (order) {
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case memory_order_relaxed: break;
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case memory_order_acquire: _ReadBarrier(); break;
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case memory_order_release: _WriteBarrier(); break;
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case memory_order_acq_rel: _ReadWriteBarrier(); break;
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case memory_order_seq_cst:
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_ReadWriteBarrier();
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AeFullSync();
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_ReadWriteBarrier();
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break;
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default: assert(false);
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}
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}
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#else
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AE_FORCEINLINE void fence(memory_order order) AE_NO_TSAN
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{
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// Non-specialized arch, use heavier memory barriers everywhere just in case :-(
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switch (order) {
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case memory_order_relaxed:
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break;
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case memory_order_acquire:
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_ReadBarrier();
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AeLiteSync();
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_ReadBarrier();
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break;
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case memory_order_release:
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_WriteBarrier();
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AeLiteSync();
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_WriteBarrier();
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break;
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case memory_order_acq_rel:
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_ReadWriteBarrier();
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AeLiteSync();
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_ReadWriteBarrier();
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break;
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case memory_order_seq_cst:
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_ReadWriteBarrier();
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AeFullSync();
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_ReadWriteBarrier();
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break;
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default: assert(false);
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}
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}
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#endif
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} // end namespace moodycamel
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#else
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// Use standard library of atomics
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#include <atomic>
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namespace moodycamel {
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AE_FORCEINLINE void compiler_fence(memory_order order) AE_NO_TSAN
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{
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switch (order) {
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case memory_order_relaxed: break;
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case memory_order_acquire: std::atomic_signal_fence(std::memory_order_acquire); break;
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case memory_order_release: std::atomic_signal_fence(std::memory_order_release); break;
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case memory_order_acq_rel: std::atomic_signal_fence(std::memory_order_acq_rel); break;
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case memory_order_seq_cst: std::atomic_signal_fence(std::memory_order_seq_cst); break;
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default: assert(false);
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}
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}
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AE_FORCEINLINE void fence(memory_order order) AE_NO_TSAN
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{
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switch (order) {
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case memory_order_relaxed: break;
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case memory_order_acquire: std::atomic_thread_fence(std::memory_order_acquire); break;
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case memory_order_release: std::atomic_thread_fence(std::memory_order_release); break;
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case memory_order_acq_rel: std::atomic_thread_fence(std::memory_order_acq_rel); break;
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case memory_order_seq_cst: std::atomic_thread_fence(std::memory_order_seq_cst); break;
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default: assert(false);
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}
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}
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} // end namespace moodycamel
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#endif
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#if !defined(AE_VCPP) || (_MSC_VER >= 1700 && !defined(__cplusplus_cli))
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#define AE_USE_STD_ATOMIC_FOR_WEAK_ATOMIC
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#endif
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#ifdef AE_USE_STD_ATOMIC_FOR_WEAK_ATOMIC
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#include <atomic>
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#endif
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#include <utility>
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// WARNING: *NOT* A REPLACEMENT FOR std::atomic. READ CAREFULLY:
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// Provides basic support for atomic variables -- no memory ordering guarantees are provided.
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// The guarantee of atomicity is only made for types that already have atomic load and store guarantees
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// at the hardware level -- on most platforms this generally means aligned pointers and integers (only).
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namespace moodycamel {
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template<typename T>
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class weak_atomic
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{
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public:
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AE_NO_TSAN weak_atomic() { }
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#ifdef AE_VCPP
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#pragma warning(push)
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#pragma warning(disable: 4100) // Get rid of (erroneous) 'unreferenced formal parameter' warning
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#endif
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template<typename U> AE_NO_TSAN weak_atomic(U&& x) : value(std::forward<U>(x)) { }
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#ifdef __cplusplus_cli
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// Work around bug with universal reference/nullptr combination that only appears when /clr is on
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AE_NO_TSAN weak_atomic(nullptr_t) : value(nullptr) { }
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#endif
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AE_NO_TSAN weak_atomic(weak_atomic const& other) : value(other.load()) { }
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AE_NO_TSAN weak_atomic(weak_atomic&& other) : value(std::move(other.load())) { }
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#ifdef AE_VCPP
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#pragma warning(pop)
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#endif
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AE_FORCEINLINE operator T() const AE_NO_TSAN { return load(); }
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#ifndef AE_USE_STD_ATOMIC_FOR_WEAK_ATOMIC
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template<typename U> AE_FORCEINLINE weak_atomic const& operator=(U&& x) AE_NO_TSAN { value = std::forward<U>(x); return *this; }
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AE_FORCEINLINE weak_atomic const& operator=(weak_atomic const& other) AE_NO_TSAN { value = other.value; return *this; }
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AE_FORCEINLINE T load() const AE_NO_TSAN { return value; }
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AE_FORCEINLINE T fetch_add_acquire(T increment) AE_NO_TSAN
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{
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#if defined(AE_ARCH_X64) || defined(AE_ARCH_X86)
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if (sizeof(T) == 4) return _InterlockedExchangeAdd((long volatile*)&value, (long)increment);
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#if defined(_M_AMD64)
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else if (sizeof(T) == 8) return _InterlockedExchangeAdd64((long long volatile*)&value, (long long)increment);
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#endif
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#else
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#error Unsupported platform
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#endif
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assert(false && "T must be either a 32 or 64 bit type");
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return value;
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}
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AE_FORCEINLINE T fetch_add_release(T increment) AE_NO_TSAN
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{
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#if defined(AE_ARCH_X64) || defined(AE_ARCH_X86)
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if (sizeof(T) == 4) return _InterlockedExchangeAdd((long volatile*)&value, (long)increment);
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#if defined(_M_AMD64)
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else if (sizeof(T) == 8) return _InterlockedExchangeAdd64((long long volatile*)&value, (long long)increment);
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#endif
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#else
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#error Unsupported platform
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#endif
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assert(false && "T must be either a 32 or 64 bit type");
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return value;
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}
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#else
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template<typename U>
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AE_FORCEINLINE weak_atomic const& operator=(U&& x) AE_NO_TSAN
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{
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value.store(std::forward<U>(x), std::memory_order_relaxed);
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return *this;
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}
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AE_FORCEINLINE weak_atomic const& operator=(weak_atomic const& other) AE_NO_TSAN
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{
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value.store(other.value.load(std::memory_order_relaxed), std::memory_order_relaxed);
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return *this;
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}
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AE_FORCEINLINE T load() const AE_NO_TSAN { return value.load(std::memory_order_relaxed); }
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AE_FORCEINLINE T fetch_add_acquire(T increment) AE_NO_TSAN
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{
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return value.fetch_add(increment, std::memory_order_acquire);
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}
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AE_FORCEINLINE T fetch_add_release(T increment) AE_NO_TSAN
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{
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return value.fetch_add(increment, std::memory_order_release);
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}
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#endif
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private:
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#ifndef AE_USE_STD_ATOMIC_FOR_WEAK_ATOMIC
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// No std::atomic support, but still need to circumvent compiler optimizations.
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// `volatile` will make memory access slow, but is guaranteed to be reliable.
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volatile T value;
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#else
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std::atomic<T> value;
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#endif
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};
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} // end namespace moodycamel
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// Portable single-producer, single-consumer semaphore below:
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#if defined(_WIN32)
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// Avoid including windows.h in a header; we only need a handful of
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// items, so we'll redeclare them here (this is relatively safe since
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// the API generally has to remain stable between Windows versions).
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// I know this is an ugly hack but it still beats polluting the global
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// namespace with thousands of generic names or adding a .cpp for nothing.
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extern "C" {
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struct _SECURITY_ATTRIBUTES;
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__declspec(dllimport) void* __stdcall CreateSemaphoreW(_SECURITY_ATTRIBUTES* lpSemaphoreAttributes, long lInitialCount, long lMaximumCount, const wchar_t* lpName);
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__declspec(dllimport) int __stdcall CloseHandle(void* hObject);
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__declspec(dllimport) unsigned long __stdcall WaitForSingleObject(void* hHandle, unsigned long dwMilliseconds);
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__declspec(dllimport) int __stdcall ReleaseSemaphore(void* hSemaphore, long lReleaseCount, long* lpPreviousCount);
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}
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#elif defined(__MACH__)
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#include <mach/mach.h>
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#elif defined(__unix__)
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#include <semaphore.h>
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#endif
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namespace moodycamel
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{
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// Code in the spsc_sema namespace below is an adaptation of Jeff Preshing's
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// portable + lightweight semaphore implementations, originally from
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// https://github.com/preshing/cpp11-on-multicore/blob/master/common/sema.h
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// LICENSE:
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// Copyright (c) 2015 Jeff Preshing
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//
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// This software is provided 'as-is', without any express or implied
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// warranty. In no event will the authors be held liable for any damages
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// arising from the use of this software.
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//
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// Permission is granted to anyone to use this software for any purpose,
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// including commercial applications, and to alter it and redistribute it
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// freely, subject to the following restrictions:
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//
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// 1. The origin of this software must not be misrepresented; you must not
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// claim that you wrote the original software. If you use this software
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// in a product, an acknowledgement in the product documentation would be
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// appreciated but is not required.
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// 2. Altered source versions must be plainly marked as such, and must not be
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// misrepresented as being the original software.
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// 3. This notice may not be removed or altered from any source distribution.
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namespace spsc_sema
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{
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#if defined(_WIN32)
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class Semaphore
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{
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private:
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void* m_hSema;
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Semaphore(const Semaphore& other);
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Semaphore& operator=(const Semaphore& other);
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public:
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AE_NO_TSAN Semaphore(int initialCount = 0)
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{
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assert(initialCount >= 0);
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const long maxLong = 0x7fffffff;
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m_hSema = CreateSemaphoreW(nullptr, initialCount, maxLong, nullptr);
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}
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AE_NO_TSAN ~Semaphore()
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{
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CloseHandle(m_hSema);
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}
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void wait() AE_NO_TSAN
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{
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const unsigned long infinite = 0xffffffff;
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WaitForSingleObject(m_hSema, infinite);
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}
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bool try_wait() AE_NO_TSAN
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{
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const unsigned long RC_WAIT_TIMEOUT = 0x00000102;
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return WaitForSingleObject(m_hSema, 0) != RC_WAIT_TIMEOUT;
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}
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bool timed_wait(std::uint64_t usecs) AE_NO_TSAN
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{
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const unsigned long RC_WAIT_TIMEOUT = 0x00000102;
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return WaitForSingleObject(m_hSema, (unsigned long)(usecs / 1000)) != RC_WAIT_TIMEOUT;
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}
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void signal(int count = 1) AE_NO_TSAN
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{
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ReleaseSemaphore(m_hSema, count, nullptr);
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}
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};
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#elif defined(__MACH__)
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//---------------------------------------------------------
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// Semaphore (Apple iOS and OSX)
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// Can't use POSIX semaphores due to http://lists.apple.com/archives/darwin-kernel/2009/Apr/msg00010.html
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//---------------------------------------------------------
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class Semaphore
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{
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private:
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semaphore_t m_sema;
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Semaphore(const Semaphore& other);
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Semaphore& operator=(const Semaphore& other);
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public:
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AE_NO_TSAN Semaphore(int initialCount = 0)
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{
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assert(initialCount >= 0);
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semaphore_create(mach_task_self(), &m_sema, SYNC_POLICY_FIFO, initialCount);
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}
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AE_NO_TSAN ~Semaphore()
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{
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semaphore_destroy(mach_task_self(), m_sema);
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}
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void wait() AE_NO_TSAN
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{
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semaphore_wait(m_sema);
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}
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bool try_wait() AE_NO_TSAN
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{
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return timed_wait(0);
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}
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bool timed_wait(std::int64_t timeout_usecs) AE_NO_TSAN
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{
|
||||
mach_timespec_t ts;
|
||||
ts.tv_sec = static_cast<unsigned int>(timeout_usecs / 1000000);
|
||||
ts.tv_nsec = (timeout_usecs % 1000000) * 1000;
|
||||
|
||||
// added in OSX 10.10: https://developer.apple.com/library/prerelease/mac/documentation/General/Reference/APIDiffsMacOSX10_10SeedDiff/modules/Darwin.html
|
||||
kern_return_t rc = semaphore_timedwait(m_sema, ts);
|
||||
|
||||
return rc != KERN_OPERATION_TIMED_OUT && rc != KERN_ABORTED;
|
||||
}
|
||||
|
||||
void signal() AE_NO_TSAN
|
||||
{
|
||||
semaphore_signal(m_sema);
|
||||
}
|
||||
|
||||
void signal(int count) AE_NO_TSAN
|
||||
{
|
||||
while (count-- > 0)
|
||||
{
|
||||
semaphore_signal(m_sema);
|
||||
}
|
||||
}
|
||||
};
|
||||
#elif defined(__unix__)
|
||||
//---------------------------------------------------------
|
||||
// Semaphore (POSIX, Linux)
|
||||
//---------------------------------------------------------
|
||||
class Semaphore
|
||||
{
|
||||
private:
|
||||
sem_t m_sema;
|
||||
|
||||
Semaphore(const Semaphore& other);
|
||||
Semaphore& operator=(const Semaphore& other);
|
||||
|
||||
public:
|
||||
AE_NO_TSAN Semaphore(int initialCount = 0)
|
||||
{
|
||||
assert(initialCount >= 0);
|
||||
sem_init(&m_sema, 0, initialCount);
|
||||
}
|
||||
|
||||
AE_NO_TSAN ~Semaphore()
|
||||
{
|
||||
sem_destroy(&m_sema);
|
||||
}
|
||||
|
||||
void wait() AE_NO_TSAN
|
||||
{
|
||||
// http://stackoverflow.com/questions/2013181/gdb-causes-sem-wait-to-fail-with-eintr-error
|
||||
int rc;
|
||||
do
|
||||
{
|
||||
rc = sem_wait(&m_sema);
|
||||
}
|
||||
while (rc == -1 && errno == EINTR);
|
||||
}
|
||||
|
||||
bool try_wait() AE_NO_TSAN
|
||||
{
|
||||
int rc;
|
||||
do {
|
||||
rc = sem_trywait(&m_sema);
|
||||
} while (rc == -1 && errno == EINTR);
|
||||
return !(rc == -1 && errno == EAGAIN);
|
||||
}
|
||||
|
||||
bool timed_wait(std::uint64_t usecs) AE_NO_TSAN
|
||||
{
|
||||
struct timespec ts;
|
||||
const int usecs_in_1_sec = 1000000;
|
||||
const int nsecs_in_1_sec = 1000000000;
|
||||
clock_gettime(CLOCK_REALTIME, &ts);
|
||||
ts.tv_sec += usecs / usecs_in_1_sec;
|
||||
ts.tv_nsec += (usecs % usecs_in_1_sec) * 1000;
|
||||
// sem_timedwait bombs if you have more than 1e9 in tv_nsec
|
||||
// so we have to clean things up before passing it in
|
||||
if (ts.tv_nsec >= nsecs_in_1_sec) {
|
||||
ts.tv_nsec -= nsecs_in_1_sec;
|
||||
++ts.tv_sec;
|
||||
}
|
||||
|
||||
int rc;
|
||||
do {
|
||||
rc = sem_timedwait(&m_sema, &ts);
|
||||
} while (rc == -1 && errno == EINTR);
|
||||
return !(rc == -1 && errno == ETIMEDOUT);
|
||||
}
|
||||
|
||||
void signal() AE_NO_TSAN
|
||||
{
|
||||
sem_post(&m_sema);
|
||||
}
|
||||
|
||||
void signal(int count) AE_NO_TSAN
|
||||
{
|
||||
while (count-- > 0)
|
||||
{
|
||||
sem_post(&m_sema);
|
||||
}
|
||||
}
|
||||
};
|
||||
#else
|
||||
#error Unsupported platform! (No semaphore wrapper available)
|
||||
#endif
|
||||
|
||||
//---------------------------------------------------------
|
||||
// LightweightSemaphore
|
||||
//---------------------------------------------------------
|
||||
class LightweightSemaphore
|
||||
{
|
||||
public:
|
||||
typedef std::make_signed<std::size_t>::type ssize_t;
|
||||
|
||||
private:
|
||||
weak_atomic<ssize_t> m_count;
|
||||
Semaphore m_sema;
|
||||
|
||||
bool waitWithPartialSpinning(std::int64_t timeout_usecs = -1) AE_NO_TSAN
|
||||
{
|
||||
ssize_t oldCount;
|
||||
// Is there a better way to set the initial spin count?
|
||||
// If we lower it to 1000, testBenaphore becomes 15x slower on my Core i7-5930K Windows PC,
|
||||
// as threads start hitting the kernel semaphore.
|
||||
int spin = 10000;
|
||||
while (--spin >= 0)
|
||||
{
|
||||
if (m_count.load() > 0)
|
||||
{
|
||||
m_count.fetch_add_acquire(-1);
|
||||
return true;
|
||||
}
|
||||
compiler_fence(memory_order_acquire); // Prevent the compiler from collapsing the loop.
|
||||
}
|
||||
oldCount = m_count.fetch_add_acquire(-1);
|
||||
if (oldCount > 0)
|
||||
return true;
|
||||
if (timeout_usecs < 0)
|
||||
{
|
||||
m_sema.wait();
|
||||
return true;
|
||||
}
|
||||
if (m_sema.timed_wait(timeout_usecs))
|
||||
return true;
|
||||
// At this point, we've timed out waiting for the semaphore, but the
|
||||
// count is still decremented indicating we may still be waiting on
|
||||
// it. So we have to re-adjust the count, but only if the semaphore
|
||||
// wasn't signaled enough times for us too since then. If it was, we
|
||||
// need to release the semaphore too.
|
||||
while (true)
|
||||
{
|
||||
oldCount = m_count.fetch_add_release(1);
|
||||
if (oldCount < 0)
|
||||
return false; // successfully restored things to the way they were
|
||||
// Oh, the producer thread just signaled the semaphore after all. Try again:
|
||||
oldCount = m_count.fetch_add_acquire(-1);
|
||||
if (oldCount > 0 && m_sema.try_wait())
|
||||
return true;
|
||||
}
|
||||
}
|
||||
|
||||
public:
|
||||
AE_NO_TSAN LightweightSemaphore(ssize_t initialCount = 0) : m_count(initialCount)
|
||||
{
|
||||
assert(initialCount >= 0);
|
||||
}
|
||||
|
||||
bool tryWait() AE_NO_TSAN
|
||||
{
|
||||
if (m_count.load() > 0)
|
||||
{
|
||||
m_count.fetch_add_acquire(-1);
|
||||
return true;
|
||||
}
|
||||
return false;
|
||||
}
|
||||
|
||||
void wait() AE_NO_TSAN
|
||||
{
|
||||
if (!tryWait())
|
||||
waitWithPartialSpinning();
|
||||
}
|
||||
|
||||
bool wait(std::int64_t timeout_usecs) AE_NO_TSAN
|
||||
{
|
||||
return tryWait() || waitWithPartialSpinning(timeout_usecs);
|
||||
}
|
||||
|
||||
void signal(ssize_t count = 1) AE_NO_TSAN
|
||||
{
|
||||
assert(count >= 0);
|
||||
ssize_t oldCount = m_count.fetch_add_release(count);
|
||||
assert(oldCount >= -1);
|
||||
if (oldCount < 0)
|
||||
{
|
||||
m_sema.signal(1);
|
||||
}
|
||||
}
|
||||
|
||||
ssize_t availableApprox() const AE_NO_TSAN
|
||||
{
|
||||
ssize_t count = m_count.load();
|
||||
return count > 0 ? count : 0;
|
||||
}
|
||||
};
|
||||
} // end namespace spsc_sema
|
||||
} // end namespace moodycamel
|
||||
|
||||
#if defined(AE_VCPP) && (_MSC_VER < 1700 || defined(__cplusplus_cli))
|
||||
#pragma warning(pop)
|
||||
#ifdef __cplusplus_cli
|
||||
#pragma managed(pop)
|
||||
#endif
|
||||
#endif
|
||||
588
src/external/moodycamel/blockingconcurrentqueue.h
vendored
588
src/external/moodycamel/blockingconcurrentqueue.h
vendored
|
|
@ -1,588 +0,0 @@
|
|||
// Provides an efficient blocking version of moodycamel::ConcurrentQueue.
|
||||
// ©2015-2016 Cameron Desrochers. Distributed under the terms of the simplified
|
||||
// BSD license, available at the top of concurrentqueue.h.
|
||||
// Uses Jeff Preshing's semaphore implementation (under the terms of its
|
||||
// separate zlib license, embedded below).
|
||||
|
||||
#pragma once
|
||||
|
||||
#include "concurrentqueue.h"
|
||||
#include "lightweightsemaphore.h"
|
||||
|
||||
#include <type_traits>
|
||||
#include <cerrno>
|
||||
#include <memory>
|
||||
#include <chrono>
|
||||
#include <ctime>
|
||||
|
||||
namespace moodycamel
|
||||
{
|
||||
// This is a blocking version of the queue. It has an almost identical interface to
|
||||
// the normal non-blocking version, with the addition of various wait_dequeue() methods
|
||||
// and the removal of producer-specific dequeue methods.
|
||||
template<typename T, typename Traits = ConcurrentQueueDefaultTraits>
|
||||
class BlockingConcurrentQueue
|
||||
{
|
||||
private:
|
||||
typedef ::moodycamel::ConcurrentQueue<T, Traits> ConcurrentQueue;
|
||||
typedef ::moodycamel::LightweightSemaphore LightweightSemaphore;
|
||||
|
||||
public:
|
||||
typedef typename ConcurrentQueue::producer_token_t producer_token_t;
|
||||
typedef typename ConcurrentQueue::consumer_token_t consumer_token_t;
|
||||
|
||||
typedef typename ConcurrentQueue::index_t index_t;
|
||||
typedef typename ConcurrentQueue::size_t size_t;
|
||||
typedef typename std::make_signed<size_t>::type ssize_t;
|
||||
|
||||
static const size_t BLOCK_SIZE = ConcurrentQueue::BLOCK_SIZE;
|
||||
static const size_t EXPLICIT_BLOCK_EMPTY_COUNTER_THRESHOLD = ConcurrentQueue::EXPLICIT_BLOCK_EMPTY_COUNTER_THRESHOLD;
|
||||
static const size_t EXPLICIT_INITIAL_INDEX_SIZE = ConcurrentQueue::EXPLICIT_INITIAL_INDEX_SIZE;
|
||||
static const size_t IMPLICIT_INITIAL_INDEX_SIZE = ConcurrentQueue::IMPLICIT_INITIAL_INDEX_SIZE;
|
||||
static const size_t INITIAL_IMPLICIT_PRODUCER_HASH_SIZE = ConcurrentQueue::INITIAL_IMPLICIT_PRODUCER_HASH_SIZE;
|
||||
static const std::uint32_t EXPLICIT_CONSUMER_CONSUMPTION_QUOTA_BEFORE_ROTATE = ConcurrentQueue::EXPLICIT_CONSUMER_CONSUMPTION_QUOTA_BEFORE_ROTATE;
|
||||
static const size_t MAX_SUBQUEUE_SIZE = ConcurrentQueue::MAX_SUBQUEUE_SIZE;
|
||||
|
||||
public:
|
||||
// Creates a queue with at least `capacity` element slots; note that the
|
||||
// actual number of elements that can be inserted without additional memory
|
||||
// allocation depends on the number of producers and the block size (e.g. if
|
||||
// the block size is equal to `capacity`, only a single block will be allocated
|
||||
// up-front, which means only a single producer will be able to enqueue elements
|
||||
// without an extra allocation -- blocks aren't shared between producers).
|
||||
// This method is not thread safe -- it is up to the user to ensure that the
|
||||
// queue is fully constructed before it starts being used by other threads (this
|
||||
// includes making the memory effects of construction visible, possibly with a
|
||||
// memory barrier).
|
||||
explicit BlockingConcurrentQueue(size_t capacity = 6 * BLOCK_SIZE)
|
||||
: inner(capacity), sema(create<LightweightSemaphore>(), &BlockingConcurrentQueue::template destroy<LightweightSemaphore>)
|
||||
{
|
||||
assert(reinterpret_cast<ConcurrentQueue*>((BlockingConcurrentQueue*)1) == &((BlockingConcurrentQueue*)1)->inner && "BlockingConcurrentQueue must have ConcurrentQueue as its first member");
|
||||
if (!sema) {
|
||||
MOODYCAMEL_THROW(std::bad_alloc());
|
||||
}
|
||||
}
|
||||
|
||||
BlockingConcurrentQueue(size_t minCapacity, size_t maxExplicitProducers, size_t maxImplicitProducers)
|
||||
: inner(minCapacity, maxExplicitProducers, maxImplicitProducers), sema(create<LightweightSemaphore>(), &BlockingConcurrentQueue::template destroy<LightweightSemaphore>)
|
||||
{
|
||||
assert(reinterpret_cast<ConcurrentQueue*>((BlockingConcurrentQueue*)1) == &((BlockingConcurrentQueue*)1)->inner && "BlockingConcurrentQueue must have ConcurrentQueue as its first member");
|
||||
if (!sema) {
|
||||
MOODYCAMEL_THROW(std::bad_alloc());
|
||||
}
|
||||
}
|
||||
|
||||
// Disable copying and copy assignment
|
||||
BlockingConcurrentQueue(BlockingConcurrentQueue const&) MOODYCAMEL_DELETE_FUNCTION;
|
||||
BlockingConcurrentQueue& operator=(BlockingConcurrentQueue const&) MOODYCAMEL_DELETE_FUNCTION;
|
||||
|
||||
// Moving is supported, but note that it is *not* a thread-safe operation.
|
||||
// Nobody can use the queue while it's being moved, and the memory effects
|
||||
// of that move must be propagated to other threads before they can use it.
|
||||
// Note: When a queue is moved, its tokens are still valid but can only be
|
||||
// used with the destination queue (i.e. semantically they are moved along
|
||||
// with the queue itself).
|
||||
BlockingConcurrentQueue(BlockingConcurrentQueue&& other) MOODYCAMEL_NOEXCEPT
|
||||
: inner(std::move(other.inner)), sema(std::move(other.sema))
|
||||
{ }
|
||||
|
||||
inline BlockingConcurrentQueue& operator=(BlockingConcurrentQueue&& other) MOODYCAMEL_NOEXCEPT
|
||||
{
|
||||
return swap_internal(other);
|
||||
}
|
||||
|
||||
// Swaps this queue's state with the other's. Not thread-safe.
|
||||
// Swapping two queues does not invalidate their tokens, however
|
||||
// the tokens that were created for one queue must be used with
|
||||
// only the swapped queue (i.e. the tokens are tied to the
|
||||
// queue's movable state, not the object itself).
|
||||
inline void swap(BlockingConcurrentQueue& other) MOODYCAMEL_NOEXCEPT
|
||||
{
|
||||
swap_internal(other);
|
||||
}
|
||||
|
||||
private:
|
||||
BlockingConcurrentQueue& swap_internal(BlockingConcurrentQueue& other)
|
||||
{
|
||||
if (this == &other) {
|
||||
return *this;
|
||||
}
|
||||
|
||||
inner.swap(other.inner);
|
||||
sema.swap(other.sema);
|
||||
return *this;
|
||||
}
|
||||
|
||||
public:
|
||||
// Enqueues a single item (by copying it).
|
||||
// Allocates memory if required. Only fails if memory allocation fails (or implicit
|
||||
// production is disabled because Traits::INITIAL_IMPLICIT_PRODUCER_HASH_SIZE is 0,
|
||||
// or Traits::MAX_SUBQUEUE_SIZE has been defined and would be surpassed).
|
||||
// Thread-safe.
|
||||
inline bool enqueue(T const& item)
|
||||
{
|
||||
if ((details::likely)(inner.enqueue(item))) {
|
||||
sema->signal();
|
||||
return true;
|
||||
}
|
||||
return false;
|
||||
}
|
||||
|
||||
// Enqueues a single item (by moving it, if possible).
|
||||
// Allocates memory if required. Only fails if memory allocation fails (or implicit
|
||||
// production is disabled because Traits::INITIAL_IMPLICIT_PRODUCER_HASH_SIZE is 0,
|
||||
// or Traits::MAX_SUBQUEUE_SIZE has been defined and would be surpassed).
|
||||
// Thread-safe.
|
||||
inline bool enqueue(T&& item)
|
||||
{
|
||||
if ((details::likely)(inner.enqueue(std::move(item)))) {
|
||||
sema->signal();
|
||||
return true;
|
||||
}
|
||||
return false;
|
||||
}
|
||||
|
||||
// Enqueues a single item (by copying it) using an explicit producer token.
|
||||
// Allocates memory if required. Only fails if memory allocation fails (or
|
||||
// Traits::MAX_SUBQUEUE_SIZE has been defined and would be surpassed).
|
||||
// Thread-safe.
|
||||
inline bool enqueue(producer_token_t const& token, T const& item)
|
||||
{
|
||||
if ((details::likely)(inner.enqueue(token, item))) {
|
||||
sema->signal();
|
||||
return true;
|
||||
}
|
||||
return false;
|
||||
}
|
||||
|
||||
// Enqueues a single item (by moving it, if possible) using an explicit producer token.
|
||||
// Allocates memory if required. Only fails if memory allocation fails (or
|
||||
// Traits::MAX_SUBQUEUE_SIZE has been defined and would be surpassed).
|
||||
// Thread-safe.
|
||||
inline bool enqueue(producer_token_t const& token, T&& item)
|
||||
{
|
||||
if ((details::likely)(inner.enqueue(token, std::move(item)))) {
|
||||
sema->signal();
|
||||
return true;
|
||||
}
|
||||
return false;
|
||||
}
|
||||
|
||||
// Enqueues several items.
|
||||
// Allocates memory if required. Only fails if memory allocation fails (or
|
||||
// implicit production is disabled because Traits::INITIAL_IMPLICIT_PRODUCER_HASH_SIZE
|
||||
// is 0, or Traits::MAX_SUBQUEUE_SIZE has been defined and would be surpassed).
|
||||
// Note: Use std::make_move_iterator if the elements should be moved instead of copied.
|
||||
// Thread-safe.
|
||||
template<typename It>
|
||||
inline bool enqueue_bulk(It itemFirst, size_t count)
|
||||
{
|
||||
if ((details::likely)(inner.enqueue_bulk(std::forward<It>(itemFirst), count))) {
|
||||
sema->signal((LightweightSemaphore::ssize_t)(ssize_t)count);
|
||||
return true;
|
||||
}
|
||||
return false;
|
||||
}
|
||||
|
||||
// Enqueues several items using an explicit producer token.
|
||||
// Allocates memory if required. Only fails if memory allocation fails
|
||||
// (or Traits::MAX_SUBQUEUE_SIZE has been defined and would be surpassed).
|
||||
// Note: Use std::make_move_iterator if the elements should be moved
|
||||
// instead of copied.
|
||||
// Thread-safe.
|
||||
template<typename It>
|
||||
inline bool enqueue_bulk(producer_token_t const& token, It itemFirst, size_t count)
|
||||
{
|
||||
if ((details::likely)(inner.enqueue_bulk(token, std::forward<It>(itemFirst), count))) {
|
||||
sema->signal((LightweightSemaphore::ssize_t)(ssize_t)count);
|
||||
return true;
|
||||
}
|
||||
return false;
|
||||
}
|
||||
|
||||
// Enqueues a single item (by copying it).
|
||||
// Does not allocate memory. Fails if not enough room to enqueue (or implicit
|
||||
// production is disabled because Traits::INITIAL_IMPLICIT_PRODUCER_HASH_SIZE
|
||||
// is 0).
|
||||
// Thread-safe.
|
||||
inline bool try_enqueue(T const& item)
|
||||
{
|
||||
if (inner.try_enqueue(item)) {
|
||||
sema->signal();
|
||||
return true;
|
||||
}
|
||||
return false;
|
||||
}
|
||||
|
||||
// Enqueues a single item (by moving it, if possible).
|
||||
// Does not allocate memory (except for one-time implicit producer).
|
||||
// Fails if not enough room to enqueue (or implicit production is
|
||||
// disabled because Traits::INITIAL_IMPLICIT_PRODUCER_HASH_SIZE is 0).
|
||||
// Thread-safe.
|
||||
inline bool try_enqueue(T&& item)
|
||||
{
|
||||
if (inner.try_enqueue(std::move(item))) {
|
||||
sema->signal();
|
||||
return true;
|
||||
}
|
||||
return false;
|
||||
}
|
||||
|
||||
// Enqueues a single item (by copying it) using an explicit producer token.
|
||||
// Does not allocate memory. Fails if not enough room to enqueue.
|
||||
// Thread-safe.
|
||||
inline bool try_enqueue(producer_token_t const& token, T const& item)
|
||||
{
|
||||
if (inner.try_enqueue(token, item)) {
|
||||
sema->signal();
|
||||
return true;
|
||||
}
|
||||
return false;
|
||||
}
|
||||
|
||||
// Enqueues a single item (by moving it, if possible) using an explicit producer token.
|
||||
// Does not allocate memory. Fails if not enough room to enqueue.
|
||||
// Thread-safe.
|
||||
inline bool try_enqueue(producer_token_t const& token, T&& item)
|
||||
{
|
||||
if (inner.try_enqueue(token, std::move(item))) {
|
||||
sema->signal();
|
||||
return true;
|
||||
}
|
||||
return false;
|
||||
}
|
||||
|
||||
// Enqueues several items.
|
||||
// Does not allocate memory (except for one-time implicit producer).
|
||||
// Fails if not enough room to enqueue (or implicit production is
|
||||
// disabled because Traits::INITIAL_IMPLICIT_PRODUCER_HASH_SIZE is 0).
|
||||
// Note: Use std::make_move_iterator if the elements should be moved
|
||||
// instead of copied.
|
||||
// Thread-safe.
|
||||
template<typename It>
|
||||
inline bool try_enqueue_bulk(It itemFirst, size_t count)
|
||||
{
|
||||
if (inner.try_enqueue_bulk(std::forward<It>(itemFirst), count)) {
|
||||
sema->signal((LightweightSemaphore::ssize_t)(ssize_t)count);
|
||||
return true;
|
||||
}
|
||||
return false;
|
||||
}
|
||||
|
||||
// Enqueues several items using an explicit producer token.
|
||||
// Does not allocate memory. Fails if not enough room to enqueue.
|
||||
// Note: Use std::make_move_iterator if the elements should be moved
|
||||
// instead of copied.
|
||||
// Thread-safe.
|
||||
template<typename It>
|
||||
inline bool try_enqueue_bulk(producer_token_t const& token, It itemFirst, size_t count)
|
||||
{
|
||||
if (inner.try_enqueue_bulk(token, std::forward<It>(itemFirst), count)) {
|
||||
sema->signal((LightweightSemaphore::ssize_t)(ssize_t)count);
|
||||
return true;
|
||||
}
|
||||
return false;
|
||||
}
|
||||
|
||||
|
||||
// Attempts to dequeue from the queue.
|
||||
// Returns false if all producer streams appeared empty at the time they
|
||||
// were checked (so, the queue is likely but not guaranteed to be empty).
|
||||
// Never allocates. Thread-safe.
|
||||
template<typename U>
|
||||
inline bool try_dequeue(U& item)
|
||||
{
|
||||
if (sema->tryWait()) {
|
||||
while (!inner.try_dequeue(item)) {
|
||||
continue;
|
||||
}
|
||||
return true;
|
||||
}
|
||||
return false;
|
||||
}
|
||||
|
||||
// Attempts to dequeue from the queue using an explicit consumer token.
|
||||
// Returns false if all producer streams appeared empty at the time they
|
||||
// were checked (so, the queue is likely but not guaranteed to be empty).
|
||||
// Never allocates. Thread-safe.
|
||||
template<typename U>
|
||||
inline bool try_dequeue(consumer_token_t& token, U& item)
|
||||
{
|
||||
if (sema->tryWait()) {
|
||||
while (!inner.try_dequeue(token, item)) {
|
||||
continue;
|
||||
}
|
||||
return true;
|
||||
}
|
||||
return false;
|
||||
}
|
||||
|
||||
// Attempts to dequeue several elements from the queue.
|
||||
// Returns the number of items actually dequeued.
|
||||
// Returns 0 if all producer streams appeared empty at the time they
|
||||
// were checked (so, the queue is likely but not guaranteed to be empty).
|
||||
// Never allocates. Thread-safe.
|
||||
template<typename It>
|
||||
inline size_t try_dequeue_bulk(It itemFirst, size_t max)
|
||||
{
|
||||
size_t count = 0;
|
||||
max = (size_t)sema->tryWaitMany((LightweightSemaphore::ssize_t)(ssize_t)max);
|
||||
while (count != max) {
|
||||
count += inner.template try_dequeue_bulk<It&>(itemFirst, max - count);
|
||||
}
|
||||
return count;
|
||||
}
|
||||
|
||||
// Attempts to dequeue several elements from the queue using an explicit consumer token.
|
||||
// Returns the number of items actually dequeued.
|
||||
// Returns 0 if all producer streams appeared empty at the time they
|
||||
// were checked (so, the queue is likely but not guaranteed to be empty).
|
||||
// Never allocates. Thread-safe.
|
||||
template<typename It>
|
||||
inline size_t try_dequeue_bulk(consumer_token_t& token, It itemFirst, size_t max)
|
||||
{
|
||||
size_t count = 0;
|
||||
max = (size_t)sema->tryWaitMany((LightweightSemaphore::ssize_t)(ssize_t)max);
|
||||
while (count != max) {
|
||||
count += inner.template try_dequeue_bulk<It&>(token, itemFirst, max - count);
|
||||
}
|
||||
return count;
|
||||
}
|
||||
|
||||
|
||||
|
||||
// Blocks the current thread until there's something to dequeue, then
|
||||
// dequeues it.
|
||||
// Never allocates. Thread-safe.
|
||||
template<typename U>
|
||||
inline void wait_dequeue(U& item)
|
||||
{
|
||||
while (!sema->wait()) {
|
||||
continue;
|
||||
}
|
||||
while (!inner.try_dequeue(item)) {
|
||||
continue;
|
||||
}
|
||||
}
|
||||
|
||||
// Blocks the current thread until either there's something to dequeue
|
||||
// or the timeout (specified in microseconds) expires. Returns false
|
||||
// without setting `item` if the timeout expires, otherwise assigns
|
||||
// to `item` and returns true.
|
||||
// Using a negative timeout indicates an indefinite timeout,
|
||||
// and is thus functionally equivalent to calling wait_dequeue.
|
||||
// Never allocates. Thread-safe.
|
||||
template<typename U>
|
||||
inline bool wait_dequeue_timed(U& item, std::int64_t timeout_usecs)
|
||||
{
|
||||
if (!sema->wait(timeout_usecs)) {
|
||||
return false;
|
||||
}
|
||||
while (!inner.try_dequeue(item)) {
|
||||
continue;
|
||||
}
|
||||
return true;
|
||||
}
|
||||
|
||||
// Blocks the current thread until either there's something to dequeue
|
||||
// or the timeout expires. Returns false without setting `item` if the
|
||||
// timeout expires, otherwise assigns to `item` and returns true.
|
||||
// Never allocates. Thread-safe.
|
||||
template<typename U, typename Rep, typename Period>
|
||||
inline bool wait_dequeue_timed(U& item, std::chrono::duration<Rep, Period> const& timeout)
|
||||
{
|
||||
return wait_dequeue_timed(item, std::chrono::duration_cast<std::chrono::microseconds>(timeout).count());
|
||||
}
|
||||
|
||||
// Blocks the current thread until there's something to dequeue, then
|
||||
// dequeues it using an explicit consumer token.
|
||||
// Never allocates. Thread-safe.
|
||||
template<typename U>
|
||||
inline void wait_dequeue(consumer_token_t& token, U& item)
|
||||
{
|
||||
while (!sema->wait()) {
|
||||
continue;
|
||||
}
|
||||
while (!inner.try_dequeue(token, item)) {
|
||||
continue;
|
||||
}
|
||||
}
|
||||
|
||||
// Blocks the current thread until either there's something to dequeue
|
||||
// or the timeout (specified in microseconds) expires. Returns false
|
||||
// without setting `item` if the timeout expires, otherwise assigns
|
||||
// to `item` and returns true.
|
||||
// Using a negative timeout indicates an indefinite timeout,
|
||||
// and is thus functionally equivalent to calling wait_dequeue.
|
||||
// Never allocates. Thread-safe.
|
||||
template<typename U>
|
||||
inline bool wait_dequeue_timed(consumer_token_t& token, U& item, std::int64_t timeout_usecs)
|
||||
{
|
||||
if (!sema->wait(timeout_usecs)) {
|
||||
return false;
|
||||
}
|
||||
while (!inner.try_dequeue(token, item)) {
|
||||
continue;
|
||||
}
|
||||
return true;
|
||||
}
|
||||
|
||||
// Blocks the current thread until either there's something to dequeue
|
||||
// or the timeout expires. Returns false without setting `item` if the
|
||||
// timeout expires, otherwise assigns to `item` and returns true.
|
||||
// Never allocates. Thread-safe.
|
||||
template<typename U, typename Rep, typename Period>
|
||||
inline bool wait_dequeue_timed(consumer_token_t& token, U& item, std::chrono::duration<Rep, Period> const& timeout)
|
||||
{
|
||||
return wait_dequeue_timed(token, item, std::chrono::duration_cast<std::chrono::microseconds>(timeout).count());
|
||||
}
|
||||
|
||||
// Attempts to dequeue several elements from the queue.
|
||||
// Returns the number of items actually dequeued, which will
|
||||
// always be at least one (this method blocks until the queue
|
||||
// is non-empty) and at most max.
|
||||
// Never allocates. Thread-safe.
|
||||
template<typename It>
|
||||
inline size_t wait_dequeue_bulk(It itemFirst, size_t max)
|
||||
{
|
||||
size_t count = 0;
|
||||
max = (size_t)sema->waitMany((LightweightSemaphore::ssize_t)(ssize_t)max);
|
||||
while (count != max) {
|
||||
count += inner.template try_dequeue_bulk<It&>(itemFirst, max - count);
|
||||
}
|
||||
return count;
|
||||
}
|
||||
|
||||
// Attempts to dequeue several elements from the queue.
|
||||
// Returns the number of items actually dequeued, which can
|
||||
// be 0 if the timeout expires while waiting for elements,
|
||||
// and at most max.
|
||||
// Using a negative timeout indicates an indefinite timeout,
|
||||
// and is thus functionally equivalent to calling wait_dequeue_bulk.
|
||||
// Never allocates. Thread-safe.
|
||||
template<typename It>
|
||||
inline size_t wait_dequeue_bulk_timed(It itemFirst, size_t max, std::int64_t timeout_usecs)
|
||||
{
|
||||
size_t count = 0;
|
||||
max = (size_t)sema->waitMany((LightweightSemaphore::ssize_t)(ssize_t)max, timeout_usecs);
|
||||
while (count != max) {
|
||||
count += inner.template try_dequeue_bulk<It&>(itemFirst, max - count);
|
||||
}
|
||||
return count;
|
||||
}
|
||||
|
||||
// Attempts to dequeue several elements from the queue.
|
||||
// Returns the number of items actually dequeued, which can
|
||||
// be 0 if the timeout expires while waiting for elements,
|
||||
// and at most max.
|
||||
// Never allocates. Thread-safe.
|
||||
template<typename It, typename Rep, typename Period>
|
||||
inline size_t wait_dequeue_bulk_timed(It itemFirst, size_t max, std::chrono::duration<Rep, Period> const& timeout)
|
||||
{
|
||||
return wait_dequeue_bulk_timed<It&>(itemFirst, max, std::chrono::duration_cast<std::chrono::microseconds>(timeout).count());
|
||||
}
|
||||
|
||||
// Attempts to dequeue several elements from the queue using an explicit consumer token.
|
||||
// Returns the number of items actually dequeued, which will
|
||||
// always be at least one (this method blocks until the queue
|
||||
// is non-empty) and at most max.
|
||||
// Never allocates. Thread-safe.
|
||||
template<typename It>
|
||||
inline size_t wait_dequeue_bulk(consumer_token_t& token, It itemFirst, size_t max)
|
||||
{
|
||||
size_t count = 0;
|
||||
max = (size_t)sema->waitMany((LightweightSemaphore::ssize_t)(ssize_t)max);
|
||||
while (count != max) {
|
||||
count += inner.template try_dequeue_bulk<It&>(token, itemFirst, max - count);
|
||||
}
|
||||
return count;
|
||||
}
|
||||
|
||||
// Attempts to dequeue several elements from the queue using an explicit consumer token.
|
||||
// Returns the number of items actually dequeued, which can
|
||||
// be 0 if the timeout expires while waiting for elements,
|
||||
// and at most max.
|
||||
// Using a negative timeout indicates an indefinite timeout,
|
||||
// and is thus functionally equivalent to calling wait_dequeue_bulk.
|
||||
// Never allocates. Thread-safe.
|
||||
template<typename It>
|
||||
inline size_t wait_dequeue_bulk_timed(consumer_token_t& token, It itemFirst, size_t max, std::int64_t timeout_usecs)
|
||||
{
|
||||
size_t count = 0;
|
||||
max = (size_t)sema->waitMany((LightweightSemaphore::ssize_t)(ssize_t)max, timeout_usecs);
|
||||
while (count != max) {
|
||||
count += inner.template try_dequeue_bulk<It&>(token, itemFirst, max - count);
|
||||
}
|
||||
return count;
|
||||
}
|
||||
|
||||
// Attempts to dequeue several elements from the queue using an explicit consumer token.
|
||||
// Returns the number of items actually dequeued, which can
|
||||
// be 0 if the timeout expires while waiting for elements,
|
||||
// and at most max.
|
||||
// Never allocates. Thread-safe.
|
||||
template<typename It, typename Rep, typename Period>
|
||||
inline size_t wait_dequeue_bulk_timed(consumer_token_t& token, It itemFirst, size_t max, std::chrono::duration<Rep, Period> const& timeout)
|
||||
{
|
||||
return wait_dequeue_bulk_timed<It&>(token, itemFirst, max, std::chrono::duration_cast<std::chrono::microseconds>(timeout).count());
|
||||
}
|
||||
|
||||
|
||||
// Returns an estimate of the total number of elements currently in the queue. This
|
||||
// estimate is only accurate if the queue has completely stabilized before it is called
|
||||
// (i.e. all enqueue and dequeue operations have completed and their memory effects are
|
||||
// visible on the calling thread, and no further operations start while this method is
|
||||
// being called).
|
||||
// Thread-safe.
|
||||
inline size_t size_approx() const
|
||||
{
|
||||
return (size_t)sema->availableApprox();
|
||||
}
|
||||
|
||||
|
||||
// Returns true if the underlying atomic variables used by
|
||||
// the queue are lock-free (they should be on most platforms).
|
||||
// Thread-safe.
|
||||
static bool is_lock_free()
|
||||
{
|
||||
return ConcurrentQueue::is_lock_free();
|
||||
}
|
||||
|
||||
|
||||
private:
|
||||
template<typename U>
|
||||
static inline U* create()
|
||||
{
|
||||
auto p = (Traits::malloc)(sizeof(U));
|
||||
return p != nullptr ? new (p) U : nullptr;
|
||||
}
|
||||
|
||||
template<typename U, typename A1>
|
||||
static inline U* create(A1&& a1)
|
||||
{
|
||||
auto p = (Traits::malloc)(sizeof(U));
|
||||
return p != nullptr ? new (p) U(std::forward<A1>(a1)) : nullptr;
|
||||
}
|
||||
|
||||
template<typename U>
|
||||
static inline void destroy(U* p)
|
||||
{
|
||||
if (p != nullptr) {
|
||||
p->~U();
|
||||
}
|
||||
(Traits::free)(p);
|
||||
}
|
||||
|
||||
private:
|
||||
ConcurrentQueue inner;
|
||||
std::unique_ptr<LightweightSemaphore, void (*)(LightweightSemaphore*)> sema;
|
||||
};
|
||||
|
||||
|
||||
template<typename T, typename Traits>
|
||||
inline void swap(BlockingConcurrentQueue<T, Traits>& a, BlockingConcurrentQueue<T, Traits>& b) MOODYCAMEL_NOEXCEPT
|
||||
{
|
||||
a.swap(b);
|
||||
}
|
||||
|
||||
} // end namespace moodycamel
|
||||
3656
src/external/moodycamel/concurrentqueue.h
vendored
3656
src/external/moodycamel/concurrentqueue.h
vendored
File diff suppressed because it is too large
Load diff
412
src/external/moodycamel/lightweightsemaphore.h
vendored
412
src/external/moodycamel/lightweightsemaphore.h
vendored
|
|
@ -1,412 +0,0 @@
|
|||
// Provides an efficient implementation of a semaphore (LightweightSemaphore).
|
||||
// This is an extension of Jeff Preshing's sempahore implementation (licensed
|
||||
// under the terms of its separate zlib license) that has been adapted and
|
||||
// extended by Cameron Desrochers.
|
||||
|
||||
#pragma once
|
||||
|
||||
#include <cstddef> // For std::size_t
|
||||
#include <atomic>
|
||||
#include <type_traits> // For std::make_signed<T>
|
||||
|
||||
#if defined(_WIN32)
|
||||
// Avoid including windows.h in a header; we only need a handful of
|
||||
// items, so we'll redeclare them here (this is relatively safe since
|
||||
// the API generally has to remain stable between Windows versions).
|
||||
// I know this is an ugly hack but it still beats polluting the global
|
||||
// namespace with thousands of generic names or adding a .cpp for nothing.
|
||||
extern "C" {
|
||||
struct _SECURITY_ATTRIBUTES;
|
||||
__declspec(dllimport) void* __stdcall CreateSemaphoreW(_SECURITY_ATTRIBUTES* lpSemaphoreAttributes, long lInitialCount, long lMaximumCount, const wchar_t* lpName);
|
||||
__declspec(dllimport) int __stdcall CloseHandle(void* hObject);
|
||||
__declspec(dllimport) unsigned long __stdcall WaitForSingleObject(void* hHandle, unsigned long dwMilliseconds);
|
||||
__declspec(dllimport) int __stdcall ReleaseSemaphore(void* hSemaphore, long lReleaseCount, long* lpPreviousCount);
|
||||
}
|
||||
#elif defined(__MACH__)
|
||||
#include <mach/mach.h>
|
||||
#elif defined(__unix__)
|
||||
#include <semaphore.h>
|
||||
#endif
|
||||
|
||||
namespace moodycamel
|
||||
{
|
||||
namespace details
|
||||
{
|
||||
|
||||
// Code in the mpmc_sema namespace below is an adaptation of Jeff Preshing's
|
||||
// portable + lightweight semaphore implementations, originally from
|
||||
// https://github.com/preshing/cpp11-on-multicore/blob/master/common/sema.h
|
||||
// LICENSE:
|
||||
// Copyright (c) 2015 Jeff Preshing
|
||||
//
|
||||
// This software is provided 'as-is', without any express or implied
|
||||
// warranty. In no event will the authors be held liable for any damages
|
||||
// arising from the use of this software.
|
||||
//
|
||||
// Permission is granted to anyone to use this software for any purpose,
|
||||
// including commercial applications, and to alter it and redistribute it
|
||||
// freely, subject to the following restrictions:
|
||||
//
|
||||
// 1. The origin of this software must not be misrepresented; you must not
|
||||
// claim that you wrote the original software. If you use this software
|
||||
// in a product, an acknowledgement in the product documentation would be
|
||||
// appreciated but is not required.
|
||||
// 2. Altered source versions must be plainly marked as such, and must not be
|
||||
// misrepresented as being the original software.
|
||||
// 3. This notice may not be removed or altered from any source distribution.
|
||||
#if defined(_WIN32)
|
||||
class Semaphore
|
||||
{
|
||||
private:
|
||||
void* m_hSema;
|
||||
|
||||
Semaphore(const Semaphore& other) MOODYCAMEL_DELETE_FUNCTION;
|
||||
Semaphore& operator=(const Semaphore& other) MOODYCAMEL_DELETE_FUNCTION;
|
||||
|
||||
public:
|
||||
Semaphore(int initialCount = 0)
|
||||
{
|
||||
assert(initialCount >= 0);
|
||||
const long maxLong = 0x7fffffff;
|
||||
m_hSema = CreateSemaphoreW(nullptr, initialCount, maxLong, nullptr);
|
||||
assert(m_hSema);
|
||||
}
|
||||
|
||||
~Semaphore()
|
||||
{
|
||||
CloseHandle(m_hSema);
|
||||
}
|
||||
|
||||
bool wait()
|
||||
{
|
||||
const unsigned long infinite = 0xffffffff;
|
||||
return WaitForSingleObject(m_hSema, infinite) == 0;
|
||||
}
|
||||
|
||||
bool try_wait()
|
||||
{
|
||||
return WaitForSingleObject(m_hSema, 0) == 0;
|
||||
}
|
||||
|
||||
bool timed_wait(std::uint64_t usecs)
|
||||
{
|
||||
return WaitForSingleObject(m_hSema, (unsigned long)(usecs / 1000)) == 0;
|
||||
}
|
||||
|
||||
void signal(int count = 1)
|
||||
{
|
||||
while (!ReleaseSemaphore(m_hSema, count, nullptr));
|
||||
}
|
||||
};
|
||||
#elif defined(__MACH__)
|
||||
//---------------------------------------------------------
|
||||
// Semaphore (Apple iOS and OSX)
|
||||
// Can't use POSIX semaphores due to http://lists.apple.com/archives/darwin-kernel/2009/Apr/msg00010.html
|
||||
//---------------------------------------------------------
|
||||
class Semaphore
|
||||
{
|
||||
private:
|
||||
semaphore_t m_sema;
|
||||
|
||||
Semaphore(const Semaphore& other) MOODYCAMEL_DELETE_FUNCTION;
|
||||
Semaphore& operator=(const Semaphore& other) MOODYCAMEL_DELETE_FUNCTION;
|
||||
|
||||
public:
|
||||
Semaphore(int initialCount = 0)
|
||||
{
|
||||
assert(initialCount >= 0);
|
||||
kern_return_t rc = semaphore_create(mach_task_self(), &m_sema, SYNC_POLICY_FIFO, initialCount);
|
||||
assert(rc == KERN_SUCCESS);
|
||||
}
|
||||
|
||||
~Semaphore()
|
||||
{
|
||||
semaphore_destroy(mach_task_self(), m_sema);
|
||||
}
|
||||
|
||||
bool wait()
|
||||
{
|
||||
return semaphore_wait(m_sema) == KERN_SUCCESS;
|
||||
}
|
||||
|
||||
bool try_wait()
|
||||
{
|
||||
return timed_wait(0);
|
||||
}
|
||||
|
||||
bool timed_wait(std::uint64_t timeout_usecs)
|
||||
{
|
||||
mach_timespec_t ts;
|
||||
ts.tv_sec = static_cast<unsigned int>(timeout_usecs / 1000000);
|
||||
ts.tv_nsec = (timeout_usecs % 1000000) * 1000;
|
||||
|
||||
// added in OSX 10.10: https://developer.apple.com/library/prerelease/mac/documentation/General/Reference/APIDiffsMacOSX10_10SeedDiff/modules/Darwin.html
|
||||
kern_return_t rc = semaphore_timedwait(m_sema, ts);
|
||||
return rc == KERN_SUCCESS;
|
||||
}
|
||||
|
||||
void signal()
|
||||
{
|
||||
while (semaphore_signal(m_sema) != KERN_SUCCESS);
|
||||
}
|
||||
|
||||
void signal(int count)
|
||||
{
|
||||
while (count-- > 0)
|
||||
{
|
||||
while (semaphore_signal(m_sema) != KERN_SUCCESS);
|
||||
}
|
||||
}
|
||||
};
|
||||
#elif defined(__unix__)
|
||||
//---------------------------------------------------------
|
||||
// Semaphore (POSIX, Linux)
|
||||
//---------------------------------------------------------
|
||||
class Semaphore
|
||||
{
|
||||
private:
|
||||
sem_t m_sema;
|
||||
|
||||
Semaphore(const Semaphore& other) MOODYCAMEL_DELETE_FUNCTION;
|
||||
Semaphore& operator=(const Semaphore& other) MOODYCAMEL_DELETE_FUNCTION;
|
||||
|
||||
public:
|
||||
Semaphore(int initialCount = 0)
|
||||
{
|
||||
assert(initialCount >= 0);
|
||||
int rc = sem_init(&m_sema, 0, initialCount);
|
||||
assert(rc == 0);
|
||||
}
|
||||
|
||||
~Semaphore()
|
||||
{
|
||||
sem_destroy(&m_sema);
|
||||
}
|
||||
|
||||
bool wait()
|
||||
{
|
||||
// http://stackoverflow.com/questions/2013181/gdb-causes-sem-wait-to-fail-with-eintr-error
|
||||
int rc;
|
||||
do {
|
||||
rc = sem_wait(&m_sema);
|
||||
} while (rc == -1 && errno == EINTR);
|
||||
return rc == 0;
|
||||
}
|
||||
|
||||
bool try_wait()
|
||||
{
|
||||
int rc;
|
||||
do {
|
||||
rc = sem_trywait(&m_sema);
|
||||
} while (rc == -1 && errno == EINTR);
|
||||
return rc == 0;
|
||||
}
|
||||
|
||||
bool timed_wait(std::uint64_t usecs)
|
||||
{
|
||||
struct timespec ts;
|
||||
const int usecs_in_1_sec = 1000000;
|
||||
const int nsecs_in_1_sec = 1000000000;
|
||||
clock_gettime(CLOCK_REALTIME, &ts);
|
||||
ts.tv_sec += usecs / usecs_in_1_sec;
|
||||
ts.tv_nsec += (usecs % usecs_in_1_sec) * 1000;
|
||||
// sem_timedwait bombs if you have more than 1e9 in tv_nsec
|
||||
// so we have to clean things up before passing it in
|
||||
if (ts.tv_nsec >= nsecs_in_1_sec) {
|
||||
ts.tv_nsec -= nsecs_in_1_sec;
|
||||
++ts.tv_sec;
|
||||
}
|
||||
|
||||
int rc;
|
||||
do {
|
||||
rc = sem_timedwait(&m_sema, &ts);
|
||||
} while (rc == -1 && errno == EINTR);
|
||||
return rc == 0;
|
||||
}
|
||||
|
||||
void signal()
|
||||
{
|
||||
while (sem_post(&m_sema) == -1);
|
||||
}
|
||||
|
||||
void signal(int count)
|
||||
{
|
||||
while (count-- > 0)
|
||||
{
|
||||
while (sem_post(&m_sema) == -1);
|
||||
}
|
||||
}
|
||||
};
|
||||
#else
|
||||
#error Unsupported platform! (No semaphore wrapper available)
|
||||
#endif
|
||||
|
||||
} // end namespace details
|
||||
|
||||
|
||||
//---------------------------------------------------------
|
||||
// LightweightSemaphore
|
||||
//---------------------------------------------------------
|
||||
class LightweightSemaphore
|
||||
{
|
||||
public:
|
||||
typedef std::make_signed<std::size_t>::type ssize_t;
|
||||
|
||||
private:
|
||||
std::atomic<ssize_t> m_count;
|
||||
details::Semaphore m_sema;
|
||||
|
||||
bool waitWithPartialSpinning(std::int64_t timeout_usecs = -1)
|
||||
{
|
||||
ssize_t oldCount;
|
||||
// Is there a better way to set the initial spin count?
|
||||
// If we lower it to 1000, testBenaphore becomes 15x slower on my Core i7-5930K Windows PC,
|
||||
// as threads start hitting the kernel semaphore.
|
||||
int spin = 10000;
|
||||
while (--spin >= 0)
|
||||
{
|
||||
oldCount = m_count.load(std::memory_order_relaxed);
|
||||
if ((oldCount > 0) && m_count.compare_exchange_strong(oldCount, oldCount - 1, std::memory_order_acquire, std::memory_order_relaxed))
|
||||
return true;
|
||||
std::atomic_signal_fence(std::memory_order_acquire); // Prevent the compiler from collapsing the loop.
|
||||
}
|
||||
oldCount = m_count.fetch_sub(1, std::memory_order_acquire);
|
||||
if (oldCount > 0)
|
||||
return true;
|
||||
if (timeout_usecs < 0)
|
||||
return m_sema.wait();
|
||||
if (m_sema.timed_wait((std::uint64_t)timeout_usecs))
|
||||
return true;
|
||||
// At this point, we've timed out waiting for the semaphore, but the
|
||||
// count is still decremented indicating we may still be waiting on
|
||||
// it. So we have to re-adjust the count, but only if the semaphore
|
||||
// wasn't signaled enough times for us too since then. If it was, we
|
||||
// need to release the semaphore too.
|
||||
while (true)
|
||||
{
|
||||
oldCount = m_count.load(std::memory_order_acquire);
|
||||
if (oldCount >= 0 && m_sema.try_wait())
|
||||
return true;
|
||||
if (oldCount < 0 && m_count.compare_exchange_strong(oldCount, oldCount + 1, std::memory_order_relaxed, std::memory_order_relaxed))
|
||||
return false;
|
||||
}
|
||||
}
|
||||
|
||||
ssize_t waitManyWithPartialSpinning(ssize_t max, std::int64_t timeout_usecs = -1)
|
||||
{
|
||||
assert(max > 0);
|
||||
ssize_t oldCount;
|
||||
int spin = 10000;
|
||||
while (--spin >= 0)
|
||||
{
|
||||
oldCount = m_count.load(std::memory_order_relaxed);
|
||||
if (oldCount > 0)
|
||||
{
|
||||
ssize_t newCount = oldCount > max ? oldCount - max : 0;
|
||||
if (m_count.compare_exchange_strong(oldCount, newCount, std::memory_order_acquire, std::memory_order_relaxed))
|
||||
return oldCount - newCount;
|
||||
}
|
||||
std::atomic_signal_fence(std::memory_order_acquire);
|
||||
}
|
||||
oldCount = m_count.fetch_sub(1, std::memory_order_acquire);
|
||||
if (oldCount <= 0)
|
||||
{
|
||||
if (timeout_usecs < 0)
|
||||
{
|
||||
if (!m_sema.wait())
|
||||
return 0;
|
||||
}
|
||||
else if (!m_sema.timed_wait((std::uint64_t)timeout_usecs))
|
||||
{
|
||||
while (true)
|
||||
{
|
||||
oldCount = m_count.load(std::memory_order_acquire);
|
||||
if (oldCount >= 0 && m_sema.try_wait())
|
||||
break;
|
||||
if (oldCount < 0 && m_count.compare_exchange_strong(oldCount, oldCount + 1, std::memory_order_relaxed, std::memory_order_relaxed))
|
||||
return 0;
|
||||
}
|
||||
}
|
||||
}
|
||||
if (max > 1)
|
||||
return 1 + tryWaitMany(max - 1);
|
||||
return 1;
|
||||
}
|
||||
|
||||
public:
|
||||
LightweightSemaphore(ssize_t initialCount = 0) : m_count(initialCount)
|
||||
{
|
||||
assert(initialCount >= 0);
|
||||
}
|
||||
|
||||
bool tryWait()
|
||||
{
|
||||
ssize_t oldCount = m_count.load(std::memory_order_relaxed);
|
||||
while (oldCount > 0)
|
||||
{
|
||||
if (m_count.compare_exchange_weak(oldCount, oldCount - 1, std::memory_order_acquire, std::memory_order_relaxed))
|
||||
return true;
|
||||
}
|
||||
return false;
|
||||
}
|
||||
|
||||
bool wait()
|
||||
{
|
||||
return tryWait() || waitWithPartialSpinning();
|
||||
}
|
||||
|
||||
bool wait(std::int64_t timeout_usecs)
|
||||
{
|
||||
return tryWait() || waitWithPartialSpinning(timeout_usecs);
|
||||
}
|
||||
|
||||
// Acquires between 0 and (greedily) max, inclusive
|
||||
ssize_t tryWaitMany(ssize_t max)
|
||||
{
|
||||
assert(max >= 0);
|
||||
ssize_t oldCount = m_count.load(std::memory_order_relaxed);
|
||||
while (oldCount > 0)
|
||||
{
|
||||
ssize_t newCount = oldCount > max ? oldCount - max : 0;
|
||||
if (m_count.compare_exchange_weak(oldCount, newCount, std::memory_order_acquire, std::memory_order_relaxed))
|
||||
return oldCount - newCount;
|
||||
}
|
||||
return 0;
|
||||
}
|
||||
|
||||
// Acquires at least one, and (greedily) at most max
|
||||
ssize_t waitMany(ssize_t max, std::int64_t timeout_usecs)
|
||||
{
|
||||
assert(max >= 0);
|
||||
ssize_t result = tryWaitMany(max);
|
||||
if (result == 0 && max > 0)
|
||||
result = waitManyWithPartialSpinning(max, timeout_usecs);
|
||||
return result;
|
||||
}
|
||||
|
||||
ssize_t waitMany(ssize_t max)
|
||||
{
|
||||
ssize_t result = waitMany(max, -1);
|
||||
assert(result > 0);
|
||||
return result;
|
||||
}
|
||||
|
||||
void signal(ssize_t count = 1)
|
||||
{
|
||||
assert(count >= 0);
|
||||
ssize_t oldCount = m_count.fetch_add(count, std::memory_order_release);
|
||||
ssize_t toRelease = -oldCount < count ? -oldCount : count;
|
||||
if (toRelease > 0)
|
||||
{
|
||||
m_sema.signal((int)toRelease);
|
||||
}
|
||||
}
|
||||
|
||||
ssize_t availableApprox() const
|
||||
{
|
||||
ssize_t count = m_count.load(std::memory_order_relaxed);
|
||||
return count > 0 ? count : 0;
|
||||
}
|
||||
};
|
||||
|
||||
} // end namespace moodycamel
|
||||
906
src/external/moodycamel/readerwriterqueue.h
vendored
906
src/external/moodycamel/readerwriterqueue.h
vendored
|
|
@ -1,906 +0,0 @@
|
|||
// ©2013-2016 Cameron Desrochers.
|
||||
// Distributed under the simplified BSD license (see the license file that
|
||||
// should have come with this header).
|
||||
|
||||
#pragma once
|
||||
|
||||
#include "atomicops.h"
|
||||
#include <type_traits>
|
||||
#include <utility>
|
||||
#include <cassert>
|
||||
#include <stdexcept>
|
||||
#include <new>
|
||||
#include <cstdint>
|
||||
#include <cstdlib> // For malloc/free/abort & size_t
|
||||
#include <memory>
|
||||
#if __cplusplus > 199711L || _MSC_VER >= 1700 // C++11 or VS2012
|
||||
#include <chrono>
|
||||
#endif
|
||||
|
||||
|
||||
// A lock-free queue for a single-consumer, single-producer architecture.
|
||||
// The queue is also wait-free in the common path (except if more memory
|
||||
// needs to be allocated, in which case malloc is called).
|
||||
// Allocates memory sparingly (O(lg(n) times, amortized), and only once if
|
||||
// the original maximum size estimate is never exceeded.
|
||||
// Tested on x86/x64 processors, but semantics should be correct for all
|
||||
// architectures (given the right implementations in atomicops.h), provided
|
||||
// that aligned integer and pointer accesses are naturally atomic.
|
||||
// Note that there should only be one consumer thread and producer thread;
|
||||
// Switching roles of the threads, or using multiple consecutive threads for
|
||||
// one role, is not safe unless properly synchronized.
|
||||
// Using the queue exclusively from one thread is fine, though a bit silly.
|
||||
|
||||
#ifndef MOODYCAMEL_CACHE_LINE_SIZE
|
||||
#define MOODYCAMEL_CACHE_LINE_SIZE 64
|
||||
#endif
|
||||
|
||||
#ifndef MOODYCAMEL_EXCEPTIONS_ENABLED
|
||||
#if (defined(_MSC_VER) && defined(_CPPUNWIND)) || (defined(__GNUC__) && defined(__EXCEPTIONS)) || (!defined(_MSC_VER) && !defined(__GNUC__))
|
||||
#define MOODYCAMEL_EXCEPTIONS_ENABLED
|
||||
#endif
|
||||
#endif
|
||||
|
||||
#ifndef MOODYCAMEL_HAS_EMPLACE
|
||||
#if !defined(_MSC_VER) || _MSC_VER >= 1800 // variadic templates: either a non-MS compiler or VS >= 2013
|
||||
#define MOODYCAMEL_HAS_EMPLACE 1
|
||||
#endif
|
||||
#endif
|
||||
|
||||
#ifdef AE_VCPP
|
||||
#pragma warning(push)
|
||||
#pragma warning(disable: 4324) // structure was padded due to __declspec(align())
|
||||
#pragma warning(disable: 4820) // padding was added
|
||||
#pragma warning(disable: 4127) // conditional expression is constant
|
||||
#endif
|
||||
|
||||
namespace moodycamel {
|
||||
|
||||
template<typename T, size_t MAX_BLOCK_SIZE = 512>
|
||||
class ReaderWriterQueue
|
||||
{
|
||||
// Design: Based on a queue-of-queues. The low-level queues are just
|
||||
// circular buffers with front and tail indices indicating where the
|
||||
// next element to dequeue is and where the next element can be enqueued,
|
||||
// respectively. Each low-level queue is called a "block". Each block
|
||||
// wastes exactly one element's worth of space to keep the design simple
|
||||
// (if front == tail then the queue is empty, and can't be full).
|
||||
// The high-level queue is a circular linked list of blocks; again there
|
||||
// is a front and tail, but this time they are pointers to the blocks.
|
||||
// The front block is where the next element to be dequeued is, provided
|
||||
// the block is not empty. The back block is where elements are to be
|
||||
// enqueued, provided the block is not full.
|
||||
// The producer thread owns all the tail indices/pointers. The consumer
|
||||
// thread owns all the front indices/pointers. Both threads read each
|
||||
// other's variables, but only the owning thread updates them. E.g. After
|
||||
// the consumer reads the producer's tail, the tail may change before the
|
||||
// consumer is done dequeuing an object, but the consumer knows the tail
|
||||
// will never go backwards, only forwards.
|
||||
// If there is no room to enqueue an object, an additional block (of
|
||||
// equal size to the last block) is added. Blocks are never removed.
|
||||
|
||||
public:
|
||||
typedef T value_type;
|
||||
|
||||
// Constructs a queue that can hold maxSize elements without further
|
||||
// allocations. If more than MAX_BLOCK_SIZE elements are requested,
|
||||
// then several blocks of MAX_BLOCK_SIZE each are reserved (including
|
||||
// at least one extra buffer block).
|
||||
AE_NO_TSAN explicit ReaderWriterQueue(size_t maxSize = 15)
|
||||
#ifndef NDEBUG
|
||||
: enqueuing(false)
|
||||
,dequeuing(false)
|
||||
#endif
|
||||
{
|
||||
assert(maxSize > 0);
|
||||
assert(MAX_BLOCK_SIZE == ceilToPow2(MAX_BLOCK_SIZE) && "MAX_BLOCK_SIZE must be a power of 2");
|
||||
assert(MAX_BLOCK_SIZE >= 2 && "MAX_BLOCK_SIZE must be at least 2");
|
||||
|
||||
Block* firstBlock = nullptr;
|
||||
|
||||
largestBlockSize = ceilToPow2(maxSize + 1); // We need a spare slot to fit maxSize elements in the block
|
||||
if (largestBlockSize > MAX_BLOCK_SIZE * 2) {
|
||||
// We need a spare block in case the producer is writing to a different block the consumer is reading from, and
|
||||
// wants to enqueue the maximum number of elements. We also need a spare element in each block to avoid the ambiguity
|
||||
// between front == tail meaning "empty" and "full".
|
||||
// So the effective number of slots that are guaranteed to be usable at any time is the block size - 1 times the
|
||||
// number of blocks - 1. Solving for maxSize and applying a ceiling to the division gives us (after simplifying):
|
||||
size_t initialBlockCount = (maxSize + MAX_BLOCK_SIZE * 2 - 3) / (MAX_BLOCK_SIZE - 1);
|
||||
largestBlockSize = MAX_BLOCK_SIZE;
|
||||
Block* lastBlock = nullptr;
|
||||
for (size_t i = 0; i != initialBlockCount; ++i) {
|
||||
auto block = make_block(largestBlockSize);
|
||||
if (block == nullptr) {
|
||||
#ifdef MOODYCAMEL_EXCEPTIONS_ENABLED
|
||||
throw std::bad_alloc();
|
||||
#else
|
||||
abort();
|
||||
#endif
|
||||
}
|
||||
if (firstBlock == nullptr) {
|
||||
firstBlock = block;
|
||||
}
|
||||
else {
|
||||
lastBlock->next = block;
|
||||
}
|
||||
lastBlock = block;
|
||||
block->next = firstBlock;
|
||||
}
|
||||
}
|
||||
else {
|
||||
firstBlock = make_block(largestBlockSize);
|
||||
if (firstBlock == nullptr) {
|
||||
#ifdef MOODYCAMEL_EXCEPTIONS_ENABLED
|
||||
throw std::bad_alloc();
|
||||
#else
|
||||
abort();
|
||||
#endif
|
||||
}
|
||||
firstBlock->next = firstBlock;
|
||||
}
|
||||
frontBlock = firstBlock;
|
||||
tailBlock = firstBlock;
|
||||
|
||||
// Make sure the reader/writer threads will have the initialized memory setup above:
|
||||
fence(memory_order_sync);
|
||||
}
|
||||
|
||||
// Note: The queue should not be accessed concurrently while it's
|
||||
// being moved. It's up to the user to synchronize this.
|
||||
AE_NO_TSAN ReaderWriterQueue(ReaderWriterQueue&& other)
|
||||
: frontBlock(other.frontBlock.load()),
|
||||
tailBlock(other.tailBlock.load()),
|
||||
largestBlockSize(other.largestBlockSize)
|
||||
#ifndef NDEBUG
|
||||
,enqueuing(false)
|
||||
,dequeuing(false)
|
||||
#endif
|
||||
{
|
||||
other.largestBlockSize = 32;
|
||||
Block* b = other.make_block(other.largestBlockSize);
|
||||
if (b == nullptr) {
|
||||
#ifdef MOODYCAMEL_EXCEPTIONS_ENABLED
|
||||
throw std::bad_alloc();
|
||||
#else
|
||||
abort();
|
||||
#endif
|
||||
}
|
||||
b->next = b;
|
||||
other.frontBlock = b;
|
||||
other.tailBlock = b;
|
||||
}
|
||||
|
||||
// Note: The queue should not be accessed concurrently while it's
|
||||
// being moved. It's up to the user to synchronize this.
|
||||
ReaderWriterQueue& operator=(ReaderWriterQueue&& other) AE_NO_TSAN
|
||||
{
|
||||
Block* b = frontBlock.load();
|
||||
frontBlock = other.frontBlock.load();
|
||||
other.frontBlock = b;
|
||||
b = tailBlock.load();
|
||||
tailBlock = other.tailBlock.load();
|
||||
other.tailBlock = b;
|
||||
std::swap(largestBlockSize, other.largestBlockSize);
|
||||
return *this;
|
||||
}
|
||||
|
||||
// Note: The queue should not be accessed concurrently while it's
|
||||
// being deleted. It's up to the user to synchronize this.
|
||||
AE_NO_TSAN ~ReaderWriterQueue()
|
||||
{
|
||||
// Make sure we get the latest version of all variables from other CPUs:
|
||||
fence(memory_order_sync);
|
||||
|
||||
// Destroy any remaining objects in queue and free memory
|
||||
Block* frontBlock_ = frontBlock;
|
||||
Block* block = frontBlock_;
|
||||
do {
|
||||
Block* nextBlock = block->next;
|
||||
size_t blockFront = block->front;
|
||||
size_t blockTail = block->tail;
|
||||
|
||||
for (size_t i = blockFront; i != blockTail; i = (i + 1) & block->sizeMask) {
|
||||
auto element = reinterpret_cast<T*>(block->data + i * sizeof(T));
|
||||
element->~T();
|
||||
(void)element;
|
||||
}
|
||||
|
||||
auto rawBlock = block->rawThis;
|
||||
block->~Block();
|
||||
std::free(rawBlock);
|
||||
block = nextBlock;
|
||||
} while (block != frontBlock_);
|
||||
}
|
||||
|
||||
|
||||
// Enqueues a copy of element if there is room in the queue.
|
||||
// Returns true if the element was enqueued, false otherwise.
|
||||
// Does not allocate memory.
|
||||
AE_FORCEINLINE bool try_enqueue(T const& element) AE_NO_TSAN
|
||||
{
|
||||
return inner_enqueue<CannotAlloc>(element);
|
||||
}
|
||||
|
||||
// Enqueues a moved copy of element if there is room in the queue.
|
||||
// Returns true if the element was enqueued, false otherwise.
|
||||
// Does not allocate memory.
|
||||
AE_FORCEINLINE bool try_enqueue(T&& element) AE_NO_TSAN
|
||||
{
|
||||
return inner_enqueue<CannotAlloc>(std::forward<T>(element));
|
||||
}
|
||||
|
||||
#if MOODYCAMEL_HAS_EMPLACE
|
||||
// Like try_enqueue() but with emplace semantics (i.e. construct-in-place).
|
||||
template<typename... Args>
|
||||
AE_FORCEINLINE bool try_emplace(Args&&... args) AE_NO_TSAN
|
||||
{
|
||||
return inner_enqueue<CannotAlloc>(std::forward<Args>(args)...);
|
||||
}
|
||||
#endif
|
||||
|
||||
// Enqueues a copy of element on the queue.
|
||||
// Allocates an additional block of memory if needed.
|
||||
// Only fails (returns false) if memory allocation fails.
|
||||
AE_FORCEINLINE bool enqueue(T const& element) AE_NO_TSAN
|
||||
{
|
||||
return inner_enqueue<CanAlloc>(element);
|
||||
}
|
||||
|
||||
// Enqueues a moved copy of element on the queue.
|
||||
// Allocates an additional block of memory if needed.
|
||||
// Only fails (returns false) if memory allocation fails.
|
||||
AE_FORCEINLINE bool enqueue(T&& element) AE_NO_TSAN
|
||||
{
|
||||
return inner_enqueue<CanAlloc>(std::forward<T>(element));
|
||||
}
|
||||
|
||||
#if MOODYCAMEL_HAS_EMPLACE
|
||||
// Like enqueue() but with emplace semantics (i.e. construct-in-place).
|
||||
template<typename... Args>
|
||||
AE_FORCEINLINE bool emplace(Args&&... args) AE_NO_TSAN
|
||||
{
|
||||
return inner_enqueue<CanAlloc>(std::forward<Args>(args)...);
|
||||
}
|
||||
#endif
|
||||
|
||||
// Attempts to dequeue an element; if the queue is empty,
|
||||
// returns false instead. If the queue has at least one element,
|
||||
// moves front to result using operator=, then returns true.
|
||||
template<typename U>
|
||||
bool try_dequeue(U& result) AE_NO_TSAN
|
||||
{
|
||||
#ifndef NDEBUG
|
||||
ReentrantGuard guard(this->dequeuing);
|
||||
#endif
|
||||
|
||||
// High-level pseudocode:
|
||||
// Remember where the tail block is
|
||||
// If the front block has an element in it, dequeue it
|
||||
// Else
|
||||
// If front block was the tail block when we entered the function, return false
|
||||
// Else advance to next block and dequeue the item there
|
||||
|
||||
// Note that we have to use the value of the tail block from before we check if the front
|
||||
// block is full or not, in case the front block is empty and then, before we check if the
|
||||
// tail block is at the front block or not, the producer fills up the front block *and
|
||||
// moves on*, which would make us skip a filled block. Seems unlikely, but was consistently
|
||||
// reproducible in practice.
|
||||
// In order to avoid overhead in the common case, though, we do a double-checked pattern
|
||||
// where we have the fast path if the front block is not empty, then read the tail block,
|
||||
// then re-read the front block and check if it's not empty again, then check if the tail
|
||||
// block has advanced.
|
||||
|
||||
Block* frontBlock_ = frontBlock.load();
|
||||
size_t blockTail = frontBlock_->localTail;
|
||||
size_t blockFront = frontBlock_->front.load();
|
||||
|
||||
if (blockFront != blockTail || blockFront != (frontBlock_->localTail = frontBlock_->tail.load())) {
|
||||
fence(memory_order_acquire);
|
||||
|
||||
non_empty_front_block:
|
||||
// Front block not empty, dequeue from here
|
||||
auto element = reinterpret_cast<T*>(frontBlock_->data + blockFront * sizeof(T));
|
||||
result = std::move(*element);
|
||||
element->~T();
|
||||
|
||||
blockFront = (blockFront + 1) & frontBlock_->sizeMask;
|
||||
|
||||
fence(memory_order_release);
|
||||
frontBlock_->front = blockFront;
|
||||
}
|
||||
else if (frontBlock_ != tailBlock.load()) {
|
||||
fence(memory_order_acquire);
|
||||
|
||||
frontBlock_ = frontBlock.load();
|
||||
blockTail = frontBlock_->localTail = frontBlock_->tail.load();
|
||||
blockFront = frontBlock_->front.load();
|
||||
fence(memory_order_acquire);
|
||||
|
||||
if (blockFront != blockTail) {
|
||||
// Oh look, the front block isn't empty after all
|
||||
goto non_empty_front_block;
|
||||
}
|
||||
|
||||
// Front block is empty but there's another block ahead, advance to it
|
||||
Block* nextBlock = frontBlock_->next;
|
||||
// Don't need an acquire fence here since next can only ever be set on the tailBlock,
|
||||
// and we're not the tailBlock, and we did an acquire earlier after reading tailBlock which
|
||||
// ensures next is up-to-date on this CPU in case we recently were at tailBlock.
|
||||
|
||||
size_t nextBlockFront = nextBlock->front.load();
|
||||
size_t nextBlockTail = nextBlock->localTail = nextBlock->tail.load();
|
||||
fence(memory_order_acquire);
|
||||
|
||||
// Since the tailBlock is only ever advanced after being written to,
|
||||
// we know there's for sure an element to dequeue on it
|
||||
assert(nextBlockFront != nextBlockTail);
|
||||
AE_UNUSED(nextBlockTail);
|
||||
|
||||
// We're done with this block, let the producer use it if it needs
|
||||
fence(memory_order_release); // Expose possibly pending changes to frontBlock->front from last dequeue
|
||||
frontBlock = frontBlock_ = nextBlock;
|
||||
|
||||
compiler_fence(memory_order_release); // Not strictly needed
|
||||
|
||||
auto element = reinterpret_cast<T*>(frontBlock_->data + nextBlockFront * sizeof(T));
|
||||
|
||||
result = std::move(*element);
|
||||
element->~T();
|
||||
|
||||
nextBlockFront = (nextBlockFront + 1) & frontBlock_->sizeMask;
|
||||
|
||||
fence(memory_order_release);
|
||||
frontBlock_->front = nextBlockFront;
|
||||
}
|
||||
else {
|
||||
// No elements in current block and no other block to advance to
|
||||
return false;
|
||||
}
|
||||
|
||||
return true;
|
||||
}
|
||||
|
||||
|
||||
// Returns a pointer to the front element in the queue (the one that
|
||||
// would be removed next by a call to `try_dequeue` or `pop`). If the
|
||||
// queue appears empty at the time the method is called, nullptr is
|
||||
// returned instead.
|
||||
// Must be called only from the consumer thread.
|
||||
T* peek() AE_NO_TSAN
|
||||
{
|
||||
#ifndef NDEBUG
|
||||
ReentrantGuard guard(this->dequeuing);
|
||||
#endif
|
||||
// See try_dequeue() for reasoning
|
||||
|
||||
Block* frontBlock_ = frontBlock.load();
|
||||
size_t blockTail = frontBlock_->localTail;
|
||||
size_t blockFront = frontBlock_->front.load();
|
||||
|
||||
if (blockFront != blockTail || blockFront != (frontBlock_->localTail = frontBlock_->tail.load())) {
|
||||
fence(memory_order_acquire);
|
||||
non_empty_front_block:
|
||||
return reinterpret_cast<T*>(frontBlock_->data + blockFront * sizeof(T));
|
||||
}
|
||||
else if (frontBlock_ != tailBlock.load()) {
|
||||
fence(memory_order_acquire);
|
||||
frontBlock_ = frontBlock.load();
|
||||
blockTail = frontBlock_->localTail = frontBlock_->tail.load();
|
||||
blockFront = frontBlock_->front.load();
|
||||
fence(memory_order_acquire);
|
||||
|
||||
if (blockFront != blockTail) {
|
||||
goto non_empty_front_block;
|
||||
}
|
||||
|
||||
Block* nextBlock = frontBlock_->next;
|
||||
|
||||
size_t nextBlockFront = nextBlock->front.load();
|
||||
fence(memory_order_acquire);
|
||||
|
||||
assert(nextBlockFront != nextBlock->tail.load());
|
||||
return reinterpret_cast<T*>(nextBlock->data + nextBlockFront * sizeof(T));
|
||||
}
|
||||
|
||||
return nullptr;
|
||||
}
|
||||
|
||||
// Removes the front element from the queue, if any, without returning it.
|
||||
// Returns true on success, or false if the queue appeared empty at the time
|
||||
// `pop` was called.
|
||||
bool pop() AE_NO_TSAN
|
||||
{
|
||||
#ifndef NDEBUG
|
||||
ReentrantGuard guard(this->dequeuing);
|
||||
#endif
|
||||
// See try_dequeue() for reasoning
|
||||
|
||||
Block* frontBlock_ = frontBlock.load();
|
||||
size_t blockTail = frontBlock_->localTail;
|
||||
size_t blockFront = frontBlock_->front.load();
|
||||
|
||||
if (blockFront != blockTail || blockFront != (frontBlock_->localTail = frontBlock_->tail.load())) {
|
||||
fence(memory_order_acquire);
|
||||
|
||||
non_empty_front_block:
|
||||
auto element = reinterpret_cast<T*>(frontBlock_->data + blockFront * sizeof(T));
|
||||
element->~T();
|
||||
|
||||
blockFront = (blockFront + 1) & frontBlock_->sizeMask;
|
||||
|
||||
fence(memory_order_release);
|
||||
frontBlock_->front = blockFront;
|
||||
}
|
||||
else if (frontBlock_ != tailBlock.load()) {
|
||||
fence(memory_order_acquire);
|
||||
frontBlock_ = frontBlock.load();
|
||||
blockTail = frontBlock_->localTail = frontBlock_->tail.load();
|
||||
blockFront = frontBlock_->front.load();
|
||||
fence(memory_order_acquire);
|
||||
|
||||
if (blockFront != blockTail) {
|
||||
goto non_empty_front_block;
|
||||
}
|
||||
|
||||
// Front block is empty but there's another block ahead, advance to it
|
||||
Block* nextBlock = frontBlock_->next;
|
||||
|
||||
size_t nextBlockFront = nextBlock->front.load();
|
||||
size_t nextBlockTail = nextBlock->localTail = nextBlock->tail.load();
|
||||
fence(memory_order_acquire);
|
||||
|
||||
assert(nextBlockFront != nextBlockTail);
|
||||
AE_UNUSED(nextBlockTail);
|
||||
|
||||
fence(memory_order_release);
|
||||
frontBlock = frontBlock_ = nextBlock;
|
||||
|
||||
compiler_fence(memory_order_release);
|
||||
|
||||
auto element = reinterpret_cast<T*>(frontBlock_->data + nextBlockFront * sizeof(T));
|
||||
element->~T();
|
||||
|
||||
nextBlockFront = (nextBlockFront + 1) & frontBlock_->sizeMask;
|
||||
|
||||
fence(memory_order_release);
|
||||
frontBlock_->front = nextBlockFront;
|
||||
}
|
||||
else {
|
||||
// No elements in current block and no other block to advance to
|
||||
return false;
|
||||
}
|
||||
|
||||
return true;
|
||||
}
|
||||
|
||||
// Returns the approximate number of items currently in the queue.
|
||||
// Safe to call from both the producer and consumer threads.
|
||||
inline size_t size_approx() const AE_NO_TSAN
|
||||
{
|
||||
size_t result = 0;
|
||||
Block* frontBlock_ = frontBlock.load();
|
||||
Block* block = frontBlock_;
|
||||
do {
|
||||
fence(memory_order_acquire);
|
||||
size_t blockFront = block->front.load();
|
||||
size_t blockTail = block->tail.load();
|
||||
result += (blockTail - blockFront) & block->sizeMask;
|
||||
block = block->next.load();
|
||||
} while (block != frontBlock_);
|
||||
return result;
|
||||
}
|
||||
|
||||
|
||||
private:
|
||||
enum AllocationMode { CanAlloc, CannotAlloc };
|
||||
|
||||
#if MOODYCAMEL_HAS_EMPLACE
|
||||
template<AllocationMode canAlloc, typename... Args>
|
||||
bool inner_enqueue(Args&&... args) AE_NO_TSAN
|
||||
#else
|
||||
template<AllocationMode canAlloc, typename U>
|
||||
bool inner_enqueue(U&& element) AE_NO_TSAN
|
||||
#endif
|
||||
{
|
||||
#ifndef NDEBUG
|
||||
ReentrantGuard guard(this->enqueuing);
|
||||
#endif
|
||||
|
||||
// High-level pseudocode (assuming we're allowed to alloc a new block):
|
||||
// If room in tail block, add to tail
|
||||
// Else check next block
|
||||
// If next block is not the head block, enqueue on next block
|
||||
// Else create a new block and enqueue there
|
||||
// Advance tail to the block we just enqueued to
|
||||
|
||||
Block* tailBlock_ = tailBlock.load();
|
||||
size_t blockFront = tailBlock_->localFront;
|
||||
size_t blockTail = tailBlock_->tail.load();
|
||||
|
||||
size_t nextBlockTail = (blockTail + 1) & tailBlock_->sizeMask;
|
||||
if (nextBlockTail != blockFront || nextBlockTail != (tailBlock_->localFront = tailBlock_->front.load())) {
|
||||
fence(memory_order_acquire);
|
||||
// This block has room for at least one more element
|
||||
char* location = tailBlock_->data + blockTail * sizeof(T);
|
||||
#if MOODYCAMEL_HAS_EMPLACE
|
||||
new (location) T(std::forward<Args>(args)...);
|
||||
#else
|
||||
new (location) T(std::forward<U>(element));
|
||||
#endif
|
||||
|
||||
fence(memory_order_release);
|
||||
tailBlock_->tail = nextBlockTail;
|
||||
}
|
||||
else {
|
||||
fence(memory_order_acquire);
|
||||
if (tailBlock_->next.load() != frontBlock) {
|
||||
// Note that the reason we can't advance to the frontBlock and start adding new entries there
|
||||
// is because if we did, then dequeue would stay in that block, eventually reading the new values,
|
||||
// instead of advancing to the next full block (whose values were enqueued first and so should be
|
||||
// consumed first).
|
||||
|
||||
fence(memory_order_acquire); // Ensure we get latest writes if we got the latest frontBlock
|
||||
|
||||
// tailBlock is full, but there's a free block ahead, use it
|
||||
Block* tailBlockNext = tailBlock_->next.load();
|
||||
size_t nextBlockFront = tailBlockNext->localFront = tailBlockNext->front.load();
|
||||
nextBlockTail = tailBlockNext->tail.load();
|
||||
fence(memory_order_acquire);
|
||||
|
||||
// This block must be empty since it's not the head block and we
|
||||
// go through the blocks in a circle
|
||||
assert(nextBlockFront == nextBlockTail);
|
||||
tailBlockNext->localFront = nextBlockFront;
|
||||
|
||||
char* location = tailBlockNext->data + nextBlockTail * sizeof(T);
|
||||
#if MOODYCAMEL_HAS_EMPLACE
|
||||
new (location) T(std::forward<Args>(args)...);
|
||||
#else
|
||||
new (location) T(std::forward<U>(element));
|
||||
#endif
|
||||
|
||||
tailBlockNext->tail = (nextBlockTail + 1) & tailBlockNext->sizeMask;
|
||||
|
||||
fence(memory_order_release);
|
||||
tailBlock = tailBlockNext;
|
||||
}
|
||||
else if (canAlloc == CanAlloc) {
|
||||
// tailBlock is full and there's no free block ahead; create a new block
|
||||
auto newBlockSize = largestBlockSize >= MAX_BLOCK_SIZE ? largestBlockSize : largestBlockSize * 2;
|
||||
auto newBlock = make_block(newBlockSize);
|
||||
if (newBlock == nullptr) {
|
||||
// Could not allocate a block!
|
||||
return false;
|
||||
}
|
||||
largestBlockSize = newBlockSize;
|
||||
|
||||
#if MOODYCAMEL_HAS_EMPLACE
|
||||
new (newBlock->data) T(std::forward<Args>(args)...);
|
||||
#else
|
||||
new (newBlock->data) T(std::forward<U>(element));
|
||||
#endif
|
||||
assert(newBlock->front == 0);
|
||||
newBlock->tail = newBlock->localTail = 1;
|
||||
|
||||
newBlock->next = tailBlock_->next.load();
|
||||
tailBlock_->next = newBlock;
|
||||
|
||||
// Might be possible for the dequeue thread to see the new tailBlock->next
|
||||
// *without* seeing the new tailBlock value, but this is OK since it can't
|
||||
// advance to the next block until tailBlock is set anyway (because the only
|
||||
// case where it could try to read the next is if it's already at the tailBlock,
|
||||
// and it won't advance past tailBlock in any circumstance).
|
||||
|
||||
fence(memory_order_release);
|
||||
tailBlock = newBlock;
|
||||
}
|
||||
else if (canAlloc == CannotAlloc) {
|
||||
// Would have had to allocate a new block to enqueue, but not allowed
|
||||
return false;
|
||||
}
|
||||
else {
|
||||
assert(false && "Should be unreachable code");
|
||||
return false;
|
||||
}
|
||||
}
|
||||
|
||||
return true;
|
||||
}
|
||||
|
||||
|
||||
// Disable copying
|
||||
ReaderWriterQueue(ReaderWriterQueue const&) { }
|
||||
|
||||
// Disable assignment
|
||||
ReaderWriterQueue& operator=(ReaderWriterQueue const&) { }
|
||||
|
||||
|
||||
|
||||
AE_FORCEINLINE static size_t ceilToPow2(size_t x)
|
||||
{
|
||||
// From http://graphics.stanford.edu/~seander/bithacks.html#RoundUpPowerOf2
|
||||
--x;
|
||||
x |= x >> 1;
|
||||
x |= x >> 2;
|
||||
x |= x >> 4;
|
||||
for (size_t i = 1; i < sizeof(size_t); i <<= 1) {
|
||||
x |= x >> (i << 3);
|
||||
}
|
||||
++x;
|
||||
return x;
|
||||
}
|
||||
|
||||
template<typename U>
|
||||
static AE_FORCEINLINE char* align_for(char* ptr) AE_NO_TSAN
|
||||
{
|
||||
const std::size_t alignment = std::alignment_of<U>::value;
|
||||
return ptr + (alignment - (reinterpret_cast<std::uintptr_t>(ptr) % alignment)) % alignment;
|
||||
}
|
||||
private:
|
||||
#ifndef NDEBUG
|
||||
struct ReentrantGuard
|
||||
{
|
||||
AE_NO_TSAN ReentrantGuard(bool& _inSection)
|
||||
: inSection(_inSection)
|
||||
{
|
||||
assert(!inSection && "Concurrent (or re-entrant) enqueue or dequeue operation detected (only one thread at a time may hold the producer or consumer role)");
|
||||
inSection = true;
|
||||
}
|
||||
|
||||
AE_NO_TSAN ~ReentrantGuard() { inSection = false; }
|
||||
|
||||
private:
|
||||
ReentrantGuard& operator=(ReentrantGuard const&);
|
||||
|
||||
private:
|
||||
bool& inSection;
|
||||
};
|
||||
#endif
|
||||
|
||||
struct Block
|
||||
{
|
||||
// Avoid false-sharing by putting highly contended variables on their own cache lines
|
||||
weak_atomic<size_t> front; // (Atomic) Elements are read from here
|
||||
size_t localTail; // An uncontended shadow copy of tail, owned by the consumer
|
||||
|
||||
char cachelineFiller0[MOODYCAMEL_CACHE_LINE_SIZE - sizeof(weak_atomic<size_t>) - sizeof(size_t)];
|
||||
weak_atomic<size_t> tail; // (Atomic) Elements are enqueued here
|
||||
size_t localFront;
|
||||
|
||||
char cachelineFiller1[MOODYCAMEL_CACHE_LINE_SIZE - sizeof(weak_atomic<size_t>) - sizeof(size_t)]; // next isn't very contended, but we don't want it on the same cache line as tail (which is)
|
||||
weak_atomic<Block*> next; // (Atomic)
|
||||
|
||||
char* data; // Contents (on heap) are aligned to T's alignment
|
||||
|
||||
const size_t sizeMask;
|
||||
|
||||
|
||||
// size must be a power of two (and greater than 0)
|
||||
AE_NO_TSAN Block(size_t const& _size, char* _rawThis, char* _data)
|
||||
: front(0), localTail(0), tail(0), localFront(0), next(nullptr), data(_data), sizeMask(_size - 1), rawThis(_rawThis)
|
||||
{
|
||||
}
|
||||
|
||||
private:
|
||||
// C4512 - Assignment operator could not be generated
|
||||
Block& operator=(Block const&);
|
||||
|
||||
public:
|
||||
char* rawThis;
|
||||
};
|
||||
|
||||
|
||||
static Block* make_block(size_t capacity) AE_NO_TSAN
|
||||
{
|
||||
// Allocate enough memory for the block itself, as well as all the elements it will contain
|
||||
auto size = sizeof(Block) + std::alignment_of<Block>::value - 1;
|
||||
size += sizeof(T) * capacity + std::alignment_of<T>::value - 1;
|
||||
auto newBlockRaw = static_cast<char*>(std::malloc(size));
|
||||
if (newBlockRaw == nullptr) {
|
||||
return nullptr;
|
||||
}
|
||||
|
||||
auto newBlockAligned = align_for<Block>(newBlockRaw);
|
||||
auto newBlockData = align_for<T>(newBlockAligned + sizeof(Block));
|
||||
return new (newBlockAligned) Block(capacity, newBlockRaw, newBlockData);
|
||||
}
|
||||
|
||||
private:
|
||||
weak_atomic<Block*> frontBlock; // (Atomic) Elements are enqueued to this block
|
||||
|
||||
char cachelineFiller[MOODYCAMEL_CACHE_LINE_SIZE - sizeof(weak_atomic<Block*>)];
|
||||
weak_atomic<Block*> tailBlock; // (Atomic) Elements are dequeued from this block
|
||||
|
||||
size_t largestBlockSize;
|
||||
|
||||
#ifndef NDEBUG
|
||||
bool enqueuing;
|
||||
bool dequeuing;
|
||||
#endif
|
||||
};
|
||||
|
||||
// Like ReaderWriterQueue, but also providees blocking operations
|
||||
template<typename T, size_t MAX_BLOCK_SIZE = 512>
|
||||
class BlockingReaderWriterQueue
|
||||
{
|
||||
private:
|
||||
typedef ::moodycamel::ReaderWriterQueue<T, MAX_BLOCK_SIZE> ReaderWriterQueue;
|
||||
|
||||
public:
|
||||
explicit BlockingReaderWriterQueue(size_t maxSize = 15) AE_NO_TSAN
|
||||
: inner(maxSize), sema(new spsc_sema::LightweightSemaphore())
|
||||
{ }
|
||||
|
||||
BlockingReaderWriterQueue(BlockingReaderWriterQueue&& other) AE_NO_TSAN
|
||||
: inner(std::move(other.inner)), sema(std::move(other.sema))
|
||||
{ }
|
||||
|
||||
BlockingReaderWriterQueue& operator=(BlockingReaderWriterQueue&& other) AE_NO_TSAN
|
||||
{
|
||||
std::swap(sema, other.sema);
|
||||
std::swap(inner, other.inner);
|
||||
return *this;
|
||||
}
|
||||
|
||||
|
||||
// Enqueues a copy of element if there is room in the queue.
|
||||
// Returns true if the element was enqueued, false otherwise.
|
||||
// Does not allocate memory.
|
||||
AE_FORCEINLINE bool try_enqueue(T const& element) AE_NO_TSAN
|
||||
{
|
||||
if (inner.try_enqueue(element)) {
|
||||
sema->signal();
|
||||
return true;
|
||||
}
|
||||
return false;
|
||||
}
|
||||
|
||||
// Enqueues a moved copy of element if there is room in the queue.
|
||||
// Returns true if the element was enqueued, false otherwise.
|
||||
// Does not allocate memory.
|
||||
AE_FORCEINLINE bool try_enqueue(T&& element) AE_NO_TSAN
|
||||
{
|
||||
if (inner.try_enqueue(std::forward<T>(element))) {
|
||||
sema->signal();
|
||||
return true;
|
||||
}
|
||||
return false;
|
||||
}
|
||||
|
||||
|
||||
// Enqueues a copy of element on the queue.
|
||||
// Allocates an additional block of memory if needed.
|
||||
// Only fails (returns false) if memory allocation fails.
|
||||
AE_FORCEINLINE bool enqueue(T const& element) AE_NO_TSAN
|
||||
{
|
||||
if (inner.enqueue(element)) {
|
||||
sema->signal();
|
||||
return true;
|
||||
}
|
||||
return false;
|
||||
}
|
||||
|
||||
// Enqueues a moved copy of element on the queue.
|
||||
// Allocates an additional block of memory if needed.
|
||||
// Only fails (returns false) if memory allocation fails.
|
||||
AE_FORCEINLINE bool enqueue(T&& element) AE_NO_TSAN
|
||||
{
|
||||
if (inner.enqueue(std::forward<T>(element))) {
|
||||
sema->signal();
|
||||
return true;
|
||||
}
|
||||
return false;
|
||||
}
|
||||
|
||||
|
||||
// Attempts to dequeue an element; if the queue is empty,
|
||||
// returns false instead. If the queue has at least one element,
|
||||
// moves front to result using operator=, then returns true.
|
||||
template<typename U>
|
||||
bool try_dequeue(U& result) AE_NO_TSAN
|
||||
{
|
||||
if (sema->tryWait()) {
|
||||
bool success = inner.try_dequeue(result);
|
||||
assert(success);
|
||||
AE_UNUSED(success);
|
||||
return true;
|
||||
}
|
||||
return false;
|
||||
}
|
||||
|
||||
|
||||
// Attempts to dequeue an element; if the queue is empty,
|
||||
// waits until an element is available, then dequeues it.
|
||||
template<typename U>
|
||||
void wait_dequeue(U& result) AE_NO_TSAN
|
||||
{
|
||||
sema->wait();
|
||||
bool success = inner.try_dequeue(result);
|
||||
AE_UNUSED(result);
|
||||
assert(success);
|
||||
AE_UNUSED(success);
|
||||
}
|
||||
|
||||
|
||||
// Attempts to dequeue an element; if the queue is empty,
|
||||
// waits until an element is available up to the specified timeout,
|
||||
// then dequeues it and returns true, or returns false if the timeout
|
||||
// expires before an element can be dequeued.
|
||||
// Using a negative timeout indicates an indefinite timeout,
|
||||
// and is thus functionally equivalent to calling wait_dequeue.
|
||||
template<typename U>
|
||||
bool wait_dequeue_timed(U& result, std::int64_t timeout_usecs) AE_NO_TSAN
|
||||
{
|
||||
if (!sema->wait(timeout_usecs)) {
|
||||
return false;
|
||||
}
|
||||
bool success = inner.try_dequeue(result);
|
||||
AE_UNUSED(result);
|
||||
assert(success);
|
||||
AE_UNUSED(success);
|
||||
return true;
|
||||
}
|
||||
|
||||
|
||||
#if __cplusplus > 199711L || _MSC_VER >= 1700
|
||||
// Attempts to dequeue an element; if the queue is empty,
|
||||
// waits until an element is available up to the specified timeout,
|
||||
// then dequeues it and returns true, or returns false if the timeout
|
||||
// expires before an element can be dequeued.
|
||||
// Using a negative timeout indicates an indefinite timeout,
|
||||
// and is thus functionally equivalent to calling wait_dequeue.
|
||||
template<typename U, typename Rep, typename Period>
|
||||
inline bool wait_dequeue_timed(U& result, std::chrono::duration<Rep, Period> const& timeout) AE_NO_TSAN
|
||||
{
|
||||
return wait_dequeue_timed(result, std::chrono::duration_cast<std::chrono::microseconds>(timeout).count());
|
||||
}
|
||||
#endif
|
||||
|
||||
|
||||
// Returns a pointer to the front element in the queue (the one that
|
||||
// would be removed next by a call to `try_dequeue` or `pop`). If the
|
||||
// queue appears empty at the time the method is called, nullptr is
|
||||
// returned instead.
|
||||
// Must be called only from the consumer thread.
|
||||
AE_FORCEINLINE T* peek() AE_NO_TSAN
|
||||
{
|
||||
return inner.peek();
|
||||
}
|
||||
|
||||
// Removes the front element from the queue, if any, without returning it.
|
||||
// Returns true on success, or false if the queue appeared empty at the time
|
||||
// `pop` was called.
|
||||
AE_FORCEINLINE bool pop() AE_NO_TSAN
|
||||
{
|
||||
if (sema->tryWait()) {
|
||||
bool result = inner.pop();
|
||||
assert(result);
|
||||
AE_UNUSED(result);
|
||||
return true;
|
||||
}
|
||||
return false;
|
||||
}
|
||||
|
||||
// Returns the approximate number of items currently in the queue.
|
||||
// Safe to call from both the producer and consumer threads.
|
||||
AE_FORCEINLINE size_t size_approx() const AE_NO_TSAN
|
||||
{
|
||||
return sema->availableApprox();
|
||||
}
|
||||
|
||||
|
||||
private:
|
||||
// Disable copying & assignment
|
||||
BlockingReaderWriterQueue(BlockingReaderWriterQueue const&) { }
|
||||
BlockingReaderWriterQueue& operator=(BlockingReaderWriterQueue const&) { }
|
||||
|
||||
private:
|
||||
ReaderWriterQueue inner;
|
||||
std::unique_ptr<spsc_sema::LightweightSemaphore> sema;
|
||||
};
|
||||
|
||||
} // end namespace moodycamel
|
||||
|
||||
#ifdef AE_VCPP
|
||||
#pragma warning(pop)
|
||||
#endif
|
||||
|
|
@ -32,7 +32,6 @@
|
|||
#include <absl/container/flat_hash_map.h>
|
||||
#include <absl/types/optional.h>
|
||||
#include "absl/strings/string_view.h"
|
||||
// #include "moodycamel/concurrentqueue.h"
|
||||
#include "atomic_queue/atomic_queue.h"
|
||||
#include <chrono>
|
||||
#include <thread>
|
||||
|
|
@ -218,8 +217,6 @@ private:
|
|||
void clearingThread();
|
||||
void tryToClearPromises();
|
||||
|
||||
// moodycamel::ConcurrentQueue<FilePromisePtr> promiseQueue { config::maxVoices };
|
||||
// moodycamel::ConcurrentQueue<FilePromisePtr> filledPromiseQueue { config::maxVoices };
|
||||
atomic_queue::AtomicQueue2<FilePromisePtr, config::maxVoices> promiseQueue;
|
||||
atomic_queue::AtomicQueue2<FilePromisePtr, config::maxVoices> filledPromiseQueue;
|
||||
uint32_t preloadSize { config::preloadSize };
|
||||
|
|
|
|||
Loading…
Add table
Reference in a new issue