743 lines
24 KiB
C++
743 lines
24 KiB
C++
///////////////////////////////////////////////////////////////////////////////
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// Copyright (c) Electronic Arts Inc. All rights reserved.
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///////////////////////////////////////////////////////////////////////////////
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#if defined(EA_PRAGMA_ONCE_SUPPORTED)
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#pragma once // Some compilers (e.g. VC++) benefit significantly from using this. We've measured 3-4% build speed improvements in apps as a result.
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#endif
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/////////////////////////////////////////////////////////////////////////////
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// Defines functionality for threadsafe primitive operations.
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/////////////////////////////////////////////////////////////////////////////
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#ifndef EATHREAD_X86_EATHREAD_ATOMIC_X86_H
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#define EATHREAD_X86_EATHREAD_ATOMIC_X86_H
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#include <EABase/eabase.h>
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#include <stddef.h>
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#include <eathread/internal/eathread_atomic_standalone.h>
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#ifdef _MSC_VER
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#pragma warning(push)
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#pragma warning(disable: 4146) // unary minus operator applied to unsigned type, result still unsigned
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#pragma warning(disable: 4339) // use of undefined type detected in CLR meta-data
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#endif
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// This is required for Windows Phone (ARM) because we are temporarily not using
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// CPP11 style atomics and we are depending on the MSVC intrinics.
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#if defined(EA_PROCESSOR_X86) || defined(EA_PROCESSOR_ARM)
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#define EA_THREAD_ATOMIC_IMPLEMENTED
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namespace EA
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{
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namespace Thread
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{
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/// class AtomicInt
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/// Actual implementation may vary per platform. May require certain alignments, sizes,
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/// and declaration specifications per platform.
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template <class T>
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class AtomicInt
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{
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public:
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typedef AtomicInt<T> ThisType;
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typedef T ValueType;
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/// AtomicInt
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/// Empty constructor. Intentionally leaves mValue in an unspecified state.
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/// This is done so that an AtomicInt acts like a standard built-in integer.
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/// Problem: C/C++ has two ways to initialize a built-in type x: x and x(),
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/// and they have different semantics, as the first does nothing but
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/// the second initializes x to zero. C++ does not provide a means
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/// to tell which of tell which of these two ways a C++ class instance
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/// initialized. Thus we probably can't easily argue that this constructor
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/// should do nothing vs. initialize the variable to 0. It's probably
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/// safer for us to make it initialize to 0, and it wouldn't break
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/// users to do so, though it would add a tiny runtime cost.
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AtomicInt()
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{}
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AtomicInt(ValueType n) : mValue(0) // Initialize mValue because otherwise SetValue may read it before it's initialized.
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{ SetValue(n); }
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AtomicInt(const ThisType& x)
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: mValue(x.GetValue()) {}
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AtomicInt& operator=(const ThisType& x)
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{ mValue = x.GetValue(); return *this; }
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ValueType GetValue() const
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{ return mValue; }
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ValueType GetValueRaw() const
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{ return mValue; }
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ValueType SetValue(ValueType n);
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bool SetValueConditional(ValueType n, ValueType condition);
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ValueType Increment();
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ValueType Decrement();
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ValueType Add(ValueType n);
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// operators
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inline operator const ValueType() const { return GetValue(); }
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inline ValueType operator =(ValueType n) { SetValue(n); return n; }
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inline ValueType operator+=(ValueType n) { return Add(n);}
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inline ValueType operator-=(ValueType n) { return Add(-n);}
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inline ValueType operator++() { return Increment();}
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inline ValueType operator++(int) { return Increment() - 1;}
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inline ValueType operator--() { return Decrement(); }
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inline ValueType operator--(int) { return Decrement() + 1;}
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protected:
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volatile ValueType mValue;
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};
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#if defined(EA_PLATFORM_MICROSOFT) && defined(_MSC_VER)
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// 32 bit versions
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template<> inline
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AtomicInt<int32_t>::ValueType AtomicInt<int32_t>::SetValue(ValueType n)
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{ return (ValueType)InterlockedExchangeImp((long*)&mValue, (long)n); } // Even though we shouldn't need to use InterlockedExchange on x86, the intrinsic x86 InterlockedExchange is at least as fast as C code we would otherwise put here.
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template<> inline
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AtomicInt<uint32_t>::ValueType AtomicInt<uint32_t>::SetValue(ValueType n)
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{ return (ValueType)InterlockedExchangeImp((long*)&mValue, (long)n); } // Even though we shouldn't need to use InterlockedExchange on x86, the intrinsic x86 InterlockedExchange is at least as fast as C code we would otherwise put here.
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template<> inline
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bool AtomicInt<int32_t>::SetValueConditional(ValueType n, ValueType condition)
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{ return ((ValueType)InterlockedCompareExchangeImp((long*)&mValue, (long)n, (long)condition) == condition); }
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template<> inline
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bool AtomicInt<uint32_t>::SetValueConditional(ValueType n, ValueType condition)
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{ return ((ValueType)InterlockedCompareExchangeImp((long*)&mValue, (long)n, (long)condition) == condition); }
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template<> inline
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AtomicInt<int32_t>::ValueType AtomicInt<int32_t>::Increment()
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{ return (ValueType)InterlockedIncrementImp((long*)&mValue); }
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template<> inline
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AtomicInt<uint32_t>::ValueType AtomicInt<uint32_t>::Increment()
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{ return (ValueType)InterlockedIncrementImp((long*)&mValue); }
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template<> inline
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AtomicInt<int32_t>::ValueType AtomicInt<int32_t>::Decrement()
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{ return (ValueType)InterlockedDecrementImp((long*)&mValue); }
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template<> inline
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AtomicInt<uint32_t>::ValueType AtomicInt<uint32_t>::Decrement()
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{ return (ValueType)InterlockedDecrementImp((long*)&mValue); }
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template<> inline
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AtomicInt<int32_t>::ValueType AtomicInt<int32_t>::Add(ValueType n)
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{ return ((ValueType)InterlockedExchangeAddImp((long*)&mValue, (long)n) + n); }
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template<> inline
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AtomicInt<uint32_t>::ValueType AtomicInt<uint32_t>::Add(ValueType n)
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{ return ((ValueType)InterlockedExchangeAddImp((long*)&mValue, (long)n) + n); }
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// 64 bit versions
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template<> inline
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AtomicInt<int64_t>::ValueType AtomicInt<int64_t>::GetValue() const{
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int64_t condition, nNewValue;
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do{
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nNewValue = condition = mValue; // Todo: This function has a problem unless the assignment of mValue to condition is atomic.
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} while(!InterlockedSetIfEqual(const_cast<int64_t*>(&mValue), nNewValue, condition));
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return nNewValue;
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}
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template<> inline
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AtomicInt<uint64_t>::ValueType AtomicInt<uint64_t>::GetValue() const{
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uint64_t condition, nNewValue;
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do{
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nNewValue = condition = mValue; // Todo: This function has a problem unless the assignment of mValue to condition is atomic.
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} while(!InterlockedSetIfEqual(const_cast<uint64_t*>(&mValue), nNewValue, condition));
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return nNewValue;
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}
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template<> inline
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AtomicInt<int64_t>::ValueType AtomicInt<int64_t>::SetValue(ValueType n){
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int64_t condition;
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do{
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condition = mValue;
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} while(!InterlockedSetIfEqual(&mValue, n, condition));
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return condition;
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}
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template<> inline
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AtomicInt<uint64_t>::ValueType AtomicInt<uint64_t>::SetValue(ValueType n){
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uint64_t condition;
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do{
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condition = mValue;
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} while(!InterlockedSetIfEqual(&mValue, n, condition));
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return condition;
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}
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template<> inline
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bool AtomicInt<int64_t>::SetValueConditional(ValueType n, ValueType condition){
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return InterlockedSetIfEqual(&mValue, n, condition);
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}
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template<> inline
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bool AtomicInt<uint64_t>::SetValueConditional(ValueType n, ValueType condition){
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return InterlockedSetIfEqual(&mValue, n, condition);
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}
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template<> inline
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AtomicInt<int64_t>::ValueType AtomicInt<int64_t>::Increment(){
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int64_t condition, nNewValue;
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do{
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condition = mValue;
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nNewValue = condition + 1;
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} while(!InterlockedSetIfEqual(&mValue, nNewValue, condition));
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return nNewValue;
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}
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template<> inline
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AtomicInt<uint64_t>::ValueType AtomicInt<uint64_t>::Increment(){
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uint64_t condition, nNewValue;
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do{
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condition = mValue;
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nNewValue = condition + 1;
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} while(!InterlockedSetIfEqual(&mValue, nNewValue, condition));
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return nNewValue;
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}
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template<> inline
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AtomicInt<int64_t>::ValueType AtomicInt<int64_t>::Decrement(){
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int64_t condition, nNewValue;
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do{
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condition = mValue;
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nNewValue = condition - 1;
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} while(!InterlockedSetIfEqual(&mValue, nNewValue, condition));
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return nNewValue;
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}
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template<> inline
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AtomicInt<uint64_t>::ValueType AtomicInt<uint64_t>::Decrement(){
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uint64_t condition, nNewValue;
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do{
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condition = mValue;
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nNewValue = condition - 1;
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} while(!InterlockedSetIfEqual(&mValue, nNewValue, condition));
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return nNewValue;
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}
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template<> inline
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AtomicInt<int64_t>::ValueType AtomicInt<int64_t>::Add(ValueType n){
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int64_t condition, nNewValue;
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do{
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condition = mValue;
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nNewValue = condition + n;
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} while(!InterlockedSetIfEqual(&mValue, nNewValue, condition));
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return nNewValue;
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}
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template<> inline
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AtomicInt<uint64_t>::ValueType AtomicInt<uint64_t>::Add(ValueType n){
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uint64_t condition, nNewValue;
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do{
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condition = mValue;
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nNewValue = condition + n;
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} while(!InterlockedSetIfEqual(&mValue, nNewValue, condition));
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return nNewValue;
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}
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#elif defined(EA_COMPILER_GNUC) || defined (EA_COMPILER_CLANG)
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// Recent versions of GCC have atomic primitives built into the compiler and standard library.
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#if defined (EA_COMPILER_CLANG) || defined(__APPLE__) || (defined(__GNUC__) && (((__GNUC__ * 100) + __GNUC_MINOR__) >= 403)) // GCC 4.3 or later
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template <> inline
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AtomicInt<int32_t>::ValueType AtomicInt<int32_t>::GetValue() const
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{ return __sync_add_and_fetch(const_cast<ValueType*>(&mValue), 0); }
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template <> inline
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AtomicInt<uint32_t>::ValueType AtomicInt<uint32_t>::GetValue() const
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{ return __sync_add_and_fetch(const_cast<ValueType*>(&mValue), 0); }
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template <> inline
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AtomicInt<int32_t>::ValueType AtomicInt<int32_t>::SetValue(ValueType n)
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{ __sync_synchronize(); return __sync_lock_test_and_set(&mValue, n); }
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template <> inline
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AtomicInt<uint32_t>::ValueType AtomicInt<uint32_t>::SetValue(ValueType n)
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{ __sync_synchronize(); return __sync_lock_test_and_set(&mValue, n); }
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template <> inline
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bool AtomicInt<int32_t>::SetValueConditional(ValueType n, ValueType condition)
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{ return (__sync_val_compare_and_swap(&mValue, condition, n) == condition); }
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template <> inline
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bool AtomicInt<uint32_t>::SetValueConditional(ValueType n, ValueType condition)
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{ return (__sync_val_compare_and_swap(&mValue, condition, n) == condition); }
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template <> inline
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AtomicInt<int32_t>::ValueType AtomicInt<int32_t>::Increment()
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{ return __sync_add_and_fetch(&mValue, 1); }
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template <> inline
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AtomicInt<uint32_t>::ValueType AtomicInt<uint32_t>::Increment()
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{ return __sync_add_and_fetch(&mValue, 1); }
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template <> inline
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AtomicInt<int32_t>::ValueType AtomicInt<int32_t>::Decrement()
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{ return __sync_sub_and_fetch(&mValue, 1); }
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template <> inline
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AtomicInt<uint32_t>::ValueType AtomicInt<uint32_t>::Decrement()
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{ return __sync_sub_and_fetch(&mValue, 1); }
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template <> inline
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AtomicInt<int32_t>::ValueType AtomicInt<int32_t>::Add(ValueType n)
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{ return __sync_add_and_fetch(&mValue, n); }
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template <> inline
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AtomicInt<uint32_t>::ValueType AtomicInt<uint32_t>::Add(ValueType n)
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{ return __sync_add_and_fetch(&mValue, n); }
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template <> inline
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AtomicInt<int64_t>::ValueType AtomicInt<int64_t>::GetValue() const
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{ return __sync_add_and_fetch(const_cast<ValueType*>(&mValue), 0); }
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template <> inline
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AtomicInt<uint64_t>::ValueType AtomicInt<uint64_t>::GetValue() const
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{ return __sync_add_and_fetch(const_cast<ValueType*>(&mValue), 0); }
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template <> inline
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AtomicInt<int64_t>::ValueType AtomicInt<int64_t>::SetValue(ValueType n)
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{ __sync_synchronize(); return __sync_lock_test_and_set(&mValue, n); }
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template <> inline
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AtomicInt<uint64_t>::ValueType AtomicInt<uint64_t>::SetValue(ValueType n)
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{ __sync_synchronize(); return __sync_lock_test_and_set(&mValue, n); }
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template <> inline
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bool AtomicInt<int64_t>::SetValueConditional(ValueType n, ValueType condition)
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{ return (__sync_val_compare_and_swap(&mValue, condition, n) == condition); }
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template <> inline
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bool AtomicInt<uint64_t>::SetValueConditional(ValueType n, ValueType condition)
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{ return (__sync_val_compare_and_swap(&mValue, condition, n) == condition); }
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template <> inline
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AtomicInt<int64_t>::ValueType AtomicInt<int64_t>::Increment()
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{ return __sync_add_and_fetch(&mValue, 1); }
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template <> inline
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AtomicInt<uint64_t>::ValueType AtomicInt<uint64_t>::Increment()
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{ return __sync_add_and_fetch(&mValue, 1); }
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template <> inline
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AtomicInt<int64_t>::ValueType AtomicInt<int64_t>::Decrement()
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{ return __sync_sub_and_fetch(&mValue, 1); }
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template <> inline
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AtomicInt<uint64_t>::ValueType AtomicInt<uint64_t>::Decrement()
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{ return __sync_sub_and_fetch(&mValue, 1); }
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template <> inline
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AtomicInt<int64_t>::ValueType AtomicInt<int64_t>::Add(ValueType n)
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{ return __sync_add_and_fetch(&mValue, n); }
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template <> inline
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AtomicInt<uint64_t>::ValueType AtomicInt<uint64_t>::Add(ValueType n)
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{ return __sync_add_and_fetch(&mValue, n); }
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#else
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// If the above intrinsics aren't used...
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#ifndef InterlockedCompareExchangeImp
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namespace
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{
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int32_t InterlockedExchange(volatile int32_t* m, int32_t n)
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{
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int32_t result;
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__asm__ __volatile__ (
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"xchgl %%eax, (%2)" // The xchg instruction does an implicit lock instruction.
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: "=a" (result) // outputs
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: "a" (n), "q" (m) // inputs
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: "memory" // clobbered
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);
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return result;
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}
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int32_t InterlockedCompareExchange(volatile int32_t* m, int32_t n, int32_t condition)
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{
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int32_t result;
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__asm__ __volatile__(
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"lock; cmpxchgl %3, (%1) \n" // Test *m against EAX, if same, then *m = n
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: "=a" (result), "=q" (m) // outputs
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: "a" (condition), "q" (n), "1" (m) // inputs
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: "memory" // clobbered
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);
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return result;
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}
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#define InterlockedExchangeImp InterlockedExchange
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#define InterlockedCompareExchangeImp InterlockedCompareExchange
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}
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#endif
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// 32 bit versions
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template<> inline
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AtomicInt<int32_t>::ValueType AtomicInt<int32_t>::SetValue(ValueType n)
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{ return (ValueType)InterlockedExchangeImp(&mValue, n); }
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template<> inline
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AtomicInt<uint32_t>::ValueType AtomicInt<uint32_t>::SetValue(ValueType n)
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{ return (ValueType)InterlockedExchangeImp((int32_t*)&mValue, n); }
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template<> inline
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bool AtomicInt<int32_t>::SetValueConditional(ValueType n, ValueType condition)
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{ return ((ValueType)InterlockedCompareExchangeImp(&mValue, n, condition) == condition); }
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template<> inline
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bool AtomicInt<uint32_t>::SetValueConditional(ValueType n, ValueType condition)
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{ return ((ValueType)InterlockedCompareExchangeImp((int32_t*)&mValue, n, condition) == condition); }
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template<> inline
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AtomicInt<int32_t>::ValueType AtomicInt<int32_t>::Increment()
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{
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int32_t result;
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__asm__ __volatile__ ("lock; xaddl %0, %1"
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: "=r" (result), "=m" (mValue)
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: "0" (1), "m" (mValue)
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: "memory"
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);
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return result + 1;
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}
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template<> inline
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AtomicInt<uint32_t>::ValueType AtomicInt<uint32_t>::Increment()
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{
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int32_t result;
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__asm__ __volatile__ ("lock; xaddl %0, %1"
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: "=r" (result), "=m" (mValue)
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: "0" (1), "m" (mValue)
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: "memory"
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);
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return result + 1;
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}
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template<> inline
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AtomicInt<int32_t>::ValueType AtomicInt<int32_t>::Decrement()
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{
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int32_t result;
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__asm__ __volatile__ ("lock; xaddl %0, %1"
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: "=r" (result), "=m" (mValue)
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: "0" (-1), "m" (mValue)
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: "memory"
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);
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return result - 1;
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}
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template<> inline
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AtomicInt<uint32_t>::ValueType AtomicInt<uint32_t>::Decrement()
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{
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uint32_t result;
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__asm__ __volatile__ ("lock; xaddl %0, %1"
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: "=r" (result), "=m" (mValue)
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: "0" (-1), "m" (mValue)
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: "memory"
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);
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return result - 1;
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}
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template<> inline
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AtomicInt<int32_t>::ValueType AtomicInt<int32_t>::Add(ValueType n)
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{
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int32_t result;
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__asm__ __volatile__ ("lock; xaddl %0, %1"
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: "=r" (result), "=m" (mValue)
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: "0" (n), "m" (mValue)
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: "memory"
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);
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return result + n;
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}
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template<> inline
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AtomicInt<uint32_t>::ValueType AtomicInt<uint32_t>::Add(ValueType n)
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{
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uint32_t result;
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__asm__ __volatile__ ("lock; xaddl %0, %1"
|
|
: "=r" (result), "=m" (mValue)
|
|
: "0" (n), "m" (mValue)
|
|
: "memory"
|
|
);
|
|
return result + n;
|
|
}
|
|
|
|
|
|
|
|
// 64 bit versions
|
|
|
|
inline bool
|
|
InterlockedSetIfEqual(volatile int64_t* dest, int64_t newValue, int64_t condition)
|
|
{
|
|
int64_t oldValue;
|
|
|
|
__asm __volatile ("lock; cmpxchg8b %1"
|
|
: "=A" (oldValue), "=m" (*dest)
|
|
: "b" (((int32_t) newValue) & 0xffffffff),
|
|
"c" ((int32_t)(newValue >> 32)),
|
|
"m" (*dest), "a" (((int32_t) condition) & 0xffffffff),
|
|
"d" ((int32_t)(condition >> 32)));
|
|
|
|
return oldValue == condition;
|
|
|
|
// Reference non-thread-safe implementation:
|
|
// if(*dest == condition)
|
|
// {
|
|
// *dest = newValue
|
|
// return true;
|
|
// }
|
|
// return false;
|
|
}
|
|
|
|
inline bool
|
|
InterlockedSetIfEqual(volatile uint64_t* dest, uint64_t newValue, uint64_t condition)
|
|
{
|
|
uint64_t oldValue;
|
|
|
|
__asm __volatile ("lock; cmpxchg8b %1"
|
|
: "=A" (oldValue), "=m" (*dest)
|
|
: "b" (((uint32_t) newValue) & 0xffffffff),
|
|
"c" ((uint32_t)(newValue >> 32)),
|
|
"m" (*dest), "a" (((uint32_t) condition) & 0xffffffff),
|
|
"d" ((uint32_t)(condition >> 32)));
|
|
|
|
return oldValue == condition;
|
|
|
|
// Reference non-thread-safe implementation:
|
|
// if(*dest == condition)
|
|
// {
|
|
// *dest = newValue
|
|
// return true;
|
|
// }
|
|
// return false;
|
|
}
|
|
|
|
template<> inline
|
|
AtomicInt<int64_t>::ValueType AtomicInt<int64_t>::GetValue() const{
|
|
int64_t condition, nNewValue;
|
|
do{
|
|
nNewValue = condition = mValue; // Todo: This function has a problem unless the assignment of mValue to condition is atomic.
|
|
} while(!InterlockedSetIfEqual(const_cast<int64_t*>(&mValue), nNewValue, condition));
|
|
return nNewValue;
|
|
}
|
|
|
|
template<> inline
|
|
AtomicInt<uint64_t>::ValueType AtomicInt<uint64_t>::GetValue() const{
|
|
uint64_t condition, nNewValue;
|
|
do{
|
|
nNewValue = condition = mValue; // Todo: This function has a problem unless the assignment of mValue to condition is atomic.
|
|
} while(!InterlockedSetIfEqual(const_cast<uint64_t*>(&mValue), nNewValue, condition));
|
|
return nNewValue;
|
|
}
|
|
|
|
template<> inline
|
|
AtomicInt<int64_t>::ValueType AtomicInt<int64_t>::SetValue(ValueType n){
|
|
int64_t condition;
|
|
do{
|
|
condition = mValue;
|
|
} while(!InterlockedSetIfEqual(&mValue, n, condition));
|
|
return condition;
|
|
}
|
|
|
|
template<> inline
|
|
AtomicInt<uint64_t>::ValueType AtomicInt<uint64_t>::SetValue(ValueType n){
|
|
uint64_t condition;
|
|
do{
|
|
condition = mValue;
|
|
} while(!InterlockedSetIfEqual(&mValue, n, condition));
|
|
return condition;
|
|
}
|
|
|
|
template<> inline
|
|
bool AtomicInt<int64_t>::SetValueConditional(ValueType n, ValueType condition){
|
|
return InterlockedSetIfEqual(&mValue, n, condition);
|
|
}
|
|
|
|
template<> inline
|
|
bool AtomicInt<uint64_t>::SetValueConditional(ValueType n, ValueType condition){
|
|
return InterlockedSetIfEqual(&mValue, n, condition);
|
|
}
|
|
|
|
template<> inline
|
|
AtomicInt<int64_t>::ValueType AtomicInt<int64_t>::Increment(){
|
|
int64_t condition, nNewValue;
|
|
do{
|
|
condition = mValue;
|
|
nNewValue = condition + 1;
|
|
} while(!InterlockedSetIfEqual(&mValue, nNewValue, condition));
|
|
return nNewValue;
|
|
}
|
|
|
|
template<> inline
|
|
AtomicInt<uint64_t>::ValueType AtomicInt<uint64_t>::Increment(){
|
|
uint64_t condition, nNewValue;
|
|
do{
|
|
condition = mValue;
|
|
nNewValue = condition + 1;
|
|
} while(!InterlockedSetIfEqual(&mValue, nNewValue, condition));
|
|
return nNewValue;
|
|
}
|
|
|
|
template<> inline
|
|
AtomicInt<int64_t>::ValueType AtomicInt<int64_t>::Decrement(){
|
|
int64_t condition, nNewValue;
|
|
do{
|
|
condition = mValue;
|
|
nNewValue = condition - 1;
|
|
} while(!InterlockedSetIfEqual(&mValue, nNewValue, condition));
|
|
return nNewValue;
|
|
}
|
|
|
|
template<> inline
|
|
AtomicInt<uint64_t>::ValueType AtomicInt<uint64_t>::Decrement(){
|
|
uint64_t condition, nNewValue;
|
|
do{
|
|
condition = mValue;
|
|
nNewValue = condition - 1;
|
|
} while(!InterlockedSetIfEqual(&mValue, nNewValue, condition));
|
|
return nNewValue;
|
|
}
|
|
|
|
template<> inline
|
|
AtomicInt<int64_t>::ValueType AtomicInt<int64_t>::Add(ValueType n){
|
|
int64_t condition, nNewValue;
|
|
do{
|
|
condition = mValue;
|
|
nNewValue = condition + n;
|
|
} while(!InterlockedSetIfEqual(&mValue, nNewValue, condition));
|
|
return nNewValue;
|
|
}
|
|
|
|
template<> inline
|
|
AtomicInt<uint64_t>::ValueType AtomicInt<uint64_t>::Add(ValueType n){
|
|
uint64_t condition, nNewValue;
|
|
do{
|
|
condition = mValue;
|
|
nNewValue = condition + n;
|
|
} while(!InterlockedSetIfEqual(&mValue, nNewValue, condition));
|
|
return nNewValue;
|
|
}
|
|
|
|
#endif
|
|
|
|
#elif defined(EA_COMPILER_INTEL) || defined(EA_COMPILER_MSVC) || defined(EA_COMPILER_BORLAND)
|
|
|
|
// This is won't compile when ValueType is 64 bits.
|
|
|
|
template<class T> inline
|
|
typename AtomicInt<T>::ValueType AtomicInt<T>::SetValue(ValueType n)
|
|
{
|
|
__asm{
|
|
mov ecx, this // mValue is expected to be at offset zero of this.
|
|
mov eax, n
|
|
xchg eax, dword ptr [ecx] // The xchg instruction does an implicit lock instruction.
|
|
}
|
|
}
|
|
|
|
template<class T> inline
|
|
bool AtomicInt<T>::SetValueConditional(ValueType n, ValueType condition)
|
|
{
|
|
__asm{
|
|
mov ecx, this // mValue is expected to be at offset zero of this.
|
|
mov edx, n
|
|
mov eax, condition
|
|
lock cmpxchg dword ptr [ecx], edx // Compares mValue to condition. If equal, z flag is set and n is copied into mValue.
|
|
jz condition_met
|
|
xor eax, eax
|
|
jmp end
|
|
condition_met:
|
|
mov eax, 1
|
|
end:
|
|
}
|
|
}
|
|
|
|
template<class T> inline
|
|
bool typename AtomicInt<T>::ValueType AtomicInt<T>::Increment()
|
|
{
|
|
__asm{
|
|
mov ecx, this // mValue is expected to be at offset zero of this.
|
|
mov eax, 1
|
|
lock xadd dword ptr [ecx], eax // Sum goes into [ecx], old mValue goes into eax.
|
|
inc eax // Increment eax because the return value is the new value.
|
|
}
|
|
}
|
|
|
|
template<class T> inline
|
|
bool typename AtomicInt<T>::ValueType AtomicInt<T>::Decrement()
|
|
{
|
|
__asm{
|
|
mov ecx, this // mValue is expected to be at offset zero of this.
|
|
mov eax, 0xffffffff
|
|
lock xadd dword ptr [ecx], eax // Sum goes into [ecx], old mValue goes into eax.
|
|
dec eax // Increment eax because the return value is the new value.
|
|
}
|
|
}
|
|
|
|
template<class T> inline
|
|
bool typename AtomicInt<T>::ValueType AtomicInt<T>::Add(ValueType n)
|
|
{
|
|
__asm{
|
|
mov ecx, this // mValue is expected to be at offset zero of this.
|
|
mov eax, n
|
|
lock xadd dword ptr [ecx], eax // Sum goes into [ecx], old mValue goes into eax.
|
|
add eax, n
|
|
}
|
|
}
|
|
|
|
|
|
#else
|
|
// Compiler not currently supported.
|
|
|
|
#endif
|
|
|
|
} // namespace Thread
|
|
|
|
} // namespace EA
|
|
|
|
|
|
#endif // EA_PROCESSOR_X86
|
|
|
|
|
|
#ifdef _MSC_VER
|
|
#pragma warning(pop)
|
|
#endif
|
|
|
|
|
|
#endif // EATHREAD_X86_EATHREAD_ATOMIC_X86_H
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|