499 lines
12 KiB
C++
499 lines
12 KiB
C++
/**
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* @file lltrace.h
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* @brief Runtime statistics accumulation.
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*
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* $LicenseInfo:firstyear=2001&license=viewerlgpl$
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* Second Life Viewer Source Code
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* Copyright (C) 2012, Linden Research, Inc.
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*
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* This library is free software; you can redistribute it and/or
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* modify it under the terms of the GNU Lesser General Public
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* License as published by the Free Software Foundation;
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* version 2.1 of the License only.
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*
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* This library is distributed in the hope that it will be useful,
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* but WITHOUT ANY WARRANTY; without even the implied warranty of
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* MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU
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* Lesser General Public License for more details.
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*
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* You should have received a copy of the GNU Lesser General Public
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* License along with this library; if not, write to the Free Software
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* Foundation, Inc., 51 Franklin Street, Fifth Floor, Boston, MA 02110-1301 USA
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*
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* Linden Research, Inc., 945 Battery Street, San Francisco, CA 94111 USA
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* $/LicenseInfo$
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*/
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#ifndef LL_LLTRACE_H
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#define LL_LLTRACE_H
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#include "stdtypes.h"
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#include "llpreprocessor.h"
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#include "llmemory.h"
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#include "llrefcount.h"
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#include "lltraceaccumulators.h"
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#include "llthreadlocalstorage.h"
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#include "lltimer.h"
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#include <list>
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#define LL_RECORD_BLOCK_TIME(block_timer) LLTrace::TimeBlock::Recorder LL_GLUE_TOKENS(block_time_recorder, __COUNTER__)(block_timer);
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namespace LLTrace
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{
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class Recording;
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template<typename T>
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T storage_value(T val) { return val; }
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template<typename UNIT_TYPE, typename STORAGE_TYPE>
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STORAGE_TYPE storage_value(LLUnit<STORAGE_TYPE, UNIT_TYPE> val) { return val.value(); }
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template<typename UNIT_TYPE, typename STORAGE_TYPE>
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STORAGE_TYPE storage_value(LLUnitImplicit<STORAGE_TYPE, UNIT_TYPE> val) { return val.value(); }
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class TraceBase
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{
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public:
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TraceBase(const char* name, const char* description);
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virtual ~TraceBase() {};
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virtual const char* getUnitLabel();
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const std::string& getName() const { return mName; }
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protected:
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const std::string mName;
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const std::string mDescription;
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};
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template<typename ACCUMULATOR>
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class TraceType
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: public TraceBase,
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public LLInstanceTracker<TraceType<ACCUMULATOR>, std::string>
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{
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public:
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TraceType(const char* name, const char* description = NULL)
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: LLInstanceTracker<TraceType<ACCUMULATOR>, std::string>(name),
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TraceBase(name, description),
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mAccumulatorIndex(AccumulatorBuffer<ACCUMULATOR>::getDefaultBuffer()->reserveSlot())
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{}
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LL_FORCE_INLINE ACCUMULATOR* getPrimaryAccumulator() const
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{
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ACCUMULATOR* accumulator_storage = AccumulatorBuffer<ACCUMULATOR>::getPrimaryStorage();
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return &accumulator_storage[mAccumulatorIndex];
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}
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size_t getIndex() const { return mAccumulatorIndex; }
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static size_t getNumIndices() { return AccumulatorBuffer<ACCUMULATOR>::getNumIndices(); }
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private:
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const size_t mAccumulatorIndex;
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};
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template<>
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class TraceType<TimeBlockAccumulator::CallCountFacet>
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: public TraceType<TimeBlockAccumulator>
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{
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public:
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TraceType(const char* name, const char* description = "")
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: TraceType<TimeBlockAccumulator>(name, description)
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{}
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};
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template<>
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class TraceType<TimeBlockAccumulator::SelfTimeFacet>
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: public TraceType<TimeBlockAccumulator>
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{
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public:
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TraceType(const char* name, const char* description = "")
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: TraceType<TimeBlockAccumulator>(name, description)
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{}
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};
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template <typename T = F64>
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class EventStatHandle
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: public TraceType<EventAccumulator>
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{
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public:
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typedef F64 storage_t;
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typedef TraceType<EventAccumulator> trace_t;
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EventStatHandle(const char* name, const char* description = NULL)
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: trace_t(name, description)
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{}
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/*virtual*/ const char* getUnitLabel() { return LLGetUnitLabel<T>::getUnitLabel(); }
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};
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template<typename T, typename VALUE_T>
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void record(EventStatHandle<T>& measurement, VALUE_T value)
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{
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T converted_value(value);
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measurement.getPrimaryAccumulator()->record(storage_value(converted_value));
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}
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template <typename T = F64>
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class SampleStatHandle
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: public TraceType<SampleAccumulator>
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{
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public:
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typedef F64 storage_t;
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typedef TraceType<SampleAccumulator> trace_t;
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SampleStatHandle(const char* name, const char* description = NULL)
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: trace_t(name, description)
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{}
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/*virtual*/ const char* getUnitLabel() { return LLGetUnitLabel<T>::getUnitLabel(); }
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};
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template<typename T, typename VALUE_T>
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void sample(SampleStatHandle<T>& measurement, VALUE_T value)
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{
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T converted_value(value);
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measurement.getPrimaryAccumulator()->sample(storage_value(converted_value));
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}
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template <typename T = F64>
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class CountStatHandle
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: public TraceType<CountAccumulator>
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{
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public:
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typedef F64 storage_t;
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typedef TraceType<CountAccumulator> trace_t;
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CountStatHandle(const char* name, const char* description = NULL)
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: trace_t(name)
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{}
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/*virtual*/ const char* getUnitLabel() { return LLGetUnitLabel<T>::getUnitLabel(); }
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};
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template<typename T, typename VALUE_T>
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void add(CountStatHandle<T>& count, VALUE_T value)
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{
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T converted_value(value);
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count.getPrimaryAccumulator()->add(storage_value(converted_value));
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}
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template<>
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class TraceType<MemStatAccumulator::AllocationCountFacet>
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: public TraceType<MemStatAccumulator>
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{
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public:
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TraceType(const char* name, const char* description = "")
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: TraceType<MemStatAccumulator>(name, description)
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{}
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};
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template<>
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class TraceType<MemStatAccumulator::DeallocationCountFacet>
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: public TraceType<MemStatAccumulator>
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{
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public:
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TraceType(const char* name, const char* description = "")
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: TraceType<MemStatAccumulator>(name, description)
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{}
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};
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template<>
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class TraceType<MemStatAccumulator::ChildMemFacet>
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: public TraceType<MemStatAccumulator>
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{
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public:
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TraceType(const char* name, const char* description = "")
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: TraceType<MemStatAccumulator>(name, description)
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{}
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};
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class MemStatHandle : public TraceType<MemStatAccumulator>
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{
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public:
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typedef TraceType<MemStatAccumulator> trace_t;
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MemStatHandle(const char* name)
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: trace_t(name)
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{}
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/*virtual*/ const char* getUnitLabel() { return "B"; }
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TraceType<MemStatAccumulator::AllocationCountFacet>& allocationCount()
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{
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return static_cast<TraceType<MemStatAccumulator::AllocationCountFacet>&>(*(TraceType<MemStatAccumulator>*)this);
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}
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TraceType<MemStatAccumulator::DeallocationCountFacet>& deallocationCount()
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{
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return static_cast<TraceType<MemStatAccumulator::DeallocationCountFacet>&>(*(TraceType<MemStatAccumulator>*)this);
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}
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TraceType<MemStatAccumulator::ChildMemFacet>& childMem()
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{
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return static_cast<TraceType<MemStatAccumulator::ChildMemFacet>&>(*(TraceType<MemStatAccumulator>*)this);
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}
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};
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// measures effective memory footprint of specified type
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// specialize to cover different types
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template<typename T>
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struct MemFootprint
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{
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static size_t measure(const T& value)
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{
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return sizeof(T);
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}
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static size_t measure()
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{
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return sizeof(T);
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}
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};
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template<typename T>
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struct MemFootprint<T*>
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{
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static size_t measure(const T* value)
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{
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if (!value)
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{
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return 0;
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}
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return MemFootprint<T>::measure(*value);
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}
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static size_t measure()
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{
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return MemFootprint<T>::measure();
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}
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};
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template<typename T>
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struct MemFootprint<std::basic_string<T> >
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{
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static size_t measure(const std::basic_string<T>& value)
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{
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return value.capacity() * sizeof(T);
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}
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static size_t measure()
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{
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return sizeof(std::basic_string<T>);
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}
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};
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template<typename T>
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struct MemFootprint<std::vector<T> >
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{
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static size_t measure(const std::vector<T>& value)
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{
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return value.capacity() * MemFootprint<T>::measure();
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}
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static size_t measure()
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{
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return sizeof(std::vector<T>);
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}
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};
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template<typename T>
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struct MemFootprint<std::list<T> >
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{
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static size_t measure(const std::list<T>& value)
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{
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return value.size() * (MemFootprint<T>::measure() + sizeof(void*) * 2);
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}
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static size_t measure()
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{
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return sizeof(std::list<T>);
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}
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};
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template<typename DERIVED, size_t ALIGNMENT = LL_DEFAULT_HEAP_ALIGN>
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class MemTrackable
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{
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template<typename TRACKED, typename TRACKED_IS_TRACKER>
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struct TrackMemImpl;
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typedef MemTrackable<DERIVED, ALIGNMENT> mem_trackable_t;
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public:
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typedef void mem_trackable_tag_t;
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virtual ~MemTrackable()
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{
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memDisclaim(mMemFootprint);
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}
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void* operator new(size_t size)
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{
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MemStatAccumulator* accumulator = mem_trackable_t::sMemStat.getPrimaryAccumulator();
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if (accumulator)
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{
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accumulator->mSize.sample(accumulator->mSize.getLastValue() + (F64)size);
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accumulator->mAllocatedCount++;
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}
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return ::operator new(size);
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}
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void operator delete(void* ptr, size_t size)
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{
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MemStatAccumulator* accumulator = mem_trackable_t::sMemStat.getPrimaryAccumulator();
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if (accumulator)
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{
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accumulator->mSize.sample(accumulator->mSize.getLastValue() - (F64)size);
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accumulator->mAllocatedCount--;
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accumulator->mDeallocatedCount++;
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}
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::operator delete(ptr);
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}
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void *operator new [](size_t size)
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{
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MemStatAccumulator* accumulator = mem_trackable_t::sMemStat.getPrimaryAccumulator();
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if (accumulator)
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{
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accumulator->mSize.sample(accumulator->mSize.getLastValue() + (F64)size);
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accumulator->mAllocatedCount++;
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}
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return ::operator new[](size);
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}
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void operator delete[](void* ptr, size_t size)
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{
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MemStatAccumulator* accumulator = mem_trackable_t::sMemStat.getPrimaryAccumulator();
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if (accumulator)
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{
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accumulator->mSize.sample(accumulator->mSize.getLastValue() - (F64)size);
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accumulator->mAllocatedCount--;
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accumulator->mDeallocatedCount++;
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}
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::operator delete[](ptr);
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}
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// claim memory associated with other objects/data as our own, adding to our calculated footprint
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template<typename CLAIM_T>
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CLAIM_T& memClaim(CLAIM_T& value)
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{
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TrackMemImpl<CLAIM_T>::claim(*this, value);
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return value;
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}
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template<typename CLAIM_T>
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const CLAIM_T& memClaim(const CLAIM_T& value)
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{
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TrackMemImpl<CLAIM_T>::claim(*this, value);
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return value;
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}
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template<typename AMOUNT_T>
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AMOUNT_T& memClaimAmount(AMOUNT_T& size)
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{
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MemStatAccumulator* accumulator = sMemStat.getPrimaryAccumulator();
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mMemFootprint += (size_t)size;
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if (accumulator)
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{
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accumulator->mSize.sample(accumulator->mSize.getLastValue() + (F64)size);
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}
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return size;
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}
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// remove memory we had claimed from our calculated footprint
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template<typename CLAIM_T>
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CLAIM_T& memDisclaim(CLAIM_T& value)
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{
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TrackMemImpl<CLAIM_T>::disclaim(*this, value);
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return value;
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}
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template<typename CLAIM_T>
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const CLAIM_T& memDisclaim(const CLAIM_T& value)
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{
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TrackMemImpl<CLAIM_T>::disclaim(*this, value);
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return value;
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}
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template<typename AMOUNT_T>
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AMOUNT_T& memDisclaimAmount(AMOUNT_T& size)
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{
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MemStatAccumulator* accumulator = sMemStat.getPrimaryAccumulator();
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if (accumulator)
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{
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accumulator->mSize.sample(accumulator->mSize.getLastValue() - (F64)size);
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}
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return size;
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}
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private:
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size_t mMemFootprint;
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static MemStatHandle sMemStat;
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template<typename TRACKED, typename TRACKED_IS_TRACKER = void>
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struct TrackMemImpl
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{
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static void claim(mem_trackable_t& tracker, const TRACKED& tracked)
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{
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MemStatAccumulator* accumulator = sMemStat.getPrimaryAccumulator();
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if (accumulator)
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{
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size_t footprint = MemFootprint<TRACKED>::measure(tracked);
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accumulator->mSize.sample(accumulator->mSize.getLastValue() + (F64)footprint);
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tracker.mMemFootprint += footprint;
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}
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}
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static void disclaim(mem_trackable_t& tracker, const TRACKED& tracked)
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{
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MemStatAccumulator* accumulator = sMemStat.getPrimaryAccumulator();
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if (accumulator)
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{
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size_t footprint = MemFootprint<TRACKED>::measure(tracked);
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accumulator->mSize.sample(accumulator->mSize.getLastValue() - (F64)footprint);
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tracker.mMemFootprint -= footprint;
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}
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}
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};
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template<typename TRACKED>
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struct TrackMemImpl<TRACKED, typename TRACKED::mem_trackable_tag_t>
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{
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static void claim(mem_trackable_t& tracker, TRACKED& tracked)
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{
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MemStatAccumulator* accumulator = sMemStat.getPrimaryAccumulator();
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if (accumulator)
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{
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accumulator->mChildSize.sample(accumulator->mChildSize.getLastValue() + (F64)MemFootprint<TRACKED>::measure(tracked));
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}
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}
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static void disclaim(mem_trackable_t& tracker, TRACKED& tracked)
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{
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MemStatAccumulator* accumulator = sMemStat.getPrimaryAccumulator();
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if (accumulator)
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{
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accumulator->mChildSize.sample(accumulator->mChildSize.getLastValue() - (F64)MemFootprint<TRACKED>::measure(tracked));
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}
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}
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};
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};
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template<typename DERIVED, size_t ALIGNMENT>
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MemStatHandle MemTrackable<DERIVED, ALIGNMENT>::sMemStat(typeid(DERIVED).name());
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}
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#endif // LL_LLTRACE_H
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