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245 lines
10 KiB
C++
245 lines
10 KiB
C++
// Jolt Physics Library (https://github.com/jrouwe/JoltPhysics)
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// SPDX-FileCopyrightText: 2021 Jorrit Rouwe
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// SPDX-License-Identifier: MIT
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#pragma once
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#include <Jolt/Core/Atomics.h>
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JPH_NAMESPACE_BEGIN
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// Forward declares
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template <class T> class Ref;
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template <class T> class RefConst;
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/// Simple class to facilitate reference counting / releasing
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/// Derive your class from RefTarget and you can reference it by using Ref<classname> or RefConst<classname>
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///
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/// Reference counting classes keep an integer which indicates how many references
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/// to the object are active. Reference counting objects are derived from RefTarget
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/// and staT & their life with a reference count of zero. They can then be assigned
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/// to equivalents of pointers (Ref) which will increase the reference count immediately.
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/// If the destructor of Ref is called or another object is assigned to the reference
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/// counting pointer it will decrease the reference count of the object again. If this
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/// reference count becomes zero, the object is destroyed.
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///
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/// This provides a very powerful mechanism to prevent memory leaks, but also gives
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/// some responsibility to the programmer. The most notable point is that you cannot
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/// have one object reference another and have the other reference the first one
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/// back, because this way the reference count of both objects will never become
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/// lower than 1, resulting in a memory leak. By carefully designing your classes
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/// (and particularly identifying who owns who in the class hierarchy) you can avoid
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/// these problems.
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template <class T>
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class RefTarget
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{
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public:
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/// Constructor
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inline RefTarget() = default;
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inline RefTarget(const RefTarget &) { /* Do not copy refcount */ }
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inline ~RefTarget() { JPH_IF_ENABLE_ASSERTS(uint32 value = mRefCount.load(memory_order_relaxed);) JPH_ASSERT(value == 0 || value == cEmbedded); } ///< assert no one is referencing us
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/// Mark this class as embedded, this means the type can be used in a compound or constructed on the stack.
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/// The Release function will never destruct the object, it is assumed the destructor will be called by whoever allocated
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/// the object and at that point in time it is checked that no references are left to the structure.
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inline void SetEmbedded() const { JPH_IF_ENABLE_ASSERTS(uint32 old = ) mRefCount.fetch_add(cEmbedded, memory_order_relaxed); JPH_ASSERT(old < cEmbedded); }
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/// Assignment operator
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inline RefTarget & operator = (const RefTarget &) { /* Don't copy refcount */ return *this; }
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/// Get current refcount of this object
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uint32 GetRefCount() const { return mRefCount.load(memory_order_relaxed); }
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/// Add or release a reference to this object
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inline void AddRef() const
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{
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// Adding a reference can use relaxed memory ordering
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mRefCount.fetch_add(1, memory_order_relaxed);
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}
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inline void Release() const
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{
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#ifndef JPH_TSAN_ENABLED
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// Releasing a reference must use release semantics...
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if (mRefCount.fetch_sub(1, memory_order_release) == 1)
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{
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// ... so that we can use acquire to ensure that we see any updates from other threads that released a ref before deleting the object
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atomic_thread_fence(memory_order_acquire);
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delete static_cast<const T *>(this);
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}
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#else
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// But under TSAN, we cannot use atomic_thread_fence, so we use an acq_rel operation unconditionally instead
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if (mRefCount.fetch_sub(1, memory_order_acq_rel) == 1)
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delete static_cast<const T *>(this);
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#endif
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}
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/// INTERNAL HELPER FUNCTION USED BY SERIALIZATION
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static int sInternalGetRefCountOffset() { return offsetof(T, mRefCount); }
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protected:
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static constexpr uint32 cEmbedded = 0x0ebedded; ///< A large value that gets added to the refcount to mark the object as embedded
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mutable atomic<uint32> mRefCount = 0; ///< Current reference count
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};
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/// Pure virtual version of RefTarget
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class JPH_EXPORT RefTargetVirtual
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{
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public:
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/// Virtual destructor
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virtual ~RefTargetVirtual() = default;
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/// Virtual add reference
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virtual void AddRef() = 0;
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/// Virtual release reference
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virtual void Release() = 0;
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};
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/// Class for automatic referencing, this is the equivalent of a pointer to type T
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/// if you assign a value to this class it will increment the reference count by one
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/// of this object, and if you assign something else it will decrease the reference
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/// count of the first object again. If it reaches a reference count of zero it will
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/// be deleted
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template <class T>
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class Ref
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{
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public:
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/// Constructor
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inline Ref() : mPtr(nullptr) { }
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inline Ref(T *inRHS) : mPtr(inRHS) { AddRef(); }
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inline Ref(const Ref<T> &inRHS) : mPtr(inRHS.mPtr) { AddRef(); }
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inline Ref(Ref<T> &&inRHS) noexcept : mPtr(inRHS.mPtr) { inRHS.mPtr = nullptr; }
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inline ~Ref() { Release(); }
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/// Assignment operators
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inline Ref<T> & operator = (T *inRHS) { if (mPtr != inRHS) { Release(); mPtr = inRHS; AddRef(); } return *this; }
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inline Ref<T> & operator = (const Ref<T> &inRHS) { if (mPtr != inRHS.mPtr) { Release(); mPtr = inRHS.mPtr; AddRef(); } return *this; }
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inline Ref<T> & operator = (Ref<T> &&inRHS) noexcept { if (mPtr != inRHS.mPtr) { Release(); mPtr = inRHS.mPtr; inRHS.mPtr = nullptr; } return *this; }
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/// Casting operators
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inline operator T *() const { return mPtr; }
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/// Access like a normal pointer
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inline T * operator -> () const { return mPtr; }
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inline T & operator * () const { return *mPtr; }
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/// Comparison
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inline bool operator == (const T * inRHS) const { return mPtr == inRHS; }
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inline bool operator == (const Ref<T> &inRHS) const { return mPtr == inRHS.mPtr; }
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inline bool operator != (const T * inRHS) const { return mPtr != inRHS; }
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inline bool operator != (const Ref<T> &inRHS) const { return mPtr != inRHS.mPtr; }
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/// Get pointer
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inline T * GetPtr() const { return mPtr; }
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/// Get hash for this object
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uint64 GetHash() const
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{
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return Hash<T *> { } (mPtr);
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}
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/// INTERNAL HELPER FUNCTION USED BY SERIALIZATION
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void ** InternalGetPointer() { return reinterpret_cast<void **>(&mPtr); }
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private:
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template <class T2> friend class RefConst;
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/// Use "variable = nullptr;" to release an object, do not call these functions
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inline void AddRef() { if (mPtr != nullptr) mPtr->AddRef(); }
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inline void Release() { if (mPtr != nullptr) mPtr->Release(); }
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T * mPtr; ///< Pointer to object that we are reference counting
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};
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/// Class for automatic referencing, this is the equivalent of a CONST pointer to type T
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/// if you assign a value to this class it will increment the reference count by one
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/// of this object, and if you assign something else it will decrease the reference
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/// count of the first object again. If it reaches a reference count of zero it will
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/// be deleted
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template <class T>
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class RefConst
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{
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public:
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/// Constructor
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inline RefConst() : mPtr(nullptr) { }
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inline RefConst(const T * inRHS) : mPtr(inRHS) { AddRef(); }
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inline RefConst(const RefConst<T> &inRHS) : mPtr(inRHS.mPtr) { AddRef(); }
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inline RefConst(RefConst<T> &&inRHS) noexcept : mPtr(inRHS.mPtr) { inRHS.mPtr = nullptr; }
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inline RefConst(const Ref<T> &inRHS) : mPtr(inRHS.mPtr) { AddRef(); }
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inline RefConst(Ref<T> &&inRHS) noexcept : mPtr(inRHS.mPtr) { inRHS.mPtr = nullptr; }
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inline ~RefConst() { Release(); }
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/// Assignment operators
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inline RefConst<T> & operator = (const T * inRHS) { if (mPtr != inRHS) { Release(); mPtr = inRHS; AddRef(); } return *this; }
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inline RefConst<T> & operator = (const RefConst<T> &inRHS) { if (mPtr != inRHS.mPtr) { Release(); mPtr = inRHS.mPtr; AddRef(); } return *this; }
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inline RefConst<T> & operator = (RefConst<T> &&inRHS) noexcept { if (mPtr != inRHS.mPtr) { Release(); mPtr = inRHS.mPtr; inRHS.mPtr = nullptr; } return *this; }
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inline RefConst<T> & operator = (const Ref<T> &inRHS) { if (mPtr != inRHS.mPtr) { Release(); mPtr = inRHS.mPtr; AddRef(); } return *this; }
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inline RefConst<T> & operator = (Ref<T> &&inRHS) noexcept { if (mPtr != inRHS.mPtr) { Release(); mPtr = inRHS.mPtr; inRHS.mPtr = nullptr; } return *this; }
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/// Casting operators
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inline operator const T * () const { return mPtr; }
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/// Access like a normal pointer
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inline const T * operator -> () const { return mPtr; }
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inline const T & operator * () const { return *mPtr; }
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/// Comparison
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inline bool operator == (const T * inRHS) const { return mPtr == inRHS; }
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inline bool operator == (const RefConst<T> &inRHS) const { return mPtr == inRHS.mPtr; }
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inline bool operator == (const Ref<T> &inRHS) const { return mPtr == inRHS.mPtr; }
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inline bool operator != (const T * inRHS) const { return mPtr != inRHS; }
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inline bool operator != (const RefConst<T> &inRHS) const { return mPtr != inRHS.mPtr; }
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inline bool operator != (const Ref<T> &inRHS) const { return mPtr != inRHS.mPtr; }
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/// Get pointer
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inline const T * GetPtr() const { return mPtr; }
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/// Get hash for this object
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uint64 GetHash() const
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{
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return Hash<const T *> { } (mPtr);
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}
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/// INTERNAL HELPER FUNCTION USED BY SERIALIZATION
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void ** InternalGetPointer() { return const_cast<void **>(reinterpret_cast<const void **>(&mPtr)); }
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private:
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/// Use "variable = nullptr;" to release an object, do not call these functions
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inline void AddRef() { if (mPtr != nullptr) mPtr->AddRef(); }
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inline void Release() { if (mPtr != nullptr) mPtr->Release(); }
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const T * mPtr; ///< Pointer to object that we are reference counting
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};
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JPH_NAMESPACE_END
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JPH_SUPPRESS_WARNING_PUSH
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JPH_CLANG_SUPPRESS_WARNING("-Wc++98-compat")
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namespace std
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{
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/// Declare std::hash for Ref
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template <class T>
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struct hash<JPH::Ref<T>>
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{
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size_t operator () (const JPH::Ref<T> &inRHS) const
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{
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return size_t(inRHS.GetHash());
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}
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};
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/// Declare std::hash for RefConst
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template <class T>
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struct hash<JPH::RefConst<T>>
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{
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size_t operator () (const JPH::RefConst<T> &inRHS) const
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{
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return size_t(inRHS.GetHash());
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}
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};
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}
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JPH_SUPPRESS_WARNING_POP
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