ec06bb6ce5
This is a reland of d1b27019d3
Fixes include:
Adding missing file to bazel build
Forward-declaring classing before friend-classing them to fix win/gcc
Add missing v8-isolate.h include for vtune builds
Original change's description:
> [include] Split out v8.h
>
> This moves every single class/function out of include/v8.h into a
> separate header in include/, which v8.h then includes so that
> externally nothing appears to have changed.
>
> Every include of v8.h from inside v8 has been changed to a more
> fine-grained include.
>
> Previously inline functions defined at the bottom of v8.h would call
> private non-inline functions in the V8 class. Since that class is now
> in v8-initialization.h and is rarely included (as that would create
> dependency cycles), this is not possible and so those methods have been
> moved out of the V8 class into the namespace v8::api_internal.
>
> None of the previous files in include/ now #include v8.h, which means
> if embedders were relying on this transitive dependency then it will
> give compile failures.
>
> v8-inspector.h does depend on v8-scripts.h for the time being to ensure
> that Chrome continue to compile but that change will be reverted once
> those transitive #includes in chrome are changed to include it directly.
>
> Full design:
> https://docs.google.com/document/d/1rTD--I8hCAr-Rho1WTumZzFKaDpEp0IJ8ejZtk4nJdA/edit?usp=sharing
>
> Bug: v8:11965
> Change-Id: I53b84b29581632710edc80eb11f819c2097a2877
> Reviewed-on: https://chromium-review.googlesource.com/c/v8/v8/+/3097448
> Reviewed-by: Yang Guo <yangguo@chromium.org>
> Reviewed-by: Camillo Bruni <cbruni@chromium.org>
> Reviewed-by: Jakob Kummerow <jkummerow@chromium.org>
> Reviewed-by: Leszek Swirski <leszeks@chromium.org>
> Reviewed-by: Michael Lippautz <mlippautz@chromium.org>
> Commit-Queue: Dan Elphick <delphick@chromium.org>
> Cr-Commit-Position: refs/heads/main@{#76424}
Cq-Include-Trybots: luci.v8.try:v8_linux_vtunejit
Bug: v8:11965
Change-Id: I99f5d3a73bf8fe25b650adfaf9567dc4e44a09e6
Reviewed-on: https://chromium-review.googlesource.com/c/v8/v8/+/3113629
Reviewed-by: Leszek Swirski <leszeks@chromium.org>
Reviewed-by: Camillo Bruni <cbruni@chromium.org>
Reviewed-by: Michael Lippautz <mlippautz@chromium.org>
Reviewed-by: Jakob Kummerow <jkummerow@chromium.org>
Reviewed-by: Simon Zünd <szuend@chromium.org>
Commit-Queue: Dan Elphick <delphick@chromium.org>
Cr-Commit-Position: refs/heads/main@{#76460}
591 lines
19 KiB
C++
591 lines
19 KiB
C++
// Copyright 2021 the V8 project authors. All rights reserved.
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// Use of this source code is governed by a BSD-style license that can be
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// found in the LICENSE file.
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#ifndef INCLUDE_V8_PERSISTENT_HANDLE_H_
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#define INCLUDE_V8_PERSISTENT_HANDLE_H_
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#include "v8-internal.h" // NOLINT(build/include_directory)
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#include "v8-local-handle.h" // NOLINT(build/include_directory)
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#include "v8-weak-callback-info.h" // NOLINT(build/include_directory)
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#include "v8config.h" // NOLINT(build/include_directory)
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namespace v8 {
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class Isolate;
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template <class K, class V, class T>
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class PersistentValueMapBase;
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template <class V, class T>
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class PersistentValueVector;
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template <class T>
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class Global;
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template <class T>
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class PersistentBase;
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template <class K, class V, class T>
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class PersistentValueMap;
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class Value;
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namespace api_internal {
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V8_EXPORT Value* Eternalize(v8::Isolate* isolate, Value* handle);
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V8_EXPORT internal::Address* CopyGlobalReference(internal::Address* from);
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V8_EXPORT void DisposeGlobal(internal::Address* global_handle);
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V8_EXPORT void MakeWeak(internal::Address** location_addr);
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V8_EXPORT void* ClearWeak(internal::Address* location);
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V8_EXPORT void AnnotateStrongRetainer(internal::Address* location,
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const char* label);
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V8_EXPORT internal::Address* GlobalizeReference(internal::Isolate* isolate,
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internal::Address* handle);
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V8_EXPORT void MoveGlobalReference(internal::Address** from,
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internal::Address** to);
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} // namespace api_internal
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/**
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* Eternal handles are set-once handles that live for the lifetime of the
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* isolate.
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*/
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template <class T>
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class Eternal {
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public:
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V8_INLINE Eternal() : val_(nullptr) {}
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template <class S>
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V8_INLINE Eternal(Isolate* isolate, Local<S> handle) : val_(nullptr) {
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Set(isolate, handle);
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}
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// Can only be safely called if already set.
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V8_INLINE Local<T> Get(Isolate* isolate) const {
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// The eternal handle will never go away, so as with the roots, we don't
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// even need to open a handle.
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return Local<T>(val_);
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}
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V8_INLINE bool IsEmpty() const { return val_ == nullptr; }
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template <class S>
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void Set(Isolate* isolate, Local<S> handle) {
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static_assert(std::is_base_of<T, S>::value, "type check");
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val_ = reinterpret_cast<T*>(
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api_internal::Eternalize(isolate, reinterpret_cast<Value*>(*handle)));
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}
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private:
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T* val_;
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};
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namespace api_internal {
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V8_EXPORT void MakeWeak(internal::Address* location, void* data,
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WeakCallbackInfo<void>::Callback weak_callback,
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WeakCallbackType type);
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} // namespace api_internal
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/**
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* An object reference that is independent of any handle scope. Where
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* a Local handle only lives as long as the HandleScope in which it was
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* allocated, a PersistentBase handle remains valid until it is explicitly
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* disposed using Reset().
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*
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* A persistent handle contains a reference to a storage cell within
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* the V8 engine which holds an object value and which is updated by
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* the garbage collector whenever the object is moved. A new storage
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* cell can be created using the constructor or PersistentBase::Reset and
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* existing handles can be disposed using PersistentBase::Reset.
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*
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*/
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template <class T>
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class PersistentBase {
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public:
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/**
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* If non-empty, destroy the underlying storage cell
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* IsEmpty() will return true after this call.
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*/
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V8_INLINE void Reset();
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/**
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* If non-empty, destroy the underlying storage cell
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* and create a new one with the contents of other if other is non empty
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*/
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template <class S>
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V8_INLINE void Reset(Isolate* isolate, const Local<S>& other);
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/**
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* If non-empty, destroy the underlying storage cell
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* and create a new one with the contents of other if other is non empty
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*/
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template <class S>
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V8_INLINE void Reset(Isolate* isolate, const PersistentBase<S>& other);
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V8_INLINE bool IsEmpty() const { return val_ == nullptr; }
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V8_INLINE void Empty() { val_ = 0; }
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V8_INLINE Local<T> Get(Isolate* isolate) const {
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return Local<T>::New(isolate, *this);
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}
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template <class S>
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V8_INLINE bool operator==(const PersistentBase<S>& that) const {
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internal::Address* a = reinterpret_cast<internal::Address*>(this->val_);
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internal::Address* b = reinterpret_cast<internal::Address*>(that.val_);
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if (a == nullptr) return b == nullptr;
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if (b == nullptr) return false;
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return *a == *b;
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}
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template <class S>
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V8_INLINE bool operator==(const Local<S>& that) const {
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internal::Address* a = reinterpret_cast<internal::Address*>(this->val_);
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internal::Address* b = reinterpret_cast<internal::Address*>(that.val_);
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if (a == nullptr) return b == nullptr;
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if (b == nullptr) return false;
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return *a == *b;
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}
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template <class S>
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V8_INLINE bool operator!=(const PersistentBase<S>& that) const {
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return !operator==(that);
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}
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template <class S>
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V8_INLINE bool operator!=(const Local<S>& that) const {
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return !operator==(that);
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}
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/**
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* Install a finalization callback on this object.
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* NOTE: There is no guarantee as to *when* or even *if* the callback is
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* invoked. The invocation is performed solely on a best effort basis.
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* As always, GC-based finalization should *not* be relied upon for any
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* critical form of resource management!
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*
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* The callback is supposed to reset the handle. No further V8 API may be
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* called in this callback. In case additional work involving V8 needs to be
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* done, a second callback can be scheduled using
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* WeakCallbackInfo<void>::SetSecondPassCallback.
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*/
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template <typename P>
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V8_INLINE void SetWeak(P* parameter,
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typename WeakCallbackInfo<P>::Callback callback,
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WeakCallbackType type);
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/**
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* Turns this handle into a weak phantom handle without finalization callback.
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* The handle will be reset automatically when the garbage collector detects
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* that the object is no longer reachable.
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* A related function Isolate::NumberOfPhantomHandleResetsSinceLastCall
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* returns how many phantom handles were reset by the garbage collector.
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*/
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V8_INLINE void SetWeak();
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template <typename P>
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V8_INLINE P* ClearWeak();
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// TODO(dcarney): remove this.
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V8_INLINE void ClearWeak() { ClearWeak<void>(); }
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/**
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* Annotates the strong handle with the given label, which is then used by the
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* heap snapshot generator as a name of the edge from the root to the handle.
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* The function does not take ownership of the label and assumes that the
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* label is valid as long as the handle is valid.
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*/
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V8_INLINE void AnnotateStrongRetainer(const char* label);
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/** Returns true if the handle's reference is weak. */
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V8_INLINE bool IsWeak() const;
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/**
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* Assigns a wrapper class ID to the handle.
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*/
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V8_INLINE void SetWrapperClassId(uint16_t class_id);
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/**
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* Returns the class ID previously assigned to this handle or 0 if no class ID
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* was previously assigned.
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*/
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V8_INLINE uint16_t WrapperClassId() const;
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PersistentBase(const PersistentBase& other) = delete;
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void operator=(const PersistentBase&) = delete;
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private:
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friend class Isolate;
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friend class Utils;
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template <class F>
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friend class Local;
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template <class F1, class F2>
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friend class Persistent;
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template <class F>
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friend class Global;
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template <class F>
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friend class PersistentBase;
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template <class F>
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friend class ReturnValue;
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template <class F1, class F2, class F3>
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friend class PersistentValueMapBase;
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template <class F1, class F2>
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friend class PersistentValueVector;
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friend class Object;
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explicit V8_INLINE PersistentBase(T* val) : val_(val) {}
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V8_INLINE static T* New(Isolate* isolate, T* that);
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T* val_;
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};
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/**
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* Default traits for Persistent. This class does not allow
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* use of the copy constructor or assignment operator.
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* At present kResetInDestructor is not set, but that will change in a future
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* version.
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*/
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template <class T>
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class NonCopyablePersistentTraits {
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public:
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using NonCopyablePersistent = Persistent<T, NonCopyablePersistentTraits<T>>;
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static const bool kResetInDestructor = false;
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template <class S, class M>
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V8_INLINE static void Copy(const Persistent<S, M>& source,
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NonCopyablePersistent* dest) {
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static_assert(sizeof(S) < 0,
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"NonCopyablePersistentTraits::Copy is not instantiable");
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}
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};
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/**
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* Helper class traits to allow copying and assignment of Persistent.
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* This will clone the contents of storage cell, but not any of the flags, etc.
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*/
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template <class T>
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struct CopyablePersistentTraits {
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using CopyablePersistent = Persistent<T, CopyablePersistentTraits<T>>;
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static const bool kResetInDestructor = true;
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template <class S, class M>
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static V8_INLINE void Copy(const Persistent<S, M>& source,
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CopyablePersistent* dest) {
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// do nothing, just allow copy
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}
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};
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/**
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* A PersistentBase which allows copy and assignment.
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*
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* Copy, assignment and destructor behavior is controlled by the traits
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* class M.
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*
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* Note: Persistent class hierarchy is subject to future changes.
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*/
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template <class T, class M>
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class Persistent : public PersistentBase<T> {
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public:
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/**
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* A Persistent with no storage cell.
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*/
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V8_INLINE Persistent() : PersistentBase<T>(nullptr) {}
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/**
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* Construct a Persistent from a Local.
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* When the Local is non-empty, a new storage cell is created
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* pointing to the same object, and no flags are set.
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*/
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template <class S>
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V8_INLINE Persistent(Isolate* isolate, Local<S> that)
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: PersistentBase<T>(PersistentBase<T>::New(isolate, *that)) {
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static_assert(std::is_base_of<T, S>::value, "type check");
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}
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/**
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* Construct a Persistent from a Persistent.
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* When the Persistent is non-empty, a new storage cell is created
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* pointing to the same object, and no flags are set.
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*/
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template <class S, class M2>
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V8_INLINE Persistent(Isolate* isolate, const Persistent<S, M2>& that)
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: PersistentBase<T>(PersistentBase<T>::New(isolate, *that)) {
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static_assert(std::is_base_of<T, S>::value, "type check");
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}
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/**
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* The copy constructors and assignment operator create a Persistent
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* exactly as the Persistent constructor, but the Copy function from the
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* traits class is called, allowing the setting of flags based on the
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* copied Persistent.
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*/
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V8_INLINE Persistent(const Persistent& that) : PersistentBase<T>(nullptr) {
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Copy(that);
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}
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template <class S, class M2>
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V8_INLINE Persistent(const Persistent<S, M2>& that) : PersistentBase<T>(0) {
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Copy(that);
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}
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V8_INLINE Persistent& operator=(const Persistent& that) {
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Copy(that);
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return *this;
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}
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template <class S, class M2>
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V8_INLINE Persistent& operator=(const Persistent<S, M2>& that) {
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Copy(that);
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return *this;
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}
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/**
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* The destructor will dispose the Persistent based on the
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* kResetInDestructor flags in the traits class. Since not calling dispose
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* can result in a memory leak, it is recommended to always set this flag.
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*/
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V8_INLINE ~Persistent() {
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if (M::kResetInDestructor) this->Reset();
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}
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// TODO(dcarney): this is pretty useless, fix or remove
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template <class S>
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V8_INLINE static Persistent<T>& Cast(const Persistent<S>& that) {
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#ifdef V8_ENABLE_CHECKS
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// If we're going to perform the type check then we have to check
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// that the handle isn't empty before doing the checked cast.
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if (!that.IsEmpty()) T::Cast(*that);
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#endif
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return reinterpret_cast<Persistent<T>&>(const_cast<Persistent<S>&>(that));
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}
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// TODO(dcarney): this is pretty useless, fix or remove
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template <class S>
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V8_INLINE Persistent<S>& As() const {
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return Persistent<S>::Cast(*this);
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}
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private:
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friend class Isolate;
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friend class Utils;
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template <class F>
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friend class Local;
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template <class F1, class F2>
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friend class Persistent;
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template <class F>
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friend class ReturnValue;
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explicit V8_INLINE Persistent(T* that) : PersistentBase<T>(that) {}
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V8_INLINE T* operator*() const { return this->val_; }
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template <class S, class M2>
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V8_INLINE void Copy(const Persistent<S, M2>& that);
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};
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/**
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* A PersistentBase which has move semantics.
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*
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* Note: Persistent class hierarchy is subject to future changes.
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*/
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template <class T>
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class Global : public PersistentBase<T> {
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public:
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/**
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* A Global with no storage cell.
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*/
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V8_INLINE Global() : PersistentBase<T>(nullptr) {}
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/**
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* Construct a Global from a Local.
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* When the Local is non-empty, a new storage cell is created
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* pointing to the same object, and no flags are set.
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*/
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template <class S>
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V8_INLINE Global(Isolate* isolate, Local<S> that)
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: PersistentBase<T>(PersistentBase<T>::New(isolate, *that)) {
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static_assert(std::is_base_of<T, S>::value, "type check");
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}
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/**
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* Construct a Global from a PersistentBase.
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* When the Persistent is non-empty, a new storage cell is created
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* pointing to the same object, and no flags are set.
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*/
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template <class S>
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V8_INLINE Global(Isolate* isolate, const PersistentBase<S>& that)
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: PersistentBase<T>(PersistentBase<T>::New(isolate, that.val_)) {
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static_assert(std::is_base_of<T, S>::value, "type check");
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}
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/**
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* Move constructor.
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*/
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V8_INLINE Global(Global&& other);
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V8_INLINE ~Global() { this->Reset(); }
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/**
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* Move via assignment.
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*/
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template <class S>
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V8_INLINE Global& operator=(Global<S>&& rhs);
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/**
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* Pass allows returning uniques from functions, etc.
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*/
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Global Pass() { return static_cast<Global&&>(*this); }
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/*
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* For compatibility with Chromium's base::Bind (base::Passed).
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*/
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using MoveOnlyTypeForCPP03 = void;
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Global(const Global&) = delete;
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void operator=(const Global&) = delete;
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private:
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template <class F>
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friend class ReturnValue;
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V8_INLINE T* operator*() const { return this->val_; }
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};
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// UniquePersistent is an alias for Global for historical reason.
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template <class T>
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using UniquePersistent = Global<T>;
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/**
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* Interface for iterating through all the persistent handles in the heap.
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*/
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class V8_EXPORT PersistentHandleVisitor {
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public:
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virtual ~PersistentHandleVisitor() = default;
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virtual void VisitPersistentHandle(Persistent<Value>* value,
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uint16_t class_id) {}
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};
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template <class T>
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T* PersistentBase<T>::New(Isolate* isolate, T* that) {
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if (that == nullptr) return nullptr;
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internal::Address* p = reinterpret_cast<internal::Address*>(that);
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return reinterpret_cast<T*>(api_internal::GlobalizeReference(
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reinterpret_cast<internal::Isolate*>(isolate), p));
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}
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template <class T, class M>
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template <class S, class M2>
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void Persistent<T, M>::Copy(const Persistent<S, M2>& that) {
|
|
static_assert(std::is_base_of<T, S>::value, "type check");
|
|
this->Reset();
|
|
if (that.IsEmpty()) return;
|
|
internal::Address* p = reinterpret_cast<internal::Address*>(that.val_);
|
|
this->val_ = reinterpret_cast<T*>(api_internal::CopyGlobalReference(p));
|
|
M::Copy(that, this);
|
|
}
|
|
|
|
template <class T>
|
|
bool PersistentBase<T>::IsWeak() const {
|
|
using I = internal::Internals;
|
|
if (this->IsEmpty()) return false;
|
|
return I::GetNodeState(reinterpret_cast<internal::Address*>(this->val_)) ==
|
|
I::kNodeStateIsWeakValue;
|
|
}
|
|
|
|
template <class T>
|
|
void PersistentBase<T>::Reset() {
|
|
if (this->IsEmpty()) return;
|
|
api_internal::DisposeGlobal(reinterpret_cast<internal::Address*>(this->val_));
|
|
val_ = nullptr;
|
|
}
|
|
|
|
/**
|
|
* If non-empty, destroy the underlying storage cell
|
|
* and create a new one with the contents of other if other is non empty
|
|
*/
|
|
template <class T>
|
|
template <class S>
|
|
void PersistentBase<T>::Reset(Isolate* isolate, const Local<S>& other) {
|
|
static_assert(std::is_base_of<T, S>::value, "type check");
|
|
Reset();
|
|
if (other.IsEmpty()) return;
|
|
this->val_ = New(isolate, other.val_);
|
|
}
|
|
|
|
/**
|
|
* If non-empty, destroy the underlying storage cell
|
|
* and create a new one with the contents of other if other is non empty
|
|
*/
|
|
template <class T>
|
|
template <class S>
|
|
void PersistentBase<T>::Reset(Isolate* isolate,
|
|
const PersistentBase<S>& other) {
|
|
static_assert(std::is_base_of<T, S>::value, "type check");
|
|
Reset();
|
|
if (other.IsEmpty()) return;
|
|
this->val_ = New(isolate, other.val_);
|
|
}
|
|
|
|
template <class T>
|
|
template <typename P>
|
|
V8_INLINE void PersistentBase<T>::SetWeak(
|
|
P* parameter, typename WeakCallbackInfo<P>::Callback callback,
|
|
WeakCallbackType type) {
|
|
using Callback = WeakCallbackInfo<void>::Callback;
|
|
#if (__GNUC__ >= 8) && !defined(__clang__)
|
|
#pragma GCC diagnostic push
|
|
#pragma GCC diagnostic ignored "-Wcast-function-type"
|
|
#endif
|
|
api_internal::MakeWeak(reinterpret_cast<internal::Address*>(this->val_),
|
|
parameter, reinterpret_cast<Callback>(callback), type);
|
|
#if (__GNUC__ >= 8) && !defined(__clang__)
|
|
#pragma GCC diagnostic pop
|
|
#endif
|
|
}
|
|
|
|
template <class T>
|
|
void PersistentBase<T>::SetWeak() {
|
|
api_internal::MakeWeak(reinterpret_cast<internal::Address**>(&this->val_));
|
|
}
|
|
|
|
template <class T>
|
|
template <typename P>
|
|
P* PersistentBase<T>::ClearWeak() {
|
|
return reinterpret_cast<P*>(api_internal::ClearWeak(
|
|
reinterpret_cast<internal::Address*>(this->val_)));
|
|
}
|
|
|
|
template <class T>
|
|
void PersistentBase<T>::AnnotateStrongRetainer(const char* label) {
|
|
api_internal::AnnotateStrongRetainer(
|
|
reinterpret_cast<internal::Address*>(this->val_), label);
|
|
}
|
|
|
|
template <class T>
|
|
void PersistentBase<T>::SetWrapperClassId(uint16_t class_id) {
|
|
using I = internal::Internals;
|
|
if (this->IsEmpty()) return;
|
|
internal::Address* obj = reinterpret_cast<internal::Address*>(this->val_);
|
|
uint8_t* addr = reinterpret_cast<uint8_t*>(obj) + I::kNodeClassIdOffset;
|
|
*reinterpret_cast<uint16_t*>(addr) = class_id;
|
|
}
|
|
|
|
template <class T>
|
|
uint16_t PersistentBase<T>::WrapperClassId() const {
|
|
using I = internal::Internals;
|
|
if (this->IsEmpty()) return 0;
|
|
internal::Address* obj = reinterpret_cast<internal::Address*>(this->val_);
|
|
uint8_t* addr = reinterpret_cast<uint8_t*>(obj) + I::kNodeClassIdOffset;
|
|
return *reinterpret_cast<uint16_t*>(addr);
|
|
}
|
|
|
|
template <class T>
|
|
Global<T>::Global(Global&& other) : PersistentBase<T>(other.val_) {
|
|
if (other.val_ != nullptr) {
|
|
api_internal::MoveGlobalReference(
|
|
reinterpret_cast<internal::Address**>(&other.val_),
|
|
reinterpret_cast<internal::Address**>(&this->val_));
|
|
other.val_ = nullptr;
|
|
}
|
|
}
|
|
|
|
template <class T>
|
|
template <class S>
|
|
Global<T>& Global<T>::operator=(Global<S>&& rhs) {
|
|
static_assert(std::is_base_of<T, S>::value, "type check");
|
|
if (this != &rhs) {
|
|
this->Reset();
|
|
if (rhs.val_ != nullptr) {
|
|
this->val_ = rhs.val_;
|
|
api_internal::MoveGlobalReference(
|
|
reinterpret_cast<internal::Address**>(&rhs.val_),
|
|
reinterpret_cast<internal::Address**>(&this->val_));
|
|
rhs.val_ = nullptr;
|
|
}
|
|
}
|
|
return *this;
|
|
}
|
|
|
|
} // namespace v8
|
|
|
|
#endif // INCLUDE_V8_PERSISTENT_HANDLE_H_
|