76c6282de6
This is a Dart-tailored implementation of the "row-displacement dispatch table" technique for closed-world instance calls: All interface targets in the program are grouped into selectors such that all targets that could potentially be called from the same call site have the same selector (currently just grouped by name). Each selector is assigned a selector offset such that offset + classid is unique for all selector/classid combinations where the class implements the selector. At every instance call site that has an interface target (i.e. where the static type of the receiver is not dynamic), the selector offset + receiver classid is computed and used as index into a global table of entry points. If the receiver can be null (as determined by the front-end TFA and the VM type propagation), a null check is inserted before the call. An arguments descriptor is provided (only) for selectors that need it (those which have type parameters or optional/named parameters). The dispatch table calls don't need the monomorphic entry code, so for functions that are only called via dispatch table calls (i.e. never called dynamically), the monomorphic entry code is left out. Some future improvements to the table dispatch implementation are mentioned in https://github.com/dart-lang/sdk/issues/40188 The table dispatch flag is disabled by default in this commit. A separate commit enables the flag. Change-Id: Ic2911742b4a2c9a8d3bc7df60605454cbe4c0714 Reviewed-on: https://dart-review.googlesource.com/c/sdk/+/126648 Commit-Queue: Aske Simon Christensen <askesc@google.com> Reviewed-by: Martin Kustermann <kustermann@google.com> Reviewed-by: Alexander Markov <alexmarkov@google.com>
267 lines
7.0 KiB
C++
267 lines
7.0 KiB
C++
// Copyright (c) 2017, the Dart project authors. Please see the AUTHORS file
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// for details. All rights reserved. Use of this source code is governed by a
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// BSD-style license that can be found in the LICENSE file.
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// Defines growable array classes, that differ where they are allocated:
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// - GrowableArray: allocated on stack.
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// - ZoneGrowableArray: allocated in the zone.
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// - MallocGrowableArray: allocates using malloc/realloc; free is only called
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// at destruction.
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#ifndef RUNTIME_PLATFORM_GROWABLE_ARRAY_H_
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#define RUNTIME_PLATFORM_GROWABLE_ARRAY_H_
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#include "platform/allocation.h"
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#include "platform/utils.h"
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namespace dart {
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template <typename T, typename B, typename Allocator>
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class BaseGrowableArray : public B {
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public:
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explicit BaseGrowableArray(Allocator* allocator)
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: length_(0), capacity_(0), data_(NULL), allocator_(allocator) {}
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BaseGrowableArray(intptr_t initial_capacity, Allocator* allocator)
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: length_(0), capacity_(0), data_(NULL), allocator_(allocator) {
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if (initial_capacity > 0) {
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capacity_ = Utils::RoundUpToPowerOfTwo(initial_capacity);
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data_ = allocator_->template Alloc<T>(capacity_);
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}
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}
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BaseGrowableArray(BaseGrowableArray&& other)
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: length_(other.length_),
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capacity_(other.capacity_),
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data_(other.data_),
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allocator_(other.allocator_) {
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other.length_ = 0;
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other.capacity_ = 0;
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other.data_ = NULL;
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}
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~BaseGrowableArray() { allocator_->template Free<T>(data_, capacity_); }
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BaseGrowableArray& operator=(BaseGrowableArray&& other) {
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intptr_t temp = other.length_;
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other.length_ = length_;
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length_ = temp;
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temp = other.capacity_;
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other.capacity_ = capacity_;
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capacity_ = temp;
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T* temp_data = other.data_;
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other.data_ = data_;
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data_ = temp_data;
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Allocator* temp_allocator = other.allocator_;
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other.allocator_ = allocator_;
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allocator_ = temp_allocator;
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return *this;
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}
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intptr_t length() const { return length_; }
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T* data() const { return data_; }
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bool is_empty() const { return length_ == 0; }
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void TruncateTo(intptr_t length) {
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ASSERT(length_ >= length);
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length_ = length;
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}
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void Add(const T& value) {
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Resize(length() + 1);
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Last() = value;
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}
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T& RemoveLast() {
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ASSERT(length_ > 0);
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T& result = operator[](length_ - 1);
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length_--;
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return result;
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}
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T& operator[](intptr_t index) const {
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ASSERT(0 <= index);
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ASSERT(index < length_);
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ASSERT(length_ <= capacity_);
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return data_[index];
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}
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void FillWith(const T& value, intptr_t start, intptr_t length) {
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ASSERT(start >= 0);
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ASSERT(length >= 0);
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ASSERT(start <= length_);
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Resize(start + length);
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for (intptr_t i = 0; i < length; ++i) {
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data_[start + i] = value;
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}
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}
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void EnsureLength(intptr_t new_length, const T& default_value) {
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const intptr_t old_length = length_;
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if (old_length < new_length) {
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Resize(new_length);
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for (intptr_t i = old_length; i < new_length; ++i) {
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(*this)[i] = default_value;
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}
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}
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}
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const T& At(intptr_t index) const { return operator[](index); }
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T& Last() const {
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ASSERT(length_ > 0);
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return operator[](length_ - 1);
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}
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void AddArray(const BaseGrowableArray<T, B, Allocator>& src) {
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for (intptr_t i = 0; i < src.length(); i++) {
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Add(src[i]);
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}
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}
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void Clear() { length_ = 0; }
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void InsertAt(intptr_t idx, const T& value) {
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Resize(length() + 1);
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for (intptr_t i = length_ - 2; i >= idx; i--) {
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data_[i + 1] = data_[i];
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}
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data_[idx] = value;
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}
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void Reverse() {
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for (intptr_t i = 0; i < length_ / 2; i++) {
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const intptr_t j = length_ - 1 - i;
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T temp = data_[i];
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data_[i] = data_[j];
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data_[j] = temp;
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}
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}
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// Swap entries |i| and |j|.
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void Swap(intptr_t i, intptr_t j) {
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ASSERT(i >= 0);
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ASSERT(j >= 0);
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ASSERT(i < length_);
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ASSERT(j < length_);
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T temp = data_[i];
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data_[i] = data_[j];
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data_[j] = temp;
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}
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// NOTE: Does not preserve array order.
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void RemoveAt(intptr_t i) {
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ASSERT(i >= 0);
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ASSERT(i < length_);
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intptr_t last = length_ - 1;
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if (i < last) {
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Swap(i, last);
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}
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RemoveLast();
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}
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// Preserves array order.
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void EraseAt(intptr_t idx) {
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ASSERT(idx >= 0);
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ASSERT(idx < length_);
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for (intptr_t i = idx; i < length_ - 1; i++) {
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data_[i] = data_[i + 1];
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}
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RemoveLast();
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}
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// The content is uninitialized after calling it.
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void SetLength(intptr_t new_length);
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// Sort the array in place.
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inline void Sort(int compare(const T*, const T*));
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void StealBuffer(T** buffer, intptr_t* length) {
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*buffer = data_;
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*length = length_;
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data_ = NULL;
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length_ = 0;
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capacity_ = 0;
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}
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T* begin() { return &data_[0]; }
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const T* begin() const { return &data_[0]; }
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T* end() { return &data_[length_]; }
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const T* end() const { return &data_[length_]; }
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private:
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intptr_t length_;
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intptr_t capacity_;
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T* data_;
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Allocator* allocator_; // Used to (re)allocate the array.
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// Used for growing the array.
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void Resize(intptr_t new_length);
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DISALLOW_COPY_AND_ASSIGN(BaseGrowableArray);
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};
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template <typename T, typename B, typename Allocator>
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inline void BaseGrowableArray<T, B, Allocator>::Sort(int compare(const T*,
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const T*)) {
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typedef int (*CompareFunction)(const void*, const void*);
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qsort(data_, length_, sizeof(T), reinterpret_cast<CompareFunction>(compare));
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}
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template <typename T, typename B, typename Allocator>
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void BaseGrowableArray<T, B, Allocator>::Resize(intptr_t new_length) {
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if (new_length > capacity_) {
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intptr_t new_capacity = Utils::RoundUpToPowerOfTwo(new_length);
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T* new_data =
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allocator_->template Realloc<T>(data_, capacity_, new_capacity);
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ASSERT(new_data != NULL);
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data_ = new_data;
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capacity_ = new_capacity;
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}
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length_ = new_length;
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}
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template <typename T, typename B, typename Allocator>
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void BaseGrowableArray<T, B, Allocator>::SetLength(intptr_t new_length) {
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if (new_length > capacity_) {
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T* new_data = allocator_->template Alloc<T>(new_length);
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ASSERT(new_data != NULL);
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data_ = new_data;
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capacity_ = new_length;
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}
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length_ = new_length;
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}
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class Malloc : public AllStatic {
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public:
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template <class T>
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static inline T* Alloc(intptr_t len) {
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return reinterpret_cast<T*>(malloc(len * sizeof(T)));
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}
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template <class T>
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static inline T* Realloc(T* old_array, intptr_t old_len, intptr_t new_len) {
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return reinterpret_cast<T*>(realloc(old_array, new_len * sizeof(T)));
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}
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template <class T>
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static inline void Free(T* old_array, intptr_t old_len) {
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free(old_array);
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}
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};
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class EmptyBase {};
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template <typename T>
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class MallocGrowableArray : public BaseGrowableArray<T, EmptyBase, Malloc> {
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public:
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explicit MallocGrowableArray(intptr_t initial_capacity)
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: BaseGrowableArray<T, EmptyBase, Malloc>(initial_capacity, NULL) {}
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MallocGrowableArray() : BaseGrowableArray<T, EmptyBase, Malloc>(NULL) {}
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};
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} // namespace dart
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#endif // RUNTIME_PLATFORM_GROWABLE_ARRAY_H_
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