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242 lines
8.3 KiB
C++
242 lines
8.3 KiB
C++
// Copyright 2013 The Chromium 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 MOJO_PUBLIC_CPP_BINDINGS_ARRAY_H_
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#define MOJO_PUBLIC_CPP_BINDINGS_ARRAY_H_
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#include <string.h>
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#include <algorithm>
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#include <set>
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#include <string>
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#include <vector>
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#include "mojo/public/cpp/bindings/lib/array_internal.h"
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#include "mojo/public/cpp/bindings/lib/bindings_internal.h"
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#include "mojo/public/cpp/bindings/lib/template_util.h"
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#include "mojo/public/cpp/bindings/type_converter.h"
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namespace mojo {
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// Represents a moveable array with contents of type |T|. The array can be null,
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// meaning that no value has been assigned to it. Null is distinct from empty.
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template <typename T>
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class Array {
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MOJO_MOVE_ONLY_TYPE(Array)
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public:
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typedef internal::ArrayTraits<T, internal::IsMoveOnlyType<T>::value> Traits;
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typedef typename Traits::ConstRefType ConstRefType;
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typedef typename Traits::RefType RefType;
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typedef typename Traits::StorageType StorageType;
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typedef typename Traits::ForwardType ForwardType;
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typedef internal::Array_Data<typename internal::WrapperTraits<T>::DataType>
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Data_;
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// Constructs a new array that is null.
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Array() : is_null_(true) {}
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// Constructs a new non-null array of the specified size. The elements will
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// be value-initialized (meaning that they will be initialized by their
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// default constructor, if any, or else zero-initialized).
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explicit Array(size_t size) : vec_(size), is_null_(false) {
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Traits::Initialize(&vec_);
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}
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~Array() { Traits::Finalize(&vec_); }
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// Moves the contents of |other| into this array.
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Array(Array&& other) : is_null_(true) { Take(&other); }
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Array& operator=(Array&& other) {
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Take(&other);
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return *this;
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}
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// Creates a non-null array of the specified size. The elements will be
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// value-initialized (meaning that they will be initialized by their default
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// constructor, if any, or else zero-initialized).
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static Array New(size_t size) { return Array(size).Pass(); }
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// Creates a new array with a copy of the contents of |other|.
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template <typename U>
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static Array From(const U& other) {
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return TypeConverter<Array, U>::Convert(other);
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}
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// Copies the contents of this array to a new object of type |U|.
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template <typename U>
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U To() const {
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return TypeConverter<U, Array>::Convert(*this);
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}
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// Resets the contents of this array back to null.
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void reset() {
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if (!vec_.empty()) {
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Traits::Finalize(&vec_);
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vec_.clear();
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}
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is_null_ = true;
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}
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// Indicates whether the array is null (which is distinct from empty).
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bool is_null() const { return is_null_; }
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// Returns a reference to the first element of the array. Calling this on a
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// null or empty array causes undefined behavior.
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ConstRefType front() const { return vec_.front(); }
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RefType front() { return vec_.front(); }
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// Returns the size of the array, which will be zero if the array is null.
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size_t size() const { return vec_.size(); }
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// Returns a reference to the element at zero-based |offset|. Calling this on
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// an array with size less than |offset|+1 causes undefined behavior.
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ConstRefType at(size_t offset) const { return Traits::at(&vec_, offset); }
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ConstRefType operator[](size_t offset) const { return at(offset); }
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RefType at(size_t offset) { return Traits::at(&vec_, offset); }
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RefType operator[](size_t offset) { return at(offset); }
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// Pushes |value| onto the back of the array. If this array was null, it will
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// become non-null with a size of 1.
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void push_back(ForwardType value) {
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is_null_ = false;
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Traits::PushBack(&vec_, value);
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}
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// Resizes the array to |size| and makes it non-null. Otherwise, works just
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// like the resize method of |std::vector|.
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void resize(size_t size) {
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is_null_ = false;
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Traits::Resize(&vec_, size);
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}
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// Returns a const reference to the |std::vector| managed by this class. If
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// the array is null, this will be an empty vector.
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const std::vector<StorageType>& storage() const { return vec_; }
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operator const std::vector<StorageType>&() const { return vec_; }
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// Swaps the contents of this array with the |other| array, including
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// nullness.
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void Swap(Array* other) {
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std::swap(is_null_, other->is_null_);
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vec_.swap(other->vec_);
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}
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// Swaps the contents of this array with the specified vector, making this
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// array non-null. Since the vector cannot represent null, it will just be
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// made empty if this array is null.
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void Swap(std::vector<StorageType>* other) {
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is_null_ = false;
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vec_.swap(*other);
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}
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// Returns a copy of the array where each value of the new array has been
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// "cloned" from the corresponding value of this array. If this array contains
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// primitive data types, this is equivalent to simply copying the contents.
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// However, if the array contains objects, then each new element is created by
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// calling the |Clone| method of the source element, which should make a copy
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// of the element.
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//
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// Please note that calling this method will fail compilation if the element
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// type cannot be cloned (which usually means that it is a Mojo handle type or
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// a type contains Mojo handles).
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Array Clone() const {
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Array result;
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result.is_null_ = is_null_;
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Traits::Clone(vec_, &result.vec_);
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return result.Pass();
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}
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// Indicates whether the contents of this array are equal to |other|. A null
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// array is only equal to another null array. Elements are compared using the
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// |ValueTraits::Equals| method, which in most cases calls the |Equals| method
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// of the element.
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bool Equals(const Array& other) const {
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if (is_null() != other.is_null())
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return false;
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if (size() != other.size())
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return false;
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for (size_t i = 0; i < size(); ++i) {
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if (!internal::ValueTraits<T>::Equals(at(i), other.at(i)))
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return false;
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}
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return true;
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}
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private:
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typedef std::vector<StorageType> Array::*Testable;
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public:
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operator Testable() const { return is_null_ ? 0 : &Array::vec_; }
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private:
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void Take(Array* other) {
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reset();
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Swap(other);
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}
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std::vector<StorageType> vec_;
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bool is_null_;
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};
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// A |TypeConverter| that will create an |Array<T>| containing a copy of the
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// contents of an |std::vector<E>|, using |TypeConverter<T, E>| to copy each
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// element. The returned array will always be non-null.
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template <typename T, typename E>
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struct TypeConverter<Array<T>, std::vector<E>> {
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static Array<T> Convert(const std::vector<E>& input) {
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Array<T> result(input.size());
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for (size_t i = 0; i < input.size(); ++i)
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result[i] = TypeConverter<T, E>::Convert(input[i]);
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return result.Pass();
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}
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};
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// A |TypeConverter| that will create an |std::vector<E>| containing a copy of
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// the contents of an |Array<T>|, using |TypeConverter<E, T>| to copy each
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// element. If the input array is null, the output vector will be empty.
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template <typename E, typename T>
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struct TypeConverter<std::vector<E>, Array<T>> {
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static std::vector<E> Convert(const Array<T>& input) {
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std::vector<E> result;
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if (!input.is_null()) {
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result.resize(input.size());
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for (size_t i = 0; i < input.size(); ++i)
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result[i] = TypeConverter<E, T>::Convert(input[i]);
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}
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return result;
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}
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};
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// A |TypeConverter| that will create an |Array<T>| containing a copy of the
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// contents of an |std::set<E>|, using |TypeConverter<T, E>| to copy each
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// element. The returned array will always be non-null.
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template <typename T, typename E>
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struct TypeConverter<Array<T>, std::set<E>> {
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static Array<T> Convert(const std::set<E>& input) {
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Array<T> result(0u);
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for (auto i : input)
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result.push_back(TypeConverter<T, E>::Convert(i));
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return result.Pass();
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}
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};
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// A |TypeConverter| that will create an |std::set<E>| containing a copy of
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// the contents of an |Array<T>|, using |TypeConverter<E, T>| to copy each
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// element. If the input array is null, the output set will be empty.
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template <typename E, typename T>
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struct TypeConverter<std::set<E>, Array<T>> {
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static std::set<E> Convert(const Array<T>& input) {
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std::set<E> result;
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if (!input.is_null()) {
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for (size_t i = 0; i < input.size(); ++i)
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result.insert(TypeConverter<E, T>::Convert(input[i]));
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}
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return result;
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}
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};
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} // namespace mojo
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#endif // MOJO_PUBLIC_CPP_BINDINGS_ARRAY_H_
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