1100 lines
39 KiB
C++
1100 lines
39 KiB
C++
/*
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* Copyright (c) 2021 The WebRTC project authors. All Rights Reserved.
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*
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* Use of this source code is governed by a BSD-style license
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* that can be found in the LICENSE file in the root of the source
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* tree. An additional intellectual property rights grant can be found
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* in the file PATENTS. All contributing project authors may
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* be found in the AUTHORS file in the root of the source tree.
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*/
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// This implementation is borrowed from Chromium.
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#ifndef RTC_BASE_CONTAINERS_FLAT_TREE_H_
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#define RTC_BASE_CONTAINERS_FLAT_TREE_H_
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#include <algorithm>
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#include <iterator>
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#include <type_traits>
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#include <utility>
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#include <vector>
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#include "absl/algorithm/container.h"
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#include "rtc_base/checks.h"
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#include "rtc_base/system/no_unique_address.h"
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namespace webrtc {
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// Tag type that allows skipping the sort_and_unique step when constructing a
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// flat_tree in case the underlying container is already sorted and has no
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// duplicate elements.
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struct sorted_unique_t {
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constexpr sorted_unique_t() = default;
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};
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extern sorted_unique_t sorted_unique;
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namespace flat_containers_internal {
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// Helper functions used in RTC_DCHECKs below to make sure that inputs tagged
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// with sorted_unique are indeed sorted and unique.
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template <typename Range, typename Comp>
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constexpr bool is_sorted_and_unique(const Range& range, Comp comp) {
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// Being unique implies that there are no adjacent elements that
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// compare equal. So this checks that each element is strictly less
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// than the element after it.
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return absl::c_adjacent_find(range, std::not_fn(comp)) == std::end(range);
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}
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// This is a convenience trait inheriting from std::true_type if Iterator is at
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// least a ForwardIterator and thus supports multiple passes over a range.
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template <class Iterator>
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using is_multipass =
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std::is_base_of<std::forward_iterator_tag,
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typename std::iterator_traits<Iterator>::iterator_category>;
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// Uses SFINAE to detect whether type has is_transparent member.
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template <typename T, typename = void>
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struct IsTransparentCompare : std::false_type {};
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template <typename T>
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struct IsTransparentCompare<T, std::void_t<typename T::is_transparent>>
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: std::true_type {};
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// Helper inspired by C++20's std::to_array to convert a C-style array to a
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// std::array. As opposed to the C++20 version this implementation does not
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// provide an overload for rvalues and does not strip cv qualifers from the
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// returned std::array::value_type. The returned value_type needs to be
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// specified explicitly, allowing the construction of std::arrays with const
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// elements.
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//
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// Reference: https://en.cppreference.com/w/cpp/container/array/to_array
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template <typename U, typename T, size_t N, size_t... I>
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constexpr std::array<U, N> ToArrayImpl(const T (&data)[N],
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std::index_sequence<I...>) {
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return {{data[I]...}};
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}
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template <typename U, typename T, size_t N>
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constexpr std::array<U, N> ToArray(const T (&data)[N]) {
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return ToArrayImpl<U>(data, std::make_index_sequence<N>());
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}
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// std::pair's operator= is not constexpr prior to C++20. Thus we need this
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// small helper to invoke operator= on the .first and .second member explicitly.
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template <typename T>
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constexpr void Assign(T& lhs, T&& rhs) {
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lhs = std::move(rhs);
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}
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template <typename T, typename U>
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constexpr void Assign(std::pair<T, U>& lhs, std::pair<T, U>&& rhs) {
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Assign(lhs.first, std::move(rhs.first));
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Assign(lhs.second, std::move(rhs.second));
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}
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// constexpr swap implementation. std::swap is not constexpr prior to C++20.
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template <typename T>
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constexpr void Swap(T& lhs, T& rhs) {
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T tmp = std::move(lhs);
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Assign(lhs, std::move(rhs));
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Assign(rhs, std::move(tmp));
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}
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// constexpr prev implementation. std::prev is not constexpr prior to C++17.
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template <typename BidirIt>
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constexpr BidirIt Prev(BidirIt it) {
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return --it;
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}
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// constexpr next implementation. std::next is not constexpr prior to C++17.
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template <typename InputIt>
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constexpr InputIt Next(InputIt it) {
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return ++it;
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}
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// constexpr sort implementation. std::sort is not constexpr prior to C++20.
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// While insertion sort has a quadratic worst case complexity, it was chosen
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// because it has linear complexity for nearly sorted data, is stable, and
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// simple to implement.
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template <typename BidirIt, typename Compare>
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constexpr void InsertionSort(BidirIt first, BidirIt last, const Compare& comp) {
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if (first == last)
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return;
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for (auto it = Next(first); it != last; ++it) {
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for (auto curr = it; curr != first && comp(*curr, *Prev(curr)); --curr)
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Swap(*curr, *Prev(curr));
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}
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}
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// Implementation -------------------------------------------------------------
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// Implementation for the sorted associative flat_set and flat_map using a
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// sorted vector as the backing store. Do not use directly.
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//
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// The use of "value" in this is like std::map uses, meaning it's the thing
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// contained (in the case of map it's a <Kay, Mapped> pair). The Key is how
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// things are looked up. In the case of a set, Key == Value. In the case of
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// a map, the Key is a component of a Value.
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//
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// The helper class GetKeyFromValue provides the means to extract a key from a
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// value for comparison purposes. It should implement:
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// const Key& operator()(const Value&).
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template <class Key, class GetKeyFromValue, class KeyCompare, class Container>
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class flat_tree {
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public:
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// --------------------------------------------------------------------------
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// Types.
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//
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using key_type = Key;
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using key_compare = KeyCompare;
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using value_type = typename Container::value_type;
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// Wraps the templated key comparison to compare values.
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struct value_compare {
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constexpr bool operator()(const value_type& left,
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const value_type& right) const {
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GetKeyFromValue extractor;
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return comp(extractor(left), extractor(right));
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}
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RTC_NO_UNIQUE_ADDRESS key_compare comp;
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};
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using pointer = typename Container::pointer;
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using const_pointer = typename Container::const_pointer;
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using reference = typename Container::reference;
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using const_reference = typename Container::const_reference;
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using size_type = typename Container::size_type;
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using difference_type = typename Container::difference_type;
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using iterator = typename Container::iterator;
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using const_iterator = typename Container::const_iterator;
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using reverse_iterator = typename Container::reverse_iterator;
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using const_reverse_iterator = typename Container::const_reverse_iterator;
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using container_type = Container;
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// --------------------------------------------------------------------------
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// Lifetime.
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//
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// Constructors that take range guarantee O(N * log^2(N)) + O(N) complexity
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// and take O(N * log(N)) + O(N) if extra memory is available (N is a range
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// length).
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//
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// Assume that move constructors invalidate iterators and references.
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//
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// The constructors that take ranges, lists, and vectors do not require that
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// the input be sorted.
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//
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// When passing the webrtc::sorted_unique tag as the first argument no sort
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// and unique step takes places. This is useful if the underlying container
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// already has the required properties.
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flat_tree() = default;
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flat_tree(const flat_tree&) = default;
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flat_tree(flat_tree&&) = default;
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explicit flat_tree(const key_compare& comp);
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template <class InputIterator>
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flat_tree(InputIterator first,
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InputIterator last,
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const key_compare& comp = key_compare());
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flat_tree(const container_type& items,
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const key_compare& comp = key_compare());
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explicit flat_tree(container_type&& items,
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const key_compare& comp = key_compare());
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flat_tree(std::initializer_list<value_type> ilist,
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const key_compare& comp = key_compare());
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template <class InputIterator>
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flat_tree(sorted_unique_t,
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InputIterator first,
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InputIterator last,
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const key_compare& comp = key_compare());
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flat_tree(sorted_unique_t,
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const container_type& items,
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const key_compare& comp = key_compare());
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constexpr flat_tree(sorted_unique_t,
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container_type&& items,
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const key_compare& comp = key_compare());
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flat_tree(sorted_unique_t,
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std::initializer_list<value_type> ilist,
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const key_compare& comp = key_compare());
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~flat_tree() = default;
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// --------------------------------------------------------------------------
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// Assignments.
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//
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// Assume that move assignment invalidates iterators and references.
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flat_tree& operator=(const flat_tree&) = default;
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flat_tree& operator=(flat_tree&&) = default;
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// Takes the first if there are duplicates in the initializer list.
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flat_tree& operator=(std::initializer_list<value_type> ilist);
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// --------------------------------------------------------------------------
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// Memory management.
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//
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// Beware that shrink_to_fit() simply forwards the request to the
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// container_type and its implementation is free to optimize otherwise and
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// leave capacity() to be greater that its size.
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//
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// reserve() and shrink_to_fit() invalidate iterators and references.
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void reserve(size_type new_capacity);
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size_type capacity() const;
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void shrink_to_fit();
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// --------------------------------------------------------------------------
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// Size management.
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//
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// clear() leaves the capacity() of the flat_tree unchanged.
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void clear();
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constexpr size_type size() const;
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constexpr size_type max_size() const;
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constexpr bool empty() const;
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// --------------------------------------------------------------------------
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// Iterators.
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//
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// Iterators follow the ordering defined by the key comparator used in
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// construction of the flat_tree.
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iterator begin();
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constexpr const_iterator begin() const;
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const_iterator cbegin() const;
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iterator end();
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constexpr const_iterator end() const;
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const_iterator cend() const;
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reverse_iterator rbegin();
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const_reverse_iterator rbegin() const;
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const_reverse_iterator crbegin() const;
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reverse_iterator rend();
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const_reverse_iterator rend() const;
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const_reverse_iterator crend() const;
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// --------------------------------------------------------------------------
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// Insert operations.
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//
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// Assume that every operation invalidates iterators and references.
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// Insertion of one element can take O(size). Capacity of flat_tree grows in
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// an implementation-defined manner.
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//
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// NOTE: Prefer to build a new flat_tree from a std::vector (or similar)
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// instead of calling insert() repeatedly.
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std::pair<iterator, bool> insert(const value_type& val);
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std::pair<iterator, bool> insert(value_type&& val);
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iterator insert(const_iterator position_hint, const value_type& x);
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iterator insert(const_iterator position_hint, value_type&& x);
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// This method inserts the values from the range [first, last) into the
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// current tree.
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template <class InputIterator>
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void insert(InputIterator first, InputIterator last);
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template <class... Args>
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std::pair<iterator, bool> emplace(Args&&... args);
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template <class... Args>
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iterator emplace_hint(const_iterator position_hint, Args&&... args);
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// --------------------------------------------------------------------------
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// Underlying type operations.
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//
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// Assume that either operation invalidates iterators and references.
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// Extracts the container_type and returns it to the caller. Ensures that
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// `this` is `empty()` afterwards.
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container_type extract() &&;
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// Replaces the container_type with `body`. Expects that `body` is sorted
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// and has no repeated elements with regard to value_comp().
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void replace(container_type&& body);
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// --------------------------------------------------------------------------
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// Erase operations.
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//
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// Assume that every operation invalidates iterators and references.
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//
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// erase(position), erase(first, last) can take O(size).
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// erase(key) may take O(size) + O(log(size)).
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//
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// Prefer webrtc::EraseIf() or some other variation on erase(remove(), end())
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// idiom when deleting multiple non-consecutive elements.
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iterator erase(iterator position);
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// Artificially templatized to break ambiguity if `iterator` and
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// `const_iterator` are the same type.
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template <typename DummyT = void>
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iterator erase(const_iterator position);
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iterator erase(const_iterator first, const_iterator last);
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template <typename K>
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size_type erase(const K& key);
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// --------------------------------------------------------------------------
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// Comparators.
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constexpr key_compare key_comp() const;
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constexpr value_compare value_comp() const;
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// --------------------------------------------------------------------------
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// Search operations.
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//
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// Search operations have O(log(size)) complexity.
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template <typename K>
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size_type count(const K& key) const;
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template <typename K>
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iterator find(const K& key);
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template <typename K>
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const_iterator find(const K& key) const;
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template <typename K>
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bool contains(const K& key) const;
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template <typename K>
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std::pair<iterator, iterator> equal_range(const K& key);
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template <typename K>
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std::pair<const_iterator, const_iterator> equal_range(const K& key) const;
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template <typename K>
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iterator lower_bound(const K& key);
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template <typename K>
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const_iterator lower_bound(const K& key) const;
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template <typename K>
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iterator upper_bound(const K& key);
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template <typename K>
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const_iterator upper_bound(const K& key) const;
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// --------------------------------------------------------------------------
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// General operations.
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//
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// Assume that swap invalidates iterators and references.
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//
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// Implementation note: currently we use operator==() and operator<() on
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// std::vector, because they have the same contract we need, so we use them
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// directly for brevity and in case it is more optimal than calling equal()
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// and lexicograhpical_compare(). If the underlying container type is changed,
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// this code may need to be modified.
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void swap(flat_tree& other) noexcept;
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friend bool operator==(const flat_tree& lhs, const flat_tree& rhs) {
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return lhs.body_ == rhs.body_;
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}
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friend bool operator!=(const flat_tree& lhs, const flat_tree& rhs) {
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return !(lhs == rhs);
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}
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friend bool operator<(const flat_tree& lhs, const flat_tree& rhs) {
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return lhs.body_ < rhs.body_;
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}
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friend bool operator>(const flat_tree& lhs, const flat_tree& rhs) {
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return rhs < lhs;
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}
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friend bool operator>=(const flat_tree& lhs, const flat_tree& rhs) {
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return !(lhs < rhs);
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}
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friend bool operator<=(const flat_tree& lhs, const flat_tree& rhs) {
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return !(lhs > rhs);
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}
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friend void swap(flat_tree& lhs, flat_tree& rhs) noexcept { lhs.swap(rhs); }
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protected:
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// Emplaces a new item into the tree that is known not to be in it. This
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// is for implementing map operator[].
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template <class... Args>
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iterator unsafe_emplace(const_iterator position, Args&&... args);
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// Attempts to emplace a new element with key `key`. Only if `key` is not yet
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// present, construct value_type from `args` and insert it. Returns an
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// iterator to the element with key `key` and a bool indicating whether an
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// insertion happened.
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template <class K, class... Args>
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std::pair<iterator, bool> emplace_key_args(const K& key, Args&&... args);
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// Similar to `emplace_key_args`, but checks `hint` first as a possible
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// insertion position.
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template <class K, class... Args>
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std::pair<iterator, bool> emplace_hint_key_args(const_iterator hint,
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const K& key,
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Args&&... args);
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private:
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// Helper class for e.g. lower_bound that can compare a value on the left
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// to a key on the right.
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struct KeyValueCompare {
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// The key comparison object must outlive this class.
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explicit KeyValueCompare(const key_compare& comp) : comp_(comp) {}
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template <typename T, typename U>
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bool operator()(const T& lhs, const U& rhs) const {
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return comp_(extract_if_value_type(lhs), extract_if_value_type(rhs));
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}
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private:
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const key_type& extract_if_value_type(const value_type& v) const {
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GetKeyFromValue extractor;
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return extractor(v);
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}
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template <typename K>
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const K& extract_if_value_type(const K& k) const {
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return k;
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}
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const key_compare& comp_;
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};
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iterator const_cast_it(const_iterator c_it) {
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auto distance = std::distance(cbegin(), c_it);
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return std::next(begin(), distance);
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}
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// This method is inspired by both std::map::insert(P&&) and
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// std::map::insert_or_assign(const K&, V&&). It inserts val if an equivalent
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// element is not present yet, otherwise it overwrites. It returns an iterator
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// to the modified element and a flag indicating whether insertion or
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// assignment happened.
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template <class V>
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std::pair<iterator, bool> insert_or_assign(V&& val) {
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auto position = lower_bound(GetKeyFromValue()(val));
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if (position == end() || value_comp()(val, *position))
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return {body_.emplace(position, std::forward<V>(val)), true};
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*position = std::forward<V>(val);
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return {position, false};
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}
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// This method is similar to insert_or_assign, with the following differences:
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// - Instead of searching [begin(), end()) it only searches [first, last).
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// - In case no equivalent element is found, val is appended to the end of the
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// underlying body and an iterator to the next bigger element in [first,
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// last) is returned.
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template <class V>
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std::pair<iterator, bool> append_or_assign(iterator first,
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iterator last,
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V&& val) {
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auto position = std::lower_bound(first, last, val, value_comp());
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if (position == last || value_comp()(val, *position)) {
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// emplace_back might invalidate position, which is why distance needs to
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// be cached.
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const difference_type distance = std::distance(begin(), position);
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body_.emplace_back(std::forward<V>(val));
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return {std::next(begin(), distance), true};
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}
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*position = std::forward<V>(val);
|
|
return {position, false};
|
|
}
|
|
|
|
// This method is similar to insert, with the following differences:
|
|
// - Instead of searching [begin(), end()) it only searches [first, last).
|
|
// - In case no equivalent element is found, val is appended to the end of the
|
|
// underlying body and an iterator to the next bigger element in [first,
|
|
// last) is returned.
|
|
template <class V>
|
|
std::pair<iterator, bool> append_unique(iterator first,
|
|
iterator last,
|
|
V&& val) {
|
|
auto position = std::lower_bound(first, last, val, value_comp());
|
|
|
|
if (position == last || value_comp()(val, *position)) {
|
|
// emplace_back might invalidate position, which is why distance needs to
|
|
// be cached.
|
|
const difference_type distance = std::distance(begin(), position);
|
|
body_.emplace_back(std::forward<V>(val));
|
|
return {std::next(begin(), distance), true};
|
|
}
|
|
|
|
return {position, false};
|
|
}
|
|
|
|
void sort_and_unique(iterator first, iterator last) {
|
|
// Preserve stability for the unique code below.
|
|
std::stable_sort(first, last, value_comp());
|
|
|
|
// lhs is already <= rhs due to sort, therefore !(lhs < rhs) <=> lhs == rhs.
|
|
auto equal_comp = std::not_fn(value_comp());
|
|
erase(std::unique(first, last, equal_comp), last);
|
|
}
|
|
|
|
void sort_and_unique() { sort_and_unique(begin(), end()); }
|
|
|
|
// To support comparators that may not be possible to default-construct, we
|
|
// have to store an instance of Compare. Since Compare commonly is stateless,
|
|
// we use the RTC_NO_UNIQUE_ADDRESS attribute to save space.
|
|
RTC_NO_UNIQUE_ADDRESS key_compare comp_;
|
|
// Declare after `key_compare_comp_` to workaround GCC ICE. For details
|
|
// see https://crbug.com/1156268
|
|
container_type body_;
|
|
|
|
// If the compare is not transparent we want to construct key_type once.
|
|
template <typename K>
|
|
using KeyTypeOrK = typename std::
|
|
conditional<IsTransparentCompare<key_compare>::value, K, key_type>::type;
|
|
};
|
|
|
|
// ----------------------------------------------------------------------------
|
|
// Lifetime.
|
|
|
|
template <class Key, class GetKeyFromValue, class KeyCompare, class Container>
|
|
flat_tree<Key, GetKeyFromValue, KeyCompare, Container>::flat_tree(
|
|
const KeyCompare& comp)
|
|
: comp_(comp) {}
|
|
|
|
template <class Key, class GetKeyFromValue, class KeyCompare, class Container>
|
|
template <class InputIterator>
|
|
flat_tree<Key, GetKeyFromValue, KeyCompare, Container>::flat_tree(
|
|
InputIterator first,
|
|
InputIterator last,
|
|
const KeyCompare& comp)
|
|
: comp_(comp), body_(first, last) {
|
|
sort_and_unique();
|
|
}
|
|
|
|
template <class Key, class GetKeyFromValue, class KeyCompare, class Container>
|
|
flat_tree<Key, GetKeyFromValue, KeyCompare, Container>::flat_tree(
|
|
const container_type& items,
|
|
const KeyCompare& comp)
|
|
: comp_(comp), body_(items) {
|
|
sort_and_unique();
|
|
}
|
|
|
|
template <class Key, class GetKeyFromValue, class KeyCompare, class Container>
|
|
flat_tree<Key, GetKeyFromValue, KeyCompare, Container>::flat_tree(
|
|
container_type&& items,
|
|
const KeyCompare& comp)
|
|
: comp_(comp), body_(std::move(items)) {
|
|
sort_and_unique();
|
|
}
|
|
|
|
template <class Key, class GetKeyFromValue, class KeyCompare, class Container>
|
|
flat_tree<Key, GetKeyFromValue, KeyCompare, Container>::flat_tree(
|
|
std::initializer_list<value_type> ilist,
|
|
const KeyCompare& comp)
|
|
: flat_tree(std::begin(ilist), std::end(ilist), comp) {}
|
|
|
|
template <class Key, class GetKeyFromValue, class KeyCompare, class Container>
|
|
template <class InputIterator>
|
|
flat_tree<Key, GetKeyFromValue, KeyCompare, Container>::flat_tree(
|
|
sorted_unique_t,
|
|
InputIterator first,
|
|
InputIterator last,
|
|
const KeyCompare& comp)
|
|
: comp_(comp), body_(first, last) {
|
|
RTC_DCHECK(is_sorted_and_unique(*this, value_comp()));
|
|
}
|
|
|
|
template <class Key, class GetKeyFromValue, class KeyCompare, class Container>
|
|
flat_tree<Key, GetKeyFromValue, KeyCompare, Container>::flat_tree(
|
|
sorted_unique_t,
|
|
const container_type& items,
|
|
const KeyCompare& comp)
|
|
: comp_(comp), body_(items) {
|
|
RTC_DCHECK(is_sorted_and_unique(*this, value_comp()));
|
|
}
|
|
|
|
template <class Key, class GetKeyFromValue, class KeyCompare, class Container>
|
|
constexpr flat_tree<Key, GetKeyFromValue, KeyCompare, Container>::flat_tree(
|
|
sorted_unique_t,
|
|
container_type&& items,
|
|
const KeyCompare& comp)
|
|
: comp_(comp), body_(std::move(items)) {
|
|
RTC_DCHECK(is_sorted_and_unique(*this, value_comp()));
|
|
}
|
|
|
|
template <class Key, class GetKeyFromValue, class KeyCompare, class Container>
|
|
flat_tree<Key, GetKeyFromValue, KeyCompare, Container>::flat_tree(
|
|
sorted_unique_t,
|
|
std::initializer_list<value_type> ilist,
|
|
const KeyCompare& comp)
|
|
: flat_tree(sorted_unique, std::begin(ilist), std::end(ilist), comp) {}
|
|
|
|
// ----------------------------------------------------------------------------
|
|
// Assignments.
|
|
|
|
template <class Key, class GetKeyFromValue, class KeyCompare, class Container>
|
|
auto flat_tree<Key, GetKeyFromValue, KeyCompare, Container>::operator=(
|
|
std::initializer_list<value_type> ilist) -> flat_tree& {
|
|
body_ = ilist;
|
|
sort_and_unique();
|
|
return *this;
|
|
}
|
|
|
|
// ----------------------------------------------------------------------------
|
|
// Memory management.
|
|
|
|
template <class Key, class GetKeyFromValue, class KeyCompare, class Container>
|
|
void flat_tree<Key, GetKeyFromValue, KeyCompare, Container>::reserve(
|
|
size_type new_capacity) {
|
|
body_.reserve(new_capacity);
|
|
}
|
|
|
|
template <class Key, class GetKeyFromValue, class KeyCompare, class Container>
|
|
auto flat_tree<Key, GetKeyFromValue, KeyCompare, Container>::capacity() const
|
|
-> size_type {
|
|
return body_.capacity();
|
|
}
|
|
|
|
template <class Key, class GetKeyFromValue, class KeyCompare, class Container>
|
|
void flat_tree<Key, GetKeyFromValue, KeyCompare, Container>::shrink_to_fit() {
|
|
body_.shrink_to_fit();
|
|
}
|
|
|
|
// ----------------------------------------------------------------------------
|
|
// Size management.
|
|
|
|
template <class Key, class GetKeyFromValue, class KeyCompare, class Container>
|
|
void flat_tree<Key, GetKeyFromValue, KeyCompare, Container>::clear() {
|
|
body_.clear();
|
|
}
|
|
|
|
template <class Key, class GetKeyFromValue, class KeyCompare, class Container>
|
|
constexpr auto flat_tree<Key, GetKeyFromValue, KeyCompare, Container>::size()
|
|
const -> size_type {
|
|
return body_.size();
|
|
}
|
|
|
|
template <class Key, class GetKeyFromValue, class KeyCompare, class Container>
|
|
constexpr auto
|
|
flat_tree<Key, GetKeyFromValue, KeyCompare, Container>::max_size() const
|
|
-> size_type {
|
|
return body_.max_size();
|
|
}
|
|
|
|
template <class Key, class GetKeyFromValue, class KeyCompare, class Container>
|
|
constexpr bool flat_tree<Key, GetKeyFromValue, KeyCompare, Container>::empty()
|
|
const {
|
|
return body_.empty();
|
|
}
|
|
|
|
// ----------------------------------------------------------------------------
|
|
// Iterators.
|
|
|
|
template <class Key, class GetKeyFromValue, class KeyCompare, class Container>
|
|
auto flat_tree<Key, GetKeyFromValue, KeyCompare, Container>::begin()
|
|
-> iterator {
|
|
return body_.begin();
|
|
}
|
|
|
|
template <class Key, class GetKeyFromValue, class KeyCompare, class Container>
|
|
constexpr auto flat_tree<Key, GetKeyFromValue, KeyCompare, Container>::begin()
|
|
const -> const_iterator {
|
|
return std::begin(body_);
|
|
}
|
|
|
|
template <class Key, class GetKeyFromValue, class KeyCompare, class Container>
|
|
auto flat_tree<Key, GetKeyFromValue, KeyCompare, Container>::cbegin() const
|
|
-> const_iterator {
|
|
return body_.cbegin();
|
|
}
|
|
|
|
template <class Key, class GetKeyFromValue, class KeyCompare, class Container>
|
|
auto flat_tree<Key, GetKeyFromValue, KeyCompare, Container>::end() -> iterator {
|
|
return body_.end();
|
|
}
|
|
|
|
template <class Key, class GetKeyFromValue, class KeyCompare, class Container>
|
|
constexpr auto flat_tree<Key, GetKeyFromValue, KeyCompare, Container>::end()
|
|
const -> const_iterator {
|
|
return std::end(body_);
|
|
}
|
|
|
|
template <class Key, class GetKeyFromValue, class KeyCompare, class Container>
|
|
auto flat_tree<Key, GetKeyFromValue, KeyCompare, Container>::cend() const
|
|
-> const_iterator {
|
|
return body_.cend();
|
|
}
|
|
|
|
template <class Key, class GetKeyFromValue, class KeyCompare, class Container>
|
|
auto flat_tree<Key, GetKeyFromValue, KeyCompare, Container>::rbegin()
|
|
-> reverse_iterator {
|
|
return body_.rbegin();
|
|
}
|
|
|
|
template <class Key, class GetKeyFromValue, class KeyCompare, class Container>
|
|
auto flat_tree<Key, GetKeyFromValue, KeyCompare, Container>::rbegin() const
|
|
-> const_reverse_iterator {
|
|
return body_.rbegin();
|
|
}
|
|
|
|
template <class Key, class GetKeyFromValue, class KeyCompare, class Container>
|
|
auto flat_tree<Key, GetKeyFromValue, KeyCompare, Container>::crbegin() const
|
|
-> const_reverse_iterator {
|
|
return body_.crbegin();
|
|
}
|
|
|
|
template <class Key, class GetKeyFromValue, class KeyCompare, class Container>
|
|
auto flat_tree<Key, GetKeyFromValue, KeyCompare, Container>::rend()
|
|
-> reverse_iterator {
|
|
return body_.rend();
|
|
}
|
|
|
|
template <class Key, class GetKeyFromValue, class KeyCompare, class Container>
|
|
auto flat_tree<Key, GetKeyFromValue, KeyCompare, Container>::rend() const
|
|
-> const_reverse_iterator {
|
|
return body_.rend();
|
|
}
|
|
|
|
template <class Key, class GetKeyFromValue, class KeyCompare, class Container>
|
|
auto flat_tree<Key, GetKeyFromValue, KeyCompare, Container>::crend() const
|
|
-> const_reverse_iterator {
|
|
return body_.crend();
|
|
}
|
|
|
|
// ----------------------------------------------------------------------------
|
|
// Insert operations.
|
|
//
|
|
// Currently we use position_hint the same way as eastl or boost:
|
|
// https://github.com/electronicarts/EASTL/blob/master/include/EASTL/vector_set.h#L493
|
|
|
|
template <class Key, class GetKeyFromValue, class KeyCompare, class Container>
|
|
auto flat_tree<Key, GetKeyFromValue, KeyCompare, Container>::insert(
|
|
const value_type& val) -> std::pair<iterator, bool> {
|
|
return emplace_key_args(GetKeyFromValue()(val), val);
|
|
}
|
|
|
|
template <class Key, class GetKeyFromValue, class KeyCompare, class Container>
|
|
auto flat_tree<Key, GetKeyFromValue, KeyCompare, Container>::insert(
|
|
value_type&& val) -> std::pair<iterator, bool> {
|
|
return emplace_key_args(GetKeyFromValue()(val), std::move(val));
|
|
}
|
|
|
|
template <class Key, class GetKeyFromValue, class KeyCompare, class Container>
|
|
auto flat_tree<Key, GetKeyFromValue, KeyCompare, Container>::insert(
|
|
const_iterator position_hint,
|
|
const value_type& val) -> iterator {
|
|
return emplace_hint_key_args(position_hint, GetKeyFromValue()(val), val)
|
|
.first;
|
|
}
|
|
|
|
template <class Key, class GetKeyFromValue, class KeyCompare, class Container>
|
|
auto flat_tree<Key, GetKeyFromValue, KeyCompare, Container>::insert(
|
|
const_iterator position_hint,
|
|
value_type&& val) -> iterator {
|
|
return emplace_hint_key_args(position_hint, GetKeyFromValue()(val),
|
|
std::move(val))
|
|
.first;
|
|
}
|
|
|
|
template <class Key, class GetKeyFromValue, class KeyCompare, class Container>
|
|
template <class InputIterator>
|
|
void flat_tree<Key, GetKeyFromValue, KeyCompare, Container>::insert(
|
|
InputIterator first,
|
|
InputIterator last) {
|
|
if (first == last)
|
|
return;
|
|
|
|
// Dispatch to single element insert if the input range contains a single
|
|
// element.
|
|
if (is_multipass<InputIterator>() && std::next(first) == last) {
|
|
insert(end(), *first);
|
|
return;
|
|
}
|
|
|
|
// Provide a convenience lambda to obtain an iterator pointing past the last
|
|
// old element. This needs to be dymanic due to possible re-allocations.
|
|
auto middle = [this, size = size()] { return std::next(begin(), size); };
|
|
|
|
// For batch updates initialize the first insertion point.
|
|
difference_type pos_first_new = size();
|
|
|
|
// Loop over the input range while appending new values and overwriting
|
|
// existing ones, if applicable. Keep track of the first insertion point.
|
|
for (; first != last; ++first) {
|
|
std::pair<iterator, bool> result = append_unique(begin(), middle(), *first);
|
|
if (result.second) {
|
|
pos_first_new =
|
|
std::min(pos_first_new, std::distance(begin(), result.first));
|
|
}
|
|
}
|
|
|
|
// The new elements might be unordered and contain duplicates, so post-process
|
|
// the just inserted elements and merge them with the rest, inserting them at
|
|
// the previously found spot.
|
|
sort_and_unique(middle(), end());
|
|
std::inplace_merge(std::next(begin(), pos_first_new), middle(), end(),
|
|
value_comp());
|
|
}
|
|
|
|
template <class Key, class GetKeyFromValue, class KeyCompare, class Container>
|
|
template <class... Args>
|
|
auto flat_tree<Key, GetKeyFromValue, KeyCompare, Container>::emplace(
|
|
Args&&... args) -> std::pair<iterator, bool> {
|
|
return insert(value_type(std::forward<Args>(args)...));
|
|
}
|
|
|
|
template <class Key, class GetKeyFromValue, class KeyCompare, class Container>
|
|
template <class... Args>
|
|
auto flat_tree<Key, GetKeyFromValue, KeyCompare, Container>::emplace_hint(
|
|
const_iterator position_hint,
|
|
Args&&... args) -> iterator {
|
|
return insert(position_hint, value_type(std::forward<Args>(args)...));
|
|
}
|
|
|
|
// ----------------------------------------------------------------------------
|
|
// Underlying type operations.
|
|
|
|
template <class Key, class GetKeyFromValue, class KeyCompare, class Container>
|
|
auto flat_tree<Key, GetKeyFromValue, KeyCompare, Container>::
|
|
extract() && -> container_type {
|
|
return std::exchange(body_, container_type());
|
|
}
|
|
|
|
template <class Key, class GetKeyFromValue, class KeyCompare, class Container>
|
|
void flat_tree<Key, GetKeyFromValue, KeyCompare, Container>::replace(
|
|
container_type&& body) {
|
|
// Ensure that `body` is sorted and has no repeated elements according to
|
|
// `value_comp()`.
|
|
RTC_DCHECK(is_sorted_and_unique(body, value_comp()));
|
|
body_ = std::move(body);
|
|
}
|
|
|
|
// ----------------------------------------------------------------------------
|
|
// Erase operations.
|
|
|
|
template <class Key, class GetKeyFromValue, class KeyCompare, class Container>
|
|
auto flat_tree<Key, GetKeyFromValue, KeyCompare, Container>::erase(
|
|
iterator position) -> iterator {
|
|
RTC_CHECK(position != body_.end());
|
|
return body_.erase(position);
|
|
}
|
|
|
|
template <class Key, class GetKeyFromValue, class KeyCompare, class Container>
|
|
template <typename DummyT>
|
|
auto flat_tree<Key, GetKeyFromValue, KeyCompare, Container>::erase(
|
|
const_iterator position) -> iterator {
|
|
RTC_CHECK(position != body_.end());
|
|
return body_.erase(position);
|
|
}
|
|
|
|
template <class Key, class GetKeyFromValue, class KeyCompare, class Container>
|
|
template <typename K>
|
|
auto flat_tree<Key, GetKeyFromValue, KeyCompare, Container>::erase(const K& val)
|
|
-> size_type {
|
|
auto eq_range = equal_range(val);
|
|
auto res = std::distance(eq_range.first, eq_range.second);
|
|
erase(eq_range.first, eq_range.second);
|
|
return res;
|
|
}
|
|
|
|
template <class Key, class GetKeyFromValue, class KeyCompare, class Container>
|
|
auto flat_tree<Key, GetKeyFromValue, KeyCompare, Container>::erase(
|
|
const_iterator first,
|
|
const_iterator last) -> iterator {
|
|
return body_.erase(first, last);
|
|
}
|
|
|
|
// ----------------------------------------------------------------------------
|
|
// Comparators.
|
|
|
|
template <class Key, class GetKeyFromValue, class KeyCompare, class Container>
|
|
constexpr auto
|
|
flat_tree<Key, GetKeyFromValue, KeyCompare, Container>::key_comp() const
|
|
-> key_compare {
|
|
return comp_;
|
|
}
|
|
|
|
template <class Key, class GetKeyFromValue, class KeyCompare, class Container>
|
|
constexpr auto
|
|
flat_tree<Key, GetKeyFromValue, KeyCompare, Container>::value_comp() const
|
|
-> value_compare {
|
|
return value_compare{comp_};
|
|
}
|
|
|
|
// ----------------------------------------------------------------------------
|
|
// Search operations.
|
|
|
|
template <class Key, class GetKeyFromValue, class KeyCompare, class Container>
|
|
template <typename K>
|
|
auto flat_tree<Key, GetKeyFromValue, KeyCompare, Container>::count(
|
|
const K& key) const -> size_type {
|
|
auto eq_range = equal_range(key);
|
|
return std::distance(eq_range.first, eq_range.second);
|
|
}
|
|
|
|
template <class Key, class GetKeyFromValue, class KeyCompare, class Container>
|
|
template <typename K>
|
|
auto flat_tree<Key, GetKeyFromValue, KeyCompare, Container>::find(const K& key)
|
|
-> iterator {
|
|
return const_cast_it(std::as_const(*this).find(key));
|
|
}
|
|
|
|
template <class Key, class GetKeyFromValue, class KeyCompare, class Container>
|
|
template <typename K>
|
|
auto flat_tree<Key, GetKeyFromValue, KeyCompare, Container>::find(
|
|
const K& key) const -> const_iterator {
|
|
auto eq_range = equal_range(key);
|
|
return (eq_range.first == eq_range.second) ? end() : eq_range.first;
|
|
}
|
|
|
|
template <class Key, class GetKeyFromValue, class KeyCompare, class Container>
|
|
template <typename K>
|
|
bool flat_tree<Key, GetKeyFromValue, KeyCompare, Container>::contains(
|
|
const K& key) const {
|
|
auto lower = lower_bound(key);
|
|
return lower != end() && !comp_(key, GetKeyFromValue()(*lower));
|
|
}
|
|
|
|
template <class Key, class GetKeyFromValue, class KeyCompare, class Container>
|
|
template <typename K>
|
|
auto flat_tree<Key, GetKeyFromValue, KeyCompare, Container>::equal_range(
|
|
const K& key) -> std::pair<iterator, iterator> {
|
|
auto res = std::as_const(*this).equal_range(key);
|
|
return {const_cast_it(res.first), const_cast_it(res.second)};
|
|
}
|
|
|
|
template <class Key, class GetKeyFromValue, class KeyCompare, class Container>
|
|
template <typename K>
|
|
auto flat_tree<Key, GetKeyFromValue, KeyCompare, Container>::equal_range(
|
|
const K& key) const -> std::pair<const_iterator, const_iterator> {
|
|
auto lower = lower_bound(key);
|
|
|
|
KeyValueCompare comp(comp_);
|
|
if (lower == end() || comp(key, *lower))
|
|
return {lower, lower};
|
|
|
|
return {lower, std::next(lower)};
|
|
}
|
|
|
|
template <class Key, class GetKeyFromValue, class KeyCompare, class Container>
|
|
template <typename K>
|
|
auto flat_tree<Key, GetKeyFromValue, KeyCompare, Container>::lower_bound(
|
|
const K& key) -> iterator {
|
|
return const_cast_it(std::as_const(*this).lower_bound(key));
|
|
}
|
|
|
|
template <class Key, class GetKeyFromValue, class KeyCompare, class Container>
|
|
template <typename K>
|
|
auto flat_tree<Key, GetKeyFromValue, KeyCompare, Container>::lower_bound(
|
|
const K& key) const -> const_iterator {
|
|
static_assert(std::is_convertible<const KeyTypeOrK<K>&, const K&>::value,
|
|
"Requested type cannot be bound to the container's key_type "
|
|
"which is required for a non-transparent compare.");
|
|
|
|
const KeyTypeOrK<K>& key_ref = key;
|
|
|
|
KeyValueCompare comp(comp_);
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|
return absl::c_lower_bound(*this, key_ref, comp);
|
|
}
|
|
|
|
template <class Key, class GetKeyFromValue, class KeyCompare, class Container>
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|
template <typename K>
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|
auto flat_tree<Key, GetKeyFromValue, KeyCompare, Container>::upper_bound(
|
|
const K& key) -> iterator {
|
|
return const_cast_it(std::as_const(*this).upper_bound(key));
|
|
}
|
|
|
|
template <class Key, class GetKeyFromValue, class KeyCompare, class Container>
|
|
template <typename K>
|
|
auto flat_tree<Key, GetKeyFromValue, KeyCompare, Container>::upper_bound(
|
|
const K& key) const -> const_iterator {
|
|
static_assert(std::is_convertible<const KeyTypeOrK<K>&, const K&>::value,
|
|
"Requested type cannot be bound to the container's key_type "
|
|
"which is required for a non-transparent compare.");
|
|
|
|
const KeyTypeOrK<K>& key_ref = key;
|
|
|
|
KeyValueCompare comp(comp_);
|
|
return absl::c_upper_bound(*this, key_ref, comp);
|
|
}
|
|
|
|
// ----------------------------------------------------------------------------
|
|
// General operations.
|
|
|
|
template <class Key, class GetKeyFromValue, class KeyCompare, class Container>
|
|
void flat_tree<Key, GetKeyFromValue, KeyCompare, Container>::swap(
|
|
flat_tree& other) noexcept {
|
|
std::swap(*this, other);
|
|
}
|
|
|
|
template <class Key, class GetKeyFromValue, class KeyCompare, class Container>
|
|
template <class... Args>
|
|
auto flat_tree<Key, GetKeyFromValue, KeyCompare, Container>::unsafe_emplace(
|
|
const_iterator position,
|
|
Args&&... args) -> iterator {
|
|
return body_.emplace(position, std::forward<Args>(args)...);
|
|
}
|
|
|
|
template <class Key, class GetKeyFromValue, class KeyCompare, class Container>
|
|
template <class K, class... Args>
|
|
auto flat_tree<Key, GetKeyFromValue, KeyCompare, Container>::emplace_key_args(
|
|
const K& key,
|
|
Args&&... args) -> std::pair<iterator, bool> {
|
|
auto lower = lower_bound(key);
|
|
if (lower == end() || comp_(key, GetKeyFromValue()(*lower)))
|
|
return {unsafe_emplace(lower, std::forward<Args>(args)...), true};
|
|
return {lower, false};
|
|
}
|
|
|
|
template <class Key, class GetKeyFromValue, class KeyCompare, class Container>
|
|
template <class K, class... Args>
|
|
auto flat_tree<Key, GetKeyFromValue, KeyCompare, Container>::
|
|
emplace_hint_key_args(const_iterator hint, const K& key, Args&&... args)
|
|
-> std::pair<iterator, bool> {
|
|
KeyValueCompare comp(comp_);
|
|
if ((hint == begin() || comp(*std::prev(hint), key))) {
|
|
if (hint == end() || comp(key, *hint)) {
|
|
// *(hint - 1) < key < *hint => key did not exist and hint is correct.
|
|
return {unsafe_emplace(hint, std::forward<Args>(args)...), true};
|
|
}
|
|
if (!comp(*hint, key)) {
|
|
// key == *hint => no-op, return correct hint.
|
|
return {const_cast_it(hint), false};
|
|
}
|
|
}
|
|
// hint was not helpful, dispatch to hintless version.
|
|
return emplace_key_args(key, std::forward<Args>(args)...);
|
|
}
|
|
|
|
// ----------------------------------------------------------------------------
|
|
// Free functions.
|
|
|
|
// Erases all elements that match predicate. It has O(size) complexity.
|
|
template <class Key,
|
|
class GetKeyFromValue,
|
|
class KeyCompare,
|
|
class Container,
|
|
typename Predicate>
|
|
size_t EraseIf(
|
|
webrtc::flat_containers_internal::
|
|
flat_tree<Key, GetKeyFromValue, KeyCompare, Container>& container,
|
|
Predicate pred) {
|
|
auto it = std::remove_if(container.begin(), container.end(),
|
|
std::forward<Predicate>(pred));
|
|
size_t removed = std::distance(it, container.end());
|
|
container.erase(it, container.end());
|
|
return removed;
|
|
}
|
|
|
|
} // namespace flat_containers_internal
|
|
} // namespace webrtc
|
|
|
|
#endif // RTC_BASE_CONTAINERS_FLAT_TREE_H_
|