[4d65515] | 1 | /*
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| 2 | * Copyright (c) 2018 Jaroslav Jindrak
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| 3 | * All rights reserved.
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| 4 | *
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| 5 | * Redistribution and use in source and binary forms, with or without
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| 6 | * modification, are permitted provided that the following conditions
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| 7 | * are met:
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| 8 | *
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| 9 | * - Redistributions of source code must retain the above copyright
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| 10 | * notice, this list of conditions and the following disclaimer.
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| 11 | * - Redistributions in binary form must reproduce the above copyright
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| 12 | * notice, this list of conditions and the following disclaimer in the
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| 13 | * documentation and/or other materials provided with the distribution.
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| 14 | * - The name of the author may not be used to endorse or promote products
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| 15 | * derived from this software without specific prior written permission.
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| 16 | *
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| 17 | * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR
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| 18 | * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES
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| 19 | * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
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| 20 | * IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT,
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| 21 | * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT
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| 22 | * NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
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| 23 | * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
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| 24 | * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
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| 25 | * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF
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| 26 | * THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
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| 27 | */
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| 28 |
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| 29 | #ifndef LIBCPP_INTERNAL_RBTREE_POLICIES
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| 30 | #define LIBCPP_INTERNAL_RBTREE_POLICIES
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| 31 |
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| 32 | #include <internal/rbtree_node.hpp>
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| 33 | #include <utility>
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| 34 |
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| 35 | namespace std::aux
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| 36 | {
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| 37 | struct rbtree_single_policy
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| 38 | {
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[2a482ee] | 39 | template<class Tree, class Key>
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| 40 | static typename Tree::size_type count(const Tree& tree, const Key& key)
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| 41 | {
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| 42 | return tree.find(key) == tree.end() ? 0 : 1;
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| 43 | }
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| 44 |
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| 45 | template<class Tree, class Key>
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[f8bbaa0] | 46 | static typename Tree::size_type erase(Tree& tree, const Key& key)
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| 47 | {
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| 48 | using size_type = typename Tree::size_type;
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| 49 |
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| 50 | auto it = tree.find(key);
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| 51 | if (it == tree.end())
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| 52 | return size_type{};
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| 53 | else
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| 54 | tree.delete_node(it.node());
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| 55 | return size_type{1};
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| 56 | }
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| 57 |
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| 58 | template<class Tree, class Key>
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[647b756] | 59 | static typename Tree::iterator lower_bound(const Tree& tree, const Key& key)
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[f8bbaa0] | 60 | {
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| 61 | using iterator = typename Tree::iterator;
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| 62 |
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[647b756] | 63 | auto it = lower_bound_const(tree, key);
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[f8bbaa0] | 64 |
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[647b756] | 65 | return iterator{it.node(), it.end()};
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[f8bbaa0] | 66 | }
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| 67 |
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| 68 | template<class Tree, class Key>
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| 69 | static typename Tree::const_iterator lower_bound_const(const Tree& tree, const Key& key)
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[2a482ee] | 70 | {
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[f8bbaa0] | 71 | using const_iterator = typename Tree::const_iterator;
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| 72 |
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| 73 | auto node = tree.find_parent_for_insertion(key);
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| 74 | const_iterator it{node, false};
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| 75 | auto beg = tree.begin();
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| 76 | auto end = tree.end();
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| 77 |
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| 78 | if (tree.key_compare_(tree.get_key(*it), key))
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| 79 | {
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| 80 | // Predecessor.
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| 81 | if (it != end)
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| 82 | return ++it;
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| 83 | else
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| 84 | return it;
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| 85 | }
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| 86 | else if (tree.key_compare_(key, tree.get_key(*it)))
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| 87 | {
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| 88 | // Successor.
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| 89 | if (it != beg)
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| 90 | return --it;
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| 91 | else
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| 92 | return it;
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| 93 | }
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| 94 | else // Perfect match.
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| 95 | return it;
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| 96 |
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| 97 | return it;
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[2a482ee] | 98 | }
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| 99 |
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| 100 | template<class Tree, class Key>
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[647b756] | 101 | static typename Tree::iterator upper_bound(const Tree& tree, const Key& key)
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[2a482ee] | 102 | {
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[647b756] | 103 | using iterator = typename Tree::iterator;
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| 104 |
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| 105 | auto it = upper_bound_const(tree, key);
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| 106 |
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| 107 | return iterator{it.node(), it.end()};
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[2a482ee] | 108 | }
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| 109 |
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| 110 | template<class Tree, class Key>
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[f8bbaa0] | 111 | static typename Tree::const_iterator upper_bound_const(const Tree& tree, const Key& key)
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[2a482ee] | 112 | {
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[f8bbaa0] | 113 | /**
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| 114 | * If key isn't in the tree, we get it's
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| 115 | * successor or tree.end(). If key is
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| 116 | * in the tree, we get it.
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| 117 | * In the first case, the successor is also
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| 118 | * the upper bound, so we just return it,
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| 119 | * otherwise (as long as it != end()) we
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| 120 | * increment.
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| 121 | */
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| 122 | auto it = lower_bound_const(tree, key);
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| 123 | if (it == tree.end())
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| 124 | return it;
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| 125 | else if (tree.keys_equal(key, *it))
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| 126 | return ++it;
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| 127 | else
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| 128 | return it;
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[2a482ee] | 129 | }
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| 130 |
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| 131 | template<class Tree, class Key>
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| 132 | static pair<
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| 133 | typename Tree::iterator,
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| 134 | typename Tree::iterator
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[f8bbaa0] | 135 | > equal_range(Tree& tree, const Key& key)
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[2a482ee] | 136 | {
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[f8bbaa0] | 137 | return make_pair(
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| 138 | lower_bound(tree, key),
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| 139 | upper_bound(tree, key)
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| 140 | );
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[2a482ee] | 141 | }
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| 142 |
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| 143 | template<class Tree, class Key>
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| 144 | static pair<
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| 145 | typename Tree::const_iterator,
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| 146 | typename Tree::const_iterator
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| 147 | > equal_range_const(const Tree& tree, const Key& key)
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| 148 | {
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[f8bbaa0] | 149 | return make_pair(
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| 150 | lower_bound_const(tree, key),
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| 151 | upper_bound_const(tree, key)
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| 152 | );
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[2a482ee] | 153 | }
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| 154 |
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| 155 | /**
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| 156 | * Note: We have to duplicate code for emplace, insert(const&)
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| 157 | * and insert(&&) here, because the node (which makes distinction
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| 158 | * between the arguments) is only created if the value isn't
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| 159 | * in the tree already.
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| 160 | */
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| 161 |
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| 162 | template<class Tree, class... Args>
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| 163 | static pair<
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| 164 | typename Tree::iterator, bool
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| 165 | > emplace(Tree& tree, Args&&... args)
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| 166 | {
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| 167 | using value_type = typename Tree::value_type;
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| 168 | using iterator = typename Tree::iterator;
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| 169 | using node_type = typename Tree::node_type;
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| 170 |
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| 171 | auto val = value_type{forward<Args>(args)...};
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[48f09f2f] | 172 | auto parent = tree.find_parent_for_insertion(tree.get_key(val));
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[2a482ee] | 173 |
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[7644d6e] | 174 | if (parent && tree.keys_equal(tree.get_key(parent->value), tree.get_key(val)))
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[647b756] | 175 | return make_pair(iterator{parent, false}, false);
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[2a482ee] | 176 |
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| 177 | auto node = new node_type{move(val)};
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[7644d6e] | 178 | tree.insert_node(node, parent);
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[647b756] | 179 |
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| 180 | return make_pair(iterator{node, false}, true);
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[2a482ee] | 181 | }
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[4d65515] | 182 |
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| 183 | template<class Tree, class Value>
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| 184 | static pair<
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| 185 | typename Tree::iterator, bool
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| 186 | > insert(Tree& tree, const Value& val)
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| 187 | {
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| 188 | using iterator = typename Tree::iterator;
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| 189 | using node_type = typename Tree::node_type;
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| 190 |
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[48f09f2f] | 191 | auto parent = tree.find_parent_for_insertion(tree.get_key(val));
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[7644d6e] | 192 | if (parent && tree.keys_equal(tree.get_key(parent->value), tree.get_key(val)))
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[647b756] | 193 | return make_pair(iterator{parent, false}, false);
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[4d65515] | 194 |
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| 195 | auto node = new node_type{val};
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[7644d6e] | 196 | tree.insert_node(node, parent);
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[647b756] | 197 |
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| 198 | return make_pair(iterator{node, false}, true);
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[4d65515] | 199 | }
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| 200 |
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| 201 | template<class Tree, class Value>
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| 202 | static pair<
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| 203 | typename Tree::iterator, bool
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| 204 | > insert(Tree& tree, Value&& val)
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| 205 | {
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| 206 | using iterator = typename Tree::iterator;
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| 207 | using node_type = typename Tree::node_type;
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| 208 |
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[48f09f2f] | 209 | auto parent = tree.find_parent_for_insertion(tree.get_key(val));
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[7644d6e] | 210 | if (parent && tree.keys_equal(tree.get_key(parent->value), tree.get_key(val)))
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[647b756] | 211 | return make_pair(iterator{parent, false}, false);
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[4d65515] | 212 |
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| 213 | auto node = new node_type{forward<Value>(val)};
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[7644d6e] | 214 | tree.insert_node(node, parent);
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[647b756] | 215 |
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| 216 | return make_pair(iterator{node, false}, true);
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[4d65515] | 217 | }
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| 218 | };
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| 219 |
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| 220 | struct rbtree_multi_policy
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| 221 | {
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[647b756] | 222 | template<class Tree, class Key>
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| 223 | static typename Tree::size_type count(const Tree& tree, const Key& key)
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| 224 | {
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| 225 | using size_type = typename Tree::size_type;
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| 226 |
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| 227 | auto it = tree.find(key);
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| 228 | if (it == tree.end())
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| 229 | return size_type{};
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| 230 |
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| 231 | size_type res{};
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| 232 | while (tree.keys_equal(tree.get_key(*it), key))
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| 233 | {
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| 234 | ++res;
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| 235 | ++it;
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| 236 | }
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| 237 |
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| 238 | return res;
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| 239 | }
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| 240 |
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| 241 | template<class Tree, class Key>
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| 242 | static typename Tree::size_type erase(Tree& tree, const Key& key)
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| 243 | {
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| 244 | using size_type = typename Tree::size_type;
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| 245 |
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| 246 | auto it = tree.find(key);
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| 247 | if (it == tree.end())
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| 248 | return size_type{};
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| 249 |
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| 250 | size_type res{};
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| 251 | while (tree.keys_equal(tree.get_key(*it), key))
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| 252 | {
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| 253 | ++res;
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| 254 | it = tree.erase(it);
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| 255 | }
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| 256 |
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| 257 | return res;
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| 258 | }
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| 259 |
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| 260 | template<class Tree, class Key>
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| 261 | static typename Tree::iterator lower_bound(const Tree& tree, const Key& key)
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| 262 | {
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| 263 | auto it = lower_bound_const(tree, key);
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| 264 |
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| 265 | return typename Tree::iterator{it.node(), it.end()};
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| 266 | }
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| 267 |
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| 268 | template<class Tree, class Key>
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| 269 | static typename Tree::const_iterator lower_bound_const(const Tree& tree, const Key& key)
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| 270 | {
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| 271 | using const_iterator = typename Tree::const_iterator;
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| 272 |
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| 273 | auto node = tree.find_parent_for_insertion(key);
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| 274 | const_iterator it{node, false};
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| 275 | auto beg = tree.begin();
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| 276 | auto end = tree.end();
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| 277 |
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| 278 | if (tree.keys_comp(key, *it))
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| 279 | --it; // Incase we are on a successor.
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| 280 | while (tree.keys_equal(tree.get_key(*it), key) && it != beg)
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| 281 | --it; // Skip keys that are equal.
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| 282 | if (it != beg)
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| 283 | ++it; // If we moved all the way to the start, key is the smallest.
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| 284 |
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| 285 | if (tree.key_compare_(tree.get_key(*it), key))
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| 286 | {
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| 287 | // Predecessor.
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| 288 | if (it != end)
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| 289 | return ++it;
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| 290 | else
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| 291 | return it;
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| 292 | }
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| 293 |
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| 294 | return it;
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| 295 | }
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| 296 |
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| 297 | template<class Tree, class Key>
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| 298 | static typename Tree::iterator upper_bound(const Tree& tree, const Key& key)
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| 299 | {
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| 300 | auto it = upper_bound_const(tree, key);
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| 301 |
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| 302 | return typename Tree::iterator{it.node(), it.end()};
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| 303 | }
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| 304 |
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| 305 | template<class Tree, class Key>
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| 306 | static typename Tree::const_iterator upper_bound_const(const Tree& tree, const Key& key)
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| 307 | {
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| 308 | /**
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| 309 | * If key isn't in the tree, we get it's
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| 310 | * successor or tree.end(). If key is
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| 311 | * in the tree, we get it.
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| 312 | * In the first case, the successor is also
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| 313 | * the upper bound, so we just return it,
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| 314 | * otherwise (as long as it != end()) we
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| 315 | * increment.
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| 316 | */
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| 317 | auto it = lower_bound(tree, key);
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| 318 | if (it == tree.end())
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| 319 | return it;
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| 320 | else if (tree.keys_equal(tree.get_key(*it), key))
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| 321 | {
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| 322 | while (tree.keys_equal(tree.get_key(*it), key))
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| 323 | ++it;
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| 324 |
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| 325 | return it;
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| 326 | }
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| 327 |
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| 328 | return it;
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| 329 | }
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| 330 |
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| 331 | template<class Tree, class Key>
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| 332 | static pair<
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| 333 | typename Tree::iterator,
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| 334 | typename Tree::iterator
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| 335 | > equal_range(const Tree& tree, const Key& key)
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| 336 | {
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| 337 | return make_pair(
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| 338 | lower_bound(tree, key),
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| 339 | upper_bound(tree, key)
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| 340 | );
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| 341 | }
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| 342 |
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| 343 | template<class Tree, class Key>
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| 344 | static pair<
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| 345 | typename Tree::const_iterator,
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| 346 | typename Tree::const_iterator
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| 347 | > equal_range_const(const Tree& tree, const Key& key)
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| 348 | {
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| 349 | return make_pair(
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| 350 | lower_bound_const(tree, key),
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| 351 | upper_bound_const(tree, key)
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| 352 | );
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| 353 | }
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| 354 |
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| 355 | template<class Tree, class... Args>
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| 356 | static typename Tree::iterator emplace(Tree& tree, Args&&... args)
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| 357 | {
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| 358 | using node_type = typename Tree::node_type;
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| 359 |
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| 360 | auto node = node_type{forward<Args>(args)...};
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| 361 |
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| 362 | return insert(tree, node);
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| 363 | }
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| 364 |
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| 365 | template<class Tree, class Value>
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| 366 | static typename Tree::iterator insert(Tree& tree, const Value& val)
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| 367 | {
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| 368 | using node_type = typename Tree::node_type;
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| 369 |
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| 370 | auto node = new node_type{val};
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| 371 |
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| 372 | return insert(tree, node);
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| 373 | }
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| 374 |
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| 375 | template<class Tree, class Value>
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| 376 | static typename Tree::iterator insert(Tree& tree, Value&& val)
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| 377 | {
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| 378 | using node_type = typename Tree::node_type;
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| 379 |
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| 380 | auto node = new node_type{forward<Value>(val)};
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| 381 |
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| 382 | return insert(tree, node);
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| 383 | }
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| 384 |
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| 385 | template<class Tree>
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| 386 | static typename Tree::iterator insert(Tree& tree, typename Tree::node_type* node)
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| 387 | {
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| 388 | using iterator = typename Tree::iterator;
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| 389 |
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[48f09f2f] | 390 | auto parent = tree.find_parent_for_insertion(tree.get_key(node->value));
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[7644d6e] | 391 | tree.insert_node(node, parent);
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[647b756] | 392 |
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| 393 | return iterator{node, false};
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| 394 | }
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[4d65515] | 395 | };
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| 396 | }
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| 397 |
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| 398 | #endif
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| 399 |
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