608 lines
11 KiB
C++
608 lines
11 KiB
C++
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#define BST_TEMPLATE template < typename Key, typename T, typename Compare, typename Allocator >
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#define BST Bst<Key, T, Compare, Allocator>
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namespace ft {
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//////////////////////
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// Member functions //
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BST_TEMPLATE BST::
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Bst(const Compare& comp, const Allocator& alloc)
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: _size(0)
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, _root(NULL)
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, _comp(comp)
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, _allocator(alloc) {
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_init_sentinel();
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}
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BST_TEMPLATE template < typename InputIt > BST::
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Bst(InputIt first, InputIt last, const Compare& comp, const Allocator& alloc)
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: _size(0)
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, _root(NULL)
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, _comp(comp)
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, _allocator(alloc) {
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_init_sentinel();
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insert(first, last);
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}
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BST_TEMPLATE BST::
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Bst(const Bst& src)
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: _size(0)
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, _root(NULL)
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, _comp(src._comp)
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, _allocator(src._allocator) {
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_init_sentinel();
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*this = src;
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}
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BST_TEMPLATE BST::
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~Bst() {
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clear();
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_allocator_node_sentinel.destroy(_sentinel);
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_allocator_node_sentinel.deallocate(_sentinel, 1);
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}
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BST_TEMPLATE BST& BST::
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operator=(const Bst& rhs) {
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if (this == &rhs)
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return (*this);
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Bst new_bst(rhs.begin(), rhs.end());
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swap(new_bst);
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return (*this);
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}
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////////////////////
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// Element access //
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BST_TEMPLATE T& BST::
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operator[](const Key& key) {
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node<value_type>* n = _root;
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//node<value_type>* prev = NULL;
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while (n)
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{
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//prev = n;
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if (_comp(key, n->value.first))
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n = n->left;
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else if (_comp(n->value.first, key))
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n = n->right;
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else
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return (n->value.second);
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}
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// TODO : Call insert with hint (prev)
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n = insert( ft::make_pair(key, mapped_type()) ).first.getNode();
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return (n->value.second);
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}
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///////////////
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// Iterators //
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BST_TEMPLATE typename BST::iterator BST::
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begin() {
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if (_root)
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return iterator(_root->min(), _sentinel);
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else
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return end();
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}
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BST_TEMPLATE typename BST::const_iterator BST::
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begin() const {
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if (_root)
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return const_iterator(_root->min(), _sentinel);
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else
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return end();
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}
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BST_TEMPLATE typename BST::iterator BST::
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end() { return iterator(NULL, _sentinel); }
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BST_TEMPLATE typename BST::const_iterator BST::
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end() const { return const_iterator(NULL, _sentinel); }
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BST_TEMPLATE typename BST::reverse_iterator BST::
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rbegin() { return reverse_iterator(end()); }
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BST_TEMPLATE typename BST::const_reverse_iterator BST::
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rbegin() const { return const_reverse_iterator(end()); }
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BST_TEMPLATE typename BST::reverse_iterator BST::
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rend() { return reverse_iterator(begin()); }
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BST_TEMPLATE typename BST::const_reverse_iterator BST::
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rend() const { return const_reverse_iterator(begin()); }
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//////////////
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// Capacity //
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BST_TEMPLATE bool BST::
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empty() const { return (_size == 0); }
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BST_TEMPLATE typename BST::size_type BST::
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size() const { return (_size); }
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BST_TEMPLATE typename BST::size_type BST::
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max_size() const
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{
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return ( _allocator_node.max_size() );
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}
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///////////////
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// Modifiers //
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BST_TEMPLATE
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void BST::
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clear()
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{
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// TODO : optimisation jouable ?
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erase(begin(), end());
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//_size = 0;
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}
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BST_TEMPLATE
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pair<typename BST::iterator, bool> BST::
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insert(const value_type& value)
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{
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pair<typename BST::iterator, bool> ret;
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ret = _insert(value);
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if (ret.second == true)
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_insert_rebalancing(ret.first.getNode()->up);
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return (ret);
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}
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BST_TEMPLATE
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typename BST::iterator BST::
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insert(iterator hint, const value_type& value)
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{
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// TODO : optimise with hint
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(void)hint;
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return insert(value).first;
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}
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BST_TEMPLATE
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template < typename InputIt >
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void BST::
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insert(InputIt first, InputIt last)
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{
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//static int i = 0; // Debug
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while (first != last)
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{
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insert(*first);
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++first;
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//std::cout << "c|" << i << "\n";
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//++i;
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}
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}
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BST_TEMPLATE
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void BST::
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erase(iterator pos)
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{
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node<value_type>* delete_point;
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delete_point = _erase(pos);
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_erase_rebalancing(delete_point);
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}
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BST_TEMPLATE
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void BST::
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erase(iterator first, iterator last)
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{
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while (first != last)
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erase(first++);
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}
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BST_TEMPLATE
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typename BST::size_type BST::
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erase(const Key& key)
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{
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iterator pos = find(key);
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if (pos == end())
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return (0);
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else
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{
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erase(pos);
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return (1);
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}
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}
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BST_TEMPLATE
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void BST::
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swap(Bst& other)
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{
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node<value_type>* tmp_root = _root;
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node_sentinel<value_type>* tmp_sentinel = _sentinel;
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size_type tmp_size = _size;
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_root = other._root;
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_sentinel = other._sentinel;
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_size = other._size;
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other._root = tmp_root;
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other._sentinel = tmp_sentinel;
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other._size = tmp_size;
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}
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////////////
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// Lookup //
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BST_TEMPLATE
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typename BST::iterator BST::
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find(const Key& key)
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{
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node<value_type>* n = _root;
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while (n)
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{
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if (_comp(key, n->value.first))
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n = n->left;
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else if (_comp(n->value.first, key))
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n = n->right;
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else
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return (iterator(n, _sentinel));
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}
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return (end());
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}
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BST_TEMPLATE
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typename BST::const_iterator BST::
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find(const Key& key) const
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{
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node<value_type>* n = _root;
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while (n)
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{
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if (_comp(key, n->value.first))
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n = n->left;
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else if (_comp(n->value.first, key))
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n = n->right;
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else
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return (const_iterator(n, _sentinel));
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}
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return (end());
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}
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BST_TEMPLATE
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typename BST::size_type BST::
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count(const Key& key) const
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{
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if (find(key) != end())
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return (1);
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else
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return (0);
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}
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///////////////////////
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// Private functions //
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BST_TEMPLATE
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void BST::
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_init_sentinel()
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{
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_sentinel = _allocator_node_sentinel.allocate(1);
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_allocator_node_sentinel.construct(_sentinel, node_sentinel<value_type>());
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}
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BST_TEMPLATE
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pair<typename BST::iterator, bool> BST::
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_insert(const value_type& value)
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{
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node<value_type>* n = _root;
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node<value_type>* prev = NULL;
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while (n)
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{
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prev = n;
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if (_comp(value.first, n->value.first))
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n = n->left;
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else if (_comp(n->value.first, value.first))
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n = n->right;
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else
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return ft::make_pair(iterator(n, _sentinel), false);
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}
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n = _allocator_node.allocate(1);
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_allocator_node.construct(n, node<value_type>(value));
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if (_root == NULL) // if (_size == 0)
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{
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_root = n;
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_sentinel->child = _root;
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}
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else if (_comp(value.first, prev->value.first))
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prev->left = n;
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else
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prev->right = n;
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n->up = prev;
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++_size;
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return ft::make_pair(iterator(n, _sentinel), true);
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}
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BST_TEMPLATE
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node<typename BST::value_type>* BST::
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_erase(iterator pos)
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{
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node<value_type>* n = pos.getNode();
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node<value_type>* delete_point = NULL;
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if (n->left && n->right) // 2 child
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{
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node<value_type>* next = n->right->min();
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if (next->up != n)
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{
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_subtree_shift(next, next->right);
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next->right = n->right;
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next->right->up = next;
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}
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delete_point = _subtree_shift(n, next);
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next->left = n->left;
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next->left->up = next;
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}
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else if (!n->left && !n->right) // no child (leaf)
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delete_point = _subtree_shift(n, NULL); // bug ?
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else if (n->left) // 1 child
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delete_point = _subtree_shift(n, n->left);
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else if (n->right) // 1 child
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delete_point = _subtree_shift(n, n->right); // bug ?
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_allocator_node.destroy(n);
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_allocator_node.deallocate(n, 1);
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--_size;
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return (delete_point);
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}
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BST_TEMPLATE
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node<typename BST::value_type>* BST::
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_subtree_shift(node<value_type>* st_old, node<value_type>* st_new)
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{
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node<value_type>* p = st_old->up;
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if (st_old == _root)
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{
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_root = st_new;
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_sentinel->child = _root;
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}
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else if (st_old == p->left)
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p->left = st_new;
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else
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p->right = st_new;
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if (st_new == NULL)
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return (p); // return deletion point
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st_new->up = p;
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return (st_new); // return deletion point
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}
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BST_TEMPLATE
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void BST::
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_insert_rebalancing(node<value_type>* n)
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{
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node<value_type>* old_n;
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node<value_type>* parent = NULL;
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while (n)
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{
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n->height = _compute_height(n);
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if (_balance_factor(n) > 1) // Left Heavy
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{
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parent = n->up;
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if (_balance_factor(n->left) < 0) // Left-Right Case (BF == -1)
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n->left = _rotate_left(n->left);
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// Left-Left Case
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n = _rotate_right(n);
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old_n = n->right;
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}
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else if (_balance_factor(n) < -1) // Right Heavy
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{
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parent = n->up;
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if (_balance_factor(n->right) > 0) // Right-Left Case (BF == 1)
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n->right = _rotate_right(n->right);
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// Right-Right Case
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n = _rotate_left(n);
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old_n = n->left;
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}
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if (parent)
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{
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if (parent->left == old_n)
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parent->left = n;
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else
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parent->right = n;
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break;
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}
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n = n->up;
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}
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while (n)
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{
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n->height = _compute_height(n);
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n = n->up;
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}
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}
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BST_TEMPLATE
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void BST::
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_erase_rebalancing(node<value_type>* n)
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{
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node<value_type>* old_n;
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node<value_type>* parent = NULL;
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while (n)
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{
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n->height = _compute_height(n);
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if (_balance_factor(n) > 1) // Left Heavy
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{
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parent = n->up;
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if (_balance_factor(n->left) < 0) // Left-Right Case (BF == -1)
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n->left = _rotate_left(n->left);
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// Left-Left Case
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n = _rotate_right(n);
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old_n = n->right;
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}
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else if (_balance_factor(n) < -1) // Right Heavy
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{
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parent = n->up;
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if (_balance_factor(n->right) > 0) // Right-Left Case (BF == 1)
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n->right = _rotate_right(n->right);
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// Right-Right Case
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n = _rotate_left(n);
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old_n = n->left;
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}
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if (parent)
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{
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if (parent->left == old_n)
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parent->left = n;
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else
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parent->right = n;
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parent = NULL;
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}
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n = n->up;
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}
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}
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BST_TEMPLATE
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short BST::
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_compute_height(node<value_type>* n)
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{
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if (n->left && n->right)
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return std::max(n->left->height, n->right->height) + 1;
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else if (n->left)
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return n->left->height + 1;
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else if (n->right)
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return n->right->height + 1;
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else
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return 1;
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}
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BST_TEMPLATE short BST::
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_balance_factor(node<value_type>* n) {
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if (n->left && n->right)
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return n->left->height - n->right->height;
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else if (n->left)
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return n->left->height;
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else if (n->right)
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return (-(n->right->height));
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else
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return 0;
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}
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BST_TEMPLATE node<typename BST::value_type>* BST::
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_rotate_left(node<value_type>* n) {
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node<value_type>* ori_right = n->right;
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ori_right->up = n->up;
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n->up = ori_right;
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n->right = ori_right->left;
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if (n->right != NULL)
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n->right->up = n;
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ori_right->left = n;
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n->height = _compute_height(n);
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ori_right->height = _compute_height(ori_right);
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if (n == _root)
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{
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_root = ori_right;
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_sentinel->child = _root;
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}
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return ori_right; // return new sub-tree root
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}
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BST_TEMPLATE node<typename BST::value_type>* BST::
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_rotate_right(node<value_type>* n) {
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node<value_type>* ori_left = n->left;
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ori_left->up = n->up;
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n->up = ori_left;
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n->left = ori_left->right;
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if (n->left != NULL)
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n->left->up = n;
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ori_left->right = n;
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n->height = _compute_height(n);
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ori_left->height = _compute_height(ori_left);
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if (n == _root)
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{
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_root = ori_left;
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_sentinel->child = _root;
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}
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return ori_left; // return new sub-tree root
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}
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//////////////////////////
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// Non-member functions //
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BST_TEMPLATE
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bool operator==(const BST& lhs, const BST& rhs)
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{
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if (lhs.size() != rhs.size())
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return false;
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return ft::equal(lhs.begin(), lhs.end(), rhs.begin());
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}
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BST_TEMPLATE
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bool operator!=(const BST& lhs, const BST& rhs)
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{ return !(lhs == rhs); }
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BST_TEMPLATE
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bool operator<(const BST& lhs, const BST& rhs)
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{
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return ft::lexicographical_compare(lhs.begin(), lhs.end(), rhs.begin(), rhs.end());
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}
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BST_TEMPLATE
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bool operator>(const BST& lhs, const BST& rhs)
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{ return (rhs < lhs); }
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BST_TEMPLATE
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bool operator<=(const BST& lhs, const BST& rhs)
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{ return !(lhs > rhs); }
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BST_TEMPLATE
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bool operator>=(const BST& lhs, const BST& rhs)
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{ return !(lhs < rhs); }
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BST_TEMPLATE
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void swap(BST& lhs, BST& rhs)
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{ lhs.swap(rhs); }
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} // namespace ft
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#undef BST
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#undef BST_TEMPLATE
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