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			461 lines
		
	
	
		
			12 KiB
		
	
	
	
		
			C++
		
	
	
	
	
	
// Copyright 2013 Google Inc. All Rights Reserved.
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//
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// Licensed under the Apache License, Version 2.0 (the "License");
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// you may not use this file except in compliance with the License.
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// You may obtain a copy of the License at
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//
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//     http://www.apache.org/licenses/LICENSE-2.0
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//
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// Unless required by applicable law or agreed to in writing, software
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// distributed under the License is distributed on an "AS IS" BASIS,
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// WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
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// See the License for the specific language governing permissions and
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// limitations under the License.
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#ifndef UTIL_BTREE_BTREE_CONTAINER_H__
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#define UTIL_BTREE_BTREE_CONTAINER_H__
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#include <iosfwd>
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#include <utility>
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#include "btree.h"
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namespace btree
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{
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// A common base class for btree_set, btree_map, btree_multiset and
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// btree_multimap.
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template <typename Tree>
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class btree_container
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{
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    typedef btree_container<Tree> self_type;
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public:
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    typedef typename Tree::params_type params_type;
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    typedef typename Tree::key_type key_type;
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    typedef typename Tree::value_type value_type;
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    typedef typename Tree::key_compare key_compare;
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    typedef typename Tree::allocator_type allocator_type;
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    typedef typename Tree::pointer pointer;
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    typedef typename Tree::const_pointer const_pointer;
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    typedef typename Tree::reference reference;
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    typedef typename Tree::const_reference const_reference;
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    typedef typename Tree::size_type size_type;
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    typedef typename Tree::difference_type difference_type;
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    typedef typename Tree::iterator iterator;
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    typedef typename Tree::const_iterator const_iterator;
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    typedef typename Tree::reverse_iterator reverse_iterator;
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    typedef typename Tree::const_reverse_iterator const_reverse_iterator;
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public:
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    // Default constructor.
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    btree_container(const key_compare& comp, const allocator_type& alloc)
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        : tree_(comp, alloc)
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    {
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    }
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    // Copy constructor.
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    btree_container(const self_type& x)
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        : tree_(x.tree_)
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    {
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    }
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    // Iterator routines.
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    iterator begin()
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    {
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        return tree_.begin();
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    }
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    const_iterator begin() const
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    {
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        return tree_.begin();
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    }
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    iterator end()
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    {
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        return tree_.end();
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    }
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    const_iterator end() const
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    {
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        return tree_.end();
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    }
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    reverse_iterator rbegin()
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    {
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        return tree_.rbegin();
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    }
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    const_reverse_iterator rbegin() const
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    {
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        return tree_.rbegin();
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    }
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    reverse_iterator rend()
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    {
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        return tree_.rend();
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    }
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    const_reverse_iterator rend() const
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    {
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        return tree_.rend();
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    }
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    // Lookup routines.
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    iterator lower_bound(const key_type& key)
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    {
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        return tree_.lower_bound(key);
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    }
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    const_iterator lower_bound(const key_type& key) const
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    {
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        return tree_.lower_bound(key);
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    }
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    iterator upper_bound(const key_type& key)
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    {
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        return tree_.upper_bound(key);
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    }
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    const_iterator upper_bound(const key_type& key) const
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    {
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        return tree_.upper_bound(key);
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    }
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    std::pair<iterator, iterator> equal_range(const key_type& key)
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    {
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        return tree_.equal_range(key);
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    }
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    std::pair<const_iterator, const_iterator> equal_range(const key_type& key) const
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    {
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        return tree_.equal_range(key);
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    }
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    // Utility routines.
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    void clear()
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    {
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        tree_.clear();
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    }
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    void swap(self_type& x)
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    {
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        tree_.swap(x.tree_);
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    }
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    void dump(std::ostream& os) const
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    {
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        tree_.dump(os);
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    }
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    void verify() const
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    {
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        tree_.verify();
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    }
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    // Size routines.
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    size_type size() const
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    {
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        return tree_.size();
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    }
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    size_type max_size() const
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    {
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        return tree_.max_size();
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    }
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    bool empty() const
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    {
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        return tree_.empty();
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    }
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    size_type height() const
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    {
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        return tree_.height();
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    }
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    size_type internal_nodes() const
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    {
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        return tree_.internal_nodes();
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    }
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    size_type leaf_nodes() const
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    {
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        return tree_.leaf_nodes();
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    }
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    size_type nodes() const
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    {
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        return tree_.nodes();
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    }
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    size_type bytes_used() const
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    {
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        return tree_.bytes_used();
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    }
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    static double average_bytes_per_value()
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    {
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        return Tree::average_bytes_per_value();
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    }
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    double fullness() const
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    {
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        return tree_.fullness();
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    }
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    double overhead() const
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    {
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        return tree_.overhead();
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    }
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    bool operator==(const self_type& x) const
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    {
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        if (size() != x.size())
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        {
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            return false;
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        }
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        for (const_iterator i = begin(), xi = x.begin(); i != end(); ++i, ++xi)
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        {
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            if (*i != *xi)
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            {
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                return false;
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            }
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        }
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        return true;
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    }
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    bool operator!=(const self_type& other) const
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    {
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        return !operator==(other);
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    }
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protected:
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    Tree tree_;
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};
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template <typename T>
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inline std::ostream& operator<<(std::ostream& os, const btree_container<T>& b)
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{
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    b.dump(os);
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    return os;
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}
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// A common base class for btree_set and safe_btree_set.
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template <typename Tree>
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class btree_unique_container : public btree_container<Tree>
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{
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    typedef btree_unique_container<Tree> self_type;
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    typedef btree_container<Tree> super_type;
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public:
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    typedef typename Tree::key_type key_type;
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    typedef typename Tree::value_type value_type;
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    typedef typename Tree::size_type size_type;
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    typedef typename Tree::key_compare key_compare;
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    typedef typename Tree::allocator_type allocator_type;
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    typedef typename Tree::iterator iterator;
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    typedef typename Tree::const_iterator const_iterator;
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public:
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    // Default constructor.
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    btree_unique_container(const key_compare& comp = key_compare(),
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                           const allocator_type& alloc = allocator_type())
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        : super_type(comp, alloc)
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    {
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    }
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    // Copy constructor.
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    btree_unique_container(const self_type& x)
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        : super_type(x)
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    {
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    }
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    // Range constructor.
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    template <class InputIterator>
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    btree_unique_container(InputIterator b, InputIterator e,
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                           const key_compare& comp = key_compare(),
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                           const allocator_type& alloc = allocator_type())
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        : super_type(comp, alloc)
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    {
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        insert(b, e);
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    }
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    // Lookup routines.
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    iterator find(const key_type& key)
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    {
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        return this->tree_.find_unique(key);
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    }
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    const_iterator find(const key_type& key) const
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    {
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        return this->tree_.find_unique(key);
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    }
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    size_type count(const key_type& key) const
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    {
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        return this->tree_.count_unique(key);
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    }
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    // Insertion routines.
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    std::pair<iterator, bool> insert(const value_type& x)
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    {
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        return this->tree_.insert_unique(x);
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    }
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    iterator insert(iterator position, const value_type& x)
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    {
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        return this->tree_.insert_unique(position, x);
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    }
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    template <typename InputIterator>
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    void insert(InputIterator b, InputIterator e)
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    {
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        this->tree_.insert_unique(b, e);
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    }
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    // Deletion routines.
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    int erase(const key_type& key)
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    {
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        return this->tree_.erase_unique(key);
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    }
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    // Erase the specified iterator from the btree. The iterator must be valid
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    // (i.e. not equal to end()).  Return an iterator pointing to the node after
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    // the one that was erased (or end() if none exists).
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    iterator erase(const iterator& iter)
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    {
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        return this->tree_.erase(iter);
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    }
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    void erase(const iterator& first, const iterator& last)
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    {
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        this->tree_.erase(first, last);
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    }
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};
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// A common base class for btree_map and safe_btree_map.
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template <typename Tree>
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class btree_map_container : public btree_unique_container<Tree>
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{
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    typedef btree_map_container<Tree> self_type;
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    typedef btree_unique_container<Tree> super_type;
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public:
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    typedef typename Tree::key_type key_type;
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    typedef typename Tree::data_type data_type;
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    typedef typename Tree::value_type value_type;
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    typedef typename Tree::mapped_type mapped_type;
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    typedef typename Tree::key_compare key_compare;
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    typedef typename Tree::allocator_type allocator_type;
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private:
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    // A pointer-like object which only generates its value when
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    // dereferenced. Used by operator[] to avoid constructing an empty data_type
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    // if the key already exists in the map.
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    struct generate_value
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    {
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        generate_value(const key_type& k)
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            : key(k)
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        {
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        }
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        value_type operator*() const
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        {
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            return std::make_pair(key, data_type());
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        }
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        const key_type& key;
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    };
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public:
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    // Default constructor.
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    btree_map_container(const key_compare& comp = key_compare(),
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                        const allocator_type& alloc = allocator_type())
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        : super_type(comp, alloc)
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    {
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    }
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    // Copy constructor.
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    btree_map_container(const self_type& x)
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        : super_type(x)
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    {
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    }
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    // Range constructor.
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    template <class InputIterator>
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    btree_map_container(InputIterator b, InputIterator e,
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                        const key_compare& comp = key_compare(),
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                        const allocator_type& alloc = allocator_type())
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        : super_type(b, e, comp, alloc)
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    {
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    }
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    // Insertion routines.
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    data_type& operator[](const key_type& key)
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    {
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        return this->tree_.insert_unique(key, generate_value(key)).first->second;
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    }
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};
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// A common base class for btree_multiset and btree_multimap.
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template <typename Tree>
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class btree_multi_container : public btree_container<Tree>
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{
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    typedef btree_multi_container<Tree> self_type;
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    typedef btree_container<Tree> super_type;
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public:
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    typedef typename Tree::key_type key_type;
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    typedef typename Tree::value_type value_type;
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    typedef typename Tree::size_type size_type;
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    typedef typename Tree::key_compare key_compare;
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    typedef typename Tree::allocator_type allocator_type;
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    typedef typename Tree::iterator iterator;
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    typedef typename Tree::const_iterator const_iterator;
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public:
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    // Default constructor.
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    btree_multi_container(const key_compare& comp = key_compare(),
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                          const allocator_type& alloc = allocator_type())
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        : super_type(comp, alloc)
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    {
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    }
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    // Copy constructor.
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    btree_multi_container(const self_type& x)
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        : super_type(x)
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    {
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    }
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    // Range constructor.
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    template <class InputIterator>
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    btree_multi_container(InputIterator b, InputIterator e,
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                          const key_compare& comp = key_compare(),
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                          const allocator_type& alloc = allocator_type())
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        : super_type(comp, alloc)
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    {
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        insert(b, e);
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    }
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    // Lookup routines.
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    iterator find(const key_type& key)
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    {
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        return this->tree_.find_multi(key);
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    }
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    const_iterator find(const key_type& key) const
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    {
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        return this->tree_.find_multi(key);
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    }
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    size_type count(const key_type& key) const
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    {
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        return this->tree_.count_multi(key);
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    }
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    // Insertion routines.
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    iterator insert(const value_type& x)
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    {
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        return this->tree_.insert_multi(x);
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    }
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    iterator insert(iterator position, const value_type& x)
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    {
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        return this->tree_.insert_multi(position, x);
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    }
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    template <typename InputIterator>
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    void insert(InputIterator b, InputIterator e)
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    {
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        this->tree_.insert_multi(b, e);
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    }
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    // Deletion routines.
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    int erase(const key_type& key)
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    {
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        return this->tree_.erase_multi(key);
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    }
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    // Erase the specified iterator from the btree. The iterator must be valid
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    // (i.e. not equal to end()).  Return an iterator pointing to the node after
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    // the one that was erased (or end() if none exists).
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    iterator erase(const iterator& iter)
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    {
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        return this->tree_.erase(iter);
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    }
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    void erase(const iterator& first, const iterator& last)
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    {
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        this->tree_.erase(first, last);
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    }
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};
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} // namespace btree
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#endif  // UTIL_BTREE_BTREE_CONTAINER_H__
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