466 lines
16 KiB
C++
466 lines
16 KiB
C++
//////////////////////////////////////////////////////////////////////////////
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//
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// (C) Copyright Ion Gaztanaga 2004-2013. Distributed under the Boost
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// Software License, Version 1.0. (See accompanying file
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// LICENSE_1_0.txt or copy at http://www.boost.org/LICENSE_1_0.txt)
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//
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// See http://www.boost.org/libs/container for documentation.
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//
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//////////////////////////////////////////////////////////////////////////////
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#include <boost/container/detail/config_begin.hpp>
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#include <boost/container/map.hpp>
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#include <boost/container/adaptive_pool.hpp>
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#include <map>
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#include "print_container.hpp"
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#include "movable_int.hpp"
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#include "dummy_test_allocator.hpp"
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#include "map_test.hpp"
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#include "propagate_allocator_test.hpp"
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#include "emplace_test.hpp"
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#include "../../intrusive/test/iterator_test.hpp"
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using namespace boost::container;
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typedef std::pair<const test::movable_and_copyable_int, test::movable_and_copyable_int> pair_t;
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namespace boost {
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namespace container {
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//Explicit instantiation to detect compilation errors
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//map
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template class map
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< test::movable_and_copyable_int
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, test::movable_and_copyable_int
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, std::less<test::movable_and_copyable_int>
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, test::simple_allocator< pair_t >
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>;
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template class map
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< test::movable_and_copyable_int
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, test::movable_and_copyable_int
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, std::less<test::movable_and_copyable_int>
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, adaptive_pool< pair_t >
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>;
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template class multimap
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< test::movable_and_copyable_int
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, test::movable_and_copyable_int
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, std::less<test::movable_and_copyable_int>
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, std::allocator< pair_t >
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>;
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}} //boost::container
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class recursive_map
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{
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public:
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recursive_map & operator=(const recursive_map &x)
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{ id_ = x.id_; map_ = x.map_; return *this; }
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int id_;
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map<recursive_map, recursive_map> map_;
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map<recursive_map, recursive_map>::iterator it_;
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map<recursive_map, recursive_map>::const_iterator cit_;
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map<recursive_map, recursive_map>::reverse_iterator rit_;
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map<recursive_map, recursive_map>::const_reverse_iterator crit_;
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friend bool operator< (const recursive_map &a, const recursive_map &b)
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{ return a.id_ < b.id_; }
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};
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class recursive_multimap
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{
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public:
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recursive_multimap & operator=(const recursive_multimap &x)
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{ id_ = x.id_; multimap_ = x.multimap_; return *this; }
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int id_;
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multimap<recursive_multimap, recursive_multimap> multimap_;
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multimap<recursive_multimap, recursive_multimap>::iterator it_;
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multimap<recursive_multimap, recursive_multimap>::const_iterator cit_;
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multimap<recursive_multimap, recursive_multimap>::reverse_iterator rit_;
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multimap<recursive_multimap, recursive_multimap>::const_reverse_iterator crit_;
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friend bool operator< (const recursive_multimap &a, const recursive_multimap &b)
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{ return a.id_ < b.id_; }
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};
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template<class C>
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void test_move()
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{
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//Now test move semantics
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C original;
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original.emplace();
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C move_ctor(boost::move(original));
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C move_assign;
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move_assign.emplace();
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move_assign = boost::move(move_ctor);
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move_assign.swap(original);
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}
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bool node_type_test()
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{
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using namespace boost::container;
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{
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typedef map<test::movable_int, test::movable_int> map_type;
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map_type src;
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{
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test::movable_int mv_1(1), mv_2(2), mv_3(3), mv_11(11), mv_12(12), mv_13(13);
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src.try_emplace(boost::move(mv_1), boost::move(mv_11));
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src.try_emplace(boost::move(mv_2), boost::move(mv_12));
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src.try_emplace(boost::move(mv_3), boost::move(mv_13));
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}
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if(src.size() != 3)
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return false;
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map_type dst;
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{
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test::movable_int mv_3(3), mv_33(33);
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dst.try_emplace(boost::move(mv_3), boost::move(mv_33));
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}
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if(dst.size() != 1)
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return false;
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const test::movable_int mv_1(1);
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const test::movable_int mv_2(2);
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const test::movable_int mv_3(3);
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const test::movable_int mv_33(33);
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const test::movable_int mv_13(13);
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map_type::insert_return_type r;
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r = dst.insert(src.extract(mv_33)); // Key version, try to insert empty node
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if(! (r.position == dst.end() && r.inserted == false && r.node.empty()) )
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return false;
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r = dst.insert(src.extract(src.find(mv_1))); // Iterator version, successful
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if(! (r.position == dst.find(mv_1) && r.inserted == true && r.node.empty()) )
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return false;
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r = dst.insert(dst.begin(), src.extract(mv_2)); // Key type version, successful
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if(! (r.position == dst.find(mv_2) && r.inserted == true && r.node.empty()) )
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return false;
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r = dst.insert(src.extract(mv_3)); // Key type version, unsuccessful
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if(!src.empty())
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return false;
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if(dst.size() != 3)
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return false;
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if(! (r.position == dst.find(mv_3) && r.inserted == false && r.node.key() == mv_3 && r.node.mapped() == mv_13) )
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return false;
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}
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{
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typedef multimap<test::movable_int, test::movable_int> multimap_type;
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multimap_type src;
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{
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test::movable_int mv_1(1), mv_2(2), mv_3(3), mv_3bis(3), mv_11(11), mv_12(12), mv_13(13), mv_23(23);
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src.emplace(boost::move(mv_1), boost::move(mv_11));
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src.emplace(boost::move(mv_2), boost::move(mv_12));
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src.emplace(boost::move(mv_3), boost::move(mv_13));
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src.emplace_hint(src.begin(), boost::move(mv_3bis), boost::move(mv_23));
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}
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if(src.size() != 4)
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return false;
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multimap_type dst;
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{
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test::movable_int mv_3(3), mv_33(33);
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dst.emplace(boost::move(mv_3), boost::move(mv_33));
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}
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if(dst.size() != 1)
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return false;
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const test::movable_int mv_1(1);
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const test::movable_int mv_2(2);
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const test::movable_int mv_3(3);
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const test::movable_int mv_4(4);
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const test::movable_int mv_33(33);
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const test::movable_int mv_13(13);
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const test::movable_int mv_23(23);
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multimap_type::iterator r;
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multimap_type::node_type nt(src.extract(mv_3));
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r = dst.insert(dst.begin(), boost::move(nt));
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if(! (r->first == mv_3 && r->second == mv_23 && dst.find(mv_3) == r && nt.empty()) )
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return false;
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nt = src.extract(src.find(mv_1));
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r = dst.insert(boost::move(nt)); // Iterator version, successful
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if(! (r->first == mv_1 && nt.empty()) )
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return false;
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nt = src.extract(mv_2);
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r = dst.insert(boost::move(nt)); // Key type version, successful
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if(! (r->first == mv_2 && nt.empty()) )
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return false;
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r = dst.insert(src.extract(mv_3)); // Key type version, successful
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if(! (r->first == mv_3 && r->second == mv_13 && r == --multimap_type::iterator(dst.upper_bound(mv_3)) && nt.empty()) )
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return false;
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r = dst.insert(src.extract(mv_4)); // Key type version, unsuccessful
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if(! (r == dst.end()) )
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return false;
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if(!src.empty())
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return false;
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if(dst.size() != 5)
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return false;
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}
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return true;
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}
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template<class VoidAllocator, boost::container::tree_type_enum tree_type_value>
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struct GetAllocatorMap
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{
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template<class ValueType>
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struct apply
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{
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typedef map< ValueType
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, ValueType
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, std::less<ValueType>
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, typename allocator_traits<VoidAllocator>
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::template portable_rebind_alloc< std::pair<const ValueType, ValueType> >::type
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, typename boost::container::tree_assoc_options
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< boost::container::tree_type<tree_type_value>
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>::type
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> map_type;
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typedef multimap< ValueType
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, ValueType
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, std::less<ValueType>
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, typename allocator_traits<VoidAllocator>
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::template portable_rebind_alloc< std::pair<const ValueType, ValueType> >::type
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, typename boost::container::tree_assoc_options
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< boost::container::tree_type<tree_type_value>
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>::type
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> multimap_type;
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};
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};
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template<class VoidAllocator, boost::container::tree_type_enum tree_type_value>
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int test_map_variants()
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{
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typedef typename GetAllocatorMap<VoidAllocator, tree_type_value>::template apply<int>::map_type MyMap;
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typedef typename GetAllocatorMap<VoidAllocator, tree_type_value>::template apply<test::movable_int>::map_type MyMoveMap;
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typedef typename GetAllocatorMap<VoidAllocator, tree_type_value>::template apply<test::copyable_int>::map_type MyCopyMap;
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typedef typename GetAllocatorMap<VoidAllocator, tree_type_value>::template apply<int>::multimap_type MyMultiMap;
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typedef typename GetAllocatorMap<VoidAllocator, tree_type_value>::template apply<test::movable_int>::multimap_type MyMoveMultiMap;
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typedef typename GetAllocatorMap<VoidAllocator, tree_type_value>::template apply<test::copyable_int>::multimap_type MyCopyMultiMap;
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typedef std::map<int, int> MyStdMap;
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typedef std::multimap<int, int> MyStdMultiMap;
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if (0 != test::map_test<
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MyMap
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,MyStdMap
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,MyMultiMap
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,MyStdMultiMap>()){
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std::cout << "Error in map_test<MyBoostMap>" << std::endl;
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return 1;
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}
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if (0 != test::map_test<
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MyMoveMap
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,MyStdMap
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,MyMoveMultiMap
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,MyStdMultiMap>()){
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std::cout << "Error in map_test<MyBoostMap>" << std::endl;
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return 1;
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}
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if (0 != test::map_test<
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MyCopyMap
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,MyStdMap
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,MyCopyMultiMap
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,MyStdMultiMap>()){
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std::cout << "Error in map_test<MyBoostMap>" << std::endl;
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return 1;
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}
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return 0;
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}
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struct boost_container_map;
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struct boost_container_multimap;
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namespace boost { namespace container { namespace test {
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template<>
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struct alloc_propagate_base<boost_container_map>
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{
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template <class T, class Allocator>
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struct apply
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{
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typedef typename boost::container::allocator_traits<Allocator>::
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template portable_rebind_alloc<std::pair<const T, T> >::type TypeAllocator;
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typedef boost::container::map<T, T, std::less<T>, TypeAllocator> type;
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};
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};
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template<>
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struct alloc_propagate_base<boost_container_multimap>
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{
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template <class T, class Allocator>
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struct apply
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{
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typedef typename boost::container::allocator_traits<Allocator>::
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template portable_rebind_alloc<std::pair<const T, T> >::type TypeAllocator;
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typedef boost::container::multimap<T, T, std::less<T>, TypeAllocator> type;
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};
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};
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void test_merge_from_different_comparison()
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{
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map<int, int> map1;
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map<int, int, std::greater<int> > map2;
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map1.merge(map2);
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}
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}}} //namespace boost::container::test
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int main ()
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{
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//Recursive container instantiation
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{
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map<recursive_map, recursive_map> map_;
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multimap<recursive_multimap, recursive_multimap> multimap_;
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}
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//Allocator argument container
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{
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map<int, int> map_((map<int, int>::allocator_type()));
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multimap<int, int> multimap_((multimap<int, int>::allocator_type()));
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}
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//Now test move semantics
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{
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test_move<map<recursive_map, recursive_map> >();
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test_move<multimap<recursive_multimap, recursive_multimap> >();
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}
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//Test std::pair value type as tree has workarounds to make old std::pair
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//implementations movable that can break things
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{
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boost::container::map<pair_t, pair_t> s;
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std::pair<const pair_t,pair_t> p;
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s.insert(p);
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s.emplace(p);
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}
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////////////////////////////////////
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// Testing allocator implementations
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////////////////////////////////////
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// std:allocator
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if(test_map_variants< std::allocator<void>, red_black_tree >()){
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std::cerr << "test_map_variants< std::allocator<void> > failed" << std::endl;
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return 1;
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}
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// boost::container::adaptive_pool
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if(test_map_variants< adaptive_pool<void>, red_black_tree >()){
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std::cerr << "test_map_variants< adaptive_pool<void> > failed" << std::endl;
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return 1;
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}
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////////////////////////////////////
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// Tree implementations
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////////////////////////////////////
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// AVL
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if(test_map_variants< std::allocator<void>, avl_tree >()){
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std::cerr << "test_map_variants< std::allocator<void>, avl_tree > failed" << std::endl;
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return 1;
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}
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// SCAPEGOAT TREE
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if(test_map_variants< std::allocator<void>, scapegoat_tree >()){
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std::cerr << "test_map_variants< std::allocator<void>, scapegoat_tree > failed" << std::endl;
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return 1;
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}
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// SPLAY TREE
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if(test_map_variants< std::allocator<void>, splay_tree >()){
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std::cerr << "test_map_variants< std::allocator<void>, splay_tree > failed" << std::endl;
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return 1;
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}
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////////////////////////////////////
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// Emplace testing
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////////////////////////////////////
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const test::EmplaceOptions MapOptions = (test::EmplaceOptions)(test::EMPLACE_HINT_PAIR | test::EMPLACE_ASSOC_PAIR);
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if(!boost::container::test::test_emplace<map<test::EmplaceInt, test::EmplaceInt>, MapOptions>())
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return 1;
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if(!boost::container::test::test_emplace<multimap<test::EmplaceInt, test::EmplaceInt>, MapOptions>())
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return 1;
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////////////////////////////////////
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// Allocator propagation testing
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////////////////////////////////////
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if(!boost::container::test::test_propagate_allocator<boost_container_map>())
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return 1;
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if(!boost::container::test::test_propagate_allocator<boost_container_multimap>())
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return 1;
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if (!boost::container::test::test_map_support_for_initialization_list_for<map<int, int> >())
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return 1;
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if (!boost::container::test::test_map_support_for_initialization_list_for<multimap<int, int> >())
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return 1;
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////////////////////////////////////
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// Iterator testing
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////////////////////////////////////
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{
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typedef boost::container::map<int, int> cont_int;
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cont_int a; a.insert(cont_int::value_type(0, 9)); a.insert(cont_int::value_type(1, 9)); a.insert(cont_int::value_type(2, 9));
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boost::intrusive::test::test_iterator_bidirectional< cont_int >(a);
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if(boost::report_errors() != 0) {
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return 1;
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}
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}
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{
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typedef boost::container::multimap<int, int> cont_int;
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cont_int a; a.insert(cont_int::value_type(0, 9)); a.insert(cont_int::value_type(1, 9)); a.insert(cont_int::value_type(2, 9));
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boost::intrusive::test::test_iterator_bidirectional< cont_int >(a);
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if(boost::report_errors() != 0) {
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return 1;
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}
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}
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////////////////////////////////////
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// Node extraction/insertion testing functions
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////////////////////////////////////
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if(!node_type_test())
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return 1;
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if (!boost::container::test::instantiate_constructors<map<int, int>, multimap<int, int> >())
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return 1;
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test::test_merge_from_different_comparison();
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////////////////////////////////////
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// Test optimize_size option
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////////////////////////////////////
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//
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// map
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//
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typedef map< int*, int*, std::less<int*>, std::allocator< std::pair<int *const, int*> >
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, tree_assoc_options< optimize_size<false>, tree_type<red_black_tree> >::type > rbmap_size_optimized_no;
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typedef map< int*, int*, std::less<int*>, std::allocator< std::pair<int *const, int*> >
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, tree_assoc_options< optimize_size<true>, tree_type<avl_tree> >::type > avlmap_size_optimized_yes;
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//
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// multimap
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//
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typedef multimap< int*, int*, std::less<int*>, std::allocator< std::pair<int *const, int*> >
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, tree_assoc_options< optimize_size<true>, tree_type<red_black_tree> >::type > rbmmap_size_optimized_yes;
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typedef multimap< int*, int*, std::less<int*>, std::allocator< std::pair<int *const, int*> >
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, tree_assoc_options< optimize_size<false>, tree_type<avl_tree> >::type > avlmmap_size_optimized_no;
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BOOST_STATIC_ASSERT(sizeof(rbmmap_size_optimized_yes) < sizeof(rbmap_size_optimized_no));
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BOOST_STATIC_ASSERT(sizeof(avlmap_size_optimized_yes) < sizeof(avlmmap_size_optimized_no));
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return 0;
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}
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#include <boost/container/detail/config_end.hpp>
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