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algorithm.hpp
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algo_type.hpp
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any_node_and_algorithms.hpp
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array_initializer.hpp
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assert.hpp
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avltree_node.hpp
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bstree_algorithms_base.hpp
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common_slist_algorithms.hpp
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config_begin.hpp
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config_end.hpp
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default_header_holder.hpp
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ebo_functor_holder.hpp
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empty_node_checker.hpp
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equal_to_value.hpp
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exception_disposer.hpp
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function_detector.hpp
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generic_hook.hpp
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get_value_traits.hpp
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hashtable_node.hpp
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has_member_function_callable_with.hpp
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hook_traits.hpp
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iiterator.hpp
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is_stateful_value_traits.hpp
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iterator.hpp
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key_nodeptr_comp.hpp
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list_iterator.hpp
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list_node.hpp
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math.hpp
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minimal_less_equal_header.hpp
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minimal_pair_header.hpp
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mpl.hpp
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node_cloner_disposer.hpp
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node_holder.hpp
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node_to_value.hpp
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parent_from_member.hpp
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rbtree_node.hpp
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reverse_iterator.hpp
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simple_disposers.hpp
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size_holder.hpp
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slist_iterator.hpp
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slist_node.hpp
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std_fwd.hpp
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transform_iterator.hpp
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tree_iterator.hpp
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tree_node.hpp
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tree_value_compare.hpp
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uncast.hpp
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workaround.hpp
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/usr/include/boost/intrusive/detail/key_nodeptr_comp.hpp
(4882B)
///////////////////////////////////////////////////////////////////////////// // // (C) Copyright Ion Gaztanaga 2014-2014 // // Distributed under the Boost Software License, Version 1.0. // (See accompanying file LICENSE_1_0.txt or copy at // http://www.boost.org/LICENSE_1_0.txt) // // See http://www.boost.org/libs/intrusive for documentation. // ///////////////////////////////////////////////////////////////////////////// #ifndef BOOST_INTRUSIVE_DETAIL_KEY_NODEPTR_COMP_HPP #define BOOST_INTRUSIVE_DETAIL_KEY_NODEPTR_COMP_HPP #ifndef BOOST_CONFIG_HPP # include <boost/config.hpp> #endif #if defined(BOOST_HAS_PRAGMA_ONCE) # pragma once #endif #include <boost/intrusive/detail/mpl.hpp> #include <boost/intrusive/detail/ebo_functor_holder.hpp> #include <boost/intrusive/detail/tree_value_compare.hpp> namespace boost { namespace intrusive { namespace detail { template < class KeyTypeKeyCompare , class ValueTraits , class KeyOfValue > struct key_nodeptr_comp_types { typedef ValueTraits value_traits; typedef typename value_traits::value_type value_type; typedef typename value_traits::node_ptr node_ptr; typedef typename value_traits::const_node_ptr const_node_ptr; typedef typename detail::if_c < detail::is_same<KeyOfValue, void>::value , detail::identity<value_type> , KeyOfValue >::type key_of_value; typedef tree_value_compare <typename ValueTraits::pointer, KeyTypeKeyCompare, key_of_value> base_t; }; //This function object transforms a key comparison type to //a function that can compare nodes or nodes with nodes or keys. template < class KeyTypeKeyCompare , class ValueTraits , class KeyOfValue = void > struct key_nodeptr_comp //Use public inheritance to avoid MSVC bugs with closures : public key_nodeptr_comp_types<KeyTypeKeyCompare, ValueTraits, KeyOfValue>::base_t { private: struct sfinae_type; public: typedef key_nodeptr_comp_types<KeyTypeKeyCompare, ValueTraits, KeyOfValue> types_t; typedef typename types_t::value_traits value_traits; typedef typename types_t::value_type value_type; typedef typename types_t::node_ptr node_ptr; typedef typename types_t::const_node_ptr const_node_ptr; typedef typename types_t::base_t base_t; typedef typename types_t::key_of_value key_of_value; template <class P1> struct is_same_or_nodeptr_convertible { static const bool same_type = is_same<P1,const_node_ptr>::value || is_same<P1,node_ptr>::value; static const bool value = same_type || is_convertible<P1, const_node_ptr>::value; }; BOOST_INTRUSIVE_FORCEINLINE base_t base() const { return static_cast<const base_t&>(*this); } BOOST_INTRUSIVE_FORCEINLINE key_nodeptr_comp(KeyTypeKeyCompare kcomp, const ValueTraits *traits) : base_t(kcomp), traits_(traits) {} //pred(pnode) template<class T1> BOOST_INTRUSIVE_FORCEINLINE bool operator()(const T1 &t1, typename enable_if_c< is_same_or_nodeptr_convertible<T1>::value, sfinae_type* >::type = 0) const { return base().get()(key_of_value()(*traits_->to_value_ptr(t1))); } //operator() 2 arg //pred(pnode, pnode) template<class T1, class T2> BOOST_INTRUSIVE_FORCEINLINE bool operator() (const T1 &t1, const T2 &t2, typename enable_if_c< is_same_or_nodeptr_convertible<T1>::value && is_same_or_nodeptr_convertible<T2>::value, sfinae_type* >::type = 0) const { return base()(*traits_->to_value_ptr(t1), *traits_->to_value_ptr(t2)); } //pred(pnode, key) template<class T1, class T2> BOOST_INTRUSIVE_FORCEINLINE bool operator() (const T1 &t1, const T2 &t2, typename enable_if_c< is_same_or_nodeptr_convertible<T1>::value && !is_same_or_nodeptr_convertible<T2>::value, sfinae_type* >::type = 0) const { return base()(*traits_->to_value_ptr(t1), t2); } //pred(key, pnode) template<class T1, class T2> BOOST_INTRUSIVE_FORCEINLINE bool operator() (const T1 &t1, const T2 &t2, typename enable_if_c< !is_same_or_nodeptr_convertible<T1>::value && is_same_or_nodeptr_convertible<T2>::value, sfinae_type* >::type = 0) const { return base()(t1, *traits_->to_value_ptr(t2)); } //pred(key, key) template<class T1, class T2> BOOST_INTRUSIVE_FORCEINLINE bool operator() (const T1 &t1, const T2 &t2, typename enable_if_c< !is_same_or_nodeptr_convertible<T1>::value && !is_same_or_nodeptr_convertible<T2>::value, sfinae_type* >::type = 0) const { return base()(t1, t2); } const ValueTraits *const traits_; }; } //namespace detail{ } //namespace intrusive{ } //namespace boost{ #endif //BOOST_INTRUSIVE_DETAIL_KEY_NODEPTR_COMP_HPP
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