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// ------------------------------------------------------------------------------
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// Copyright (c) 2000 Cadenza New Zealand Ltd
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// Distributed under the Boost Software License, Version 1.0. (See accompany-
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// ing file LICENSE_1_0.txt or copy at http://www.boost.org/LICENSE_1_0.txt)
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// ------------------------------------------------------------------------------
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// Boost functional.hpp header file
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// See http://www.boost.org/libs/functional for documentation.
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// ------------------------------------------------------------------------------
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// $Id: functional.hpp,v 1.4.20.1 2006/12/02 14:17:26 andreas_huber69 Exp $
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// ------------------------------------------------------------------------------
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#ifndef BOOST_FUNCTIONAL_HPP
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#define BOOST_FUNCTIONAL_HPP
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#include <boost/config.hpp>
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#include <boost/call_traits.hpp>
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#include <functional>
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namespace boost
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{
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#ifndef BOOST_NO_TEMPLATE_PARTIAL_SPECIALIZATION
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// --------------------------------------------------------------------------
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// The following traits classes allow us to avoid the need for ptr_fun
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// because the types of arguments and the result of a function can be
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// deduced.
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//
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// In addition to the standard types defined in unary_function and
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// binary_function, we add
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//
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// - function_type, the type of the function or function object itself.
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//
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// - param_type, the type that should be used for passing the function or
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// function object as an argument.
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// --------------------------------------------------------------------------
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namespace detail
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{
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template <class Operation>
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struct unary_traits_imp;
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template <class Operation>
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struct unary_traits_imp<Operation*>
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{
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typedef Operation function_type;
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typedef const function_type & param_type;
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typedef typename Operation::result_type result_type;
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typedef typename Operation::argument_type argument_type;
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};
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template <class R, class A>
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struct unary_traits_imp<R(*)(A)>
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{
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typedef R (*function_type)(A);
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typedef R (*param_type)(A);
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typedef R result_type;
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typedef A argument_type;
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};
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template <class Operation>
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struct binary_traits_imp;
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template <class Operation>
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struct binary_traits_imp<Operation*>
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{
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typedef Operation function_type;
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typedef const function_type & param_type;
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typedef typename Operation::result_type result_type;
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typedef typename Operation::first_argument_type first_argument_type;
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typedef typename Operation::second_argument_type second_argument_type;
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};
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template <class R, class A1, class A2>
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struct binary_traits_imp<R(*)(A1,A2)>
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{
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typedef R (*function_type)(A1,A2);
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typedef R (*param_type)(A1,A2);
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typedef R result_type;
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typedef A1 first_argument_type;
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typedef A2 second_argument_type;
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};
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} // namespace detail
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template <class Operation>
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struct unary_traits
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{
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typedef typename detail::unary_traits_imp<Operation*>::function_type function_type;
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typedef typename detail::unary_traits_imp<Operation*>::param_type param_type;
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typedef typename detail::unary_traits_imp<Operation*>::result_type result_type;
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typedef typename detail::unary_traits_imp<Operation*>::argument_type argument_type;
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};
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template <class R, class A>
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struct unary_traits<R(*)(A)>
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{
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typedef R (*function_type)(A);
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typedef R (*param_type)(A);
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typedef R result_type;
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typedef A argument_type;
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};
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template <class Operation>
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struct binary_traits
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{
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typedef typename detail::binary_traits_imp<Operation*>::function_type function_type;
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typedef typename detail::binary_traits_imp<Operation*>::param_type param_type;
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typedef typename detail::binary_traits_imp<Operation*>::result_type result_type;
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typedef typename detail::binary_traits_imp<Operation*>::first_argument_type first_argument_type;
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typedef typename detail::binary_traits_imp<Operation*>::second_argument_type second_argument_type;
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};
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template <class R, class A1, class A2>
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struct binary_traits<R(*)(A1,A2)>
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{
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typedef R (*function_type)(A1,A2);
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typedef R (*param_type)(A1,A2);
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typedef R result_type;
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typedef A1 first_argument_type;
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typedef A2 second_argument_type;
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};
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#else // BOOST_NO_TEMPLATE_PARTIAL_SPECIALIZATION
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// --------------------------------------------------------------------------
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// If we have no partial specialisation available, decay to a situation
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// that is no worse than in the Standard, i.e., ptr_fun will be required.
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// --------------------------------------------------------------------------
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template <class Operation>
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struct unary_traits
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{
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typedef Operation function_type;
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typedef const Operation& param_type;
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typedef typename Operation::result_type result_type;
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typedef typename Operation::argument_type argument_type;
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};
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template <class Operation>
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struct binary_traits
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{
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typedef Operation function_type;
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typedef const Operation & param_type;
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typedef typename Operation::result_type result_type;
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typedef typename Operation::first_argument_type first_argument_type;
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typedef typename Operation::second_argument_type second_argument_type;
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};
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#endif // BOOST_NO_TEMPLATE_PARTIAL_SPECIALIZATION
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// --------------------------------------------------------------------------
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// unary_negate, not1
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// --------------------------------------------------------------------------
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template <class Predicate>
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class unary_negate
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: public std::unary_function<typename unary_traits<Predicate>::argument_type,bool>
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{
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public:
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explicit unary_negate(typename unary_traits<Predicate>::param_type x)
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:
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pred(x)
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{}
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bool operator()(typename call_traits<typename unary_traits<Predicate>::argument_type>::param_type x) const
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{
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return !pred(x);
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}
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private:
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typename unary_traits<Predicate>::function_type pred;
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};
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template <class Predicate>
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unary_negate<Predicate> not1(const Predicate &pred)
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{
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// The cast is to placate Borland C++Builder in certain circumstances.
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// I don't think it should be necessary.
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return unary_negate<Predicate>((typename unary_traits<Predicate>::param_type)pred);
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}
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template <class Predicate>
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unary_negate<Predicate> not1(Predicate &pred)
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{
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return unary_negate<Predicate>(pred);
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}
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// --------------------------------------------------------------------------
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// binary_negate, not2
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// --------------------------------------------------------------------------
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template <class Predicate>
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class binary_negate
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: public std::binary_function<typename binary_traits<Predicate>::first_argument_type,
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typename binary_traits<Predicate>::second_argument_type,
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bool>
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{
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public:
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explicit binary_negate(typename binary_traits<Predicate>::param_type x)
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:
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pred(x)
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{}
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bool operator()(typename call_traits<typename binary_traits<Predicate>::first_argument_type>::param_type x,
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typename call_traits<typename binary_traits<Predicate>::second_argument_type>::param_type y) const
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{
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return !pred(x,y);
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}
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private:
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typename binary_traits<Predicate>::function_type pred;
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};
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template <class Predicate>
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binary_negate<Predicate> not2(const Predicate &pred)
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{
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// The cast is to placate Borland C++Builder in certain circumstances.
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// I don't think it should be necessary.
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return binary_negate<Predicate>((typename binary_traits<Predicate>::param_type)pred);
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}
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template <class Predicate>
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binary_negate<Predicate> not2(Predicate &pred)
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{
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return binary_negate<Predicate>(pred);
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}
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// --------------------------------------------------------------------------
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// binder1st, bind1st
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// --------------------------------------------------------------------------
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template <class Operation>
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class binder1st
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: public std::unary_function<typename binary_traits<Operation>::second_argument_type,
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typename binary_traits<Operation>::result_type>
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{
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public:
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binder1st(typename binary_traits<Operation>::param_type x,
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typename call_traits<typename binary_traits<Operation>::first_argument_type>::param_type y)
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:
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op(x), value(y)
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{}
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typename binary_traits<Operation>::result_type
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operator()(typename call_traits<typename binary_traits<Operation>::second_argument_type>::param_type x) const
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{
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return op(value, x);
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}
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protected:
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typename binary_traits<Operation>::function_type op;
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typename binary_traits<Operation>::first_argument_type value;
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};
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template <class Operation>
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inline binder1st<Operation> bind1st(const Operation &op,
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typename call_traits<
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typename binary_traits<Operation>::first_argument_type
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>::param_type x)
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{
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// The cast is to placate Borland C++Builder in certain circumstances.
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// I don't think it should be necessary.
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return binder1st<Operation>((typename binary_traits<Operation>::param_type)op, x);
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}
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template <class Operation>
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inline binder1st<Operation> bind1st(Operation &op,
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typename call_traits<
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typename binary_traits<Operation>::first_argument_type
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>::param_type x)
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{
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return binder1st<Operation>(op, x);
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}
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// --------------------------------------------------------------------------
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// binder2nd, bind2nd
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// --------------------------------------------------------------------------
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template <class Operation>
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class binder2nd
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: public std::unary_function<typename binary_traits<Operation>::first_argument_type,
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typename binary_traits<Operation>::result_type>
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{
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public:
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binder2nd(typename binary_traits<Operation>::param_type x,
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typename call_traits<typename binary_traits<Operation>::second_argument_type>::param_type y)
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:
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op(x), value(y)
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{}
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typename binary_traits<Operation>::result_type
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operator()(typename call_traits<typename binary_traits<Operation>::first_argument_type>::param_type x) const
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{
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return op(x, value);
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}
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protected:
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typename binary_traits<Operation>::function_type op;
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typename binary_traits<Operation>::second_argument_type value;
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};
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template <class Operation>
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inline binder2nd<Operation> bind2nd(const Operation &op,
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typename call_traits<
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typename binary_traits<Operation>::second_argument_type
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>::param_type x)
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{
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// The cast is to placate Borland C++Builder in certain circumstances.
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// I don't think it should be necessary.
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return binder2nd<Operation>((typename binary_traits<Operation>::param_type)op, x);
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}
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template <class Operation>
|
williamr@2
|
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inline binder2nd<Operation> bind2nd(Operation &op,
|
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|
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typename call_traits<
|
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|
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typename binary_traits<Operation>::second_argument_type
|
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|
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>::param_type x)
|
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|
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{
|
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|
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return binder2nd<Operation>(op, x);
|
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|
306 |
}
|
williamr@2
|
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|
williamr@2
|
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// --------------------------------------------------------------------------
|
williamr@2
|
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// mem_fun, etc
|
williamr@2
|
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// --------------------------------------------------------------------------
|
williamr@2
|
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template <class S, class T>
|
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|
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class mem_fun_t : public std::unary_function<T*, S>
|
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|
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{
|
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|
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public:
|
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|
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explicit mem_fun_t(S (T::*p)())
|
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|
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:
|
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|
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ptr(p)
|
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|
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{}
|
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|
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S operator()(T* p) const
|
williamr@2
|
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{
|
williamr@2
|
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return (p->*ptr)();
|
williamr@2
|
322 |
}
|
williamr@2
|
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private:
|
williamr@2
|
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S (T::*ptr)();
|
williamr@2
|
325 |
};
|
williamr@2
|
326 |
|
williamr@2
|
327 |
template <class S, class T, class A>
|
williamr@2
|
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class mem_fun1_t : public std::binary_function<T*, A, S>
|
williamr@2
|
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{
|
williamr@2
|
330 |
public:
|
williamr@2
|
331 |
explicit mem_fun1_t(S (T::*p)(A))
|
williamr@2
|
332 |
:
|
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|
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ptr(p)
|
williamr@2
|
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{}
|
williamr@2
|
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S operator()(T* p, typename call_traits<A>::param_type x) const
|
williamr@2
|
336 |
{
|
williamr@2
|
337 |
return (p->*ptr)(x);
|
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|
338 |
}
|
williamr@2
|
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private:
|
williamr@2
|
340 |
S (T::*ptr)(A);
|
williamr@2
|
341 |
};
|
williamr@2
|
342 |
|
williamr@2
|
343 |
template <class S, class T>
|
williamr@2
|
344 |
class const_mem_fun_t : public std::unary_function<const T*, S>
|
williamr@2
|
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{
|
williamr@2
|
346 |
public:
|
williamr@2
|
347 |
explicit const_mem_fun_t(S (T::*p)() const)
|
williamr@2
|
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:
|
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|
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ptr(p)
|
williamr@2
|
350 |
{}
|
williamr@2
|
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S operator()(const T* p) const
|
williamr@2
|
352 |
{
|
williamr@2
|
353 |
return (p->*ptr)();
|
williamr@2
|
354 |
}
|
williamr@2
|
355 |
private:
|
williamr@2
|
356 |
S (T::*ptr)() const;
|
williamr@2
|
357 |
};
|
williamr@2
|
358 |
|
williamr@2
|
359 |
template <class S, class T, class A>
|
williamr@2
|
360 |
class const_mem_fun1_t : public std::binary_function<const T*, A, S>
|
williamr@2
|
361 |
{
|
williamr@2
|
362 |
public:
|
williamr@2
|
363 |
explicit const_mem_fun1_t(S (T::*p)(A) const)
|
williamr@2
|
364 |
:
|
williamr@2
|
365 |
ptr(p)
|
williamr@2
|
366 |
{}
|
williamr@2
|
367 |
S operator()(const T* p, typename call_traits<A>::param_type x) const
|
williamr@2
|
368 |
{
|
williamr@2
|
369 |
return (p->*ptr)(x);
|
williamr@2
|
370 |
}
|
williamr@2
|
371 |
private:
|
williamr@2
|
372 |
S (T::*ptr)(A) const;
|
williamr@2
|
373 |
};
|
williamr@2
|
374 |
|
williamr@2
|
375 |
template<class S, class T>
|
williamr@2
|
376 |
inline mem_fun_t<S,T> mem_fun(S (T::*f)())
|
williamr@2
|
377 |
{
|
williamr@2
|
378 |
return mem_fun_t<S,T>(f);
|
williamr@2
|
379 |
}
|
williamr@2
|
380 |
|
williamr@2
|
381 |
template<class S, class T, class A>
|
williamr@2
|
382 |
inline mem_fun1_t<S,T,A> mem_fun(S (T::*f)(A))
|
williamr@2
|
383 |
{
|
williamr@2
|
384 |
return mem_fun1_t<S,T,A>(f);
|
williamr@2
|
385 |
}
|
williamr@2
|
386 |
|
williamr@2
|
387 |
#ifndef BOOST_NO_POINTER_TO_MEMBER_CONST
|
williamr@2
|
388 |
template<class S, class T>
|
williamr@2
|
389 |
inline const_mem_fun_t<S,T> mem_fun(S (T::*f)() const)
|
williamr@2
|
390 |
{
|
williamr@2
|
391 |
return const_mem_fun_t<S,T>(f);
|
williamr@2
|
392 |
}
|
williamr@2
|
393 |
|
williamr@2
|
394 |
template<class S, class T, class A>
|
williamr@2
|
395 |
inline const_mem_fun1_t<S,T,A> mem_fun(S (T::*f)(A) const)
|
williamr@2
|
396 |
{
|
williamr@2
|
397 |
return const_mem_fun1_t<S,T,A>(f);
|
williamr@2
|
398 |
}
|
williamr@2
|
399 |
#endif // BOOST_NO_POINTER_TO_MEMBER_CONST
|
williamr@2
|
400 |
|
williamr@2
|
401 |
// --------------------------------------------------------------------------
|
williamr@2
|
402 |
// mem_fun_ref, etc
|
williamr@2
|
403 |
// --------------------------------------------------------------------------
|
williamr@2
|
404 |
template <class S, class T>
|
williamr@2
|
405 |
class mem_fun_ref_t : public std::unary_function<T&, S>
|
williamr@2
|
406 |
{
|
williamr@2
|
407 |
public:
|
williamr@2
|
408 |
explicit mem_fun_ref_t(S (T::*p)())
|
williamr@2
|
409 |
:
|
williamr@2
|
410 |
ptr(p)
|
williamr@2
|
411 |
{}
|
williamr@2
|
412 |
S operator()(T& p) const
|
williamr@2
|
413 |
{
|
williamr@2
|
414 |
return (p.*ptr)();
|
williamr@2
|
415 |
}
|
williamr@2
|
416 |
private:
|
williamr@2
|
417 |
S (T::*ptr)();
|
williamr@2
|
418 |
};
|
williamr@2
|
419 |
|
williamr@2
|
420 |
template <class S, class T, class A>
|
williamr@2
|
421 |
class mem_fun1_ref_t : public std::binary_function<T&, A, S>
|
williamr@2
|
422 |
{
|
williamr@2
|
423 |
public:
|
williamr@2
|
424 |
explicit mem_fun1_ref_t(S (T::*p)(A))
|
williamr@2
|
425 |
:
|
williamr@2
|
426 |
ptr(p)
|
williamr@2
|
427 |
{}
|
williamr@2
|
428 |
S operator()(T& p, typename call_traits<A>::param_type x) const
|
williamr@2
|
429 |
{
|
williamr@2
|
430 |
return (p.*ptr)(x);
|
williamr@2
|
431 |
}
|
williamr@2
|
432 |
private:
|
williamr@2
|
433 |
S (T::*ptr)(A);
|
williamr@2
|
434 |
};
|
williamr@2
|
435 |
|
williamr@2
|
436 |
template <class S, class T>
|
williamr@2
|
437 |
class const_mem_fun_ref_t : public std::unary_function<const T&, S>
|
williamr@2
|
438 |
{
|
williamr@2
|
439 |
public:
|
williamr@2
|
440 |
explicit const_mem_fun_ref_t(S (T::*p)() const)
|
williamr@2
|
441 |
:
|
williamr@2
|
442 |
ptr(p)
|
williamr@2
|
443 |
{}
|
williamr@2
|
444 |
|
williamr@2
|
445 |
S operator()(const T &p) const
|
williamr@2
|
446 |
{
|
williamr@2
|
447 |
return (p.*ptr)();
|
williamr@2
|
448 |
}
|
williamr@2
|
449 |
private:
|
williamr@2
|
450 |
S (T::*ptr)() const;
|
williamr@2
|
451 |
};
|
williamr@2
|
452 |
|
williamr@2
|
453 |
template <class S, class T, class A>
|
williamr@2
|
454 |
class const_mem_fun1_ref_t : public std::binary_function<const T&, A, S>
|
williamr@2
|
455 |
{
|
williamr@2
|
456 |
public:
|
williamr@2
|
457 |
explicit const_mem_fun1_ref_t(S (T::*p)(A) const)
|
williamr@2
|
458 |
:
|
williamr@2
|
459 |
ptr(p)
|
williamr@2
|
460 |
{}
|
williamr@2
|
461 |
|
williamr@2
|
462 |
S operator()(const T& p, typename call_traits<A>::param_type x) const
|
williamr@2
|
463 |
{
|
williamr@2
|
464 |
return (p.*ptr)(x);
|
williamr@2
|
465 |
}
|
williamr@2
|
466 |
private:
|
williamr@2
|
467 |
S (T::*ptr)(A) const;
|
williamr@2
|
468 |
};
|
williamr@2
|
469 |
|
williamr@2
|
470 |
template<class S, class T>
|
williamr@2
|
471 |
inline mem_fun_ref_t<S,T> mem_fun_ref(S (T::*f)())
|
williamr@2
|
472 |
{
|
williamr@2
|
473 |
return mem_fun_ref_t<S,T>(f);
|
williamr@2
|
474 |
}
|
williamr@2
|
475 |
|
williamr@2
|
476 |
template<class S, class T, class A>
|
williamr@2
|
477 |
inline mem_fun1_ref_t<S,T,A> mem_fun_ref(S (T::*f)(A))
|
williamr@2
|
478 |
{
|
williamr@2
|
479 |
return mem_fun1_ref_t<S,T,A>(f);
|
williamr@2
|
480 |
}
|
williamr@2
|
481 |
|
williamr@2
|
482 |
#ifndef BOOST_NO_POINTER_TO_MEMBER_CONST
|
williamr@2
|
483 |
template<class S, class T>
|
williamr@2
|
484 |
inline const_mem_fun_ref_t<S,T> mem_fun_ref(S (T::*f)() const)
|
williamr@2
|
485 |
{
|
williamr@2
|
486 |
return const_mem_fun_ref_t<S,T>(f);
|
williamr@2
|
487 |
}
|
williamr@2
|
488 |
|
williamr@2
|
489 |
template<class S, class T, class A>
|
williamr@2
|
490 |
inline const_mem_fun1_ref_t<S,T,A> mem_fun_ref(S (T::*f)(A) const)
|
williamr@2
|
491 |
{
|
williamr@2
|
492 |
return const_mem_fun1_ref_t<S,T,A>(f);
|
williamr@2
|
493 |
}
|
williamr@2
|
494 |
#endif // BOOST_NO_POINTER_TO_MEMBER_CONST
|
williamr@2
|
495 |
|
williamr@2
|
496 |
// --------------------------------------------------------------------------
|
williamr@2
|
497 |
// ptr_fun
|
williamr@2
|
498 |
// --------------------------------------------------------------------------
|
williamr@2
|
499 |
template <class Arg, class Result>
|
williamr@2
|
500 |
class pointer_to_unary_function : public std::unary_function<Arg,Result>
|
williamr@2
|
501 |
{
|
williamr@2
|
502 |
public:
|
williamr@2
|
503 |
explicit pointer_to_unary_function(Result (*f)(Arg))
|
williamr@2
|
504 |
:
|
williamr@2
|
505 |
func(f)
|
williamr@2
|
506 |
{}
|
williamr@2
|
507 |
|
williamr@2
|
508 |
Result operator()(typename call_traits<Arg>::param_type x) const
|
williamr@2
|
509 |
{
|
williamr@2
|
510 |
return func(x);
|
williamr@2
|
511 |
}
|
williamr@2
|
512 |
|
williamr@2
|
513 |
private:
|
williamr@2
|
514 |
Result (*func)(Arg);
|
williamr@2
|
515 |
};
|
williamr@2
|
516 |
|
williamr@2
|
517 |
template <class Arg, class Result>
|
williamr@2
|
518 |
inline pointer_to_unary_function<Arg,Result> ptr_fun(Result (*f)(Arg))
|
williamr@2
|
519 |
{
|
williamr@2
|
520 |
return pointer_to_unary_function<Arg,Result>(f);
|
williamr@2
|
521 |
}
|
williamr@2
|
522 |
|
williamr@2
|
523 |
template <class Arg1, class Arg2, class Result>
|
williamr@2
|
524 |
class pointer_to_binary_function : public std::binary_function<Arg1,Arg2,Result>
|
williamr@2
|
525 |
{
|
williamr@2
|
526 |
public:
|
williamr@2
|
527 |
explicit pointer_to_binary_function(Result (*f)(Arg1, Arg2))
|
williamr@2
|
528 |
:
|
williamr@2
|
529 |
func(f)
|
williamr@2
|
530 |
{}
|
williamr@2
|
531 |
|
williamr@2
|
532 |
Result operator()(typename call_traits<Arg1>::param_type x, typename call_traits<Arg2>::param_type y) const
|
williamr@2
|
533 |
{
|
williamr@2
|
534 |
return func(x,y);
|
williamr@2
|
535 |
}
|
williamr@2
|
536 |
|
williamr@2
|
537 |
private:
|
williamr@2
|
538 |
Result (*func)(Arg1, Arg2);
|
williamr@2
|
539 |
};
|
williamr@2
|
540 |
|
williamr@2
|
541 |
template <class Arg1, class Arg2, class Result>
|
williamr@2
|
542 |
inline pointer_to_binary_function<Arg1,Arg2,Result> ptr_fun(Result (*f)(Arg1, Arg2))
|
williamr@2
|
543 |
{
|
williamr@2
|
544 |
return pointer_to_binary_function<Arg1,Arg2,Result>(f);
|
williamr@2
|
545 |
}
|
williamr@2
|
546 |
} // namespace boost
|
williamr@2
|
547 |
|
williamr@2
|
548 |
#endif
|