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96 lines
3.6 KiB
C++
96 lines
3.6 KiB
C++
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// The MIT License (MIT)
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// Copyright (c) 2013 Danny Y., Rapptz
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// Permission is hereby granted, free of charge, to any person obtaining a copy of
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// this software and associated documentation files (the "Software"), to deal in
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// the Software without restriction, including without limitation the rights to
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// use, copy, modify, merge, publish, distribute, sublicense, and/or sell copies of
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// the Software, and to permit persons to whom the Software is furnished to do so,
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// subject to the following conditions:
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// The above copyright notice and this permission notice shall be included in all
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// copies or substantial portions of the Software.
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// THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
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// IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY, FITNESS
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// FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR
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// COPYRIGHT HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER
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// IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN
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// CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE SOFTWARE.
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#ifndef SOL_RESOLVE_HPP
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#define SOL_RESOLVE_HPP
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#include "traits.hpp"
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#include "tuple.hpp"
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namespace sol {
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namespace detail {
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template<class R, class... Args, class F, class = typename std::result_of<Unqualified<F>( Args... )>::type>
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auto resolve_i( types<R( Args... )>, F&& )->R( Unqualified<F>::* )( Args... ) {
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typedef R( Sig )( Args... );
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typedef Unqualified<F> Fu;
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return static_cast<Sig Fu::*>( &Fu::operator() );
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}
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template<class F>
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auto resolve_f( std::true_type, F&& f ) -> decltype( resolve_i( types<function_signature_t<decltype( &Unqualified<F>::operator() )>>( ), std::forward<F>( f ) ) ) {
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typedef Unqualified<F> Fu;
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return resolve_i( types<function_signature_t<decltype( &Fu::operator() )>>( ), std::forward<F>( f ) );
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}
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template<class F>
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void resolve_f( std::false_type, F&& f ) {
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static_assert( has_deducible_signature<F>::value, "Cannot use no-template-parameter call with an overloaded functor: specify the signature" );
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}
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template<class F>
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auto resolve_i( types<>, F&& f ) -> decltype( resolve_f( has_deducible_signature<Unqualified<F>> {}, std::forward<F>( f ) ) ) {
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return resolve_f( has_deducible_signature<Unqualified<F>> {}, std::forward<F>( f ) );
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}
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template<class... Args, class F, class R = typename std::result_of<F&( Args... )>::type>
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auto resolve_i( types<Args...>, F&& f ) -> decltype( resolve_i( types<R( Args... )>( ), std::forward<F>( f ) ) ) {
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return resolve_i( types<R( Args... )>( ), std::forward<F>( f ) );
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}
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template<class Sig, class C>
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Sig C::* resolve_v( std::false_type, Sig C::* mem_func_ptr ) {
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return mem_func_ptr;
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}
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template<class Sig, class C>
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Sig C::* resolve_v( std::true_type, Sig C::* mem_variable_ptr ) {
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return mem_variable_ptr;
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}
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} // detail
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template<class... Args, class R>
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auto resolve( R fun_ptr( Args... ) ) -> R( *)( Args... ) {
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return fun_ptr;
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}
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template<class Sig>
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Sig* resolve( Sig* fun_ptr ) {
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return fun_ptr;
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}
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template<class... Args, class R, class C>
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auto resolve( R( C::*mem_ptr )( Args... ) ) -> R( C::* )( Args... ) {
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return mem_ptr;
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}
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template<class Sig, class C>
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Sig C::* resolve( Sig C::* mem_ptr ) {
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return detail::resolve_v( std::is_member_object_pointer<Sig C::*>( ), mem_ptr );
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}
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template<class... Sig, class F>
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auto resolve( F&& f ) -> decltype( detail::resolve_i( types<Sig...>( ), std::forward<F>( f ) ) ) {
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return detail::resolve_i( types<Sig...>( ), std::forward<F>( f ) );
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}
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} // sol
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#endif // SOL_RESOLVE_HPP
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