mirror of https://github.com/CGAL/cgal
306 lines
12 KiB
C++
306 lines
12 KiB
C++
// Copyright (c) 2014
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// INRIA Saclay-Ile de France (France)
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//
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// This file is part of CGAL (www.cgal.org); you can redistribute it and/or
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// modify it under the terms of the GNU Lesser General Public License as
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// published by the Free Software Foundation; either version 3 of the License,
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// or (at your option) any later version.
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//
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// Licensees holding a valid commercial license may use this file in
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// accordance with the commercial license agreement provided with the software.
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//
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// This file is provided AS IS with NO WARRANTY OF ANY KIND, INCLUDING THE
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// WARRANTY OF DESIGN, MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE.
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//
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// $URL$
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// $Id$
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//
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// Author(s) : Marc Glisse
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#ifndef CGAL_KERNEL_D_CARTESIAN_WRAP_H
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#define CGAL_KERNEL_D_CARTESIAN_WRAP_H
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#include <CGAL/basic.h>
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#include <CGAL/is_iterator.h>
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#if defined(BOOST_MSVC)
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# pragma warning(push)
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# pragma warning(disable:4003) // not enough actual parameters for macro 'BOOST_PP_EXPAND_I'
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// http://lists.boost.org/boost-users/2014/11/83291.php
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#endif
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#include <CGAL/NewKernel_d/Wrapper/Point_d.h>
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#include <CGAL/NewKernel_d/Wrapper/Vector_d.h>
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#include <CGAL/NewKernel_d/Wrapper/Segment_d.h>
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#include <CGAL/NewKernel_d/Wrapper/Sphere_d.h>
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#include <CGAL/NewKernel_d/Wrapper/Hyperplane_d.h>
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#include <CGAL/NewKernel_d/Wrapper/Weighted_point_d.h>
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#include <CGAL/NewKernel_d/Wrapper/Ref_count_obj.h>
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#include <boost/mpl/or.hpp>
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#include <boost/mpl/contains.hpp>
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#include <boost/mpl/vector.hpp>
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//TODO: do we want to store the kernel ref in the Object wrappers? It would allow for additions and operator[] and things like that to work, but objects would still need to be created by functors.
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namespace CGAL {
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namespace internal {
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BOOST_MPL_HAS_XXX_TRAIT_DEF(Is_wrapper)
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template<class T,bool=has_Is_wrapper<T>::value> struct Is_wrapper {
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enum { value=false };
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typedef Tag_false type;
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};
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template<class T> struct Is_wrapper<T,true> {
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typedef typename T::Is_wrapper type;
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enum { value=type::value };
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};
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template<class T,bool=is_iterator_type<T,std::input_iterator_tag>::value> struct Is_wrapper_iterator {
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enum { value=false };
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typedef Tag_false type;
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};
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template<class T> struct Is_wrapper_iterator<T,true> :
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Is_wrapper<typename std::iterator_traits<typename CGAL::decay<T>::type>::value_type>
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{ };
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struct Forward_rep {
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//TODO: make a good C++0X version with perfect forwarding
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//#ifdef CGAL_CXX11
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//template <class T,class=typename std::enable_if<!Is_wrapper<typename std::decay<T>::type>::value&&!Is_wrapper_iterator<typename std::decay<T>::type>::value>::type>
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//T&& operator()(typename std::remove_reference<T>::type&& t) const {return static_cast<T&&>(t);};
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//template <class T,class=typename std::enable_if<!Is_wrapper<typename std::decay<T>::type>::value&&!Is_wrapper_iterator<typename std::decay<T>::type>::value>::type>
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//T&& operator()(typename std::remove_reference<T>::type& t) const {return static_cast<T&&>(t);};
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//
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//template <class T,class=typename std::enable_if<Is_wrapper<typename std::decay<T>::type>::value>::type>
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//typename Type_copy_cvref<T,typename std::decay<T>::type::Rep>::type&&
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//operator()(T&& t) const {
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// return static_cast<typename Type_copy_cvref<T,typename std::decay<T>::type::Rep>::type&&>(t.rep());
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//};
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//
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//template <class T,class=typename std::enable_if<Is_wrapper_iterator<typename std::decay<T>::type>::value>::type>
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//transforming_iterator<Forward_rep,typename std::decay<T>::type>
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//operator()(T&& t) const {
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// return make_transforming_iterator(std::forward<T>(t),Forward_rep());
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//};
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//#else
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template <class T,bool=Is_wrapper<T>::value,bool=Is_wrapper_iterator<T>::value> struct result_;
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template <class T> struct result_<T,false,false>{typedef T const& type;};
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template <class T> struct result_<T,true,false>{typedef typename decay<T>::type::Rep const& type;};
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template <class T> struct result_<T,false,true>{typedef transforming_iterator<Forward_rep,typename decay<T>::type> type;};
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template<class> struct result;
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template<class T> struct result<Forward_rep(T)> : result_<T> {};
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template <class T> typename boost::disable_if<boost::mpl::or_<Is_wrapper<T>,Is_wrapper_iterator<T> >,T>::type const& operator()(T const& t) const {return t;}
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template <class T> typename boost::disable_if<boost::mpl::or_<Is_wrapper<T>,Is_wrapper_iterator<T> >,T>::type& operator()(T& t) const {return t;}
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template <class T> typename T::Rep const& operator()(T const& t, typename boost::enable_if<Is_wrapper<T> >::type* = 0) const {return t.rep();}
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template <class T> transforming_iterator<Forward_rep,typename boost::enable_if<Is_wrapper_iterator<T>,T>::type> operator()(T const& t) const {return make_transforming_iterator(t,Forward_rep());}
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//#endif
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};
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}
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template <class B, class K, class T, bool = Provides_type<B, T>::value>
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struct Map_wrapping_type : Get_type<B, T> {};
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#define CGAL_REGISTER_OBJECT_WRAPPER(X) \
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template <class B, class K> \
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struct Map_wrapping_type <B, K, X##_tag, true> { \
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typedef Wrap::X##_d<K> type; \
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}
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CGAL_REGISTER_OBJECT_WRAPPER(Point);
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CGAL_REGISTER_OBJECT_WRAPPER(Vector);
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CGAL_REGISTER_OBJECT_WRAPPER(Segment);
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CGAL_REGISTER_OBJECT_WRAPPER(Sphere);
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CGAL_REGISTER_OBJECT_WRAPPER(Hyperplane);
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CGAL_REGISTER_OBJECT_WRAPPER(Weighted_point);
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#undef CGAL_REGISTER_OBJECT_WRAPPER
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// Note: this tends to be an all or nothing thing currently, wrapping
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// only some types breaks, probably because we don't check whether the
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// return type is indeed wrapped.
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template < typename Base_ , typename Derived_ = Default >
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struct Cartesian_wrap : public Base_
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{
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CGAL_CONSTEXPR Cartesian_wrap(){}
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CGAL_CONSTEXPR Cartesian_wrap(int d):Base_(d){}
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typedef Base_ Kernel_base;
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typedef Cartesian_wrap Self;
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// TODO: pass the 2 types Self and Derived to the wrappers, they can use Self for most purposes and Derived only for Kernel_traits' typedef R.
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typedef typename Default::Get<Derived_, Self>::type Derived;
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// FIXME: The list doesn't belong here.
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typedef boost::mpl::vector<Point_tag,Segment_tag,Sphere_tag,Vector_tag,Hyperplane_tag> Wrapped_list;
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template <class T>
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struct Type : Map_wrapping_type<Base_, Derived, T> {};
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//Translate the arguments
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template <class T, class D = void,
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class=typename Get_functor_category<Derived,T>::type,
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bool=Provides_functor<Kernel_base, T>::value,
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bool=boost::mpl::contains<Wrapped_list,typename map_result_tag<T>::type>::type::value>
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struct Functor {
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typedef typename Get_functor<Kernel_base, T>::type B;
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struct type {
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B b;
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type(){}
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type(Self const&k):b(k){}
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typedef typename B::result_type result_type;
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#ifdef CGAL_CXX11
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template<class...U> result_type operator()(U&&...u)const{
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return b(internal::Forward_rep()(u)...);
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}
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#else
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#define CGAL_VAR(Z,N,_) internal::Forward_rep()(u##N)
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#define CGAL_CODE(Z,N,_) template<BOOST_PP_ENUM_PARAMS(N,class U)> result_type \
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operator()(BOOST_PP_ENUM_BINARY_PARAMS(N,U,const&u))const{ \
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return b(BOOST_PP_ENUM(N,CGAL_VAR,)); \
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}
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BOOST_PP_REPEAT_FROM_TO(1,11,CGAL_CODE,_)
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#undef CGAL_CODE
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#undef CGAL_VAR
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// In case the last argument needs to be non-const. Fragile...
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#define CGAL_VAR(Z,N,_) internal::Forward_rep()(u##N)
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#define CGAL_CODE(Z,N,_) template<BOOST_PP_ENUM_PARAMS(N,class U),class V> result_type \
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operator()(BOOST_PP_ENUM_BINARY_PARAMS(N,U,const&u),V&v)const{ \
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return b(BOOST_PP_ENUM(N,CGAL_VAR,),internal::Forward_rep()(v)); \
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}
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BOOST_PP_REPEAT_FROM_TO(1,8,CGAL_CODE,_)
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#undef CGAL_CODE
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#undef CGAL_VAR
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#endif
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};
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};
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// Preserve the difference between Null_functor and nothing.
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template <class T, class D, class C, bool b>
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struct Functor <T, D, C, false, b>
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: Get_functor <Kernel_base, T> {};
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//Translate both the arguments and the result
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//TODO: Check Is_wrapper instead of relying on map_result_tag?
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template<class T,class D> struct Functor<T,D,Construct_tag,true,true> {
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typedef typename Get_functor<Kernel_base, T>::type B;
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struct type {
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B b;
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type(){}
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type(Self const&k):b(k){}
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typedef typename map_result_tag<T>::type result_tag;
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// FIXME: Self or Derived?
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typedef typename Get_type<Self,result_tag>::type result_type;
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#ifdef CGAL_CXX11
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template<class...U> result_type operator()(U&&...u)const{
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return result_type(Eval_functor(),b,internal::Forward_rep()(u)...);
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}
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#else
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#define CGAL_VAR(Z,N,_) internal::Forward_rep()(u##N)
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#define CGAL_CODE(Z,N,_) template<BOOST_PP_ENUM_PARAMS(N,class U)> result_type \
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operator()(BOOST_PP_ENUM_BINARY_PARAMS(N,U,const&u))const{ \
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return result_type(Eval_functor(),b,BOOST_PP_ENUM(N,CGAL_VAR,)); \
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}
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BOOST_PP_REPEAT_FROM_TO(1,11,CGAL_CODE,_)
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#undef CGAL_CODE
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#undef CGAL_VAR
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#endif
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};
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};
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};
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template < typename Base_ >
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struct Cartesian_refcount : public Base_
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{
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CGAL_CONSTEXPR Cartesian_refcount(){}
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CGAL_CONSTEXPR Cartesian_refcount(int d):Base_(d){}
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typedef Base_ Kernel_base;
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typedef Cartesian_refcount Self;
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// FIXME: Use object_list, or a list passed as argument, or anything
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// automatic.
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template <class T, class=void> struct Type : Get_type<Base_, T> {};
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#define CGAL_Kernel_obj(X,Y) \
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template <class D> struct Type<X##_tag, D> { typedef Ref_count_obj<Cartesian_refcount, X##_tag> type; };
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CGAL_Kernel_obj(Point,point)
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CGAL_Kernel_obj(Vector,vector)
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#undef CGAL_Kernel_obj
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template<class T> struct Dispatch {
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//typedef typename map_functor_type<T>::type f_t;
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typedef typename map_result_tag<T>::type r_t;
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enum {
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is_nul = boost::is_same<typename Get_functor<Kernel_base, T>::type,Null_functor>::value,
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ret_rcobj = boost::is_same<r_t,Point_tag>::value || boost::is_same<r_t,Vector_tag>::value
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};
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};
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//Translate the arguments
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template<class T,class D=void,bool=Dispatch<T>::is_nul,bool=Dispatch<T>::ret_rcobj> struct Functor {
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typedef typename Get_functor<Kernel_base, T>::type B;
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struct type {
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B b;
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type(){}
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type(Self const&k):b(k){}
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typedef typename B::result_type result_type;
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#ifdef CGAL_CXX11
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template<class...U> result_type operator()(U&&...u)const{
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return b(internal::Forward_rep()(u)...);
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}
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#else
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result_type operator()()const{
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return b();
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}
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#define CGAL_VAR(Z,N,_) internal::Forward_rep()(u##N)
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#define CGAL_CODE(Z,N,_) template<BOOST_PP_ENUM_PARAMS(N,class U)> result_type \
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operator()(BOOST_PP_ENUM_BINARY_PARAMS(N,U,const&u))const{ \
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return b(BOOST_PP_ENUM(N,CGAL_VAR,)); \
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}
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BOOST_PP_REPEAT_FROM_TO(1,11,CGAL_CODE,_)
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#undef CGAL_CODE
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#undef CGAL_VAR
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#endif
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};
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};
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//Translate both the arguments and the result
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template<class T,class D,bool b> struct Functor<T,D,true,b> {
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typedef Null_functor type;
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};
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template<class T,class D> struct Functor<T,D,false,true> {
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typedef typename Get_functor<Kernel_base, T>::type B;
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struct type {
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B b;
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type(){}
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type(Self const&k):b(k){}
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typedef typename map_result_tag<T>::type result_tag;
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typedef typename Get_type<Self,result_tag>::type result_type;
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#ifdef CGAL_CXX11
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template<class...U> result_type operator()(U&&...u)const{
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return result_type(Eval_functor(),b,internal::Forward_rep()(u)...);
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}
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#else
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result_type operator()()const{
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return result_type(Eval_functor(),b);
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}
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#define CGAL_VAR(Z,N,_) internal::Forward_rep()(u##N)
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#define CGAL_CODE(Z,N,_) template<BOOST_PP_ENUM_PARAMS(N,class U)> result_type \
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operator()(BOOST_PP_ENUM_BINARY_PARAMS(N,U,const&u))const{ \
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return result_type(Eval_functor(),b,BOOST_PP_ENUM(N,CGAL_VAR,)); \
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}
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BOOST_PP_REPEAT_FROM_TO(1,11,CGAL_CODE,_)
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#undef CGAL_CODE
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#undef CGAL_VAR
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#endif
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};
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};
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};
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} //namespace CGAL
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#if defined(BOOST_MSVC)
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# pragma warning(pop)
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#endif
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#endif // CGAL_KERNEL_D_CARTESIAN_WRAP_H
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