273 lines
12 KiB
C++
273 lines
12 KiB
C++
// -*- c++ -*-
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/* Do not edit! -- generated file */
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#ifndef _SIGC_LAMBDA_BASE_HPP_
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#define _SIGC_LAMBDA_BASE_HPP_
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#include <sigc++/adaptors/adaptor_trait.h>
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#include <sigc++/reference_wrapper.h>
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#include <type_traits>
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#ifndef SIGCXX_DISABLE_DEPRECATED
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namespace sigc {
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#ifndef DOXYGEN_SHOULD_SKIP_THIS
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// libsigc++'s lambda functions have been removed from the API.
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// Some code must be kept until we can break ABI.
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/** @defgroup lambdas Lambdas
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* libsigc++ ships with basic lambda functionality and the sigc::group adaptor,
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* which uses lambdas to transform a functor's parameter list.
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*
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* The lambda selectors sigc::_1, sigc::_2, ..., sigc::_7 are used to select the
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* first, second, ..., seventh argument from a list.
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*
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* @par Examples:
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* @code
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* std::cout << sigc::_1(10,20,30); // returns 10
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* std::cout << sigc::_2(10,20,30); // returns 20
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* @endcode
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*
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* Operators are defined so that, for example, lambda selectors can be used as
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* placeholders in arithmetic expressions.
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*
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* @par Examples:
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* @code
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* std::cout << (sigc::_1 + 5)(3); // returns (3 + 5)
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* std::cout << (sigc::_1 * sigc::_2)(7,10); // returns (7 * 10)
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* @endcode
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*
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* If your compiler supports C++11 lambda expressions, they are often a good
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* alternative to libsigc++'s lambda expressions. The following examples are
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* equivalent to the previous ones.
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* @code
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* [] (int x, int, int) -> int { return x; }(10,20,30); // returns 10
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* [] (int, int y, int) -> int { return y; }(10,20,30); // returns 20
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* [] (int x) -> int { return x + 5; }(3); // returns (3 + 5)
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* [] (int x, int y) -> int { return x * y; }(7,10); // returns (7 * 10)
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* @endcode
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*
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* @deprecated Use C++11 lambda expressions or %std::bind() instead.
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*/
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/** A hint to the compiler.
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* All lambda types publically inherit from this hint.
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*
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* @deprecated Use C++11 lambda expressions instead.
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*
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* @ingroup lambdas
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*/
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struct lambda_base : public adaptor_base {};
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// Forward declaration of lambda.
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template <class T_type> struct lambda;
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namespace internal {
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/** Abstracts lambda functionality.
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* Objects of this type store a value that may be of type lambda itself.
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* In this case, operator()() executes the lambda (a lambda is always a functor at the same time).
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* Otherwise, operator()() simply returns the stored value.
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*
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* @deprecated Use C++11 lambda expressions instead.
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*
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* @ingroup lambdas
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*/
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template <class T_type, bool I_islambda = std::is_base_of<lambda_base, T_type>::value> struct lambda_core;
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/** Abstracts lambda functionality (template specialization for lambda values).
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*
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* @deprecated Use C++11 lambda expressions instead.
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*
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* @ingroup lambdas
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*/
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template <class T_type>
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struct lambda_core<T_type, true> : public lambda_base
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{
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template <class T_arg1=void, class T_arg2=void, class T_arg3=void, class T_arg4=void, class T_arg5=void, class T_arg6=void, class T_arg7=void>
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struct deduce_result_type
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{ typedef typename T_type::template deduce_result_type<type_trait_pass_t<T_arg1>, type_trait_pass_t<T_arg2>, type_trait_pass_t<T_arg3>, type_trait_pass_t<T_arg4>, type_trait_pass_t<T_arg5>, type_trait_pass_t<T_arg6>, type_trait_pass_t<T_arg7>>::type type; };
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typedef typename T_type::result_type result_type;
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typedef T_type lambda_type;
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result_type
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operator()() const;
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template <class T_arg1>
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typename deduce_result_type<T_arg1>::type
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operator ()(T_arg1 _A_1) const
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{ return value_.SIGC_WORKAROUND_OPERATOR_PARENTHESES<type_trait_pass_t<T_arg1>>
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(_A_1);
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}
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#ifndef SIGC_TEMPLATE_SPECIALIZATION_OPERATOR_OVERLOAD
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template <class T_arg1>
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typename deduce_result_type<T_arg1>::type
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sun_forte_workaround(T_arg1 _A_1) const
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{ return value_.SIGC_WORKAROUND_OPERATOR_PARENTHESES<type_trait_pass_t<T_arg1>>
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(_A_1);
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}
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#endif //SIGC_TEMPLATE_SPECIALIZATION_OPERATOR_OVERLOAD
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template <class T_arg1, class T_arg2>
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typename deduce_result_type<T_arg1, T_arg2>::type
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operator ()(T_arg1 _A_1, T_arg2 _A_2) const
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{ return value_.SIGC_WORKAROUND_OPERATOR_PARENTHESES<type_trait_pass_t<T_arg1>, type_trait_pass_t<T_arg2>>
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(_A_1, _A_2);
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}
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#ifndef SIGC_TEMPLATE_SPECIALIZATION_OPERATOR_OVERLOAD
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template <class T_arg1, class T_arg2>
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typename deduce_result_type<T_arg1, T_arg2>::type
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sun_forte_workaround(T_arg1 _A_1, T_arg2 _A_2) const
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{ return value_.SIGC_WORKAROUND_OPERATOR_PARENTHESES<type_trait_pass_t<T_arg1>, type_trait_pass_t<T_arg2>>
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(_A_1, _A_2);
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}
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#endif //SIGC_TEMPLATE_SPECIALIZATION_OPERATOR_OVERLOAD
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template <class T_arg1, class T_arg2, class T_arg3>
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typename deduce_result_type<T_arg1, T_arg2, T_arg3>::type
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operator ()(T_arg1 _A_1, T_arg2 _A_2, T_arg3 _A_3) const
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{ return value_.SIGC_WORKAROUND_OPERATOR_PARENTHESES<type_trait_pass_t<T_arg1>, type_trait_pass_t<T_arg2>, type_trait_pass_t<T_arg3>>
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(_A_1, _A_2, _A_3);
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}
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#ifndef SIGC_TEMPLATE_SPECIALIZATION_OPERATOR_OVERLOAD
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template <class T_arg1, class T_arg2, class T_arg3>
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typename deduce_result_type<T_arg1, T_arg2, T_arg3>::type
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sun_forte_workaround(T_arg1 _A_1, T_arg2 _A_2, T_arg3 _A_3) const
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{ return value_.SIGC_WORKAROUND_OPERATOR_PARENTHESES<type_trait_pass_t<T_arg1>, type_trait_pass_t<T_arg2>, type_trait_pass_t<T_arg3>>
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(_A_1, _A_2, _A_3);
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}
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#endif //SIGC_TEMPLATE_SPECIALIZATION_OPERATOR_OVERLOAD
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template <class T_arg1, class T_arg2, class T_arg3, class T_arg4>
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typename deduce_result_type<T_arg1, T_arg2, T_arg3, T_arg4>::type
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operator ()(T_arg1 _A_1, T_arg2 _A_2, T_arg3 _A_3, T_arg4 _A_4) const
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{ return value_.SIGC_WORKAROUND_OPERATOR_PARENTHESES<type_trait_pass_t<T_arg1>, type_trait_pass_t<T_arg2>, type_trait_pass_t<T_arg3>, type_trait_pass_t<T_arg4>>
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(_A_1, _A_2, _A_3, _A_4);
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}
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#ifndef SIGC_TEMPLATE_SPECIALIZATION_OPERATOR_OVERLOAD
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template <class T_arg1, class T_arg2, class T_arg3, class T_arg4>
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typename deduce_result_type<T_arg1, T_arg2, T_arg3, T_arg4>::type
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sun_forte_workaround(T_arg1 _A_1, T_arg2 _A_2, T_arg3 _A_3, T_arg4 _A_4) const
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{ return value_.SIGC_WORKAROUND_OPERATOR_PARENTHESES<type_trait_pass_t<T_arg1>, type_trait_pass_t<T_arg2>, type_trait_pass_t<T_arg3>, type_trait_pass_t<T_arg4>>
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(_A_1, _A_2, _A_3, _A_4);
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}
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#endif //SIGC_TEMPLATE_SPECIALIZATION_OPERATOR_OVERLOAD
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template <class T_arg1, class T_arg2, class T_arg3, class T_arg4, class T_arg5>
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typename deduce_result_type<T_arg1, T_arg2, T_arg3, T_arg4, T_arg5>::type
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operator ()(T_arg1 _A_1, T_arg2 _A_2, T_arg3 _A_3, T_arg4 _A_4, T_arg5 _A_5) const
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{ return value_.SIGC_WORKAROUND_OPERATOR_PARENTHESES<type_trait_pass_t<T_arg1>, type_trait_pass_t<T_arg2>, type_trait_pass_t<T_arg3>, type_trait_pass_t<T_arg4>, type_trait_pass_t<T_arg5>>
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(_A_1, _A_2, _A_3, _A_4, _A_5);
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}
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#ifndef SIGC_TEMPLATE_SPECIALIZATION_OPERATOR_OVERLOAD
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template <class T_arg1, class T_arg2, class T_arg3, class T_arg4, class T_arg5>
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typename deduce_result_type<T_arg1, T_arg2, T_arg3, T_arg4, T_arg5>::type
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sun_forte_workaround(T_arg1 _A_1, T_arg2 _A_2, T_arg3 _A_3, T_arg4 _A_4, T_arg5 _A_5) const
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{ return value_.SIGC_WORKAROUND_OPERATOR_PARENTHESES<type_trait_pass_t<T_arg1>, type_trait_pass_t<T_arg2>, type_trait_pass_t<T_arg3>, type_trait_pass_t<T_arg4>, type_trait_pass_t<T_arg5>>
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(_A_1, _A_2, _A_3, _A_4, _A_5);
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}
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#endif //SIGC_TEMPLATE_SPECIALIZATION_OPERATOR_OVERLOAD
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template <class T_arg1, class T_arg2, class T_arg3, class T_arg4, class T_arg5, class T_arg6>
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typename deduce_result_type<T_arg1, T_arg2, T_arg3, T_arg4, T_arg5, T_arg6>::type
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operator ()(T_arg1 _A_1, T_arg2 _A_2, T_arg3 _A_3, T_arg4 _A_4, T_arg5 _A_5, T_arg6 _A_6) const
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{ return value_.SIGC_WORKAROUND_OPERATOR_PARENTHESES<type_trait_pass_t<T_arg1>, type_trait_pass_t<T_arg2>, type_trait_pass_t<T_arg3>, type_trait_pass_t<T_arg4>, type_trait_pass_t<T_arg5>, type_trait_pass_t<T_arg6>>
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(_A_1, _A_2, _A_3, _A_4, _A_5, _A_6);
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}
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#ifndef SIGC_TEMPLATE_SPECIALIZATION_OPERATOR_OVERLOAD
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template <class T_arg1, class T_arg2, class T_arg3, class T_arg4, class T_arg5, class T_arg6>
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typename deduce_result_type<T_arg1, T_arg2, T_arg3, T_arg4, T_arg5, T_arg6>::type
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sun_forte_workaround(T_arg1 _A_1, T_arg2 _A_2, T_arg3 _A_3, T_arg4 _A_4, T_arg5 _A_5, T_arg6 _A_6) const
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{ return value_.SIGC_WORKAROUND_OPERATOR_PARENTHESES<type_trait_pass_t<T_arg1>, type_trait_pass_t<T_arg2>, type_trait_pass_t<T_arg3>, type_trait_pass_t<T_arg4>, type_trait_pass_t<T_arg5>, type_trait_pass_t<T_arg6>>
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(_A_1, _A_2, _A_3, _A_4, _A_5, _A_6);
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}
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#endif //SIGC_TEMPLATE_SPECIALIZATION_OPERATOR_OVERLOAD
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template <class T_arg1, class T_arg2, class T_arg3, class T_arg4, class T_arg5, class T_arg6, class T_arg7>
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typename deduce_result_type<T_arg1, T_arg2, T_arg3, T_arg4, T_arg5, T_arg6, T_arg7>::type
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operator ()(T_arg1 _A_1, T_arg2 _A_2, T_arg3 _A_3, T_arg4 _A_4, T_arg5 _A_5, T_arg6 _A_6, T_arg7 _A_7) const
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{ return value_.SIGC_WORKAROUND_OPERATOR_PARENTHESES<type_trait_pass_t<T_arg1>, type_trait_pass_t<T_arg2>, type_trait_pass_t<T_arg3>, type_trait_pass_t<T_arg4>, type_trait_pass_t<T_arg5>, type_trait_pass_t<T_arg6>, type_trait_pass_t<T_arg7>>
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(_A_1, _A_2, _A_3, _A_4, _A_5, _A_6, _A_7);
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}
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#ifndef SIGC_TEMPLATE_SPECIALIZATION_OPERATOR_OVERLOAD
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template <class T_arg1, class T_arg2, class T_arg3, class T_arg4, class T_arg5, class T_arg6, class T_arg7>
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typename deduce_result_type<T_arg1, T_arg2, T_arg3, T_arg4, T_arg5, T_arg6, T_arg7>::type
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sun_forte_workaround(T_arg1 _A_1, T_arg2 _A_2, T_arg3 _A_3, T_arg4 _A_4, T_arg5 _A_5, T_arg6 _A_6, T_arg7 _A_7) const
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{ return value_.SIGC_WORKAROUND_OPERATOR_PARENTHESES<type_trait_pass_t<T_arg1>, type_trait_pass_t<T_arg2>, type_trait_pass_t<T_arg3>, type_trait_pass_t<T_arg4>, type_trait_pass_t<T_arg5>, type_trait_pass_t<T_arg6>, type_trait_pass_t<T_arg7>>
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(_A_1, _A_2, _A_3, _A_4, _A_5, _A_6, _A_7);
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}
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#endif //SIGC_TEMPLATE_SPECIALIZATION_OPERATOR_OVERLOAD
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lambda_core() {}
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explicit lambda_core(const T_type& v)
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: value_(v) {}
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T_type value_;
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};
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} /* namespace internal */
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// forward declarations for lambda operators other<subscript> and other<assign>
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template <class T_type>
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struct other;
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struct subscript;
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struct assign;
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template <class T_action, class T_type1, class T_type2>
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struct lambda_operator;
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template <class T_type>
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struct unwrap_lambda_type;
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/** Lambda type.
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* Objects of this type store a value that may be of type lambda itself.
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* In this case, operator()() executes the lambda (a lambda is always a functor at the same time).
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* Otherwise, operator()() simply returns the stored value.
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* The assign and subscript operators are defined to return a lambda operator.
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*
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* @deprecated Use C++11 lambda expressions instead.
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*
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* @ingroup lambdas
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*/
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template <class T_type>
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struct lambda : public internal::lambda_core<T_type>
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{
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typedef lambda<T_type> self;
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lambda()
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{}
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lambda(typename type_trait<T_type>::take v)
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: internal::lambda_core<T_type>(v)
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{}
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// operators for other<subscript>
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template <class T_arg>
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lambda<lambda_operator<other<subscript>, self, typename unwrap_lambda_type<T_arg>::type> >
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operator [] (const T_arg& a) const
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{ typedef lambda_operator<other<subscript>, self, typename unwrap_lambda_type<T_arg>::type> lambda_operator_type;
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return lambda<lambda_operator_type>(lambda_operator_type(this->value_, unwrap_lambda_value(a))); }
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// operators for other<assign>
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template <class T_arg>
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lambda<lambda_operator<other<assign>, self, typename unwrap_lambda_type<T_arg>::type> >
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operator = (const T_arg& a) const
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{ typedef lambda_operator<other<assign>, self, typename unwrap_lambda_type<T_arg>::type> lambda_operator_type;
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return lambda<lambda_operator_type>(lambda_operator_type(this->value_, unwrap_lambda_value(a))); }
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};
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#endif // DOXYGEN_SHOULD_SKIP_THIS
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} /* namespace sigc */
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#endif // SIGCXX_DISABLE_DEPRECATED
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#endif /* _SIGC_LAMBDA_BASE_HPP_ */
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