📄 stl_function.h
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struct project1st : public _Project1st<_Arg1, _Arg2> {};template <class _Arg1, class _Arg2>struct project2nd : public _Project2nd<_Arg1, _Arg2> {};// constant_void_fun, constant_unary_fun, and constant_binary_fun are// extensions: they are not part of the standard. (The same, of course,// is true of the helper functions constant0, constant1, and constant2.)template <class _Result>struct _Constant_void_fun { typedef _Result result_type; result_type _M_val; _Constant_void_fun(const result_type& __v) : _M_val(__v) {} const result_type& operator()() const { return _M_val; }}; template <class _Result, class _Argument>struct _Constant_unary_fun { typedef _Argument argument_type; typedef _Result result_type; result_type _M_val; _Constant_unary_fun(const result_type& __v) : _M_val(__v) {} const result_type& operator()(const _Argument&) const { return _M_val; }};template <class _Result, class _Arg1, class _Arg2>struct _Constant_binary_fun { typedef _Arg1 first_argument_type; typedef _Arg2 second_argument_type; typedef _Result result_type; _Result _M_val; _Constant_binary_fun(const _Result& __v) : _M_val(__v) {} const result_type& operator()(const _Arg1&, const _Arg2&) const { return _M_val; }};template <class _Result>struct constant_void_fun : public _Constant_void_fun<_Result> { constant_void_fun(const _Result& __v) : _Constant_void_fun<_Result>(__v) {}}; template <class _Result, class _Argument __STL_DEPENDENT_DEFAULT_TMPL(_Result)>struct constant_unary_fun : public _Constant_unary_fun<_Result, _Argument>{ constant_unary_fun(const _Result& __v) : _Constant_unary_fun<_Result, _Argument>(__v) {}};template <class _Result, class _Arg1 __STL_DEPENDENT_DEFAULT_TMPL(_Result), class _Arg2 __STL_DEPENDENT_DEFAULT_TMPL(_Arg1)>struct constant_binary_fun : public _Constant_binary_fun<_Result, _Arg1, _Arg2>{ constant_binary_fun(const _Result& __v) : _Constant_binary_fun<_Result, _Arg1, _Arg2>(__v) {}};template <class _Result>inline constant_void_fun<_Result> constant0(const _Result& __val){ return constant_void_fun<_Result>(__val);}template <class _Result>inline constant_unary_fun<_Result,_Result> constant1(const _Result& __val){ return constant_unary_fun<_Result,_Result>(__val);}template <class _Result>inline constant_binary_fun<_Result,_Result,_Result> constant2(const _Result& __val){ return constant_binary_fun<_Result,_Result,_Result>(__val);}// subtractive_rng is an extension: it is not part of the standard.// Note: this code assumes that int is 32 bits.class subtractive_rng : public unary_function<unsigned int, unsigned int> {private: unsigned int _M_table[55]; size_t _M_index1; size_t _M_index2;public: unsigned int operator()(unsigned int __limit) { _M_index1 = (_M_index1 + 1) % 55; _M_index2 = (_M_index2 + 1) % 55; _M_table[_M_index1] = _M_table[_M_index1] - _M_table[_M_index2]; return _M_table[_M_index1] % __limit; } void _M_initialize(unsigned int __seed) { unsigned int __k = 1; _M_table[54] = __seed; size_t __i; for (__i = 0; __i < 54; __i++) { size_t __ii = (21 * (__i + 1) % 55) - 1; _M_table[__ii] = __k; __k = __seed - __k; __seed = _M_table[__ii]; } for (int __loop = 0; __loop < 4; __loop++) { for (__i = 0; __i < 55; __i++) _M_table[__i] = _M_table[__i] - _M_table[(1 + __i + 30) % 55]; } _M_index1 = 0; _M_index2 = 31; } subtractive_rng(unsigned int __seed) { _M_initialize(__seed); } subtractive_rng() { _M_initialize(161803398u); }};// Adaptor function objects: pointers to member functions.// There are a total of 16 = 2^4 function objects in this family.// (1) Member functions taking no arguments vs member functions taking// one argument.// (2) Call through pointer vs call through reference.// (3) Member function with void return type vs member function with// non-void return type.// (4) Const vs non-const member function.// Note that choice (3) is nothing more than a workaround: according// to the draft, compilers should handle void and non-void the same way.// This feature is not yet widely implemented, though. You can only use// member functions returning void if your compiler supports partial// specialization.// All of this complexity is in the function objects themselves. You can// ignore it by using the helper function mem_fun and mem_fun_ref,// which create whichever type of adaptor is appropriate.// (mem_fun1 and mem_fun1_ref are no longer part of the C++ standard,// but they are provided for backward compatibility.)template <class _Ret, class _Tp>class mem_fun_t : public unary_function<_Tp*,_Ret> {public: explicit mem_fun_t(_Ret (_Tp::*__pf)()) : _M_f(__pf) {} _Ret operator()(_Tp* __p) const { return (__p->*_M_f)(); }private: _Ret (_Tp::*_M_f)();};template <class _Ret, class _Tp>class const_mem_fun_t : public unary_function<const _Tp*,_Ret> {public: explicit const_mem_fun_t(_Ret (_Tp::*__pf)() const) : _M_f(__pf) {} _Ret operator()(const _Tp* __p) const { return (__p->*_M_f)(); }private: _Ret (_Tp::*_M_f)() const;};template <class _Ret, class _Tp>class mem_fun_ref_t : public unary_function<_Tp,_Ret> {public: explicit mem_fun_ref_t(_Ret (_Tp::*__pf)()) : _M_f(__pf) {} _Ret operator()(_Tp& __r) const { return (__r.*_M_f)(); }private: _Ret (_Tp::*_M_f)();};template <class _Ret, class _Tp>class const_mem_fun_ref_t : public unary_function<_Tp,_Ret> {public: explicit const_mem_fun_ref_t(_Ret (_Tp::*__pf)() const) : _M_f(__pf) {} _Ret operator()(const _Tp& __r) const { return (__r.*_M_f)(); }private: _Ret (_Tp::*_M_f)() const;};template <class _Ret, class _Tp, class _Arg>class mem_fun1_t : public binary_function<_Tp*,_Arg,_Ret> {public: explicit mem_fun1_t(_Ret (_Tp::*__pf)(_Arg)) : _M_f(__pf) {} _Ret operator()(_Tp* __p, _Arg __x) const { return (__p->*_M_f)(__x); }private: _Ret (_Tp::*_M_f)(_Arg);};template <class _Ret, class _Tp, class _Arg>class const_mem_fun1_t : public binary_function<const _Tp*,_Arg,_Ret> {public: explicit const_mem_fun1_t(_Ret (_Tp::*__pf)(_Arg) const) : _M_f(__pf) {} _Ret operator()(const _Tp* __p, _Arg __x) const { return (__p->*_M_f)(__x); }private: _Ret (_Tp::*_M_f)(_Arg) const;};template <class _Ret, class _Tp, class _Arg>class mem_fun1_ref_t : public binary_function<_Tp,_Arg,_Ret> {public: explicit mem_fun1_ref_t(_Ret (_Tp::*__pf)(_Arg)) : _M_f(__pf) {} _Ret operator()(_Tp& __r, _Arg __x) const { return (__r.*_M_f)(__x); }private: _Ret (_Tp::*_M_f)(_Arg);};template <class _Ret, class _Tp, class _Arg>class const_mem_fun1_ref_t : public binary_function<_Tp,_Arg,_Ret> {public: explicit const_mem_fun1_ref_t(_Ret (_Tp::*__pf)(_Arg) const) : _M_f(__pf) {} _Ret operator()(const _Tp& __r, _Arg __x) const { return (__r.*_M_f)(__x); }private: _Ret (_Tp::*_M_f)(_Arg) const;};#ifdef __STL_CLASS_PARTIAL_SPECIALIZATIONtemplate <class _Tp>class mem_fun_t<void, _Tp> : public unary_function<_Tp*,void> {public: explicit mem_fun_t(void (_Tp::*__pf)()) : _M_f(__pf) {} void operator()(_Tp* __p) const { (__p->*_M_f)(); }private: void (_Tp::*_M_f)();};template <class _Tp>class const_mem_fun_t<void, _Tp> : public unary_function<const _Tp*,void> {public: explicit const_mem_fun_t(void (_Tp::*__pf)() const) : _M_f(__pf) {} void operator()(const _Tp* __p) const { (__p->*_M_f)(); }private: void (_Tp::*_M_f)() const;};template <class _Tp>class mem_fun_ref_t<void, _Tp> : public unary_function<_Tp,void> {public: explicit mem_fun_ref_t(void (_Tp::*__pf)()) : _M_f(__pf) {} void operator()(_Tp& __r) const { (__r.*_M_f)(); }private: void (_Tp::*_M_f)();};template <class _Tp>class const_mem_fun_ref_t<void, _Tp> : public unary_function<_Tp,void> {public: explicit const_mem_fun_ref_t(void (_Tp::*__pf)() const) : _M_f(__pf) {} void operator()(const _Tp& __r) const { (__r.*_M_f)(); }private: void (_Tp::*_M_f)() const;};template <class _Tp, class _Arg>class mem_fun1_t<void, _Tp, _Arg> : public binary_function<_Tp*,_Arg,void> {public: explicit mem_fun1_t(void (_Tp::*__pf)(_Arg)) : _M_f(__pf) {} void operator()(_Tp* __p, _Arg __x) const { (__p->*_M_f)(__x); }private: void (_Tp::*_M_f)(_Arg);};template <class _Tp, class _Arg>class const_mem_fun1_t<void, _Tp, _Arg> : public binary_function<const _Tp*,_Arg,void> {public: explicit const_mem_fun1_t(void (_Tp::*__pf)(_Arg) const) : _M_f(__pf) {} void operator()(const _Tp* __p, _Arg __x) const { (__p->*_M_f)(__x); }private: void (_Tp::*_M_f)(_Arg) const;};template <class _Tp, class _Arg>class mem_fun1_ref_t<void, _Tp, _Arg> : public binary_function<_Tp,_Arg,void> {public: explicit mem_fun1_ref_t(void (_Tp::*__pf)(_Arg)) : _M_f(__pf) {} void operator()(_Tp& __r, _Arg __x) const { (__r.*_M_f)(__x); }private: void (_Tp::*_M_f)(_Arg);};template <class _Tp, class _Arg>class const_mem_fun1_ref_t<void, _Tp, _Arg> : public binary_function<_Tp,_Arg,void> {public: explicit const_mem_fun1_ref_t(void (_Tp::*__pf)(_Arg) const) : _M_f(__pf) {} void operator()(const _Tp& __r, _Arg __x) const { (__r.*_M_f)(__x); }private: void (_Tp::*_M_f)(_Arg) const;};#endif /* __STL_CLASS_PARTIAL_SPECIALIZATION */// Mem_fun adaptor helper functions. There are only two:// mem_fun and mem_fun_ref. (mem_fun1 and mem_fun1_ref // are provided for backward compatibility, but they are no longer// part of the C++ standard.)template <class _Ret, class _Tp>inline mem_fun_t<_Ret,_Tp> mem_fun(_Ret (_Tp::*__f)()) { return mem_fun_t<_Ret,_Tp>(__f); }template <class _Ret, class _Tp>inline const_mem_fun_t<_Ret,_Tp> mem_fun(_Ret (_Tp::*__f)() const) { return const_mem_fun_t<_Ret,_Tp>(__f); }template <class _Ret, class _Tp>inline mem_fun_ref_t<_Ret,_Tp> mem_fun_ref(_Ret (_Tp::*__f)()) { return mem_fun_ref_t<_Ret,_Tp>(__f); }template <class _Ret, class _Tp>inline const_mem_fun_ref_t<_Ret,_Tp> mem_fun_ref(_Ret (_Tp::*__f)() const) { return const_mem_fun_ref_t<_Ret,_Tp>(__f); }template <class _Ret, class _Tp, class _Arg>inline mem_fun1_t<_Ret,_Tp,_Arg> mem_fun(_Ret (_Tp::*__f)(_Arg)) { return mem_fun1_t<_Ret,_Tp,_Arg>(__f); }template <class _Ret, class _Tp, class _Arg>inline const_mem_fun1_t<_Ret,_Tp,_Arg> mem_fun(_Ret (_Tp::*__f)(_Arg) const) { return const_mem_fun1_t<_Ret,_Tp,_Arg>(__f); }template <class _Ret, class _Tp, class _Arg>inline mem_fun1_ref_t<_Ret,_Tp,_Arg> mem_fun_ref(_Ret (_Tp::*__f)(_Arg)) { return mem_fun1_ref_t<_Ret,_Tp,_Arg>(__f); }template <class _Ret, class _Tp, class _Arg>inline const_mem_fun1_ref_t<_Ret,_Tp,_Arg>mem_fun_ref(_Ret (_Tp::*__f)(_Arg) const) { return const_mem_fun1_ref_t<_Ret,_Tp,_Arg>(__f); }template <class _Ret, class _Tp, class _Arg>inline mem_fun1_t<_Ret,_Tp,_Arg> mem_fun1(_Ret (_Tp::*__f)(_Arg)) { return mem_fun1_t<_Ret,_Tp,_Arg>(__f); }template <class _Ret, class _Tp, class _Arg>inline const_mem_fun1_t<_Ret,_Tp,_Arg> mem_fun1(_Ret (_Tp::*__f)(_Arg) const) { return const_mem_fun1_t<_Ret,_Tp,_Arg>(__f); }template <class _Ret, class _Tp, class _Arg>inline mem_fun1_ref_t<_Ret,_Tp,_Arg> mem_fun1_ref(_Ret (_Tp::*__f)(_Arg)) { return mem_fun1_ref_t<_Ret,_Tp,_Arg>(__f); }template <class _Ret, class _Tp, class _Arg>inline const_mem_fun1_ref_t<_Ret,_Tp,_Arg>mem_fun1_ref(_Ret (_Tp::*__f)(_Arg) const) { return const_mem_fun1_ref_t<_Ret,_Tp,_Arg>(__f); }__STL_END_NAMESPACE#endif /* __SGI_STL_INTERNAL_FUNCTION_H */// Local Variables:// mode:C++// End:
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