C++ 是否存在类成员函数的模板化检查?
是否可以编写一个模板,根据类上是否定义了某个成员函数来更改行为 下面是我想写的一个简单例子:C++ 是否存在类成员函数的模板化检查?,c++,templates,template-meta-programming,sfinae,C++,Templates,Template Meta Programming,Sfinae,是否可以编写一个模板,根据类上是否定义了某个成员函数来更改行为 下面是我想写的一个简单例子: template<class T> std::string optionalToString(T* obj) { if (FUNCTION_EXISTS(T->toString)) return obj->toString(); else return "toString not defined"; } 模板 标准::字符串可选字
template<class T>
std::string optionalToString(T* obj)
{
if (FUNCTION_EXISTS(T->toString))
return obj->toString();
else
return "toString not defined";
}
模板
标准::字符串可选字符串(T*obj)
{
如果(函数_存在(T->toString))
返回obj->toString();
其他的
返回“toString未定义”;
}
因此,如果
类T
定义了toString()
,那么它将使用它;否则,它不会。我不知道怎么做的神奇部分是“功能存在”部分。这就是类型特征的作用。不幸的是,它们必须手动定义。在您的情况下,想象以下情况:
template <typename T>
struct response_trait {
static bool const has_tostring = false;
};
template <>
struct response_trait<your_type_with_tostring> {
static bool const has_tostring = true;
}
模板
结构反应特征{
静态布尔常量具有\u tostring=false;
};
模板
结构反应特征{
静态布尔常量具有_tostring=true;
}
这就是类型特征的意义所在。不幸的是,它们必须手动定义。在您的情况下,想象以下情况:
template <typename T>
struct response_trait {
static bool const has_tostring = false;
};
template <>
struct response_trait<your_type_with_tostring> {
static bool const has_tostring = true;
}
模板
结构反应特征{
静态布尔常量具有\u tostring=false;
};
模板
结构反应特征{
静态布尔常量具有_tostring=true;
}
是,使用SFINAE,您可以检查给定类是否提供了特定方法。以下是工作代码:
#include <iostream>
struct Hello
{
int helloworld() { return 0; }
};
struct Generic {};
// SFINAE test
template <typename T>
class has_helloworld
{
typedef char one;
struct two { char x[2]; };
template <typename C> static one test( decltype(&C::helloworld) ) ;
template <typename C> static two test(...);
public:
enum { value = sizeof(test<T>(0)) == sizeof(char) };
};
int main(int argc, char *argv[])
{
std::cout << has_helloworld<Hello>::value << std::endl;
std::cout << has_helloworld<Generic>::value << std::endl;
return 0;
}
#包括
结构你好
{
int helloworld(){return 0;}
};
结构泛型{};
//SFINAE试验
模板
类具有\u helloworld
{
类型1;
结构二{char x[2];};
模板静态一个测试(decltype(&C::helloworld));
模板静态二次试验(…);
公众:
枚举{value=sizeof(test(0))==sizeof(char)};
};
int main(int argc,char*argv[])
{
std::cout是的,使用SFINAE,您可以检查给定的类是否提供了特定的方法。以下是工作代码:
#include <iostream>
struct Hello
{
int helloworld() { return 0; }
};
struct Generic {};
// SFINAE test
template <typename T>
class has_helloworld
{
typedef char one;
struct two { char x[2]; };
template <typename C> static one test( decltype(&C::helloworld) ) ;
template <typename C> static two test(...);
public:
enum { value = sizeof(test<T>(0)) == sizeof(char) };
};
int main(int argc, char *argv[])
{
std::cout << has_helloworld<Hello>::value << std::endl;
std::cout << has_helloworld<Generic>::value << std::endl;
return 0;
}
#包括
结构你好
{
int helloworld(){return 0;}
};
结构泛型{};
//SFINAE试验
模板
类具有\u helloworld
{
类型1;
结构二{char x[2];};
模板静态一个测试(decltype(&C::helloworld));
模板静态二次试验(…);
公众:
枚举{value=sizeof(test(0))==sizeof(char)};
};
int main(int argc,char*argv[])
{
std::cout这是一个很好的小谜题-好问题
这里有一种不依赖非标准typeof
运算符的替代方法
不幸的是,它在GCC(MIWW)3.4.5或数字MARS 842N上不起作用,但是它对所有版本的MSVC(包括VC6)和C++ COM+都有作用。
较长的评论栏有关于它如何工作(或应该如何工作)的详细信息。正如它所说的,我不确定哪种行为符合标准——我欢迎对此进行评论
更新-2008年11月7日:
<> P>看起来这个代码在语法上是正确的,MSVC和COMUO C++显示的行为不符合标准(感谢和指点我正确的方向)。C++ 03标准表示如下:
template <typename T>
struct response_trait {
static bool const has_tostring = false;
};
template <>
struct response_trait<your_type_with_tostring> {
static bool const has_tostring = true;
}
14.6.2从属名称[临时部门]
第3款
在类模板的定义中
或类模板的成员,如果
类模板的基类
取决于模板参数
未检查基类范围
在非限定名称查找期间
在定义
类模板或成员,或在
类模板的实例化或
成员
<> P>这样,当MSVC或COMUO考虑<代码> toSTRIN()/<代码成员函数>代码> t>代码>模板时实例化在调用站点中的名称> dotoStrug()/<代码>时,这是不正确的(即使它实际上是本例中我正在寻找的行为)。
GCC和Digital Mars的行为看起来是正确的-在这两种情况下,非成员toString()
函数都绑定到调用
老鼠-我想我可能已经找到了一个聪明的解决方案,相反,我发现了一些编译器错误
#包括
#包括
结构你好
{
std::string toString(){
回复“你好”;
}
};
结构泛型{};
//以下名称空间不允许使用toString()方法
//几乎所有的东西-除了这里面的其他东西
//编辑单位
名称空间{
std::string toString()
{
返回“toString未定义”;
}
模板
类optionalToStringImpl:public T
{
公众:
std::string doToString(){
//理论上,此调用的名称查找
//toString()应在中找到toString()
//基类T如果存在,但是如果
//基类中不存在,它将
//在中查找free toString()函数
//私有名称空间。
//
//该理论适用于MSVC(所有版本
//从VC6到VC9)和CCOMU+ C++,但
//不适用于MinGW 3.4.5或
//数字火星8.42n
//
//老实说,我不确定标准是怎么说的
//这是正确的行为-这是一种
//类似ADL(参数相关查找-
//也称为Koenig查找),但没有
//参数(隐含的“this”指针除外)
返回到字符串();
}
};
}
模板
标准::字符串可选字符串(T&obj)
{
//丑陋的,粗糙的演员。。。
optionalToStringImpl*temp=重新解释铸件(&obj);
返回temp->doToString();
}
int
main(int argc,char*argv[])
{
你好,helloObj;
泛型genericObj;
std::cout这是一个很好的小谜题-好问题
这里有一种不依赖非标准typeof
运算符的替代方法
不幸的是,它不适用于GCC(MIWW)3.4.5或数字MARS 842N,但它对所有版本的MSVC(包括VC6)和COMUC+C++都起作用。
template<bool C, typename T = void>
struct enable_if {
typedef T type;
};
template<typename T>
struct enable_if<false, T> { };
HAS_MEM_FUNC(toString, has_to_string);
template<typename T>
typename enable_if<has_to_string<T,
std::string(T::*)()>::value, std::string>::type
doSomething(T * t) {
/* something when T has toString ... */
return t->toString();
}
template<typename T>
typename enable_if<!has_to_string<T,
std::string(T::*)()>::value, std::string>::type
doSomething(T * t) {
/* something when T doesnt have toString ... */
return "T::toString() does not exist.";
}
template <class T>
struct has_foo
{
struct S { void foo(...); };
struct derived : S, T {};
template <typename V, V> struct W {};
template <typename X>
char (&test(W<void (X::*)(), &X::foo> *))[1];
template <typename>
char (&test(...))[2];
static const bool value = sizeof(test<derived>(0)) == 1;
};
template <class Type>
class TypeHasToString
{
// This type won't compile if the second template parameter isn't of type T,
// so I can put a function pointer type in the first parameter and the function
// itself in the second thus checking that the function has a specific signature.
template <typename T, T> struct TypeCheck;
typedef char Yes;
typedef long No;
// A helper struct to hold the declaration of the function pointer.
// Change it if the function signature changes.
template <typename T> struct ToString
{
typedef void (T::*fptr)();
};
template <typename T> static Yes HasToString(TypeCheck< typename ToString<T>::fptr, &T::toString >*);
template <typename T> static No HasToString(...);
public:
static bool const value = (sizeof(HasToString<Type>(0)) == sizeof(Yes));
};
CREATE_MEMBER_CHECK(x);
bool has_x = has_member_x<class_to_check_for_x>::value;
//Func signature MUST have T as template variable here... simpler this way :\
CREATE_MEMBER_FUNC_SIG_CHECK(x, void (T::*)(), void__x);
bool has_func_sig_void__x = has_member_func_void__x<class_to_check_for_x>::value;
CREATE_MEMBER_VAR_CHECK(x);
bool has_var_x = has_member_var_x<class_to_check_for_x>::value;
CREATE_MEMBER_CLASS_CHECK(x);
bool has_class_x = has_member_class_x<class_to_check_for_x>::value;
CREATE_MEMBER_UNION_CHECK(x);
bool has_union_x = has_member_union_x<class_to_check_for_x>::value;
CREATE_MEMBER_ENUM_CHECK(x);
bool has_enum_x = has_member_enum_x<class_to_check_for_x>::value;
CREATE_MEMBER_CHECK(x);
CREATE_MEMBER_VAR_CHECK(x);
CREATE_MEMBER_CLASS_CHECK(x);
CREATE_MEMBER_UNION_CHECK(x);
CREATE_MEMBER_ENUM_CHECK(x);
CREATE_MEMBER_FUNC_CHECK(x);
bool has_any_func_x = has_member_func_x<class_to_check_for_x>::value;
CREATE_MEMBER_CHECKS(x); //Just stamps out the same macro calls as above.
bool has_any_func_x = has_member_func_x<class_to_check_for_x>::value;
/*
- Multiple inheritance forces ambiguity of member names.
- SFINAE is used to make aliases to member names.
- Expression SFINAE is used in just one generic has_member that can accept
any alias we pass it.
*/
//Variadic to force ambiguity of class members. C++11 and up.
template <typename... Args> struct ambiguate : public Args... {};
//Non-variadic version of the line above.
//template <typename A, typename B> struct ambiguate : public A, public B {};
template<typename A, typename = void>
struct got_type : std::false_type {};
template<typename A>
struct got_type<A> : std::true_type {
typedef A type;
};
template<typename T, T>
struct sig_check : std::true_type {};
template<typename Alias, typename AmbiguitySeed>
struct has_member {
template<typename C> static char ((&f(decltype(&C::value))))[1];
template<typename C> static char ((&f(...)))[2];
//Make sure the member name is consistently spelled the same.
static_assert(
(sizeof(f<AmbiguitySeed>(0)) == 1)
, "Member name specified in AmbiguitySeed is different from member name specified in Alias, or wrong Alias/AmbiguitySeed has been specified."
);
static bool const value = sizeof(f<Alias>(0)) == 2;
};
//Check for any member with given name, whether var, func, class, union, enum.
#define CREATE_MEMBER_CHECK(member) \
\
template<typename T, typename = std::true_type> \
struct Alias_##member; \
\
template<typename T> \
struct Alias_##member < \
T, std::integral_constant<bool, got_type<decltype(&T::member)>::value> \
> { static const decltype(&T::member) value; }; \
\
struct AmbiguitySeed_##member { char member; }; \
\
template<typename T> \
struct has_member_##member { \
static const bool value \
= has_member< \
Alias_##member<ambiguate<T, AmbiguitySeed_##member>> \
, Alias_##member<AmbiguitySeed_##member> \
>::value \
; \
}
//Check for member variable with given name.
#define CREATE_MEMBER_VAR_CHECK(var_name) \
\
template<typename T, typename = std::true_type> \
struct has_member_var_##var_name : std::false_type {}; \
\
template<typename T> \
struct has_member_var_##var_name< \
T \
, std::integral_constant< \
bool \
, !std::is_member_function_pointer<decltype(&T::var_name)>::value \
> \
> : std::true_type {}
//Check for member function with given name AND signature.
#define CREATE_MEMBER_FUNC_SIG_CHECK(func_name, func_sig, templ_postfix) \
\
template<typename T, typename = std::true_type> \
struct has_member_func_##templ_postfix : std::false_type {}; \
\
template<typename T> \
struct has_member_func_##templ_postfix< \
T, std::integral_constant< \
bool \
, sig_check<func_sig, &T::func_name>::value \
> \
> : std::true_type {}
//Check for member class with given name.
#define CREATE_MEMBER_CLASS_CHECK(class_name) \
\
template<typename T, typename = std::true_type> \
struct has_member_class_##class_name : std::false_type {}; \
\
template<typename T> \
struct has_member_class_##class_name< \
T \
, std::integral_constant< \
bool \
, std::is_class< \
typename got_type<typename T::class_name>::type \
>::value \
> \
> : std::true_type {}
//Check for member union with given name.
#define CREATE_MEMBER_UNION_CHECK(union_name) \
\
template<typename T, typename = std::true_type> \
struct has_member_union_##union_name : std::false_type {}; \
\
template<typename T> \
struct has_member_union_##union_name< \
T \
, std::integral_constant< \
bool \
, std::is_union< \
typename got_type<typename T::union_name>::type \
>::value \
> \
> : std::true_type {}
//Check for member enum with given name.
#define CREATE_MEMBER_ENUM_CHECK(enum_name) \
\
template<typename T, typename = std::true_type> \
struct has_member_enum_##enum_name : std::false_type {}; \
\
template<typename T> \
struct has_member_enum_##enum_name< \
T \
, std::integral_constant< \
bool \
, std::is_enum< \
typename got_type<typename T::enum_name>::type \
>::value \
> \
> : std::true_type {}
//Check for function with given name, any signature.
#define CREATE_MEMBER_FUNC_CHECK(func) \
template<typename T> \
struct has_member_func_##func { \
static const bool value \
= has_member_##func<T>::value \
&& !has_member_var_##func<T>::value \
&& !has_member_class_##func<T>::value \
&& !has_member_union_##func<T>::value \
&& !has_member_enum_##func<T>::value \
; \
}
//Create all the checks for one member. Does NOT include func sig checks.
#define CREATE_MEMBER_CHECKS(member) \
CREATE_MEMBER_CHECK(member); \
CREATE_MEMBER_VAR_CHECK(member); \
CREATE_MEMBER_CLASS_CHECK(member); \
CREATE_MEMBER_UNION_CHECK(member); \
CREATE_MEMBER_ENUM_CHECK(member); \
CREATE_MEMBER_FUNC_CHECK(member)
template<class T> struct has_const_begin
{
typedef char (&Yes)[1];
typedef char (&No)[2];
template<class U>
static Yes test(U const * data,
typename std::enable_if<std::is_same<
typename U::const_iterator,
decltype(data->begin())
>::value>::type * = 0);
static No test(...);
static const bool value = sizeof(Yes) == sizeof(has_const_begin::test((typename std::remove_reference<T>::type*)0));
};
template<class T> struct has_foo
{
typedef char (&Yes)[1];
typedef char (&No)[2];
template<class U>
static Yes test(U * data, MyClass* arg1 = 0,
typename std::enable_if<std::is_void<
decltype(data->foo(*arg1, 1u))
>::value>::type * = 0);
static No test(...);
static const bool value = sizeof(Yes) == sizeof(has_foo::test((typename std::remove_reference<T>::type*)0));
};
template<class T>
auto serialize_imp(std::ostream& os, T const& obj, int)
-> decltype(os << obj, void())
{
os << obj;
}
template<class T>
auto serialize_imp(std::ostream& os, T const& obj, long)
-> decltype(obj.stream(os), void())
{
obj.stream(os);
}
template<class T>
auto serialize(std::ostream& os, T const& obj)
-> decltype(serialize_imp(os, obj, 0), void())
{
serialize_imp(os, obj, 0);
}
#include <type_traits>
template<class>
struct sfinae_true : std::true_type{};
namespace detail{
template<class T, class A0>
static auto test_stream(int)
-> sfinae_true<decltype(std::declval<T>().stream(std::declval<A0>()))>;
template<class, class A0>
static auto test_stream(long) -> std::false_type;
} // detail::
template<class T, class Arg>
struct has_stream : decltype(detail::test_stream<T, Arg>(0)){};
template<class T>
void serialize_imp(std::ostream& os, T const& obj, int,
int(*)[sizeof((os << obj),0)] = 0)
{
os << obj;
}
#include <type_traits>
template <typename U, typename = void> struct hasToString : std::false_type { };
template <typename U>
struct hasToString<U,
typename std::enable_if<bool(sizeof(&U::toString))>::type
> : std::true_type { };
/**
* @class : HAS_TYPEDEF
* @brief : This macro will be used to check if a class has a particular
* typedef or not.
* @param typedef_name : Name of Typedef
* @param name : Name of struct which is going to be run the test for
* the given particular typedef specified in typedef_name
*/
#define HAS_TYPEDEF(typedef_name, name) \
template <typename T> \
struct name { \
typedef char yes[1]; \
typedef char no[2]; \
template <typename U> \
struct type_check; \
template <typename _1> \
static yes& chk(type_check<typename _1::typedef_name>*); \
template <typename> \
static no& chk(...); \
static bool const value = sizeof(chk<T>(0)) == sizeof(yes); \
}
/**
* @class : HAS_MEM_FUNC
* @brief : This macro will be used to check if a class has a particular
* member function implemented in the public section or not.
* @param func : Name of Member Function
* @param name : Name of struct which is going to be run the test for
* the given particular member function name specified in func
* @param return_type: Return type of the member function
* @param ellipsis(...) : Since this is macro should provide test case for every
* possible member function we use variadic macros to cover all possibilities
*/
#define HAS_MEM_FUNC(func, name, return_type, ...) \
template <typename T> \
struct name { \
typedef return_type (T::*Sign)(__VA_ARGS__); \
typedef char yes[1]; \
typedef char no[2]; \
template <typename U, U> \
struct type_check; \
template <typename _1> \
static yes& chk(type_check<Sign, &_1::func>*); \
template <typename> \
static no& chk(...); \
static bool const value = sizeof(chk<T>(0)) == sizeof(yes); \
}
class A {
public:
typedef int check;
void check_function() {}
};
class B {
public:
void hello(int a, double b) {}
void hello() {}
};
HAS_MEM_FUNC(check_function, has_check_function, void, void);
HAS_MEM_FUNC(hello, hello_check, void, int, double);
HAS_MEM_FUNC(hello, hello_void_check, void, void);
HAS_TYPEDEF(check, has_typedef_check);
int main() {
std::cout << "Check Function A:" << has_check_function<A>::value << std::endl;
std::cout << "Check Function B:" << has_check_function<B>::value << std::endl;
std::cout << "Hello Function A:" << hello_check<A>::value << std::endl;
std::cout << "Hello Function B:" << hello_check<B>::value << std::endl;
std::cout << "Hello void Function A:" << hello_void_check<A>::value << std::endl;
std::cout << "Hello void Function B:" << hello_void_check<B>::value << std::endl;
std::cout << "Check Typedef A:" << has_typedef_check<A>::value << std::endl;
std::cout << "Check Typedef B:" << has_typedef_check<B>::value << std::endl;
}
#include <string>
#include <vector>
HAS_MEM(bar)
HAS_MEM_FUN_CALL(bar)
struct test
{
void bar(int);
void bar(double);
void bar(int,double);
template < typename T >
typename std::enable_if< not std::is_integral<T>::value >::type
bar(const T&, int=0){}
template < typename T >
typename std::enable_if< std::is_integral<T>::value >::type
bar(const std::vector<T>&, T*){}
template < typename T >
int bar(const std::string&, int){}
};
int main(int argc, const char * argv[])
{
static_assert( has_mem_bar<test>::value , "");
static_assert( has_valid_mem_fun_call_bar<test(char const*,long)>::value , "");
static_assert( has_valid_mem_fun_call_bar<test(std::string&,long)>::value , "");
static_assert( has_valid_mem_fun_call_bar<test(std::vector<int>, int*)>::value , "");
static_assert( has_no_viable_mem_fun_call_bar<test(std::vector<double>, double*)>::value , "");
static_assert( has_valid_mem_fun_call_bar<test(int)>::value , "");
static_assert( std::is_same<void,result_of_mem_fun_call_bar<test(int)>::type>::value , "");
static_assert( has_valid_mem_fun_call_bar<test(int,double)>::value , "");
static_assert( not has_valid_mem_fun_call_bar<test(int,double,int)>::value , "");
static_assert( not has_ambiguous_mem_fun_call_bar<test(double)>::value , "");
static_assert( has_ambiguous_mem_fun_call_bar<test(unsigned)>::value , "");
static_assert( has_viable_mem_fun_call_bar<test(unsigned)>::value , "");
static_assert( has_viable_mem_fun_call_bar<test(int)>::value , "");
static_assert( has_no_viable_mem_fun_call_bar<test(void)>::value , "");
return 0;
}
#pragma once
#if __cplusplus >= 201103
#include <utility>
#include <type_traits>
#define HAS_MEM(mem) \
\
template < typename T > \
struct has_mem_##mem \
{ \
struct yes {}; \
struct no {}; \
\
struct ambiguate_seed { char mem; }; \
template < typename U > struct ambiguate : U, ambiguate_seed {}; \
\
template < typename U, typename = decltype(&U::mem) > static constexpr no test(int); \
template < typename > static constexpr yes test(...); \
\
static bool constexpr value = std::is_same<decltype(test< ambiguate<T> >(0)),yes>::value ; \
typedef std::integral_constant<bool,value> type; \
};
#define HAS_MEM_FUN_CALL(memfun) \
\
template < typename Signature > \
struct has_valid_mem_fun_call_##memfun; \
\
template < typename T, typename... Args > \
struct has_valid_mem_fun_call_##memfun< T(Args...) > \
{ \
struct yes {}; \
struct no {}; \
\
template < typename U, bool = has_mem_##memfun<U>::value > \
struct impl \
{ \
template < typename V, typename = decltype(std::declval<V>().memfun(std::declval<Args>()...)) > \
struct test_result { using type = yes; }; \
\
template < typename V > static constexpr typename test_result<V>::type test(int); \
template < typename > static constexpr no test(...); \
\
static constexpr bool value = std::is_same<decltype(test<U>(0)),yes>::value; \
using type = std::integral_constant<bool, value>; \
}; \
\
template < typename U > \
struct impl<U,false> : std::false_type {}; \
\
static constexpr bool value = impl<T>::value; \
using type = std::integral_constant<bool, value>; \
}; \
\
template < typename Signature > \
struct has_ambiguous_mem_fun_call_##memfun; \
\
template < typename T, typename... Args > \
struct has_ambiguous_mem_fun_call_##memfun< T(Args...) > \
{ \
struct ambiguate_seed { void memfun(...); }; \
\
template < class U, bool = has_mem_##memfun<U>::value > \
struct ambiguate : U, ambiguate_seed \
{ \
using ambiguate_seed::memfun; \
using U::memfun; \
}; \
\
template < class U > \
struct ambiguate<U,false> : ambiguate_seed {}; \
\
static constexpr bool value = not has_valid_mem_fun_call_##memfun< ambiguate<T>(Args...) >::value; \
using type = std::integral_constant<bool, value>; \
}; \
\
template < typename Signature > \
struct has_viable_mem_fun_call_##memfun; \
\
template < typename T, typename... Args > \
struct has_viable_mem_fun_call_##memfun< T(Args...) > \
{ \
static constexpr bool value = has_valid_mem_fun_call_##memfun<T(Args...)>::value \
or has_ambiguous_mem_fun_call_##memfun<T(Args...)>::value; \
using type = std::integral_constant<bool, value>; \
}; \
\
template < typename Signature > \
struct has_no_viable_mem_fun_call_##memfun; \
\
template < typename T, typename... Args > \
struct has_no_viable_mem_fun_call_##memfun < T(Args...) > \
{ \
static constexpr bool value = not has_viable_mem_fun_call_##memfun<T(Args...)>::value; \
using type = std::integral_constant<bool, value>; \
}; \
\
template < typename Signature > \
struct result_of_mem_fun_call_##memfun; \
\
template < typename T, typename... Args > \
struct result_of_mem_fun_call_##memfun< T(Args...) > \
{ \
using type = decltype(std::declval<T>().memfun(std::declval<Args>()...)); \
};
#endif
template<typename T>
using toString_t = decltype( std::declval<T&>().toString() );
template<typename T>
constexpr bool has_toString = std::is_detected_v<toString_t, T>;
template<class T>
std::string optionalToString(T* obj)
{
if constexpr (has_toString<T>)
return obj->toString();
else
return "toString not defined";
}
#include <boost/tti/has_member_function.hpp>
// Generate the metafunction
BOOST_TTI_HAS_MEMBER_FUNCTION(toString)
// Check whether T has a member function toString
// which takes no parameter and returns a std::string
constexpr bool foo = has_member_function_toString<T, std::string>::value;
template<class> struct type_sink { typedef void type; }; // consumes a type, and makes it `void`
template<class T> using type_sink_t = typename type_sink<T>::type;
template<class T, class=void> struct has_to_string : std::false_type {}; \
template<class T> struct has_to_string<
T,
type_sink_t< decltype( std::declval<T>().toString() ) >
>: std::true_type {};
namespace details {
template<class T>
std::string optionalToString_helper(T* obj, std::true_type /*has_to_string*/) {
return obj->toString();
}
template<class T>
std::string optionalToString_helper(T* obj, std::false_type /*has_to_string*/) {
return "toString not defined";
}
}
template<class T>
std::string optionalToString(T* obj) {
return details::optionalToString_helper( obj, has_to_string<T>{} );
}
#define MAKE_CODE_TRAIT( TRAIT_NAME, ... ) \
template<class T, class=void> struct TRAIT_NAME : std::false_type {}; \
template<class T> struct TRAIT_NAME< T, type_sink_t< decltype( __VA_ARGS__ ) > >: std::true_type {};
MAKE_CODE_TRAIT( has_to_string, std::declval<T>().toString() )
template<class T>
std::string optionalToString(T* obj) {
return compiled_if< has_to_string >(*obj, [&](auto&& obj) {
return obj.toString();
}) *compiled_else ([&]{
return "toString not defined";
});
}
// See http://www.open-std.org/jtc1/sc22/wg21/docs/papers/2015/n4502.pdf.
template <typename...>
using void_t = void;
// Primary template handles all types not supporting the operation.
template <typename, template <typename> class, typename = void_t<>>
struct detect : std::false_type {};
// Specialization recognizes/validates only types supporting the archetype.
template <typename T, template <typename> class Op>
struct detect<T, Op, void_t<Op<T>>> : std::true_type {};
template <typename T>
using toString_t = decltype(std::declval<T>().toString());
template <typename T>
using has_toString = detect<T, toString_t>;
// Archetypal expression for assignment operation.
template <typename T>
using assign_t = decltype(std::declval<T&>() = std::declval<T const &>())
// Trait corresponding to that archetype.
template <typename T>
using is_assignable = detect<T, assign_t>;
#if __GNUC__ < 5 && ! defined __clang__
// https://stackoverflow.com/a/28967049/1353549
template <typename...>
struct voider
{
using type = void;
};
template <typename...Ts>
using void_t = typename voider<Ts...>::type;
#else
template <typename...>
using void_t = void;
#endif
template<class T>
auto optionalToString(T* obj)
-> decltype( obj->toString() )
{
return obj->toString();
}
auto optionalToString(...) -> string
{
return "toString not defined";
}
template<class T>
constexpr auto test_has_toString_method(T* obj)
-> decltype( obj->toString() , std::true_type{} )
{
return obj->toString();
}
constexpr auto test_has_toString_method(...) -> std::false_type
{
return "toString not defined";
}
template<typename T> T declval(void);
struct fake_void { };
template<typename T> T &operator,(T &,fake_void);
template<typename T> T const &operator,(T const &,fake_void);
template<typename T> T volatile &operator,(T volatile &,fake_void);
template<typename T> T const volatile &operator,(T const volatile &,fake_void);
struct yes { char v[1]; };
struct no { char v[2]; };
template<bool> struct yes_no:yes{};
template<> struct yes_no<false>:no{};
template<typename T>
struct has_awesome_member {
template<typename U> static yes_no<(sizeof((
declval<U>().awesome_member(),fake_void()
))!=0)> check(int);
template<typename> static no check(...);
enum{value=sizeof(check<T>(0)) == sizeof(yes)};
};
struct foo { int awesome_member(void); };
struct bar { };
struct foo_void { void awesome_member(void); };
struct wrong_params { void awesome_member(int); };
static_assert(has_awesome_member<foo>::value,"");
static_assert(!has_awesome_member<bar>::value,"");
static_assert(has_awesome_member<foo_void>::value,"");
static_assert(!has_awesome_member<wrong_params>::value,"");
template<class T>
std::string optionalToString(T* x)
{
return fit::conditional(
[](auto* obj) -> decltype(obj->toString()) { return obj->toString(); },
[](auto*) { return "toString not defined"; }
)(x);
}
FIT_STATIC_LAMBDA_FUNCTION(optionalToString) = fit::conditional(
[](auto* obj) -> decltype(obj->toString(), std::string()) { return obj->toString(); },
[](auto*) -> std::string { return "toString not defined"; }
);
struct withToString
{
template<class T>
auto operator()(T* obj) const -> decltype(obj->toString(), std::string())
{
return obj->toString();
}
};
struct withoutToString
{
template<class T>
std::string operator()(T*) const
{
return "toString not defined";
}
};
FIT_STATIC_FUNCTION(optionalToString) = fit::conditional(
withToString(),
withoutToString()
);
#include <type_traits>
template <template <typename> class TypeChecker, typename Type>
struct is_supported
{
// these structs are used to recognize which version
// of the two functions was chosen during overload resolution
struct supported {};
struct not_supported {};
// this overload of chk will be ignored by SFINAE principle
// if TypeChecker<Type_> is invalid type
template <typename Type_>
static supported chk(typename std::decay<TypeChecker<Type_>>::type *);
// ellipsis has the lowest conversion rank, so this overload will be
// chosen during overload resolution only if the template overload above is ignored
template <typename Type_>
static not_supported chk(...);
// if the template overload of chk is chosen during
// overload resolution then the feature is supported
// if the ellipses overload is chosen the the feature is not supported
static constexpr bool value = std::is_same<decltype(chk<Type>(nullptr)),supported>::value;
};
// if T doesn't have foo method with the signature that allows to compile the bellow
// expression then instantiating this template is Substitution Failure (SF)
// which Is Not An Error (INAE) if this happens during overload resolution
template <typename T>
using has_foo = decltype(double(std::declval<T>().foo(std::declval<const char*>())));
// types that support has_foo
struct struct1 { double foo(const char*); }; // exact signature match
struct struct2 { int foo(const std::string &str); }; // compatible signature
struct struct3 { float foo(...); }; // compatible ellipsis signature
struct struct4 { template <typename T>
int foo(T t); }; // compatible template signature
// types that do not support has_foo
struct struct5 { void foo(const char*); }; // returns void
struct struct6 { std::string foo(const char*); }; // std::string can't be converted to double
struct struct7 { double foo( int *); }; // const char* can't be converted to int*
struct struct8 { double bar(const char*); }; // there is no foo method
int main()
{
std::cout << std::boolalpha;
std::cout << is_supported<has_foo, int >::value << std::endl; // false
std::cout << is_supported<has_foo, double >::value << std::endl; // false
std::cout << is_supported<has_foo, struct1>::value << std::endl; // true
std::cout << is_supported<has_foo, struct2>::value << std::endl; // true
std::cout << is_supported<has_foo, struct3>::value << std::endl; // true
std::cout << is_supported<has_foo, struct4>::value << std::endl; // true
std::cout << is_supported<has_foo, struct5>::value << std::endl; // false
std::cout << is_supported<has_foo, struct6>::value << std::endl; // false
std::cout << is_supported<has_foo, struct7>::value << std::endl; // false
std::cout << is_supported<has_foo, struct8>::value << std::endl; // false
return 0;
}
template<typename T>
using toStringFn = decltype(std::declval<const T>().toString());
template <class T, toStringFn<T>* = nullptr>
std::string optionalToString(const T* obj, int)
{
return obj->toString();
}
template <class T>
std::string optionalToString(const T* obj, long)
{
return "toString not defined";
}
int main()
{
A* a;
B* b;
std::cout << optionalToString(a, 0) << std::endl; // This is A
std::cout << optionalToString(b, 0) << std::endl; // toString not defined
}
template <typename T>
constexpr bool toStringExists(long)
{
return false;
}
template <typename T, toStringFn<T>* = nullptr>
constexpr bool toStringExists(int)
{
return true;
}
int main()
{
A* a;
B* b;
std::cout << toStringExists<A>(0) << std::endl; // true
std::cout << toStringExists<B>(0) << std::endl; // false
}
#include <type_traits>
struct A{};
struct B{ int foo(int a, int b);};
struct C{void foo(int a, int b);};
struct D{int foo();};
struct E: public B{};
// available in C++17 onwards as part of <type_traits>
template<typename...>
using void_t = void;
template<typename T, typename = void> struct Has_foo: std::false_type{};
template<typename T>
struct Has_foo<T, void_t<
std::enable_if_t<
std::is_same<
int,
decltype(std::declval<T>().foo((int)0, (int)0))
>::value
>
>>: std::true_type{};
static_assert(not Has_foo<A>::value, "A does not have a foo");
static_assert(Has_foo<B>::value, "B has a foo");
static_assert(not Has_foo<C>::value, "C has a foo with the wrong return. ");
static_assert(not Has_foo<D>::value, "D has a foo with the wrong arguments. ");
static_assert(Has_foo<E>::value, "E has a foo since it inherits from B");
#include <iostream>
#include <string>
struct Generic {};
struct HasMember
{
HasMember() : _a(1) {};
int _a;
};
// SFINAE test
template <typename T>
class S : public T
{
public:
std::string foo (std::string b)
{
return foo2<T>(b,0);
}
protected:
template <typename T> std::string foo2 (std::string b, decltype (T::_a))
{
return b + std::to_string(T::_a);
}
template <typename T> std::string foo2 (std::string b, ...)
{
return b + "No";
}
};
int main(int argc, char *argv[])
{
S<HasMember> d1;
S<Generic> d2;
std::cout << d1.foo("HasMember: ") << std::endl;
std::cout << d2.foo("Generic: ") << std::endl;
return 0;
}
template<typename Callable, typename... Args, typename = decltype(declval<Callable>()(declval<Args>()...))>
std::true_type isCallableImpl(Callable, Args...) { return {}; }
std::false_type isCallableImpl(...) { return {}; }
template<typename... Args, typename Callable>
constexpr bool isCallable(Callable callable) {
return decltype(isCallableImpl(callable, declval<Args>()...)){};
}
constexpr auto TO_STRING_TEST = [](auto in) -> decltype(in.toString()) { return {}; };
constexpr bool TO_STRING_WORKS = isCallable<T>(TO_STRING_TEST);
#include <iostream>
#include <vector>
class EmptyClass{};
template <typename T>
class has_begin
{
private:
has_begin() = delete;
struct one { char x[1]; };
struct two { char x[2]; };
template <typename C> static one test( decltype(void(std::declval<C &>().begin())) * ) ;
template <typename C> static two test(...);
public:
static constexpr bool value = sizeof(test<T>(0)) == sizeof(one);
};
int main(int argc, char *argv[])
{
std::cout << std::boolalpha;
std::cout << "vector<int>::begin() exists: " << has_begin<std::vector<int>>::value << std::endl;
std::cout << "EmptyClass::begin() exists: " << has_begin<EmptyClass>::value << std::endl;
return 0;
}
#include <iostream>
#include <vector>
class EmptyClass{};
template <typename T, typename = void>
struct has_begin : std::false_type {};
template <typename T>
struct has_begin<T, decltype(void(std::declval<T &>().begin()))> : std::true_type {};
int main(int argc, char *argv[])
{
std::cout << std::boolalpha;
std::cout << "vector<int>::begin() exists: " << has_begin<std::vector<int>>::value << std::endl;
std::cout << "EmptyClass exists: " << has_begin<EmptyClass>::value << std::endl;
}
has_begin<T, decltype(void(std::declval<T &>().begin()))>
template <typename... Args>
struct Pack {};
#define Proxy(T) ((T &)(*(int *)(nullptr)))
template <typename Class, typename ArgPack, typename = nullptr_t>
struct HasFoo
{
enum { value = false };
};
template <typename Class, typename... Args>
struct HasFoo<
Class,
Pack<Args...>,
decltype((void)(Proxy(Class).foo(Proxy(Args)...)), nullptr)>
{
enum { value = true };
};
struct Object
{
int foo(int n) { return n; }
#if SOME_CONDITION
int foo(int n, char c) { return n + c; }
#endif
};
template <bool has_foo_int_char>
struct Dispatcher;
template <>
struct Dispatcher<false>
{
template <typename Object>
static int exec(Object &object, int n, char c)
{
return object.foo(n) + c;
}
};
template <>
struct Dispatcher<true>
{
template <typename Object>
static int exec(Object &object, int n, char c)
{
return object.foo(n, c);
}
};
int runExample()
{
using Args = Pack<int, char>;
enum { has_overload = HasFoo<Object, Args>::value };
Object object;
return Dispatcher<has_overload>::exec(object, 100, 'a');
}
#include <iostream>
#include <list>
#include <type_traits>
#define LAMBDA_FOR_MEMBER_NAME(NAME) [](auto object_instance) -> decltype(&(decltype(object_instance)::NAME)) {}
template<typename T>
struct TypeGetter
{
constexpr TypeGetter() = default;
constexpr TypeGetter(T) {}
using type = T;
constexpr auto getValue()
{
return std::declval<type>();
}
};
template<typename T, typename LambdaExpressionT>
struct has_member {
using lambda_prototype = LambdaExpressionT;
//SFINAE
template<class ValueT, class = void>
struct is_void_t_deducable : std::false_type {};
template<class ValueT>
struct is_void_t_deducable<ValueT,
std::void_t<decltype(std::declval<lambda_prototype>()(std::declval<ValueT>()))>> : std::true_type {};
static constexpr bool value = is_void_t_deducable<T>::value;
};
struct SimpleClass
{
int field;
void method() {}
};
int main(void)
{
const auto helpful_lambda = LAMBDA_FOR_MEMBER_NAME(field);
using member_field = decltype(helpful_lambda);
std::cout << has_member<SimpleClass, member_field>::value;
const auto lambda = LAMBDA_FOR_MEMBER_NAME(method);
using member_method = decltype(lambda);
std::cout << has_member<SimpleClass, member_method>::value;
}