I learned SFINAE can be used to determine whether a member function exists in a class or not. For example, the following code can be used to check if the method hello is present in a class.
struct has_method_hello {
using yes = char[1];
using no = char[2];
template <typename U, typename C>
static constexpr yes& test(decltype(&U::hello));
template <typename>
static constexpr no& test(...);
static constexpr bool value = (sizeof(yes) == sizeof(test<T>(nullptr)));
};
struct Foo {
void hello() {}
}
std::cout << has_method_hello <Foo> :: value << std::endl; // 1
However, suppose the hello is templated, how can I modify the trick so it can still function properly?
struct Foo {
template <typename T>
void hello(T&) {...}
}
First of all, showing you a shortened version of your original code:
template <typename T>
struct has_method_hello {
static constexpr auto test(int) -> decltype(std::declval<T&>().hello(), std::true_type());
static constexpr std::false_type test(...);
using result_type = decltype(test(0));
static const bool value = result_type::value;
};
struct Foo {
void hello() {}
};
Now making it work for a template parameter, easy, an example:
template <typename T>
struct has_method_hello {
static constexpr auto test(int) -> decltype(std::declval<T&>().hello(std::declval<int&>()), std::true_type());
static constexpr std::false_type test(...);
using result_type = decltype(test(0));
static const bool value = result_type::value;
};
struct Foo {
template <typename T>
void hello(T& v) {}
};
Note that, I have hardcoded int type here. You can make that part of has_method_hello template too.
namespace details {
template<template<class...>class Z, class, class...>
struct can_apply:std::false_type{};
template<template<class...>class Z, class...Ts>
struct can_apply<Z, std::void_t<Z<Ts...>>, Ts...>:
std::true_type{};
}
template<template<class...>class Z, class...Ts>
using can_apply=details::can_apply<Z, void, Ts...>;
now you want to know if foo.hello(int&) can be called:
We have hello_r that gives you the return type of invoking .hello:
template<class F, class...Ts>
using hello_r = decltype(std::declval<F>().hello( std::declval<Ts>()... ));
which leads to can_hello:
template<class F, class...Ts>
using can_hello = can_apply<hello_r, F, Ts...>;
now
struct Foo {
template <typename T>
void hello(T&) {...}
};
int main() {
std::cout << can_hello<Foo&, int&>::value << '\n';
std::cout << can_hello<Foo&, char&>::value << '\n';
std::cout << can_hello<Foo&>::value << '\n';
}
prints 110.
This can be done:
// Example program
#include <iostream>
#include <string>
namespace mpl {
template<typename ...>
struct void_type
{
using type = void;
};
template<typename ...T>
using void_t = typename void_type<T...>::type;
} // namespace mpl
#define CAN_CALL_METHOD(NAME) \
namespace internal { \
template<typename T, typename ...Args> \
using result_of_call_method_##NAME = decltype( \
std::declval<T>().NAME(std::declval<Args>()...)); \
} \
template<typename T, typename Signature, typename = void> \
struct can_call_method_##NAME: std::false_type \
{}; \
template<typename T, typename ...Args> \
struct can_call_method_##NAME<T, void(Args...), \
mpl::void_t<internal::result_of_call_method_##NAME<T, Args...>> \
>: std::true_type \
{}; \
template<typename T, typename R, typename ...Args> \
struct can_call_method_##NAME<T, R(Args...), \
typename std::enable_if<!std::is_void<R>::value && \
std::is_convertible<internal::result_of_call_method_##NAME<T, Args...>, R \
>::value \
>::type \
>: std::true_type \
{};
CAN_CALL_METHOD(hello);
struct Foo {
template <typename T>
void hello(T&) {}
};
struct Foo1 {
};
int main()
{
std::cout << std::boolalpha;
std::cout << can_call_method_hello<Foo, void(int&)>::value << std::endl;
std::cout << can_call_method_hello<Foo1, void(int&)>::value << std::endl;
}
This should work i hope for any method: templated, overloaded etc.
来源:https://stackoverflow.com/questions/37552637/use-sfinae-to-detect-the-existence-of-a-templated-member-function