How to check for the existence of a subscript operator?

南笙酒味 提交于 2021-02-06 18:47:07

问题


I want to write a type trait which uses SFINAE to check a type for the existence of a subscript expression. My initial attempt below seems to work when the subscript expression is possible but does not work when the bracket operator does not exist.

#include <iostream>
#include <vector>
#include <cassert>

template<class T, class Index>
struct has_subscript_operator_impl
{
  template<class T1,
           class Reference = decltype(
             (*std::declval<T*>())[std::declval<Index>()]
           ),
           class = typename std::enable_if<
             !std::is_void<Reference>::value
           >::type>
  static std::true_type test(int);

  template<class>
  static std::false_type test(...);

  using type = decltype(test<T>(0));
};


template<class T, class Index>
using has_subscript_operator = typename has_subscript_operator_impl<T,Index>::type;

struct doesnt_have_it {};

struct returns_void
{
  void operator[](int) {}
};

struct returns_int
{
  int operator[](int) { return 0; }
};

int main()
{
  std::cout << "has_subscript_operator<doesnt_have_it,int>: " << has_subscript_operator<doesnt_have_it,int>::value << std::endl;
  assert((!has_subscript_operator<doesnt_have_it,int>::value));

  std::cout << "has_subscript_operator<returns_void,int>: " << has_subscript_operator<returns_void,int>::value << std::endl;
  assert((!has_subscript_operator<returns_void,int>::value));

  std::cout << "has_subscript_operator<returns_int,int>: " << has_subscript_operator<returns_int,int>::value << std::endl;
  assert((has_subscript_operator<returns_int,int>::value));

  std::cout << "has_subscript_operator<int*,int>: " << has_subscript_operator<int*,int>::value << std::endl;
  assert((has_subscript_operator<int*,int>::value));

  std::cout << "has_subscript_operator<std::vector<int>,int>: " << has_subscript_operator<std::vector<int>,int>::value << std::endl;
  assert((has_subscript_operator<returns_int,int>::value));

  return 0;
}

clang-3.4's output:

$ clang -std=c++11 -I. -lstdc++ test_has_subscript_operator.cpp 
test_has_subscript_operator.cpp:10:14: error: type 'doesnt_have_it' does not provide a subscript operator
             (*std::declval<T*>())[std::declval<Index>()]
             ^~~~~~~~~~~~~~~~~~~~~ ~~~~~~~~~~~~~~~~~~~~~
test_has_subscript_operator.cpp:25:1: note: in instantiation of template class 'has_subscript_operator_impl<doesnt_have_it, int>' requested here
using has_subscript_operator = typename has_subscript_operator_impl<T,Index>::type;
^
test_has_subscript_operator.cpp:41:66: note: in instantiation of template type alias 'has_subscript_operator' requested here
  std::cout << "has_subscript_operator<doesnt_have_it,int>: " << has_subscript_operator<doesnt_have_it,int>::value << std::endl;
                                                                 ^
1 error generated.

How can I fix my has_subscript_operator such that it works correctly for all types?


回答1:


SFINAE only works when substitution failure happens in the immediate context. The template parameter Index is already known by the time the member function template test is being instantiated, so instead of substitution failure you get a hard error.

The trick to working around this is to deduce Index again by adding an additional template type parameter to test and default it to Index.

template<class T1,
       class IndexDeduced = Index,  // <--- here
       class Reference = decltype(
         (*std::declval<T*>())[std::declval<IndexDeduced>()] // and use that here
       ),
       class = typename std::enable_if<
         !std::is_void<Reference>::value
       >::type>
static std::true_type test(int);

Now your code works as intended.

Live demo




回答2:


Once you have C++11, it's a lot easier to write type traits... you don't need to use the ellipsis overload trick. You can just use your decltype expression directly with the help of the magical:

template <typename... >
using void_t = void;

We have our base case:

template<class T, class Index, typename = void>
struct has_subscript_operator : std::false_type { };

And our expression SFINAE valid case:

template<class T, class Index>
struct has_subscript_operator<T, Index, void_t<
    decltype(std::declval<T>()[std::declval<Index>()])
>> : std::true_type { };

And then you can write the same alias:

template <class T, class Index>
using has_subscript_operator_t = typename has_subscript_operator<T, Index>::type;

You can also use @Yakk's favorite method, which given this boilerplate that he copies in every answer:

namespace details {
  template<class...>struct voider{using type=void;};
  template<class...Ts>using void_t=typename voider<Ts...>::type;

  template<template<class...>class Z, class, class...Ts>
  struct can_apply:
    std::false_type
  {};
  template<template<class...>class Z, class...Ts>
  struct can_apply<Z, void_t<Z<Ts...>>, Ts...>:
    std::true_type
  {};
}
template<template<class...>class Z, class...Ts>
using can_apply=details::can_apply<Z,void,Ts...>;

You can then simply write properties:

template <class T, class Index>
using subscript_t = decltype(std::declval<T>()[std::declval<Index>()]);

template <class T, class Index>
using has_subscript = can_apply<subscript_t, T, Index>;


来源:https://stackoverflow.com/questions/31305894/how-to-check-for-the-existence-of-a-subscript-operator

易学教程内所有资源均来自网络或用户发布的内容,如有违反法律规定的内容欢迎反馈
该文章没有解决你所遇到的问题?点击提问,说说你的问题,让更多的人一起探讨吧!