17

std::get does not seem to be SFINAE-friendly, as shown by the following test case:

template <class T, class C>
auto foo(C &c) -> decltype(std::get<T>(c)) {
    return std::get<T>(c);
}

template <class>
void foo(...) { }

int main() {
    std::tuple<int> tuple{42};

    foo<int>(tuple);    // Works fine
    foo<double>(tuple); // Crashes and burns
}

See it live on Coliru

The goal is to divert the second call to foo towards the second overload. In practice, libstdc++ gives:

/usr/local/bin/../lib/gcc/x86_64-pc-linux-gnu/6.3.0/../../../../include/c++/6.3.0/tuple:1290:14: fatal error: no matching function for call to '__get_helper2'
    { return std::__get_helper2<_Tp>(__t); }
             ^~~~~~~~~~~~~~~~~~~~~~~

libc++ is more direct, with a straight static_assert detonation:

/usr/include/c++/v1/tuple:801:5: fatal error: static_assert failed "type not found in type list"
    static_assert ( value != -1, "type not found in type list" );
    ^               ~~~~~~~~~~~

I would really like not to implement onion layers checking whether C is an std::tuple specialization, and looking for T inside its parameters...

Is there a reason for std::get not to be SFINAE-friendly? Is there a better workaround than what is outlined above?

I've found something about std::tuple_element, but not std::get.

8
  • The "S" part of "SFINAE" stands for "substitution". Here, there were no problems substituting the template parameters into the first foo. T is double. C is that tuple type. Substitution succeeded! Jan 17 '17 at 23:01
  • 3
    @SamVarshavchik but the return type involves forming an invalid function call. Which would trigger a substitution failure, if std::get was SFINAE-friendly (i.e. let itself out of the overload set for an invalid call). Hence my question.
    – Quentin
    Jan 17 '17 at 23:03
  • @SamVarshavchik see this snippet for an example.
    – Quentin
    Jan 17 '17 at 23:07
  • 1
    When std::get's template parameter being a class, its return type is explicit, rather than being auto, as would be the case for a tuple index constant. So, decltype() is happy. template< class T, class... Types > constexpr T& get(tuple<Types...>& t); -- game over. Jan 17 '17 at 23:17
  • 7
    @SamVarshavchik What are you going on about.
    – Barry
    Jan 17 '17 at 23:39
18

std::get<T> is explicitly not SFINAE-friendly, as per [tuple.elem]:

template <class T, class... Types>
  constexpr T& get(tuple<Types...>& t) noexcept;
// and the other like overloads

Requires: The type T occurs exactly once in Types.... Otherwise, the program is ill-formed.

std::get<I> is also explicitly not SFINAE-friendly.


As far as the other questions:

Is there a reason for std::get not to be SFINAE-friendly?

Don't know. Typically, this isn't a point that needs to be SFINAE-ed on. So I guess it wasn't considered something that needed to be done. Hard errors are a lot easier to understand than scrolling through a bunch of non-viable candidate options. If you believe there to be compelling reason for std::get<T> to be SFINAE-friendly, you could submit an LWG issue about it.

Is there a better workaround than what is outlined above?

Sure. You could write your own SFINAE-friendly verison of get (please note, it uses C++17 fold expression):

template <class T, class... Types,
    std::enable_if_t<(std::is_same<T, Types>::value + ...) == 1, int> = 0>
constexpr T& my_get(tuple<Types...>& t) noexcept {
    return std::get<T>(t);
}

And then do with that as you wish.

2
  • Took a liberty of editing the answer to mention that this C++17 code.
    – SergeyA
    Sep 6 '18 at 20:18
  • @SergeyA Thanks!
    – Barry
    Sep 6 '18 at 20:30
6

Don't SFINAE on std::get; that is not permitted.

Here are two relatively sfinae friendly ways to test if you can using std::get; get<X>(t):

template<class T,std::size_t I>
using can_get=std::integral_constant<bool, I<std::tuple_size<T>::value>;

namespace helper{
  template<class T, class Tuple>
  struct can_get_type:std::false_type{};
  template<class T, class...Ts>
  struct can_get_type<T,std::tuple<Ts...>>:
    std::integral_constant<bool, (std::is_same_v<T,Ts>+...)==1>
  {};
}
template<class T,class Tuple>
using can_get=typename helpers::can_get_type<T,Tuple>::type;

Then your code reads:

template <class T, class C, std::enable_if_t<can_get_type<C,T>{},int> =0>
decltype(auto) foo(C &c) {
  return std::get<T>(c);
}
4

From N4527 (I presume it's still in the standard):

§ 20.4.2.6 (8):

Requires: The type T occurs exactly once in Types.... Otherwise, the program is ill-formed.

The program above is ill-formed, according to the standard.

End of discussion.

0

Almost no function in STL is SFINAE-friendly, this is the default.

Maybe it is purely historical. (as in "C++ has all the defaults wrong").

But perhaps a post-facto justification could be that SFINAE-friendlyness has a cost (e.g. compile time). I don't have proof, but I think it is fair to say that SF-code takes longer to compile because it has to "keep trying" when rejecting alternatives instead of bailing out on the first error. As @Barry said it has also a mental cost because SFINAE is harder to reason about than hard errors. (At least before one has the "concepts" clear.)

If the user wants SFINAE it can be built (with a lot of effort) on top of non-SFINAE friendly with help of traits.

For example, one can always write (@Barry wrote the equivalent for std::get)

template<class In, class Out, class=std::enable_if_t<std::is_assignable<std::iterator_traits<Out>::reference, std::iterator_traits<In>::reference> >
Out friendly_copy(In first, In last, Out d_last){
   return std::copy(first, last, d_first);
}

Honestly, I find myself wrapping many STL functions this way, but it is a lot of work to get it right. So, I guess that there is a place for a SFINAE-friendly version of STL. In some sense this is comming if requires are added to the signatures of the current functions. I don't know if this is the plan exactly but it might be a side effect of introducing concepts to the language. I hope so.

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.