5

Excuse me for the long post, but I can't get this program to work unless I specify -fpermissive to gcc and not at all under clang. Can you please help fix this example?

namespace detail
{

template<typename T>
constexpr auto address(T&& t) ->
  typename ::std::remove_reference<T>::type*
{
  return &t;
}

template <typename FP, FP fp, class C, typename ...A>
struct S
{
  static constexpr auto* l = false ? address(
    [](C* const object) noexcept
    {
      return [object](A&& ...args) {
        return (object->*fp)(::std::forward<A>(args)...); 
      };
    }) :
    nullptr
  ;
};

template <typename FP, FP fp, typename R, class C, typename ...A>
auto make_member_delegate(C* const object, R (C::* const)(A...)) ->
  decltype((*S<FP, fp, C, A...>::l)(object))
{
  return (*S<FP, fp, C, A...>::l)(object);
}

}

template <typename FP, FP fp, class C>
auto make_member_delegate(C* const object) ->
  decltype(detail::make_member_delegate<FP, fp>(object, fp))
{
  return detail::make_member_delegate<FP, fp>(object, fp);
}

struct A
{
  void hello()
  {
    ::std::cout << "it worked" << ::std::endl;
  }
};

int main()
{
  A a;

  auto d(make_member_delegate<decltype(&A::hello), &A::hello>(&a));

  d();

  return 0;
}

Errors are (first gcc, then clang++):

gcc-4.9.0:

t.cpp:20:26: error: 'constexpr detail::S<void (A::*)(), &A::hello, A>::<lambda(A*)>* const detail::S<void (A::*)(), &A::hello, A>::l', declared using local type 'detail::S<void (A::*)(), &A::hello, A>::<lambda(A*)>', is used but never defined [-fpermissive]
   static constexpr auto* l = false ? address(

clang++-3.4.2:

t.cpp:21:5: error: a lambda expression may not appear inside of a constant expression
    [](C* const object) noexcept
    ^
t.cpp:33:14: note: in instantiation of template class 'detail::S<void (A::*)(), &A::hello, A>' requested here
  decltype((*S<FP, fp, C, A...>::l)(object))
             ^
t.cpp:32:6: note: while substituting deduced template arguments into function template 'make_member_delegate' [with FP = void
      (A::*)(), fp = &A::hello, R = void, C = A, A = <>]
auto make_member_delegate(C* const object, R (C::* const)(A...)) ->
     ^
t.cpp:41:6: note: while substituting deduced template arguments into function template 'make_member_delegate' [with FP = void
      (A::*)(), fp = &A::hello, C = A]
auto make_member_delegate(C* const object) ->

Strangely, the canonical PYTHY example compiles without issue under clang-3.4.2

17
  • 1
    clang is correct, you can't have a lambda in a constant expression. Is there any reason why you think this code should compile? – Brian Bi Jul 2 '14 at 19:47
  • @Brian Look here and try to compile with clang and it will work. – user1095108 Jul 2 '14 at 19:48
  • 1
    Quick and dirty fix – dyp Jul 2 '14 at 19:53
  • 1
    @Solkar Maybe it falls into the category of uniform initialization (using a braced-init-list in a return-statement or to construct a function parameter). In C++1y, we'll probably see it less often in favour of return type deduction. – dyp Jul 2 '14 at 23:41
  • 1
    @dyp: Yes, the PYTHY code formally invokes UB. The PYTHY author tries to explain it as "ok" because he doesn't access anything inside the lambda - UB is still UB though. – Xeo Jul 3 '14 at 7:01
-1

Here's a fix for gcc-4.9.0, but the program still won't compile with clang-3.4.2:

template <typename FP, FP fp, typename R, class C, typename ...A>
auto make_delegate(C* const object, R (C::* const)(A...)) ->
  decltype((*decltype(S<FP, fp, C, A...>::l)(nullptr))(object))
{
  return (*decltype(S<FP, fp, C, A...>::l)(nullptr))(object);
}
0

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