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I'm using decltype for the return type of a member function, but the definition and declaration don't match. Here's some code:

template<typename T>
struct A {
    T x;
    auto f() -> decltype(x);
};

template<typename T>
auto A<T>::f() -> decltype(x) {
    return this->x;
}

int main() {}

This produces

test.cc:10:6: error: prototype for 'decltype (((A<T>*)0)->A<T>::x) A<T>::f()' does not match any in class 'A<T>'
test.cc:6:7: error: candidate is: decltype (((A<T>*)this)->A<T>::x) A<T>::f()

the difference being that the definition has (A<T>*)0 where the declaration has (A<T>*)this. What gives?

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What compiler are you using? –  Nicol Bolas Sep 11 '12 at 5:53
1  
What does A<T>::x instead of just x say. I don't know if it works or if it should be that way, though. –  Christian Rau Sep 11 '12 at 7:47
    
@ChristianRau That actually works, and is now the solution I've implemented until gcc fixes this. –  Bakkot Sep 11 '12 at 18:26

1 Answer 1

up vote 4 down vote accepted

This is a bug in gcc 4.7 that I reported here: bug #54359 (see bottom of the bug report). This particular case is accepted by gcc 4.6.

As a workaround, don't use a trailing return type and use the type of member x directly. In the example, this is simply T, but you can also convert more complex cases. For example, you can convert:

T x;
auto f() -> decltype(x.foo);

Into:

T x;
decltype(std::declval<T>().foo) f();

std::declval is very useful here.

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