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How can I get the return type of a member function in the following example?

template <typename Getter>
class MyClass {
   typedef decltype(mygetter.get()) gotten_t;

The problem, of course, is that I don't have a "mygetter" object while defining MyClass.

What I'm trying to do is: I'm creating a cache that can use, as it's key, whatever is returned by the getter.

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1 Answer 1

up vote 9 down vote accepted

I'm not quite sure what you want, but it seems mygetter is supposed to be simply any object of type Getter. Use std::declval to obtain such an object without anything else (you can only use it for type deduction)

typedef decltype(std::declval<Getter>().get()) gotten_t;
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oh hey, I never knew about that. That's awesome! I always used Getter().get() and assumed that Getter was default constructable. – Mooing Duck Apr 13 '12 at 17:32

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