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How do I extract the template type from a class:

for example, I have a class like:

template <typename T, typename T2 = def>
class A
{
    typedef T type;
    typedef T2 type2;
    //other stuff
}

And I want to use type2 in other templates:

template <typename G>
foo(A<G> a)
{
    //This doesn't work:
    std::vector<a::type2> vec;

    //Neither does this:
    std::vector<a->type2> vec;

    //or this:
    std::vector<typename a::type2> vec;

}

So how do I figure out what type2 is for the instance a (can a have a value for type2 that isn't the default)?

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2 Answers 2

up vote 4 down vote accepted

This should work:

std::vector<typename A<G>::type2> vec;

Reason: std::vector expects a complete type as its argument, and just A is a template, but A<G> becomes a complete type. From your example, I have mentioned A<G>, but it can be A<int>, A<char> anything.

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sorry, I've clarified my question. I want the type of a specific instance... is that possible? –  Andrew Spott Sep 6 '12 at 2:33
    
@AndrewSpott, no that's not possible. But why do you want like that ? a is an object of A<G>, not a type. Ultimately, type2 belongs to A<...>, so it type2 has to be extracted from where it belongs. –  iammilind Sep 6 '12 at 2:36
1  
@AndrewSpott: The nested type is a property of the type, not the instance. There is no type of an specific instance, but rather a type for the class that the instance belongs to. –  David Rodríguez - dribeas Sep 6 '12 at 2:50
    
@DavidRodríguez-dribeas: I thought that the "class the instance belongs to" is a type? –  Andrew Spott Sep 6 '12 at 3:47

If your compiler supports it, you can use the decltype feature to name the type of an object.

template <typename G>
void foo(A<G> a)
{
    std::vector<typename decltype(a)::type2> vec;
}

In this example, decltype(a) is the type A<G>.

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