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Is there a way to use a typedef as an argument of a template function ? Or a way to define a type as an argument ?

let's say I want to pass a function pointer to this function :

template<typename C, typename ...Args>
void test(typedef void (C::*functor)(Args... args) functor f)
{
   f(args...);
}
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Nitpick: I know it's confusing, but a pointer to a member function is neither a function pointer nor a pointer. (Interesting related read: blogs.msdn.com/themes/blogs/generic/…) –  R. Martinho Fernandes Nov 14 '11 at 19:06

2 Answers 2

up vote 3 down vote accepted

No you can't make a typedef in a parameter. If your goal is to avoid repeating the type of the parameter in the function body, you can use decltype:

template<typename C, typename ...Args>
void test(void (C::*f)(Args...))
{
   typedef decltype(f) functor;
}
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ok, I see, thanks –  codablank1 Nov 14 '11 at 19:08

No.

But why would you even want that when you can write this:

template<typename C, typename ...Args>
void test(void (C::*f)(Args...), Args... args)
{
   C c;   //f is a member function, so need an instance of class
   (c.*f)(args...);  //call the function using the instance.
}

Or, you can pass the instance along with arguments, or do something else. I assume it is just a proof-of-concept, and in the real code would be something else.

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