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I would like to use a templated typedef in various places, among other things in the declaration of an itself templated function. Here's my current attempt

template<typename T>
struct type{ typedef std::vector<T> sometype; }

template<typename TT>
void someFunction( type<TT>::sometype& myArg );

(Note that the std::vector<T> is merely an example). This does not work and gives a compiler error "template declaration of 'void someFunction'". I've already figured out that I need to put a typename in front of type<TT>, i.e.

template<typename TT>
void someFunction( typename type<TT>::sometype& myArg );

works. But this solution is - to say the least - a bit bulky. Are there alternatives?

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2  
This solution is perfectly fine and workable :-) –  Kerrek SB Mar 22 '12 at 14:31
2  
I'm more worried about how to use the function. The compiler will not be able to deduce TT from someFunction(vec). –  Bo Persson Mar 22 '12 at 14:45
2  
@thb - sometype is a type definition inside type that resolves to std::vector<T> where T is the template parameter of type. Thus type<TT>::sometype resolves to std::vector<TT>, which is perfectly fine. –  Attila Mar 22 '12 at 14:46
2  
@BoPersson - if the compiler cannot deduce the correct type, you can always specify it: someFunction<int>(vec); -- int taking the place of TT –  Attila Mar 22 '12 at 14:49
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Those are only supported in GCC 4.7 (soon to be released). It looks like template <typename T> using type = std::vector<T>; and then you can just use type<T>. It also doesn't prevent type deduction from working, like @BoPersson mentioned. –  R. Martinho Fernandes Mar 22 '12 at 14:52

1 Answer 1

up vote 6 down vote accepted

Not only is it bulky but it also prevents template parameter deduction:

std::vector<int> a;
someFunction(a); // error, cannot deduce 'TT'
someFunction<int>(a);

The alternative (in C++11) is template aliases:

template<typename T>
using sometype = std::vector<T>;

template<typename T>
void someFunction(sometype<T> &myArg );

std::vector<int> a;
someFunction(a);

You could also use a macro, except that macros are never the right answer.

#define sometype(T) std::vector<T>

template<typename T>
void someFunction( sometype(T) &myArg);

Also, I believe that your definition of sometype isn't valid pre-C++11. It should not have that typename:

template<typename T>
struct type{ typedef std::vector<T> sometype; };

I think C++11 changes the rule to allow it, but some C++03 compilers failed to correctly diagnose the issue.

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AFAIK, typename is still "forbidden unless necessary" even in C++11. Could you add a note about how the version with template aliases doesn't prevent type deduction? –  R. Martinho Fernandes Mar 22 '12 at 15:20
    
I think you are right about that typename business. I carelessly copied that part from one of my real typedefs which involves a typedef based on another (templated) typedef - and there the typename is obviously necessary. –  janitor048 Mar 22 '12 at 15:22
    
@R.MartinhoFernandes I'm pretty sure it changed in C++11, but I don't have a good reference for it at the moment. –  bames53 Mar 22 '12 at 15:45

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