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I'm trying to deduce the underlying template type T from a type E = T<T2,T3>. This would for example make it possible to make a template function pair_maker(const E & a) which can be used with one of several similar types of containers. Rough meta code:

template <typename T>
auto pairmaker(const E & a) -> PairContents<E,std::string>::type {
    ContainerPairMaker<E,std::string>::type output;
    ... some code ...
    return output;
}

PairContents<E,std::string>

would transform the type vector<int> into vector<pair(int,std::string)> or whatever<T1> into whatever<pair(T1,std::string)>.

Another similar example of type dissection is for std::array (or similar containers) where I like to figure out the container type to make a new similar array. For example for these kind of functions (this is actual working code now)

template <typename T > 
auto make_some3(const T & a) 
           -> std::array<typename T::value_type,10*std::tuple_size<T>::value>{   
   return std::array<typename T::value_type,10*std::tuple_size<T>::value>{} ;
}

This works fine but what I'm after is to make the explicit use of 'std::array' automatic.

For std::array there's the tuple_size trait which helps, and a similar thing can be used to find the type for any second argument, but again I can't think of anything for finding the container type.

To summarize: what kind of machinery (if any) can be used for cases like these. To which extent is it possible to deal with mixes of template arguments, template-template arguments, any number of arguments, and non-template arguments of unknown types.

share|improve this question
3  
Problem is, if you only rebind the first parameter, standard containers will have a mismatching allocator, aka PairContent<vector<int, allocator<int>>,float>::type will be vector<pair<int,float>, allocator<int>>. – Xeo Jul 30 '12 at 14:57
    
As a point of terminology, in T<T2, T3> T is not a type. What you're looking for is the underlying class template T of which T<T2, T3> is a specialization (and a type). Hence you can't have extract<std::vector<int>>::type be std::vector. – Luc Danton Jul 30 '12 at 15:00
    
Xeo, Ohh... That's a huge issue. Why don't you bring that into your now deleted answer? – Johan Lundberg Jul 30 '12 at 15:04
up vote 12 down vote accepted

Here's an idea:

 template <typename T, typename ...>
 struct tmpl_rebind
 {
     typedef T type;
 };

 template <template <typename ...> class Tmpl, typename ...T, typename ...Args>
 struct tmpl_rebind<Tmpl<T...>, Args...>
 {
     typedef Tmpl<Args...> type;
 };

Usage:

typedef std::vector<int> IV;
typedef typename tmpl_rebind<IV, std::pair<double, std::string>>::type PV;

Now PV = std::vector<std::pair<double, std::string>>.

share|improve this answer
    
I had no idea specified templates could be passed as template template arguments. – Johan Lundberg Jul 30 '12 at 14:57
    
@LucDanton: Thanks :-) – Kerrek SB Jul 30 '12 at 14:57
    
@JohanLundberg They can't -- if you think of matching a template specialization as pattern matching, then here the template specialization is deconstructed into its primary template and template parameters parts. Look at the primary template declaration of tmpl_rebind: the first argument (typename T) is in fact a template type argument, not a template template argument. – Luc Danton Jul 30 '12 at 15:03
    
@Danton. Ah, Good. – Johan Lundberg Jul 30 '12 at 15:09
    
@JohanLundberg: That isn't my answer, I only edited a certain part of it. ;) – Xeo Jul 30 '12 at 15:33

This is a self answer I came up with as a variant of the answer from Kerrek SB

It is possible to make a trait that extracts std::vector from std::vector<int> and exposes it as ::type via a trait. Yes, this solution is nearly identical to Kerrek's, but to me the use syntax is more aesthetic, putting the template parameters after ::type.

template <typename T, typename ...>
struct retemplate
{
    typedef T type;
};

template <template <typename ...> class Tmpl, typename ...T>
struct retemplate<Tmpl<T...>>
{
   template <typename ...AR>
   using type=Tmpl<AR...> ;
};

with this you actually get retemplate<T<A,B,C>>::type equal to the template T

example use:

typedef std::vector<int> intvec; 
typedef retemplate<intvec>::type<double> doublevec; 

or to expose the container type

typedef std::vector<int> intv;
template <typename ...T>
using vector_T= retemplate<intv>::type<T...> ;

Note that when using this in template context, an extra template is required just after ::, like this: (elaborating on the comment from Xeo)

template <typename T>
typename retemplate<T>::template type<double> containedDouble(T& a) {
   decltype(containedDouble(a)) out;
   for (auto &i : a)
      out.push_back(i);
   return out;
}

What that does is to take an object of type T1<T2> and copy its content into a T1<double>. For example with T1==std::vector and T2==int.

share|improve this answer
    
The calling snytax gets slightly ugly inside template code, though: typename retemplate<intv>::template type<T...>. – Xeo Jul 30 '12 at 22:03
    
This is nice. I haven't quite got used to the new usings yet :-) – Kerrek SB Jul 30 '12 at 22:23
    
@Xeo: Why do you have to say template? There's no dependent name there, is there -- intv is an actual type. – Kerrek SB Jul 30 '12 at 22:25
    
@Kerrek: Inside a template, you'd need to (and obviously replace intv with a template parameter, my fail). – Xeo Jul 30 '12 at 22:30
1  
@Xeo: Yes, indeed, if you're inside a dependent context, of course. Cheers. Anyway, who doesn't love saying ::template a lot to impress the boss? – Kerrek SB Jul 31 '12 at 4:54

I recommend taking a look at A. Alexandrescu's book Modern C++ Design.

If I recall correctly he explains how one might use type lists to store and access arbitrary types in a list-like fashion. These lists can be used to provide type information in a number of different situations. Take a look at the implementation of Loki to see how type lists can be utilized.

I'm not sure if this is helpful at all, but maybe you can learn something from the ideas used in Loki in order to solve or at least better understand your specific issues at hand.

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1  
Thank you and welcome to stackoverflow. – Johan Lundberg Jul 30 '12 at 16:29

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