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I have a class that derives from a templated class:

template <typename A,typename B>
class TemplatedClass {

};

class Hello : public TemplatedClass<int,float>
{

};

Now, I want to make a templated class that will infer the types int,float from Hello.
I thought I could do something like this, but it doesn't work:

template <template <typename A,typename B> class C>
class Check
{
    void Foo(A,B,C)
    {
        // A is int .. B is float .. C is Hello
    }
};



int _tmain(int argc, _TCHAR* argv[])
{
    Check<Hello> a;
}

How can i do this ?

Edit:

I want to pass the class Hello and have the template infer the types used by its subclass TemplatedClass .

So, when I create a class Check<Hello> it will get the types int and float

I can't really change the TemplatedClass to include typedefs (it's from an an external .lib)

Edit:

I've changed the template to use Class , I get this error though:
error C3200: 'Hello' : invalid template argument for template parameter 'C', expected a class template

share|improve this question
    
Edited my answer, I overlooked/misunderstood some stuff. Though, the error pretty much hints at what is wrong with your thinking: Hello is not a template. See my answer for more. –  Xeo Jun 12 '11 at 17:51
    
I know it's not a template :) That's why I'm asking here, just can't get to the base class properly –  Yochai Timmer Jun 12 '11 at 18:01

5 Answers 5

up vote 3 down vote accepted

First, change that typename to class, §14.1 [temp.param] p1:

type-parameter:

  • class identifieropt
  • class identifieropt = type-id
  • typename identifieropt
  • typename identifieropt = type-id
  • template <template-parameter-list > class identifieropt
  • template <template-parameter-list > class identifieropt = id-expression

Next, make a partial specialization:

template<class T>
class Check;

template< // not 'typename'   vvvvv
  template<typename,typename> class C,
  typename A, typename B
>
struct Check<C<A,B> >{
  // ...
};

Though, you still can't pass just Hello to the template, because even though Hello derives from TemplatedClass, type conversion is not allowed for template parameters:

Check<Hello> c; // nope, 'Hello' is not a template

You could add the following typedef to the Hello class:

class Hello
  : TemplatedClass<int,float>
{
public:
  typedef TemplatedClass<int,float> base_type;
};

And do:

Check c; // OK But then the C parameter in Check will be template TemplatedClass, not Hello. Sadly, there's no way to achieve that directly. One solution is to pass the derived type either as an extra template parameter or just pass the derived type as the only parameter and do the type extraction internally:

template<class T>
class CheckInternal;

template<
  template<typename,typename> class C,
  typename A, typename B
>
class CheckInternal<C<A,B> >{
  public:
     typedef A type_A;
     typedef B type_B;
};

template<class T>
class Check{
  typedef typename T::base_type T_base_type;
  typedef typename CheckInternal<T_base_type>::type_A type_A;
  typedef typename CheckInternal<T_base_type>::type_B type_B;

  void foo(type_A a, type_B b){
    // ...
  }
};

// usage:
C<Hello> c; // OK!
share|improve this answer
    
typename and class are identical in C++ when used in templates. There's no point changing one to the other. –  Puppy Jun 12 '11 at 17:59
4  
@DeadMG: No, for a template template parameter, it is important. –  Xeo Jun 12 '11 at 18:00
    
You've got 3 template parameters... passing only 1 (T_Base_type) –  Yochai Timmer Jun 12 '11 at 18:07
    
@Yochai: Woops, forgot the partial specialization for the second part, thanks. –  Xeo Jun 12 '11 at 18:08
2  
@DeadMG: §14.1 [temp.param] p1: "type-parameter: ... template < template-parameter-list > class identifier(op)". –  Xeo Jun 12 '11 at 18:12

You could do something like this:

template <template <typename A,typename B> typename C>
class Check
{
     template<typename A, typename B>
     void Foo(A a, B b) {
        // C<A,B> would reconstruct the template type
     }
}

// use: 
Check<Hello> a;
a.Foo(true,1.f);

or alternatively, this (it's not exactly clear what your intent is):

template <typename A,typename B>
class TemplatedClass {
   typedef A TypeA;
   typedef B TypeB;
};


template <typename C>
class Check
{

     void Foo(typename C::TypeA& a, typename C::TypeB&) {}
}

// use: 
Check<Hello<int,float> > a;
a.Foo(1,1.f);
share|improve this answer
    
I've edited the question so hopefully it's a bit clearer. I can't really change the TemplatedClass to include typedefs (it's from an an external .lib) –  Yochai Timmer Jun 12 '11 at 17:16
    
I've managed to get your first suggestion kinda working, it needs to be class C instead of typename. but it still doesn't work, I've added the error to the question –  Yochai Timmer Jun 12 '11 at 17:52

Try something like:

template <typename A,typename B>
class TemplatedClass {
public:    
    typedef A firstType;
    typedef B secondType;
};

class Hello : public TemplatedClass<int,float>
{
public:    
    typedef firstType Type1;
    typedef secondType Type2;
};

template <typename C>
class Check
{
    typedef typename C::Type1 A;
    typedef typename C::Type2 B;

    void Foo(A,B,C)
    {
        // A is int .. B is float .. C is Hello
    }
};
share|improve this answer
    
I can't really change the TemplatedClass to include typedefs (it's from an an external .lib), But good idea. –  Yochai Timmer Jun 12 '11 at 17:19

I think you can do it by creating a templated class for Hello and then typedefing a specialization of it. Something like:

template <typename A, typename B>
class HelloBase : public TemplatedClass<A, B>
{
public:    
    typedef A Type1;
    typedef B Type2;
};

typedef HelloBase<int, float> Hello;

template <typename C>
class Check
{
    typedef typename C::Type1 A;
    typedef typename C::Type2 B;

    void Foo(A,B,C)
    {
        // A is int .. B is float .. C is Hello
    }
};

...

Check<Hello> a;

So TemplatedClass doesn't need to change, and you can put everything you were going to put in Hello into HelloBase (using the templating as a tool for simply carrying around types).

share|improve this answer

What you want is impossible in the general case- what if Hello derived from TemplatedClass twice?

It is, however, fairly simple to do, even non-intrusively, under C++0x.

template<typename A, typename B> struct retval {
    typedef A first;
    typedef B second;
};
template<typename one, typename two> one first(const TemplatedClass<one, two>& ref);
template<typename one, typename two> two second(const TemplatedClass<one, two>& ref);
template<typename T> class Check {
    typedef decltype(first(*static_cast<T*>(nullptr))) first;
    typedef decltype(second(*static_cast<T*>(nullptr))) second;
};

In C++03 then you can still get the parameters inside the method, but can't access them outside, unless you insert special typedefs.

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