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How can declare template of a template class?? see below code:

File: A.h
class A
{
    ...
    ...
};

File: B.h
template <typename U>
class B
{
    ...
    ...
};

File C.h
template <class T>
class C
{
    ...
    ...
};

File C.cpp
//In this file I am able to write template declaration for class A(non-template class)
#include "A.h"
template C<A>; //this works fine. 

How can I write the same for class B(which is a template class.)
#include "B.h"
template C<What should I write here for class B?>;
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4 Answers 4

up vote 0 down vote accepted

Well, B is also a template, so something like C<B<A>> would work.

Note that some compilers see >> as a shift operator, and requires C<B<A> >.

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Note that C++03 compilers are required to see >> as shift operator, while C++0x (probably going to be C++11) compilers are/will be required not to need the space here. –  Christopher Creutzig May 6 '11 at 13:02
    
@Christopher - The compilers I have used are not that strict, and seems to sort out the difference from context. –  Bo Persson May 6 '11 at 13:24
    
Most compilers do not really follow any standard by default, and very few do so even with their “strict” flags. Still, this is a very well-known deficiency of the C++03 standard, so I sure hope your compilers at least clearly spell out in their documentation that they violate the spec in this regard. (Not that I have a big problem with that in this particular case.) –  Christopher Creutzig May 6 '11 at 13:55

If you want to use B as type argument to C class template, then you can write this:

template class C<B<int> >; //i.e provide the some type B template class
       //^^^^ this is needed for explicit instantiation!

C<B<A> >  variable;
C<B<short> >  *pointer = new C<B<short> >();
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I've not used >>. –  Nawaz May 6 '11 at 12:50
1  
I don't think it parses in any C++ version. An explicit instantiation requires to write class before the class name, I think. Also, what purpose do you want to achieve?? –  Johannes Schaub - litb May 6 '11 at 12:50
    
@Johannes: That was a typo. –  Nawaz May 6 '11 at 12:55

The C template expects a non-template type so that it can generate a class. That's why C<A> works: A is not a template. However, C<B> doesn't work, since B is only a template for a type itself. You need to have some type to instantiate the B template.

For instance, this could work:

C<B<A> > x;
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Thanks...I got it now. –  deepak4bin May 6 '11 at 13:09

You can just write it like this:

C< B< A > > c;

If you find that confusing then you can use a typedef:

typedef B<A> MyB;
C<MyB> c;
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