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I want to overload conversion operator for two templates.

A.h

#pragma once

#include <B.h>

template <typename T> class A
{
operator B<T>() const;
}

B.h

#pragma once

#include <A.h>

template <typename T> class B
{
operator A<T>() const;
}

I got error

error C2833: 'operator A' is not a recognized operator or type see
reference to class template instantiation 'B<T>' being compiled

Although it works if conversion operator is overloaded only in one template.

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What compiler do you use? –  hate-engine Mar 4 '13 at 18:15
1  
Maybe this can help (#pragma once basically works as an include guard) –  Andy Prowl Mar 4 '13 at 18:21

1 Answer 1

up vote 2 down vote accepted

You have a cyclic dependency problem. You need to have a forward declaration, such as:

A.h:

#pragma once

template <class T> class B;

template <class T> class A {
   operator B<T>() const;
};

#include "B.h"

template <class T>
A<T>::operator B<T>() const {
   foo();
}

B.h:

#pragma once
#include "A.h"

template <class T>
class B {
   operator A<T>() const {
      bar();
   }
};

I assume you used #include "A.h". A.h then included B.h. When the compiler started compiling B.h, it had not yet seen a declaration for A.h, and thus the compiler did not know how to interpret operator A<T>() const, as it does not know that A is a type.

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Thank you for answer. Somehow it just works with template <class T> class A; in B.h and template <class T> class B; in A.h without any includes. Compiler - Visual Studio 2010 –  Demion Mar 4 '13 at 18:25
    
Yes. It will work - the answer I gave is for the cases where the implementation of A<T>::operator B<T>() cannot compile without a visible implementation of class B<T>. This way both implementations are able to see the full definition of each class. Just keep in mind that in this pattern B<T> may have a member of type A<T>, but A<T> may not have a member of type B<T> (but may have a member of type pointer to or reference to B<T>). –  Robert Mason Mar 4 '13 at 19:34

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