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I want to have a template that can access the protected method of it's typename parameter. How can I make that work?

For example:

class Foo{
   ...
   protected:
     int Bar();
}

template <class T> FooTempl{
   ...
   int SomeMethod(T* ptr) { return ptr->Bar();};
   ...
}

The reason is that I want the method Foo::Bar() to be accessible to the template, but not to any other external caller. I hope there's some friend syntax there that can make it work...

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Beside access-level, It should be ptr->Bar(), not T->Bar() –  Nawaz Aug 9 '11 at 0:44
    
Sure, typo... thanks –  littleadv Aug 9 '11 at 0:49
    
Why can't you add friend directly to Foo body? –  tyz Aug 9 '11 at 0:58
    
@tyz What do you mean? How do I friend a template? That's the whole point of the question:-) –  littleadv Aug 9 '11 at 1:00

2 Answers 2

up vote 2 down vote accepted

Add the following line into Foo:

template<typename T> friend class FooTempl;
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I don't know what I did wrong when I tried that before, but it seems to be working.... –  littleadv Aug 9 '11 at 1:41

An alternate to declaring FooTempl as a friend of Foo would be to have the former derive from the latter. In this case, since Foo is a base class for FooTempl, so FooTempl::SomeMethod would not need to have a Foo * parameter anymore.

class Foo
{
   protected:
     int Bar() { return 42; }
};

template <class T> 
class FooTempl : public T
{
public:
   int SomeMethod() { return T::Bar();}
};

int main()
{
  FooTempl<Foo> bar;

  bar.SomeMethod();
}

Which of these methods is more appropriate depends on your use case.

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