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I get a linker error when I try to create an executable from the following code. I get the impression I need to place a few "typenames" around or make some forward declarations; I've tried a few combinations but none worked.

template<typename T>
class enabled
{
  private:
    T type_;
    friend const T& typeof(const enabled<T>& obj); // Offending line
};

template<typename T>
const T& typeof(const enabled<T>& obj) {
    return obj.type_;
}


int main()
{
    enabled<std::string> en;
    std::cout << typeof(en);

    std::cin.clear(), std::cin.get();
    return 0;
}

1>main.obj : error LNK2001: unresolved external symbol "class std::string const& __cdecl typeof(class enabled<class std::string> const&)"

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gcc appears to give a more useful diagnostic [I changed typeof to type since gcc has a typeof extension]: prog.cpp:17: warning: friend declaration ‘const T& type(const enabled<T>&)’ declares a non-template function prog.cpp:17: note: (if this is not what you intended, make sure the function template has already been declared and add <> after the function name here) Not sure how to turn that into a solution, however. –  Dennis Zickefoose Oct 29 '11 at 18:29

2 Answers 2

up vote 4 down vote accepted

By forward declaring and specifying that the function is templated

template<typename T> class enabled;

template<typename T>
const T& typeof(const enabled<T>& obj) {
    return obj.type_;
}

template<typename T>
class enabled
{
  private:
    T type_;
    friend const T& typeof<>(const enabled<T>& obj);
};
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Oh... Right. :| –  Paul Manta Oct 29 '11 at 18:37

The problem is that the function which is a friend of the class, is not a function template, while the function you actually have defined is a function template.

All that you need to do is make the friend a function template as:

template<typename T>
class enabled
{
  private:
    T type_;

    template<typename U> //<-------------------------------note this
    friend const U& typeof_(const enabled<U>& obj);  //use U 
};

Now this compiles just fine : http://www.ideone.com/VJnck

But it makes all instantiations of typeof_<U> friend of all instantiations of enabled<T>, which means typeof_<int> is a friend of enabled<T> for all possible value of T, and vice versa.

So a better solution is to make the function non-template and define it inside the class as:

template<typename T>
class enabled
{
  private:
    T type_;

    friend const T& typeof_(const enabled<T>& obj)
    {
        return obj.type_;
    }
};

Demo : http://www.ideone.com/Rd7Yk

Note that I replaced typeof with typeof_, as GCC has an extension with name typeof, and so it was giving error on ideone (as I can't turnoff extensions).

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Won't that make the whole template a friend? I want only a specific instance of the template to be a friend. –  Paul Manta Oct 29 '11 at 18:30
    
Is typeof a reserved keyword? I'd rather use type_of then, instead of typeof_. –  Paul Manta Oct 29 '11 at 18:31
    
@PaulManta: Yes. See my edit. :-) –  Nawaz Oct 29 '11 at 18:33

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