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I have a case in my code where I need to make a dependent template class a friend, but I think I've exhausted the possibilities and none of them work. Is this possible to do at all? If so, how?

Simplest example:

struct Traits {
    template <typename T>
    struct Foo {
        typedef typename T::bar* type;
    };
};

template <typename T>
class Bar
{
    typedef int bar;
    // need to make T::Foo<Bar> a friend somehow?
    typedef typename T::template Foo<Bar>::type type; // won't compile because bar is private... 
                                                      // suppose I cannot make bar public.


    type val;
};

int main() {
    Bar<Traits> b;
}
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1  
It makes little sense. If you are offering friendship to any class that is willing to do as little as use itself as your template parameter, just make everything public. Anyone who wants to grab your privates can become your friend anyway. Why bother? But you can say (in C++11) friend typename T::template Foo<Bar>; if you want. –  n.m. Jan 24 at 18:19
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4 Answers

up vote 1 down vote accepted
struct Traits {
    template <typename T>
    struct Foo {
        typedef typename T::bar* type;
    };
};

template <typename T>
class Bar
{
    typedef int bar;
    friend typename T::template Foo<Bar>;
    typedef typename T::template Foo<Bar>::type type;
    type val;
};

int main() {
    Bar<Traits> b;
}
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Works on gcc 4.7.3, not on 4.6.4 ("a class-key must be used when declaring a friend"). I'm guessing this is just a bug in the older gcc? –  Barry Jan 24 at 18:23
    
@Barry, more like not-yet-implemented rather than a bug, but yes, I tested it on 4.8.1 and works fine. –  yuri kilochek Jan 24 at 18:25
    
friend typename is a C++11 feature, not available in C++03. –  n.m. Jan 25 at 23:08
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Try something like

using my_friend=typename T::template Foo<Bar>;
friend my_friend;

inside your class (example)

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Or directly friend typename T::template Foo<Bar>; works too –  texasbruce Jan 24 at 18:20
    
@texasbruce yes, but sometimes I prefer typedefs to make things better readable (at least for me). Templates an can become very complicated and in combination with friends (or template friends) it is something which I don't see offen, so I would prefer something more elaborated. –  Jan Herrmann Jan 24 at 18:24
    
I'm a fan of one liners lol –  texasbruce Jan 24 at 19:51
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I was able to get it to compile with this inserted at the point of your comment:

friend struct Traits::Foo<Bar>;
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1  
He wants the Traits as a template parameter –  texasbruce Jan 24 at 18:19
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Honestly, wouldn't you be better off with something like this?

template <typename T>
class Bar;

struct Traits
{
public:
  template <typename T>
  struct Foo
  {
    typedef Bar<T> bar_type;
    typedef typename bar_type::bar* type;
  };
};

template <typename T>
class Bar
{
  typedef int bar;
  typedef Bar self_type;
  typedef struct Traits::template Foo<T> traits_type;

  friend traits_type;

  typedef typename traits_type::type type;

  type val;
};


int main(int argc,char** argv)
{
  Bar<Traits> b;
}

It is alot safer than allowing anything that contains a public typedef type to be your friend, though it is all...weird.

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