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template<typename T> class FooBar {};

template<typename T> class Bar {
    friend class FooBar<T>;
};

template<typename T> class Bar2 {
    template friend class FooBar<T>;
};

What is the difference between class Bar and Bar2?

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Do you mean template<typename T> class Bar2 { template<typename U> friend class FooBar<U>; }; ? –  Shash316 Aug 7 '11 at 3:30
    
@Shash316, I have directly copied the code from vs2008 before it passes the compiler. –  q0987 Aug 7 '11 at 3:37
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2 Answers

The second one you have is invalid syntax, according to my compiler. If you change them to:

template<typename T> class FooBar {};

template<typename T> class Bar {
    friend class FooBar<T>;
};

template<typename T> class Bar2 {
    template<typename T2> friend class FooBar;
};

Then it will compile. The difference is that in Bar<T>, only FooBar<T> is a friend; if you have Bar<int>, only FooBar<int> is a friend, not FooBar<char> or any other type but int. In Bar2<T>, any type of FooBar is a friend.

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@q0987: Just because Visual Studio (or any compiler) accepts it doesn't make it valid syntax. –  Nicol Bolas Aug 7 '11 at 3:38
    
@q0987 I just checked on Visual Studio 2010 whether my assumption is correct, and apparently it is. Someone tell me if it's just VS that does that. In regards to that compiling in VS 2008, some compilers accept code that is not valid C++. I know it's weird, but it's true. –  Seth Carnegie Aug 7 '11 at 3:42
    
@Nicol, I fully agree with you at this point. But I still need a solid answer for my question. –  q0987 Aug 7 '11 at 3:43
    
@q0987 is my answer not solid? –  Seth Carnegie Aug 7 '11 at 3:43
1  
@q0987 see this IdeOne submission: ideone.com/Q4CP7 it does error. That is g++, not VS, but again, VS may accept some invalid C++. –  Seth Carnegie Aug 7 '11 at 3:45
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If the Bar2 class definition is modified like below

template<typename T> class Bar2 {
    template<typename U> friend class FooBar<U>;
};

then, anytype of FooBar is friends with anytype of Bar2.

However Bar class definition tells that FooBar with type T is friends with Bar of same type. i.e. Bar < char > & FooBar< char > and not Bar< int > & FooBar< char >

Shash

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