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In gcc I am writting friend class FriendMaker<T>::Type but Visual Studio wants friend FriendMaker<T>::Type. So I think it is time to go compiler specific.

So What I need to ifdef for Visual Studio ? I am using 2010 at the moment but I may switch to 2012 latter.

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3 Answers 3

up vote 4 down vote accepted

Use the macro _MSC_VER. To check if the compiler is VS2010, or above:

#if _MSC_VER >= 1600

The following are values for the different versions of VS:

  • VS 2003 (VC7.1): 1310
  • VS 2005 (VC8): 1400
  • VS 2008 (VC9): 1500
  • VS 2010 (VC10): 1600
  • VS 2012 (VC11): 1700
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why 1600 magic number ? –  Neel Basu Aug 1 '12 at 7:38
    
@NeelBasu, see the linked page. That is what Microsoft decided. –  hmjd Aug 1 '12 at 7:39
    
So Can I Safely make it 1600 <= _MSC_VER such that It also supports the latter versions ? –  Neel Basu Aug 1 '12 at 7:40
    
But the last edit doesn't filter VS2010 and above that previous one was doing. –  Neel Basu Aug 1 '12 at 7:44
    
@NeelBasu: A minor point, but why not _MSC_VER >= 1600? –  Keith Thompson Aug 1 '12 at 7:51

Just use the friend class ... syntax for both compilers. The friend ... syntax, without the class keyword, is actually invalid; VS2010 is incorrect in not complaining about it.

See this question.

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But VS complaints, fires error If I use friend class –  Neel Basu Aug 1 '12 at 8:03
    
Hmm. I just tried this with Visual C++ 2010 Express: class One { friend class Two; }; class Two { friend class One; }; int main() { One o1; Two o2; }, and it merely warned about the unused variables. What exactly is the error message you get? –  Keith Thompson Aug 1 '12 at 8:09

I think you need to use following code for cross compiler:

template <typename T> class B;

template <typename T>
class A
{
    friend typename B<T>::V;
};
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