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I wonder why on MacOSX the macro __unix__ is not defined.

Isn't MacOSX a BSD UNIX derivative?

If I define the __unix__ macro in my code, could I have some issues?

In general, when checking the current platform, I prefer to do something like:

#ifdef __unix__
...
#endif

instead of:

#if defined(__unix__) || defined(__APPLE__) || defined(__linux__) || defined(BSD) ...
...
#endif

Could the best option be to define my own macro in a single place? E.g.:

#if defined(__unix__) || defined(__APPLE__) || defined(__linux__) || defined(BSD) ...
#define UNIX_
#endif
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1  
If you choose to do that, do not use double underscore in the name. –  William Pursell Oct 27 '11 at 14:36
1  
you'll get more eyes on your problem if you change one of your tags to 'c'. Good luck. –  shellter Oct 27 '11 at 15:29
    
@WilliamPursell: fixed. Thank you. –  Pietro Oct 27 '11 at 15:36

1 Answer 1

POSIX requires _POSIX_VERSION to be defined in <unistd.h> (also accessible via sysconf(_SC_VERSION)), so try that.

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Ok, but before including <unistd.h> I have to check I am on a POSIX system, otherwise that file will not be available. And <unistd.h> should not be a small file to include... –  Pietro Oct 28 '11 at 23:59
    
Well, <stdio.h> must define L_ctermid on POSIX... –  ninjalj Oct 29 '11 at 9:13

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