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I am using a variation of GCC that is specific to ARM microprocessors, and I am trying to figure out what this macro is doing in stdint.h.

   #if defined(__GNUC__) && \
    ( (__GNUC__ >= 4) || \
    ( (__GNUC__ >= 3) && defined(__GNUC_MINOR__) && (__GNUC_MINOR__ > 2) ) )
    /* gcc > 3.2 implicitly defines the values we are interested */ 
    #define __STDINT_EXP(x) __##x##__
    #else
    #define __STDINT_EXP(x) x
    #include <limits.h>
    #endif

__GNUC__ is an implementation specific macro, but how would you find out what the compiler is using for this? Printf() wouldn't work for this compiler because it's output is for an embedded system.

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3 Answers 3

up vote 2 down vote accepted

gcc's option -dM spits you all macros that are defined internally. Something like

gcc -xc -dM -E /dev/null | sort | less

should do the trick.

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1  
+1, I also like to pipe the output to sort(1), since by default they're not sorted. –  Adam Rosenfield Dec 9 '11 at 22:32
1  
@AdamRosenfield, sure, thought that such things are obvious :) –  Jens Gustedt Dec 9 '11 at 22:39

Use #pragma message "__GNUC__=" __GNUC__ to output it at compile time. http://gcc.gnu.org/onlinedocs/gcc/Diagnostic-Pragmas.html

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I actually don't get any value for __GNUC__ when doing this. The limits.h file would be included if it wasn't, which makes senses. But it seems like __GNUC__ is version information that would always get defined... –  Bryan C. Dec 9 '11 at 22:02

To expand it alone, just

    echo __GNUC__ | cc -E -

To expand the file containing it, cc -Efilename

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