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I want to write a macro in C that accepts any number of parameters, not a specific number

example:

#define macro( X )  something_complicated( whatever( X ) )

where X is any number of parameters

I need this because whatever is overloaded and can be called with 2 or 4 parameters.

I tried defining the macro twice, but the second definition overwrote the first one!

The compiler I'm working with is g++ (more specifically, mingw)

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3  
Do you want C or C++? If you're using C, why are you compiling with a C++ compiler? To use proper C99 variadic macros, you should be compiling with a C compiler that supports C99 (like gcc), not a C++ compiler, since C++ doesn't have standard variadic macros. –  Chris Lutz Mar 25 '09 at 2:13
    
Well, I assumed C++ is a super set of C in this regard .. –  hasenj Mar 25 '09 at 3:46
    
tigcc.ticalc.org/doc/cpp.html#SEC13 has a detailed explanation of variadic macros. –  Gnubie Oct 25 '11 at 9:49
    
A good explanation and example is here http://gcc.gnu.org/onlinedocs/cpp/Variadic-Macros.html –  zafarulq Apr 11 '13 at 6:41

5 Answers 5

up vote 128 down vote accepted

C99 way, also supported by VC++ compiler.

#define FOO(fmt, ...) printf(fmt, ##__VA_ARGS__)
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5  
I don't think C99 requires the ## before VA_ARGS. That might just be VC++. –  Chris Lutz Mar 25 '09 at 2:18
58  
The reason for ## before VA_ARGS is that it swallows the preceding comma in case the variable-argument list is empty, eg. FOO("a") expands to printf("a"). This is an extension of gcc (and vc++, maybe), C99 requires at least one argument to be present in place of the ellipsis. –  jpalecek Mar 26 '09 at 20:20
    
This answer has been a great help - thank you. –  Michael van der Westhuizen Jan 10 '12 at 9:29
    
Great - thank you! –  sura2k Jan 16 '12 at 16:16
44  
## is not needed and is not portable. #define FOO(...) printf(__VA_ARGS__) does the job the portable way; the fmt parameter can be omitted from the definition. –  Alek Jun 11 '12 at 20:14

I don't think that's possible, you could fake it with double parens ... just as long you don't need the arguments individually.

#define macro(ARGS) some_complicated (whatever ARGS)
// ...
macro((a,b,c))
macro((d,e))
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C99 adds variadic macros. –  Chris Lutz Mar 25 '09 at 2:16
9  
While it is possible to have a variadic macro, using double parenthesis is a good advice. –  David Rodríguez - dribeas Mar 25 '09 at 7:06

__VA_ARGS__ is the standard way to do it. Don't use compiler-specific hacks if you don't have to.

I'm really annoyed that I can't comment on the original post. In any case, C++ is not a superset of C. It is really silly to compile your C code with a C++ compiler. Don't do what Donny Don't does.

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explained for g++ here, though it is part of C99 so should work for everyone

http://www.delorie.com/gnu/docs/gcc/gcc_44.html

quick example:

#define debug(format, args...) fprintf (stderr, format, args)
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2  
GCC's variadic macros are not C99 variadic macros. GCC has C99 variadic macros, but G++ doesn't support them, because C99 is not part of C++. –  Chris Lutz Mar 25 '09 at 2:17
    
Actually g++ will compile C99 macros in C++ files. It will issue a warning, however, if compiled with '-pedantic'. –  Alex B Mar 25 '09 at 2:24
2  
It is not C99. C99 use VA_ARGS macro). –  qrdl Mar 25 '09 at 5:39
    
Wrong, VA_ARGS is standard. –  Justicle Aug 21 '09 at 4:56
#define DEBUG

#ifdef DEBUG
  #define PRINT print
#else
  #define PRINT(...) ((void)0) //strip out PRINT instructions from code
#endif 

void print(const char *fmt, ...) {

    va_list args;
    va_start(args, fmt);
    vsprintf(str, fmt, args);
        va_end(args);

        printf("%s\n", str);

}

int main() {
   PRINT("[%s %d, %d] Hello World", "March", 26, 2009);
   return 0;
}

If the compiler does not understand variadic macros, you can also strip out PRINT with either of the following:

#define PRINT //

or

#define PRINT if(0)print

The first comments out the PRINT instructions, the second prevents PRINT instruction because of a NULL if condition. If optimization is set, the compiler should strip out never executed instructions like: if(0) print("hello world"); or ((void)0);

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2  
#define PRINT // will not replace PRINT with // –  bitc Jun 16 '10 at 7:48
2  
#define PRINT if(0)print is not a good idea either because the calling code might have its own else-if for calling PRINT. Better is: #define PRINT if(true);else print –  bitc Jun 16 '10 at 7:58

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