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Let's consider such code:

#include <stdio.h>
#include <stdarg.h>

#ifdef debug
#undef debug
#endif

#define debug(format, ...) tpk(format, __VA_ARGS__)

void tpk(const char* format, ...)
{
  const unsigned int len = 1024;
  char buffer[len];
  va_list args;

  va_start(args, format);
  vsprintf(buffer, format, args);
  va_end(args);

  printf(buffer);
}


int main()
{
  debug("No, you don't! ",  "But I do! %d %s\n", 34, "blabla");
  return 0;
}

Things to consider:

I have some code to debug, that's why I have to undef the debug (please don't ask me why, because the way the headers are included in project is kind of messed up).

Don't worry about buffer overflows and such, this is only for debugging purposes.

What's not working:

I only get the No, you don't! message and that's all. However, if I remove the first argument from debug the message is printed nicely. What am I doing wrong here?

UPDATE: I made a stupid mistake. I give a format string, that has no formatting parametres, hence everything works as it should. The solution for this, would be to modify the function:

#define debug(str, format, ...) tpk(str, format, __VA_ARGS__)

Print the str and after that use variadic functions on format.

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2 Answers 2

up vote 2 down vote accepted

What you're saying is no different from:

printf("No, you don't! ",  "But I do! %d %s\n", 34, "blabla");

Can you see what that does?

Hint: What's the format string?

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With an exceptions that such printf will generate compilation error [: Oh God... Not I see the error. –  Melon Jul 18 '13 at 11:07

In the first call to debug function:

debug("No, you don't! ",  "But I do! %d %s\n", 34, "blabla");

the first argument is the format argument for vsprintf which will parse it and try to find what to substitute. As "No, you don't!" contain nothing to substitute, the remaining parameters are ignored.

If you delete that part, "But I do! %d %s\n" contains %d and %s that will be replaced.

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