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Here's what I tried... but failed:

void testfunc(...){
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I'm not sure if the suggested duplicate really is an exact duplicate (it isn't really that clear what you want to achieve here), however in any case it is very similar and should help you out. – Justin Nov 30 '10 at 0:02

3 Answers 3

up vote 2 down vote accepted

You must use va_start(), va_end(), va_arg() and (not always) va_list and you must have at least one constant defined argument! For example:

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

void PrintFloats ( int amount, ...)
  int i;
  double val;
  printf ("Floats passed: ");
  va_list vl;
  for (i=0;i<amount;i++)
    printf ("\t%.2f",val);
  printf ("\n");

int main ()
  PrintFloats (3,3.14159,2.71828,1.41421);
  return 0;
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This will create a function that is equivalent to printf. Note that you cannot blindly print out arguments, since you somehow need to know what type each argument is in advance. The format argument to printf informs it what arguments to expect and what types they will be.

#include <stdargs.h>

void testfunc(const char *format, ...)
    va_list ap;
    va_start(ap, format);

    vprintf(format, ap);

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You can use the va_start() and va_end() macros, but you'll have to have at least one argument:

void testfunc(int n, ...)
    va_list vl;
    va_start(vl, n); // initialize the va_list
    // something useful
    va_end(vl); // deinitializes vl

You can sequentially access the arguments with va_arg(vl, type) (e.g. int x = va_arg(vl, int)). Also, va_copy is occasionally useful if you want to copy the current state of the va_list

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