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I am developing a C program and have been stumped by this warning. I want to retrieve arguments from the list using va_arg.

args[i] = (int) va_arg(argptr, int); 

or

args[i] = (char) va_arg(argptr, char);

the problem that am getting this warning:

... void *' differs in levels of indirection from 'int'...

the same also for char case. Any explanation for that?

code:

void test_function(va_list argptr, int (*callback)(),
                   int ret_typel)
{
  int i ;
  int arg_typel;
  int no_moreb = TRUE;
  void *args[MAX_FUNCTION_ARGS];
  for (i=0; no_moreb; i++) {
    arg_typel = (int)va_arg(argptr, int);
    switch(arg_typel) {
    case F_INT:
      args[i] = (int) va_arg(argptr, int);
      break;
    case F_CHAR:
      args[i] = (char) va_arg(argptr, char);
      break;
    default:
      no_moreb = FALSE;
      i--;
      break;
    }
  }
}
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1  
You need to show more code, it's hard for us to know what argptr is for instance. –  unwind Dec 13 '11 at 15:16
1  
Please post a complete piece of code, including the definitions of args. –  Oliver Charlesworth Dec 13 '11 at 15:16
    
@unwind i added the whole code –  Aymanadou Dec 13 '11 at 15:31

4 Answers 4

up vote 3 down vote accepted

The problem is that args[] is an array of void *. You cannot assign an int or float to a void * (it doesn't make any sense). You could get round this by casting, but it's not a good idea.

If you want to store different types in the same variable, consider a union:

typedef union
{
    char  c;
    int   i;
    float f;
} MyUnion;

MyUnion args[MAX_FUNCTION_ARGS];

args[i].c = va_arg(argptr, char);
args[i].i = va_arg(argptr, int);
args[i].f = va_arg(argptr, float);

UPDATE As Jonathan Leffler correctly points out in his answer, va_arg(argptr, char) and va_arg(argptr, float) should not be used, due to default promotions for variadic functions.

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Damn, you beat me to the answer -- just because I bothered to reformat the code in the question first ;) –  Lindydancer Dec 13 '11 at 15:35
    
@Lindydancer: answer the question first; then format the question. :D Sometimes it is hard to understand the question without formatting the code first, which leaves you in a quandary... –  Jonathan Leffler Dec 13 '11 at 16:41
    
@JonathanLeffler: Or, next time I might avoid reformatting the code all together, making harder for others to understand the question... Oh, I can think of all sorts of evil schemes to make it harder for the rest of you... ;) –  Lindydancer Dec 13 '11 at 17:10

You're being passed a void pointer and you are casting the pointer as an int or char. You need to dereference the void pointer and then cast, or cast it as an (int *) or (char *) first.

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That doesn't really help with the OP's problem though. But the OP needs to show his/her actual code to get actual help. –  Oliver Charlesworth Dec 13 '11 at 15:27

The array args is a array of void *. You assign plain integers to it, which is the reason you get the error.

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A point of detail about the use of va_arg().

You cannot use:

va_arg(argptr, char);

without invoking undefined behaviour (which is bad!). The variable arguments to a varargs function undergo promotions: float is passed as double, and char, unsigned char, signed char, short, unsigned short undergo promotion to int or unsigned (int) as required. Therefore, you can never pull a char directly with va_arg; you can only specify promoted types. You would have to write:

char c = (char) va_arg(argptr, int);
float f = (float) va_arg(argptr, double);

This time, the cast occurs as a result of the assignment; saying it happens with the cast is not strictly necessary, but does no harm (though I probably wouldn't write the cast in my own code).

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+1 for a good spot on the UB! –  Oliver Charlesworth Dec 13 '11 at 16:03

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