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

void varfun(int n,...){
va_list ptr;
int num;


int main(int argc, char **argv){


return 0;

Look at the above code, i expect the output to be the first variable parameter value casted to int i.e 7.5 casted to int, i.e. 7. But the output is 0. What is wrong in this?

share|improve this question
Try "num = (int)va_arg(ptr, double);" instead of "num = va_arg(ptr, int);" and see if that fixes it. –  Patrick87 Aug 16 '11 at 20:20
@Patrick87: Yes, but the cast is unnecessary; va_arg(ptr, double) is of type double, which can be implicitly converted to int. –  Keith Thompson Aug 16 '11 at 20:24
@Keith: Unnecessary, perhaps, but it's not hurting a thing, and is self-documenting. I'd put it in every time. –  Patrick87 Aug 16 '11 at 20:25
@Patrick87: I disagree. Casts should always be viewed with suspicion. In this case, suppose you later modify the program so that num is of type long. Without the cast, the assignment just works. With it, you have to remember to change (int) to (long); the compiler probably won't even warn you if you forget. –  Keith Thompson Aug 16 '11 at 20:33
btw, you must have a call to va_end in the function calling va_start, or face possible undefined behavior –  Hasturkun Aug 16 '11 at 20:52

4 Answers 4

up vote 3 down vote accepted

The va_arg does not convert the argument. It interprets it as the indicated type. And if the types don't match, you invoke Undefined Behaviour.

va_arg(ptr, int); /* take the next 4 bytes from the stack and interpret them as an `int` */
va_arg(ptr, double); /* take the next 8(?) bytes ... and interpret as double */
(int)va_arg(ptr, double); /* ... convert to int */

Also note the cast isn't really needed in your snippet. The compiler will convert automatically

void varfun(int n, ...) {
    va_list ptr;
    int num;
    va_start(ptr, n);
    num = va_arg(ptr, double); /* interpret as double, then convert to int */
share|improve this answer
It might not even do that (though it probably does). The behavior is undefined. For example, and implementation might pass int and double arguments via different mechanisms; looking for an int might give you pure garbage, not just a reinterpreted double. (Bottom line: get the types right.) –  Keith Thompson Aug 16 '11 at 20:28
Yes, right. Thanks @Keith ... I was updating my answer (ninja-edit) as you were typing the comment :) –  pmg Aug 16 '11 at 20:30

Your second argument, 7.5 is of type double, but your call va_arg(ptr, int) is treating it as an int. This means undefined behavior.

A variadic function has to be able to figure out the number and type(s) of the arguments -- and if the caller lies, you're out of luck. printf-like functions do this via the format string; other functions might treat all their arguments as pointers and use a trailing null pointer as a sentinel.

share|improve this answer
Would the downvoter care to explain? –  Keith Thompson Aug 16 '11 at 20:37
Your answer is as valid and useful as the other ones! I'm not the downvoter but I just +1 to make it fair. –  mjv Aug 16 '11 at 20:53
Thanks. (I really wasn't trolling for upvotes; I was actually hoping for constructive criticism.) –  Keith Thompson Aug 16 '11 at 20:58
yeah, same here, I'm not in to catch up with Jon Skeet ;-) but I'm always peeved when I see downvotes without a constructive criticism. –  mjv Aug 16 '11 at 21:08

This is not really casting but merely "reading the first few bytes" (*) of a floating point variable and considering it an integer.

You need to read this argument as its actual type, a double, and then casting as an int.

num = (int) va_arg(ptr, double);

(*) Technically, the behavior associated with va_arg(ptr, wrong_type) is undefined. "reading the first few bytes" is a figure of speech, only describing what typically may happen. No serious program should rely on such implementation details.

share|improve this answer
The cast isn't necessary; a double can be implicitly converted to an int. (This could be significant if the program is later changed, for example if num becomes a long.) –  Keith Thompson Aug 16 '11 at 20:29
@keith Thompson: ...and when this hypothetical change of the type of num occurs, one should find all references to num and adapt accordingly. The printf format string for eg. may not follow suite and god know the all other kinds of subtle issues one would leave the program open to, without a cautious review. So, you are quite correct: CASTs, in general, are a SMELL but in this instance the validity of either approach is a draw. I tend to favor being explicit; the odds having to make num a long are probably less than these of the original intent being misunderstood at first. –  mjv Aug 16 '11 at 20:45

It won't automatically cast the value 7.5 into an int like that. You'll need to use va_arg to retrieve the value as a double and then do the cast afterwards.

va_arg(ptr,int) is actually expecting the value stored at ptr to be a bitwise representation of an int, and it's not.

share|improve this answer
It's a double, not a float. The constant 7.5 is of type double. And even if the argument were 7.5f, variadic arguments undergo the default argument promotions which, among other things, promote float to double. –  Keith Thompson Aug 16 '11 at 20:27
Oops, you're right. –  BishopRook Aug 16 '11 at 20:30

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