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Is it undefined behavior if I call va_arg fewer times than the number of arguments passed in a variadic function?

For example:

#include <stdarg.h>
void foo(unsigned n, ...) {
    va_list ap;
    int bar = 0;

    va_start(ap, n);
    if (n) bar = va_arg(ap,int);
    // Do something with bar
}

int main() {
    foo(2, 3, 4);
    return 0;
}

Will that program cause undefined behavior?

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2 Answers 2

up vote 7 down vote accepted

Your program does cause undefined behaviour, but not because of the way you're using va_arg. That's just ignoring the extra argument, so it seems like a waste of typing to have included it.

What causes the undefined behaviour is that you haven't included va_end in that function.

From the spec (7.15.1.1 The va_arg macro):

Each invocation of the va_arg macro modifies ap so that the values of successive arguments are returned in turn. ...If there is no actual next argument ... the behavior is undefined ...

and from 7.15.1.3 The va_end macro:

...if the va_end macro is not invoked before the return, the behavior is undefined.

There is no mention of having to call va_arg a certain number of times. As you can see, the va_end is important, though.

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va_arg is defined to return the arguments in the order that they were passed. If you call it fewer times than arguments, you will simply ignore any extra arguments.

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This answer is sort of "half-correct". While the number of calls to va_arg doesn't matter (as long as it's not too many), the OP's program does cause undefined behaviour. –  Carl Norum Oct 15 '12 at 6:43

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