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The following program has undefined behavior:

#include <stdio.h>

int main(void)
{
    unsigned int x = -100; // This is fine, becomes UINT_MAX - 100
    printf("%d\n", x); // This is undefined behavior.
    return 0;
}

C99 7.19.6.1p8 states %d expects an int argument.
C99 7.19.6.1p9 states "If any argument is not the correct type for the corresponding conversion specification, the behavior is undefined."

However, gcc -Wformat (which is included with -Wall) will not complain about the above program, why? Is this a bug, or a deliberate omission?

From the gcc manpage:
-Wformat
Check calls to "printf" and "scanf", etc., to make sure that the arguments supplied have types appropriate to the format string specified, and that the conversions specified in the format string make sense

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2  
C99 6.3.1.3p3 says conversion of unsigned to signed is implementation defined. –  jxh Jul 3 '12 at 3:14
    
@user315052: There is no conversion; the representation of x (an unsigned int object) is interpreted as if it were of type int. –  Keith Thompson Jul 3 '12 at 3:32
    
@KeithThompson: I think there is because of C99 7.15.1.1p2, last sentence, where it makes an exception for signed/unsigned when converting argument types through the va_arg macro. –  jxh Jul 3 '12 at 4:01
    
@KeithThompson there is no conversion emitted in the code only because the function is varargs. If the function was declared to take int, the call would be legal. So why should gcc be expected to issue a warning for a legal case? –  Andy Ross Jul 3 '12 at 4:32
    
@user315052: I just read that paragraph; it doesn't imply that there's a conversion. –  Keith Thompson Jul 3 '12 at 6:57
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1 Answer 1

up vote 5 down vote accepted

My best guess is that the warning is skipped because the UB is arguably invoked by the value and not merely by the type. va_arg allows the signedness to mismatch as long as the value is representable in both the signed and unsigned type. However, printf and friends are not specified in terms of va_arg and the standard states that any type mismatch results in UB, but this is probably a bug in the standard. Otherwise, printf("%x",1); would invoke UB. See my question on the topic:

Does printf("%x",1) invoke undefined behavior?

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Thanks. That makes sense as 6.2.5p6 requires int and unsigned int to use the same amount of storage. Even though printf %d on an unsigned is technically undefined, there's no plausible reason for it to cause real issues. –  Chris Young Jul 3 '12 at 3:09
    
The standard doesn't say that printf() uses <stdarg.h>, but the fact that you can construct a pointer to the printf() function can call through it implies at least some commonality in the argument-passing mechanism. –  Keith Thompson Jul 3 '12 at 7:02
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