Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Consider the following C program:

#include <stdio.h>

int main(){
    int a =-1;
    unsigned b=-1;
    if(a==b)
        printf("%d %d",a,b);
    else
       printf("Unequal");
    return 0;
 }

In the line printf("%d %d",a,b);, "%d" is used to print an unsigned type. Does this invoke undefined behavior and why?

share|improve this question

4 Answers 4

up vote 5 down vote accepted

Although you are explicitly allowed to use the va_arg macro from <stdarg.h> to retrieve a parameter that was passed as an unsigned as an int (7.15.1.1/2), in the documentation for fprintf (7.19.6.1/9) which also applies to printf, it explicitly states that if any argument is not the correct type for the format specifier - for an unmodified %d, that is int - then the behaviour is not defined.

As @bdonlan notes in a comment, if the value of b (in this case 2^N - 1 for some N) is not representable in an int then it would be undefined behavior to attempt to access the value as an int using va_arg in any case. This would only work on platforms where the representation of an unsigned used at least one padding bit where the corresponding int representation had a sign bit.

Even in the case where the value of (unsigned)-1 can be represented in an int, I still read this as being technically undefined behavior. As part of the implementation, it would seem to be allowed for an implementation to use built in magic instead of va_args to access the parameters to printf and if you pass something as an unsigned where an int is required then you have technically violated the contract for printf.

share|improve this answer
    
The exception in 7.15.1.1/2 reads as follows: "if type is not compatible with the type of the actual next argument [...], the behavior is undefined, except [where] one type is a signed integer type, the other type is the corresponding unsigned integer type, and the value is representable in both types" (emphasis mine). Since -1 is not representable in both types, the behavior is undefined even without 7.19.6.1/9 –  bdonlan May 1 '11 at 21:42
    
@bdonlan: Technically b doesn't have the value -1, it has the value 2^N-1 for some N. Whether this value is representable in both an int and an unsigned is platform dependent - usually not, I grant you. –  Charles Bailey May 1 '11 at 21:45
    
If a behavior is undefined only if some implementation-defined factor is true, then it's effectively undefined, as a conforming implementation is free to choose a value of INT_MAX and UINT_MAX that will allow it to summon nasal demons at the printf call in question. –  bdonlan May 1 '11 at 21:48
    
@bdonlan: It's not "effectively undefined" because the implementation has to document INT_MAX and UINT_MAX` so it is possible to determine whether it's not UB for your particular implementation. Unless you meant something else by "effectively undefined"? It's not universally portable in any case. –  Charles Bailey May 1 '11 at 21:55
    
What I mean is, a program cannot, typically, assume any specific semantics for it. Sure, you can do an #if INT_MAX >= (UINT_MAX - 1), but, in practice, you might as well just assume it's always UB and be done with it –  bdonlan May 1 '11 at 22:20

The standard isn't 100% clear on this point. On one hand, you get the specification for va_arg, which says (§7.15.1.1/2):

If there is no actual next argument, or if type is not compatible with the type of the actual next argument (as promoted according to the default argument promotions), the behavior is undefined, except for the following cases:

  • one type is a signed integer type, the other type is the corresponding unsigned integer type, and the value is representable in both types;
  • one type is pointer to void and the other is a pointer to a character type.

On the other hand, you get the specification of printf (§7.19.6.1/9):

If any argument is not the correct type for the corresponding conversion specification, the behavior is undefined."

Given that it's pretty much a given that printf will retrieve arguments with va_arg, I'd say you're pretty safe with values that can be represented in the target type, but not otherwise. Since you've converted -1 to an unsigned before you pass it, the value will be out of the range that can be represented in a signed int, so the behavior will be undefined.

share|improve this answer
    
Except that (unsigned)-1 becomes (UINT_MAX - 1), which is usually beyond the range of INT_MAX... –  bdonlan May 1 '11 at 21:50
    
@bdonlan: Oops -- you're right. Edited... –  Jerry Coffin May 1 '11 at 21:54

Yes, the if will always evaluate to true and the printf will attempt to print an unsigned as a signed. Since the signed type may have trap representations, this may be UB if the sign representation is one's complement.

share|improve this answer

Yes

share|improve this answer
2  
Some discussion on why would be helpful... –  bdonlan May 1 '11 at 21:39
    
The way the question was posted made me believe the OP already knew the answer and just wanted confirmation. Using "%d" for an unsigned int invokes UB; "%d" expects a /*signed*/ int. –  pmg May 1 '11 at 21:42
    
Yes, I already knew the answer,however after seeing the first few explanation,I edited the question to why.Anyways +1. –  Quixotic May 1 '11 at 21:43
    
@TretwickMarian: If you knew the answer then why did you bother to ask the question? Isn't that just wasting everyone's time? –  Charles Bailey May 1 '11 at 21:58
    
@Charles Bailey:To confirm,this question come from a national level entrance test,besides I am quite of practice in this Core C-puzzles,hence the question. –  Quixotic May 1 '11 at 22:02

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.