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#include <stdio.h>

struct abc{
  int a;
  int b;
} xyz;

int main()
{
  xyz.a = 10;
  xyz.b = 20;
  printf("%d %d", xyz, xyz.a);
}

The output of of the above program is 10 20.

If I add another printf statement as

printf("%d %d %d", xyz, xyz.a, xyz.b);

the output comes 10 20 10.

What's the explanation for this?

share|improve this question
    
Mine returns 10 10. Relying on undefined behavior is not a good idea. :) –  sarnold Jan 30 '11 at 12:09
9  
@sarnold, yours returned 10 10. You were lucky, mine created a miniature black hole which swallowed up my wife, the two kids, the dog, and my main machine. I'm having to type this comment on my old 386 clunker. Geez, I'm gonna miss that dog :-) –  paxdiablo Jan 30 '11 at 12:12
4  
@paxdiablo sorry to hear about your dog. –  sarnold Jan 30 '11 at 12:13
    
@paxdiablo: That serves you right for running code from a SO question on a DS9000. –  caf Jan 31 '11 at 4:21

2 Answers 2

up vote 2 down vote accepted

You've invoked undefined behavior; any result is allowed.

7.19.6.1 The fprintf function
...
9 If a conversion specification is invalid, the behavior is undefined.248) If any argument is not the correct type for the corresponding conversion specification, the behavior is undefined.

Emphasis mine. xyz is of type struct abc, but printf is expecting that argument to be type int.

paxdiablo's answer is a decent postmortem of how such a result may occur, but that's only applicable to your specific circumstances. Change anything about the code or the translation environment or the execution environment, and the result will probably be different.

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It's because the call to printf is pushing the entire structure xyz onto the stack and that structure (in this case) consists of the two integers. The xyz.a in that case is ignored since it's beyond the stack area that printf cares about.

Although the behaviour is undefined(a) so that anything can happen, this particular case can be explained because the printf("%d %d",xyz,xyz.a); statement probably pushes xyz and xyz.a on to the stack something like:

xyz.a | 10 |    |
xyz   | 20 |    | Stack grows downward.
      | 10 |    V

and the printf code itself, because it's been given two %d's, will print the 10 at the bottom and the 20. In other words, it's a mismatch between the format string and the parameters.

When you add another %d, it prints what it thinks is the third argument (but is actually the second), the top 10 in the above diagram.

I should mention that relying on this behaviour is not a good idea. It may change when you switch compilers, versions of the compiler, or possibly even on odd-numbered days :-)

Good compilers like gcc actually look inside the printf arguments to catch this as a potential error:

pax$ cat qq.c
#include<stdio.h>
struct abc { int a; int b; } xyz;
int main (void) {
    xyz.a=10;
    xyz.b=20;
    printf("%d %d",xyz,xyz.a);
    return 0;
}

pax$ gcc -Wall -o qq qq.c
qq.c: In function 'main':
qq.c:6: warning: format '%d' expects type 'int',
        but argument 2 has type 'struct abc'
qq.c:6: warning: format '%d' expects type 'int',
        but argument 2 has type 'struct abc'

(a) From c99, section 7.19.6.1/9: If any argument is not the correct type for the corresponding conversion specification, the behavior is undefined.

share|improve this answer
    
Just brilliant. –  Pablo Santa Cruz Jan 30 '11 at 12:08
    
Strictly speaking, the behavior is undefined; any result is allowed. –  John Bode Jan 30 '11 at 13:36
    
Sorry, John, I had implementation dependent. I didn't mean to indicate that it was implementation defined (which has a very definite meaning under ISO C) but I've clarified it to remove any chance of confusion. –  paxdiablo Jan 30 '11 at 13:46

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