1

I just wrote this code and got output that I didn't understand.

#include <stdio.h>
#define SQUERE(X) ((X)*(X))

int main(void) {
    int s=5,i;
    i=SQUERE(s);      // option 1
    i=SQUERE(s++);    // option 2
    i=SQUERE(++s);    // option 3
    printf("%d %d",i,s);
    return 0;
}

The first option in the macro returned "25 5" - which I completely understand.

The second option returned "30 7" which I didn't understand - why is s 7 and not 6? and why 30 and not 25?(first s*s and then s++)

The third option returned "49 7" - and that I didn't get either. I will be happy for explanation for the steps of the program until the output.

  • 2
    Short answer: undefined behavior. You must not modify a variable more than once in a single expression. – HolyBlackCat Feb 1 '15 at 19:42
  • Because undefined behavior is undefined. – user4359659 Feb 1 '15 at 19:44
4

The preprocessor is just text manipulation, your code expands to:

i = (s) * (s);

or

i = (s++) * (s++);

or

i = (++s) * (++s);

And both of the last two are undefined behavior.

  • say no more...thanks!!:) – Dvir Naim Feb 1 '15 at 21:02

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