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I executed a code in the C language, However I am unable to understand its output.

#include <stdio.h>

int main()
{
    int a=5;
    int b= ++a + 0!=0;
    printf("%d %d",++a, b);
    return 0;
}

The output for the above program is

7 1

I am unable to understand why it is so.

  • 1
    Lookup operator precedence. The b value parses as ((++a) + 0) != 0.. – dxiv Nov 22 at 4:15
  • When given a problem like this, always ignore the spacing. There is no 0!=0 in that code, but the misleading spacing makes it look like there is. Another example is a --> 0 which is really a-- > 0. – user3386109 Nov 22 at 4:37
  • Did you try changing the code a bit to see what happens? changing to b = 0!=0; (b now 0) or changing to b = (++a + 0) != 0; (b now 1) would reveal what's going on – Elliott Nov 22 at 4:40
2

Order of operations causes this to be treated as:

int b = (((++a) + 0) != 0);

Therefore:

int b = (6 != 0);

6 isn't 0, so that has a value of true aka 1.

int b = 1;
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