-2
#include <stdio.h>

int main()
{
    int p=10,q=20,r;
    if(r = p = 5 || q > 20)
     printf("%d",r);
     else
      printf("No output");

    return 0;
}

The output is 1 but how? Please explain

  • 1
    because r = p = (5 || q > 20), and it this evaluates to true (1) so it prints r, which is 1 – Hayri Uğur Koltuk Jul 25 at 18:58
  • 1
    The title is very poor, even if the question is interesting. It makes it seem more like a trick question rather than a genuine inquiry – Edward Minnix Jul 25 at 18:58
  • 1
    This question would be much improved if you added what you are confused about. Asking why something is the way it is without context makes your question too broad. Why do you think it shouldn't be 1? What do you think it should be? What do think is happening? – zero298 Jul 25 at 18:59
  • To have it come out the way you are thinking, you would need if ((r = p = 5) || q > 20) – David C. Rankin Jul 25 at 19:00
  • @EdwardMinnix Sorry for the confusing title.I just wanted to know how that output is 1 – user10050258 Jul 25 at 19:02
7

Precedence. To be more clear:

if(r = p = 5 || q > 20)

is the same as

if(r = p = (5 || q > 20))

5 is truthy, so the boolean expression evaluates to 1, which is then assigned to r

  • Thanks man. It was a good explaination :) – user10050258 Jul 25 at 19:09
1

r is being assigned the Boolean results of the 'or' || operator. So, r is 1 because either 5 or q > 20 is true.

0

when you use single '=' operators in conditional statements ,it assigns rhs value to left side identifier .if the rvalue is 0 it gives false else true.so in your case this happened

p=5 evaluates to p=true

r=p evaluates to r=true

r=true makes condition true

since integer value of true in most compilers is 1 so r contains 1 Also in case of OR if first condition evaluates to true ,then second one is not checked

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