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What should be the output of this C program?

#include<stdio.h>
int main(){
  int x,y,z;
  x=y=z=1;
  z = ++x || ++y && ++z;
  printf("x=%d y=%d z=%d\n",x,y,z);
  return 0;
}

The given output is : x=2 y=1 z=1
I understand the output for x, but fail to see how y and z values don't get incremented.

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1 Answer

up vote 12 down vote accepted

This is a result of short-circuit evaluation.

The expression ++x evaluates to 2, and the compiler knows that 2 || anything always evaluates to 1 ("true") no matter what anything is. Therefore it does not proceed to evaluate anything and the values of y and z do not change.

If you try with

x=-1;
y=z=1;

You will see that y and z will be incremented, because the compiler has to evaluate the right hand side of the OR to determine the result of the expression.

Edit: asaerl answered your follow-up question in the comments first so I 'll just expand on his correct answer a little.

Operator precedence determines how the parts that make up an expression bind together. Because AND has higher precedence than OR, the compiler knows that you wrote

++x || (++y && ++z)

instead of

(++x || ++y) && ++z

This leaves it tasked to do an OR between ++x and ++y && ++z. At this point it would normally be free to select if it would "prefer" to evaluate one or the other expression first -- as per the standard -- and you would not normally be able to depend on the specific order. This order has nothing to do with operator precedence.

However, specifically for || and && the standard demands that evaluation will always proceed from left to right so that short-circuiting can work and developers can depend on the rhs expression not being evaluated if the result of evaluating the lhs tells.

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1  
Thanks that helped, but doesn't the order of precedence come into play here? Meaning the ++y && ++z should be evaluated first, before the || ? –  krishnang May 3 '12 at 13:52
4  
No. precedence is order in parsing, not order of evaluating. BTW, if ++z was been evaluated, it was UB. (changing z twice) –  asaelr May 3 '12 at 13:57
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