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Why the output of below mentioned program is 0 not 20 ?

#include <stdio.h>

int main()
{
    int i = 10, j = 0;
    if (i || (j = i + 10))
       /* do something */;                
    printf("%d\n",j);
}
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21  
Short circuited boolean expression. –  jxh Jul 19 '13 at 8:01
1  
This may seem like a silly question but I'm learning - how could the program ever output 20? Is it something to do with C specifically? –  Andy Jul 19 '13 at 16:36
1  
@Andy (1)--program could output 20, only if i = 0 (that give change to execute expression j = i + 10). (2) No, this code is valid in C++, even in Java because in both we can do = within if() and both support short-circuit. --- It would be interesting to know even Python supports short-circuit but this expression if (i || (j = i + 10)) is not valid in Python because = in if is syntax error. –  Grijesh Chauhan Jul 19 '13 at 16:43
1  
@Andy yes, and you know na ? that any non-0 value is true in C and so i (=10) is ture. –  Grijesh Chauhan Jul 19 '13 at 16:53
1  
@JeshwanthKumarNK I added in my answer that || and && operators introduces sequence point so ++i || ++i is not a undefined behaviour :) whereas ++i | ++i is Undefined :( . got it? –  Grijesh Chauhan Jul 25 '13 at 9:17

4 Answers 4

up vote 27 down vote accepted

Yes, the concept is called Short-Circuit (in logical &&, || operators expression).

In the case of any logical expression (includes ||, &&) compiler stop evaluation expression as soon as result evaluated (and save executions).

The technique for short-circuit is:

!0 || any_expression == 1, so any_expression not need to evaluate.

And because in your expression i is not zero but its 10, so you can think if consdition (i || (j = i + 10)) just as i.

Logical OR operator:
The || operator guarantees left-to-right evaluation; there is a sequence point after the evaluation of the first operand. If the first operand compares unequal to 0, the second operand is not evaluated.

Similarly for && (and operator):
0 && any_expression == 0, so any_expression not need to evaluate.

In your expression:

(i || (j = i + 10) )
      ------------
       ^
       | Could evaluate if i is 0, 
       as i = 10 (!0 = true), so j remains unchanged as second operand is not evaluated

For or || operator answer can be either 0, 1. To save execution, evaluation stops as soon as results find. So if first operand is non-zero result will be 1 (as above) for the expression. So for first operand i = 10 compares unequal to 0, the second operand (j = i + 10) is not evaluated so j remains 0 hence output of your code is 0.

Note: Short-circuit behavior is not only in present in C but concept is common to many languages like Java, C++, Python. (but not all e.g. VB6).

In C short-circuiting of logical expressions is guaranteed has always been a feature of C. It was true when Dennis Ritchie designed and implemented the first version of C, still true in the 1989 C standard, and remains true in the C99 standard.

A related post: Is short-circuiting boolean operators mandated in C/C++? And evaluation order?

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9  
Honestly, far too long answer. –  Antonio Jul 19 '13 at 8:28
9  
"In the case of any logical expression most compiler stop evaluation expression as soon as result evaluated (to save executions)." - No, it isn't done by "most compilers", but by all that call themselves C compilers, because it is mandated by the standard. So more often than not this isn't just for the sake of performance but correctness, e.g. think about while(node && node->value), which would be terribly wrong if the standard didn't guarantee short-cirtuiting. –  Christian Rau Jul 19 '13 at 9:42
7  
@GrijeshChauhan You might disagree with that (only the standard comitte can answer that and you might very well be correct about the original purpose). You can however in absolutely no way disagree with the fact that not "most compilers" do this, but all. A compiler that doesn't do this is not a C compiler and it would be just like something like = or + wouldn't work as expected, you cannot rely on any code to work with such a compiler. As it stands you answer sounds like this is just a compiler implementation optimization, which is not the case. –  Christian Rau Jul 19 '13 at 9:51
4  
@Grijesh: you just need to clarify that sentence so that people don't get the wrong idea when they read your answer. You can see that already two people have misunderstood your answer. One of the great thing about SO is that answers can always be improved. –  Paul R Jul 19 '13 at 10:14
2  
Thank you, it isn't misleading anymore, +2. –  Christian Rau Jul 19 '13 at 11:22

|| is a short-circuit operator - if the left hand side evaluates to true then the right hand side does not need to be evaluated. So, in your case, since i is true then the expression j = i + 10 is not evaluated. If you set i to 0 however then the right hand side will be evaluated,

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is this feature compiler dependent? –  darknight Jul 19 '13 at 16:20
3  
@TheJoker No, In C short-circuiting of logical expressions is guaranteed has always been a feature of C. –  Grijesh Chauhan Jul 19 '13 at 16:25
1  
@paul Thank you :) –  Jeshwanth Kumar N K Jul 19 '13 at 17:00

In if (i || (j = i + 10)), there are two boolean expression to evaluate. The thing is, the first one is true, therefore there is no need to compute the second. It's purely ignored.

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because || is a short-circuit operator (so is the && operator).

so in (i || j = i+10), i is 10, left part of || is true, the expression j = i+10 didn't happen, as a result, j=0.

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