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I don't understand the output of the following program:

#include<stdio.h>

int main()
{
    int i=-3, j=2, k=0, m;
    m = ++i || ++j && ++k;
    printf("%d %d %d %d\n", i, j, k, m);
    return 0;
}

The output is -2 2 0 1 instead of -2 3 1 1, implying that ++i was evaluated (and caused the || operator to short-circuit its right hand side) before the expression ++j && ++k which appears to contradict the fact that the && operator has higher precedence than ||.

Would someone explain why?

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marked as duplicate by AndreyT Aug 16 at 6:44

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

1  
What is the type of m? –  Amardeep Jul 30 '10 at 20:18
4  
j and k are never incremented because that part of the expression is short-circuited. ++i is true, so the rest of the expression is not evaluated. –  Fred Larson Jul 30 '10 at 20:23
1  
&& has higher precedence,so why are j and k not incremented –  anurag Jul 30 '10 at 20:24
2  
I fixed up the question to reflect what OP was trying to ask (let's help him out here) and voted to reopen. –  Amardeep Jul 30 '10 at 20:30
3  
@anurag: Since && has higher precedence than ||, a || b && c is parsed as a || (b && c). The thing that may be confusing you is that || and && short-circuit, so not all expressions need be evaluated. In this case, ++i has a value of -2, which is true, so nothing on the right-hand side of || will be executed. –  David Thornley Jul 30 '10 at 21:31

4 Answers 4

up vote 2 down vote accepted

The expression:

++i || ++j && ++k

Is equivalent to:

(++i) || ((++j) && (++k))

Explaining:

  1. ++i is evaluated -- (-2) || ((++j) && (++k));
  2. The || operator is evaluated -- (1);

Since 1 || anything evalutes true, the right operand is not evaluated. Thus, the && precedence doesn't matter here. This short circuiting is guaranteed in both C and C++ by the relevant standards (see Is short-circuiting boolean operators mandated in C/C++? And evaluation order?).

Now, try using a sub-expression, like this:

(++i || ++j) && ++k

Which is equivalent to:

((++i) || (++j)) && (++k)

Explaining:

  1. ++i is evaluated -- ((-2) || (++j)) && (++k);
  2. || is evaluated -- (1) && (++k)
  3. ++k is evaluated -- (1) && (1);
  4. Evaluates true;
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The output should be something like:

Error, line 2: 'm': undefined variable.

Edit: with that fixed, only the ++i should be evaluated. Precedence does not determine (or even affect) order of evaluation. Precedence means the expression is equivalent to ++i || (++j && ++k). Order of evaluation for || or && is always that the left operand is evaluated, then there's a sequence point. After the sequence point, the right operand is evaluated if and only if necessary to determine the final result (i.e., the right operand of || is evaluated if the left operand evaluated to zero; the right operand of && is evaluated if the left operand evaluated to non-zero).

In this expression, ++i is evaluated, then because it's the left operand of || and evaluated non-zero, none of the rest of the expression is evaluated.

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1  
+1 for making me chuckle. I agree. :D –  sabertooth Jul 30 '10 at 20:20
    
It was originally all one line, with the m being part of the declaration with the rest. When breaking it up, the editor apparently split the lines, inserting the error. –  James Curran Jul 30 '10 at 20:23
    
@James - Even when it was a one liner there was a ; between the k and the m. –  Amardeep Jul 30 '10 at 20:41

-2 2 0 1

Lazy.

#include <stdio.h>

int main()
{

 int i=-3,j=2,k=0;
 int m=++i||++j&&++k;

 printf("%d %d %d %d",i,j,k,m);

}

Compile, run and see for youself.

gcc tmp.c -o tmp
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My thoughts exactly –  Tom Jul 30 '10 at 20:19
1  
Shouldnt && be executed first because of higher precedence? –  anurag Jul 30 '10 at 20:23
    
No. This is very nicely explained in Jerry Coffin's answer. The OP and others just have an understanding problem. –  Carl Smotricz Jul 30 '10 at 20:48

By way of explanation:

#include <stdio.h>

int main()
{
    if (-1)
        printf ("-1!\n");
    else
        printf ("Not -1.\n");
    return 0;
}

Negative numbers are not false in C. Always compare boolean values to 0 (or FALSE) or you can get bitten by if (worked == TRUE) giving false negatives.

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