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#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 value of k increases if i am using a || operator but in case of && the value is not increasing what would be the reason for that , i am very confused.

The out put is -2,3,0,1

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2  
|| is short-circuiting. – user166390 Nov 2 '12 at 9:04
    
The value of K is not increased because there is no K. Only a k. – Burkhard Nov 2 '12 at 9:09
    
If you used || operator instead of && as you say, then not only k wouldn't increase but neither would j. – panda-34 Nov 2 '12 at 9:09

You have a test in your code:

m = ++i && ++j || ++k;

When you use multiple tests like this, you will first evaluate ++i && ++j. If it's true, you will never evaluate the || ++k part (because m would be true anyway). This is called lazy evaluation.

If ++i && ++j had been false in your example, k would have been increased because the last part of the test would have been evaluated.

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Loved your answer , very satisfying . . . thanks a lot – DEV Dev Nov 2 '12 at 9:18
    
@DEVDev thank you! – alestanis Nov 2 '12 at 9:22

if the operators of “&&”are not zero,it will come true,then the rest part will not be used. In c,if it is not zero,it is true.

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It is called lazy evaluation. false && b is always false whatever b might be.

In your case:
m = ++i && ++j || ++k; evaluates to m = true || ++k; which leads to ++k not being evaluated because of lazyness.

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When does -2 && 3 evaluates to false??? – Eregrith Nov 2 '12 at 10:00
    
Never. Corrected it. Thanks for the hint. – Burkhard Nov 2 '12 at 10:34
    
Corrected where ? I still see m = false || ++k; in place of m = true || ++k; leading to ++k never being evaluated. I edited your answer to correct it – Eregrith Nov 2 '12 at 14:19

Because ++k is not evaluated as ++i && ++j evaluates to true.

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The OR condition is lazily evaluated.

The ++k is never executed, because the first part of the condition is not true.

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expressions after || when the values before it evaluate to true will NOT be evaluated.

(c=10)|| (y=20)

In this example, c=10 evaluates to true, due to which y=20 will not be evaluated.

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