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I was working on the Basics of C and was trying to solve the problem below could any one explain why the output of variable c is different?

What is the output of the following program?

int main()
{
   int a = -3, b = 2, c= 0, d;
   d = ++a && ++b || ++c;
   printf ("a = %d,  b = %d, c = %d, d = %d", a, b, c, d);
} 

Ans: -2, 3, 0, 1

Why c is not incremented in the output ?

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1  
d = ( (-2 && 3) || (++c) ). It's short circuited before it gets to c. –  user195488 Feb 22 '12 at 16:24
    
What are you actually trying to do? Or are you just simply playing with some code? –  Bart Feb 22 '12 at 16:25
    
simply solving c puzzles –  judith nisha Feb 22 '12 at 16:56
    
Thank u all for ur help . Now able to understand the situation better. :) –  judith nisha Feb 22 '12 at 17:01

5 Answers 5

up vote 10 down vote accepted

The variable c is not incremented because the RHS (right-hand side) of an || is not executed unless the LHS evaluates to false, and the LHS evaluates to true. The C || and && operators are 'short-circuit' operators; they do not evaluate the second operand unless the first is insufficient to determine the overall truth of the expression.

The && binds tighter than the ||, so the operation can be parenthesized as:

d = (++a && ++b) || ++c;

The value of ++a is -2, which evaluates to true (because any value that is not 0 evaluates to true); the value of ++b is 3, which evaluates to true; so the value of the && term is true. Because true || false and true || true both evaluate to true, there is no need to evaluate the RHS to know the overall result. (The analogous rule for && is that if the first term evaluates to false, there is no need to evaluate the second because the overall expression must be false. If you had a = -1; before the test, then b would not be incremented, because ++a would be zero or false, so the RHS of the && is unevaluated. Of course, then c would be incremented because the LHS of the || would be false, and the RHS would have to be evaluated to determine the overall result.)

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2  
Maybe he does not understand how -2 and 3 evaluate to true. –  user195488 Feb 22 '12 at 16:27
    
@0A0D: I've remarked on that - you may be correct. –  Jonathan Leffler Feb 22 '12 at 16:36

Because ++a && ++b evaluates to true.

It's called short-circuiting. Expressions inside conditions are evaluated from left-to-right. If your case, if the first condition in the OR clause is evaluated to true, there's no point for the second one to also be evaluated, since the whole expression is known to be true already.

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In C, the boolean logic operators && and || are short-circuiting. This means that they only evaluate their right side, if evaluating the left side is not enough to know the answer.

For your code, this has the effect of never evaluating ++c, since the left-hand side is not zero and thus the boolean or's result will be true, and there's no need to do more work.

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It is lazy boolean expressions evaluation. The execution is:

++a gives -2

++b gives 3

-2 && 3 gives 1

Okay! No need to check result of ||. So ++c is not evaluated.

The rule is: expression part X is not evaluated in cases: (0 && X), (1 || X). Here 1 is "not 0" of course.

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d= ++a && ++b || ++c
d= ++(-2) && ++b || ++c
d= -1 && ++b || ++c
d= true && ++b || ++c
d= true && ++2 || ++c
d= true && true || ++c
d= true || ++c
d= 1

That's roughly how it works behind the scene...

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