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I have a question concerning pre and post increments with logical operators if I have this code

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

knowing that the increment and the decrement operators have higher precedence than && and || So they'll be executed first Then the && is higher than
means -2||3&&1 which gives the values -2 3 1 1 for the printf

but the output I get when trying on VS2010 is -2 2 0 1

Does anyone have any explanation for that ? Regards,,

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1 Answer 1

up vote 3 down vote accepted

This is what you get from short circuiting. ++i is -2, and the rest doesn't have to be evaluated (and isn't according to the standard). The left side of || is true because -2 is not 0, so the whole expression is true.

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Doesn't the && have higher precedence than || ? I mean , for example in the multiplication and addition , multiplication has higher precedence than addition , so if we check 3+4*5 It'd be 23 and not 35 Or am I missing something ? Thanks chris for your teremendously fast reply Anyway :) –  user2268349 Apr 11 '13 at 0:47
4  
It's because it has higher precedence that this happens. The whole thing can be written as (++i) || (++j&&++k). Since the left side is true, the right side is not evaluated. If || had higher precedence, ++i||++j would have to be evaluated to determine whether ++k also had to be. –  chris Apr 11 '13 at 0:48
    
Thanks Chris , got you –  user2268349 Apr 11 '13 at 0:49

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