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I was recently came across a piece of code

// Program to overcome division by zero

int a=0;
int b=100;

int c= a==0 || b/a ;

printf("Hello");

//Output : Hello

My theory: According to the precedence, operator / has higher precedence than ||. So b/a must get executed first and we should get a run time error.

I assume what is happening though is :

short-circuit operator || , evaluates the LHS a==0, which is true and hence does not execute b/a.

Is my theory wrong?. I am pretty sure this is something very simple that i just can't figure out right now

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Great avatar, by the way. –  Daniel Fischer Nov 10 '12 at 12:49
    
Please tell me why write code that you have to scratch your head to figure out what is going on? It is stupid, cannot be maintained and therefore is c**P! Pray tell what is the point of writing such code. –  Ed Heal Nov 10 '12 at 12:49
    
@EdHeal This is quite common, actually. The only thing bothering me is that (a==0) is treated as int 0 instead of boolean false when assigned to c, but I believe that's a C thing anyway. –  GolezTrol Nov 10 '12 at 12:52
    
@EdHeal I haven't written this code, i saw this code in some program that i was going through. –  Desert Ice Nov 10 '12 at 12:53
1  
@GolezTrol a == 0 evaluates to 1/true. There is an implicit conversion from bool to int, so int c = boolean_expression; is equivalent to int c = boolean_expression ? 1 : 0;. –  Daniel Fischer Nov 10 '12 at 13:03

2 Answers 2

up vote 8 down vote accepted

Precedence doesn't imply evaluation order, only grouping (parentheses).

There is a sequence point (old parlance) after the evluation of the first operand of the ||, so the first operand of || must be evaluated before the second, regardless of what these operands are. Since in this case the overall result of the expression a == 0 || b/a was determined by the first operand, the second isn't evaluated at all.

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+1. This is called Short-circuit evaluation. –  GolezTrol Nov 10 '12 at 12:49
    
Awesome piece of information, thanks @GolezTrol and Daniel Fischer . I was assuming it was some simple syntax issue that i was missing. –  Desert Ice Nov 10 '12 at 13:15
2  
There must be something fundamentally wrong, that teachers say when explaining operator precedence, because a long of people come out thinking that it has something to do with order of evaluation. Maybe some kind of organization is needed, to roam the classes of the world finding people who say, "first the highest-precedence operator is evaluated" (or whatever the elementary error is), bundle them into vans and drive them to a secret base for re-education. –  Steve Jessop Nov 10 '12 at 15:17
    
@Steve That would be a lot of work, but worthwhile. –  Daniel Fischer Nov 10 '12 at 15:18

The higher precedence of / over || means that the expression is evaluated as:

int c= (a==0) || (b/a) ;

And not

int c= (a==0 || b)/a ;

But still, as the logical evaluation is short-circuited, b/a will only be evaluated if a!=0.

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