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if is it so what will be the output of 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;
}

output is ** -2 2 0 1 ** under gcc but how ?

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"man operator", google will find it for you –  jthill Jan 18 '13 at 16:51
    
It's not really important, is it? You would never write code like that in a real program. –  Bo Persson Jan 18 '13 at 16:55
    
ya that's correct but I am very confuse about order of evaluation that's why I asked –  Rasesh Jan 18 '13 at 17:01

4 Answers 4

up vote 2 down vote accepted

Precedence determines grouping of operands and operators; it does not determine order of evaluation. The || and && force left-to-right evaluation; ++i is evaluated first. If the result is not 0 (such as in this case), then ++j && ++k is not evaluated at all.

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++i has value -2, which is not zero, so it is "true" in the boolean context and the short-cirtuited conditional stops there and j and k retain their original values. The boolean "true" converts to an integer of value 1, which is assigned to m.

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but pre increment has higher precedence than || why ++j and ++k not evaluated before || –  Rasesh Jan 18 '13 at 16:51
    
Precendence is not related to sequencing. Why isn't return 0; executed before int i = -3? The short-circuiting semantics of the logical operators introduce a well-defined sequence. –  Kerrek SB Jan 18 '13 at 16:54
    
@5941 ++ has indeed a strong precedence, but in this case for j it's like if ( 0 ) ++j; where ++j is not executed: in the expression you gave ++j is also never executed since ++i is true (in a logical expression, ie using logical operators) and there is no need to execute the rest of the expression. Precedence goes like that (++i) || ((++j) && (++k)), and in A || B if A is true B is not evaluated since it is not necessary. Btw I don't agree the down voting: this is not an obvious problem. –  ring0 Jan 18 '13 at 17:04
    
thank you so much @ring0 –  Rasesh Jan 18 '13 at 17:07

That's because logical operators do short-circuit evaluation.

As soon as the result is known, no more evaluation is done.

In your case, as ++i evaluates to true and is followed by an or, no more sub-expressions are even evaluated.

What happens with "precedence" is this: to calculate the result of the || (lowest "precedence") the compiler needs to first calculate the result of what is to the left. In your case that yields true so no more calculations are needed as the result of the whole expression is known.

If the right hand side needed to be evaluated the ++ would be evaluated before the ||.

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Other have already explained about why the part after '||' is not evaluated. However, I would like to stress on a very important part of standard which results in this behaviour. The '||' logical operator acts as a sequence point, which necessitates left to right evaluation order regardless of other operators in the same expression.

A quote from standard ISO/IEC 9899 (6.5.13/14, pg 88)

Unlike the bitwise | operator, the || operator guarantees left-to-right evaluation; there is a sequence point after the evaluation of the first operand. If the first operand compares unequal to 0, the second operand is not evaluated.

In other words, the expression "a + b * c" is different from "a || b && c", in the sense that the former is treated as one expression with no sequence points, whereas latter is an expression with sequence points. As the name suggests sequence points forces sequence of evaluation. As soon as the result of complete expression is evaluated (e.g. when LHS of || evaluates to '1') further evaluation of expression can be stopped. Hence, the order that you see.

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