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I have this question in my beginner Java programming class and I can't find in my book what a single '|' means as an operator.

The question is:

int j = 0;    
if ((8 > 4) | (j++ == 7))
    System.out.println("j = " + j);

Is j = 1?

Explain why.

The book explains the OR operator "||" with examples but it doesn't show this single "|". Does the meaning of the operator change between the two?

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5  
    
It is a bitwise or operator cprogramming.com/tutorial/bitwise_operators.html –  Jorge Zuverza Feb 5 '13 at 16:46
    
@JorgeZuverza, Why have you posted a link to a c++ site? –  Ash Burlaczenko Feb 5 '13 at 16:48
    
Look harder, or get a better book. –  EJP Feb 5 '13 at 22:27

5 Answers 5

up vote 5 down vote accepted

Yes, the meaning changes, || is the logical or operator, while | is the bitwise or.

Since this operator operates (...) at the bit level, it doesn't short circuit the same way as ||, meaning, even if the first operand is true, the second operand will be evaluated.

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If you use the || and && forms, rather than the | and & forms of these operators, Java will not bother to evaluate the right-hand operand alone.

Boolean b = true;
if(b || foo.test())
{
   //we entered without calling test()
}

if(b | foo.test())
{
   //we entered  calling test()
}
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| -> This is bit-wise OR operator performs a bitwise inclusive OR operation and perform the both operand(right and left).

The bitwise OR "|" operator produces 1 if either one or both of the bits in its operands are 1. However, if both of the bits are 0 then this operator produces 0. To be more precise OR "|" operator returns 1 in all cases except when both the bits of both the operands are 0.

if ((8 > 4) | (j++ == 7)) System.out.println("j = " + j);

Here 8>4 will return true and j++ == 7 will return false. so it will be if(true|false) and here bit-wise operator will return true or 1 and print value of j which became 1 after j++.

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It is also the (non-shorthand) OR conditional operator. –  adarshr Feb 5 '13 at 16:45

The | operator is bitwise OR, but you may ask why would someone use the bitwise OR on boolean variables?

Logical OR operator (||) has a feature called short-circuiting, which means that if the left operand evaluates to true, no further processing is done, and the right hand operand even will not evaluate. But bitwise OR operator | always evaluates both operands, and if applied on boolean operands, evaluates both of them and then applies a simple or on the results.

In your case, (j++ == 7) is always evaluated, regardless of the result of 8 > 4. This does not happen with || operator. So j will be incremented by one and the output of the program is 1.

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The answer is No because j is initialized at 0 but is never assigned after this. So the value of j stays at 0 for the whole time.

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2  
but in the right-hand side of the operator, doesn't j++ add 1 to the initialized number? –  Maggie B. Feb 5 '13 at 16:52
    
(j++ == 7) evaluates if j++ = 7 but it does not increment j. To increment j you should have seen j = j++; ( == means evaluation while = means assignation) –  Simon Feb 5 '13 at 16:56
    
Try it in a small java application (right in the main function). You will see that j is never incremented. –  Simon Feb 5 '13 at 16:58
1  
Simon, your statement is incorrect. j++ is an in-place increment of j, meaning, it's equivalent to j=j+1 or j+=1. There is a difference between ++j and j++, but that is besides the point here, since it has no influence in this case. –  pcalcao Feb 5 '13 at 17:54
    
Yes, sorry about that I had ++j in mind. –  Simon Feb 5 '13 at 18:17

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