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I know the rules for && and || but what are & and |? Please explain these to me with an example.

Thank you in advance.

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7 Answers 7

up vote 39 down vote accepted

Those are the bitwise AND and bitwise OR operators.

int a = 6; // 110
int b = 4; // 100

// Bitwise AND    

int c = a & b;
//   110
// & 100
// -----
//   100

// Bitwise OR

int d = a | b;
//   110
// | 100
// -----
//   110

System.out.println(c); // 4
System.out.println(d); // 6

EDIT

Thanks to Carlos for pointing out the appropriate section in the Java Language Spec (15.22.1, 15.22.2) regarding the different behaviors of the operator based on its inputs.

Indeed when both inputs are boolean, the operators are considered the Boolean Logical Operators and behave similar to the Conditional-And (&&) and Conditional-Or (||) operators except for the fact that they don't short-circuit so while the following is safe:

if((a != null) && (a.something == 3)){
}

This is not:

if((a != null) & (a.something == 3)){
}
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wanted to clarify.. & will return 1 only if BOTH are 1? So 101 & 001 would be 001? Right? –  gideon Oct 25 '10 at 12:41
    
@giddy correct. –  Jonathon Faust Oct 25 '10 at 12:42
    
@giddy @Jonathon - I updated my values to better show that situation. –  Justin Niessner Oct 25 '10 at 12:44
1  
@Carlos- No. They're still bitwise operators. They just behave the same as non-short circuiting logical operators. There is a difference. –  Justin Niessner Oct 25 '10 at 13:05
3  
and what are the non-short circuiting logical operators? The operators & and | (asked by OP) are "Integer Bitwise Operators" (JLS 15.22.1) and "Boolean Logical Operators" (JLS 15.22.2). Or is the Java Language Specification wrong about that? –  Carlos Heuberger Oct 25 '10 at 20:29

I think you're talking about the logical meaning of both operators, here you have a table-resume:

boolean a, b;

Operation     Meaning                       Note
---------     -------                       ----
   a && b     logical AND                    short-circuiting
   a || b     logical OR                     short-circuiting
   a &  b     boolean logical AND            not short-circuiting
   a |  b     boolean logical OR             not short-circuiting
   a ^  b     boolean logical exclusive OR
  !a          logical NOT

short-circuiting        (x != 0) && (1/x > 1)   SAFE
not short-circuiting    (x != 0) &  (1/x > 1)   NOT SAFE
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1  
Great answer (the best one IMHO), but I fixed your formatting –  Sean Patrick Floyd Oct 25 '10 at 13:29
    
Thank you for the edit @seanizer! –  Torres Oct 26 '10 at 6:22

Check out short circuiting.

&& and || won't check the second argument if the first argument is enough to work out the outcome.

E.g.

bool something = true;
bool anotherThing = false;
if (something && anotherThing)
//or
if (something || anotherThing)

in the above the anotherThing variable will not be evaluated because something = true so the overall evaluation is true.

When you use & or |, all arguments are evaluated, regardless if the overall result can be found from the first argument.

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1  
Would the downvoters explain what their problem is? This answer may not be complete, but it certainly is correct. –  Sean Patrick Floyd Oct 26 '10 at 8:56
2  
Can you explain how if (true && false) becomes true? –  gkris Dec 14 '12 at 12:27
    
@gkris I don't think that will evaluate to true. –  whirlwin Apr 2 '13 at 14:34
    
if (something && anotherThing) doesn't evaluate to true –  jonnieM Jul 2 '13 at 12:07

& and | are bitwise operators on integral types (e.g. int): http://download.oracle.com/javase/tutorial/java/nutsandbolts/op3.html

&& and || operate on booleans only (and short-circuit, as other answers have already said).

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The operators && and || are short-circuiting, meaning they will not evaluate their right-hand expression if the value of the left-hand expression is enough to determine the result.

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3  
-1 for telling the OP what he already knew and not answering the question he actually asked. –  Alnitak Oct 25 '10 at 12:45

& and | provide the same outcome as the && and || operators. The difference is that they always evaluate both sides of the expression where as && and || stop evaluating if the first condition is enough to determine the outcome.

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2  
Same outcome -for booleans- ... –  KarlP Oct 25 '10 at 12:41
    
Wrong.... For && it evaluates both outcomes while || returns only if the first condition is true. –  Buhake Sindi Oct 25 '10 at 12:56
    
Huh? The && only evaluates the right hand side of the expression if the left hand side already evaluates to true. Otherwise it stops evaluating as the first false implictly means that the outcome cannot be true. See jguru.com/faq/view.jsp?EID=16530 –  Brian Scott Oct 25 '10 at 13:10
1  
( 2 & 4 ) evaluates to false, whereas ( 2 && 4 ) evaluates to true. How exactly is that the same outcome? –  Piskvor Oct 25 '10 at 13:21
    
@Piskvor - not in Java! 2 & 4 results in an integer, not a boolean (zero in this case). 2 && 4 will not compile, && only accept booleans. Java does not allow mixing booleans and ints: zero is not false, false is not zero... –  Carlos Heuberger Oct 25 '10 at 20:43

Maybe can be useful to know that bitwise AND and bitwise OR operators are always evaluated before conditional AND and conditional OR used in the same expression.

if ( (1>2) && (2>1) | true) // false!
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do you mean operator priority rather than evaluation order? I would rather not see the priority difference used in real code. Use parentheses rather than bitwise operators for this purpose. –  Jan Dvorak Sep 4 '13 at 8:16

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