Sign up ×
Stack Overflow is a community of 4.7 million programmers, just like you, helping each other. Join them; it only takes a minute:

Just wondering if anyone has come across this before.

I found in a project (that was handed over from another developer) a conditional statement that looked something like this:

if (variableOne == true | variable2 == true) {
    // Do something here

It didn't error, so seems to work. But, myself and a colleague have never seen an OR statement with a single pipe |, only 2 ||.

Can anyone shed light on this mystery?

Thanks, James

share|improve this question
Its not an or statement it is bitwise math. – Gauthier Sep 3 '13 at 14:39

4 Answers 4

up vote 4 down vote accepted

This is a bitwise OR operator. It will first convert it into a 32 bit integer, then apply the bitwise OR operation to the two numbers that result. In this instance, since Boolean(1) is true and Number(true) is 1, it will work fine without issue (the == operator will always return a boolean, and a if statement converts anything to a boolean). Here are a few examples of how it works:

1 | 0; // 1
0 | 0; // 0
0 | 1; // 1
1 | 1; // 1
true | false; // 1
false | false; // 0
2 | 1; // 3 (00000010, 00000001) -> (00000011)

As both sides have to be converted to a number (and therefore evaluated), this may cause unexpected results when using numbers when the logical OR statement (||) was meant to be used. For this, take these examples:

var a = 1;
a | (a = 0);
console.log(a); // 0

var b = 1;
b || (b = 0);
console.log(b); // 1

// I wanted the first one
var c = 3 | 4; // oops, 7!


share|improve this answer

That's a bitwise OR, see the documentation from Mozilla:

share|improve this answer

The two pipes syntax "||" means it short circuits the logical expression. Evaluating only the needed until it knows the result. What does it means?

if(a==null || a.type=='ok')

If a is null, it will evaluate only the first part of the expression, without errors on javascript side.

if(a==null | a.type=='ok')

If a is null in this case, you will have an error, since it will evaluate the second part of the expression too.

It's the same thing on others C type languages: Java, C,C++ And the same thing applies to '&' and '&&'

share|improve this answer
What Qantas said is also right, it is a bitwise operator. It behaves as I said, because with boolean expressions it will return 1 if it's true, 0 if it's false. – digao_mb Sep 3 '13 at 14:43

| is a bitwise OR, which in some very limited cases can substitute the ||.

An important difference is that with | both operands are evaluated, unlike with the || which evaluates the second operand only if the first is false.


share|improve this answer

Your Answer


By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.