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:

I really think the title explains it thoroughly enough. I stumbled upon this oddity when I used an ampersand instead of a plus sign in some string manipulation code. Found it interesting. Could somebody explain this for me?

share|improve this question
Wow, nice job on the double-quotes, StackOverflow – Josh Stodola Dec 15 '09 at 3:41

4 Answers 4

up vote 14 down vote accepted

Because all bitwise operators1, including the bitwise and (&), work with 32-bit integers.

This operator will convert the two operands to signed 32-bit integers using the abstract ToInt32 operation 2, and if the value is not a number, the result of this conversion is 0.

At the end your expression becomes evaluated as:

0 & 0; // 0


  1. Binary Bitwise Operators ECMA-262, 3rd. Ed. Section 11.10

  2. ToInt32, ECMA-262, Section 9.5

share|improve this answer
While I think @Tor tipped me off the quickest, I'll +1 you because you provided reference and and final expression. – Josh Stodola Dec 15 '09 at 3:50
Extraneous & on the final expression there. – Crescent Fresh Dec 15 '09 at 3:53

& is the bitwise AND operator (as opposed to &&, which is the logical AND operator). A bitwise & makes no sense on strings, so I suppose JavaScript just takes the easy way out and returns 0.

There could be a more technical explanation, but basically you gave a nonsensical instruction and got back a nonsensical result. It would have been nicer to get an error, but JavaScript is just not that kind of language!

share|improve this answer
+1 on the Lack of error message. Should have been a syntax error, at least! – Josh Stodola Dec 15 '09 at 3:48
It's valid syntax, though. – harto Dec 15 '09 at 4:22

JavaScript, like many languages, has a bit operator & This compares the bits at similar positions and returns a 1-bit in those positions where they both have a 1-bit and a 0-bit in those positions where either one has a 0-bit.

And the important thing why it returns 0 is not because no bits match, but because it doesn't support strings. :)

share|improve this answer
Bzzt, wrong. "foo"&"foo" is also 0. – Breton Dec 15 '09 at 3:45
Hmm, interesting theory, but "foo" & "foo" returns 0 as well. – EMP Dec 15 '09 at 3:46
@Breton Actually I believe he is correct. You could use any strings and the result would be the same. Bitwise operators are for numeric values, not strings. Please revert your vote. Thanks, @Tor! – Josh Stodola Dec 15 '09 at 3:47
He edited his answer, and for some reason it doesn't mark it as edited. Oh well. Reverted. – Breton Dec 15 '09 at 3:48
Yeah I edited it... there's probably by design a short gap where edits aren't picked up. :) – Tor Valamo Dec 15 '09 at 3:51

that's a bitwise & which is casting its arguments to be numbers. when you cast an arbitrary string to a number, and that string doesn't contain numerical text, then the result is NaN.

the result of NaN & NaN is 0 for some reason.

try "2" & "3"

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.