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I would like to replace all the characters other than 0-9 in a string, using Javascript.

Why would this regex not work ?

 "a100.dfwe".replace(/([^0-9])+/i, "")
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3 Answers 3

up vote 16 down vote accepted

You need the /g modifier to replace every occurrence:

"a100.dfwe".replace(/[^0-9]+/g, "");

I also removed the redundant i modifier and the unused capturing sub-expression braces for you. As others have pointed out, you can also use \D to shorten it even further:

"a100.dfwe".replace(/\D+/g, "");
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thank you, and what exactly does the "+" stand for ? –  Prakash Raman Feb 16 '12 at 10:57
    
@PrakashRaman: it means match one or more of the preceding characters. It's not needed, but it will increase the performance of the regular expression slightly by reducing the number of replaces required. –  Andy E Feb 16 '12 at 12:19

\D means “not digit”:

"a100.dfwe".replace(/\D/g, "")
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Most compact form. –  Oybek Feb 16 '12 at 10:13

It doesn't work because you put the character class [^0-9] (= anything but a digit) inside parentheses, i.e. inside a group, then put the repetition character + after the group, so it would only match sequences of repeated non-numeric characters, such as "aaa".

For your purpose, use the /g modifier as the others suggest (to replace all matches globally), and you could also use the pre-defined character class \D (= not a digit) instead of [^0-9], which would result in the more concise regex /\D+/.

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to understand it better shouldn't the "a" and ".dfwe" come under a + group, because that is 1 and more. –  Prakash Raman Feb 16 '12 at 10:59
1  
\D+ says "look for one or more non-digits", whereas (\D)+ looks for one or more repetitions of the (same) non-digit, which is not what you want. Now, whether you do /\D/g (replace every single non-digit), or /\D+/g (replace every sequence of non-digits) doesn’t really matter except possibly in terms of performance, which won’t be noticeable unless you process tens of thousands of strings. –  fanaugen Feb 16 '12 at 11:15
    
ah thanks a lot. That explains things perfectly to me. Thanks ! –  Prakash Raman Feb 16 '12 at 12:03
    
I finally get it :) –  Prakash Raman Feb 16 '12 at 12:03

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