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This is how it looks like in Perl-compatible regexp (taken from http://stackoverflow.com/a/4824952/377920):

(?:(?<!\d)\d{1,3}(?!\d))

However, apparently Javascript lacks some regexp features so this doesn't work.

I'm trying to match 1-3 long connected digits that can have non-white characters on both ends.

Such as "Road 12A55, 10020" would match 12 and 55.

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1  
Not really the solution you asked for, but the clean way to test if a string is a number in Javascript is to use isNaN() –  Guillaume Algis Feb 7 '13 at 19:40
    
What is the pattern you're trying to match? –  qodeninja Feb 7 '13 at 19:41
    
What is your requirement? –  Rohit Jain Feb 7 '13 at 19:41
1  
Why not just grab all substrings of digits (via the simple regex (\d+)) and then see if the matched groups have a length between 1 and 3? –  Jack Maney Feb 7 '13 at 19:43

4 Answers 4

up vote 2 down vote accepted

Javascript does not support look-behinds, that is why your regex didn't work.

You can try out this alternative: -

/(?:^|\D)(\d{1,3})(?!\d)/

And get the group 1.

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@Downvoter.. Care to comment please. –  Rohit Jain Feb 7 '13 at 21:26

You are correct, JavaScript does not support lookbehinds.

It looks like you are trying to detect a sequence of no more than 3 digits. Depending on what the surrounding context is, you may be able to use this instead:

/(?:^|\D)\d{1,3}(?:\D|$)/
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You can rewrite the expression without lookbehinds - just make sure to get group 1:

/(?:^|\D)(\d{1,3})(?!\d)/
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This returns 12 and 55:

var output = 'Road 12A55, 10020'.replace(/D+|\d{4,}/g, ' ').match(/\d+/g)

alert(output)
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