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So I have something like this:

\b(0?[1-9]|[1-2][0-9]|3[0-6])\b

Which works fine for only matching numbers 1-36. But I might get something like S36, which won't get matched. I can't assume a clean word boundary on either side of the number.

I'd like to have it so it'll match 1-36 with anything except other numbers on either side.

I thought something like this would work, but it doesn't:

(?<=\D)(0?[1-9]|[1-2][0-9]|3[0-6])(?=\D)

It's supposed to be a positive look-behind at the start to make sure there is anything but digits preceding the number and a positive look-ahead after the number to make sure the same is true following it.

What is the correct way of doing this?

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What regex engine? Lookbehind and even lookahead are not supported by all flavours. –  Lucero Dec 30 '12 at 16:06
    
I'm doing this in .NET, but testing it with the free software, Expresso. –  dustmouse Dec 30 '12 at 16:08
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2 Answers 2

up vote 1 down vote accepted

If your engine doesn't support lookbehind/lookahead, then you can still just match the whole thing including the non-digits and pick the capture you're interested in.

(?:^|[^1-9])(0?[1-9]|[1-2][0-9]|3[0-6])(?:$|[^1-9])

Your result would be in capture 1 in this example (the "outer" matches are in non-capturing groups).

Note that with .NET, you do have full support for lookbehind and lookahead, so that the following should work:

(?<![0-9])(?:0?[1-9]|[1-2][0-9]|3[0-6])(?![0-9])

This uses negative lookaround instead of positive lookaround. Otherwise, numbers that are at the beginning or end of the string will not match because a non-numeric character is required where there is no character, leading to a non-match.

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Okay, the .NET one works perfectly. Thanks! –  dustmouse Dec 30 '12 at 16:15
    
I just did a small edit to add the braces back into it, otherwise it will not work in all cases. Sorry about that. –  Lucero Dec 30 '12 at 16:16
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You can just use [^0-9] at the beginning and the end and then get the number by looking at the appropriate captured group ( second in this case ):

(^|[^0-9])(0?[1-9]|[1-2][0-9]|3[0-6])($|[^0-9])
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Thanks for the response. In terms of not matching numbers on either side, this is doing exactly what I want - but it is also matching non-digits. So if I put in the string S36, it matches S36, and not just 36... –  dustmouse Dec 30 '12 at 16:17
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@dustmouse. "and then get the number by looking at the appropriate captured group ( second in this case )". Javascript example: 'S36'.replace(/(^|[^0-9])(0?[1-9]|[1-2][0-9]|3[0-6])($|[^0-9])/, '$2') The second captured group is the $2, so the result is 36. –  MikeM Dec 30 '12 at 20:33
    
Okay, my bad. Thanks. –  dustmouse Jan 14 '13 at 15:12
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