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i need a regex that matches an expression ending with a word boundary, but which does not consider the hyphen as a boundary. i.e. get all expressions matched by

type ([a-z])\b

but do not match e.g.

type a-1

to rephrase: i want an equivalent of the word boundary operator \b which instead of using the word character class [A-Za-z0-9_], uses the extended class: [A-Za-z0-9_-]

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What regex engine are you using -- is this .NET, javascript, etc.? –  Jay Apr 17 '12 at 18:00
    
@Jay: i am using .NET –  eyaler Apr 17 '12 at 18:01

2 Answers 2

up vote 4 down vote accepted

You can use a lookahead for this, the shortest would be to use a negative lookahead:

type ([a-z])(?![\w-])

(?![\w-]) would mean "fail the match if the next character is in \w or is a -".

Here is an option that uses a normal lookahead:

type ([a-z])(?=[^\w-]|$)

You can read (?=[^\w-]|$) as "only match if the next character is not in the character class [\w-], or this is the end of the string".

See it working: http://www.rubular.com/r/NHYhv72znm

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can this be done without a lookaround? –  eyaler May 28 '12 at 2:27

I had a pretty similar problem except I didn't want to consider the '*' as a boundary character. Here's what I did:

\b(?<!\*)[^\s\*]+)\b(?!*)

Basically, if you're at a word boundary, look back one character and don't match if the previous character was an '*'. If you're in the middle, don't match on a space or asterisk. If you're at the end, make sure the end isn't an asterisk. In your case, I think you could use \w instead of \s. For me, this worked in these situations:

*word
wo*rd
word*
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