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Is there a way to achieve the equivalent of a negative lookbehind in javascript regular expressions? I need to match a string that does not start with a specific set of characters.

It seems I am unable to find a regex that does this without failing if the matched part is found at the beginning of the string. Negative lookbehinds seem to be the only answer, but javascript doesn't have one.

EDIT: This is the regex that I would like to work, but it doesn't:

(?<!([abcdefg]))m

So it would match the 'm' in 'jim' or 'm', but not 'jam'

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Consider posting the regex as it would look with a negative lookbehind; that may make it easier to respond. –  Daniel LeCheminant Mar 13 '09 at 3:53

5 Answers 5

up vote 39 down vote accepted

Use

newString = string.replace(/([abcdefg])?m/, function($0,$1){ return $1?$0:'m';});
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1  
This doesn't do anything: newString will always equal string. Why so many upvotes? –  MikeM Jan 3 '13 at 19:26
    
@MikeM: because the point is simply to demonstrate a matching technique. –  bug Mar 12 '13 at 2:59
3  
@bug. A demonstration that doesn't do anything is a strange kind of demonstration. The answer comes across as if it was just copy and pasted without any understanding of how it works. Thus the lack of accompanying explanation and the failure to demonstrate that anything has been matched. –  MikeM Mar 12 '13 at 15:41
1  
@MikeM: the rule of SO is, if it answers the question as written, it's correct. OP didn't specify a use case –  bug Mar 26 '13 at 1:34

Mijoja's strategy works for your specific case but not in general:

var newString = "Fall ball bill balll llama"
    .replace(/(ba)?ll/g, function ($0, $1) { return $1?$0:"[match]"; });

// Fa[match] ball bi[match] balll [match]ama

Here's an example where the goal is to match a double-l but not if it is preceded by "ba". Note the word "balll" -- true lookbehind should have suppressed the first 2 l's but matched the 2nd pair. But by matching the first 2 l's and then ignoring that match as a false positive, the regexp engine proceeds from the end of that match, and ignores any characters within the false positive.

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Ah, you are correct. However, this is a lot closer than I was before. I can accept this until something better comes along (like javascript actually implementing lookbehinds). –  Andrew Mar 13 '09 at 15:38

As Javascript supports Lookahead, one safe way to do it is :

Let say you want to do a lookbehind like this

(?<!([abcdefg]))m
  1. Reverse the string to match
  2. Apply your pattern "reversed" using a lookahead (be careful of the reversed matching expression inside the lookahead, in this case, it stays the same)

    m(?!([abcdefg]))
    
  3. reverse all the matched tokens

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an example would be nice. –  Eliran Malka Sep 5 '12 at 16:26
    
this should be the answer –  Axel Jul 30 at 12:37

You could define a non-capturing group by negating your character set:

(?:[^a-g])m

...which would match every m NOT preceded by any of those letters.

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I think the match would actually also cover the preceding character. –  Sam Sep 28 '13 at 6:37
    
^ this is true. A character class represents...a character! All your non-capturing group is doing is not making that value available in a replace context. Your expression is not saying "every m NOT preceded by any of those letters" it is saying "every m preceded by a character that is NOT any of those letters" –  Thomas McCabe Mar 13 at 22:13

/(?![abcdefg])[^abcdefg]m/gi yes this is a trick.

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