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I am looking for a regular expression which will match all Or, It and And words in the string without . or : before these words.

For example I want the following behavior:

  • ". And", ": Or", ". It" --> not match
  • "And", "Or", " It" --> match

It quite easy to get opposite result. This (:|\.)+ *((\bIt\b)|(\bOr\b)|(\bAnd\b)) will match ". And" and will ignore "And", however this is not what I need.

Any help is appreciated!

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1 Answer 1

up vote 3 down vote accepted

negative look-behind is your friend: (?<![.:] )(And|Or|It)

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This does not match ". Or" - cool, however it matches Or in ". Or" (multiple spaces between dot and or). Is there a way to say - do not match if there are 0 to n white spaces between . and Or? –  Viktors Oginskis Sep 3 '13 at 10:45
    
Something like this (?<![.:] {0,3})(And|Or|It) does not work unfortunately :( –  Viktors Oginskis Sep 3 '13 at 10:46
    
Look-behinds with variable-length are impossible. (?<![.:])\s+(And|Or|It) won't work cause it will match string with one less whitespace, than it is actually. –  kirilloid Sep 3 '13 at 10:50
    
Thank you for help! This workaround seems to solve the problem: (((?<![\.:])(?<![\.:] )(?<![\.:] ))(\bAnd\b|\bOr\b|\bIt\b)) . It will not match if there are 0 to 2 spaces between . or : and word. Quite dirty, but works as needed –  Viktors Oginskis Sep 3 '13 at 11:22

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