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I use python regular expressions (re module) in my code and noticed different behaviour in theese cases:

re.findall(r'\s*(?:[a-z]\))?[^.)]+', 'a) xyz. b) abc.') # non-capturing group
# results in ['a) xyz', ' b) abc']

and

re.findall(r'\s*(?<=[a-z]\))?[^.)]+', 'a) xyz. b) abc.') # lookbehind
# results in ['a', ' xyz', ' b', ' abc']

What I need to get is just ['xyz', 'abc']. Why are the examples behave differently and how t get the desired result?

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1 Answer

up vote 1 down vote accepted

The reason a and b are included in the second case is because (?<=[a-z]\)) would first find a) and since lookaround's don't consume any character you are back at the start of string.Now [^.)]+ matches a

Now you are at ).Since you have made (?<=[a-z]\)) optional [^.)]+ matches xyz

This same thing is repeated with b) abc

remove ? from the second case and you would get the expected result i.e ['xyz', 'abc']

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The non-capturing group in the first case is optional, too (if no a) in text, then match the whole text). –  aplavin Feb 4 '13 at 17:53
    
@chersanya that's why i had said second case not first case..there is difference between them –  Anirudha Feb 4 '13 at 17:54
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@chersanya also lookarounds checks for the specified pattern but it doesn't eat any characters..hence the result –  Anirudha Feb 4 '13 at 17:56
    
Oh, I've got it) The real issue is that lookarounds don't consume anything, so findall finds a in a) too. –  aplavin Feb 4 '13 at 18:00
    
@chersanya yup..you got it.. –  Anirudha Feb 4 '13 at 18:00
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