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Lets say this is our text:

text = 'After 1992 , the winter and summer Olympics will be held two years apart , with the revised schedule beginning with the winter games in 1994 and the summer games in 1996 . ) Now , Mr. Pilson -- a former college basketball player who says a good negotiator needs `` a level of focus and intellectual attention  similar to a good athlete-s is facing the consequences of his own aggressiveness . Next month , talks will begin on two coveted CBS contracts'
print re.search(r'(\w+ |\W+ ){0,4}1992( \W+| \w+){4}', text).group(0)

Output: After 1992 , the winter and

But this one gives me:

print re.search(r'(\w+ |\W+ ){0,4}1992( \W+| \w+){0,4}', text).group(0)

Output: After 1992 ,

It seems strange for me because why the second regex is not greedy?

This one is a bit strange than others:

print re.search(r'(\w+ |\W+ ){0,4}summer( \W+| \w+){0,4}', text).group(0)

Output , the winter and summer Olympics will be held

Questions

1- What is the difference between the first and the second one. For me, it should give the same text because the only difference is {0,4} and if {4} gives long string, {0,4} should give the same string because regex is greedy.

2- The problem may be related punctuation because third example works same both {0,4} and {4}..

I am confused.

share|improve this question
up vote 4 down vote accepted

No mystery here.

In your second example, ␣\W+ overmatched ␣,␣ (blank is also part of the \W class), so no subsequent matches were found for ␣\w+ against the remaining the␣winter␣... -- but the {0,4} constraint was satisfied, so no need for those further matches. So far so good.

Coming back to your first example, the match above did not satisfy {4}, so the engine kept looking. In the ␣\W+ match it backtracked the last blank so ␣\W+ only matched ␣,, then 3 subsequent matches for ␣\w+ could be made against ␣the␣winter␣... -- and {4} was satisfied.

Change your regular expression to either ([^ ]+ +){0,4}my_word( +[^ ]+){0,4} (this maintains the spirit of your original expression, treat spaces as separators and everything else, including punctuation, as words) or, maybe better, (\w+\W+){0,4}my_word(\W+\w+){0,4} to isolate up to 4 actual words on either side irrespective of punctuation.

Later,

Hi vladr. Regular expression that you provided is not working with this text (target word is part in this text):

The city 's Department of Consumer Affairs charged Newmark & Lewis Inc. with failing to deliver on its promise of lowering prices . In a civil suit commenced in state Supreme Court in New York , the agency alleged that the consumer-electronics and appliance discount-retailing chain engaged in deceptive advertising by claiming to have '' lowered every price on every item '' as part of an advertising campaign that began June 1 . The agency said it monitored Newmark & Lewis 's advertised prices before and after the ad campaign , and found that the prices of at least 50 different items either increased or stayed the same . In late May , Newmark & Lewis announced a plan to cut prices 5 % to 20 % and eliminate what it called a '' standard discount-retailing practice '' of negotiating individual deals with customers ."

Aha. It matched part in Department.

  • If you only want to match whole words then use (^|(\w+\W+){1,5})\W*my_word\W*((\W+\w+){1,5}|$), this should isolate the word between separators and/or line ends.
  • If you want to match part in Department then use (\w+\W+){0,5}\w*my_word\w*(\W*\w+){0,5}
share|improve this answer
    
Nice one. Thanks vladr. Key point was that \W class contains whitespace. I totally forgot that. – Thorn Nov 12 '12 at 19:48
    
Hi vladr. Regular expression that you provided is not working with this text (target word is part in this text): deceptive advertising by claiming to have '' lowered every price on every item '' as part of an advertising campaign that began June 1 – Thorn Nov 13 '12 at 0:57
    
@Thorn, it produces on every item '' as part of an advertising campaign over here. Can you attach here the result of the match on your system, as well as the result of text.encode("hex")? – vladr Nov 13 '12 at 4:43
    
Sorry. Actually it contains `` but I remove it because of its functionality in SO. codepad.org/B7oce5Te – Thorn Nov 13 '12 at 7:29
1  
Aha. It matched part in Department. If you only want to match whole words then use (^\W*|\w+\W+){1,5}%s(\W+\w+|\W*$){1,5}, this should isolate the word between separators and/or line ends. If you want to match part in Department then use (\w+\W*){0,5}%s(\W*\w+){0,5} – vladr Nov 13 '12 at 8:05

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