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I have pattern like this (finding 3 word abbreviations)

s='([A-Z][a-z]+ ){2,4}\([A-Z]{2,4}\)'

and I want to find

line='National Health Service (NHS)'
p=re.findall(s,line)

but p is only ['Service '] and not the whole string. Why?

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marked as duplicate by Silas Ray, Martijn Pieters, Peter O., ekhumoro, Bakuriu Mar 5 '13 at 16:43

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I notice you've asked 8 questions so far and have yet to mark any answers as accepted. If and when you do get answers that helped you solve your problem, you may want to mark them as accepted. See How does accepting an answer work. –  Shawn Chin Sep 19 '12 at 13:59
    
Why do you want the whole string? It's the same as not doing anything it all. –  João Silva Sep 19 '12 at 14:01

1 Answer 1

You are not grouping the match correctly, use this instead:

s='(?:[A-Z][a-z]+ ){2,4}\([A-Z]{2,4}\)'

.findall() returns the whole match, unless you define capturing groups ((...)), at which point it'll return the results contained in the group instead. The above pattern uses a non-capturing group instead ((?:...)). Since that leaves your expression without any capturing groups, .findall() returns full matches again.

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1  
This is correct, but it would be helpful to explain why. –  Steven Rumbalski Sep 19 '12 at 14:00
    
@StevenRumbalski: yeah, sorry, was out of time there for a bit. –  Martijn Pieters Sep 19 '12 at 14:05

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