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I am trying to write a regular expression that will find the word "squirrel" in a list of sentences. The expression should return a list of full sentences that contains the word "squirrel".

Sentences that contain the word "squirrel" might look like the following sentences:

the squirrel has a long tail (.) say (.) long tail .
cats (a)n(d) squirrels (a)n(d) rabbits (a)n(d) bunnys (a)n(d) (.)
the squirrel+has a tail

The current re I have looks like this

word_only += re.findall('(.*?' + word + '?!\S)', sentence)  
word_only += re.findall('.*?' + word + '\S+', sentence)   

But it only returns whatever is in front of the word ("squirrel") and not after it.

Any ideas? Thanks

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You will need re.finditer to get match.group(0) for each one –  JBernardo May 25 '12 at 18:13

2 Answers 2

There's no real need to use the regular expressions here at all.

#The example string:
s = '''the squirrel has a long tail (.) say (.) long tail .
cats (a)n(d) squirrels (a)n(d) rabbits (a)n(d) bunnys (a)n(d) (.)
the squirrel+has a tail'''

sentencelist = s.split(".") #split on periods
[sentence for sentence in sentencelist if sentence.find("squirrel") != -1]
#If you don't find any squirrels, hold fire! 

On the other hand, if you have abbreviations/titles, this script will split into too many sentences. When I had to tackle a problem like this, I ended up using a regex like \.\s+(?=[A-Z]), and splitting on matches. This fixes abbreviations, e.g. N.A.A.C.P., but not titles, e.g. Mr. Smithers. I ended up building a dictionary of titles, and just subbing out the periods until after I finished regexing and counting. YMMV.

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If I understand correctly, you have a list of strings each containing a single sentence.

squirrel_sentences = []
for sentence in sentences:
    if re.match(word):
       squirrel_sentences.append(sentence)

If you have a single string containing multiple sentences, you might try the matches of this regex, which finds the spans of characters from period to period which contain squirrel (also supporting the first and last sentence with the \A and \Z):

(?:\A|(?<=.))[^.]*squirrel[^.]*(?:.|\Z)
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re.match find too many items –  user1413230 May 25 '12 at 18:28
    
If I do it this way, the sentence is broken into chars and each char is one element of the squirrel_sentences. Why –  user1413230 May 25 '12 at 18:39
1  
if re.match(word): is a bit simpler to read. –  cheeken May 25 '12 at 23:28

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