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I need to get the index of the last occurrence of a regexp.

In the sentence below, I need to get the index of the last period or exclamation point, but not if it's part of a short abbreviation (space-char-period)

Great buy w. all amenities! Use on all cars. come on in 

I can get the index of the first occurrence like this

t = u"Great buy w. all amenities! Use on all cars. come on in "
p = "(?<! .)([.] |! )"
i = len(re.compile(p).split(t)[0])
print i

That's the exclamation point after "amenities". But I need the period after "cars".

My abbreviation regexp may need some tuning, but the point is that the regexp has a negative look-behind.

I tried using a negative look-ahead but it got complicated and didn't work the way I did it.

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2 Answers 2

up vote 0 down vote accepted

Iterate over all matches using finditer(), and pick the last one (using the resulting MatchObject's .start() method:

import re

p = re.compile("(?<! .)([.] |! )")
t = u"Great buy w. all amenities! Use on all cars. come on in "

last = None
for m in p.finditer(t):
    last = m

if last is not None:
    print m.start()

prints 43.

Do note that your regular expression, as it stands, won't work with any punctuation that is the last character in your input; if t was changed to:

t = u"Great buy w. all amenities! Use on all cars. come on in!"

the result would still be 43, and not 55.You'd need to match punctuation followed by whitespace or the end of the string:

p = re.compile("(?<! .)([.!](?:\s|$))")

This then gives:

>>> import re
>>> t = u"Great buy w. all amenities! Use on all cars. come on in!"
>>> p = re.compile("(?<! .)([.!](?:\s|$))")
>>> last = None
>>> for m in p.finditer(t):
...     last = m
... 
>>> if last is not None:
...     print m.start()
... 
55
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Nice. Did the trick :) –  user984003 Jan 27 '13 at 11:09
    
Fails if the last character of the string is . or ! - if that is a possibility. –  MikeM Jan 27 '13 at 11:25
    
@MikeM: It would for the original regular expression. My point was to demonstrate how to find the last match for any regex search that has multiple matches. –  Martijn Pieters Jan 27 '13 at 11:26
    
Fair enough, Martijn. I just couldn't resist - perhaps I should have done. –  MikeM Jan 27 '13 at 11:28
    
@MikeM: You are correct of course, and I've expanded my answer to provide a better regexp for that case. –  Martijn Pieters Jan 27 '13 at 11:34

You could use the following to find the index of the last occurrence of . or !.

t = u"Great buy w. all amenities! Use on all cars. come on in "
i = re.search(r"((?<!\s\S)\.|!)[^.!]*$", t)
if i is not None:
    print i.start()
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