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I would like to have a RegEx that matches several of the same character in a row, within a range of possible characters but does not return those pattern matches as one pattern. How can this be accomplished?

For clarification:

I want a pattern that starts with [a-c] and ungreedly returns any number of the same character, but not the other characters in the range. In the sequence 'aafaabbybcccc' it would find patterns for:

('aa', 'aa', 'bb', 'b', 'cccc')

but would exclude the following:

('f', 'aabb', 'y', 'bcccc')

I don't want to use multiple RegEx pattern searches because the order that i find the patterns will determine the output of another function. This question is for the purposes of self study (python), not homework. (I'm also under 15 rep but will come back and upvote when I can.)

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1  
(a+|b+|c+) should work. –  Vikas May 23 '12 at 2:48
    
I think backreference is a better solution instead of using | to match individual chars. Updated my answer. –  Vikas May 23 '12 at 3:31

2 Answers 2

up vote 2 down vote accepted

Good question. Use a regex like:

(?P<L>[a-c])(?P=L)+

This is more robust - you're not limited to a-c, you can replace it with a-z if you like. It first defines any character within a-c as L, then sees whether that character occurs again one or more times. You want to run re.findall() using this regex.

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This was exactly what I was looking for. Thank you. –  Ceryn May 23 '12 at 4:22
    
You're welcome - glad to see it helped. –  Ansari May 23 '12 at 4:27
    
I'm actually having trouble getting this to work, but I'm not sure why. test = re.findall('(?P<L>[a-c])(?P=L)+', 'abbracadabbra') -- just returns test as ['b', 'b'] -- is it a python issue? –  Ceryn May 23 '12 at 4:49
    
Since you want the whole string and not just the repeated letter, you'll have to enclose the whole regex in parentheses. So something like this will work: [t[0] for t in re.findall('((?P<L>[a-c])(?P=L)+)', 'abbracadabbra')] –  Ansari May 23 '12 at 4:53
    
Putting the whole thing in parenthesis made it miss the single letter matches, but I think I've got it figured out now. It needed to be ((?P<L>[a-c])(?P=L)*) with an asterisk because otherwise it fails to capture anything that is shorter than the double letter matches. Thanks so much for all your help. –  Ceryn May 23 '12 at 5:11

You can use backreference \1 - \9 to capture previously matched 1st to 9th group.

/([a-c])(\1+)/

[a-c]: Matches one of the character.
\1+  : Matches subsequent one or more previously matched character.

Perl:

perl -e '@m = "ccccbbb" =~ /([a-c])(\1+)/; print $m[0], $m[1]'

cccc

Python:

>>> import re
>>> [m.group(0) for m in re.finditer(r"([a-c])\1+", 'aafaabbybcccc')]
['aa', 'aa', 'bb', 'cccc']
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Interesting. Is there a good tutorial for how grouping works? –  Ceryn May 23 '12 at 4:24
    
@Ceryn, regular-expressions.info has a very good tutorial on regex. Chapter on grouping and backref gives a good overview of what you want. –  Vikas May 23 '12 at 5:10
    
Thanks I'll check it out. :) –  Ceryn May 23 '12 at 5:44

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