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For example I have string:

 aacbbbqq

As the result I want to have following matches:

 (aa, c, bbb, qq)  

I know that I can write something like this:

 ([a]+)|([b]+)|([c]+)|...  

But I think i's ugly and looking for better solution. I'm looking for regular expression solution, not self-written finite-state machines.

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5 Answers 5

up vote 18 down vote accepted

You can match that with: (\w)\1*

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2  
Very cool!!!!!! –  Bohemian Jun 10 '11 at 12:08

itertools.groupby is not a RexExp, but it's not self-written either. :-) A quote from python docs:

# [list(g) for k, g in groupby('AAAABBBCCD')] --> AAAA BBB CC D
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3  
+1 for thinking outside the regex –  Thomas K Jun 10 '11 at 12:09
    
How would that work on 'aaaabbbaaa'? –  Kobi Jun 10 '11 at 12:54
    
@Kobi aaaa bbb aaa, as expected. Btw it returns list of lists, but it can't be a problem. :-) –  DrTyrsa Jun 10 '11 at 12:58

Generally

The trick is to match a single char of the range you want, and then make sure you match all repetitions of the same character:

>>> matcher= re.compile(r'(.)\1*')

This matches any single character (.) and then its repetitions (\1*) if any.

For your input string, you can get the desired output as:

>>> [match.group() for match in matcher.finditer('aacbbbqq')]
['aa', 'c', 'bbb', 'qq']

NB: because of the match group, re.findall won't work correctly.

Other ranges

In case you don't want to match any character, change accordingly the . in the regular expression:

>>> matcher= re.compile(r'([a-z])\1*') # only lower case ASCII letters
>>> matcher= re.compile(r'(?i)([a-z])\1*') # only ASCII letters
>>> matcher= re.compile(r'(\w)\1*') # ASCII letters or digits or underscores
>>> matcher= re.compile(r'(?u)(\w)\1*') # against unicode values, any letter or digit known to Unicode, or underscore

Check the latter against u'hello²²' (Python 2.x) or 'hello²²' (Python 3.x):

>>> text= u'hello=\xb2\xb2'
>>> print('\n'.join(match.group() for match in matcher.finditer(text)))
h
e
ll
o
²²

\w against non-Unicode strings / bytearrays might be modified if you first have issued a locale.setlocale call.

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1  
up vote for explaining (\1*) –  Renklauf Aug 20 '12 at 19:21

This will work, see a working example here: http://www.rubular.com/r/ptdPuz0qDV

(\w)\1*
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:-). Was trying it in Rubular to show an working example, got little late. –  RakeshS Jun 10 '11 at 12:14

The findall method will work if you capture the back-reference like so:

result = [match[1] + match[0] for match in re.findall(r"(.)(\1*)", string)]
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