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Let's say I want to remove all duplicate chars (of a particular char) in a string using regular expressions. This is simple -

import re
re.sub("a*", "a", "aaaa") # gives 'a'

What if I want to replace all duplicate chars (i.e. a,z) with that respective char? How do I do this?

import re
re.sub('[a-z]*', <what_to_put_here>, 'aabb') # should give 'ab'
re.sub('[a-z]*', <what_to_put_here>, 'abbccddeeffgg') # should give 'abcdefg'

NOTE: I know this remove duplicate approach can be better tackled with a hashtable or some O(n^2) algo, but I want to explore this using regexes

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2 Answers

up vote 23 down vote accepted
>>> import re
>>> re.sub(r'([a-z])\1+', r'\1', 'ffffffbbbbbbbqqq')
'fbq'

The () around the [a-z] specify a capture group, and then the \1 (a backreference) in both the pattern and the replacement refer to the contents of the first capture group.

Thus, the regex reads "find a letter, followed by one or more occurrences of that same letter" and then entire found portion is replaced with a single occurrence of the found letter.

On side note...

Your example code for just a is actually buggy:

>>> re.sub('a*', 'a', 'aaabbbccc')
'abababacacaca'

You really would want to use 'a+' for your regex instead of 'a*', since the * operator matches "0 or more" occurrences, and thus will match empty strings in between two non-a characters, whereas the + operator matches "1 or more".

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Kool... thanks... –  ATOzTOA Mar 11 '13 at 10:21
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In case you are also interested in removing duplicates of non-contiguous occurrences you have to wrap things in a loop, e.g. like this

 s="ababacbdefefbcdefde"

 while re.search(r'([a-z])(.*)\1', s):
     s= re.sub(r'([a-z])(.*)\1', r'\1\2', s)

 print s  # prints 'abcdef'
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Or: s = ''.join(set(s)) ;) (Ok, not a regexp) –  Lennart Regebro Jan 1 '11 at 20:46
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