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I was wondering what is the best way to convert something like "haaaaapppppyyy" to "haappyy".

Basically, when parsing slang, people sometimes repeat characters for added emphasis.

I was wondering what the best way to do this is? Using set() doesn't work because the order of the letters is obviously important.

Any ideas? I'm using Python + nltk.

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Essentially, I'm only doing this if a letter is repeated > 2 times in a row in the same word, so realistically the word would acutally be "haappy" by that logic. However, I could use enchant to spellcheck. –  je223 Apr 9 '12 at 11:53
    
oh sorry, forgot I repeated the "y", yes, it would be "haappyy" –  je223 Apr 9 '12 at 11:55
    
Matching against a dictionary is also a nice problem: find the shortest real word you can get by dropping repetitions. It's not trivial since some words have two or more double letters (think "bookkeeper"). –  alexis Apr 29 '12 at 13:02
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3 Answers

up vote 10 down vote accepted

It can be done using regular expressions:

>>> import re
>>> re.sub(r'(.)\1+', r'\1\1', "haaaaapppppyyy")     
'haappyy'

(.)\1+ repleaces any character (.) followed by one or more of the same character (because of the backref \1 it must be the same) by twice the character.

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+1, this is probably a lot faster than my version. –  larsmans Apr 9 '12 at 12:04
2  
@larsmans Actually yours is almost twice as fast as mine. –  Howard Apr 9 '12 at 12:12
    
I would use r'(.)\1{2,}' instead so doubles are left alone (now you're just replacing them with themselves). That should give you another speedup. –  Tim Pietzcker Apr 9 '12 at 12:39
    
@TimPietzcker Doesn't really speed up the substitution. My first thought was the same as larsmans' that regular expression should be much faster than group/join, but it seems to be not the case. –  Howard Apr 9 '12 at 12:43
    
@Howard: It will if the string contains many double letters. Not on this test string, obviously. –  Tim Pietzcker Apr 9 '12 at 13:17
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You can squash multiple occurrences of letters with itertools.groupby:

>>> ''.join(c for c, _ in groupby("haaaaapppppyyy"))
'hapy'

Similarly, you can get haappyy from groupby with

>>> ''.join(''.join(s)[:2] for _, s in groupby("haaaaapppppyyy"))
'haappyy'
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This is one way of doing it (limited to the obvious constraint that python doesn't speak english).

>>> s="haaaappppyy"
>>> reduce(lambda x,y: x+y if x[-2:]!=y*2 else x, s, "")
'haappyy'
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