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Looking for a fast way to limit duplicates to a max of 2 when they occur next to each other.

For example: jeeeeeeeep => ['jep','jeep']

Looking for suggestions in python but happy to see an example in anything - not difficult to switch.

Thanks for any assistance!

EDIT: English doesn't have any (or many) consonants (same letter) in a row right? Lets limit this so no duplicate consonants in a row and up to two vowels in a row

EDIT2: I'm silly (hey that word has two consonants), just checking all letters, limiting duplicate letters that are next to each other to two.

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At what point in the program are you trying to limit this? As the user inputs something or afterwards? What does the input look like? Just a single word or an entire string with the possibility of many matches? –  Brian Kintz Jul 18 '11 at 13:20
1  
What should the output be for "jjjjeeeeppppp"? –  Ned Batchelder Jul 18 '11 at 13:21
    
@elmugrat - this is basically going into a spell checker but its not on-the-fly so I'd fix it after pressing "enter" @Ned Now that you mention it I'd like limit vowels to two and consonants to one (that holds true for english, right?) so output would still be ['jep', 'jeep'] good point though, that spec needed to be seen –  jphenow Jul 18 '11 at 13:25
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@jphenow: That should be OK for vowels, but don't forget about words like "correct" or "rabbit" that have more than one of the same consonant in a row. –  Brian Kintz Jul 18 '11 at 13:30
1  
English has plenty of double-consonants. Better check yourself, lol. –  machine yearning Jul 18 '11 at 13:32

5 Answers 5

up vote 3 down vote accepted

Here's a recursive solution using groupby. I've left it up to you which characters you want to be able to repeat (defaults to vowels only though):

from itertools import groupby

def find_dub_strs(mystring):
    grp = groupby(mystring)
    seq = [(k, len(list(g)) >= 2) for k, g in grp]
    allowed = ('aeioupt')
    return rec_dubz('', seq, allowed=allowed)

def rec_dubz(prev, seq, allowed='aeiou'):
    if not seq:
        return [prev]
    solutions = rec_dubz(prev + seq[0][0], seq[1:], allowed=allowed)
    if seq[0][0] in allowed and seq[0][1]:
        solutions += rec_dubz(prev + seq[0][0] * 2, seq[1:], allowed=allowed)
    return solutions

This is really just a heuristically pruned depth-first search into your "solution space" of possible words. The heuristic is that we only allow a single repeat at a time, and only if it is a valid repeatable letter. You should end up with 2**n words at the end, where n is he number times an "allowed" character was repeated in your string.

>>> find_dub_strs('jeeeeeep')
['jep', 'jeep']
>>> find_dub_strs('jeeeeeeppp')
['jep', 'jepp', 'jeep', 'jeepp']
>>> find_dub_strs('jeeeeeeppphhhht')
['jepht', 'jeppht', 'jeepht', 'jeeppht']
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See my revised post - refined the rules. Try limiting vowels to two in a row and no dupes in a row otherwise. Make sense? –  jphenow Jul 18 '11 at 13:28
    
@jphenow: And how about numbers? He put 1111 what if the text contains a number that accidentally has doubles or even more repetitions in a row? Consider telephone numbers that would be wrong in that case. –  Nobody Jul 18 '11 at 13:32
    
Not worried about numbers, but redacting the statement about consonants, just worried about all letters –  jphenow Jul 18 '11 at 13:34
    
This is fantastic. I'll give this one a shot when I get back to my computer at home - stupid internship office doesn't allow ssh out... –  jphenow Jul 18 '11 at 14:06
    
@jphenow: No prob, thanks for giving me a real computer science problem to solve instead of "how 2 make matricks in python??!?!". –  machine yearning Jul 18 '11 at 14:09

use a regular expression:

>>> import re
>>> re.sub(r'(.)\1\1+', r'\1\1', 'jeeeep')
'jeep'
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The solution for a single character using groupby:

>>> from itertools import groupby
>>> s = 'jeeeeeeeep'
>>> ''.join(c for c, unused in groupby(s))
'jep'

And the one for maximum of two characters:

''.join(''.join(list(group)[:2]) for unused, group in groupby(s))
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Here is a Sh+Perl solution, I'm afraid I don't know Python:

echo jjjjeeeeeeeeppppp | perl -ne 's/(.)\1+/\1\1/g; print $_;'

The key is the regex that finds (.)\1+ and replaces it by \1\1, globally.

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Use regular expressions along with a key press event!

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1  
Key press event? –  Jacob Jul 18 '11 at 13:20
1  
I don't think he wants to limit the input from a keyboard. –  Nobody Jul 18 '11 at 13:21

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