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I'm looking for an efficient way to chance a string such that all sequences of more than 2 equal characters are cut off after the first 2.

Some input->output examples are:

hellooooooooo -> helloo
woooohhooooo -> woohhoo

I'm currently looping over the characters, but it's a bit slow. Does anyone have another solution (regexp or something else)

EDIT: current code:

word_new = ""
        for i in range(0,len(word)-2):    
            if not word[i] == word[i+1] == word[i+2]:
                word_new = word_new+word[i]
        for i in range(len(word)-2,len(word)):
            word_new = word_new + word[i]
share|improve this question
    
Could you post your current code? – Simone Nov 25 '10 at 15:00
up vote 6 down vote accepted

Edit: after applying helpful comments

import re

def ReplaceThreeOrMore(s):
    # pattern to look for three or more repetitions of any character, including
    # newlines.
    pattern = re.compile(r"(.)\1{2,}", re.DOTALL) 
    return pattern.sub(r"\1\1", s)

(original response here) Try something like this:

import re

# look for a character followed by at least one repetition of itself.
pattern = re.compile(r"(\w)\1+")

# a function to perform the substitution we need:
def repl(matchObj):
   char = matchObj.group(1)
   return "%s%s" % (char, char)

>>> pattern.sub(repl, "Foooooooooootball")
'Football'
share|improve this answer
    
You can use this pattern (\w)\1{2,} to match just those characters that are in group of 3 or more. You pattern hits pairs too. – alpha-mouse Nov 25 '10 at 15:06
    
I think you meant pattern.sub(repl, "Foooooooooootball") in the last line, but other than that, great code! – EdoDodo Nov 25 '10 at 15:06
    
@Edo -- thanks for the catch; corrected. @alpha-mouse - true, but effectively a no-op. (replaces a pair with the same pair) – bgporter Nov 25 '10 at 15:08
    
Thanks! that was what I was looking for. I havent really used regular expressions much. Could you tell me what the \1 means? – Bart Nov 25 '10 at 15:19
1  
\w is just a single character, which will match ANY character, and is stored in group 1 (the group only has one character in it, but its still considered a group). The next part of the expression, \1+, says 'find that character repeated at least 1 more time immediately afterwords' which will result in the regular expression only matching if the character is repeated at least twice. I hope that clears it up :). – EdoDodo Nov 25 '10 at 15:48

The following code (unlike other regexp-based answers) does exactly what you say that you want: replace all sequences of more than 2 equal characters by 2 of the same.

>>> import re
>>> text = 'the numberr offf\n\n\n\ntheeee beast is 666 ...'
>>> pattern = r'(.)\1{2,}'
>>> repl = r'\1\1'
>>> re.sub(pattern, repl, text, flags=re.DOTALL)
'the numberr off\n\nthee beast is 66 ..'
>>>

You may not really want to apply this treatment to some or all of: digits, punctuation, spaces, tabs, newlines etcccc. In that case you need to replace the . by a more restrictive sub-pattern.

For example:

ASCII letters: [A-Za-z]

Any letters, depending on the locale: [^\W\d_] in conjunction with the re.LOCALE flag

share|improve this answer
    
You're right, I need to replace more than just ascii characters. Probably ascii+punctuation, but I haven't decided yet. Now I know how to do it, Thanks – Bart Nov 27 '10 at 10:57

Also using a regex, but without a function:

import re

expr = r'(.)\1{3,}'
replace_by = r'\1\1'

mystr1 = 'hellooooooo'
print re.sub(expr, replace_by, mystr1)

mystr2 = 'woooohhooooo'
print re.sub(expr, replace_by, mystr2)
share|improve this answer
    
This doesn't work on sequences of exactly three identical characters, and doesn't attack newlines. – John Machin Nov 25 '10 at 20:14

I don't really know python regexp but you could adapt this one:

s/((.)\2)\2+/$1/g;
share|improve this answer

I post my code, it's not regex but since you mentioned "or something else"...

def removeD(input):
if len(input) < 3: return input

output = input[0:2]
for i in range (2, len(input)):
    if not input[i] == input[i-1] == input[i-2]:
        output += input[i]

return output

is not as bgporter's one (no joke, I really like it more than mine!) but - at least on my system - time report that it performs always faster.

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