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I wanna replace all the chars which occur more than one time,I used Python's re.sub and my regex looks like this data=re.sub('(.)\1+','##',data), But nothing happened...
Here is my Text:

Text

※※※※※※※※※※※※※※※※※Chapter One※※※※※※※※※※※※※※※※※※

This is the begining...

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2 Answers 2

up vote 3 down vote accepted

You need to use raw string here, 1 is interpreted as octal and then its ASCII value present at its integer equivalent is used in the string.

>>> '\1'
'\x01'
>>> chr(01)
'\x01'
>>> '\101'
'A'
>>> chr(0101)
'A'

Use raw string to fix this:

>>> '(.)\1+'
'(.)\x01+'
>>> r'(.)\1+'  #Note the `r`
'(.)\\1+'
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1  
\1 is interpreted as octal 1, which is then represented as \x01 (hexadecimal). Try \141 for size. –  Martijn Pieters Jan 10 '14 at 8:45

Use a raw string, so the regex engine interprets backslashes instead of the Python parser. Just put an r in front of the string:

data=re.sub(r'(.)\1+', '##', data)
            ^ this r is the important bit

Otherwise, \1 is interpreted as character value 1 instead of a backreference.

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