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I have a large string with brackets and commas and such. I want to strip all those characters but keep the spacing. How can I do this. As of now I am using

strippedList = re.sub(r'\W+', '', origList)
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And why are you not happy with your current solution? –  unwind May 6 '10 at 8:05
    
It strips spaces also. –  j00niner May 6 '10 at 8:06
    
Ah I just needed to change '' to ' '. fail Thanks man –  j00niner May 6 '10 at 8:07

4 Answers 4

re.sub(r'([^\s\w]|_)+', '', origList)
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Just as a note, that '|_' will slow down your regex. (Won't matter if the input is small, of course.) –  chrispy May 6 '10 at 10:02

The regular-expression based versions might be faster (especially if you switch to using a compiled expression), but I like this for clarity:

"".join([c for c in origList if c in string.letters or c in string.whitespace])

It's a bit weird with the join() call, but I think that is pretty idiomatic Python for converting a list of characters into a string.

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A bit faster implementation:

import re

pattern = re.compile('([^\s\w]|_)+')
strippedList = pattern.sub('', value)
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Demonstrating what characters you will get in the result:

>>> s = ''.join(chr(i) for i in range(256)) # all possible bytes
>>> re.sub(r'[^\s\w_]+','',s) # What will remain
'\t\n\x0b\x0c\r 0123456789ABCDEFGHIJKLMNOPQRSTUVWXYZ_abcdefghijklmnopqrstuvwxyz'

Docs: re.sub, Regex HOWTO: Matching Characters, Regex HOWTO: Repeating Things

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