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I am trying to get all words that have inside them at least 1 punctuation mark (or any non space, non alphanumeric character) in the beginning, middle and/or end. So for example, in this sentence

this is a wo!rd right !and| other| hello |other

the regex would return

wo!rd !and| other| |other
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up vote 6 down vote accepted

You can use this:

>>> sentence = "this is a wo!rd right !and| other| hello |other"

>>> import re

>>> re.findall("\S*[^\w\s]\S*", sentence)
['wo!rd', '!and|', 'other|', '|other']

This will find all those words, containing at least 1 non-word, non-space character. \S is same as [^\s].

Regex Explanation:

\S*      # Match 0 or more non-space character
[^\w\s]  # Match 1 non-space non-word character
\S*      # Match 0 or more non-space character
share|improve this answer
    
anything wrong with using \w*[^\w\s]\w* instead? – sofia Feb 14 '13 at 12:59
    
@sofia. Yeah. It will only match and| in !and|. ! will match \S but not \w. – Rohit Jain Feb 14 '13 at 13:00
    
yeah, you're right. Thanks :) – sofia Feb 14 '13 at 13:02

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