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I'm trying to split a string up into words and punctuation, adding the punctuation to the list produced by the split.

For instance:

>>> c = "help, me"
>>> print c.split()
['help,', 'me']

What I really want the list to look like is:

['help', ',', 'me']

So, I want the string split at whitespace with the punctuation split from the words.

I've tried to parse the string first and then run the split:

>>> for character in c:
...     if character in ".,;!?":
...             outputCharacter = " %s" % character
...     else:
...             outputCharacter = character
...     separatedPunctuation += outputCharacter
>>> print separatedPunctuation
help , me
>>> print separatedPunctuation.split()
['help', ',', 'me']

This produces the result I want, but is painfully slow on large files.

Is there a way to do this more efficiently?

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8 Answers 8

up vote 22 down vote accepted

This is more or less the way to do it:

>>> import re
>>> re.findall(r"[\w']+|[.,!?;]", "Hello, I'm a string!")
['Hello', ',', "I'm", 'a', 'string', '!']

The trick is, not to think about where to split the string, but what to include in the tokens.

Caveats:

  • The underscore (_) is considered an inner-word character. Replace \w, if you don't want that.
  • This will not work with (single) quotes in the string.
  • Put any additional punctuation marks you want to use in the right half of the regular expression.
  • Anything not explicitely mentioned in the re is silently dropped.
share|improve this answer
    
Thanks, works perfectly. –  David A Dec 15 '08 at 20:42
    
If you want to split at ANY punctuation, including ', try re.findall(r"[\w]+|[^\s\w]", "Hello, I'm a string!"). The result is ['Hello', ',', 'I', "'", 'm', 'a', 'string', '!'] Note also that digits are included in the word match. –  Codie CodeMonkey May 15 '12 at 8:21

Here is a Unicode-aware version:

re.findall(r"\w+|[^\w\s]", text, re.UNICODE)

The first alternative catches sequences of word characters (as defined by unicode, so "résumé" won't turn into ['r', 'sum']); the second catches individual non-word characters, ignoring whitespace.

Note that, unlike the top answer, this treats the single quote as separate punctuation (e.g. "I'm" -> ['I', "'", 'm']). This appears to be standard in NLP, so I consider it a feature.

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In perl-style regular expression syntax, \b matches a word boundary. This should come in handy for doing a regex-based split.

edit: I have been informed by hop that "empty matches" do not work in the split function of Python's re module. I will leave this here as information for anyone else getting stumped by this "feature".

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only it doesn't because re.split will not work with r'\b'... –  hop Dec 15 '08 at 1:09
    
What the hell? Is that a bug in re.split? In Perl, split /\b\s*/ works without any problem. –  Svante Dec 15 '08 at 1:29
    
it's kind of documented that re.split() won't split on empty matches... so, no, not /really/ a bug. –  hop Dec 15 '08 at 1:51
    
"kind of documented"? Even if it is really documented, it is still not helpful in any way, so I guess it is, in fact, a bug-redeclared-feature. –  Svante Dec 15 '08 at 2:08
    
maybe. i don't know the rationale behind it. you should have checked whether it worked in any case! i cannot remove the downvote anymore, but please consider rewording the passive-aggressive edit -- doesn't help anyone. –  hop Dec 15 '08 at 9:16

Here's my entry.

I have my doubts as to how well this will hold up in the sense of efficiency, or if it catches all cases (note the "!!!" grouped together; this may or may not be a good thing).

>>> import re
>>> import string
>>> s = "Helo, my name is Joe! and i live!!! in a button; factory:"
>>> l = [item for item in map(string.strip, re.split("(\W+)", s)) if len(item) > 0]
>>> l
['Helo', ',', 'my', 'name', 'is', 'Joe', '!', 'and', 'i', 'live', '!!!', 'in', 'a', 'button', ';', 'factory', ':']
>>>

One obvious optimization would be to compile the regex before hand (using re.compile) if you're going to be doing this on a line-by-line basis.

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Have you tried using a regex?

http://docs.python.org/library/re.html#re-syntax


By the way. Why do you need the "," at the second one? You will know that after each text is written i.e.

[0]

","

[1]

","

So if you want to add the "," you can just do it after each iteration when you use the array..

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I think you can find all the help you can imagine in the NLTK, especially since you are using python. There's a good comprehensive discussion of this issue in the tutorial.

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Here's a minor update to your implementation. If your trying to doing anything more detailed I suggest looking into the NLTK that le dorfier suggested.

This might only be a little faster since ''.join() is used in place of +=, which is known to be faster.

import string

d = "Hello, I'm a string!"

result = []
word = ''

for char in d:
    if char not in string.whitespace:
        if char not in string.ascii_letters + "'":
            if word:
                    result.append(word)
            result.append(char)
            word = ''
        else:
            word = ''.join([word,char])

    else:
        if word:
            result.append(word)
            word = ''
print result
['Hello', ',', "I'm", 'a', 'string', '!']
share|improve this answer
    
i have not profiled this, but i guess the main problem is with the char-by-char concatenation of word. i'd instead use an index and slices. –  hop Dec 15 '08 at 10:24
    
With tricks i can shave 50% off the execution time of your solution. my solution with re.findall() is still twice as fast. –  hop Dec 15 '08 at 12:17

I came up with a way to tokenize all words and \W+ patterns using \b which doesn't need hardcoding:

>>> import re
>>> sentence = 'Hello, world!'
>>> tokens = [t.strip() for t in re.findall(r'\b.*?\S.*?(?:\b|$)', sentence)]
['Hello', ',', 'world', '!']

Here .*?\S.*? is a pattern matching anything that is not a space and $ is added to match last token in a string if it's a punctuation symbol.

Note the following though -- this will group punctuation that consists of more than one symbol:

>>> print [t.strip() for t in re.findall(r'\b.*?\S.*?(?:\b|$)', '"Oh no", she said')]
['Oh', 'no', '",', 'she', 'said']

Of course, you can find and split such groups with:

>>> for token in [t.strip() for t in re.findall(r'\b.*?\S.*?(?:\b|$)', '"You can", she said')]:
...     print re.findall(r'(?:\w+|\W)', token)

['You']
['can']
['"', ',']
['she']
['said']
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