81

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?

1
  • 1
    For this example (not the general case) c.replace(' ','').partition(',') Commented Nov 21, 2016 at 8:59

11 Answers 11

103

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.
4
  • 9
    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. Commented May 15, 2012 at 8:21
  • Sorry! could you explain how exactly this is working?
    – Curious
    Commented Feb 5, 2016 at 2:36
  • @Curious: to be honest, no I coiuld not. Because, where should I start? What do you know? Which part is a problem for you? What do you want to achieve?
    – user3850
    Commented Feb 5, 2016 at 19:01
  • Never mind! I understood this myself! Thanks for the reply :)
    – Curious
    Commented Feb 5, 2016 at 20:39
49

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.

1
  • 3
    Upvoted because the \w+|[^\w\s] construct is more generic than the accepted answer but afaik in python 3 the re.UNICODE shouldn't be necessary
    – rloth
    Commented Jan 5, 2015 at 16:21
13

If you are going to work in English (or some other common languages), you can use NLTK (there are many other tools to do this such as FreeLing).

import nltk
nltk.download('punkt')
sentence = "help, me"
nltk.word_tokenize(sentence)
1
  • The (original) above code fails for me with an error about needing the PUNKT resource. I'll suggest an edit to include nltk.download('punkt') after import nltk.
    – sh37211
    Commented Oct 6, 2021 at 18:15
7

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.

1
  • 1
    plus 1 for grouping punctuation. Commented Apr 4, 2018 at 3:27
3

This worked for me

import re

i = 'Sandra went to the hallway.!!'
l = re.split('(\W+?)', i)
print(l)

empty = ['', ' ']
l = [el for el in l if el not in empty]
print(l)

Output:
['Sandra', ' ', 'went', ' ', 'to', ' ', 'the', ' ', 'hallway', '.', '', '!', '', '!', '']
['Sandra', 'went', 'to', 'the', 'hallway', '.', '!', '!']
1

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', '!']
3
  • 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.
    – user3850
    Commented Dec 15, 2008 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.
    – user3850
    Commented Dec 15, 2008 at 12:17
  • 1
    You need to call if word: result.append(word) after the loop ends, else the last word is not in result. Commented May 25, 2017 at 12:15
0

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.

0

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']
0

Try this:

string_big = "One of Python's coolest features is the string format operator  This operator is unique to strings"
my_list =[]
x = len(string_big)
poistion_ofspace = 0
while poistion_ofspace < x:
    for i in range(poistion_ofspace,x):
        if string_big[i] == ' ':
            break
        else:
            continue
    print string_big[poistion_ofspace:(i+1)]
    my_list.append(string_big[poistion_ofspace:(i+1)])
    poistion_ofspace = i+1

print my_list
-1

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..

-1

In case you are not allowed to import anything,use this!

word = "Hello,there"
word = word.replace("," , " ," )
word = word.replace("." , " .")
return word.split()

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