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Weird - I think what I want to do is a fairly common task but I've found no reference on the web. I have text, with punctuation, and I want an array of the words. i.e - "Hey, you - what are you doing here!?" should be['hey', 'you', 'what', 'are', 'you', 'doing', 'here']. But python's split() only works with one argument... so I have all words with punctuation after I split with white space. Any ideas?

Thanks

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2  
docs.python.org/library/re.html –  mtasic85 Jun 29 '09 at 18:03

22 Answers 22

up vote 175 down vote accepted

A case where regular expressions are justified:

import re
DATA = "Hey, you - what are you doing here!?"
print re.findall(r"[\w']+", DATA)
# Prints ['Hey', 'you', 'what', 'are', 'you', 'doing', 'here']

[Edited to include ' in the word characters - thanks, Danosaure.]

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1  
Thanks. Still interested, though - how can I implement the algorithm used in this module? And why does it not appear in the string module? –  ooboo Jun 29 '09 at 18:06
10  
Regular expressions can be daunting at first, but are very powerful. The regular expression '\w+' means "a word character (a-z etc.) repeated one or more times". There's a HOWTO on Python regular expressions here: amk.ca/python/howto/regex –  RichieHindle Jul 4 '09 at 19:44
4  
This will wrongly split the words I don't like this. –  Danosaure Jan 13 '13 at 4:00
1  
@Danosaure: Good point - edited. –  RichieHindle Jan 14 '13 at 9:00
21  
This isn't the answer to the question. This is an answer to a different question, that happens to work for this particular situation. It's as if someone asked "how do I make a left turn" and the top-voted answer was "take the next three right turns." It works for certain intersections, but it doesn't give the needed answer. Ironically, the answer is in re, just not findall. The answer below giving re.split() is superior. –  Jesse Dhillon Sep 9 '13 at 18:47

re.split()

re.split(pattern, string[, maxsplit=0])

Split string by the occurrences of pattern. If capturing parentheses are used in pattern, then the text of all groups in the pattern are also returned as part of the resulting list. If maxsplit is nonzero, at most maxsplit splits occur, and the remainder of the string is returned as the final element of the list. (Incompatibility note: in the original Python 1.5 release, maxsplit was ignored. This has been fixed in later releases.)

>>> re.split('\W+', 'Words, words, words.')
['Words', 'words', 'words', '']
>>> re.split('(\W+)', 'Words, words, words.')
['Words', ', ', 'words', ', ', 'words', '.', '']
>>> re.split('\W+', 'Words, words, words.', 1)
['Words', 'words, words.']
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5  
This solution have the advantage of being easily adapted to split on underscores too, something the findall solution does not: print re.split("\W+|_", "Testing this_thing")' yields: ['Testing', 'this', 'thing'] –  Emil Stenström Jan 5 '12 at 0:26
1  
+1 for simplicity. –  Yosh Dec 24 '13 at 3:20
    
clearly the best solution –  Robin Winslow Oct 23 at 20:23

Another quick way to do this without a regexp is to replace the characters first, as below:

>>> 'a;bcd,ef g'.replace(';',' ').replace(',',' ').split()
['a', 'bcd', 'ef', 'g']
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3  
This would be awfully tedious. –  Michael Younkin Mar 7 '12 at 0:42
13  
Quick and dirty but perfect for my case (my separators were a small, known set) –  andybak Sep 1 '12 at 9:34
    
Perfect for the case where you don't have access to the RE library, such as certain small microcontrollers. :-) –  tudor May 1 at 3:40

Another way, without regex

import string
punc = string.punctuation
thestring = "Hey, you - what are you doing here!?"
s = list(thestring)
''.join([o for o in s if not o in punc]).split()
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7  
This solution is actually better than the accepted one. It works with no ASCII chars, try "Hey, you - what are you doing here María!?". The accepted solution will not work with the previous example. –  Christopher Ramírez Jun 19 '12 at 2:03
2  
I think there is a small issue here ... Your code will append characters that are separated with punctuation and thus won't split them ... If I'm not wrong, your last line should be: ''.join([o if not o in string.punctuation else ' ' for o in s]).split() –  cedbeu Mar 22 '13 at 16:39
    
The regular expression library can be made to accept Unicode conventions for characters if necessary. Additionally, this has the same problem the accepted solution used to have: as it is now, it splits on apostrophes. You may want o for o in s if (o in not string.punctuation or o == "'"), but then it's getting too complicated for a one-liner if we add in cedbeu's patch also. –  Daniel H Apr 16 '13 at 5:03
    
There is another issue here. Even when we take into account the changes of @cedbeu, this code doesn't work if the string is something like "First Name,Last Name,Street Address,City,State,Zip Code" and we want to split only on a comma ,. Desired output would be: ['First Name', 'Last Name', 'Street Address', 'City', 'State', 'Zip Code'] What we get instead:['First', 'Name', 'Last', 'Name', 'Street', 'Address', 'City', 'State', 'Zip', 'Code'] –  Neftas Feb 7 at 23:34

Pro-Tip: Use string.translate for the fastest string operations Python has.

Some proof...

First, the slow way (sorry pprzemek):

>>> import timeit
>>> S = 'Hey, you - what are you doing here!?'
>>> def my_split(s, seps):
...     res = [s]
...     for sep in seps:
...         s, res = res, []
...         for seq in s:
...             res += seq.split(sep)
...     return res
... 
>>> timeit.Timer('my_split(S, punctuation)', 'from __main__ import S,my_split; from string import punctuation').timeit()
54.65477919578552

Next, we use re.findall() (as given by the suggested answer). MUCH faster:

>>> timeit.Timer('findall(r"\w+", S)', 'from __main__ import S; from re import findall').timeit()
4.194725036621094

Finally, we use translate:

>>> from string import translate,maketrans,punctuation 
>>> T = maketrans(punctuation, ' '*len(punctuation))
>>> timeit.Timer('translate(S, T).split()', 'from __main__ import S,T,translate').timeit()
1.2835021018981934

Explanation:

string.replace is implemented in C and unlike many string manipulation functions in Python, string.replace does not produce a new string. So it's about as fast as you can get for string substitution.

It's a bit awkward, though, as it needs a translation table in order to do this magic. You can make a translation table with the maketrans() convenience function. The objective here is to translate all unwanted characters to spaces. A one-for-one substitute. Again, no new data is produced. So this is fast!

Next, we use good old split(). split() by default will operate on all whitespace characters, grouping them together for the split. The result will be the list of words that you want. And this approach is almost 4x faster than re.findall()!

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3  
I made a test here, and if you need to use unicode, using patt = re.compile(ur'\w+', re.UNICODE); patt.findall(S) is faster than translate, because you must encode the string before applying transform, and decode each item in the list after the split to go back to unicode. –  Rafael S. Calsaverini Jan 15 '13 at 11:31
    
You can one-liner the translate implementation and ensure that S isn't among the splitters with: s.translate(''.join([(chr(i) if chr(i) not in seps else seps[0]) for i in range(256)])).split(seps[0]) –  hobs Apr 1 at 22:56

So many answers, yet I can't find any solution that does efficiently what the title of the questions literally asks for (splitting with multiple separators—instead many answers remove anything that is not a word). So here is an answer to the question in the title ("string split with multiple separators") that relies on Python's standard and efficient re module:

>>> import re
>>> filter(None, re.split("[, \-!?:]+", "Hey, you - what are you doing here!?"))  # Multiple separators
['Hey', 'you', 'what', 'are', 'you', 'doing', 'here']

where the \- in the regular expression is here to prevent the special interpretation of - as a range indicator, and where filter(None, …) removes the empty strings possibly created by leading and trailing separators (since empty strings have a false boolean value). The re.split() precisely "splits with multiple separators", as asked for in the question title. The re module is much more efficient than doing Python loops and tests "by hand".

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3  
This should have been the accepted answer. –  luis.espinal Jul 31 at 1:01
    
"I can't find any solution that does efficiently what the title of the questions literally asks" - second answer does that, posted 5 years ago: stackoverflow.com/a/1059601/2642204. –  BartoszKP Dec 2 at 14:00
    
This answer does not split at delimiters (from a set of multiple delimiters): it instead splits at anything that's not alphanumeric. That said, I agree that the intent of the original poster is probably to keep only the words, instead of removing some punctuation marks. –  EOL Dec 2 at 14:31
    
EOL: I think this answer does split on a set of multiple delimeters. If you add non-alphanumerics to the string that are not specified, like underscore, they are not split, as expected. –  GravityWell Dec 7 at 20:33
1  
@EOL: I just realized I was confused by your comment "This answer does not split..." I thought "this" referred to your re.split answer, but I now realize you meant gimel's answer. I think THIS answer (the answer to which I'm commenting) is the best answer :) –  GravityWell Dec 8 at 12:38

Kinda late answer :), but I had a similar dilemma and didn't want to use 're' module.

def my_split(s, seps):
    res = [s]
    for sep in seps:
        s, res = res, []
        for seq in s:
            res += seq.split(sep)
    return res

print my_split('1111  2222 3333;4444,5555;6666', [' ', ';', ','])
['1111', '', '2222', '3333', '4444', '5555', '6666']
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fyi: I will use a function very similiar to your suggestion in an IDLE-extension. –  Gonzo Apr 11 '11 at 13:21
    
I like this. Just a note, the order of separators matters. Sorry if that's obvious. –  crizCraig Jun 30 '11 at 23:39
    
Why not use the re module, which is both way faster and clearer (not that regular expressions are especially clear, but because it is way shorter and direct)? –  EOL Nov 18 at 14:03
join = lambda x: sum(x,[])  # a.k.a. flatten1([[1],[2,3],[4]]) -> [1,2,3,4]
# ...alternatively...
join = lambda lists: [x for l in lists for x in l]

Then this becomes a three-liner:

fragments = [text]
for token in tokens:
    fragments = join(f.split(token) for f in fragments)

Explanation

This is what in Haskell is known as the List monad. The idea behind the monad is that once "in the monad" you "stay in the monad" until something takes you out. For example in Haskell, say you map the python range(n) -> [1,2,...,n] function over a List. If the result is a List, it will be append to the List in-place, so you'd get something like map(range, [3,4,1]) -> [0,1,2,0,1,2,3,0]. This is known as map-append (or mappend, or maybe something like that). The idea here is that you've got this operation you're applying (splitting on a token), and whenever you do that, you join the result into the list.

You can abstract this into a function and have tokens=string.punctuation by default.

Advantages of this approach:

  • This approach (unlike naive regex-based approaches) can work with arbitrary-length tokens (which regex can also do with more advanced syntax).
  • You are not restricted to mere tokens; you could have arbitrary logic in place of each token, for example one of the "tokens" could be a function which splits according to how nested parentheses are.
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Neat Haskell solution, but IMO this can be written more clearly without mappend in Python. –  Vlad the Impala Oct 5 '11 at 0:21
    
@Goose: the point was that the 2-line function map_then_append can be used to make a problem a 2-liner, as well as many other problems much easier to write. Most of the other solutions use the regular expression re module, which isn't python. But I have been unhappy with how I make my answer seem inelegant and bloaty when it's really concise... I'm going to edit it... –  ninjagecko Oct 5 '11 at 2:09

try this:

import re

phrase = "Hey, you - what are you doing here!?"
matches = re.findall('\w+', phrase)
print matches

this will print ['Hey', 'you', 'what', 'are', 'you', 'doing', 'here']

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Use replace two times:

a = '11223FROM33344INTO33222FROM3344'
a.replace('FROM', ',,,').replace('INTO', ',,,').split(',,,')

results in:

['11223', '33344', '33222', '3344']
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I'm re-acquainting myself with Python and needed the same thing. The findall solution may be better, but I came up with this:

tokens = [x.strip() for x in data.split(',')]
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Clever, should work on all English grammatical constructs I can think of except an em-dash with no spaces—this, for example. (Workaroundable.) –  ninjagecko Jun 24 '13 at 17:53

Another way to achieve this is to use the Natural Language Tool Kit (nltk).

import nltk
data= "Hey, you - what are you doing here!?"
word_tokens = nltk.tokenize.regexp_tokenize(data, r'\w+')
print word_tokens

This prints: ['Hey', 'you', 'what', 'are', 'you', 'doing', 'here']

The biggest drawback of this method is that you need to install the nltk package.

The benefits are that you can do a lot of fun stuff with the rest of the nltk package once you get your tokens.

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got same problem as @ooboo and find this topic @ghostdog74 inspired me, maybe someone finds my solution usefull

str1='adj:sg:nom:m1.m2.m3:pos'
splitat=':.'
''.join([ s if s not in splitat else ' ' for s in str1]).split()

input something in space place and split using same character if you dont want to split at spaces.

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Here is my go at a split with multiple deliminaters:

def msplit( str, delims ):
  w = ''
  for z in str:
    if z not in delims:
        w += z
    else:
        if len(w) > 0 :
            yield w
        w = ''
  if len(w) > 0 :
    yield w
share|improve this answer
def get_words(s):
    l = []
    w = ''
    for c in s.lower():
        if c in '-!?,. ':
            if w != '': 
                l.append(w)
            w = ''
        else:
            w = w + c
    if w != '': 
        l.append(w)
    return l

Here is the usage:

>>> s = "Hey, you - what are you doing here!?"
>>> print get_words(s)
['hey', 'you', 'what', 'are', 'you', 'doing', 'here']
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You want Python's RegEx module's findall() method:

http://www.regular-expressions.info/python.html

Example

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1  
Python's "RegEx" module? Python once had a "regex" module which was provided but deprecated up until 2.5 when it vanished. –  John Machin Jun 29 '09 at 23:01
    
"re"? As in the one included in 2.6.2? docs.python.org/library/re.html The one included in the bleeding edge 3.2a0? docs.python.org/dev/py3k/library/re.html Something tells me it's not deprecated and is, in fact, the definitive RegEx module for Python. –  Tyson Jun 30 '09 at 7:42

I think the following is the best answer to suite your needs :

\W+ maybe suitable for this case, but may not be suitable for other cases.

filter(None, re.compile('[ |,|\-|!|?]').split( "Hey, you - what are you doing here!?")
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I agree, the \w and \W solutions are not an answer to (the title of) the question. Note that in your answer, | should be removed (you're thinking of expr0|expr1 instead of [char0 char1…]). Furthermore, there is no need to compile() the regular expression. –  EOL May 18 at 9:51

Heres my take on it....

def split_string(source,splitlist):
    splits = frozenset(splitlist)
    l = []
    s1 = ""
    for c in source:
        if c in splits:
            if s1:
                l.append(s1)
                s1 = ""
        else:
            print s1
            s1 = s1 + c
    if s1:
        l.append(s1)
    return l

>>>out = split_string("First Name,Last Name,Street Address,City,State,Zip Code",",")
>>>print out
>>>['First Name', 'Last Name', 'Street Address', 'City', 'State', 'Zip Code']
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I like re, but here is my solution without it:

from itertools import groupby
sep = ' ,-!?'
s = "Hey, you - what are you doing here!?"
print [''.join(g) for k, g in groupby(s, sep.__contains__) if not k]

sep.__contains__ is a method used by 'in' operator. Basically it is the same as

lambda ch: ch in sep

but is more convenient here.

groupby gets our string and function. It splits string in groups using that function: whenever a value of function changes - a new group is generated. So, sep.__contains__ is exactly what we need.

groupby returns a sequence of pairs, where pair[0] is a result of our function and pair[1] is a group. Using 'if not k' we filter out groups with separators (because a result of sep.__contains__ is True on separators). Well, that's all - now we have a sequence of groups where each one is a word (group is actually an iterable so we use join to convert it to string).

This solution is quite general, because it uses a function to separate string (you can split by any condition you need). Also, it doesn't create intermediate strings/lists (you can remove join and the expression will become lazy, since each group is an iterator)

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I like the replace() way the best. The following procedure changes all separators defined in a string splitlist to the first separator in splitlist and then splits the text on that one separator. It also accounts for if splitlist happens to be an empty string. It returns a list of words, with no empty strings in it.

def split_string(text, splitlist):
    for sep in splitlist:
        text = text.replace(sep, splitlist[0])
    return filter(None, text.split(splitlist[0])) if splitlist else [text]
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First of all, I don't think that your intention is to actually use punctuation as delimiters in the split functions. Your description suggests that you simply want to eliminate punctuation from the resultant strings.

I come across this pretty frequently, and my usual solution doesn't require re.

One-liner lambda function w/ list comprehension:

(requires import string):

split_without_punc = lambda text : [word.strip(string.punctuation) for word in 
    text.split() if word.strip(string.punctuation) != '']

# Call function
split_without_punc("Hey, you -- what are you doing?!")
# returns ['Hey', 'you', 'what', 'are', 'you', 'doing']


Function (traditional)

As a traditional function, this is still only two lines with a list comprehension (in addition to import string):

def split_without_punctuation2(text):

    # Split by whitespace
    words = text.split()

    # Strip punctuation from each word
    return [word.strip(ignore) for word in words if word.strip(ignore) != '']

split_without_punctuation2("Hey, you -- what are you doing?!")
# returns ['Hey', 'you', 'what', 'are', 'you', 'doing']

It will also naturally leave contractions and hyphenated words intact. You can always use text.replace("-", " ") to turn hyphens into spaces before the split.

General Function w/o Lambda or List Comprehension

For a more general solution (where you can specify the characters to eliminate), and without a list comprehension, you get:

def split_without(text: str, ignore: str) -> list:

    # Split by whitespace
    split_string = text.split()

    # Strip any characters in the ignore string, and ignore empty strings
    words = []
    for word in split_string:
        word = word.strip(ignore)
        if word != '':
            words.append(word)

    return words

# Situation-specific call to general function
import string
final_text = split_without("Hey, you - what are you doing?!", string.punctuation)
# returns ['Hey', 'you', 'what', 'are', 'you', 'doing']

Of course, you can always generalize the lambda function to any specified string of characters as well.

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Use list comprehensions for this stuff...it seems easier

data= "Hey, you - what are you doing here!?"
tokens = [c for c in data if c not in (',', ' ', '-', '!', '?')]

I find this easier to comprehend (read..maintain) than using regexp, simply because I am not that good at regexp...which is the case with most of us :) . Also if you know what set of separators you might be using, you can keep them in a set. With a very huge set, this might be slower...but the 're' module is slow as well.

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1  
OK...this is WRONG!!!!, it works only if you want to get characters out...not words. My mistake. –  Vishal Jul 21 '09 at 7:02
    
for using list comprehension, use what ghostdog74 has given. –  Vishal Jul 21 '09 at 8:22

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