5

I want to split a string on any combination of delimiters I provide. For example, if the string is:

s = 'This, I think,., کباب MAKES , some sense '

And the delimiters are \., ,, and \s. However I want to capture all delimiters except whitespace \s. The output should be:

['This', ',', 'I', 'think', ',.,', 'کباب', 'MAKES', ',', 'some', 'sense']

My solution so far is is using the re module:

pattern = '([\.,\s]+)'  
re.split(pattern, s)

However, this captures whitespace as well. I have tried using other patterns like [(\.)(,)\s]+ but they don't work.

Edit: @PadraicCunningham made an astute observation. For delimiters like Some text ,. , some more text, I'd only want to remove leading and trailing whitespace from ,. , and not whitespace within.

  • Could you just remove the \s initially? – eavidan Sep 25 '16 at 19:45
  • What about removing the whitespace from strings resulting from the captured result? This is not a generalized solution to the problem and it ought to 'work' here due to the simple nature of the regex. – user2864740 Sep 25 '16 at 19:48
  • @eavidan But then it does not split on whitespace. That way I'd have to run re.split('\s', ...) on each element of the returned list from the first split. – hazrmard Sep 25 '16 at 19:49
  • @user2864740 That was going to be my last resort. I wanted to know if there is a simpler/quicker way to go about it. – hazrmard Sep 25 '16 at 19:50
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    @hazrmard then how about splitting as your originally have, and then remove the whitespace? – eavidan Sep 25 '16 at 19:50
5

The following approach would be the most simple one, I suppose ...

s = 'This, I think,., کباب MAKES , some sense '
pattern = '([\.,\s]+)'
splitted = [i.strip() for i in re.split(pattern, s) if i.strip()]

The output:

['This', ',', 'I', 'think', ',.,', 'کباب', 'MAKES', ',', 'some', 'sense']
  • 1
    if i.strip() is sufficient to check for an empty string – Padraic Cunningham Sep 25 '16 at 20:09
  • @PadraicCunningham, exactly, cause after splitting we have them in the result : ... ' , ', 'some', ' ', 'sense', ' '. Single spaces and trailing spaces should be filtered out – RomanPerekhrest Sep 25 '16 at 20:13
  • strip() will not remove whitespace embedded between other delimiters. I guess you must remove them explicitly by something like [i for i in [re.sub(r'\s', '', i) for i in re.split(r'([,.\s]+)', s)] if len(i) > 0] – Thomas B Preusser Sep 25 '16 at 20:16
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    @PadraicCunningham, thanks for the edit(little optimization) – RomanPerekhrest Sep 25 '16 at 20:24
3

NOTE: According to the new edit on the question, I've improved my old regex. The new one is quite long but trust me, it's work!

I suggest a pattern below as a delimiter of the function re.split():

(?<![,\.\ ])(?=[,\.]+)|(?<=[,\.])(?![,\.\ ])|(?<=[,\.])\ +(?![,\.\ ])|(?<![,\.\ ])\ +(?=[,\.][,\.\ ]+)|(?<![,\.\ ])\ +(?![,\.\ ])

My workaround here doesn't require any pre/post space modification. The thing that make regex work is about how you order the regex expressions with or. My cursory strategy is any patterns that dealing with a space-leading will be evaluated last.

See DEMO

Additional

According to @revo's comment he provided an another shorten version of mine which is

\s+(?=[^.,\s])|\b(?:\s+|(?=[,.]))|(?<=[,.])\b

See DEMO

  • Still substitutes on Some text ,. , some. See OP's edit. – Bharel Sep 25 '16 at 20:49
  • @Bharel please check it out. – fronthem Sep 25 '16 at 22:00
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    @hazrmard another workaround. – fronthem Sep 25 '16 at 22:00
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    You could shorten your regex to this. – revo Sep 25 '16 at 22:34
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    @revo thank you! – fronthem Sep 26 '16 at 5:45
0

I believe this is the most efficient option regarding memory, and really efficient regarding computation time:

import re
from itertools import chain
from operator import methodcaller

input_str = 'This, I think,., ???? MAKES , some sense '

iterator = filter(None,  # Filter out all 'None's
                  chain.from_iterable(  # Flatten the tuples into one long iterable
                    map(methodcaller("groups"),  # Take the groups from each match.
                        re.finditer("(.*?)(?:([\.,]+)|\s+|$)", input_str))))

# If you want a list:
list(iterator)
  • 'This, I think, ., ???? MAKES , some sense ' and it breaks, check the OP's edit. – Padraic Cunningham Sep 25 '16 at 20:20
  • I did not know you can capture groups in re.split(). Good to know. – Bharel Sep 25 '16 at 20:23
  • @PadraicCunningham Fixed it. Btw, it's still more efficient regarding memory, as it takes 1/3 of the accepted solution. – Bharel Sep 25 '16 at 20:27
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    @PadraicCunningham whaaaaa since when? – Bharel Sep 25 '16 at 20:30
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    @PadraicCunningham didn't see his edit, sorry. – Bharel Sep 25 '16 at 20:31
0

Update based on OP's last edit

Python 3.*:

list(filter(None, re.split('([.,]+(?:\s+[.,]+)*)|\s', s)))

Output:

['This', ',', 'I', 'think', ',.,', 'کباب', 'MAKES', ',', 'some', 'sense']

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