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In Python, I'd like to split a string using a list of separators. The separators could be either commas or semicolons. Whitespace should be removed unless it is in the middle of non-whitespace, non-separator characters, in which case it should be preserved.

Test case 1: ABC,DEF123,GHI_JKL,MN OP
Test case 2: ABC;DEF123;GHI_JKL;MN OP
Test case 3: ABC ; DEF123,GHI_JKL ; MN OP

Sounds like a case for regular expressions, which is fine, but if it's easier or cleaner to do it another way that would be even better.

Thanks!

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4 Answers 4

up vote 5 down vote accepted

This should be much faster then regex and you can pass a list of seperators as you wanted:

def split(txt, seps):
    default_sep = seps[0]

    # we skip seps[0] because that's the default seperator
    for sep in seps[1:]:
        txt = txt.replace(sep, default_sep)
    return [i.strip() for i in txt.split(default_sep)]

How to use it:

>>> split('ABC ; DEF123,GHI_JKL ; MN OP', (',', ';'))
['ABC', 'DEF123', 'GHI_JKL', 'MN OP']

Performance test:

import timeit
import re


TEST = 'ABC ; DEF123,GHI_JKL ; MN OP'
SEPS = (',', ';')


rsplit = re.compile("|".join(SEPS)).split
print(timeit.timeit(lambda: [s.strip() for s in rsplit(TEST)]))
# 1.6733491150007467

print(timeit.timeit(lambda: split(TEST, SEPS)))
# 1.6442800510003508
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1  
Very nice. Have to pick this as the best answer. thanks all! –  blah238 Jan 14 '11 at 23:45
1  
On my machine, the second solution I gave is even faster for short strings. –  Sven Marnach Jan 14 '11 at 23:48
2  
Instead of having default_sep be a parameter, just use one of the seps. eg: default_sep = seps[0] and then change the for line to for sep in seps[1:]:. –  Laurence Gonsalves Jan 14 '11 at 23:52
5  
This comparison is flawed: it compiles the regex every time through the loop. If you properly compile the regex outside of the loop (r = re.compile(",|;")), the regex version is faster. It's also the clear, ordinary, flexible solution to this which everyone understands immediately, which is an even stronger argument than performance. –  Glenn Maynard Jan 14 '11 at 23:55
1  
@blah238, @Joschua: @Glenn Maynard: On my machine: Joschua: 2.30, r=re.compile(...) in setup: 2.18, rs=re.compile(...).split in setup: 2.08. Further note: Joschua's method is O(SN) where S is the number of separators. –  John Machin Jan 15 '11 at 0:27

Using regular expressions, try

[s.strip() for s in re.split(",|;", string)]

or

[t.strip() for s in string.split(",") for t in s.split(";")]

without.

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Rather do it through string's split() to avoid importing re, e.g. 'ABC,DEF123,GHI_JKL,MN OP'.split(',|;') –  marcog Jan 14 '11 at 23:30
1  
@macrog: Wouldn't this split the string at all verbatim occurrences of ",|;"? –  Sven Marnach Jan 14 '11 at 23:32
    
Works great!! Thanks :) –  blah238 Jan 14 '11 at 23:33
    
@Sven Sorry, you are right. Silly me. :) –  marcog Jan 14 '11 at 23:34
    
But if you want to split at ,;. you have to add a for-loop for every character! –  Joschua Jan 15 '11 at 0:03
>>> re.split('\s*,\s*|\s*;\s*', 'a , b; cdf')
['a', 'b', 'cdf']
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Taking the above answer, with your test cases, you want to use a regular expression, and one or more separation characters. In your case, the separation characters seem to be ',', '|', ';' and whitespace. Whitespace in python is '\w', so the comprehension is:

import re
list = [s for s in re.split("[,|;\W]+", string)]

I cannot reply to sven's answer above, but I split on one or more of the characters inside the brackets, and don't have to use the strip() method.

Yikes, I didn't read the question correctly... Sven's answer with the strip works; mine assumes the whitespace is another separation.

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