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I was wondering what is the easiest way(probably regex) to separate numbers in a string in a below way. Example: "abc12de34f5" to: ["abc", "12", "de", "34", "f", "5"]

however if there is conjuction mark in the string seperate this way: Example: "abc1,2de3.4f5" to: ["abc", "1,2", "de", "3.4", "f", "5"]

Thanks for any suggestions and comments

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2 Answers 2

>>> import re
>>> s = "abc12de34f5"
>>> re.findall(r'[\d\W]+|[a-zA-Z]+', s)
['abc', '12', 'de', '34', 'f', '5']
>>> t = "abc1,2de3.4f5"
>>> re.findall(r'[\d\W]+|[a-zA-Z]+', t)
['abc', '1,2', 'de', '3.4', 'f', '5']
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1  
@eumiro: Good call. fixed. –  Joel Cornett Feb 22 '13 at 10:28
    
Thanks @Joel Cornett, works fine, however I need to do this on the unicode text(cyrilic), how can I use that regula expression in this case? I guess u[a-яА-Я] won't work. Thanks –  Bold O Feb 22 '13 at 10:59
    
@BoldO: You can modify [a-z] for any range of characters, although you might have to do several ranges (i.e. [a-zA-ZÀ-ῼ]) to match the characters you want. Also, make sure to specify the re.UNICODE flag on re.findall() in order to get \d and \W to work correctly. –  Joel Cornett Feb 22 '13 at 18:14

A non -regex solution using itertools.groupby

>>> st = "abc1,2de3.4f5"
>>> [''.join(v) for _, v in groupby(st,key = str.isalpha)]
['abc', '1,2', 'de', '3.4', 'f', '5']
>>> st = "abc12de34f5"
>>> [''.join(v) for _, v in groupby(st,key = str.isalpha)]
['abc', '12', 'de', '34', 'f', '5']
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Thanks @Abhijit, works fine, however I need to do this on the unicode text(cyrilic), any ideas how ? Thanks –  Bold O Feb 22 '13 at 11:02
    
@BoldO: Try unicode.isalpha instead of str.isalpha (If using Py2.X) –  Abhijit Feb 22 '13 at 11:13
    
Works , thank a lot @Abhijit! –  Bold O Feb 22 '13 at 11:17
    
@BoldO: If it works, try upvoting and accept the answer –  Abhijit Feb 22 '13 at 11:29

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