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For example, I have:

string = "123ab4 5"

I want to be able to get the following list:

["123","ab","4","5"]

rather than list(string) giving me:

["1","2","3","a","b","4"," ","5"]
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4  
what are the rules? what have you tried so far? –  deathApril Nov 19 '12 at 16:17
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5 Answers

up vote 8 down vote accepted

Find one or more adjacent digits (\d+), or if that fails find non-digit, non-space characters ([^\d\s]+).

>>> string = '123ab4 5'
>>> import re
>>> re.findall('\d+|[^\d\s]+', string)
['123', 'ab', '4', '5']

If you don't want the letters joined together, try this:

>>> re.findall('\d+|\S', string)
['123', 'a', 'b', '4', '5']
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You don't need to have the \s there, and you shouldn't shadow built-ins using string as a variable name. - Also, your script does not catch the space character. –  Inbar Rose Nov 19 '12 at 16:24
    
@InbarRose string isn't a builtin as such (it's a deprecated module for those purposes) - and import string is rarely used... it's more used as from string import where those are constants or maketrans –  Jon Clements Nov 19 '12 at 16:28
    
@john - you are correct, my apologies. it seems i also misread the question. you have the correct solution to this problem. :) +1 –  Inbar Rose Nov 19 '12 at 16:28
1  
Until it's no longer a module included with Python at all, I think it still probably shouldn't be used as a variable. Just my 2 cents. –  acjay Nov 19 '12 at 16:58
    
Quick question before I have to go (OP here). How would I go about splitting the string in the middle into "a","b"? –  Wrath Nov 19 '12 at 17:03
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The other solutions are definitely easier. If you want something far less straightforward, you could try something like this:

>>> import string
>>> from itertools import groupby
>>> s = "123ab4 5"
>>> result = [''.join(list(v)) for _, v in groupby(s, key=lambda x: x.isdigit())]
>>> result = [x for x in result if x not in string.whitespace]
>>> result
['123', 'ab', '4', '5']
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"If you want something far less straightforward..." -- Love it. –  John Kugelman Nov 19 '12 at 16:24
    
@JohnKugelman Haha, wanted to make sure that everyone knew it was a horrible solution (although that much was clear :) ) –  RocketDonkey Nov 19 '12 at 16:25
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You could do:

>>> [el for el in re.split('(\d+)', string) if el.strip()]
['123', 'ab', '4', '5']
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This doesn't split a b c correctly. –  John Kugelman Nov 19 '12 at 16:30
    
@JohnKugelman true, but since given the question, it's ambigious as to whether they should be or not.... –  Jon Clements Nov 19 '12 at 16:34
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This will give the split you want:

re.findall(r'\d+|[a-zA-Z]+', "123ab4 5")

['123', 'ab', '4', '5']
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you can do a few things here, you can

1. iterate the list and make groups of numbers as you go, appending them to your results list.

not a great solution.

2. use regular expressions.

implementation of 2:

>>> import re
>>> s = "123ab4 5"
>>> re.findall('\d+|[^\d]', s)
['123', 'a', 'b', '4', ' ', '5']

you want to grab any group which is at least 1 number \d+ or any other character.

edit

John beat me to the correct solution first. and its a wonderful solution.

i will leave this here though because someone else might misunderstand the question and look for an answer to what i thought was written also. i was under the impression the OP wanted to capture only groups of numbers, and leave everything else individual.

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