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I'm processing strings like this: "125A12C15" I need to split them at boundaries between letters and numbers, e.g. this one should become ["125","A","12","C","15"].

Is there a more elegant way to do this in Python than going through it position by position and checking whether it's a letter or a number, and then concatenating accordingly? E.g. a built-in function or module for this kind of thing?

Thanks for any pointers! Lastalda

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The following (SO) article answers your question exactly ;) stackoverflow.com/questions/3340081/… gr, M. – Michael Mar 22 '13 at 14:13
up vote 18 down vote accepted

Use itertools.groupby together with str.isalpha method:

Docstring:

groupby(iterable[, keyfunc]) -> create an iterator which returns (key, sub-iterator) grouped by each value of key(value).


Docstring:

S.isalpha() -> bool

Return True if all characters in S are alphabetic and there is at least one character in S, False otherwise.


In [1]: from itertools import groupby

In [2]: s = "125A12C15"

In [3]: [''.join(g) for _, g in groupby(s, str.isalpha)]
Out[3]: ['125', 'A', '12', 'C', '15']

Or possibly re.findall or re.split from the regular expressions module:

In [4]: import re

In [5]: re.findall('\d+|\D+', s)
Out[5]: ['125', 'A', '12', 'C', '15']

In [6]: re.split('(\d+)', s)  # note that you may have to filter out the empty
                              # strings at the start/end if using re.split
Out[6]: ['', '125', 'A', '12', 'C', '15', '']

In [7]: re.split('(\D+)', s)
Out[7]: ['125', 'A', '12', 'C', '15']

As for the performance, it seems that using a regex is probably faster:

In [8]: %timeit re.findall('\d+|\D+', s*1000)
100 loops, best of 3: 2.15 ms per loop

In [9]: %timeit [''.join(g) for _, g in groupby(s*1000, str.isalpha)]
100 loops, best of 3: 8.5 ms per loop

In [10]: %timeit re.split('(\d+)', s*1000)
1000 loops, best of 3: 1.43 ms per loop
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're.findall' works nicely, thank you! – Lastalda Mar 25 '13 at 14:19

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