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We have a bunch of strings for example: c1309, IF1306, v1309, p1209, a1309, mo1309.
In Python, what is the best way to strip out the numbers? All I need is: c, IF, v, p, a, mo from above example.

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closed as off-topic by Ja͢ck, HamZa, Yogesh Suthar, Ocramius, Leri Aug 22 '13 at 10:17

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14  
Why is this simple question upvoted so much o_O ? Also one could just search and use the "reverse" solution of this one. –  HamZa May 31 '13 at 6:03
4  
@HamZa Simple questions are more likely to be upvoted because they can be easily and quickly observed by all users, including those not even familiar with the language. –  jamylak May 31 '13 at 6:56
    
@jamylak sad enough, a little bit jealous to be honest ... –  HamZa May 31 '13 at 7:49
5  
@HamZa this is nothing... stackoverflow.com/questions/931092/reverse-a-string-in-python/… –  jamylak May 31 '13 at 7:51
2  
@HamZa it's the bikeshed problem. –  mikeTheLiar May 31 '13 at 14:25

8 Answers 8

You can use regex:

>>> import re
>>> strs = "c1309, IF1306, v1309, p1209, a1309, mo1309"
>>> re.sub(r'\d','',strs)
'c, IF, v, p, a, mo'

or a faster version:

>>> re.sub(r'\d+','',strs)
'c, IF, v, p, a, mo'

timeit comparisons:

>>> strs = "c1309, IF1306, v1309, p1209, a1309, mo1309"*10**5

>>> %timeit re.sub(r'\d','',strs)
1 loops, best of 3: 1.23 s per loop

>>> %timeit re.sub(r'\d+','',strs)
1 loops, best of 3: 480 ms per loop

>>> %timeit ''.join([c for c in strs if not c.isdigit()])
1 loops, best of 3: 1.07 s per loop

#winner
>>> %timeit from string import digits;strs.translate(None, digits)
10 loops, best of 3: 20.4 ms per loop
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1  
many thanks Ashwini –  Can Lu May 31 '13 at 3:22
1  
Better use re.sub(r'\d+','',strs), though, for increased efficiency. –  Tim Pietzcker May 31 '13 at 9:09
1  
@TimPietzcker thanks, never knew about that. –  Ashwini Chaudhary May 31 '13 at 9:26
    
@TimPietzcker If numbers are only decimal then does re.sub(r'[0-9]+','',strs) improve speed ?? –  Grijesh Chauhan May 31 '13 at 12:36
    
@GrijeshChauhan: Probably not or at least not significantly, unless you compile the regex using re.UNICODE. –  Tim Pietzcker May 31 '13 at 12:40
>>> text = 'mo1309'
>>> ''.join([c for c in text if not c.isdigit()])
'mo'

This is faster than regex

python -m timeit -s "import re; text = 'mo1309'" "re.sub(r'\d','',text)"
100000 loops, best of 3: 3.99 usec per loop
python -m timeit -s "import re; text = 'mo1309'" "''.join([c for c in text if not c.isdigit()])"
1000000 loops, best of 3: 1.42 usec per loop
python -m timeit -s "from string import digits; text = 'mo1309'" "text.translate(None, digits)"
1000000 loops, best of 3: 0.42 usec per loop

but str.translate as suggested by @DavidSousa:

from string import digits
text.translate(None, digits)

is always the fastest in stripping characters.

Also itertools supplies a little known function called ifilterfalse

>>> from itertools import ifilterfalse
>>> ''.join(ifilterfalse(str.isdigit, text))
'mo'
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Is join with a list comprehension faster than join with a generator expression? –  Blender May 31 '13 at 3:09
    
For large strings they are almost equivalent. –  Ashwini Chaudhary May 31 '13 at 3:09
1  
@Blender stackoverflow.com/a/9061024/846892 –  Ashwini Chaudhary May 31 '13 at 3:12

I think the string method translate is more elegant than joining lists etc.

from string import digits # digits = '0123456789'
list1 = ['c1309', 'IF1306', 'v1309', 'p1209', 'a1309', 'mo1309']
list2 = [ i.translate(None, digits) for i in list1 ]
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2  
from string import digits was better (not sure why you changed it). This is the fastest way and may be arguably more elegant in Python 2, but in Python 3 it looks like: text.translate(str.maketrans('', '', digits)) –  jamylak May 31 '13 at 3:17
1  
+1 but you could use list comprehension to make it even more elegant. –  Jan Wrobel May 31 '13 at 20:27
    
@jamylak I changed it just to look more clear. –  David Sousa Jun 1 '13 at 14:19

I think this is the simplest, and will probably be the fastest too.

>>> import string
>>> s = 'c1309, IF1306, v1309, p1209, a1309, mo1309'
>>> s.translate(None, string.digits)
'c, IF, v, p, a, mo'

Note: interface of str.translate was changed to use a mapping in python3, so here is the 3 version

s.translate({ord(n): None for n in string.digits})

Or a more explicit alternative:

m = str.maketrans('', '', string.digits)
s.translate(m)
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strings = ['c1309', 'IF1306', 'v1309', 'p1209', 'a1309', 'mo1309']
stripped = [''.join(c for c in s if not c.isdigit()) for s in strings]
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If all the strings you are dealing with end with a number you can, literally, strip the number:

>>> strings = ['c1309', 'IF1306', 'v1309', 'p1209', 'a1309', 'mo1309']
>>> [s.strip("0123456789") for s in strings]
['c', 'IF', 'v', 'p', 'a', 'mo']

If you want to remove the digits only at the end of the string use rstrip. If the digits may appear inside the string then this method wont work at all.

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+1. This is probably all that the OP needs. You could also replace 0123456789 in your solution with string.digits –  1_CR May 31 '13 at 17:54

use slice notation if the numbers length is fixed and position not in the middle of string.

NUM_LEN = 4
stringsWithDigit = ["ab1234", "cde1234", "fgh5678"]
for i in stringsWithDigit:
   print i[:-NUM_LEN]

any thing else

import re
c = re.compile("[^0-9]+")
print c.findall("".join(stringsWithDigit))
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You can try this regex:

^[a-zA-Z]+

It will just take consecutive alphabets from start and neglect all the other stuff in string.

No replacement will be required.

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