137

How can I remove all characters except numbers from string?

  • @Jan Tojnar: Can you give an example ? – João Silva Sep 21 '09 at 22:40
  • @JG: I have gtk.Entry() and i want multiply float entered into it. – Jan Tojnar Oct 3 '09 at 5:38
  • 1
    @JanTojnar use re.sub method as per answer two and explicitly list which chars to keep e.g. re.sub("[^0123456789\.]","","poo123.4and5fish") – Roger Heathcote Dec 30 '12 at 16:26

15 Answers 15

112
0

In Python 2.*, by far the fastest approach is the .translate method:

>>> x='aaa12333bb445bb54b5b52'
>>> import string
>>> all=string.maketrans('','')
>>> nodigs=all.translate(all, string.digits)
>>> x.translate(all, nodigs)
'1233344554552'
>>> 

string.maketrans makes a translation table (a string of length 256) which in this case is the same as ''.join(chr(x) for x in range(256)) (just faster to make;-). .translate applies the translation table (which here is irrelevant since all essentially means identity) AND deletes characters present in the second argument -- the key part.

.translate works very differently on Unicode strings (and strings in Python 3 -- I do wish questions specified which major-release of Python is of interest!) -- not quite this simple, not quite this fast, though still quite usable.

Back to 2.*, the performance difference is impressive...:

$ python -mtimeit -s'import string; all=string.maketrans("", ""); nodig=all.translate(all, string.digits); x="aaa12333bb445bb54b5b52"' 'x.translate(all, nodig)'
1000000 loops, best of 3: 1.04 usec per loop
$ python -mtimeit -s'import re;  x="aaa12333bb445bb54b5b52"' 're.sub(r"\D", "", x)'
100000 loops, best of 3: 7.9 usec per loop

Speeding things up by 7-8 times is hardly peanuts, so the translate method is well worth knowing and using. The other popular non-RE approach...:

$ python -mtimeit -s'x="aaa12333bb445bb54b5b52"' '"".join(i for i in x if i.isdigit())'
100000 loops, best of 3: 11.5 usec per loop

is 50% slower than RE, so the .translate approach beats it by over an order of magnitude.

In Python 3, or for Unicode, you need to pass .translate a mapping (with ordinals, not characters directly, as keys) that returns None for what you want to delete. Here's a convenient way to express this for deletion of "everything but" a few characters:

import string

class Del:
  def __init__(self, keep=string.digits):
    self.comp = dict((ord(c),c) for c in keep)
  def __getitem__(self, k):
    return self.comp.get(k)

DD = Del()

x='aaa12333bb445bb54b5b52'
x.translate(DD)

also emits '1233344554552'. However, putting this in xx.py we have...:

$ python3.1 -mtimeit -s'import re;  x="aaa12333bb445bb54b5b52"' 're.sub(r"\D", "", x)'
100000 loops, best of 3: 8.43 usec per loop
$ python3.1 -mtimeit -s'import xx; x="aaa12333bb445bb54b5b52"' 'x.translate(xx.DD)'
10000 loops, best of 3: 24.3 usec per loop

...which shows the performance advantage disappears, for this kind of "deletion" tasks, and becomes a performance decrease.

| improve this answer | |
  • 1
    @sunqiang, yes, absolutely -- there's a reason Py3k has gone to Unicode as THE text string type, instead of byte strings as in Py2 -- same reason Java and C# have always had the same "string means unicode" meme... some overhead, maybe, but MUCH better support for just about anything but English!-). – Alex Martelli Sep 21 '09 at 2:07
  • 29
    x.translate(None, string.digits) actually results in 'aaabbbbbb', which is the opposite of what is intended. – Tom Dalling Mar 26 '12 at 8:12
  • 4
    Echoing comments from Tom Dalling, your first example keeps all the undesirable characters -- does the opposite of what you said. – Chris Johnson Sep 4 '12 at 14:42
  • 3
    @RyanB.Lynch et al, the fault was with a later editor and two other users that approved said edit, which, in fact, is totally wrong. Reverted. – Nick T Apr 11 '13 at 16:38
  • 1
    overriding all builtin... not sure about that! – Andy Hayden Jun 5 '13 at 17:44
197
1

Use re.sub, like so:

>>> import re
>>> re.sub('\D', '', 'aas30dsa20')
'3020'

\D matches any non-digit character so, the code above, is essentially replacing every non-digit character for the empty string.

Or you can use filter, like so (in Python 2):

>>> filter(str.isdigit, 'aas30dsa20')
'3020'

Since in Python 3, filter returns an iterator instead of a list, you can use the following instead:

>>> ''.join(filter(str.isdigit, 'aas30dsa20'))
'3020'
| improve this answer | |
  • re is evil in such simple task, second one is the best I think, cause 'is...' methods are the fastest for strings. – f0b0s Sep 20 '09 at 12:25
  • your filter example is limited to py2k – SilentGhost Sep 20 '09 at 12:29
  • 2
    @f0b0s-iu9-info: did you timed it? on my machine (py3k) re is twice as fast than filter with isdigit, generator with isdigt is halfway between them – SilentGhost Sep 20 '09 at 12:35
  • @SilentGhost: Thanks, I was using IDLE from py2k. It's fixed now. – João Silva Sep 20 '09 at 12:35
  • 1
    @asmaier Simply use r for raw string: re.sub(r"\D+", "", "aas30dsa20") – Mitch McMabers Nov 6 '19 at 19:34
64
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s=''.join(i for i in s if i.isdigit())

Another generator variant.

| improve this answer | |
  • Killed it..+1 Would have been even better if lamda was used – Barath Ravikumar Sep 7 '16 at 19:48
17
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You can use filter:

filter(lambda x: x.isdigit(), "dasdasd2313dsa")

On python3.0 you have to join this (kinda ugly :( )

''.join(filter(lambda x: x.isdigit(), "dasdasd2313dsa"))
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  • only in py2k, in py3k it returns a generator – SilentGhost Sep 20 '09 at 12:33
  • convert str to list to make sure it works on both py2 and py3: ''.join(filter(lambda x: x.isdigit(), list("dasdasd2313dsa"))) – Luiz C. Feb 9 '17 at 18:25
13
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along the lines of bayer's answer:

''.join(i for i in s if i.isdigit())
| improve this answer | |
  • No, this won't work for negative numbers because - is not a digit. – Oli May 15 '17 at 10:09
12
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You can easily do it using Regex

>>> import re
>>> re.sub("\D","","£70,000")
70000
| improve this answer | |
  • By far the easiest way – Iorek Jul 28 '18 at 23:06
  • 5
    How is this different than João Silva's answer, which was provided 7 years earlier? – jww Jun 30 '19 at 13:10
7
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x.translate(None, string.digits)

will delete all digits from string. To delete letters and keep the digits, do this:

x.translate(None, string.letters)
| improve this answer | |
  • 3
    I get a TypeError: translate() takes exactly one argument (2 given). Why this question was upvoted in its current state is quite frustrating. – Bobort Oct 13 '16 at 15:11
  • translate changed from python 2 to 3. The syntax using this method in python 3 is x.translate(str.maketrans('', '', string.digits)) and x.translate(str.maketrans('', '', string.ascii_letters)) . Neither of these strips white space. I wouldn't really recommend this approach anymore... – ZaxR Aug 16 '18 at 19:19
5
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The op mentions in the comments that he wants to keep the decimal place. This can be done with the re.sub method (as per the second and IMHO best answer) by explicitly listing the characters to keep e.g.

>>> re.sub("[^0123456789\.]","","poo123.4and5fish")
'123.45'
| improve this answer | |
  • What about "poo123.4and.5fish"? – Jan Tojnar Jan 1 '13 at 20:22
  • In my code I check for the number of periods in the input string and raise an error if that is more than 1. – Roger Heathcote Jan 4 '13 at 11:20
4
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A fast version for Python 3:

# xx3.py
from collections import defaultdict
import string
_NoneType = type(None)

def keeper(keep):
    table = defaultdict(_NoneType)
    table.update({ord(c): c for c in keep})
    return table

digit_keeper = keeper(string.digits)

Here's a performance comparison vs. regex:

$ python3.3 -mtimeit -s'import xx3; x="aaa12333bb445bb54b5b52"' 'x.translate(xx3.digit_keeper)'
1000000 loops, best of 3: 1.02 usec per loop
$ python3.3 -mtimeit -s'import re; r = re.compile(r"\D"); x="aaa12333bb445bb54b5b52"' 'r.sub("", x)'
100000 loops, best of 3: 3.43 usec per loop

So it's a little bit more than 3 times faster than regex, for me. It's also faster than class Del above, because defaultdict does all its lookups in C, rather than (slow) Python. Here's that version on my same system, for comparison.

$ python3.3 -mtimeit -s'import xx; x="aaa12333bb445bb54b5b52"' 'x.translate(xx.DD)'
100000 loops, best of 3: 13.6 usec per loop
| improve this answer | |
3
0

Use a generator expression:

>>> s = "foo200bar"
>>> new_s = "".join(i for i in s if i in "0123456789")
| improve this answer | |
  • instead do ''.join(n for n in foo if n.isdigit()) – shxfee Apr 7 '15 at 6:33
2
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Ugly but works:

>>> s
'aaa12333bb445bb54b5b52'
>>> a = ''.join(filter(lambda x : x.isdigit(), s))
>>> a
'1233344554552'
>>>
| improve this answer | |
  • why do you do list(s)? – SilentGhost Sep 20 '09 at 12:23
  • @SilentGhost it's my misunderstanding. had it corrected thanks :) – Gant Sep 20 '09 at 12:26
  • Actually, with this method, I don't think you need to use "join." filter(lambda x: x.isdigit(), s) worked fine for me. ...oh, it's because I'm using Python 2.7. – Bobort Oct 13 '16 at 15:21
1
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$ python -mtimeit -s'import re;  x="aaa12333bb445bb54b5b52"' 're.sub(r"\D", "", x)'

100000 loops, best of 3: 2.48 usec per loop

$ python -mtimeit -s'import re; x="aaa12333bab445bb54b5b52"' '"".join(re.findall("[a-z]+",x))'

100000 loops, best of 3: 2.02 usec per loop

$ python -mtimeit -s'import re;  x="aaa12333bb445bb54b5b52"' 're.sub(r"\D", "", x)'

100000 loops, best of 3: 2.37 usec per loop

$ python -mtimeit -s'import re; x="aaa12333bab445bb54b5b52"' '"".join(re.findall("[a-z]+",x))'

100000 loops, best of 3: 1.97 usec per loop

I had observed that join is faster than sub.

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  • Why are you repeating the two methods twice? And could you describe how is your answer different from the accepted one? – Jan Tojnar Jul 16 '18 at 22:56
  • Both results the same output. But, I just wanna show that join is faster the sub method in the results. – AnilReddy Jul 17 '18 at 11:55
  • They do not, your code does the opposite. And also you have four measurements but only two methods. – Jan Tojnar Jul 17 '18 at 13:44
1
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You can read each character. If it is digit, then include it in the answer. The str.isdigit() method is a way to know if a character is digit.

your_input = '12kjkh2nnk34l34'
your_output = ''.join(c for c in your_input if c.isdigit())
print(your_output) # '1223434'
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  • how is this different from the answer by f0b0s? You should edit that answer instead if you have more information to bring – chevybow May 17 '19 at 21:13
0
0

Not a one liner but very simple:

buffer = ""
some_str = "aas30dsa20"

for char in some_str:
    if not char.isdigit():
        buffer += char

print( buffer )
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0
0

I used this. 'letters' should contain all the letters that you want to get rid of:

Output = Input.translate({ord(i): None for i in 'letters'}))

Example:

Input = "I would like 20 dollars for that suit" Output = Input.translate({ord(i): None for i in 'abcdefghijklmnopqrstuvwxzy'})) print(Output)

Output: 20

| improve this answer | |

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