149

How can I remove digits from a string?

7
  • 31
    With re: result = re.sub(r'[0-9]+', '', s) – Wiktor Stribiżew Sep 12 '17 at 9:42
  • with regex you will need to add \. also, as it can be decimal number i think. like result = re.sub(r'[0-9\.]+', '', s) – GurhanCagin Jan 16 '19 at 8:16
  • 2
    "\d" is the same in a regex as "[0-9]", so you can do result = re.sub(r"\d+", "", s) instead. Speed will probably depend on the particular string being used, but for me, re.sub took about twice as long as str.translate (slightly longer if you don't use a pre-compiled pattern). – Nathan Jul 5 '19 at 13:24
  • @WiktorStribiżew, you answer is working fine but it is adding a new line in the file. Any reason? – Lakshmi Yadav Sep 14 '20 at 10:55
  • 1
    @LakshmiYadav re.sub(r'[0-9]+', '', s) removes found matches (see the second argument that is an empty string), it can't add anything. Check your code. – Wiktor Stribiżew Sep 14 '20 at 10:57
222

Would this work for your situation?

>>> s = '12abcd405'
>>> result = ''.join([i for i in s if not i.isdigit()])
>>> result
'abcd'

This makes use of a list comprehension, and what is happening here is similar to this structure:

no_digits = []
# Iterate through the string, adding non-numbers to the no_digits list
for i in s:
    if not i.isdigit():
        no_digits.append(i)

# Now join all elements of the list with '', 
# which puts all of the characters together.
result = ''.join(no_digits)

As @AshwiniChaudhary and @KirkStrauser point out, you actually do not need to use the brackets in the one-liner, making the piece inside the parentheses a generator expression (more efficient than a list comprehension). Even if this doesn't fit the requirements for your assignment, it is something you should read about eventually :) :

>>> s = '12abcd405'
>>> result = ''.join(i for i in s if not i.isdigit())
>>> result
'abcd'
8
  • @SeanJohnson Awesome! I'm sure I learned that from somebody else on this site, so the cycle is complete :) – RocketDonkey Oct 12 '12 at 3:36
  • @RocketDonkey no need of [] – Ashwini Chaudhary Oct 12 '12 at 3:37
  • 3
    In Python 2.7 and above, you don't need the brackets around the list comprehension. You can leave them out and it becomes a generator expression. – Kirk Strauser Oct 12 '12 at 3:38
  • Fixed - thanks @AshwiniChaudhary/@KirkStrauser. – RocketDonkey Oct 12 '12 at 3:40
  • @RocketDonkey add some explanation too, just seeing the code won't help the OP I guess. – Ashwini Chaudhary Oct 12 '12 at 3:44
110

And, just to throw it in the mix, is the oft-forgotten str.translate which will work a lot faster than looping/regular expressions:

For Python 2:

from string import digits

s = 'abc123def456ghi789zero0'
res = s.translate(None, digits)
# 'abcdefghizero'

For Python 3:

from string import digits

s = 'abc123def456ghi789zero0'
remove_digits = str.maketrans('', '', digits)
res = s.translate(remove_digits)
# 'abcdefghizero'
3
  • 19
    This approach won't work in Python3. Do instead: 'abc123def456ghi789zero0'.translate({ord(k): None for k in digits}) – valignatev Feb 24 '16 at 14:23
  • 3
    Best solution for Python2. – Harsh Wardhan Jun 15 '16 at 9:09
  • Doesn't work for unicode character strings – Harry M Aug 1 '18 at 0:42
20

Not sure if your teacher allows you to use filters but...

filter(lambda x: x.isalpha(), "a1a2a3s3d4f5fg6h")

returns-

'aaasdffgh'

Much more efficient than looping...

Example:

for i in range(10):
  a.replace(str(i),'')
1
6

What about this:

out_string = filter(lambda c: not c.isdigit(), in_string)
2
  • 5
    Output is <filter object at 0x7f749e1745c0>. Python3.6 – TitanFighter Mar 15 '18 at 21:26
  • 1
    @TitanFighter You can coerce the generator into a list object by wrapping that returned object from filter into list(filter(...)) – ahlusar1989 Jun 30 '19 at 19:10
5

Just a few (others have suggested some of these)

Method 1:

''.join(i for i in myStr if not i.isdigit())

Method 2:

def removeDigits(s):
    answer = []
    for char in s:
        if not char.isdigit():
            answer.append(char)
    return ''.join(char)

Method 3:

''.join(filter(lambda x: not x.isdigit(), mystr))

Method 4:

nums = set(map(int, range(10)))
''.join(i for i in mystr if i not in nums)

Method 5:

''.join(i for i in mystr if ord(i) not in range(48, 58))
1
  • 3
    It would be worthwhile to show efficiency comparison on these. – nu everest Jan 13 '16 at 15:02
4

Say st is your unformatted string, then run

st_nodigits=''.join(i for i in st if i.isalpha())

as mentioned above. But my guess that you need something very simple so say s is your string and st_res is a string without digits, then here is your code

l = ['0','1','2','3','4','5','6','7','8','9']
st_res=""
for ch in s:
 if ch not in l:
  st_res+=ch
1

I'd love to use regex to accomplish this, but since you can only use lists, loops, functions, etc..

here's what I came up with:

stringWithNumbers="I have 10 bananas for my 5 monkeys!"
stringWithoutNumbers=''.join(c if c not in map(str,range(0,10)) else "" for c in stringWithNumbers)
print(stringWithoutNumbers) #I have  bananas for my  monkeys!
1

If i understand your question right, one way to do is break down the string in chars and then check each char in that string using a loop whether it's a string or a number and then if string save it in a variable and then once the loop is finished, display that to the user

1
  • A for-loop automatically iterates through every character of a string, so no need of breaking the string into chars. – Ashwini Chaudhary Oct 12 '12 at 3:42

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