59

Suppose I had a string

string1 = "498results should get" 

Now I need to get only integer values from the string like 498. Here I don't want to use list slicing because the integer values may increase like these examples:

string2 = "49867results should get" 
string3 = "497543results should get" 

So I want to get only integer values out from the string exactly in the same order. I mean like 498,49867,497543 from string1,string2,string3 respectively.

Can anyone let me know how to do this in a one or two lines?

0
125
>>> import re
>>> string1 = "498results should get"
>>> int(re.search(r'\d+', string1).group())
498

If there are multiple integers in the string:

>>> map(int, re.findall(r'\d+', string1))
[498]
6
  • 3
    this is not exactly correct, yes it will do for string starting with a integer, but if the integer is in the middle of the string, it won't do. Maybe it should be better to use int(re.search(r'\d+', string1).group())
    – eLRuLL
    Mar 20 '14 at 17:38
  • 1
    If string1 is (020) 3493, it fails.
    – Hussain
    Mar 19 '15 at 12:53
  • Right it was the wrong code, should ahve used re.search
    – jamylak
    Mar 19 '15 at 14:40
  • 1
    @Hussain well, the example only showed numbers at the fron though but anyway now it's safe either way
    – jamylak
    Mar 19 '15 at 14:41
  • 2
    This will work fine. But, one should check if result of re.search is not None. Otherwise, it'll throw an AttributeError ('NoneType' object has no attribute 'group') if there is no digit present in the string after accessing .group().
    – Mohsin
    Jun 15 '17 at 10:14
50

An answer taken from ChristopheD here: https://stackoverflow.com/a/2500023/1225603

r = "456results string789"
s = ''.join(x for x in r if x.isdigit())
print int(s)
456789
19

Here's your one-liner, without using any regular expressions, which can get expensive at times:

>>> ''.join(filter(str.isdigit, "1234GAgade5312djdl0"))

returns:

'123453120'
18

if you have multiple sets of numbers then this is another option

>>> import re
>>> print(re.findall('\d+', 'xyz123abc456def789'))
['123', '456', '789']

its no good for floating point number strings though.

9

Iterator version

>>> import re
>>> string1 = "498results should get"
>>> [int(x.group()) for x in re.finditer(r'\d+', string1)]
[498]
7
>>> import itertools
>>> int(''.join(itertools.takewhile(lambda s: s.isdigit(), string1)))
4
  • 1
    This will only work if the number is at the start of the string. Also, why not use str.isdigit instead of the lambda? Jul 5 '12 at 7:15
  • 2
    This could also be written as int(''.join(itertools.takewhile(str.isdigit, string1))). I would never actually use either method since this is overcomplicating it.
    – jamylak
    Jul 5 '12 at 7:17
  • 1
    I'm planning ahead for the case where the strings are thousands of characters long. Jul 5 '12 at 7:46
3

With python 3.6, these two lines return a list (may be empty)

>>[int(x) for x in re.findall('\d+', your_string)]

Similar to

>>list(map(int, re.findall('\d+', your_string))
0
def function(string):  
    final = ''  
    for i in string:  
        try:   
            final += str(int(i))   
        except ValueError:  
            return int(final)  
print(function("4983results should get"))  
2
  • not sure why you had to do return int(final) just returning return final also works.
    – AhmFM
    Nov 20 '20 at 0:40
  • also can you explain what is making it bring only digits?
    – AhmFM
    Nov 20 '20 at 0:41
0

this approach uses list comprehension, just pass the string as argument to the function and it will return a list of integers in that string.

def getIntegers(string):
        numbers = [int(x) for x in string.split() if x.isnumeric()]
        return numbers

Like this

print(getIntegers('this text contains some numbers like 3 5 and 7'))

Output

[3, 5, 7]

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