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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?

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@Bill the Lizard: Thanks for editing –  shiva krishna Jul 5 '12 at 12:51

4 Answers 4

up vote 23 down vote accepted
>>> 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]
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Thank you very much guys that very helpful.... –  shiva krishna Jul 5 '12 at 7:26
2  
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
    
If string1 is (020) 3493, it fails. –  Hussain Mar 19 at 12:53
    
Right it was the wrong code, should ahve used re.search –  jamylak Mar 19 at 14:40
    
@Hussain well, the example only showed numbers at the fron though but anyway now it's safe either way –  jamylak Mar 19 at 14:41

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

r = "456results string789"
s = ''.join(x for x in r if x.isdigit())
print int(s)
456789
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>>> import itertools
>>> int(''.join(itertools.takewhile(lambda s: s.isdigit(), string1)))
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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? –  John La Rooy Jul 5 '12 at 7:15
1  
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
    
    
@CraigCitro I'm pretty sure regex looks a lot better and clearer in this case. I also wouldn't compare any of these solutions to the perl code you posted. –  jamylak Jul 5 '12 at 7:42
1  
I'm planning ahead for the case where the strings are thousands of characters long. –  Craig Citro Jul 5 '12 at 7:46

Iterator version

>>> import re
>>> string1 = "498results should get"
>>> [int(x.group()) for x in re.finditer(r'\d+', string1)]
[498]
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