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I have a Python question imagine variable x below. I want to write a regular expression that helps me finds any repeating single digits. Like 1 is not repeated, but 2 is mentioned twice, and 3 is 3 times.

x='1234328732'#a string of digits

re.search(r'(\d+).*\1', x).group(1) 

this is what I thought, but this just gives me a return of patterns. The above returns nothing cause there is no repeating patterns. But if

x='1231231234' 

it will return 123 But repeating patterns is not what I want. I want repeating digits. So for the first x it should give 2, 3 for the second x it should give 1, 2, 3

This is for learning the RE idea mostly Thx

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1 Answer 1

up vote 6 down vote accepted

may be something like this, using Counter():

>>> import re
>>> from collections import Counter

>>> x='1234328732'
>>> c=Counter(re.findall(r'\d',x))
>>> [x for x in c if c[x]>1]
['3', '2']


>>> x='1231231234' 
>>> c=Counter(re.findall(r'\d',x))
>>> [x for x in c if c[x]>1]
['1', '3', '2']
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1  
You can get rid of the regex completely: Counter(x). –  Blender Oct 29 '12 at 8:02
    
Yes but the OP wanted to use a regex. –  Bakuriu Oct 29 '12 at 8:03
1  
@Blender Yes I can, but what if the string has other characters too. –  Ashwini Chaudhary Oct 29 '12 at 8:03
    
This does do the job but can you please explain what it is actually doing? –  StudentOfScience Oct 29 '12 at 8:19
    
@StudentOfScience Counter returns an dictionary, in which keys are the unique elements of the sequence passed to it, and values are count of that key in that sequence. so for second x, Counter is something like Counter({'1': 3, '3': 3, '2': 3, '4': 1}), and you can iterate through this dictionary to find values >1. –  Ashwini Chaudhary Oct 29 '12 at 8:22

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