Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I'm trying to match pair of digits in a string and capture them in groups, however i seem to be only able to capture the last group.

Regex:
(\d\d){1,3}

Input String: 123456 789101

Match 1: 123456
Group 1: 56

Match 2: 789101
Group 1: 01

What I want is to capture all the groups like this: Match 1: 123456
Group 1: 12
Group 2: 34
Group 3: 56

* Update
It looks like Python does not let you capture multiple groups, for example in .NET you could capture all the groups in a single pass, hence re.findall('\d\d', '123456') does the job.

share|improve this question
add comment

4 Answers

up vote 5 down vote accepted

You cannot do that using just a single regular expression. It is a special case of counting, which you cannot do with just a regex pattern. \d\d will get you:

Group1: 12 Group2: 23 Group3: 34 ...

regex library in python comes with a non-overlapping routine namely re.findall() that does the trick. as in:

     re.findall('\d\d', '123456')

will return ['12', '34', '56']

share|improve this answer
add comment
(\d{2})+(\d)?

I'm not sure how python handles its matching, but this is how i would do it

share|improve this answer
add comment

Try this:

import re
re.findall(r'\d\d','123456')
share|improve this answer
    
@ridgerunner thanks for the suggestion, I edited my answer –  Óscar López Dec 28 '11 at 3:13
add comment

Is this what you want ? :

import re

regx = re.compile('(?:(?<= )|(?<=\A)|(?<=\r)|(?<=\n))'
                  '(\d\d)(\d\d)?(\d\d)?'
                  '(?= |\Z|\r|\n)')

for s in ('   112233  58975  6677  981  897899\r',
          '\n123456 4433 789101 41586 56 21365899 362547\n',
          '0101 456899 1 7895'):
    print repr(s),'\n',regx.findall(s),'\n'

result

'   112233  58975  6677  981  897899\r' 
[('11', '22', '33'), ('66', '77', ''), ('89', '78', '99')] 

'\n123456 4433 789101 41586 56 21365899 362547\n' 
[('12', '34', '56'), ('44', '33', ''), ('78', '91', '01'), ('56', '', ''), ('36', '25', '47')] 

'0101 456899 1 7895' 
[('01', '01', ''), ('45', '68', '99'), ('78', '95', '')] 
share|improve this answer
add comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.