Stack Overflow is a community of 4.7 million programmers, just like you, helping each other.

Join them; it only takes a minute:

Sign up
Join the Stack Overflow community to:
  1. Ask programming questions
  2. Answer and help your peers
  3. Get recognized for your expertise

I'm using python to parse out an SDDL using regex. The SDDL is always in the form of 'type:some text' repeated up to 4 times. The types can be either 'O', 'G', 'D', or 'S' followed by a colon. The 'some text' will be variable in length.

Here is a sample SDDL:

O:DAG:S-1-5-21-2021943911-1813009066-4215039422-1735D:(D;;0xf0007;;;AN)(D;;0xf0007;;;BG)S:NO_ACCESS_CONTROL

Here is what I have so far. Two of the tuples are returned just fine, but the other two - ('G','S-1-5-21-2021943911-1813009066-4215039422-1735') and ('S','NO_ACCESS_CONTROL') are not.

import re

sddl="O:DAG:S-1-5-21-2021943911-1813009066-4215039422-1735D:(D;;0xf0007;;;AN)(D;;0xf0007;;;BG)S:NO_ACCESS_CONTROL"

matches = re.findall('(.):(.*?).:',sddl)

print matches

[('O', 'DA'), ('D', '(D;;0xf0007;;;AN)(D;;0xf0007;;;BG)')]

what I'd like to have returned is

[('O', 'DA'), ('G','S-1-5-21-2021943911-1813009066-4215039422-1735'), ('D', '(D;;0xf0007;;;AN)(D;;0xf0007;;;BG)'),('S','NO_ACCESS_CONTROL')]
share|improve this question

Try the following:

(.):(.*?)(?=.:|$)

Example:

>>> re.findall(r'(.):(.*?)(?=.:|$)', sddl)
[('O', 'DA'), ('G', 'S-1-5-21-2021943911-1813009066-4215039422-1735'), ('D', '(D;;0xf0007;;;AN)(D;;0xf0007;;;BG)'), ('S', 'NO_ACCESS_CONTROL')]

This regex starts out the same way as yours, but instead of including the .: at the end as a part of the match, a lookahead is used. This is necessary because re.findall() will not return overlapping matches, so you need each match to stop before the next match begins.

The lookahead (?=.:|$) essentially means "match only if the next characters are anything followed by a colon, or we are at the end of the string".

share|improve this answer
    
Beat me to it. Was just going to submit. Nice answer. Here's an explanation to the regex: regex101.com/r/uI4qX0 – Lindrian Aug 27 '12 at 18:12
    
@Lindrian - Thanks for the link, haven't used regex101.com before, looks like a great tool! – Andrew Clark Aug 27 '12 at 18:12
    
Answer works perfectly ... Thanks. – nickebowen Aug 27 '12 at 18:19

It seems like using regex isn't the best solution to this problem. Really, all you want to do is split across the colons and then do some transformations on the resulting list.

chunks = sddl.split(':')
pairs = [(chunks[i][-1], chunks[i+1][:-1] \
                             if i < (len(chunks) - 2) \
                             else chunks[i+1]) 
               for i in range(0, len(chunks) - 1)]
share|improve this answer

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.