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.

Looking for a python regex pattern. Seems like it has to exist, but it has me stumped.

If I need to find an address, and the strings I am searching can be of the form

address_is_after_123
 - or -
123_address_is_before

Note, there could be more than two permutations, but I'm hoping a solution for two permutations could be extended to more.

I could simply create multiple regexes, but I'd ideally like a single regex. The best I've got is:

m = re.match("(?:address_is_after_(\d+)|(\d+)_address_is_before)",text)

This works, but the I have to test whether m.group(1) or m.group(2) has the value. Is there a way to write the regex so that if it matches I can grab the address without additional processing?

share|improve this question

2 Answers 2

up vote 2 down vote accepted

You could do it with lookarounds, provided that the length of the lookbehind ("address_is_after_") is constant:

>>> m = re.search(r"(?<=address_is_after_)\d+|\d+(?=_address_is_before)",text)
>>> m.group(0)
'123'
share|improve this answer
    
Interesting. I've been thinking in terms of re.match(), not re.search(). Bit of a paradigm shift! –  Brett Stottlemyer Sep 2 '12 at 15:24
    
This doesn't really have to do with search vs. match, only the latter is unable to match anywhere but at the start of the string, and since the number can be in the middle of the string, I need to use search. You can add anchors in the lookaround: (?<=^address_is_after_) –  Tim Pietzcker Sep 2 '12 at 15:29
    
I guess what I mean is that I'm used to using match() and pulling out substrings using m.group(1 [or 2 or 3]). I usually ignore group(0). So using lookarounds and having group(0) be what I'm looking for seems backwords. But since that is what it takes to solve the problem, I'm having to flip my way of thinking. You are right, the flip is not do to match vs. search, it is do to the lookarounds. –  Brett Stottlemyer Sep 2 '12 at 15:53

You don't need to test which group has the match. An unmatched group returns None, which is treated as false by or:

>>> for text in ["address_is_after_123", "123_address_is_before"]:
...             m = re.match("(?:address_is_after_(\d+)|(\d+)_address_is_before)",text)
...             print(m.group(1) or m.group(2))
...
123
123
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.