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 write a regular expression that matches a string of the form ##-## (where # corresponds to any digit), with the caveat that the second pair of digits can't be "00". The expression should be usable with re.search and should capture the first occurrence of the matching pattern.

Here's what I've got (which works):

the_regex = re.compile("(\d\d-(?:0[123456789]|[123456789]\d))")

I'm not wild about the branch or the long character groups. Can anyone suggest a better (more clear, or optionally, more efficient) regex?

(Yes, this is a micro-optimization, and I've heeded the proper warnings from Knuth.)

share|improve this question
1  
Should it match when the string contains something like: 123-123? (You current expression (and all the answers thus far) enforces no boundary conditions and will match the: 23-12 within: 123-123.) –  ridgerunner Feb 13 '14 at 17:15
    
@ridgerunner good point, but in this case the strings it's matching against are guaranteed not to have that case. –  dcrosta Feb 13 '14 at 18:01

3 Answers 3

up vote 1 down vote accepted

One other possibility... i wasn't sure if this would work, but it appears to.... it uses lookahead assertions:

r2 = re.compile(r"(\d\d-(?!00)\d\d)")
l = re.findall(r2, 'On 02-14 I went looking for 12-00 and 14-245')
print l
['02-14', '14-24']

However... it doesn't appear to be any faster (comparing to above solution). In fact, the original solution is the fastest here:

# Martijn/Aaron's solution
In [20]: %timeit l = re.findall(the_regex2, '11-01 11-99 10-29 01-99 00-00 11-00')
100000 loops, best of 3: 3.55 µs per loop

# Above version
In [21]: %timeit l = re.findall(r2, '11-01 11-99 10-29 01-99 00-00 11-00')
100000 loops, best of 3: 3.49 µs per loop

#Original post's version.
In [25]: the_regex = re.compile("(\d\d-(?:0[123456789]|[123456789]\d))")
In [26]: %timeit l = re.findall(the_regex, '11-01 11-99 10-29 01-99 00-00 11-00')    
100000 loops, best of 3: 3.41 µs per loop
share|improve this answer
    
Or re.compile("(\d\d-(?:(?!00)\d\d))") to keep the (?:) in OPs. –  WKPlus Feb 13 '14 at 15:35
    
I don't think that hurts anything, but I don't think it's necessary... the original is just done that way because the | has to be in a group, and if you don't mark it as non-capturing it becomes a separate group. The \d\d aren't in a separate group in this one, and the (?!00) term is already non-capturing, so it doesn't actually add anything, I think. –  Corley Brigman Feb 13 '14 at 15:40
    
In my test cases (I should have shown some example data), this proved to be the fastest (by a fairly small margin, admittedly). –  dcrosta Feb 13 '14 at 18:01

The long character group is easily solved with using a character range instead:

r"(\d\d-(?:0[1-9]|[1-9]\d))"

but you cannot avoid the branch here.

share|improve this answer
    
beat me by three minutes. –  Aaron Hall Feb 13 '14 at 15:14
the_regex = re.compile("(\d\d-(?:0[1-9]|[1-9]\d))")



l = re.findall(the_regex, '11-01 11-99 10-29 01-99 00-00 11-00')
print l

shows:

['11-01', '11-99', '10-29', '01-99']

if you use re.finditer, it returns a generator, which may be better for you:

it = re.finditer(the_regex, '11-01 11-99 10-29 01-99 00-00 11-00')
print type(it)
print list(i.group(0) for i in it)

shows this:

<type 'callable-iterator'>
['11-01', '11-99', '10-29', '01-99']
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.