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import re

ip6 = "1234:0678:0000:0000:00cd:0000:0000:0000"
zeroes = re.search("(:?0000)+", ip6)
print zeroes.group(0)

:0000:0000

I'm trying to find the longest sequence of four zeroes separated by colons. The string contains a sequence of three such groups, yet only two groups are printed. Why?

EDIT: It's printing :0000:0000 because that's the first match in the string -- but I thought regexps always looked for the longest match?

share|improve this question
    
Changed (^0000|:0000) to (:?0000) – John Gordon Dec 16 '11 at 19:40
    
Actually, an NFA regex engine (such as the one in Python) always returns: "the longest, left-most" match. – ridgerunner Dec 16 '11 at 19:50
    
@ridgerunner Source for that? – proc-self-maps Dec 16 '11 at 20:50
2  
@denniston.t This is explained in Jeffrey Friedl, "Mastering Regular Expressions". Unless the regex engine would find all the matches first, and then choose the longest among those, it is quite natural that it would give you the first match, no matter whether it's the longest of them all. Among all the matches that start at a given position in the string, it does however give you the longest match, unless you use non-greedy operators such as *?. – drmirror Dec 16 '11 at 22:01
    
@denniston.t - I got it from: Mastering Regular Expressions (3rd Edition). Just as drmirror explained. – ridgerunner Dec 16 '11 at 22:29
up vote 2 down vote accepted

Answer updated to work in Python 2.6:

p = re.compile('((:?0000)+)')
longestword = ""
for word in p.findall(ip6):
    if len(word[0])>len(longestword):
        longestword = word[0]
print longestword
share|improve this answer
1  
(:?0000)+ ------ – Jazz Man Dec 16 '11 at 19:27
    
That list comprehension gives me a syntax error on the equals sign. Is it a python3 thing? – John Gordon Dec 16 '11 at 19:47
    
This doesn't work in my instance of python 3, so I'd say it's not. – Adam Wagner Dec 16 '11 at 20:13
    
Yeah I just tested it my interpreter and it didn't work so I've written one which doesn't use a list comprehension – silleknarf Dec 16 '11 at 20:24
1  
Python doesn't allow assignments in expressions. The reason is the common mistake of using = when you meant == in other languages. – FakeRainBrigand Dec 16 '11 at 20:26

If you're not stuck on regular-expressions, you could use itertools.groupby:

from itertools import groupby

ip6 = "1234:0678:0000:0000:00cd:0000:0000:0000"

longest = 0
for section, elems in groupby(ip6.split(':')):
    if section == '0000':
        longest = len(list(elems))

print longest  # Prints '3', the number of times '0000' repeats the most.
               # you could, of course, generate a string of 0000:... from this

I'm sure this can be boiled down to something a bit more elegant, but I think this communicates the point.

share|improve this answer

I'm using Python 2.7.3
How about using re.finditer()

$ uname -r
3.2.0-4-amd64


#!/usr/bin/env python

import re

ip6 = "1234:0678:0000:0000:00cd:0000:0000:0000"

iters = re.finditer("(:?0000)+", ip6)
for match in iters:
    print 'match.group()  -> ',match.group()
share|improve this answer

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