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Ok how do i use regex to remove http AND/OR www just to get into

Assume x as any kind of TLD or cTLD

Input example:





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str.lstrip([chars]) Return a copy of the string with leading characters removed. The chars argument is a string specifying the set of characters to be removed. If omitted or None, the chars argument defaults to removing whitespace. The chars argument is not a prefix; rather, all combinations of its values are stripped: >>> ' spacious '.lstrip() 'spacious ' >>> ''.lstrip('cmowz.') '' – doniyor Jun 28 '12 at 10:09
It is worth mentioning that there are also www-pub, www-groups, www2, www3 and other www like prefixes – Romeno Mar 29 '13 at 11:39

3 Answers 3

up vote 2 down vote accepted

If you really want to use regular expressions instead of urlparse() or splitting the string:

>>> domain = ''
>>> re.match(r'(?:\w*://)?(?:.*\.)?([a-zA-Z-1-9]*\.[a-zA-Z]{1,}).*', domain).groups()[0]

The regular expression might a bit simplistic, but works. It's also not replacing, but I think getting the domain out is easier.

To support domains like '', one can do the following:

>>> p = re.compile(r'(?:\w*://)?(?:.*?\.)?(?:([a-zA-Z-1-9]*)\.)?([a-zA-Z-1-9]*\.[a-zA-Z]{1,}).*')
>>> p.match(domain).groups()

('google', '')

So you got to check the result for domains like '', and join the result again in such a case. Normal domains should work OK. I could not make it work when you have multiple subdomains.

One-liner without regular expressions or fancy modules:

>>> domain = ''
>>> '.'.join(domain.replace('http://','').split('/')[0].split('.')[-2:])
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I managed to paste the wrong regex in my initial post, but it's now edited with the correct one. – geertjanvdk Jun 28 '12 at 10:37
does it accept with http:// too? – Natsume Jun 28 '12 at 11:21
@Natsume: Well, yes, like the example shows. – geertjanvdk Jun 28 '12 at 11:23
ooh it accepts, nice, THANKS!! – Natsume Jun 28 '12 at 11:29
@Natsume Made me think, and I've updated the regex so 'http://' is optional and it accept any protocol, like 'https://' or 'bzr://'. – geertjanvdk Jun 28 '12 at 11:39

Don't use regex, use urlparse to get netloc

>>> x = ''
>>> from urlparse import urlparse
>>> o = urlparse(x)
>>> o
ParseResult(scheme='http', netloc='', path='/', params='', query='', fragment='')

and then

>>> o.netloc
>>> if o.netloc.startswith('www.'): print o.netloc[4:]
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o.netloc.startswith('www.') would be more appropriate than 'www' in o.netloc – Janne Karila Jun 28 '12 at 10:37
@Janne Karila: Thanks Janne. Lost that completely in quick answering. Thats ofcourse the correct way and not the one I presented. It is infact incorrect. – pyfunc Jun 28 '12 at 17:10
python 3.5 : from urllib.parse import urlparse – firephil yesterday

Here is one of the way to do it:

    >>>import re
    >>>str1 = 'http://www.domain.x/'
    >>>p1 = re.compile('http://www.|/')
    >>>out = p1.sub('',str1)
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Nice, but it does not cover where 'www' would be missing from the URL. – geertjanvdk Jun 28 '12 at 10:38
one can use match from re as below to check if required substring 'www' exists or not : >>> print p1.match("www") – user1242393 Jun 28 '12 at 10:45

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