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I have a bunch of (ugly if I may say) urls, which I would like to clean up using python regex. So, my urls look something like:

http://www.thisislink1.com/this/is/sublink1/1
http://www.thisislink2.co.uk/this/is/sublink1s/klinks
http://www.thisislinkd.co/this/is/sublink1/hotlinks/2
http://www.thisislinkf.com.uk/this/is/sublink1d/morelink
http://www.thisislink1.co.in/this/is/sublink1c/mylink
....

What I'd like to do is clean up these urls, so that the final link looks like:

http://www.thisislink1.com
http://www.thisislink2.co.uk
http://www.thisislinkd.co
http://www.thisislinkf.de
http://www.thisislink1.us
....

and I was wondering how I can achieve this in a pythonic way. Sorry if this is a 101 question - I am new to pytho regex structures.

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4 Answers 4

Why use regex?

>>> import urlparse
>>> url = 'http://www.thisislinkd.co/this/is/sublink1/hotlinks/2'
>>> urlparse.urlsplit(url)
SplitResult(scheme='http', netloc='www.thisislinkd.co', path='/this/is/sublink1/hotlinks/2', query='', fragment='')
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That is awesome. I did not know about urlparse - very handy I must say. Thanks again. I have accepted your answer. urlparse.urlsplit(url).netloc solved the problem. –  AJW Dec 7 '12 at 12:46
    
just seen that @unutbu got there first (by a few seconds), go with theirs! –  Jon Clements Dec 7 '12 at 12:47
    
ok Jon - I will accept unutbu's answer - Thanks again for your help tho! –  AJW Dec 7 '12 at 12:49

Use urlparse.urlsplit:

In [3]: import urlparse    

In [8]: url = urlparse.urlsplit('http://www.thisislink1.com/this/is/sublink1/1')

In [9]: url.netloc
Out[9]: 'www.thisislink1.com'

In Python3 it would be

import urllib.parse as parse
url = parse.urlsplit('http://www.thisislink1.com/this/is/sublink1/1')
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Thanks. Thanks additionally for the py3 code! –  AJW Dec 7 '12 at 12:49

You should use a URL parser like others have suggested but for completeness here is a solution with regex:

import re

url='http://www.thisislink1.com/this/is/sublink1/1'

re.sub('(?<![/:])/.*','',url)

>>> 'http://www.thisislink1.com'

Explanation:

Match everything after and including the first forwardslash that is not preceded by a : or / and replace it with nothing ''.

(?<![/:]) # Negative lookbehind for '/' or ':'
/.*       # Match a / followed by anything
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Maybe use something like this:

result = re.sub(r"(?m)(http://(www)?\..*?)/", r"\1", subject)
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