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How to rip a URL like http://www.facebook.com/pages/create.php to have a result like this: www.facebook.com?

I tried this way, but doesn't work:

line.split('/', 2)[2]

My problem is probably with that two forward slashes // and some of the URLs start from the www strings.

Thanks for your help, Adia

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possible duplicate of How to split a web address –  SilentGhost Jan 19 '11 at 14:19
    
Not quite a duplicate, we should address how to handle the missing 'http://' for the URLs that 'start from the the www string'. Just using urlparse doesn't cover that. –  Paul McGuire Jan 19 '11 at 14:25
    
possible duplicate of Slicing URL with Python –  tzot Feb 13 '11 at 11:45
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4 Answers 4

up vote 8 down vote accepted

You might want to look at Python's urlparse module.

>>> from urlparse import urlparse
>>> o = urlparse('http://www.facebook.com/pages/create.php')
>>> o.netloc
'www.facebook.com'
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Yes, it is better to use appropriate tools for common tasks. –  eumiro Jan 19 '11 at 14:17
4  
Note that some of the URLs 'start with the www string'. If the leading 'http://' is missing, urlparse fails to parse this. –  Paul McGuire Jan 19 '11 at 14:26
    
Yes, actually some of the URLs don't have the http://. –  Adia Jan 19 '11 at 14:30
    
@Paul McGuire : How must I do to vote on a comment? I want to upvote your's –  eyquem Jan 19 '11 at 17:13
1  
@Adia : « How to rip a URL LIKE http:// www.facebook.com/pages/create.php » and « Yes, actually some of the URLs don't have the http:// » are contradictory. So grifaton gave an exact answer to your question and a false answer to your problem. But I won't downvote anybody, though. –  eyquem Jan 19 '11 at 17:22
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Probably the best bet would be returning the server part from a regex, ie,

\/[a-z0-9\-\.]*[a-zA-Z0-9\-]+\.[a-z]{2,3}\/

That can cover www.facebook.com, facebook.com, some-domain.tv, www.some-domain.net, etc.

NOTE: the head and trailing slashes are part of the regex and not regex separators.

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Try:

line.split("//", 1)[-1].split("/", 1)[0]
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I would do:

ch[7 if ch[0:7]=='http://' else 0:].partition('/')[0]

I’m not sure it’s valid for all the cases you’ll encounter

Also:

ch[(ch[0:7]=='http://')*7:].partition('/')[0]
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