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I'm trying to get the domain of a given URL. For example http://www.facebook.com/someuser/ will return facebook.com. The given URL can be on these formats:

  1. https://www.facebook.com/someuser (www. is optional, but should be ignored)
  2. www.facebook.com/someuser (http:// is not required)
  3. facebook.com/someuser
  4. http://someuser.tumblr.com -> this has to return tumblr.com only

I wrote this regex:

/(?: \.|\/{2})(?: www\.)?([^\/]*)/i

But it does not work as I expect.

I can do this in parts:

  1. Remove http:// and https://, if present on string, with string.delete "/https?:\/\//i".
  2. Remove www. with string.delete "/www\./i".
  3. Get the domain with match and /(\w+\.\w+)+/i

But this won't work with subdomains. String for testing:

https://www.facebook.com/username
http://last.fm/user/username
www.google.com
facebook.com/username
http://sub.tumblr.com/
sub.tumblr.com

I need this to work with the minimum memory and processing coast as possible.

Any ideas?

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possible duplicate of stackoverflow.com/questions/569137/… a qick googling returns his link ruby-forum.com/topic/160877 –  Fredrik Pihl Jul 25 '11 at 22:32
    
@Fredrik Actually, is a little different. –  Fábio Perez Jul 25 '11 at 22:36

5 Answers 5

up vote 9 down vote accepted

Why don't you just use the URI class to do this?

URI.parse( your_uri ).host

And you're done.

Just one thing, if there's no "http://" or "https://" at the beginning of the url, you'll have to add one, or the parse method is not going to give you a host (it's going to be nil).

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Thanks! Ruby always amazes me! I need to study more about KISS (en.wikipedia.org/wiki/Keep_it_simple_stupid) –  Fábio Perez Jul 25 '11 at 22:40
    
Unfortunally, this doesn't ignore subdomains. Anyway, I'll be using this solution. –  Fábio Perez Jul 25 '11 at 23:10
2  
To ignore subdomains, try hostname.split('.').last(2).join('.'). –  Lars Haugseth Jul 26 '11 at 13:33
1  
But don't forget you could have arbitrary large subdomains, like "me.you.we.business.com". Subdomains can go 127 levels deep. –  Maurício Linhares Jul 26 '11 at 13:35

Does it have to be a regex? You could do this also.

require 'uri'
yourURL = URI.parse('https://www.facebook.com/username')
print yourURL.host
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This works for me: /^h?t?t?p?s?:?\/?\/?w?w?w?\.?(.*\.[A-Z]{2,})+[A-Z\/]/i It will always give you the domain part only Take a look at it at: http://rubular.com/r/0hudnJSgVT

To use it create a method like this, I put it in my helpers so I have access to in in the views.

def website_url(website_url)
    if website_url[/^h?t?t?p?s?:?\/?\/?w?w?w?\.?(.*\.[A-Z\/]{2,})$/i]
      website_id = $1
    end

    %Q{http://#{ website_id }}
  end
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You could use this regex:

/(\w+\.\w{2,6})(?:\/|$)/
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Not sure why you got downvoted, but your answer is technically wrong as you're not escaping your dots. Even if you did escape them, you wouldn't match facebook.com/username or the last.fm example due to that required first dot. –  pbaumann Jul 25 '11 at 23:23
    
@pbaumann, you're right. It was working in my tests but I copied it over wrong. I had to escape the . and remove the first. –  Paulpro Jul 25 '11 at 23:29

If you really wanted to use a regex, you could try something along the lines of:

test_string.scan(/\w+\.\w+(?=\/|\s|$)/) { |match| do_stuff_with(match) }

This wouldn't account for domain names such as something.co.uk but it would match everything in your test string.

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