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I'm having trouble with this regex and I think I'm almost there.

m =re.findall('[a-z]{6}\.[a-z]{3}\.[a-z]{2} (?=\" target)', 'http://domain.com.uy " target')

This gives me the "exact" output that I want. that is domain.com.uy but obviously this is just an example since [a-z]{6} just matches the previous 6 characters and this is not what I want.

I want it to return domain.com.uy so basically the instruction would be match any character until "/" is encountered (backwards).

Edit:

m =re.findall('\w+\.[a-z]{3}\.[a-z]{2} (?=\" target)', 'http://domain.com.uy " target')

Is very close to what I want but wont match "_" or "-".

For the sake of completeness I do not need the http://

I hope the question is clear enough, if I left anything open to interpretation please ask for any clarification needed!

Thank in advance!

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See also: codinghorror.com/blog/2008/06/… –  Johnsyweb Jun 22 '11 at 20:03

4 Answers 4

up vote 1 down vote accepted

Another option is to use a positive lookbehind such as (?<=//):

>>> re.search(r'(?<=//).+(?= \" target)', 
...           'http://domain.com.uy " target').group(0)
'domain.com.uy'

Note that this will match slashes within the url itself, if that's desired:

>>> re.search(r'(?<=//).+(?= \" target)',
...           'http://example.com/path/to/whatever " target').group(0)
'example.com/path/to/whatever'

If you just wanted the bare domain, without any path or query parameters, you could use r'(?<=//)([^/]+)(/.*)?(?= \" target)' and capture group 1:

>>> re.search(r'(?<=//)([^/]+)(/.*)?(?= \" target)',
...           'http://example.com/path/to/whatever " target').groups()
('example.com', '/path/to/whatever')
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The first one is exactly what I want!! Thank you very much, I was clearly using a very strange approach! Thanks! +1 –  Trufa Jun 22 '11 at 19:47

If regular expressions are not a requirement and you simply wish to extract the FQDN from the URL in Python. Use urlparse and str.split():

>>> from urlparse import urlparse
>>> url = 'http://domain.com.uy " target'
>>> urlparse(url)
ParseResult(scheme='http', netloc='domain.com.uy " target', path='', params='', query='', fragment='')

This has broken up the URL into its component parts. We want netloc:

>>> urlparse(url).netloc
'domain.com.uy " target'

Split on whitespace:

>>> urlparse(url).netloc.split()
['domain.com.uy', '"', 'target']

Just the first part:

>>> urlparse(url).netloc.split()[0]
'domain.com.uy'
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I'll give this a look, regex are definitely not requeried I just though it might be a good option in this case. –  Trufa Jun 22 '11 at 19:59
2  
Whenever regexp and url are used in the same sentence it usually sounds like a bad idea. +1 –  yarian Jun 22 '11 at 20:01
1  
Ask what you really want to know - not "how do I make technique X work to solve problem Y?", but "how do I solve problem Y?". –  Karl Knechtel Jun 22 '11 at 21:59

try this (maybe you need to escape / in Python):

/([^/]*)$
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This will also catch the slash, which was unwanted. :> –  Leif Jun 22 '11 at 19:44
    
Maybe I'm doning something stupid, I'm not really good with regex they take me a lot of time, you meant like this m =re.findall('/([^/]*)$[a-z]\.[a-z]{3}\.[a-z]{2} (?=\" target)', 'http://domain.com.uy " target') because it is not working. –  Trufa Jun 22 '11 at 19:45
    
@Leif It won't catch slash, it wont work if there is no slash at all. I agree that you can just remove it. –  Thresh Jun 22 '11 at 19:46
    
@Trufa I don't know syntax of Python regex, but I gave you a whole regex, not an addition to yours :-) Do you want to get domain name? because everything from the end till slash in not the same thing. –  Thresh Jun 22 '11 at 19:48
    
@Thresh: Ohh sorry, I suck at reading regex it takes me an eternity, I'll try out yours now knowing it's not an extension. Sorry and thanks! –  Trufa Jun 22 '11 at 19:49

It's as simple as this:

[^/]+(?= " target)

But be aware that http://domain.com/folder/site.php will not return the domain. And remember to escape the regex properly in a string.

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Sorry, I'm not really good with regex, tehy take me a lot of time to understand you meant like this? m =re.findall('[^/]+$[a-z]\.[a-z]{3}\.[a-z]{2} (?=\" target)', 'http://domain.com.uy " target') because its not working. –  Trufa Jun 22 '11 at 19:44
    
Sorry, a misunderstanding. Correcting this. You have to use my whole regex btw. –  Leif Jun 22 '11 at 19:48

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