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embed_url = 'http://www.vimeo.com/52422837'
response = re.search(r'^(http://)?(www\.)?(vimeo\.com/)?([\/\d+])', embed_url)
return response.group(4)

The response is:

5

I was hoping for

52422837

Anybody an idea? I'm really bad with regexes :S

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4 Answers 4

up vote 2 down vote accepted

Use \d+ (no brackets) to match the literal slash + digits:

response = re.search(r'^(http://)?(www\.)?(vimeo\.com/)?(\d+)', embed_url)

Result:

>>> re.search(r'^(http://)?(www\.)?(vimeo\.com/)?(\d+)', embed_url).group(4)
'52422837'

You were using a character group ([...]) where none was needed. The pattern [\/\d+] matches exactly one of /, + or a digit.

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This works.. Great.. Thanks! –  Jeroen Gerits Mar 8 '13 at 14:55

Don't reinvent the wheel!

>>> import urlparse
>>> urlparse.urlparse('http://www.vimeo.com/52422837')
ParseResult(scheme='http', netloc='www.vimeo.com', path='/52422837', params='',
query='', fragment='')

>>> urlparse.urlparse('http://www.vimeo.com/52422837').path.lstrip("/")
'52422837'
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It is possible the OP is searching in a larger body of text instead. –  Martijn Pieters Mar 8 '13 at 14:58
    
The variable name suggests that OP is searching a URL. –  Colonel Panic Mar 8 '13 at 15:00
1  
What if it is a simplified example for the purposes of the question (which would be a smart thing to do when asking a question on SO)? –  Martijn Pieters Mar 8 '13 at 15:01
    
okay.. this one is indeed better. Didn't know about urlparse.. diving in it now ;D.. Thanks –  Jeroen Gerits Mar 8 '13 at 15:04

Have you tried finishing your regexp with a dollar ($) symbol?

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To get everything after the last slash (assuming there is one) the following simple regex should do it:

[^/]*$

(Greedily grabs everything up to the end that isn't a slash.)

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