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I have a list of URLs:

URL = ['ose.co.jp/frame.html', 'tse.or.jp/english/individuals/index.html', 'traderupdates.nyse.com/?sa_campaign=/internal_ads/callouts/traderupdates']

I thought of using split('/'), but realized that it doesn't really solve the problem because I would still have to delete the portion of the URL after '/'.

The result that I am looking for is:

URL = ['ose.co.jp', 'tse.or.jp', traderupdates.nyse.com']
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I can't quite make out what your asking for, can you include the desired output? Are you looking for the host portion of the above uris? –  IfLoop Jan 1 '13 at 6:07
    
@TokenMacGuy: Updated. Hope this clarifies the question. :) –  Ting Ping Jan 1 '13 at 6:09

2 Answers 2

up vote 8 down vote accepted

If I'm not misunderstanding the question, I believe this will work fine:

for i in URL:
    a = i.split('/')[0]
    #do something

Edit: If that is your desired output, then

URL = [i.split('/')[0] for i in URL]

Will give you what you want.

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That's right! Thanks. –  Ting Ping Jan 1 '13 at 6:10
3  
if you are only interested in the first item out of the list returned by str.split, you should pass the number of splits you want, ie i.split('/', 1)[0] so that it doesn't waste any extra effort splitting the unused portion of the input string. –  IfLoop Jan 1 '13 at 6:10
    
@TokenMacGuy possible alternative is str.partition (I've never decided if it's clearer, but is almost akin to a str.split(whatever, 1) –  Jon Clements Jan 1 '13 at 6:14
    
@JonClements: The main point of partition is that it returns the a 3-tuple including the separator. So I think the rule of thumb is: When you want the separator, use partition; when you don't, use split. –  abarnert Jan 1 '13 at 6:49
1  
@abarnert Actually - it's just come back to me now what the main difference is (it's been new years - celebrations and all that malarky - head needs to get back into gear!). str.partition as you say returns a 3-tuple, but it's guaranteed to do so. So although it doesn't apply in this case - '123'.split('x', 1)[1] will throw IndexError while '123'.partition('x')[2] will get you an empty string... –  Jon Clements Jan 1 '13 at 10:25

If you are only interested in the first item in the list, you can look forward to use str.partition.

Here would be an implementation of using it

>>> URL = ['ose.co.jp/frame.html', 'tse.or.jp/english/individuals/index.html', 'traderupdates.nyse.com/?sa_campaign=/internal_ads/callouts/traderupdates']
>>> [e.partition("/")[0] for e in URL]
['ose.co.jp', 'tse.or.jp', 'traderupdates.nyse.com']
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