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I've been lurking for a few weeks, and decided to join in order to be more hands-on with my learning of Python.

What I'm trying to do is take a single string, containing several web addresses, and come up with a list containing all the addresses with a domain name of 2-4 characters. The hypothetical addresses are not all simple.com types, they may contain multiple periods. Here's a sample string that I wish to convert:

urlstring = 'albatross.org,boogaloo.boolean.net,zenoparadox.hercules.gr,takeawalkon.the.wildside,fuzzy.logic.it,bronzeandiron.age,areyou.serious'

To get the addresses in a list: list(urlstring.split(',')). But I can't determine how to discern the length of the domain name and delete it or not based on that length. Is it necessary to split each address string into substrings by split('.')? =/

I'm pretty sure that this is somehow answered elsewhere, but I couldn't really find something exactly similar. I apologize for the super noobish question, and promise that my questions will improve in quality as I learn.

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3 Answers 3

up vote 1 down vote accepted

Assuming you only care about the length of the TLD:

[url for url in urlstring.split(',') if 2 <= len(url.split('.')[-2]) <= 4]
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Edit: I found the problem with your answer: len(url.split('.')[x]), x should be -1, not -2. –  Sophia Dec 7 '10 at 3:14
    
Instead of using .split and grabbing the last item, you can use a limited .rsplit so that only two items are produced. Thus, [url for url in urlstring.split(',') if 2 <= len(url.rsplit('.', 1)[1]) <= 4]. This will raise an exception if there is no '.' in a "url" at all; the original code will silently accept 'com' and silently reject 'bacon'. –  Karl Knechtel Dec 7 '10 at 6:07
    
@Goethe: "foobar.com".split('.')[-2] returns "foobar", which is what I thought the OP wanted... –  jtdubs Dec 7 '10 at 16:09
    
@karl-knechtel: Good point about rsplit. It wasn't clear whether that OP wanted to count the subdomain as part of the length. I was assuming he only wanted the TLD. –  jtdubs Dec 7 '10 at 16:10
    
I just wanted to check the TLD, but with -2 as the index in your slice, it only returns the address with the longest TLD –  Sophia Dec 7 '10 at 22:10

Or if you want to get all the urls that have at least one desired, or length-correct, domain name, you could try the following code:

def len_is_valid(url, min_len, max_len):
    return any(map(lambda x: min_len<=len(x)<=max_len,url))

urlstring = 'albatross.org,boogaloo.boolean.net,zenoparadox.hercules.gr,takeawalkon.the.wildside,fuzzy.logic.it,bronzeandiron.age,areyou.serious'

url_list = [url for url in urlstring.split(',')
        if len_is_valid(url.split('.'), 2, 4)]

print url_list
# ['albatross.org', 'boogaloo.boolean.net', 'zenoparadox.hercules.gr',
# 'takeawalkon.the.wildside', 'fuzzy.logic.it', 'bronzeandiron.age']
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Dont know which one would be faster or the better approach but here is one using regex:

import re

urls = 'albatross.org,boogaloo.boolean.net,bedei9.paralex.zenoparadox.herc.gr,takeawalkon.the.wildside,fuzzy.logic.it,bronzeandiron.age,areyou.serious,mydom.dom.net,hun.com'
regex = re.compile('''[[a-zA-Z0-9\-\.]+\.]*[a-zA-Z0-9\-]{2,4}\.[^\.\,]+''')

url_list = regex.findall(urls)
print(url_list)

Note: I used re.compile but if you are only parsing it once then you dont have to and you can simply do re.findall(patern, urls) and leave it a one liner (after import re of course):

url_list = re.findall('''[[a-zA-Z0-9\-\.]+\.]*[a-zA-Z0-9\-]{2,4}\.[^\.\,]+''', urls)

I also modified the string you gave to make sure it handled several repeats of abc.abd.abdcde,bdc....

If some regex guru is watching and you think you can do better, please do post it, I would love a faster/more accurate solution :).

Also I would like to know from the python gurus which method is faster in this case and which one would handle larger strings better.

Should I post a question asking that? :)

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