97

I have an url like:
http://abc.hostname.com/somethings/anything/

I want to get:
hostname.com

What module can I use to accomplish this?
I want to use the same module and method in python2.

4
  • 3
    I would imaging you could use regex.
    – Mike - SMT
    Commented May 22, 2017 at 12:52
  • 2
    You can just use str.split(), it's easy
    – voltento
    Commented May 22, 2017 at 12:54
  • url.split('/')[2] will give you 'abc.hostname.com' you can extract it using split or re any method.
    – Gahan
    Commented May 22, 2017 at 12:58
  • 3
    maybe a duplicate, but better answers here Commented Mar 2, 2022 at 5:03

5 Answers 5

143

For parsing the domain of a URL in Python 3, you can use:

from urllib.parse import urlparse

domain = urlparse('http://www.example.test/foo/bar').netloc
print(domain) # --> www.example.test

However, for reliably parsing the top-level domain (example.test in this example), you need to install a specialized library (e.g., tldextract).

74

Instead of regex or hand-written solutions, you can use python's urlparse

from urllib.parse import urlparse

print(urlparse('http://abc.hostname.com/somethings/anything/'))
>> ParseResult(scheme='http', netloc='abc.hostname.com', path='/somethings/anything/', params='', query='', fragment='')

print(urlparse('http://abc.hostname.com/somethings/anything/').netloc)
>> abc.hostname.com

To get without the subdomain

t = urlparse('http://abc.hostname.com/somethings/anything/').netloc
print ('.'.join(t.split('.')[-2:]))
>> hostname.com
7
  • 7
    In Python3 the lib urlparse was renamed to urllib.parse.
    – AIpeter
    Commented Nov 21, 2018 at 15:15
  • 1
    will it work with something like test.mytest.example.com ?
    – qasimzee
    Commented May 26, 2020 at 18:31
  • 11
    It will fail with *.co.uk or *.ac.uk domains.
    – mommi84
    Commented Feb 10, 2022 at 16:25
  • 8
    t.split('.')[-2:] literally keeps only the last two substrings, so I am afraid it will just return co.uk and ac.uk, whether you prepend that or not.
    – mommi84
    Commented Feb 11, 2022 at 10:15
  • 1
    This (wrong due to the mentioned reasons) answer has so many up-votes and then we wonder why different software and websites have so many bugs...
    – user9608133
    Commented Jun 3, 2022 at 14:34
35

You can use tldextract.

Example code:

from tldextract import extract
tsd, td, tsu = extract("http://abc.hostname.com/somethings/anything/") # prints abc, hostname, com
url = td + '.' + tsu # will prints as hostname.com    
print(url)
2
  • 4
    tldextract is not a standard lib ( at least not in python 2.7 ) , I think you should mention that. Still +1
    – t.m.adam
    Commented May 22, 2017 at 17:57
  • Works well! But, getting No handlers could be found for logger "tldextract", how to handle this.
    – D09r
    Commented Jun 21, 2018 at 14:01
4

Assuming you have it in an accessible string, and assuming we want to be generic for having multiple levels on the top domain, you could:

token=my_string.split('http://')[1].split('/')[0]
top_level=token.split('.')[-2]+'.'+token.split('.')[-1]

We split first by the http:// to remove that from the string. Then we split by the / to remove all directory or sub-directory parts of the string, and then the [-2] means we take the second last token after a ., and append it with the last token, to give us the top level domain.

There are probably more graceful and robust ways to do this, for example if your website is http://.com it will break, but its a start :)

2
  • your code can be simplified more token=my_string.split('/')[2] though it will also work for ftp:// and https:// also.
    – Gahan
    Commented May 22, 2017 at 13:00
  • That is valid feedback :)
    – Henry
    Commented May 22, 2017 at 13:05
-5

Try:

from urlparse import urlparse

parsed = urlparse('http://abc.hostname.com/somethings/anything/')
domain = parsed.netloc.split(".")[-2:]
host = ".".join(domain)
print host  # will prints hostname.com
1
  • 1
    won't work with .co.uk
    – Quentin
    Commented Feb 10, 2021 at 16:48

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