199

In my Django app, I need to get the host name from the referrer in request.META.get('HTTP_REFERER') along with its protocol so that from URLs like:

  • https://docs.google.com/spreadsheet/ccc?key=blah-blah-blah-blah#gid=1
  • https://stackoverflow.com/questions/1234567/blah-blah-blah-blah
  • http://www.example.com
  • https://www.other-domain.example/whatever/blah/blah/?v1=0&v2=blah+blah

I should get:

  • https://docs.google.com/
  • https://stackoverflow.com/
  • http://www.example.com
  • https://www.other-domain.example/

I looked over other related questions and found about urlparse, but that didn't do the trick since

>>> urlparse(request.META.get('HTTP_REFERER')).hostname
'docs.google.com'

16 Answers 16

357

You should be able to do it with urlparse (docs: python2, python3):

from urllib.parse import urlparse
# from urlparse import urlparse  # Python 2
parsed_uri = urlparse('http://stackoverflow.com/questions/1234567/blah-blah-blah-blah' )
result = '{uri.scheme}://{uri.netloc}/'.format(uri=parsed_uri)
print(result)

# gives
'http://stackoverflow.com/'
5
  • this answer adds a / to the third example http://www.domain.com, but I think this might be a shortcoming of the question, not of the answer. Mar 9, 2012 at 1:36
  • @TokenMacGuy: ya, my bad... didn't notice the missing /
    – Gerard
    Mar 9, 2012 at 3:16
  • 15
    I don't think this is a good solution, as netloc is not domain: try urlparse.urlparse('http://user:pass@example.com:8080') and find it gives parts like 'user:pass@' and ':8080'
    – starrify
    Oct 21, 2014 at 8:02
  • 27
    The urlparse module is renamed to urllib.parse in Python 3. So, from urllib.parse import urlparse Jul 21, 2015 at 21:37
  • This answers what the author meant to ask, but not what was actually stated. For those looking for domain name and not hostname (as this solution provides) I suggest looking at dm03514's answer that is currently below. Python's urlparse cannot give you domain names. Something that seems an oversight.
    – Scone
    Jul 18, 2018 at 18:27
94

https://github.com/john-kurkowski/tldextract

This is a more verbose version of urlparse. It detects domains and subdomains for you.

From their documentation:

>>> import tldextract
>>> tldextract.extract('http://forums.news.cnn.com/')
ExtractResult(subdomain='forums.news', domain='cnn', suffix='com')
>>> tldextract.extract('http://forums.bbc.co.uk/') # United Kingdom
ExtractResult(subdomain='forums', domain='bbc', suffix='co.uk')
>>> tldextract.extract('http://www.worldbank.org.kg/') # Kyrgyzstan
ExtractResult(subdomain='www', domain='worldbank', suffix='org.kg')

ExtractResult is a namedtuple, so it's simple to access the parts you want.

>>> ext = tldextract.extract('http://forums.bbc.co.uk')
>>> ext.domain
'bbc'
>>> '.'.join(ext[:2]) # rejoin subdomain and domain
'forums.bbc'
1
  • 2
    This is the correct answer for the question as written, how to get the DOMAIN name. The chosen solution provides the HOSTNAME, which I believe is what the author wanted in the first place.
    – Scone
    Jul 18, 2018 at 18:29
51

Python3 using urlsplit:

from urllib.parse import urlsplit
url = "http://stackoverflow.com/questions/9626535/get-domain-name-from-url"
base_url = "{0.scheme}://{0.netloc}/".format(urlsplit(url))
print(base_url)
# http://stackoverflow.com/
0
31
>>> import urlparse
>>> url = 'http://stackoverflow.com/questions/1234567/blah-blah-blah-blah'
>>> urlparse.urljoin(url, '/')
'http://stackoverflow.com/'
2
  • 4
    For Python 3 the import is from urllib.parse import urlparse.
    – Jeff Bowen
    Nov 6, 2018 at 22:22
  • The argument doesn't seem intuitive, but it works great as a very simple native solution Aug 26, 2022 at 19:25
24

Pure string operations :):

>>> url = "http://stackoverflow.com/questions/9626535/get-domain-name-from-url"
>>> url.split("//")[-1].split("/")[0].split('?')[0]
'stackoverflow.com'
>>> url = "stackoverflow.com/questions/9626535/get-domain-name-from-url"
>>> url.split("//")[-1].split("/")[0].split('?')[0]
'stackoverflow.com'
>>> url = "http://foo.bar?haha/whatever"
>>> url.split("//")[-1].split("/")[0].split('?')[0]
'foo.bar'

That's all, folks.

2
  • 2
    Good and simple option, but fails in some cases, e.g. foo.bar?haha Dec 13, 2017 at 22:02
  • 1
    @SimonSteinberger :-) How'bout this : url.split("//")[-1].split("/")[0].split('?')[0] :-))
    – SebMa
    Feb 5, 2018 at 16:16
14

The standard library function urllib.parse.urlsplit() is all you need. Here is an example for Python3:

>>> import urllib.parse
>>> o = urllib.parse.urlsplit('https://user:pass@www.example.com:8080/dir/page.html?q1=test&q2=a2#anchor1')
>>> o.scheme
'https'
>>> o.netloc
'user:pass@www.example.com:8080'
>>> o.hostname
'www.example.com'
>>> o.port
8080
>>> o.path
'/dir/page.html'
>>> o.query
'q1=test&q2=a2'
>>> o.fragment
'anchor1'
>>> o.username
'user'
>>> o.password
'pass'
9

if you think your url is valid then this will work all the time

domain = "http://google.com".split("://")[1].split("/")[0] 
3
  • The last split is wrong, there are no more forward slashes to split. Apr 13, 2019 at 5:23
  • 2
    it's won't be a problem, if there are no more slashes then, the list will return with one element. so it will work whether there is a slash or not
    – Jeeva
    Apr 13, 2019 at 7:09
  • 1
    I edited your answer the be able to remove the down-vote. Nice explanation. Tks. Apr 13, 2019 at 7:32
6

Here is a slightly improved version:

urls = [
    "http://stackoverflow.com:8080/some/folder?test=/questions/9626535/get-domain-name-from-url",
    "Stackoverflow.com:8080/some/folder?test=/questions/9626535/get-domain-name-from-url",
    "http://stackoverflow.com/some/folder?test=/questions/9626535/get-domain-name-from-url",
    "https://StackOverflow.com:8080?test=/questions/9626535/get-domain-name-from-url",
    "stackoverflow.com?test=questions&v=get-domain-name-from-url"]
for url in urls:
    spltAr = url.split("://");
    i = (0,1)[len(spltAr)>1];
    dm = spltAr[i].split("?")[0].split('/')[0].split(':')[0].lower();
    print dm

Output

stackoverflow.com
stackoverflow.com
stackoverflow.com
stackoverflow.com
stackoverflow.com

Fiddle: https://pyfiddle.io/fiddle/23e4976e-88d2-4757-993e-532aa41b7bf0/?i=true

3
  • IMHO the best solution, because simple and it considers all sorts of rare cases. Thanks! Dec 13, 2017 at 22:03
  • 2
    neither simple nor improved Aug 12, 2018 at 22:54
  • This is not a solution for the question because you do not provide protocol (https:// or http://)
    – Nairum
    Oct 15, 2019 at 14:31
5

Is there anything wrong with pure string operations:

url = 'http://stackoverflow.com/questions/9626535/get-domain-name-from-url'
parts = url.split('//', 1)
print parts[0]+'//'+parts[1].split('/', 1)[0]
>>> http://stackoverflow.com

If you prefer having a trailing slash appended, extend this script a bit like so:

parts = url.split('//', 1)
base = parts[0]+'//'+parts[1].split('/', 1)[0]
print base + (len(url) > len(base) and url[len(base)]=='/'and'/' or '')

That can probably be optimized a bit ...

1
  • 8
    it's not wrong but we got a tool that already does the work, let's not reinvent the wheel ;)
    – Gerard
    Jun 12, 2013 at 2:33
2

This is a bit obtuse, but uses urlparse in both directions:

import urlparse
def uri2schemehostname(uri):
    urlparse.urlunparse(urlparse.urlparse(uri)[:2] + ("",) * 4)

that odd ("",) * 4 bit is because urlparse expects a sequence of exactly len(urlparse.ParseResult._fields) = 6

2

I know it's an old question, but I too encountered it today. Solved this with an one-liner:

import re
result = re.sub(r'(.*://)?([^/?]+).*', '\g<1>\g<2>', url)
2

It could be solved by re.search()

import re
url = 'https://docs.google.com/spreadsheet/ccc?key=blah-blah-blah-blah#gid=1'
result = re.search(r'^http[s]*:\/\/[\w\.]*', url).group()
print(result)

#result
'https://docs.google.com'
1
  • This answer was helpful for my case. Thanks. Apr 8, 2022 at 21:34
2

You can simply use urljoin with relative root '/' as second argument:

import urllib.parse


url = 'https://stackoverflow.com/questions/9626535/get-protocol-host-name-from-url'
root_url = urllib.parse.urljoin(url, '/')
print(root_url)
2

This is the simple way to get the root URL of any domain.

from urllib.parse import urlparse

url = urlparse('https://stackoverflow.com/questions/9626535/')
root_url = url.scheme + '://' + url.hostname
print(root_url) # https://stackoverflow.com
0

to get domain/hostname and Origin*

url = 'https://stackoverflow.com/questions/9626535/get-protocol-host-name-from-url'
hostname = url.split('/')[2] # stackoverflow.com
origin = '/'.join(url.split('/')[:3]) # https://stackoverflow.com

*Origin is used in XMLHttpRequest headers

-1

If it contains less than 3 slashes thus you've it got and if not then we can find the occurrence between it:

import re

link = http://forum.unisoftdev.com/something

slash_count = len(re.findall("/", link))
print slash_count # output: 3

if slash_count > 2:
   regex = r'\:\/\/(.*?)\/'
   pattern  = re.compile(regex)
   path = re.findall(pattern, url)

   print path

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