12

I'm quite new to python. I'm trying to parse a file of URLs to leave only the domain name.

some of the urls in my log file begin with http:// and some begin with www.Some begin with both.

This is the part of my code which strips the http:// part. What do I need to add to it to look for both http and www. and remove both?

line = re.findall(r'(https?://\S+)', line)

Currently when I run the code only http:// is stripped. if I change the code to the following:

line = re.findall(r'(https?://www.\S+)', line)

Only domains starting with both are affected. I need the code to be more conditional. TIA

edit... here is my full code...

import re
import sys
from urlparse import urlparse

f = open(sys.argv[1], "r")

for line in f.readlines():
 line = re.findall(r'(https?://\S+)', line)
 if line:
  parsed=urlparse(line[0])
  print parsed.hostname
f.close()

I mistagged by original post as regex. it is indeed using urlparse.

7

You can do without regexes here.

with open("file_path","r") as f:
    lines = f.read()
    lines = lines.replace("http://","")
    lines = lines.replace("www.", "") # May replace some false positives ('www.com')
    urls = [url.split('/')[0] for url in lines.split()]
    print '\n'.join(urls)

Example file input:

http://foo.com/index.html
http://www.foobar.com
www.bar.com/?q=res
www.foobar.com

Output:

foo.com
foobar.com
bar.com
foobar.com

Edit:

There could be a tricky url like foobarwww.com, and the above approach would strip the www. We will have to then revert back to using regexes.

Replace the line lines = lines.replace("www.", "") with lines = re.sub(r'(www.)(?!com)',r'',lines). Of course, every possible TLD should be used for the not-match pattern.

  • 4
    What if the URL was "http://abcwww.com"? – DSM Jan 31 '13 at 12:30
  • @DSM Don't worry, it isn't in use ;) – Alex L Jan 31 '13 at 12:32
  • Thanks, That works :) Any idea how I can remove everything after the .co.uk/.com etc? – Paul Tricklebank Jan 31 '13 at 12:56
  • I didn't get what you mean by everything. Can you explain by an example? – sidi Jan 31 '13 at 12:58
  • sure. some urls are links to pages. so in the case of foo.com/index.htm i would like to be left with just foo.com – Paul Tricklebank Jan 31 '13 at 13:08
18

It might be overkill for this specific situation, but i'd generally use urlparse.urlsplit (Python 2) or urllib.parse.urlsplit (Python 3).

from urllib.parse import urlsplit  # Python 3
from urlparse import urlsplit  # Python 2
import re

url = 'www.python.org'

# URLs must have a scheme
# www.python.org is an invalid URL
# http://www.python.org is valid

if not re.match(r'http(s?)\:', url):
    url = 'http://' + url

# url is now 'http://www.python.org'

parsed = urlsplit(url)

# parsed.scheme is 'http'
# parsed.netloc is 'www.python.org'
# parsed.path is None, since (strictly speaking) the path was not defined

host = parsed.netloc  # www.python.org

# Removing www.
# This is a bad idea, because www.python.org could 
# resolve to something different than python.org

if host.startswith('www.'):
    host = host[4:]
  • Doesn't immediately work for URLs starting without 'http://'. urlparse.urlsplit("www.foo.com").netloc will return ''. – sidi Jan 31 '13 at 13:26
  • Yes, that's because www.foo.com is not a valid URL. – Markus Unterwaditzer Jan 31 '13 at 13:35
  • The problem is that some of the urls in OP's file are of this format. – sidi Jan 31 '13 at 13:38
  • Fair enough, i edited my answer. – Markus Unterwaditzer Jan 31 '13 at 13:42
4

Check out the urlparse library, which can do these things for you automatically.

>>> urlparse.urlsplit('http://www.google.com.au/q?test')
SplitResult(scheme='http', netloc='www.google.com.au', path='/q', query='test', fragment='')
4

I came across the same problem. This is a solution based on regular expressions:

>>> import re
>>> rec = re.compile(r"https?://(www\.)?")

>>> rec.sub('', 'https://domain.com/bla/').strip().strip('/')
'domain.com/bla'

>>> rec.sub('', 'https://domain.com/bla/    ').strip().strip('/')
'domain.com/bla'

>>> rec.sub('', 'http://domain.com/bla/    ').strip().strip('/')
'domain.com/bla'

>>> rec.sub('', 'http://www.domain.com/bla/    ').strip().strip('/')
'domain.com/bla'
1

You can use urlparse. Also, the solution should be generic to remove things other than 'www' before the domain name (i.e., handle cases like server1.domain.com). The following is a quick try that should work:

from urlparse import urlparse

url = 'http://www.muneeb.org/files/alan_turing_thesis.jpg'

o = urlparse(url)

domain = o.hostname

temp = domain.rsplit('.')

if(len(temp) == 3):
    domain = temp[1] + '.' + temp[2]

print domain 
0

I believe @Muneeb Ali is the nearest to the solution but the problem appear when is something like frontdomain.domain.co.uk....

I suppose:

for i in range(1,len(temp)-1):
    domain = temp[i]+"."
domain = domain + "." + temp[-1]

Is there a nicer way to do this?

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