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So I want to match just the domain from ether:

Output should be for all 3: google

I got this code working for just .com

echo "" | sed -n "s/.*www\.\(.*\)\.com.*$/\1/p"
Output: 'google'

Then I thought it would be as simple as doing say (com|net) but that doesn't seem to be true:

echo "" | sed -n "s/.*www\.\(.*\)\.(com|net).*$/\1/p"
Output: '' (nothing)

I was going to use a similar method to get rid of the "www" but it seems im doing something wrong… (does it not work with regex outside the \( \) …)

share|improve this question
So long as you limit the problem domain (pun intended) to URL similar to the ones listed, regular expressions may adequately serve the purpose. If you also need to deal with urls like "" or "" or even "", it may be advisable to use more expressive and general purpose languages (which possibly could leverage RE as part of the their parsing logic, but would also be able to implement a more complicated, and evolving, set of rules) – mjv Feb 8 '10 at 3:55
Technically, "" and "" are the domain names. You seem to be interested in the second-level domain name. :) – deceze Feb 8 '10 at 4:21
Yeah ok second-level domain, I knew I had the wrong term for it but I couldn't remember what it was called so I thought you would get what I meant with some examples :) – Mint Feb 8 '10 at 5:08

5 Answers 5

up vote 1 down vote accepted

This will output "google" in all cases:

sed -n "s|http://\(.*\.\)*\(.*\)\..*|\2|p"


This version will handle URLs like "'" and "" as well as the ones in the original question:

sed -nr "s|http://(www\.)?([^.]*)\.(.*\.?)*|\2|p"

This version will handle cases that don't include "http://" (plus the others):

sed -nr "s|(http://)?(www\.)?([^.]*)\.(.*\.?)*|\3|p"
share|improve this answer
this fails on for example. Unless OP really doesn't have that kind of url to parse. – ghostdog74 Feb 8 '10 at 4:24
+1 for the second version. – ghostdog74 Feb 8 '10 at 4:54
Ah yes this one works even better! Thanks Dennis, you seem to help me with allot of my questions :) (I should't need to work but you never know) – Mint Feb 8 '10 at 5:15

if you have Python, you can use urlparse module

import urlparse
for http in open("file"):
    o = urlparse.urlparse(http)
    d = o.netloc.split(".")
    if "www" in o.netloc:
        print d[1]
        print d[0]


$ cat file

$ ./

or you can use awk

awk -F"/" '{
        print d[2]
        print d[1]
} ' file

$ cat file

$ ./
share|improve this answer

It's Perl with alternate delimiters (because it makes it more legible), I'm sure you can port it to sed or whatever you need.

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#! /bin/bash

urls=(                        \ \     \     \

for url in ${urls[@]}; do
  echo $url | sed -re 's,^http://(.*\.)*(.+)\.[a-z]+/.+$,\2,'
share|improve this answer
this will not give correct results for url like – ghostdog74 Feb 8 '10 at 4:14
@Ghost requirement. – Greg Bacon Feb 8 '10 at 4:44

Have you tried using the "-r" switch on your sed command? This enables the extended regular expression mode (egrep-compatible regexes).

Edit: try this, it seems to work. The "?:" characters in front of com|net are to prevent this set of characters to be captured by their surrounding parenthesis.

 echo "" | sed -nr "s/.*www\.(.*)\.(?:com|net).*$/\1/p"
share|improve this answer
Yep: user:~# echo "http\://" | sed -n -r "s/.*www\.(.*)\.(com|net).*$/\1/p"; returns nothing as does "-E" (take out the "\" from the url) – Mint Feb 8 '10 at 3:59
See my edited reply: since you are in extended regex mode, you don't need to escape your parenthesis to capture characters. – Guillaume Gervais Feb 8 '10 at 4:00
@Mint, does this answer really solve your problem? – ghostdog74 Feb 8 '10 at 4:18
@Guillaume: The :? doesn't seem to work for me: echo "aaabbbccc"|sed -nr 's/(a*)(:?b*)(c*)/\1 \2/p' produces "aaa bbb" – Dennis Williamson Feb 8 '10 at 5:47
(?: - note the order - works in Perl, though) – Dennis Williamson Feb 8 '10 at 5:53

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