how to get domain name from URL

Question

How can I fetch a domain name from a URL String?

Examples:

+----------------------+------------+
| input                | output     |
+----------------------+------------+
| www.google.com       | google     |
| www.mail.yahoo.com   | mail.yahoo |
| www.mail.yahoo.co.in | mail.yahoo |
| www.abc.au.uk        | abc        |
+----------------------+------------+

Related:

• Matching a web address through regex

Answer 1

I once had to write such a regex for a company I worked for. The solution was this:

• Get a list of every ccTLD and gTLD available. Your first stop should be IANA. The list from Mozilla looks great at first sight, but lacks ac.uk for example so for this it is not really usable.
• Join the list like the example below. A warning: Ordering is important! If org.uk would appear after uk then example.org.uk would match org instead of example.

Example regex:

.*([^\.]+)(com|net|org|info|coop|int|co\.uk|org\.uk|ac\.uk|uk|__and so on__)$

This worked really well and also matched weird, unofficial top-levels like de.com and friends.

The upside:

• Very fast if regex is optimally ordered

The downside of this solution is of course:

• Handwritten regex which has to be updated manually if ccTLDs change or get added. Tedious job!
• Very large regex so not very readable.

Answer 2

the list @ Mozilla website can give you the effective top domain levels list.

Answer 3

/^(?:www\.)?(.*?)\.(?:com|au\.uk|co\.in)$/

Answer 4

I don't know of any libraries, but the string manipulation of domain names is easy enough.

The hard part is knowing if the name is at the second or third level. For this you will need a data file you maintain (e.g. for .uk is is not always the third level, some organisations (e.g. bl.uk, jet.uk) exist at the second level).

The source of Firefox from Mozilla has such a data file, check the Mozilla licensing to see if you could reuse that.

Answer 5

/* These are TLDs that have an SLD */
var tlds = {
    "cy":true,
    "ro":true,
    "ke":true,
    "kh":true,
    "ki":true,
    "cr":true,
    "km":true,
    "kn":true,
    "kr":true,
    "ck":true,
    "cn":true,
    "kw":true,
    "rs":true,
    "ca":true,
    "kz":true,
    "rw":true,
    "ru":true,
    "za":true,
    "zm":true,
    "bz":true,
    "je":true,
    "uy":true,
    "bs":true,
    "br":true,
    "jo":true,
    "us":true,
    "bh":true,
    "bo":true,
    "bn":true,
    "bb":true,
    "ba":true,
    "ua":true,
    "eg":true,
    "ec":true,
    "et":true,
    "er":true,
    "es":true,
    "pl":true,
    "in":true,
    "ph":true,
    "il":true,
    "pe":true,
    "co":true,
    "pa":true,
    "id":true,
    "py":true,
    "ug":true,
    "ky":true,
    "ir":true,
    "pt":true,
    "pw":true,
    "iq":true,
    "it":true,
    "pr":true,
    "sh":true,
    "sl":true,
    "sn":true,
    "sa":true,
    "sb":true,
    "sc":true,
    "sd":true,
    "se":true,
    "hk":true,
    "sg":true,
    "sy":true,
    "sz":true,
    "st":true,
    "sv":true,
    "om":true,
    "th":true,
    "ve":true,
    "tz":true,
    "vn":true,
    "vi":true,
    "pk":true,
    "fk":true,
    "fj":true,
    "fr":true,
    "ni":true,
    "ng":true,
    "nf":true,
    "re":true,
    "na":true,
    "qa":true,
    "tw":true,
    "nr":true,
    "np":true,
    "ac":true,
    "af":true,
    "ae":true,
    "ao":true,
    "al":true,
    "yu":true,
    "ar":true,
    "tj":true,
    "at":true,
    "au":true,
    "ye":true,
    "mv":true,
    "mw":true,
    "mt":true,
    "mu":true,
    "tr":true,
    "mz":true,
    "tt":true,
    "mx":true,
    "my":true,
    "mg":true,
    "me":true,
    "mc":true,
    "ma":true,
    "mn":true,
    "mo":true,
    "ml":true,
    "mk":true,
    "do":true,
    "dz":true,
    "ps":true,
    "lr":true,
    "tn":true,
    "lv":true,
    "ly":true,
    "lb":true,
    "lk":true,
    "gg":true,
    "uk":true,
    "gn":true,
    "gh":true,
    "gt":true,
    "gu":true,
    "jp":true,
    "gr":true,
    "nz":true
}

function isSecondLevelDomainPresent(domainParts) {
    return typeof tlds[domainParts[domainParts.length-1]] != "undefined";
}
function getDomainFromHostname(url) {
  domainParts = url.split(".");
  var cutOff =2;
  if (isSecondLevelDomainPresent(domainParts)) {
    cutOff=3;
  }
  return domainParts.slice(domainParts.length-cutOff, domainParts.length).join(".");
}

Instead of writing a large regex, why not take the list of known TLDs that require a SLD, and build a hash table out of them. Then when you split up the url, you can know whether to take the last 2 pieces, or the last 3.

Answer 6

import urlparse

GENERIC_TLDS = [
    'aero', 'asia', 'biz', 'com', 'coop', 'edu', 'gov', 'info', 'int', 'jobs', 
    'mil', 'mobi', 'museum', 'name', 'net', 'org', 'pro', 'tel', 'travel', 'cat'
    ]

def get_domain(url):
    hostname = urlparse.urlparse(url.lower()).netloc
    if hostname == '':
        # Force the recognition as a full URL
        hostname = urlparse.urlparse('http://' + uri).netloc

    # Remove the 'user:passw', 'www.' and ':port' parts
    hostname = hostname.split('@')[-1].split(':')[0].lstrip('www.').split('.')

    num_parts = len(hostname)
    if (num_parts < 3) or (len(hostname[-1]) > 2):
        return '.'.join(hostname[:-1])
    if len(hostname[-2]) > 2 and hostname[-2] not in GENERIC_TLDS:
        return '.'.join(hostname[:-1])
    if num_parts >= 3:
        return '.'.join(hostname[:-2])

This code isn't guaranteed to work with all URLs and doesn't filter those that are grammatically correct but invalid like 'example.uk'.

However it'll do the job in most cases.

Answer 7

/[^w{3}\.]([a-zA-Z0-9]([a-zA-Z0-9\-]{0,65}[a-zA-Z0-9])?\.)+[a-zA-Z]{2,6}/gim

usage of this javascript regex ignores www and following dot, while retaining the domain intact. also properly matches no www and cc tld

Answer 8

You need a list of what domain prefixes and suffixes can be removed. For example:

Prefixes:

• www.

Suffixes:

• .com
• .co.in
• .au.uk

Answer 9

Remove www

Find first /

Find first . before it.

String between them is 1st level domain.

Everything to the left is domain name.

Remove all additional 1st/2nd domain names like co.uk using dictionary. Because you need to remove .co.uk but not .msk.ru or .spb.ru because it only seems to be common suffix but they are private domains.

Answer 10

#!/usr/bin/perl -w
use strict;

my $url = $ARGV[0];
if($url =~ /([^:]*:\/\/)?([^\/]*\.)*([^\/\.]+)\.[^\/]+/g) {
  print $3;
}

Answer 11

It is not possible without using a TLD list to compare with as their exist many cases like http://www.db.de/ or http://bbc.co.uk/

But even with that you won't have success in every case because of SLD's like http://big.uk.com/ or http://www.uk.com/

If you need a complete list you can use the public suffix list:

http://mxr.mozilla.org/mozilla-central/source/netwerk/dns/effective_tld_names.dat?raw=1

Feel free to extend my function to extract the domain name, only. It won't use regex and it is fast:

http://www.programmierer-forum.de/domainnamen-ermitteln-t244185.htm#3471878

Answer 12

So if you just have a string and not a window.location you could use...

String.prototype.toUrl = function(){

if(!this && 0 < this.length)
{
    return undefined;
}
var original = this.toString();
var s = original;
if(!original.toLowerCase().startsWith('http'))
{
    s = 'http://' + original;
}

s = this.split('/');

var protocol = s[0];
var host = s[2];
var relativePath = '';

if(s.length > 3){
    for(var i=3;i< s.length;i++)
    {
        relativePath += '/' + s[i];
    }
}

s = host.split('.');
var domain = s[s.length-2] + '.' + s[s.length-1];    

return {
    original: original,
    protocol: protocol,
    domain: domain,
    host: host,
    relativePath: relativePath,
    getParameter: function(param)
    {
        return this.getParameters()[param];
    },
    getParameters: function(){
        var vars = [], hash;
        var hashes = this.original.slice(this.original.indexOf('?') + 1).split('&');
        for (var i = 0; i < hashes.length; i++) {
            hash = hashes[i].split('=');
            vars.push(hash[0]);
            vars[hash[0]] = hash[1];
        }
        return vars;
    }
};};

How to use.

var str = "http://en.wikipedia.org/wiki/Knopf?q=1&t=2";
var url = str.toUrl;

var host = url.host;
var domain = url.domain;
var original = url.original;
var relativePath = url.relativePath;
var paramQ = url.getParameter('q');
var paramT = url.getParamter('t');

Answer 13

in jscript using window.location
window.location.hostname => the host name (without the port number or square brackets). ex: www.google.com

oops.... just reread your question and noticed that it probably doesn't apply to your case...

Answer 14

Look in System.Uri