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I need to get the domain name from a URL. Examples:

google.com
images.google.com
new.images.google.com
www.google.com

should all return google.com

Also

google.co.uk
images.google.co.uk
new.images.google.co.uk
http://www.google.co.uk

should all return google.co.uk

I'm hesitant to use Regular Expressions, because something like domain.com/google.com could return incorrect results.

So, how can I get the top-level domain, using PHP? This needs to work on all platforms and hosts.

Thanks!

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1  
This is tricky. For google.com, you're interested in the TLD and second-level domain name. For google.co.uk, you want the TLD and second and third level domain names. There's no defined "base name", what you mean by "base name" is different for different registrars/TLDs. –  deceze Jul 9 '10 at 9:42
1  
I'm pretty sure you have to get a bit long winded here, what you are asking for is eating your cake and having it too. Without a list of TLD's there is no way to differentiate between co.uk and google.com, they're both the host name. –  Kristoffer S Hansen Jul 9 '10 at 9:43
    
I guess you guys are right, it doesn't look like anything is gonna work without lots of code –  Rohan Jul 9 '10 at 9:46
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4 Answers

up vote 10 down vote accepted

You could do this:

$urlData = parse_url($url);

$host = $urlData['host'];

** Update **

The best way I can think of is to have a mapping of all the TLDs that you want to handle, since certain TLDs can be tricky (co.uk).

// you can add more to it if you want
$urlMap = array('com', 'co.uk');

$host = "";
$url = "http://www.google.co.uk";

$urlData = parse_url($url);
$hostData = explode('.', $urlData['host']);
$hostData = array_reverse($hostData);

if(array_search($hostData[1] . '.' . $hostData[0], $urlMap) !== FALSE) {
  $host = $hostData[2] . '.' . $hostData[1] . '.' . $hostData[0];
} elseif(array_search($hostData[0], $urlMap) !== FALSE) {
  $host = $hostData[1] . '.' . $hostData[0];
}

echo $host;
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Try using: http://php.net/manual/en/function.parse-url.php. Something like this should work:

$urlParts = parse_url($yourUrl);
$hostParts = explode('.', $urlParts['host']);
$hostParts = array_reverse($hostParts);
$host = $hostParts[1] . '.' . $hostParts[0];
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That would break if you have something like this: google.co.uk - in that case, it'd return "co.uk". –  xil3 Jul 9 '10 at 9:43
    
It would indeed, the only way to get that sorted though is by using a TLD list. –  Klaas Sangers Jul 9 '10 at 9:49
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top-level domains and second-level domains may be 2 characters long, but a registered subdomain must be at least 3 characters long.

in google.com -- "google" is a subdomain of "com"

in google.co.uk -- "google" is a subdomain of "co", which in turn is a subdomain of "uk", or a second-level domain really, since "co" is also a valid top-level domain

in www.google.com -- "www" is a subdomain of "google" which is a subdomain of "com"

"co.uk" is NOT a valid host because there is no valid domain name

going with that assumption this function will return the proper "basedomain" in almost all cases, without requiring a "url map".

if you happen to be one of the rare cases, perhaps you can modify this to fulfill particular needs...

function basedomain( $str = '' )
{
    $url = @parse_url( $str );
    if ( empty( $url['host'] ) ) return;
    $parts = explode( '.', $url['host'] );
    $slice = ( strlen( reset( array_slice( $parts, -2, 1 ) ) ) == 2 ) && ( count( $parts ) > 2 ) ? 3 : 2;
    return implode( '.', array_slice( $parts, ( 0 - $slice ), $slice ) );
}

if you need to be accurate use fopen or curl to open this URL: http://data.iana.org/TLD/tlds-alpha-by-domain.txt

then read the lines into an array and use that to compare the domain parts

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Use this function:

function getHost($url){
    if (strpos($url,"http://")){
        $httpurl=$url;
    } else {
        $httpurl="http://".$url;
    }
    $parse = parse_url($httpurl);
    $domain=$parse['host'];

    $portion=explode(".",$domain);
    $count=sizeof($portion)-1;
    if ($count>1){
        $result=$portion[$count-1].".".$portion[$count];
    } else {
        $result=$domain;
    }
    return $result;
}

Answer all variants of example URL's.

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