PHP Get everything after the domain name from a URL variable

Question

I have a variable which stores the URL links for example:

$link = "https://www.google.no/search?num=100&newwindow=1&safe=off&site=&source=hp&q=example&oq=example"

$link = "http://www.example.com/forums/showthread.php?37dsf624-Get-everything-after-the-domain-name"

How do i extract the evrything which is after the domain name. for example i want from

$link = "https://www.google.no/search?num=100&newwindow=1&safe=off&site=&source=hp&q=example&oq=example"

to extract

search?num=100&newwindow=1&safe=off&site=&source=hp&q=example&oq=example

and from

$link = "http://www.example.com/forums/showthread.php?37dsf624-Get-everything-after-the-domain-name"

to extract

/forums/showthread.php?37dsf624-Get-everything-after-the-domain-name

Answer 1

look at the php function parse_url and parse_str

http://php.net/manual/de/function.parse-url.php

http://php.net/manual/de/function.parse-str.php

you can extract everything from your url with this.

$link = "https://www.google.no/search?num=100&newwindow=1&safe=off&site=&source=hp&q=example&oq=example";

$parsedUrl = parse_url($link);
parse_str($parsedUrl['query'], $parsedQuery);
print_r($parsedUrl);
print_r($parsedQuery);

Array
(
    [scheme] => https
    [host] => www.google.no
    [path] => /search
    [query] => num=100&newwindow=1&safe=off&site=&source=hp&q=example&oq=example
)
Array
(
    [num] => 100
    [newwindow] => 1
    [safe] => off
    [site] => 
    [source] => hp
    [q] => example
    [oq] => example
)

Answer 2

<?php 
$array[]= parse_url("https://www.google.no/search?num=100&newwindow=1&safe=off&site=&source=hp&q=example&oq=example");

$reqstring="{$array[0]['path']}?{$array[0]['query']}";
echo $reqstring;