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I would like to the whole of the URL including the _GET variable names and values, for example www.mywebsite.com/store.php?department=MENS

The code I have used below only gives me the URL without the _GET variable part.

$url = $_SERVER['SERVER_NAME']; 
$page = $_SERVER['PHP_SELF'];
$page = $_POST['url'];
echo "http://".$url.$page; 

All I would like is to be able to copy that URL exactly how it is.

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migrated from webmasters.stackexchange.com Feb 20 '12 at 1:59

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2 Answers 2

up vote 4 down vote accepted

try this function

  public function getURL()
     {
        $protocol = @$_SERVER['HTTPS'] == 'on' ? 'https' : 'http';

        return  $protocol.'://'.$_SERVER['HTTP_HOST'].$_SERVER['REQUEST_URI'];
     }

taken from hre

use it like

echo getURL();

see if works for you

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2  
To be completely safe, you should also check if SERVER_PORT is something other than 80. –  Lèse majesté Feb 20 '12 at 2:45
    
This worked perfectly thank you very much. –  A Star Feb 20 '12 at 11:05

like this one..

$(function() {
$('.ajax-link').click( function() {
var link=$(this).attr('href');
     $.post( "savedl.php",{name:link}, 
     function(data) {
        window.location.href=link;
     });
     return false; // don't follow the link!

  });
});

sample is i have the url in the link

<a href='' class="ajax-link" id="url_name">url </a>

then you can get the value on savedl.php using $_POST['name']

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