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I have the following snippet that I am stuck at how to figure out getting the port number so the result might "turn" out correct as expected.

$server_list = array(       
        "localhost:8282" => array("test" => FALSE, "site_id" => "flyToHeaven"),
);

$server_name = $_SERVER["SERVER_NAME"];
if (!isset($server_list[$server_name])) {
    $server_name = "unknown";
    print "unknown server name!!";
    exit();

i will always get "Unknown Server Name" in the output. If I delete the port number after localhost then the error is different, which means it passed this 'if' condition. Any help please ....

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Try echoing $_SERVER['SERVER_NAME'] to see what it contains... –  Jon Mar 16 '12 at 2:39
    
It displays localhost only, and there for the If performs a mismatch comparison –  Kingston Town Mar 16 '12 at 2:44

3 Answers 3

I believe what you're looking for is a combination of $_SERVER['SERVER_NAME'] and $_SERVER['SERVER_PORT'], which defaults to port 80.

Try this:

$server_name = $_SERVER['SERVER_NAME'] . ':' . $_SERVER['SERVER_PORT'];

Source: http://www.php.net/manual/en/reserved.variables.server.php

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$_SERVER['SERVER_NAME'] will only return the name of the server.

If you're typing in http://localhost:8282 in the browser,

you'll get 'localhost' as the value of $_SERVER['SERVER_NAME'].

If you want to get the request port, you want to use $_SERVER['SERVER_PORT']. If you combine them both like so:

$server = $_SERVER['SERVER_NAME'] . ':' . $_SERVER['SERVER_PORT'];       

then you will get something closer to what you want.

I would suggest you look at the $_SERVER manual for all the details.

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I am using $_SERVER['HTTP_HOST'] which gives me server-name::port-number. The documentation says that this is "contents of the Host: header from the current request, if there is one".

My runtime environment is apache running on Linux and PHP 5.4 and this has always worked.

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