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Is there anyway to get the current URI of a file in PHP, regardless of which file it is being included?

for example:

a.php is included in b.php

But I want to get the URI of the directory in which a.php is located in.

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2  
You can use dirname(__ FILE __); to get the server path of a.php, you will need to match that to the document_root and add the $_SERVER[SERVER_NAME] to get the actual URI. I would type you a complete answer but im on an iphone ;) couldnt resist answering though! –  Johan Sep 19 '11 at 22:45
    
Thank you Johan! I wish I could mark this as the correct answer haha :) –  Mohammad Sep 19 '11 at 22:46
    
what URI you're talking about? filesystem path you mean? What for you need it? –  Your Common Sense Sep 19 '11 at 22:50
    
@Col. Shrapnel, no I meant this http://example.com/a.php_directory/ –  Mohammad Sep 19 '11 at 22:57
    
@Mohammad that's nonsense then. included file directory won't help you even a bit. What for you need this a.php_directory? –  Your Common Sense Sep 19 '11 at 22:58

4 Answers 4

up vote 0 down vote accepted

Current URI can normally be composed from $_SERVER['HTTPS'], $_SERVER.['HTTP_HOST'] and $_SERVER['REQUEST_URI'] (except the hash identifier, #foo, which is not even sent to the server).

You can find further reference here but it's normally easier to print_r() the $_SERVER array.

Clarification: a file can have one URL, many or none at all.


Edit: If we have this file layout:

  • /home/foo/htdocs/foo.php

    <?php
    include('./lib/utils.php');
    blah();
    
  • /home/foo/htdocs/lib/utils.php

    <?php
    function blah(){
    }
    

... where /home/foo/htdocs is the document root, the way to to obtain the URL of the directory where utils.php lies is to read __FILE__ from within utils.php and replace leading $_SERVER['DOCUMENT_ROOT'] with the site's protocol and path. E.g.:

<?php

if( isset($_SERVER['DOCUMENT_ROOT']) ){
    $directory = realpath(dirname(__FILE__));
    $document_root = realpath($_SERVER['DOCUMENT_ROOT']);
    $base_url = ( isset($_SERVER['HTTPS']) && $_SERVER['HTTPS']=='on' ? 'https' : 'http' ) . '://' .
        $_SERVER['HTTP_HOST'];

    if( strpos($directory, $document_root)===0 ){
        echo $base_url . str_replace(DIRECTORY_SEPARATOR, '/', substr($directory, strlen($document_root)));
    }
}

This code may need some tweaking (not all web servers create the same variables) and of course there's no guarantee that the directory's URL will be reachable or useful.

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he is asking for the URI of the included file, so, REQUEST_URI is inapplicable here. as well as the common sense though –  Your Common Sense Sep 20 '11 at 9:51
    
@Col. Shrapnel - That isn't what I infer from the question. I suggest you provide your own answer. –  Álvaro G. Vicario Sep 20 '11 at 10:15
    
a.php is included in b.php. I want to get the URI of the directory in which a.php is located in. says it pretty straightforward. isn't it? –  Your Common Sense Sep 20 '11 at 10:18

There is no "real" URL for a file, as that would imply a 1:1 mapping between URLs and files. Virtual Directories allow for a file to have many different names.

However, if you just want the file system path of a.php, then try __DIR__.

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You can use realpath(__FILE__) to get the directory in the filesystem. You should be able to translate that to the URI.

realpath()

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you mixed up realpath with dirname. __FILE__ already contains real path –  Your Common Sense Sep 19 '11 at 22:48

Using Johan's answer in the comment section, we have:
This answer is highly dependent on your directory structure, make sure you explode by the last folder that leads to your www root! This could be either 'htdocs' or 'public_html' depending on your host.

$my_domain = $_SERVER['HTTP_HOST'];
$this_uri_dir = explode('public_html', dirname(__FILE__)); //this assumes you don't have multiple folders named 'public_html'
echo 'http://'.$my_domain.$this_uri_dir[1].'/';
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1  
@ColShrapnel - make it constructive, or take it somewhere else –  Marc Gravell Sep 20 '11 at 10:29

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