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I have example1.php and example2.php that include example3.php. In example3.php I have:

<link rel="canonical" href="http://website.com/<?php echo basename(__FILE__); ?>">

What I wanted is to have example1.php/example2.php in href dependent on the file including example3.php. The problem is that of course __FILE__ outputs example3.php. Is it possible to get the filename of the including file, not the included one?

Please don't suggesting using the XSS vulnerable SERVER['HTTP_HOST'].$_SERVER['REQUEST_URI'].

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You could set a variable before "including", then reference that variable. A pain, but it would work. –  Cole Johnson Apr 2 '13 at 1:12

2 Answers 2

up vote 0 down vote accepted

(Warning: This trick may not scale, but will work in this exact case.)

Use element 0 of the return from get_included_files(). That will be the original file that started the chain

inside example3.php:

$gif = get_included_files();

then you can do

<link rel="canonical" href="http://website.com/<?php echo basename($gif[0]); ?>">

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IF you dont want to use any $_SERVER[''] types to get the file name You can use

pathinfo(__FILE__, PATHINFO_BASENAME)

to just get the filename you want

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2  
Oh, thanks. And pathinfo(__FILE__, PATHINFO_BASENAME) is not subject to possible XSS vulnerabilities, right? :) –  MultiformeIngegno Apr 2 '13 at 0:38
    
Anyway I tried but it seems to outputs nothing.. –  MultiformeIngegno Apr 2 '13 at 0:41
    
did you tried to echo it? –  Kaii Apr 2 '13 at 0:42
    
yeah, sorry it's not that doesn't output nothing, it outputs still example3.php –  MultiformeIngegno Apr 2 '13 at 0:43
    
yes thats what it does.. thats what you intended to get right? –  Kaii Apr 2 '13 at 0:45

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