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I am trying to load a php file B.PHP from another php file A.PHP, plus I want to send a variable via $_GET. Both files are stored on the same directory. I tried several ways:

1st) Directly write on my file:

require (__FILE__)."\b.php?action=1";

The result of doing an echo is: C:\xampp\htdocs\pfc\html\a.phpb.php?action=1, so INCORRECT!

So then I tried:

require (__FILE__)."\..\b.php?action=1"; INCORRECT again

2nd) On a different PHP I set:

define('MAINDIR',dirname(__FILE__) . '\\');
define('DL_DIR',MAINDIR . 'pfc\\html\\');   // Also tried with a normal '/'

And then on my file I just do:

require DL_DIR."b.php?action=1";  I also tried with include, but I guess this has nothing to do.

In this case, if I do an echo I get: C:\xampp\htdocs\pfc\html\b.php, so CORRECT!

However, when I run my program, I get the next error:

Warning: require (C:\xampp\htdocs\pfc\html\b.php?action=1): failed to open stream: No such file or directory in C:\xampp\htdocs\pfc\html\a.php on line 101

Warning: require (): Failed opening 'C:\xampp\htdocs\pfc\html\b.php?action=1' for inclusion (include_path='.;C:\xampp\php\PEAR') in C:\xampp\htdocs\pfc\html\a.php on line 101

OBVIOUSLY it cannot find a file inside a file. So I tried again the '..\' wih this version... WRONG!

3rd) Adding realpath to the equation

require realpath(dirname(__FILE__)."\b.php?action=1");

And, again, I get:

Warning: require (): Filename cannot be empty in C:\xampp\htdocs\pfc\html\HTML_menu_supervisor.php on line 101

Warning: require (): Failed opening '' for inclusion (include_path='.;C:\xampp\php\PEAR') in C:\xampp\htdocs\pfc\html\HTML_menu_supervisor.php on line 101

I really don't know what is going on. Please someone help me! And thanks in advance :-)

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Can you try to include file without using any global variable and try to see whether it does the job or not. –  Dirgh Dec 11 '13 at 5:48
    
You cannot pass variables in an include/require statement as GET parameters, it just doesn't work like that. And __FILE__ is also obviously not working like that. A simple require_once dirname(__FILE__) . "/../b.php should do the trick though. Although as your on windows, you might need to use the DIRECTORY_SEPARATOR constant instead of /. –  nietonfir Dec 11 '13 at 5:53
    
without global variable it works just fine. I can even set the variable with $_GET and then call the other file with no variables on it and get those variables later on from it. However I cant use this method for my purpose –  user2612097 Dec 11 '13 at 5:56
    
@nietonfir Doing an echo of your trick (and adding the DIRECTORY_SEPARATOR) just gives: C:\xampp\htdocs\pfc\html\..\b.php?action=1, so invalid link –  user2612097 Dec 11 '13 at 6:02
    
Side note of possible interest: as of PHP 5.3, __DIR__ is available, which is equivalent to dirname(__FILE__). –  Wiseguy Dec 11 '13 at 6:21
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3 Answers

As far as I know, you can't pass parameters via require or include. Therefore I believe that your requires are actually looking for a file that doesn't exists (since you probably don't have a file named b.php?action=1.

You can just set whatever variable(s) you need to and reference them in the required files (assuming they're in the same scope).

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I know. However the manual gives this example: // Won't work; looks for a file named 'file.php?foo=1&bar=2' on the local filesystem. include 'file.php?foo=1&bar=2'; // Works. include 'example.com/file.php?foo=1&bar=2';; So I was trying to find the way of writing the absolute path. Any ideas? –  user2612097 Dec 11 '13 at 5:51
    
Which manual? Do you have a link? –  tptcat Dec 11 '13 at 5:51
    
2  
@user2612097 So you're expecting what the manual explicitly states "Won't work" to work? –  Wiseguy Dec 11 '13 at 5:54
    
From the same link: "Windows versions of PHP prior to PHP 4.3.0 do not support access of remote files via this function, even if allow_url_fopen is enabled." Even not on Windows this would be bad practice in my opinion. –  tptcat Dec 11 '13 at 5:55
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You don't have to get parameters to your include.

if you url looks something like this

localhost/myfunction.php?action=1

myfunction.php:

    require (__DIR__)."\..\b.php";

You could include your file and it will get the GET variable out of the box.

An include is a copy&paste of your included file .

So your b.php should look like this:

$allowedGetValues = array(1,2,3,4);


if(isset($_GET['action']) && array_key_exists($_GET['action'],$allowedGetValues) ){
    .. 
}
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1  
Why the down vote? –  demonking Dec 11 '13 at 5:59
    
He's on windows and passing parameters via require or include isn't supported as per the documentation. –  tptcat Dec 11 '13 at 6:04
    
where have i written that there is a parameter in the include or require? if i include a file, than the GET parameter in my url would also be available in the b.php –  demonking Dec 11 '13 at 6:05
    
Sorry. My mistake. I thought it was there before. Make a small edit to your answer and I should be able to un-downvote. –  tptcat Dec 11 '13 at 6:08
1  
If one of the answer's helped you, so mark it. That the answer will pushed to the top and will be faster noticed for other person with the same problem. –  demonking Dec 11 '13 at 6:33
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you have to use include or require function like below -

include('b.php');
or
require('b.php');
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