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i need to call a php inside another php file and pass some arguments also. how can i do this?? i tried

include("http://.../myfile.php?file=$name");
  • but gives access denied. i read like v must not set allow_url_open to OFF.

if i write like

$cmd = "/.../myfile.php?file=".$name";
$out =exec($cmd. " 2>&1");
echo $out;
  • gives error as /.../myfiles.php?file=hello: no such file or directory.

how can i solve this???

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2  
What exactly do you need to do. Fetch a block of PHP for execution inside the current script, or run an external script with no connection to the current script? – Unicron Mar 22 '11 at 10:10
    
use curl and make allow_url_open ON – diEcho Mar 22 '11 at 10:10
    
does this php file located on the same server? – Your Common Sense Mar 22 '11 at 10:17
    
i got the answer.... stackoverflow.com/questions/2644199/… – su03 Mar 22 '11 at 10:18
    
no wonder you got it. – Your Common Sense Mar 22 '11 at 10:19
up vote 12 down vote accepted

You don't have to pass anything in to your included files, your variables from the calling document will be available by default;

File1.php

<?php

$variable = "Woot!";
include_file "File2.php";

File2.php

<?php
echo $variable;
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1  
That's right, basically php just appends the documents so any variable declared before will be also available – Alex Bailey Mar 22 '11 at 10:14
    
this syntex to include file worked for me not above. include("insert_DB.php"); – Moaz Saeed Dec 24 '14 at 12:27

you can include file over http only if the allow_url_fopen is set to TRUE, and the same parameter allow you to pass variables to the files...

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You should not include files via HTTP connection - that's almost always a serious security problem.

If you must do this, you have to set allow_url_include and allow_url_fopen to ON but neither is a recommended procedure.

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the location in your code is incorrect:

$cmd = "/.../myfile.php?file=".$name";
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