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I have used the following code to get the document root.

$path = get_file_dir();
function get_file_dir() {
    global $argv;
    return realpath($argv[0]);
}

Below code includes config.php and config.php has the $setuprun variable with a value.

if((file_exists("$path/admin/config.php"))) {
 include_once "$path/admin/config.php"; 
}
if($setuprun=="true") { 
    //do some code
}

In my system, it takes the document root like /home/myname/myfolder and the variable $setuprun has the value and the code works perfectly.

But in another user's system, it shows the following error.

Notice: Undefined variable: setuprun in /usr/local/www/chat/setup.php on line 22.

He is using FreeBSD 8.2 Stable with MySQL 5, PHP5 and Apache 2.2.

Can anyone please help me to solve this error?

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2 Answers

up vote 0 down vote accepted

Try this..

define('setuprun', true); //to clear the error

AND this instead setuprun == true..

if(defined('setuprun'))

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Try echo $path; and use debbuger to see what youre dealing with on a system where youre having problem with. Even better remove "if((file_exists("$path/admin/config.php")))" and wait for debbuger to tell you where is the problem. –  Xfile Mar 24 '12 at 5:51
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Undefined variable means that you didn't define your setuprun ... If you define this variable in another document you must check is it included or not before use variables that defined in it.

and try use dirname(__FILE__) rather than $argv[0]

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$path has the value /usr/local/www/chat. Does /usr/local/www/chat/admin/config.php can include config.php or not? –  nithi Mar 24 '12 at 5:25
    
if your root directory is user - Yes ! –  Harry Mar 24 '12 at 5:29
    
$argv variable works only when you run your script from command line –  Harry Mar 24 '12 at 5:31
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