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This is what we type for Absolute path:-

echo $_SERVER['DOCUMENT_ROOT'];

Output is the following:-

C:/xampp/htdocs

Currently i am working in a folder naming "project", Therefore my project root is:-

echo $_SERVER['DOCUMENT_ROOT'].'/project';

Output will be

C:/xampp/htdocs/project

Now if i upload my project to web-server with a folder name, say "website" i need to change the

echo $_SERVER['DOCUMENT_ROOT'].'/project';
------------------------------------------
to
------------------------------------------
echo $_SERVER['DOCUMENT_ROOT'].'/website';
------------------------------------------
or if i upload it in root then
------------------------------------------
echo $_SERVER['DOCUMENT_ROOT'];

I need to store files on different folders and directory levels.... so is there any way to make this thing dynamic any trick?

I want to minimize that hurdle and as renaming it all the time may can cause lot of time waste.

Once i used /project then /website and lastly directly to root... may be any trick through which we can bypass this hurdle and kind of declaration or stuff.. So that wherever we upload we just change a name in file and its done.... something like it.

share|improve this question
up vote 3 down vote accepted

Initialize it in root dir with

dirname(__FILE__)

This will not work as you expect if you use linked directory (original path will be used), which is a bummer in CodeIgniter for example

share|improve this answer
1  
but how it will solve my problem? – Django Anonymous Mar 22 '12 at 11:06
    
Well you use it as a project root folder, not webserver's (htdocs?) folder.. – Artjom Kurapov Mar 22 '12 at 11:12
    
if i upload it in root then? – Django Anonymous Mar 22 '12 at 11:17
    
well then it will be root :) – Artjom Kurapov Mar 22 '12 at 11:18
    
My question is once i used /project then /website and lastly directly to root... may be any trick through which we can bypass this hurdle and kind of declaration or stuff.. So that wherever we upload we just change a name in file and its done.... something like it – Django Anonymous Mar 22 '12 at 11:21

You could use something like this

$environments = array(
    'localhost' => 'development',
    'example.com' => 'production',
);

$active_environment = 'development';

foreach( $environments as $key => $value ){

    if( stristr( $_SERVER['SERVER_NAME'], $key ) ){
        $active_environment = $value;
        break;
    }
}

define( 'ENVIRONMENT', $active_environment );

    function getRoot(){

        switch( ENVIRONMENT ){
            case 'production' : return $_SERVER['DOCUMENT_ROOT'].'/website';
            case 'development' : 
            case default: return $_SERVER['DOCUMENT_ROOT'].'/project';

        }
    }
share|improve this answer
    
Hey thanks for the direction, i have edited my question a bit, please reconsider.... thanks – Django Anonymous Mar 22 '12 at 11:05
    
well, we use this approach for when project's life-cycle has it hosted on several machines - localhost, dev, qa, stage, production. All configuration settings are then based on the value of ENVIRONMENT. Now if you need only the directory the dirname(__FILE__) approach is the best. – scibuff Mar 22 '12 at 11:09
    
but how to use dirname(__FILE__) ? – Django Anonymous Mar 22 '12 at 11:10
    
RTFM php.net/manual/en/function.dirname.php – scibuff Mar 22 '12 at 11:13

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