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I have a database:

   class dbConnect
{
    var $strHost     = "";
    var $strDatabase = "";
    var $strUser     = "";
    var $strPassword = "";

var $intLinkID  = 0;
var $intQueryID = 0;
var $arrRecord  = array();
var $intRow;

var $intErrno = 0;
var $strError = "";

function dbConnect()
{
    $this->Connect();
}

function dbHalt($strError)
{
    $objError = new errorHandle();

    $objError->reportError("Database error: $strError", false);
    $this->intErrno = mysql_errno($this->intLinkID);
    $this->strError = mysql_error($this->intLinkID);

    $strError = sprintf("MySQL Error: %s (%s)", $this->intErrno, $this->strError);

    $objError->reportError($strError, true);
}

function Connect()
{
    if (0 == $this->intLinkID)
    {

            $this->intLinkID=mysql_connect($this->strHost, $this->strUser, $this->strPassword);
            if (!mysql_select_db($this->strDatabase, $this->intLinkID))
            {
                $this->dbHalt("cannot use database ". $this->strDatabase);
            }

    }

    if (!$this->intLinkID)
    {
        $this->dbHalt("Database connection failed");
    }


}
    class dbMain extends dbConnect
{
    // Database connection settings.

    // Dev server.
    var $strHost = 'db_host_here';
    var $strUser = 'db_User_here';
    var $strPassword = 'db_password_here';
    var $strDatabase = 'db_name_here';


}

This works fine when calling $objDB = new dbMain();

But what I want is to dynamically set the database details in another class (for a master CMS) eg:

$objDB = new dbMain($user, $pass, $dbname, $dbhost);
share|improve this question
    
you should declare the access modifier private instead of var for clarity. The var keyword is no longer needed. It will work in PHP5, but will raise an E_STRICT warning in PHP5 up to version 5.3, as of which it has been deprecated. –  coolkid Sep 28 '10 at 13:55

1 Answer 1

Use a class constructor. Pass in values.

class dbMain 
{
   function __construct($strHost='db_host_here',$strUser='db_User_here',$strPassword='db_password_here',$strDatabase='db_name_here'){
        $this->strHost = $strHost;
        $this->strUser = $strUser;
        $this->strPassword = $strPassword;
        $this->strDatabase = $strDatabase;
    }
}
share|improve this answer
    
Can you give example? –  user460510 Sep 28 '10 at 11:18
    
class dbDynamic extends dbConnect { function __construct($strHost='localhost',$strUser='user',$strPassword='password',$strData‌​base='database'){ $this->strHost = $strHost; $this->strUser = $strUser; $this->strPassword = $strPassword; $this->strDatabase = $strDatabase; } } –  user460510 Sep 28 '10 at 11:33
    
The above brings errors about mysql_connect not valid link resource? –  user460510 Sep 28 '10 at 11:34
    
check your parameters. Check error during mysql_connect(); with mysql_error() –  Stewie Sep 28 '10 at 11:44

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