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So what I need to know, is how can I connect two databases at once. What I am doing is taking some information from one db table and transferring it to another DB.

I have tried the following.

public function sitelistingcron()
{

    $sqlk = mysql_query("SELECT * FROM customer_detail WHERE approvedforsite = 2 OR approvedforsite = 3");


    include_once('database2.php');
    $fet = new Dbase();
        $fet->Connect();
        $fet->DB();
    while($row = mysql_fetch_array($sqlk)){
        //ADD
        $this->customer_id = $row['customer_id'];
        $this->tradingname = $row['TradingName'];
        $this->phone        = $row['Phone'];
        $this->street       = $row['Street'];
        $this->city         = $row['City'];
        $this->state        = $row['State'];
        $this->postcode     = $row['PostCode'];
        $this->approved = $row['approvedforsite'];




        $this->description  = $row['Description'];

        if($this->approved = 2)
        {
            $sqk = mysql_query("INSERT INTO approved_business_info (id, tradingname, phonenumber, street, postcode, suburb, discription) VALUES ({$this->customer_id}, '{$this->tradingname}', '{$this->phone}', '{$this->street}', '{$this->city}', '{$this->postcode}', '{$this->description}') ON DUPLICATE KEY UPDATE id = {$this->customer_id}, tradingname ='{$this->tradingname}', phonenumber ='{$this->phone}', street = '{$this->street}', postcode = '{$this->postcode}', suburb = '{$this->city}', discription = '{$this->discription}'") or mysql_error();


        print "INSERT INTO approved_business_info (id, tradingname, phonenumber, street, postcode, suburb, discription) VALUES ({$this->customer_id}, '{$this->tradingname}', '{$this->phone}', '{$this->street}', '{$this->city}', '{$this->postcode}', '{$this->description}') ON DUPLICATE KEY UPDATE id = {$this->customer_id}, tradingname ='{$this->tradingname}', phonenumber ='{$this->phone}', street = '{$this->street}', postcode = '{$this->postcode}', suburb = '{$this->city}', discription = '{$this->discription}'";


        }

        //REMOVE
        if($this->approved = 3)
        {
            $sqk = mysql_query("DELETE FROM `approved_business_info` WHERE id = {$this->customer_id}");
        }
    }   
}
share|improve this question
    
$result = sql_query($conn1, $sql1); $sql2 = makeInsertStatements($result); sql_update($conn2, $sql2); – bdares Dec 20 '11 at 1:54
1  
How are you connecting to a db? Just do that twice...? – deceze Dec 20 '11 at 1:56
1  
please, stop using the ancient mysql_* function and learn to use PDO or MySQLi with prepared statements. – tereško Dec 20 '11 at 5:21
up vote 2 down vote accepted

You can use two separate DB connections using the mysql_ extension by simply keeping track of the connection resource and passing it to every mysql_ function call:

$db1 = mysql_connect(...);
$db2 = mysql_connect(...);

mysql_query('SELECT ...', $db1);
mysql_query('INSERT ...', $db2);

Look at the documentation for http://www.php.net/mysql_connect and the other mysql_ functions.

share|improve this answer
    
Yes You could do it that way, I however come up with another way. – RussellHarrower Dec 20 '11 at 5:00
    
Care to share your solution? – deceze Dec 20 '11 at 5:05

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