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I've been trying to figure out the best way to return an order from a database. I've come up with this, and it's working the way I want (I think) it gives me the results I'm looking for but I wanted to know if its correct or if there is a better way.

<?php

$conn = mysql_connect('', '', ''); 
if (!$conn) 
{ 
die('Could not connect: ' . mysql_error()); 
} 
mysql_select_db($dbs, $conn);

$Order_ID = $_POST['Order_ID'];
//$Order_ID = '1001';

    $queryOrderHead = "SELECT * FROM Orders WHERE Order_ID = '$Order_ID' ";

    $queryOrderLines = "SELECT *

    FROM Order_LineDetails 
    WHERE Order_LineDetails.Order_ID = '$Order_ID'

";
        if ($queryRunHead = mysql_query($queryOrderHead)){

                while ($info_HEAD = mysql_fetch_array($queryRunHead))       
                {
                    $OrderID_HEAD = $info_HEAD['Order_ID'];         
                    $User_ID_HEAD = $info_HEAD['User_ID'];  
                    $Customer_ID_HEAD = $info_HEAD['Customer_ID'];                          
                    echo $OrderID_HEAD.' '.$User_ID_HEAD.' '.$Customer_ID_HEAD.'<br>';
                }

                $queryRunLines = mysql_query($queryOrderLines);
                while ($info = mysql_fetch_array($queryRunLines))       
                {
                    $OrderID = $info['Order_ID'];           
                    $OrderLineID = $info['OrderLineItem_ID'];           
                    echo $OrderID.' '.$OrderLineID.'<br>';
                }

        } else {
        echo mysql_error();         
        }

mysql_close($conn);
?>

So what it does, is it uses the Order_ID val from the $_POST and runs the first query then on success it uses the same Order_ID and loops the second query and gets all the Order_LineDetails from a different table.

Other than the mysql_real_escape() tags....

Any pointers or ideas???

share|improve this question

closed as primarily opinion-based by webbiedave, PeeHaa, Scott, Nanne, Lipis Mar 9 '14 at 12:24

Many good questions generate some degree of opinion based on expert experience, but answers to this question will tend to be almost entirely based on opinions, rather than facts, references, or specific expertise. If this question can be reworded to fit the rules in the help center, please edit the question.

    
You could eliminate the two calls to the database and simply make one call which joins the two tables together based on the order ID. So something like SELECT O.Order_ID, O.user_ID, O.Customer_ID, O.OrderLIneItem_ID FROM Orders O LEFT JOIN order_lineDetails OLD ON O.Order_ID = OLD.Order_ID WHERE O.Order_ID = '$Order_ID' In theory this should be faster due to fewer calls to the database, but you're returning more data for each record which could negate the benefit depending on the volume of data being duplicated. –  xQbert Jan 20 '12 at 21:46
    
What about if the first query will always return 1 row of data, and the second query could return 1 to 100+ rows? –  Monty Jan 20 '12 at 21:49
    
You're selecting the order, then the order items. Nothing wrong with that approach. Placing into an array would be better organization. –  webbiedave Jan 20 '12 at 21:52
    
Make sure to sanitize the value of the post variable, e.g. $Order_ID = intval($_POST['Order_ID']); to avoid SQL injection. –  Michael Mior Jan 20 '12 at 22:16

1 Answer 1

up vote 0 down vote accepted

Any pointers or ideas???

There's nothing wrong with selecting the order first, then its items. However, you'd benefit from organizing the data into an array structure as well as following better naming conventions (both for variables and database schema):

$orderId = $_POST['order_id'];

// order_id should be an INT, so no quotes. 
// Also look into parameterized queries with PDO as the mysql_* functions are archaic!
$sqlOrder = "SELECT * 
             FROM orders 
             WHERE order_id = ".mysql_real_escape_string($orderId);

$order = array();
if ($resOrder = mysql_query($sqlOrder)) {

    if ($rowOrder = mysql_fetch_array($resOrder)) {
        $order = $rowOrder;
        // echo $rowOrder['order_id'].' '.$rowOrder['user_id'].' '.$rowOrder['customer_id']."<br />\n";

        $sqlOrderLines = "SELECT * 
                  FROM order_lines
                  WHERE order_lines.order_id = ".mysql_real_escape_string($orderId);

        if ($resOrderLines = mysql_query($sqlOrderLines)) {
            $order['order_lines'] = array();
            while ($rowOrderLines = mysql_fetch_array($resOrderLines)) {
                $order['order_lines'][] = $rowOrderLines;                 
                // echo $rowOrderLines['order_id'].' '.$rowOrderLines['order_line_id']."<br />\n";
            }
        }
    } else {
        echo 'Order not found'.
    }



} else {
    echo mysql_error();         
}

// debug
print_r($order);
share|improve this answer
2  
Explain the downvote. He's in need of such pointers. –  webbiedave Jan 20 '12 at 22:19

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