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The varibles inside of this script aren't working at all, its driving me nuts, if anyone could help that would be great !

<?php 
$db = mysql_connect('HOST', 'USER', 'PASS') or die('Could not connect: ' . mysql_error()); 
mysql_select_db('DBNAME') or die('Could not select database');

// Strings must be escaped to prevent SQL injection attack. 
$name = mysql_real_escape_string($_GET['name'], $db); 
$score = mysql_real_escape_string($_GET['score'], $db); 
$QuestionN = mysql_real_escape_string($_GET['QuestionN'], $db);        
$hash = $_GET['hash']; 
$num = (int)$QuestionN;
$var1     = mysql_real_escape_string($_POST['var1']);   
$var2     = mysql_real_escape_string($_POST['var2']);           


$secretKey="SecretKey"; # Change this value to match the value stored in the client javascript below 

$real_hash = md5($name . $score . $secretKey); 
if($real_hash == $hash) { 
$query = mysql_query("UPDATE Quiz1 SET " . $var1 . " = (1 + ". $var1 .")". " WHERE Question = " . $var2);
//$query = mysql_query("UPDATE Quiz1 SET " . $score . " = (1 + ". $score .")". " WHERE Question = " . $QuestionN);
//$query = mysql_query("UPDATE Quiz1 SET A = (1 + A ) WHERE Question = 1 ");

    $result = mysql_query($query) or die('Query failed: ' . mysql_error()); 
} 
print($var1) ; 
?>

Cleaned this up with PDO , heres the same code with better PHP practices for anyone who needs it .

<?php
        // Configuration
        $hostname = 'host';
        $username = 'user';
        $password = 'pass';
        $database = 'DBNAME';
    //$score = 'A' ; 

        $name = $_GET['name']; 
        $score = $_GET['score']; 
    $QuestionN = $_GET['QuestionN'];   
        $table = $_GET['table'];
$hash = $_GET['hash']; 
    $num = (int)$QuestionN;
        $secretKey="SecretKey"; # Change this value to match the value stored in the client javascript below 

        $real_hash = md5($name . $score . $secretKey); 
       // if($real_hash == $hash) { 



        try {
            $conn = new PDO('mysql:host='. $hostname .';dbname='. $database, $username, $password);
    echo "Connected to database"; // check for connection
    //$dbh->exec("UPDATE Quiz1 SET $score = 1 WHERE Question = 1");  // THIS DOES NOT  
    //$dbh->exec("UPDATE Quiz1 SET B = 1 WHERE Question = 1"); // THIS WORKS
$conn->exec("SET CHARACTER SET utf8");      // Sets encoding UTF-8
//$score = 'A';
//$scoreB = 'A'; 
//14
$author = 'Imanda';
//15
//$id = 1 ;
//16
// query
//$table = 'Quiz1';
//17
$sql = "UPDATE $table 

        SET $score = ( 1 + $score)

        WHERE Question = ?  "  ;
//20
$q = $conn->prepare($sql);
//21
$q->execute(array($QuestionN));




    //AddScore($dbh,'Quiz1','A','1'); 



}
catch(PDOException $e)
    {
    echo $e->getMessage();
    }
//  }
?>
share|improve this question
1  
Where is the script? – Mahesh Meniya Jul 21 '12 at 5:29
    
In the root of my websites server , – Keithsoulasa Jul 21 '12 at 5:33
    
Like If I don't pass any varibles to it , then it works and the hash vars are being received just find – Keithsoulasa Jul 21 '12 at 5:34
1  
"not working" is oh so helpful... not working HOW? You don't get expected results, you get error messages... what!? – Marc B Jul 21 '12 at 5:38
up vote 1 down vote accepted

You using mysql_query in two places, where it should be only in one place.

$query = mysql_query("UPDATE Quiz1 SET " . $var1 . " = (1 + ". $var1 .")". " WHERE Question = " . $var2);

    $result = mysql_query($query) or die('Query failed: ' . mysql_error()); 
} 

to

$query = "UPDATE Quiz1 SET " . $var1 . " = (1 + ". $var1 .")". " WHERE Question = " . $var2;
    $result = mysql_query($query) or die('Query failed: ' . mysql_error()); 
} 
share|improve this answer
    
Its still not working , I send the var values from a C# script , its driving me nuts since it worked fine last night ! – Keithsoulasa Jul 21 '12 at 5:52
    
Try to echo the query and execute query in mysql console and check the error... – Justin John Jul 21 '12 at 6:05
    
I'm running it with PHP vars so I don't have that option – Keithsoulasa Jul 21 '12 at 6:31
    
Like this code works $query = " UPDATE Quiz1 SET A = ( A + 1) WHERE Question = 1 "; – Keithsoulasa Jul 21 '12 at 6:31
    
but if I create a var for A in PHP , like $A ="A" ; that doesn't work – Keithsoulasa Jul 21 '12 at 6:31

Be sure to look into the MySQL documentation to aid you on your task.

mysqli: http://php.net/manual/en/book.mysqli.php

PDO: http://php.net/manual/en/book.pdo.php

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