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I'm trying to insert records into a mysql db but the fields are blank. Here is my js:

$("#submit").click(function() { 
    var product1name     = $("input#product1name").val();
    var product2name     = $("input#product2name").val();
    var product3name     = $("input#product3name").val();
    var product4name     = $("input#product4name").val();
    var product5name     = $("input#product5name").val();
    var product1quantity = $("input#product1quantity").val();
    var product2quantity = $("input#product2quantity").val();
    var product3quantity = $("input#product3quantity").val();
    var product4quantity = $("input#product4quantity").val();
    var product5quantity = $("input#product5quantity").val();

    var dataString = 'product1name='+ product1name + 'product2name=' + product2name + 'product3name=' + product3name + 'product4name=' + product4name + 'product5name=' + product5name + 'product1quantity='+ product1quantity + 'product2quantity='+ product2quantity + 'product3quantity='+ product3quantity + 'product4quantity='+ product4quantity + 'product5quantity='+ product5quantity + 'salesid='+ salesid + 'email='+ email + 'wpuseremail='+ wpuseremail;

    $.ajax({  
      type: "POST",
      url: "process.php",
      data: dataString,
      success: function(json) {  
        $('#contact_form').html("<div id='message'></div>");
        $('#message').html(json.type)
        .append(json.message)
        .hide()
        .fadeIn(1500, function() {
          $('#message').append("<img id='checkmark' src='images/check.png' />");
        });
      }
    });
    return false;

});

Here is my php:

<?php
$product1quantity = $_POST["product1quantity"];
$product2quantity = $_POST["product2quantity"];
$product3quantity = $_POST["product3quantity"];
$product4quantity = $_POST["product4quantity"];
$product5quantity = $_POST["product5quantity"];

$username = "user";
$password = "pass";
$hostname = "host"; 

$dbhandle = mysql_connect($hostname, $username, $password)
 or die("Unable to connect to MySQL");

$selected = mysql_select_db("dbname",$dbhandle)
  or die("Could not select dbname");

$result = "INSERT INTO dbname.tablename (product1name, product2name, product3name, product4name, product5name, product1quantity, product2quantity, product3quantity, product4quantity, product5quantity, id) VALUES ('', '', '', '', '', product1quantity, product2quantity, product3quantity, product4quantity, product5quantity, NULL)";
mysql_query($result);

mysql_close($dbhandle);

$response = array('type'=>'', 'message'=>'');
$response['type'] = 'success';
$response['message'] = 'Thank-You for submitting the form!';
print json_encode("success");
?>

I've confirmed that it works when i do NOT use variables in the INSERT statement, but rather hardcoded values. Something seems wrong with my variables.

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1  
I agree with @reikyoushin –  Robert Rozas May 14 '13 at 21:34
    
have you tried any basic debugging, e.g a var_dump($_POST)? –  Marc B May 14 '13 at 21:41

2 Answers 2

up vote 3 down vote accepted

seems your so called variables doesnt have $ in front of them..

see

$result = "INSERT INTO dbname.tablename (product1name, product2name, product3name,     product4name, product5name, product1quantity, product2quantity, product3quantity, product4quantity, product5quantity, id) VALUES ('', '', '', '', '', $product1quantity, $product2quantity, $product3quantity, $product4quantity, $product5quantity, NULL)";

but please fix your code because it is highly risky to insert directly from POST variables because of SQL injection security vulnerabilities

you can consider using prepared statements like PDO or mySQLi

read more here: http://net.tutsplus.com/tutorials/php/why-you-should-be-using-phps-pdo-for-database-access/

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1  
Thanks @reikyoushin - my json datastring was also wrong. It should be: var dataString = 'product1name='+ product1name + '**&**product2name=' + prod.... and I'll most certainly take your advice on mySQLi!! –  the robert May 15 '13 at 14:35

I think you missed the dollar sign on your variables ($).

you should write :

$result = "
    INSERT INTO dbname.tablename (
        product1name, 
        product2name, 
        product3name, 
        product4name, 
        product5name, 
        product1quantity, 
        product2quantity, 
        product3quantity, 
        product4quantity, 
        product5quantity, 
        id
    ) VALUES (
        '', 
        '', 
        '', 
        '', 
        '', 
        $product1quantity, 
        $product2quantity, 
        $product3quantity, 
        $product4quantity, 
        $product5quantity, 
        NULL
    )
";
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