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I am working on a billing system,, It's very basic right now but I was wondering if you could help me with my code. How do I insert the data from the HTML form into a MySQL database? My code:

<?php

if (isset($_POST['submitted'])) {

    include('connect-mysql.php');

    $date = $_POST['date'];
    $charge = $_POST['charge'];
    $payment = $_POST['payment'];
    $client_no = $_POST['client_no'];
    $client_name = $_POST['client_name'];
    $check_no = $_POST['check_no'];
    $check = $_POST['check'];
    $cash = $_POST['cash'];
    $notes = $_POST['notes'];
    $staff_initials = $_POST['staff_initials'];
    $sqlinsert = "INSERT INTO payments (date, charge, payment, client_no, client_name, check_no, check, cash, notes, staff_initials) VALUES ('$date', '$charge', 'payment', '$client_no', '$client_name', '$check_no', '$check', '$cash', '$notes', '$staff_initials')";

    if (!mysqli_query($dbcon, $sqlinsert)) {
        die('There was an error when trying to process your payment. Please contact technical support.');
    } //end of nested if statement

} // end of the main if statement
?>

<html>
<head>
    <title>New Payment</title>
</head>
<body>
<h1>Please Input Payment Details</h1>
<form action="new_payment.php" method="POST">
<input type="hidden" name="submitted" value="true" />
<fieldset>
    <legend>New Payment</legend>
    <label>Date:<input type="text" name="date" /></label><br>
    <label>Today's Charge: <input type="text" name="charge" /></label><br>
    <label>Today's Payment: <input type="text" name="payment" /></label><br>
    <label>Client Number: <input type="text" name="client_no" /></label><br>
    <label>Client Name: <input type="text" name="client_name" /></label><br>
    <label>Check Number: <input type="text" name="check_no" /></label><br>
    <label>Check: <input type="text" name="check" /></label><br>
    <label>Cash: <input type="text" name="cash" /></label><br>
    <label>Notes: <input type="text" name="notes" /></label><br>
    <label>Staff Initials: <input type="text" name="staff_initials" /></label><br>
</fieldset>
<br />
<input type="submit" value="Process Payment">
</form>
</body>
</html>

Please help me, this is very important that I finish this in a timely manner...

share|improve this question
3  
What's wrong with the code you have? It might not work but, you haven't really explained the problem clearly. –  AJ. Sep 25 '12 at 2:28
4  
It is critical that you used prepared queries to isolate the data from your query. As it stands now, you are wide open to SQL injection, and you will be hacked if you haven't been already. –  Brad Sep 25 '12 at 2:29
    
are you going to use MySQL or MySQLi ? –  balaphp Sep 25 '12 at 2:31
    
what's the problem ? –  StaticVariable Sep 25 '12 at 2:33
2  
I just want to reiterate Brad's comment. This is completely vulnerable to SQL injection. For example what if I change the staff initials field to read "JW'); DROP TABLE payments; --" Check out more information about SQL injection here bobby-tables.com –  jacobwalker0814 Sep 25 '12 at 3:03

3 Answers 3

First Error:-

if (isset($_POST['submitted']))

<input type="submit" value="Process Payment">

change to this:-

if($_POST['process'] == 'Process Payment') 
<input name="process" type="submit" id="process" value="Process Payment">

You can use this one instead (to prevent SQL injection):

// CONNECTION TO DATABASE

$mysqli = new mysqli('HOST','USERNAME','PASSWORD','DATABASE'); 

// CHECK CONNECTION

/* check connection */
if (mysqli_connect_errno()) {
    printf("Connect failed: %s\n", mysqli_connect_error());
    exit();
}        

$sqlinsert = "INSERT INTO payments (date, charge, payment, client_no, client_name, check_no, check, cash, notes, staff_initials) VALUES (?,?,?,?,?,?,?,?,?,?)";

$stmt = $mysqli->prepare($sqlinsert);

    $date = $_POST['date'];
    $charge = $_POST['charge'];
    $payment = $_POST['payment'];
    $client_no = $_POST['client_no'];
    $client_name = $_POST['client_name'];
    $check_no = $_POST['check_no'];
    $check = $_POST['check'];
    $cash = $_POST['cash'];
    $notes = $_POST['notes'];
    $staff_initials = $_POST['staff_initials'];

$stmt->bind_param("ssssssssss",$date, $charge, $payment, $client_no, $client_name, $check_no, $check, $cash, $notes, $staff_initials );

//EXECUTE QUERY
$stmt->execute();

$rowcount = $stmt->affected_rows;


if ($rowcount > 0)
{
echo "Success!";
}

else
{
echo "Error!";
}

//CLOSE EXECUTE
$stmt->close();
share|improve this answer
1  
Missing the initialisation of the $mysqli variable. $mysqli = new mysqli("localhost", "username", "password", "database"); –  Blair McMillan Sep 25 '12 at 4:12
    
Opps yea, thanks for reminding. UPDATED. –  Furry Sep 25 '12 at 6:25
    
If your problem solved with the solutions given, please tick the correct answer. –  Furry Oct 5 '12 at 8:56

I'm not sure but I think you should change

if (isset($_POST['submitted']))

to

if (isset($_POST['submit']))

and

<input type="submit" value="Process Payment">

to

<input type="submit" name="submit" id="submit" value="Process Payment">

and put $ for payment in INSERT command

$sqlinsert = "INSERT INTO payments (date, charge, payment, client_no, client_name, check_no, check, cash, notes, staff_initials) VALUES ('$date', '$charge', '$payment', '$client_no', '$client_name', '$check_no', '$check', '$cash', '$notes', '$staff_initials')";
share|improve this answer
1  
It's not a good idea to use name="submit", in case you might later try to use jQuery -- there's a conflict with a jQuery method. –  Barmar Sep 25 '12 at 3:52

If you are having problem in inserting to database you should change

 $sqlinsert = "INSERT INTO payments (date, charge, payment, client_no, client_name, check_no, check, cash, notes, staff_initials) VALUES ('$date', '$charge', 'payment', '$client_no', '$client_name', '$check_no', '$check', '$cash', '$notes', '$staff_initials')";

to

 $sqlinsert = "INSERT INTO payments (date, charge, payment, client_no, client_name, check_no, check, cash, notes, staff_initials) VALUES ('$date', '$charge', '$payment', '$client_no', '$client_name', '$check_no', '$check', '$cash', '$notes', '$staff_initials')";

You forgot to put $ before payment in Insert Value

share|improve this answer
    
While this may directly answer the question, it isn't a correct answer as it doesn't address the extreme vulnerability to SQL injections in the rest of the code. –  Blair McMillan Sep 25 '12 at 4:10

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