0

I have a very simple form on a webpage. It contains a product description followed by a textbox (Quantity box) where the user can enter a new quantity, and then a price next to the textfield.

When the update button is clicked, it should update the database.

The name's of the textfields correspond to the product that they are entering a new value (quantity) for.

Zero errors are being generated. I have used print_r($_POST); to see what's being sent, if anything:

I would greatly appreciate any help at all, thank you so much.

jase

  • 1
    +1 why the downvote? Looks like a perfectly good question to me. – Bob Kaufman Dec 16 '10 at 5:08
0

$key and $value are not defined, since your for loop is naming the variable $id and $data

foreach($_POST as $id=>$data)

  • Thanks, I have also tried $id=>$data. Exact same thing happens: Nothing. – anon271334 Dec 16 '10 at 5:08
  • could you do a echo $id . "->".$data. also can you please post the table definition? – The Scrum Meister Dec 16 '10 at 5:10
  • print_r($id); and print_r($data); reveal that the correct information is in the variables $id and $data. However, nothing gets added to the database. – anon271334 Dec 16 '10 at 5:16
  • can you please post the table definition? is the sessionid column required? – The Scrum Meister Dec 16 '10 at 5:18
  • are you sure you are connected to the correct database? i noticed on the link you provided that you are using the mysse db – The Scrum Meister Dec 16 '10 at 5:20
0

There are a couple things you can try to help troubleshoot. Try using mysql_real_escape_string with the key variable. If the column's are integers, try removing single quotes and casting the value to insure value is an integer. For example:

mysql_query("INSERT INTO sessions (product, qty) VALUES ('". mysql_real_escape_string($id) . "', " . (int) $data . ")") or die(mysql_error());

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy