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I have a bit of code which updates a table called job, but once the the page is executed it does not update the table. Here is the code:

$item = isset($_POST['item']);
$ref = isset($_POST['ref']);

$con = mysql_connect("$host","$username","$password");
if (!$con)
  {
  die('Could not connect: ' . mysql_error());
  }

mysql_select_db("$db_name", $con);

$sql="UPDATE job SET item = '$item' WHERE ref='$ref'";
if (!mysql_query($sql,$con))
  {
  die('Error: ' . mysql_error());
  }
header("location:index.php");

I have echoed out the $ref variable and it is there but it won't work if I put it in the WHERE clause.

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What is the value of $sql just before you execute the query? Also, beware of SQL Injection (you probably want to escape $item and $ref before putting them in a query). –  Dominic Rodger Nov 4 '11 at 12:11
    
What type of data is the $ref variable? –  James Nov 4 '11 at 12:11
4  
You realise that isset() returns a boolean true/false, not the actual value of the argument? –  Mark Baker Nov 4 '11 at 12:11
1  
Please use bind variables to avoid severe SQL injection vulnerabilities! –  a'r Nov 4 '11 at 12:11
    
@james The $ref is a string, i can echo out the value $ref correctly but it wont accept it in the clause. –  SebastianOpperman Nov 4 '11 at 12:16

2 Answers 2

up vote 3 down vote accepted
$ref = isset($_POST['ref']);

I have echoed out the $ref variable and it is there

You aren't assigning the actual value of $_POST['ref'], you're only assigning whether or not it is set. Try:

$ref = isset($_POST['ref']) ? mysql_real_escape_string($_POST['ref']) : NULL;

You can check your query by reading the SQL string you've created: exit($sql)

See also: What is SQL injection?

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$item = isset($_POST['item']);
$ref = isset($_POST['ref']);

by this two statements, variables will have 0 or 1 as values ...better write this way..

$item = (isset($_POST['item']) == 1 ? $_POST['item'] : '');
$ref = (isset($_POST['ref']) == 1 ? $_POST['ref'] : '');

if($item !='' && $ref !=''){
   // your update query
}
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