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I`m trying to parse date in PHP. I copy part of several examples but it is not working. What I am trying to do is : I have a PHP file that receives a variable 'parttype' and runs a query.

<?php

$parttype = $_POST['parttype'];
 echo "$parttype";              

$conn = mysqli_connect("127.0.0.1", "root", "") or die ("No connection");
mysqli_select_db($conn , "shop") or die ("db will not open");

$query = "SELECT * from parts where parttype='$parttype'";
$result = mysqli_query($conn, $query) or die("Invalid query");

echo '<table border="1" align ="center"><tr><th>Id</th><th>Name</th><th>Price</th><th>InStock</th><th>Description</th><th>SUpplier</th><th>Quantity</th><th>Remove</th></tr>';

while($row = mysqli_fetch_array($result))
  {
  echo "<tr><form action='ppcomppartout.php' method='post'><td><input type='hidden' name='partid' value='$row[0]'>" . $row[0] . "</td><td>" . $row[1] . "</td><td>" . $row[2] . "</td><td>" . $row[3] . "</td><td>" . $row[5] . "</td><td>" . $row[6] . "</td>
  <td><input type='text' name='qtty' placeholder='0'></td><td>Buy <input type='submit'></td>
  </form></tr>";
  }  

echo "</table>";

mysqli_close($conn);                                       

 ?>

Then in the index.php I have a function get() that posts the variable to data.php and another function that is not working - function parse(data). I eventually insert a button to get some results, but I wanted the results to come up as soon as I change the values on the select box.

 <html>
    <head>

    <script type="text/javascript" src="http://code.jquery.com/jquery-1.9.1.js"></script>
    <script type="text/javascript" src="http://ajax.googleapis.com/ajax/libs/jquery/1.7/jquery.min.js"></script>

<script type="text/javascript">

function get() {
    $.post("data.php", {parttype: form.parttype.value },
    function(output) {
        $("#output").html(output).show();
    });
    }


function parse(data){
 $('#output').append('<select>');

 $("select").on("change", function(evt) 
        {
          line_record( $("select option:selected").index(),data)
        });

}       

 </script>
</head>
<body>

 <form name="form">

     <select name="parttype" style="width: 117px">
<?php

$con = mysqli_connect("127.0.0.1", "root", "") or die ("No connection");
mysqli_select_db($con , "shop") or die ("db will not open");

$query = "SELECT distinct parttype from parts";
$result = mysqli_query($con, $query) or die("Invalid query");

while($rows = mysqli_fetch_array($result)) {
   echo "<option value=\"" . $rows[0] . "\">" . $rows[0] . "   </option>";
}
echo "</select>";

mysqli_close($con);
?>
     </select>

<!--<input type="submit" value="OK!!"/>-->
 </form>
<!--<input type="text" name="parttype">-->

<!--<input type="button" value="Get" onClick="get();" >-->
<input type="submit" value="Get" onClick="get();" >

 </form> 

  <div id="output"></div>

</body>
</html>

Can some one help with this?? What I am doing wrong ??

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Well, your English may not be good, but at least you're using SQLi feaures. –  cygorx Mar 25 '13 at 17:13

1 Answer 1

You don't specify what the problem is exactly, but you should take it step by step.

The first problem you will encounter is probably when you call your get() function on page load. The data you are sending to your php script is:

{parttype: form.parttype.value }

where form.parttype.value seems to be undefined. If you want to send the values of your form, you can change that to:

$("form").serialize()

You should also check your html source as there seem to be multiple closing form tags.

Note: You are dumping your $_POST variable in your sql query without any validation or escaping. You should really switch to prepared statements as your code is vulnerable to sql injection.

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