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Excuse me if i've got the terms wrong as i'm new to development, but I have a multiple dropdown menu's linked so that the results from the the previous menu determine what the next menu will populate the next.

i.e. if i select uk, the next list will show, London, If i select Spain, the next list will show Madrid

My dropdown menus are getting populated by mysql, this is fine but how do i link them up without calling on another page

Here's an example of what HTML i have:

<div id="container">
  <h3>Price List</h3>
  <form method="post" action="" name="form1">
  <? 
  include 'classes.php';
  $query="SELECT * FROM Sex_Table";
  $result=mysql_query($query);
  ?>
  <div id="select-1">
    <select class="calculate" name="sdf" onChange="getClothing(this.value)">
    <option value="0">Please Select</option>
    <? while($row=mysql_fetch_array($result)) { ?>
    <option value=<?=$row['Price']?> sex_price="<?=$row['Price']?>"><?=$row['Sex_Name']?>&nbsp;(£<?=$row['Price']?>)</option>
  <? } ?>
    </select>
  </div>
  <? 
  $Sex=intval($_GET['Sex_var']);
  include 'classes.php';
  $query="SELECT * FROM Clothing_Table WHERE Sex_Table_ID='$Sex'";
  $result=mysql_query($query);
  ?>
  <div id="select-2">
    <select class="calculate" name="sdf" onChange="">
    <option value="0">Please Select</option>
    <? while($row=mysql_fetch_array($result)) { ?>
    <option value=<?=$row['Price']?> sex_price="<?=$row['Price']?>"><?=$row['Clothing_Name']?>&nbsp;(£<?=$row['Price']?>)</option>
  <? } ?>
    </select>
  </div>
</form>

You'll notice that on change calls on "getClothing(this.value)"

Here is that js:

function getClothing(Sex_Table_ID) {        

    $.ajax({
       type: "get",
       url: "findClothing.php",
       data: { Sex_var: Sex_Table_ID },
       error: function(error) { alert('System error, please try again.'); },
       success: function(data){ //data is the response from the called file
         $("#select-2").html(data); //this changes the contents of the div to data that was returned
       }
     });    
}

I need it so that it doesn't call on url: "findClothing.php", as once it does this, my price no longer calculates.

I'm sure i don't really need to show this part but just incase, here's what calculates my price:

$(function(){
    $('.calculate').change(function() {
        var total = 0;
        $('.calculate').each(function() {
            if($(this).val() != 0) {
                total += parseFloat($(this).val());
            }
        });
        $('#total').text('£' + total.toFixed(2));
    });

});//]]>
share|improve this question
    
consider including 'classes.php' only once at the beginning of your script. reading a file before performing each query puts unnecessary load in your server and (depending on what you do in that file) may be unnecessarily opening new connections to the mysql server – Oerd May 16 '12 at 9:46

Are you sure your ajax data contains option tag with price as a value?

Also change:

$('.calculate').change(function() {

with

$(".calculate").live("change", function(){
share|improve this answer
    
As of jQuery 1.7, the .live() method is deprecated. Use .on() to attach event handlers if you are using higher jquery version. – VibhaJ May 16 '12 at 9:37

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