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I am a complete newbie in terms of jquery ajax and was so happy to found a code for my chain select drop down menu on the internet. The good thing is that the drop down is getting populated correctly and when I confirm it is getting saved in the mysql database, I see the saved value from the first drop down but I don't see the value in the second drop down menu anymore. I have no idea why this happens and would therefore greatly appreciate it, if someone you look into below code and let me know what I am doing wrong:

Jquery for the pre-populated drop down:

<script type="text/javascript">
       $(document).ready(function(){
            $("select#type").attr("disabled","disabled");
            $("select#category").change(function(){
            $("select#type").attr("disabled","disabled");
            $("select#type").html("<option>wait...</option>");
            var id = $("select#category option:selected").attr('value');
            $.post("select_type.php", {id:id}, function(data){
                $("select#type").removeAttr("disabled");
                $("select#type").html(data);
            });
        });

    });
    </script>

And the part of the drop down menu:

<?php include "select.class.php"; ?>    

                      <div class="control-group">
                   <label class="control-label">Kunde</label>
                        <div class="controls">

                   <select tabindex="1"  id="category" class="span5" name="kundennummer">
                           <?php $query = mysql_query("SELECT Kundennummer FROM auftrag WHERE Auftragsnummer=".$eventid);    
$row = mysql_fetch_array($query);
$id = $row['Kundennummer'];
echo mysql_error();
                           echo $opt->ShowCategory();

                            echo '<script>';
echo 'document.formname1.kundennummer.value='.$id.';';
echo '</script>';
 ?>
                         </select>

                        </div>
                        </div>
                         <div class="control-group">
                        <label class="control-label">Veranstaltungsort</label>
                        <div class="controls">

                   <select tabindex="1"  id="type" class="span5" name="veranstaltungsort">

                            <?php
                            $query = mysql_query("SELECT Veranstaltungsort FROM auftrag WHERE Auftragsnummer=".$eventid);    
$row = mysql_fetch_array($query);
$ort = $row['Veranstaltungsort'];
echo mysql_error();


                            echo '<script>';
echo 'document.formname1.veranstaltungsort.value="'.$ort.'";';
echo '</script>';?>
                         </select>
share|improve this question
    
do you mind copying the compiled html and javascript in JSFiddle so can take a better look at the code? –  Ahmed Ali Jul 12 '13 at 5:31
1  
@SandraGrassl : one last request,with samples- can you describe the processing of the selects? i mean when you select an option from the first select,what is expected to happen? –  Ahmed Ali Jul 12 '13 at 6:50
1  
and my last request: post the final HTML after PHP has run, that is, the complete select with the options generated and the script tags as they are echoed –  koala_dev Jul 12 '13 at 6:54
1  
Congrats for figuring that out,the thing is,we needed more info and code in order to better understanding :) –  Ahmed Ali Jul 12 '13 at 7:18
1  
@Sean : you're lucky to have such a wise mum ;) and it is pulling teeth indeed. –  Ahmed Ali Jul 12 '13 at 7:27

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