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I'm trying to get a drop down box to alter a second drop down box through the use of a jquery/ajax script. Firebug is showing Jquery is working but my script isn't showing at all.

<script type="text/javascript">
        function ajaxfunction(parent)
        {
            $.ajax({
                url: '../functions/process.php?parent=' + parent;
                success: function(data) {
                    $("#sub").html(data);
                }
            });
        }
    </script>

process.php is just a MySQL query (which works)

My initial drop down box is populated by a MySQL query

<select name="front-size" onchange="ajaxfunction(this.value)">
//Query
</select>

And then the second drop down box is just

<select name = "front-finish" id="sub">
</select>

How can I solve this?

share|improve this question
    
can you see your ajax call in Firebug ? Do you have any error in the console ? –  MatRt Mar 18 '13 at 6:23
    
Ah I do now.ReferenceError: ajaxfunction is not defined –  Michael N Mar 18 '13 at 6:25
    
Look into my ans it will work for you –  Gautam3164 Mar 18 '13 at 6:26
1  
I think you have an issue with jQuery inclusion. When it's ok, the ajax call will be visible and it should be ok. Advice: avoid inline code like onchange=.... Prefer adding javascript behaviour with the .ready() method of jQuery and .on('change', callback) –  MatRt Mar 18 '13 at 6:28

3 Answers 3

up vote 1 down vote accepted

calling inline function is not good at all... as web 2.0 standards suggest using unobtrusive JS rather than onevent attributes....check out why here.. other thigs..correct way to use ajax is by using type and data ajax option to send values in controller..

<script type="text/javascript">
    $(function(){
    $('select[name="front-size"').change(function()
    {
        $.ajax({
            url: '../functions/process.php',
            type:'get',
            data:{'value' : $(this).val()}, 
            dataType:"html",   //<--- here this will take the response as html... 
            success: function(data) {
                $("#sub").html(data);
            }
        });
    });
 });
</script>

and your proces.php should be..

 <?php
   //db query ...thn get the value u wanted.. 
   //loop through it..
   $optVal .= "<option value="someDbValue">some DDB values</option>";
   // end loop

   echo $optValue;exit;

updated

looks like you still have onchange="ajaxfunction(this.value)" this in your select remove that it is not needed and the ajaxfunction in javascript too...

<select name="front-size" >    
                   //----^ here remove that
share|improve this answer
    
good advice ! but it is not the cause of the problem –  MatRt Mar 18 '13 at 6:30
    
It should be like $optVal. = "<option value.." like that else it will return only the last row in DB –  Gautam3164 Mar 18 '13 at 6:39
    
opppss!!! yes thanks.. :) –  bipen Mar 18 '13 at 6:40
    
Hmm I continue to get a 'ajaxfunction undefined' error in firebug –  Michael N Mar 18 '13 at 22:57
    
look like you ar still calling the inline funtion.. remove that ..check my updates –  bipen Mar 19 '13 at 5:23

use jQuery.on() that will allow us to add events on dynamically loaded content.

$('select[name^="front-"]').on('change',function(e){
    e.preventDefault();
    var value = $(this).val();
    ajaxfunction(value);
});

[name^="front-"] this will select all the SELECT box having name starts with front-.

share|improve this answer

In your process.php give like this

echo "<select name='front-finish' id='sub' onchange='ajaxfunction(this.value)'>";

like this you need to add the "onchange" function to the newly created select box through ajax

or you can remove onchange function and write like

$("select[name^='front-']").live('change',function(){
   //Do your ajax call here
});
share|improve this answer
    
There is no need to add event listener on front-size.. –  MatRt Mar 18 '13 at 6:31
    
Iam giving 2 soultions and the second one will work better if he has 2 or more select boxes and also he is updating entire select box through ajax....thats why instead of adding onchange event on every ajax call I suggetsed to add event....I think it should better –  Gautam3164 Mar 18 '13 at 6:33

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