Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I've been unable to get an ajax script to run for some time.

Basically, I need the user to select an option from one drop down box, then, based on what's selected, the second drop down box with populate accordingly based on a MySQL query.

My Script looks like

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

My initial drop down box is populated by a MySQL query like so

<select name="front-size" onchange="ajaxfunction(this.value)">
     <?php
    $door_size = $db->prepare("SELECT DISTINCT door_size FROM doors WHERE door_model = '".$_SESSION['front_door']."'");
    $door_size->execute();
    while($row = $door_size->fetch(PDO::FETCH_ASSOC))
    {
        $size = $row['door_size'];
        echo '<option value="'.$size.'">'.$size.'</option>';
    }
    ?>
</select>

The second drop down box is empty

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

And process.php should do the next query based on what was previously selected (this works on its own)

<?php
    session_start();
    include ('config.php');

    $parent = $_GET['parent'];

    $update_option = $db->prepare("SELECT door_finish FROM doors WHERE door_model = '".$_SESSION['front_door']."' AND door_size = '".$parent."'");
    $update_option->execute();
    while($row = $update_option->fetch(PDO::FETCH_ASSOC))
    {
        $door_finishes = $row['door_finish'];
        echo '<option value="'.$door_finishes.'">'.$door_finishes.'</option>';

    }
?>

In Firebug, when I select my first drop down menu, this error is shown and I've been unable to solve it.

ReferenceError: ajaxfunction is not defined

ajaxfunction(this.value)

How can I fix this?

share|improve this question
add comment

1 Answer 1

up vote 1 down vote accepted

you are calling ajaxfunction but you haven't defined it anywhere in the code.

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

On a broader note, why are you calling that inline in your html (onchange=ajaxfunction(this.value)) when the same thing can be accomplished in your ready function?

<script type="text/javascript">
(function(){
$('select[name="first"]').change(function(){
//do stuff
});
$('select[name="second"]').change(function(){
//do other stuff
});
})
</script>

would be better

EDIT: check this jsfiddle for a working example http://jsfiddle.net/WF8CV/

share|improve this answer
    
But haven't I already added my ajax stuff under $.ajax? I've tried adding ajaxfunction to the $('select [name="front-size"]').change(function () line after function but that doesn't work. –  Michael N Mar 18 '13 at 23:22
    
I've also tried to add it to the first function but that doesn't work either. –  Michael N Mar 18 '13 at 23:37
1  
at least one problem as well is that you're using an invalid selector "select [name='front-size']" doesn't work because you've got a space between the element and the [name=] –  Brad Mar 18 '13 at 23:44
    
Right, I'm still confused about the actual ajaxfunction function though. I though that the $,ajax section was the ajax stuff so what do I need to do under function ajaxfunction(stuff){}?? –  Michael N Mar 18 '13 at 23:47
1  
also just added a JS fiddle to demonstrate this. $.ajax does not equal ajaxfunction(). you have to explicitly name your function and call it on some action OR (as you've done) define an anonymous function to handle the your change event in your jquery ready function –  Brad Mar 18 '13 at 23:48
show 2 more comments

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.