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.

Why am I getting an error in Firebug "u is undefined"?

My page consists of a display of photos and photo gallery as a special separate section in the PHP code divided using the "break".

Photos and photo galleries are displayed using the "Fancybox.js".

The first time when I try to open a photo, everything works fine but when I do it again after I refresh the page the Firebug display error "u is undefined".

The Jquery for the menu that I'm using for display these separate part of the page:

$(document).ready(function(){

$(".menu_rfr").bind('click', function() {
$("#main").html('<img src="img/spin.gif" class="spin">');
location.replace($(this).attr('rel'));

});

$(".menu_clickable").bind('click', function() {
$("#main").html('<img src="img/spin.gif" class="spin">');
$("#main").load($(this).attr('rel'), function(event) {

});        
$(".menu_clickable").unbind("click");

});

});

The simplified PHP code looks like:

<?
if (!isset($a)) $a = '';
switch($a)
{
case 1:
default:
?>
<div class="menu_clickable prof_link" id="prof_info" rel="?a=2">Photos</div>
<div class="menu_clickable prof_link" id="prof_info" rel="?a=3">Gallery</div> 
<div id="main"></div>    
<?
break;//photos
case 2:
?>
<script type="text/javascript"> 

$("a.group").fancybox({
'titlePosition'     : 'over',
'overlayShow':false
 });
 </script>
 <?
 <a href="1.jpg" id="group" class="group"><img src="tmb/1.jpg" border="0"></a>
 <?
 break;
 case 3: // photo gallery 
 ?>
<script type="text/javascript"> 

$("a.groupg").fancybox({
'titlePosition'     : 'over',
'overlayShow':false
 });
 </script>
 <?
 <a href="2.jpg" id="groupg" class="groupg"><img src="tmb/2.jpg" border="0"></a>
 <?
 break;
 }
 ?>

As I said this is a simplified code, and probably there are some errors in it. I just wanted to show where and how I'm using Fancybox.

Is there a conflict between the jquery code for the menu at the top of the page and this for fancybox or there is some other reason why I keep getting an error in Firebug "u is undefined" after opening the other part of the PHP page and attempts to re-opening photos?

share|improve this question
    
can you provide a url to the page? –  Nalum May 12 '10 at 15:11
    
I still did not finished this page and there is no URL :( –  Sergio May 12 '10 at 15:14
    
If you're using IE, switch to another browser. Chrome and Firefox both have excellent developer tools and let you debug Javascript errors far easier. As well, the Javascript console in either will tell you exactly what line/script caused the error, unlike IE, which will tell you the sky's blue. –  Marc B May 12 '10 at 15:18
    
No, I'm not using IE. I get this error with Firefox. –  Sergio May 12 '10 at 15:26
1  
Make sure your jquery code is after the element you are trying to access. In your php code you have the jquery call $("a.group") before you add any anchor elements to your page. Best practice would be to either move your script tags after the anchors or wrap your script in a $(document).ready() –  AdmSteck May 12 '10 at 15:39

4 Answers 4

View your HTML source and make sure you don't have FancyBox declared twice. I just had the exact same error pop up in firebug and this is what I found in my source:

<script language="javascript" type="text/javascript" src="./ext_scripts/jquery.fancybox-1.3.1/fancybox/jquery.fancybox-1.3.1.pack.js"></script>

<link rel="stylesheet" href="./ext_scripts/jquery.fancybox-1.3.1/fancybox/jquery.fancybox-1.3.1.css" type="text/css" media="screen" />  
<script language="javascript" type="text/javascript" src="./ext_scripts/jquery.fancybox-1.3.1/fancybox/jquery.fancybox-1.3.1.pack.js"></script>

Not sure exactly why it happened, but if you nest your include and require_onces in your PHP like I unfortunately did, you can wind up with some very funky Javascript references.

share|improve this answer
    
Exactly what the problem was. Thanks Peter! –  Greg S Aug 27 '10 at 14:50
    
Exactly my problem as well. I had it declared in the popup form that was inlined. –  NotMe Sep 27 '10 at 19:43

You probably have the fancybox.js script included twice which is causing the issue. Please check all your files and remove the the ones that are not required.

share|improve this answer

I have this same bug as well - I think it is due to the the 'loading' divs being reset by the cleanup code. I have a VERY nasty fix:

Change:

if ($("#fancybox-wrap").length) {
   return;

To: (To skip the multiple-init check)

if (false && $("#fancybox-wrap").length) {

And add:

$.apzFancyboxInit = fancybox_init;

after 'fancybox_init = function() {'

What this does is allow us to call the initialisation routine multiple times; and saves the function pointer to this routine in a global variable. All we have to do now is make sure we call the $.apzFancyboxInit function every time a fancybox is closed. The best place to do this is in the onClosed function handler; so (in my case), my calls look like this:

        $.fancybox(
        {
            'showCloseButton' : true,
            'type' : 'ajax',
            'onClosed' : function()
            {
                $.apzFancyboxInit();
            },
share|improve this answer

If you are using a "ripped" template you may find that there are the fancybox generated div written in tho the html template right above the </body> tag.

check if your html output has a div with the id of fancybox-wrap if you have JavaScript disabled, and remove that.

share|improve this answer

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.