Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free.

First of all I did not write this code. I found it on somebody else's website and I want to learn from it by trying it out myself. However I can't make it work. I've googled for the code in case it's a jQuery plugin that's freely available or anything, but I can't find it anywhere on the web.

I have my sidebar (with id #sidebar) and have given it the class "sticky", I've included jQuery at the top of the page, and I've put this code in place in the head:

<!-- Floating sidebar jQuery --> 
        <script type="text/javascript"> 
            var Sticky = function( $obj, opts ){

               $(window).scroll( 
                  function(e){
                     Sticky.onScroll(e, $obj, opts );
                  });

            }
            Sticky.onScroll = function( e, $o, opts ){

               var iScrollTop = $(window).scrollTop();
               var sClass = "sticky";

               //set original data
               if( !$o.data(sClass) ){
                  $o.data(sClass, {css:{position:$o.css('position'),top:$o.css('top')}, offset:$o.offset()} );
               }
               var oOrig = $o.data(sClass);
               var bIsSticky = $o.hasClass(sClass);

               if( iScrollTop > oOrig.offset.top && !bIsSticky ){
                  $o.css({position:'fixed',top:0}).addClass(sClass);
               }else if(iScrollTop < oOrig.offset.top && bIsSticky){
                  $o.css(oOrig.css).removeClass(sClass);
               }   

            }

            Sticky( $('#sidebar') );

        </script> 

As you can see, the final JS line Sticky( $('#sidebar') ); fires on the #sidebar element. However, when you scroll down, this error is written to Chrome's log:

Uncaught TypeError: Cannot read property 'offset' of undefined

Firebug is a bit more verbose, and says:

oOrig is undefined: if( iScrollTop > oOrig.offset.top && !bIsSticky ){

I'm trying my best to understand this but can somebody help me see why it's not working?

Thanks!

Jack

share|improve this question
    
What is the output if you put console.log($o.data(sClass)); before var oOrig = $o.data(sClass);? I cannot see an error in the code. Add some log calls and check the contents of the variables. Also check, whether the code inside if( !$o.data(sClass) ) statement is executed. –  Felix Kling Aug 3 '10 at 13:07

2 Answers 2

up vote 4 down vote accepted

Wow, new answer...Thanks felix

wrap the function call in a ready function.

$(function() {
    Sticky($('#sidebar'));
});

The dom is most likely not ready when you call Sticky($('#sidebar')) so when .data is used to set data on $o it actual does nothing:

$o.data(sClass, {css:{position:$o.css('position'),top:$o.css('top')}, offset:$o.offset()} );].  

So when it gets the data on line:

var oOrig = $o.data(sClass);

it cannot actualy get the data.

This is because the dom elements are not ready to be manipulated because the dom is not ready yet.

OLD ANSWER (NOT RIGHT!)

$.offset is a function.

The problem in the line:

if( iScrollTop > oOrig.offset.top && !bIsSticky ){

is that: oOrig.offset is a function, not a variable. So oOrig.offset.top is not valid. Simply call the function and it will return a variable with the top property which you can access:

if( iScrollTop > oOrig.offset().top && !bIsSticky ){

Explination:

oOrig.offset is a reference to a function (the offset function in jquery).

You must call the function to access the .top property.

share|improve this answer
    
I'm afraid that still triggers the same error, the Console just gives the same message but with a couple of brackets after offset! :( EDIT: Chrome now says "Uncaught TypeError: Cannot call method 'offset' of undefined" –  Jack Aug 3 '10 at 12:59
    
It still says that oOrig is undefined. –  Jack Aug 3 '10 at 13:00
3  
This answer is wrong. Why those upvotes? offset is not a function on oOrig. If you look closely, then oOrig is the object that is stored in $o.data(sClass) which is {css:{position:$o.css('position'),top:$o.css('top')}, offset:$o.offset()}. And even if it was a function, then it would throw another error and not that oOrig is undefined. –  Felix Kling Aug 3 '10 at 13:03
    
@Bob: in the if statement you're talking about, oOrig.offset actually is a variable. oOrig comes from .data(), so it should be a plain old object with 3 properties, css, top, and offset. Look at the line immediately below the //set original data comment. It looks to me like the problem is that the $o.data(sClass, {/*...*/}) isn't happening correctly. –  Matt Ball Aug 3 '10 at 13:07
2  
Sometimes it would be better if jQuery did not fail silently.... –  Felix Kling Aug 3 '10 at 13:21

The code you're using seems overly complicated. I wrote a tutorial on how to achieve this that should be much easier to implement and less error prone.

http://andrewhenderson.me/tutorial/jquery-sticky-sidebar/

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.