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I wrote code first without using functions to prototype, and of course, it worked fine:

$(function() {
    $(".PortfolioFade img")
        .mouseover(function() { 
            popup('PORTFOLIO');
            var src = $(this).attr("src").replace("images/paperclip.png", "images/paperclip-black.png");
            /*var src = $(this).attr("src").match(/[^\.]+/) + "-black.png";*/
            $(this).attr("src", src);
        })
        .mouseout(function() {
            ;
            /*var src = $(this).attr("src").replace("images/paperclip-black.png", "images/paperclip.png");
            $(this).attr("src", src); Look at popup.js mouseover events*/ 
        });
    });

However, when I expressed the same in function form, the function call didn't seem to work.

$(document).ready(function() {
   // put all your jQuery goodness in here.
   $('body').hide().fadeIn(1000);

    function ImageRollover(image_element, popup_name, original, replacement)
{
    $(element)
        .mouseover(function(){
            popup(popup_name);
            var src = $(this).attr("src").replace(original,replacement);
            $(this).attr("src",src);

        })
        .mouseout(function(){
            ;
        });
}

   ImageRollover(".Portfolio img",'PORTFOLIO',"images/paperclip.png","images/paperclip-black.png"); 
 });

Defining the function elsewhere didn't seem to have any effect either.

share|improve this question
1  
Please use a proper title that describes in a few words what your problem is. Imagine other people having the same problem but won't find your question because the title is meaningless. – Felix Kling Jun 18 '12 at 2:07
up vote 2 down vote accepted

Your function is defining the first variable as image_element, but you're referring to it as just element in the code. That's quite likely one factor to it not working.

You'll likely also encounter an issue with the keyword this inside your function. It isn't referring to the same object as in the original code (which jQuery sets to the HTML element for you). In your function, it is likely not being set to anything thus it's a link to window.

share|improve this answer
    
Heh, you were 47 seconds faster :-) – DaneSoul Jun 18 '12 at 2:12
    
:) I also spotted the problem with this inside his function after posting. – Eli Sand Jun 18 '12 at 2:13
    
Why this will be to window, but not to $(element) (if it will be corrcet variable name there)? – DaneSoul Jun 18 '12 at 2:17
    
Hmm I suppose changing $(this) to $(element) would be correct? (Assuming I changed image_element to element) – Louis93 Jun 18 '12 at 2:18
    
this isn't set to anything by default (well, by default it's window in a browser). jQuery sets it for you so it's useful, but in a function you call directly by its name, this isn't set. You can set it manually by calling your function with .apply() or .call(). – Eli Sand Jun 18 '12 at 2:24

Is this what you are trying to achieve?

function ImageRollover(element, popup, original, replacement)
{
    $(element).mouseover(function(){
            //popup(element);
            //var src = $(this).attr("src").replace(original,replacement);
            $(this).attr("src",replacement);

        })
        .mouseout(function(){
            $(this).attr("src",original);
        });
}

http://jsfiddle.net/SqyDg/

share|improve this answer
    function ImageRollover(image_element, popup_name, original, replacement)
{
    $(element)

Where element is defined?

May be you mean:

    function ImageRollover(image_element, popup_name, original, replacement)
{
    $(image_element)
share|improve this answer
    
Thanks, there were two other things that had to fixed though. – Louis93 Jun 18 '12 at 2:26

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