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I keep getting the error links[i] is undefined.
I define it explicitly and yet it keeps giving me that error -- any ideas?

I am trying to do unobtrusive image rolovers on 5 links that I have.

function loadImages(){
    path = 'uploads/Splash-4/nav/'; 
    links = new Array();

    for (i=1;i<=5;i++){
        var id = "link-"+i;
        var defaultState = '<img src="' +path+i+'.jpg" border="0" />';
        links[i] = document.getElementById(id);

        // Place all image linksinto anchor
        links[i].innerHTML = defaultState;

        // What to do on mouseover
        links[i].onmouseover = function() { 
            links[i].innerHTML = '<img src="' +path+i+'a.jpg" border="0" />';
        }
        // What to do on mouse oUt
        links[i].onmouseout = function() {
            links[i].innerHTML = defaultState;
        }
    }
}
window.onload = loadImages;

HTML:

 <a href="?page=Profile" id="link-1"></a>
 <a href="?page=for-sale" id="link-2"></a><br />
 <a href="?page=testimonials" id="link-3"></a><br />
 <a href="?page=free-home-appraisal" id="link-4" /></a><br />
 <a href="?page=contact-me" id="link-5"></a><br />
share|improve this question
    
what line does it give you this error ? (use Chrome's developer console or firebug) –  Yanick Rochon Aug 30 '10 at 14:30
    
When I do the mousover it give me the error: its complaining about this line: links[i].innerHTML = '<img src="' +path+i+'a.jpg" border="0" />'; –  Andre Aug 30 '10 at 14:32
    
It's cleaner to instantiate an empty array using [] instead of "new Array()" –  Robusto Aug 30 '10 at 14:33

3 Answers 3

up vote 2 down vote accepted

The problem is that when your onmouseover() function gets called, your variable i = 6 because your last iteration yielded i = 6, causing the loop to end. Therefore, you must protect i somewhere. For example :

function loadImages(){
    path = 'uploads/Splash-4/nav/'; 
    var links = [];

    for (i=1;i<=5;i++){
        (function(j) {
            var id = "link-"+j;
            var defaultState = '<img src="' +path+j+'.jpg" border="0" />';
            links[j] = document.getElementById(id);

            // Place all image linksinto anchor
            links[j].innerHTML = defaultState;

            // What to do on mouseover
            links[j].onmouseover = function() { 
                links[j].innerHTML = '<img src="' +path+j+'a.jpg" border="0" />';
            }
            // What to do on mouse oUt
            links[j].onmouseout = function() {
                links[j].innerHTML = defaultState;
            }
        })(i);  // call the anonymous function with i, thus protecting it's value for
                // the mouseover/mouseout

    }
}
share|improve this answer
1  
While that's true (nice closure example by the way), it isn't causing the undefined issue OP is having. He's using the for() loop as though the Array has a 1-based index. –  user113716 Aug 30 '10 at 14:56
    
This nearly works, but there is still somthing worng its not doing mousout properly, it does seem to be getting mixed up with the iteration, maybe doing it this way is not the best... see here generic.webeasy.com.au/index.php?page=sub-page –  Andre Aug 30 '10 at 15:00
    
@patrick dw, thanks. even if the OP is using 1 as base index, it won't make any difference here, but it would if he's doing for (i=0; i<links.length; i++) { links[i]... } afterwards... @Andre, the mouseover/mouseout does seem awkward, but since I'm not sure what is the desire end result, I thought to keep it simple and simply try to address the issue. IMO, I would use .hover() –  Yanick Rochon Aug 30 '10 at 20:35
    
Yes, you're right. I looked at it much too quickly, and didn't pay attention to the fact that OP was building the Array in the loop, not just referencing it. –  user113716 Aug 31 '10 at 11:54

First off, you should be saying:

var links = [];

It's generally discouraged to use the Array constructor itself, and by not specifying var, you're making the links variable reside in the global space, which is generally bad.

Now, as to your actual problem.

Your event handlers are carrying a reference to the path and i variables from the outer scope, but by the time they're actually encountered, the variable i has the value 6 -- not what you intended at all! In order to fix that, you can change:

    // What to do on mouseover
    links[i].onmouseover = function() { 
        links[i].innerHTML = '<img src="' +path+i+'a.jpg" border="0" />';
    }
    // What to do on mouse oUt
    links[i].onmouseout = function() {
        links[i].innerHTML = defaultState;
    }

to

    // What to do on mouseover
    links[i].onmouseover = (function(path, i) {
        return function () {
            links[i].innerHTML = '<img src="' +path+i+'a.jpg" border="0" />';
        };
    })(path, i);
    // What to do on mouseout
    links[i].onmouseout = (function(i) {
        return function () {
            links[i].innerHTML = defaultState;
        }
    })(i);

This creates a new closure to hold the variables you want to capture. This way the inner i can still be, oh, 3 while the outer i goes to 6.

share|improve this answer

Your code snippet doesn't include a declaration of the variable links. If you haven't defined it elsewhere (i.e., if it's a local variable), you'll need to do it here:

Instead of

links = new Array();

You could do

var links = new Array();

One example can be found here.

If you have declared it elsewhere, it could be that this line

document.getElementById(id);

is returning null.

share|improve this answer
1  
It is permitted in javascript to declare variables without the var keyword. It just means you're making it global. It is good practice to not use global variables, but it won't cause the undefined in this case. –  user113716 Aug 30 '10 at 14:51
    
You are correct. I actually didn't know that...not doing so caused me a problem in the past, and after refactoring (including explicitly declaring the variable) my code worked, so I assumed that was a problem. Thank you for bringing this to the attention of those like me that thought otherwise. –  Andy Aug 30 '10 at 15:02
    
Yes it is almost always best to use var. Definitely an important standard practice to adopt. –  user113716 Aug 30 '10 at 15:58

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