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I'm trying to swap two images in two divs on click event, so that 22a.jpg ends up in div#second and 22b.jpg ends up in div#first, but every time I click the "swap" button I get this error in Firebug: imgArray[2].src is undefined. I tried to run the code in Chrome 17.0.963.2 and IE 8.0, and it works just fine with no errors. I'm using Firefox 11.0

HTML

<body>
    <div id = "first" class = "thumbnail">
        <img class = "thumbsize" src = "22a.jpg" />
    </div>
    <div id = "second" class = "thumbnail">
        <img class = "thumbsize" src = "22b.jpg" />
    </div>
    <input type = "button" id = "swap" value = "swap" />
</body>

JS

<script type = "text/javascript">
    document.getElementById("swap").onclick = function(){
        if(document.images){
            var imgArray = document.images;
            imgArray[2] = new Image();
            imgArray[2].src = imgArray[0].src;
            imgArray[0].src = imgArray[1].src;
            imgArray[1].src = imgArray[2].src;
        }
    };
</script>    
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4 Answers

up vote 4 down vote accepted

document.images is readonly in Firefox (link to specification). You can create a new image, but you can't append it to the document.images array.

A better way to accomplish image swapping would look something like this:

document.getElementById("swap").onclick = function(){
    if(document.images){
        var imgArray = document.images;
        var tempSrc = imgArray[0].src;
        imgArray[0].src = imgArray[1].src;
        imgArray[1].src = tempSrc;
    }
};
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Thanks for the enlightenment and the code works like a charm. –  Tifa May 12 '12 at 23:10
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You only have two images in your HTML so imgArray[2] is not defined. Use a temp var to swap the other images.

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Have you tried putting it in some sort of ready-function?

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Not yet. Gimme a min and I will get back to you asap –  Tifa May 12 '12 at 22:52
    
It's not working –  Tifa May 12 '12 at 22:55
    
ok, you could try just saving the src in a variable, instead of creating a new Image. Just to give you some idea of what to try next. –  Marcus Johansson May 12 '12 at 23:01
    
Thanks for the tip now it works –  Tifa May 12 '12 at 23:12
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$('button#swap').toggle(function() {
$("div#first > img").attr('src','22b.jpg');
$("div#second > img").attr('src','22a.jpg');
}, function() {
$("div#first > img").attr('src','22a.jpg');
$("div#second > img").attr('src','22b.jpg');
});

Would something like this work for you?

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