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.

Maybe a silly question but here goes anyway.

Example: Let's say I have one non-looping animated GIF and I have two img elements.

<img src="" id="slot1" />
<img src="" id="slot2" />

So I use a little javascript to change the source of the slot1.

function changE(x)
{var image=document.getElementById (x);
 image.src="animated.gif";
}

someButtonGotClicked=changE('slot1'); 

that works fine. Gif plays from start to end but if I then change the src of slot2 to the same gif:

changE('slot2');  

slot1 resets it's gif back to the start to sync with slot2 starting it's gif.

Now i'm aware I could copy the gif and have 2 seperate files to use and I know about sprite sheets but I'm curious If I can use one copy of a gif and have it used multiple times on a page without all instances of the gif being restarted everytime another img element recieves the same file as it's src?

Hope that wasn't confusing. Thanks.

share|improve this question
    
On which browser(s) do you observe this behavior? –  maerics Feb 17 '12 at 22:49
    
I assume you also don't want to simply remove the first gif before adding the new one? –  charlieg Feb 17 '12 at 22:55
    
Have you tried to access img-element through images-collection? function changE(x) {var image=document.images[x]; image.src="animated.gif"; } –  Teemu Feb 17 '12 at 22:56
    
@maerics All of them as far as I know –  Nikki Feb 17 '12 at 23:31
    
@Teemu Makes no difference but Ingenu's answer seems to work (see below) –  Nikki Feb 17 '12 at 23:32

2 Answers 2

up vote 5 down vote accepted

Once an image is loaded in memory, all other objects that request that image, using the same URL, get a reference to the image from the browser cache. This avoids loading the same image multiple times. In the case of a gif, one of the meta data to be kept track of is the current frame, which is stored not at the <img> dom element, but rather at the browser level in the structure it uses to store that gif.

On load, that frame index is reset. So, while the browser is processing the gif loop, a second image loading sets the current frame index to the beginning, hence both images synchronize.

This is a browser implementation, and it seems most browsers follow this implementation. One advantage to this is that if you have thousands of little gifs (from the same URL) in one page, the browser would do a lot less computation to render them, because it would only change one frame index, not thousands.

Edit: To fix your code you'd have to basically add something random at the end of your image.

function changE(x)
{var image=document.getElementById (x);
 image.src="animated.gif?" + Math.random();
}

So the browser thinks this is a different image (i.e. different URL).

share|improve this answer
    
Does appending a query string to an image url have an effect on this? –  s_hewitt Feb 17 '12 at 23:19
    
Yes, that's a workaround, because it's considered a different URL. –  Candide Feb 17 '12 at 23:23
    
That's clever. Does it have any drawbacks? –  Nikki Feb 17 '12 at 23:30
    
@Nikki Yes, bandwidth/load-time because the browser will load the same image twice. –  Candide Feb 17 '12 at 23:35
    
@Ingenu So the resources used by the browser in your solution are essentially the same as actually making another copy of the gif for slot2? –  Nikki Feb 17 '12 at 23:44

Try using a solution like so:

<img src="" id="slot1" class="animate" />
<img src="" id="slot2" class="animate" />


(function(doc, w) {
    var changE, getElementsByClassName;

    changE = function(img) {
        img.src = "animated.gif";
    };
    getElementsByClassName = function(node, classname) {
        if (node.getElementsByClassName) { // use native implementation if available
            return node.getElementsByClassName(classname);
        } else {
            return (function getElementsByClass(searchClass, node) {
                if (node == null)
                    node = doc;
                var classElements = [],
                    els = node.getElementsByTagName("*"),
                    elsLen = els.length,
                    pattern = new RegExp("(^|\\s)" + searchClass + "(\\s|$)"), i, j;

                for (i = 0, j = 0; i < elsLen; i++) {
                    if (pattern.test(els[i].className)) {
                        classElements[j] = els[i];
                        j++;
                    }
                }
                return classElements;
            })(classname, node);
        }
    };
    w.onload = function() {
        var imgs, i = 0, l;
        imgs = getElementsByClassName(doc, 'animate');
        l = imgs.length;
        for (i; i < l; i++) {
            imgs[i].onclick = function(e) { changE(this); };
        }
    };
})(document, window);

This will set a clicke event for each image with the calss name animate and the click event will only effect the specific image clicked.

share|improve this answer
    
I will definitely attempt to comprehend your solution when I have more time :P –  Nikki Feb 17 '12 at 23:51
    
If you have any questions drop me a line. The bulk of the code is just selecting images by class name. If you are able to, I would recommend checking out jQuery, It would turn all the above code into this: $(.animate).click(function(e) { changE(this); }); jquery.com –  Paul Feb 17 '12 at 23:56

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.