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I was writing a slideshow using jQuery a couple weeks back and was wondering about my implementation. I wrote the slideshow to continuously fade images in and out, but the way I programmed it, the function recursion would never stop. I was wondering if there was a better way to do this. When I inspect the images while the slideshow is running, nothing is building up in the in my div tag, but could there be something bad going on here that I do not know about. Here is my code:

        var arr = new Array(3);
        arr[0] = 'http://farm1.static.flickr.com/143/321464099_a7cfcb95cf_t.jpg';
        arr[1] = 'http://farm4.static.flickr.com/3089/2796719087_c3ee89a730_t.jpg';
        arr[2] = 'http://farm1.static.flickr.com/79/244441862_08ec9b6b49_t.jpg';
        runSlide(0);
        //The main function that runs the slide show recursively
        function runSlide(t)
        {
            $('<img src="' + arr[t] + '" class="pic" id="photo' + t + '">').appendTo('#slide').hide();  
            $('#photo' + t).fadeIn(300).delay(7000).fadeOut(500, function() {   
                if(t == (arr.length - 1)) {
                    t = 0;
                } else {
                    t++;
                }
                $('.pic').remove();
                runSlide(t);
            }); 
        }  
       <div id="slide"></div>

Thanks Scientific

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2 Answers 2

up vote 1 down vote accepted

You can create the image element in the html and switch out the source. This will reduce manipulation of the DOM.

var arr = new Array(3);
        arr[0] = 'http://farm1.static.flickr.com/143/321464099_a7cfcb95cf_t.jpg';
        arr[1] = 'http://farm4.static.flickr.com/3089/2796719087_c3ee89a730_t.jpg';
        arr[2] = 'http://farm1.static.flickr.com/79/244441862_08ec9b6b49_t.jpg';

        //The main function that runs the slide show recursively

var $img = $('#img');

runSlide(0);
        //The main function that runs the slide show recursively
        function runSlide(t)
        {
            $img.attr('src',arr[t]).fadeIn(300).delay(7000).fadeOut(500, function() {   
                if(t == (arr.length - 1)) {
                    t = 0;
                } else {
                    t++;
                }
                $('.pic').remove();
                runSlide(t);
            });
        }  
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I like this idea, thanks for the feedback Jack! –  AgnosticDev Jan 25 '12 at 23:19

It's fine. When you run .remove() it completely removes the slide from the DOM. They will not stack or build up in your HTML.

From the documentation:

Use .remove() when you want to remove the element itself, as well as everything inside it. In addition to the elements themselves, all bound events and jQuery data associated with the elements are removed.

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thank you for the feedback John. I was thinking that running remove() cleared everything out of the div, but it is always good to get feedback on the issue –  AgnosticDev Jan 25 '12 at 19:40

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