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Is there a way to randomize the images in this jquery slideshow so it doesnt start with the same image every time the page refreshes?

Here is the HTML:

<div id="slideshow">

<img src="http://image.jpg" alt="image 1" class="active">
<img src="http://image.jpg" alt="image 2" >
<img src="http://image.jpg" alt="image 3" >

</div>

And here is the script:

function slideSwitch() {
var $active = $('#slideshow IMG.active');

if ( $active.length == 0 ) $active = $('#slideshow IMG:last');

var $next =  $active.next().length ? $active.next()
    : $('#slideshow IMG:first');

$active.addClass('last-active');

$next.css({opacity: 0.0})
    .addClass('active')
    .animate({opacity: 1.0}, 6000, function() {
        $active.removeClass('active last-active');

    });
}

$(function() {
setInterval( "slideSwitch()", 8000 );
});

THANKS!!!!

share|improve this question
    
You can try Math.random() inside your slideswitch function. make it generate between 0 and 2 and use it to index your images –  Saju Jan 21 '13 at 10:46
    
No because your images are hardcoded into your HTML. You could get javascript to switch it up upon loading the page (there would be a split second where image1 would always show) or you could make javascript put those image elements together and randomize which image takes on the .active class. –  George Jan 21 '13 at 10:48

2 Answers 2

you could randomly assign active class to your image tag on page load, like:

$(document).ready(function() {
  $("#slideshow img").removeClass("active");
  randomDiv = $("#slideshow img").get().sort(function(){ 
     return Math.round(Math.random())-0.5
  }).slice(0,1);
  $(randomDiv).addClass("active");
});

So that each time new img tag gets active class and will start from that img tag

share|improve this answer

First define all images with class by number. Say, 'image 1','image 2', 'image 3' etc. Don't define active class to any image. Then use this code to randomly give any of the image 'active' class.

$(document).ready(function() {
     var random = 1 + Math.floor(Math.random() * 3);
     $('.image ' + random).addClass('active');
})

If there are 'n' number of images, use var random = 1 + Math.floor(Math.random() * n);

share|improve this answer

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