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Consider i have three images and one bannerDiv.... On initial page load i should show the first image and after sometimeout say 300ms i must show the second image and vise versa.... I have to blur the first image and show second image .... Any suggestion how it can be done with jquery...

<div Id="BannerDiv">
<img src="mylocation" alt="image1"/>
<img src="mylocation" alt="image2"/>
<img src="mylocation" alt="image3"/>
</div>

and my jquery function is,

<script type="text/javascript">

         $(document).ready(function() {
     //how to show first image and blur it to show second image after 300 ms
          });
</script>

EDIT:

1st image to fade out after 300ms and show 2nd image
2nd image to fade out after 300ms and show 3rd image
3rd image to fade out after 300ms and show 1st image....

Second EDIT:

I used nick's but nothing happening..

<body>
    <form id="form1" runat="server">
    <div>
       <div Id="BannerDiv">
            <img src="Images/banner3.jpg" alt="image1" width="954" height="327"/>
            <img src="Images/ban_main_25.jpg" alt="image2" width="954" height="327"/>
            <img src="Images/banner_25.jpg" alt="image3" width="954" height="327"/>
        </div>
    </div>
    <script type="text/javascript">
        $(function() {
            $('#BannerDiv > :first').show();
            setTimeout(rotate, 1000);
        });

        function rotate() {
            var c = $('#BannerDiv > :visible').css({ 'z-index': 2 }).fadeOut(2000, function() {
                setTimeout(rotate, 300);
            }).next().css({ 'z-index': 1 }).show();
            if (c.length == 0) $('#BannerDiv > :first').css({ 'z-index': 1 }).show();
        }
     </script>
    </form>
</body>

And css

 #BannerDiv {width: 954px; height: 327px;}
 #BannerDiv img {position: absolute; width: 954px; height: 327px; display: none;}​
share|improve this question
1  
What you you mean by "blur"? –  Nick Craver Apr 5 '10 at 11:14
    
@Nick fadein and fadeout effects –  bala3569 Apr 5 '10 at 11:17
    
Why do you have the images commented out? <%-- The CSS is #BannerDiv img as well, not div (as in my answer) for your use :) –  Nick Craver Apr 5 '10 at 12:26
    
@Nick i ll edit it for you... –  bala3569 Apr 5 '10 at 12:29
    
@Nick now see it... –  bala3569 Apr 5 '10 at 12:30
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3 Answers 3

up vote 2 down vote accepted

Here's a quick way to do it:

$(function() {
    $('#BannerDiv > :first').show();
    setTimeout(rotate, 1000);
});

function rotate() {
  var c = $('#BannerDiv > :visible').css({ 'z-index': 2 }).fadeOut(2000, function() {
    setTimeout(rotate, 3000);
  }).next().css({ 'z-index': 1 }).show();
  if(c.length == 0) $('#BannerDiv > :first').css({ 'z-index': 1 }).show();
}
​

You'd need the following CSS to match (adjust dimensions to yours):

#BannerDiv {width: 400px; height: 200px;}
#BannerDiv img {position: absolute; width: 400px; height: 200px; display: none;}​

Here's an example using colored divs, it would be the exact same when replaced with images like you want.

share|improve this answer
    
@Nick look at my second edit... There is no errors but still empty page... –  bala3569 Apr 5 '10 at 12:25
    
@Nick still three images are showing on initial page load... –  bala3569 Apr 5 '10 at 12:54
    
@bala3569 - With the #BannerDiv img CSS that shouldn't be happening, do you have a link to your page? –  Nick Craver Apr 5 '10 at 12:56
    
ya i didnt notice that.. –  bala3569 Apr 5 '10 at 13:01
    
great stuff nick... –  bala3569 Apr 5 '10 at 13:07
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You can use setInterval() for a repeated timed action:

$(function() {
  setInterval(300, cycle_images);
});

function cycle_images() {
  var banner = $("#BannerDiv");
  if (banner.is(":hidden")) {
    banner.children().hide().end().show();
  }
  var images = banner.children("img");
  var visible = images.filter(":visible");
  var index = images.index(visible);
  var next = (index + 1) % images.length;
  visible.fadeOut(100, function() {
    images[next].fadeIn(100);
  });
}

As for whether to hide the banner and/or images with CSS (external or inline), my personal opinion is that it is generally better to do it this way because if you don't it can result in a noticeable flicker if the ready() event is delayed for any reason.

share|improve this answer
    
@cletus see my edit.. Should i make my div visible before doing it.. –  bala3569 Apr 5 '10 at 11:23
    
@cletus what does cycle_images parameter takes for setInterval function... –  bala3569 Apr 5 '10 at 11:24
    
@cletus i llet you know once i get the effect.... –  bala3569 Apr 5 '10 at 11:26
    
@cletus should i set display:none to div or not... –  bala3569 Apr 5 '10 at 11:29
    
@cletus error useless setInterval call (missing quotes around argument?) when i used the above function.. –  bala3569 Apr 5 '10 at 11:33
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(function($){
$.fn.showdelay = function(){
    var delay = 0;
    return this.each(function(){
        $(this).delay(delay).fadeIn(100);
        delay += 300;
    });
};
})(jQuery);

Usage: $("#BannerDiv").children().showdelay();

maybe a little more elegant.

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1  
It only cycles through all the elements once. –  CodeJoust Apr 5 '10 at 11:35
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