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I'm trying out some jQuery for the first time. My first goal is for one image on the page to fade into a different image. I've figured out how to do this with a couple of divs that have background-image set to the different image files (see code below). However, this would work better for my situation if I was somehow doing this to an existing img tag instead of using some divs. Is there any way to do what this code does, but with the img tag?

<html>
  <head>
    <script type="text/javascript" src="jquery-1.6.4.js"></script>
    <script type="text/javascript">
      $(function() {
          $("#imgblock2").delay(3000).fadeIn(3000);
      });

    </script>
    <style type="text/css">
      #imgblock {
        background-image:url("frame.jpg");
        width:240;
        height:320;
        position:absolute;
        top:0;
        left:0;
      }
      #imgblock2 {
        background-image:url("average.jpg");
        width:240;
        height:320;
        position:absolute;
        top:0;
        left:0;
        display:none;
      }
    </style>

  </head>
  <body>
    <div id="imgblock"></div>
    <div id="imgblock2"></div>
  </body>
</html>
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up vote 0 down vote accepted

Yes, Use actual images instead of divs. you an give the images id's as well.

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oh, wow, so easy. thanks! helps me to see how jQ works too – mix Sep 24 '11 at 8:16

Have a container div that includes both images and set its position to relative. After that you can put both images inside that div and give them id's, be sure to set their position to absolute so that they are layered on top of each other.

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This is not that hard ;)

$(document).ready(function() {
   var relatedImg =  $("#imgblock");

   relatedImg.css("display", "none");
   relatedImg.fadeIn("slow", function(){
       relatedImg.fadeOut("slow", function(){
           relatedImg.attr("src", "http://farm6.static.flickr.com/5221/5592275221_8190eb9b9c.jpg");
           relatedImg.fadeIn("slow");
       }); 

    });
});

Explanation

At first, we set the display property to "none" via javascript (so customers without would just see the image) after the fadeIn we fadeOut our image and change the image src with the attr function.

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Why so many jquery objects created for the same element? Cache the item - var imgBlock = $("#imgblock") – redsquare Sep 24 '11 at 8:29
    
I'll avoid any retort to the abuse and keep it technical. The point of answering questions here is to show best practice, not sloppy code to get by. – redsquare Sep 24 '11 at 12:30

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