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I hope someone can help me with this. I am having some trouble figuring out how to make a nice and clean fade transition between images. The code below is simplified but the jquery is more or less the same as I have in my test code. I want the fade from the current image in the "background" of the div num1 to the next image (where the next image is the thumbnail that was clicked on). The current code only seems to do this for the first one and thereafter there is no fade. How would I do this for the multiple images I have? Thanks in advance for any help.

JQuery:

jQuery(document).ready(function() {
    $(".bg_image_thumb").click(function(){
    var thumb_id = this.id;
    var main_href = $("#"+thumb_id).attr('href');
    $("#main_image").attr("src", main_href).fadeIn("slow");
    });
});

css:

#container { position: relative; }
#num1, #num2 { position: absolute;}
#num1 { z-index: 1; }
#num2 { z-index: 2; }

html:

<div id="container">
<div id="num1" style="min-height:700px;height:700px;width:700px;"><img id="main_image" src=""></div>
<div id="num2">
<a class="bg_image_thumb" id="bg_image_thumb1" onclick="return false;" href=image1.jpg"><img src="image1.jpg" /></a>
<a class="bg_image_thumb" id="bg_image_thumb2" onclick="return false;" href=image2.jpg"><img src="image2.jpg" /></a>
<a class="bg_image_thumb" id="bg_image_thumb3" onclick="return false;" href=image3.jpg"><img src="image3.jpg" /></a>
</div>
</div>

1

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2 Answers 2

up vote 0 down vote accepted

you need to change your fadeIn code to something like this;

$("#main_image").fadeOut("slow", function()
{
      $("#main_image").attr("src", main_href).fadeIn("slow");
});

this code first hides your current shown image, and after it's finished, it will set the source and show the new image.

[NOTES]

  1. This will give you an effect of fadeOut-then-fadeIn. If you want to have a fadeIn-fadeOut (same time) you need to use two controls for settings images.

In this case you need to use two img controls:

<div id='container'>
    <img id='main_image' src="http://dummyimage.com/300x200/000/fff&text=test1" />
    <img id='main_image_back' />
</div>

$("#main_image_back").attr("src", main_href).hide().fadeIn("slow", function()
{
      $("#main_image").attr("src", $("#main_image_back").attr("src"));
      $("#main_image_back").hide();
});
$("#main_image").show().fadeOut("slow", function(){$(this).show();});

and in your css:

#container {position:relative;}
#main_image_back {display:none; position:absolute; top:0; left:0;}

jsFiddler link: http://jsfiddle.net/ke4kM/7/

share|improve this answer
    
Thanks. I think that is almost it. However I was hoping to have the second image fade in at the same time as the other image is fading out. Can that be done? Does it need two divs to do that? –  dna Jul 17 '11 at 14:29
    
I think the two controls thing is where I was having trouble, can you give me an example :) –  dna Jul 17 '11 at 14:31
    
see my new comments pls. –  Valipour Jul 17 '11 at 15:07
    
thanks valipour. I added your code but it doesn't work as expected. It seems to fade the image in then it disappears. :( –  dna Jul 17 '11 at 15:37
    
ok, I created that in jsFiddler and made some correction, see editted comments –  Valipour Jul 17 '11 at 15:52

Try replacing your lines by :

<a class="bg_image_thumb" id="bg_image_thumb1" onclick="return false;" href="image3.jpg"><img src="image3.jpg" /></a>

fiddle : http://jsfiddle.net/Christophe/4z5sK/1/

share|improve this answer
    
had a slight typo there in the example code, problem still exists I think. –  dna Jul 17 '11 at 14:25
    
Added fiddle ;) –  ChristopheCVB Jul 17 '11 at 14:40

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