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I would need to find a certain image in a div and show it. But the the thing is that I click on a different image. Here's the code:

<div id="images">
<img src="but1.jpg" alt="" />
<img src="but2.jpg" alt="" />
<img src="but3.jpg" alt="" />
<img src="but4.jpg" class="zoomImage" alt="" />
<img src="but5.jpg" class="zoomImage" alt="" />
<img src="but6.jpg" alt="" />
</div>

<div id="images2" style="display:none;">
<img src="butB4.jpg" alt="" />
<img src="butB5.jpg" alt="" />
</div>

Now if I click some of the images that has the class zoomImage, I would like to show (give display:block;) to image that is in images2 div. For example if I would click on

 <img src="but4.jpg" class="zoomImage" alt="" />

it should show up

<img src="butB4.jpg" alt="" />

and if I would click on

<img src="but5.jpg" class="zoomImage" alt="" />

it should show up

<img src="butB5.jpg" class="zoomImage" alt="" />

and then if I would click on

<img src="but6.jpg" alt="" />

nothing should happen.

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3 Answers

Try this

$('#images img.zoomImage').each(function(i) {
    $(this).data("index", i).click(function(){
         $('#images2').show().find("img").hide().eq($(this).data("index")).show();
    });
});
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It's a different image... –  Orbling Jul 18 '11 at 14:08
    
@marcovic - Please check I have edited my answer based on my understanding of what you are looking for. –  ShankarSangoli Jul 18 '11 at 14:14
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Try something like this, that matches the images in #images with the class zoomImage and tries to find an image with the same number in #images2 and .show() it.

$('#images img.zoomImage').click(function() {
    var imageNo = $(this).attr('src').replace(/^.*(\d+)\.jpg$/, '$1');
    $('#images2 img[src="butB' + imageNo + '.jpg"').show();
});

If, as suggested by you in comments, the image numbers are not consistent. But the images appear in the #images2 DIV in the same order as images with the .zoomImage class appear in the #images DIV above, then you could use the following code.

$('#images img.zoomImage').click(function() {
    var imageNo = $('#images img.zoomImage').index(this);
    $('#images2 img:eq(' + imageNo + ')').show();
});

If you wish to be able to close the images with a subsequent click, use .toggle() instead of .show().

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Oh, sorry. I did copy all the markup there. Some of the images don't have numbers in their names. What I was thinking, could I somehow how get index number of those images that have class zoomImage? And then with that index number hook it in second div? –  marcovic Jul 18 '11 at 13:53
    
@marcovic: So you mean, if you have two images that have .zoomImage class, then you will expect there to be two images in the #images2 DIV? That is fine. I'll make a secondary version. –  Orbling Jul 18 '11 at 14:00
    
Yes, and they are always in same order (first image in images div has the bigger version first in the images2 div). –  marcovic Jul 18 '11 at 14:14
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Made the response so that it corresponds to your latest comments:

HTML:

<div id="images">
    <img src="but1.jpg" alt="1" />
    <img src="but2.jpg" alt="2" />
    <img src="but3.jpg" alt="3" />
    <img src="but4.jpg" class="zoomImage" alt="4" />
    <img src="but5.jpg" class="zoomImage" alt="5" />
    <img src="but6.jpg" alt="6" />
</div>

<div id="images2">
    <img src="butB4.jpg" alt="B4" />
    <img src="butB5.jpg" alt="B5" />
</div>

CSS:

#images2 > img {
    display: none;
}

JavaScript:

$(document).ready(function() {

    $('#images > img.zoomImage').each(function(index) {
        var imageNumber = (index + 1);
        $(this).click(function() {
            $('#images2 > img:nth-child(' + imageNumber + ')').show();
        });
    });
});

jsFiddle

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