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If I have the HTML:

<div id="divOne">Hello</div> <div id="divTwo">World</div>

Is it possible with CSS/JS/jQuery to swap it around so the contents of divTwo appears in the position of divOne and vice-versa ? I'm just looking to change the position of each div, so I don't want any solution that involves setting/swapping the HTML of each.

The idea is to let a user customise the order content appears on the page. Is what I'm trying to do a good way of going about that, or is there a better way of achieving it ?

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3 Answers 3

up vote 9 down vote accepted

You'll be relieved to know it's not hard at all using jQuery.

$("#divOne").before($("#divTwo"));

Edit: If you're talking about implementing drag-and-drop functionality for ordering the divs, take a look at jQuery UI's sortable plugin... http://jqueryui.com/demos/sortable/

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Does this move the elements or copy them? –  jocull Dec 10 '10 at 6:19
    
@jocull It'll move it, whereas $("#divOne").before($("#divTwo").clone()) will copy it. –  Box9 Dec 10 '10 at 6:21
    
I guess jQuery really is great and does all things! before() looks like just what I was after - thanks. –  mikel Dec 10 '10 at 6:27

Perhaps by using floats.

#divOne {
   float: right;
}

#divTwo {
   float: left;
}

YMMV.

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Thanks for your answer, but I think my example wasn't that great. In my actual situation there could be 10 or more divs to be ordered anyway the user wants, I don't think floats would be practical for that really. –  mikel Dec 10 '10 at 6:23
    
@miket2e No worries, it was hard to know if it would work or not without any HTML to go by. –  alex Dec 10 '10 at 6:39

http://snipplr.com/view/50142/swap-child-nodes/ has the code to swap 2 elements with each other.

I have also modified the same code so that it also preserves event listeners (addEventListener) in the elements that are being swapped and their child nodes.

function swapNodes(node1, node2) {
    node2_copy = node2.cloneNode(true);
    node1.parentNode.insertBefore(node2_copy, node1);
    node2.parentNode.insertBefore(node1, node2);
    node2.parentNode.replaceChild(node2, node2_copy);
}
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