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When passing the contents of a <div> to another <div> with jquery as below, the original is removed. Is there a way to do this and still retain the original?
Example Here - I want the document to read Item One, Item Two, Item One.

   function display() {
    $('#display').html($('#ItemOne'));
}

display();
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3 Answers 3

up vote 2 down vote accepted
 $('#display').html($('#ItemOne').html());

add .html()

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I think OP wants the entire element (as far as I can tell). Using .html() would only append the content of #ItemOne. :o) –  user113716 Aug 27 '10 at 13:57
    
Actually the content is all I need (should have specified) so this works equally well. –  jack Aug 27 '10 at 13:58
    
+1 @jack - If the content is all you need, than this is actually better. Remember that if you use .clone() you're also cloning the ID, which means you'll have 2 items on the page with the same ID. This could cause problems. Using .html() as done here would take care of that issue. –  user113716 Aug 27 '10 at 14:01
    
After some playing around I realised as such. Thanks for confirming! –  jack Aug 27 '10 at 14:03
    
glad i could help :) –  Patricia Aug 27 '10 at 14:35

use clone()

http://docs.jquery.com/Clone

function display() {
    $('#display').html($('#ItemOne').clone());
}

display();
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1  
This would work, but you should modify the ID if you're going to take this approach, so you don't end up with 2 elements with the same ID. Something like: $('#ItemOne').clone().attr('id','cloned_content') –  user113716 Aug 27 '10 at 14:03

Change to

function open() {
    $('#display').html($('#ItemOne').clone());
}

See: jsfiddle

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