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I am using jQuery 1.9.0, and my html is:

<div id='div1'>    
</div>
<div id='div2'>
</div>

my js:

var input = $("<input type='text'>");
$('#div1').html(input);
$('#div2').html(input);

my understanding of this code is

input is a jQuery object, and I can set div1 and div2 with it separately just like I can assign one variable's value to many other variables in programming languages.

based on this understanding, what I expect is:

<div id='div1'>
    <input type="text">
</div>
<div id='div2'>
    <input type="text">
</div>

but I get:

<div id='div1'>
</div>
<div id='div2'>
    <input type="text">
</div>

if I just call $('#div1').html(input);, div1 would have input element. why does div1's input element disappear after calling $('#div2').html(input);?

I know how to bypass this problem, but I am eager to know the reason of this behavior.

thanks in advance!

UPDATE:

I appreciate all the guys who answered this problem sincerely, and I have voted up every answer. I have a clue to this issue now, but I am still wondering why different nodes (div1 and div2) can not reference to the same object. In C language, different variables can reference to the same memory address. what's the difference between these two reference?

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3  
You have to use .append() and not .html() because input is a jQuery object and not HTML. –  Ja͢ck Jan 23 '13 at 13:37
    
You only created one element.. So unless you clone it, it will only relocate the element to the last place you moved it –  ᾠῗᵲᄐᶌ Jan 23 '13 at 13:40
    
you are right, input is a jQuery object rather than HTML object, I have edited it. thanks :) –  Brian Jan 23 '13 at 13:41
    
if you use html() then it will replace all the inside content and new thing as html . –  sᴜʀᴇsʜ ᴀᴛᴛᴀ Jan 23 '13 at 13:47
    
Updated the title to reflect the behaviour you're seeing :) –  Ja͢ck Jan 23 '13 at 13:48

4 Answers 4

up vote 1 down vote accepted

The bottom line is that the DOM doesn't automatically clone your elements when you attach them somewhere on the page. This is not jQuery specific.

Because input keeps referencing the same element, attaching input to another element later on will detach it from the previous location, thus input keeps moving around in the DOM.

This is why you have to clone the element before you attach it :)

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Hi Jack, thank you very much! However, I still can not understand jQuery object's reference very well, and I have updated the question. If you can explain it for me, I'll appreciate it sincerely! –  Brian Jan 23 '13 at 15:11
    
@Brian an object in the Dom can only have one parent element and having this behaviour makes certain operations easier to write. –  Ja͢ck Jan 23 '13 at 16:43
    
can I say that div1 and div2 can share the same input technically, but jQuery avoids it so that it's easier to do these certain operations? –  Brian Jan 23 '13 at 16:53
    
@Brian no, they can't share the same input because that would mean two parents. This is not jQuery specific either, it's how Dom works :) –  Ja͢ck Jan 23 '13 at 22:37

Clone it, to work around the referencing problem (added more details below) :)

var input = $("<input type='text'>");
$('#div1').html(input.clone());
$('#div2').html(input.clone());

The reason this is happening is because input is a jQuery object. Think of it as a reference. The first time you use input, #div1 consumes it, but then the reference is still in memory and when you add it to #div2 it reconsumes it.

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2  
I said I know how to bypass it, but I want to know the reason of this behavior. –  Brian Jan 23 '13 at 13:38
    
Hi Brian! Answer updated to explain a bit more about what is happening :) Please accept if you feel it answers your question! –  Dean Jan 23 '13 at 13:39
    
Hi Dean, thank you very much! However, I still can not understand jQuery object's reference very well, and I have updated the question. If you can explain it for me, I'll appreciate it sincerely! –  Brian Jan 23 '13 at 15:11
    
Hi Brian. I can't explain it any better than html() is a consumption operation. So if you run it twice on the same object only the most recent operation will work. The first html() call consumes it, b ut then the second html() operation "reconsumes" it and steals it from the first. –  Dean Jan 23 '13 at 15:19

Try this. input may belong to a particular node only in DOM.Same node cannot have both div1 and div2 as parents.Instead create a copy of input to append it to some other node

var input = $("<input type='text'>");

$(input).clone().appendTo('#div1');
$(input).clone().appendTo('#div2');
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Why not take a look on this page? http://javascript.info/tutorial/memory-leaks

I guess this is something related to the JS's garbage collector mechanism.

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