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Can I easily swap two elements with jQuery?

I'm looking to do it with one line if possible

I have a select element and I have two buttons to move up or down the options, and I already have the selected and the destination selectors in place, I do it with an if, but I was wondering if there is an easier way

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Can you post you markup and code sample? –  Konstantin Tarkus Mar 30 '09 at 17:59
    
It's not a matter of jQuery but JavaScript: you cannot swap DOM elements in a single instruction. However, [Paolo's answer](#698386) is a great plugin ;) –  Seb Mar 30 '09 at 18:16
1  
For people coming here from google: check out lotif's answer, very simple and worked perfectly for me. –  Maurice Feb 1 '12 at 13:44
1  
@Maurice, I changed the accepted answer –  jmfsg Feb 1 '12 at 13:57

13 Answers 13

up vote 120 down vote accepted

I've found an interesting way to solve this using only jQuery:

$("#element1").before($("#element2"));

or

$("#element1").after($("#element2"));

:)

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2  
Yeah, this should work: The documentation says: "If an element selected this way is inserted elsewhere, it will be moved before the target (not cloned)". –  Ridcully Jan 11 '12 at 15:55
6  
I like this option the best! Simple and nicely compatible. Allthough i like to use el1.insertBefore(el2) and el1.insertAfter(el2) for readability. –  Maurice Feb 1 '12 at 13:43
4  
One sidenote though.. (which I guess applies to all solutions on this page) since we're manipulating the DOM here. Removing and adding does not work well when there is an iframe present within the element you are moving. The iframe will reload. Also it will reload to it's original url instead of the current one. Very annoying but security-related. I have not found a solution for this –  Maurice Feb 1 '12 at 15:54
2  
Beautifuly, Elegant, and awesome. Thanks! –  David Hobs Jul 1 '12 at 0:15
88  
this doesn't swap two elements unless the two elements are immediately next to each other. –  BonyT Jul 31 '12 at 10:16

Paulo's right, but I'm not sure why he's cloning the elements concerned. This isn't really necessary and will lose any references or event listeners associated with the elements and their descendants.

Here's a non-cloning version using plain DOM methods (since jQuery doesn't really have any special functions to make this particular operation easier):

function swapNodes(a, b) {
    var aparent = a.parentNode;
    var asibling = a.nextSibling === b ? a : a.nextSibling;
    b.parentNode.insertBefore(a, b);
    aparent.insertBefore(b, asibling);
}
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2  
docs.jquery.com/Clone - passing it "true" clones the events too. I tried without cloning it first but it was doing what yours currently is: it's swapping the first one with the 2nd one and leaving the first one as is. –  Paolo Bergantino Mar 30 '09 at 18:35
    
What do you mean by "as is"? –  jmfsg Mar 30 '09 at 18:36
    
if i have <div id="div1">1</div><div id="div2">2</div> and call swapNodes(document.getElementById('div1'), document.getElementById('div2')); i get <div id="div1">1</div><div id="div2">1</div> –  Paolo Bergantino Mar 30 '09 at 18:44
3  
Ah, there's a corner case where a's next sibling is b itself. Fixed in the above snippet. jQuery was doing the exact same thing. –  bobince Mar 30 '09 at 18:54
    
I have a very order-sensitive list that needs to retain events and IDs and this works like a charm! Thanks! –  Teekin May 27 '11 at 14:46

No, there isn't, but you could whip one up:

jQuery.fn.swapWith = function(to) {
    return this.each(function() {
        var copy_to = $(to).clone(true);
        var copy_from = $(this).clone(true);
        $(to).replaceWith(copy_from);
        $(this).replaceWith(copy_to);
    });
};

Usage:

$(selector1).swapWith(selector2);

Note this only works if the selectors only match 1 element each, otherwise it could give weird results.

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1  
is it necessary to clone them? –  jmfsg Mar 30 '09 at 18:19
    
Perhaps you could write them directly using html() ? –  Ed Woodcock Feb 4 '10 at 16:47
2  
@Ed Woodcock If you do, you will lose bound events on those elements I'm pretty sure. –  alex Sep 12 '10 at 9:11
1  
Works great when the divs are not next to each other :) –  Elmer Oct 2 '13 at 2:00

You shouldn't need two clones, one will do. Taking Paolo Bergantino answer we have:

jQuery.fn.swapWith = function(to) {
    return this.each(function() {
        var copy_to = $(to).clone(true);
        $(to).replaceWith(this);
        $(this).replaceWith(copy_to);
    });
};

Should be quicker. Passing in the smaller of the two elements should also speed things up.

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3  
The problem with this, and Paolo's, is that they cannot swap elements with an ID as IDs must be unique so cloning does not work. Bobince's solution does work in this case. –  Ruud v A Aug 4 '10 at 15:58
    
Another problem is that this will remove the events from copy_to. –  Jan Willem B Apr 13 '11 at 5:52
    
does not work, remove copy_to –  Skorunka František Nov 19 '12 at 12:15

There are a lot of edge cases to this problem, which are not handled by the accepted answer or bobince's answer. Other solutions that involve cloning are on the right track, but cloning is expensive and unnecessary. We're tempted to clone, because of the age-old problem of how to swap two variables, in which one of the steps is to assign one of the variables to a temporary variable. The assignment, (cloning), in this case is not needed. Here is a jQuery-based solution:

function swap(a, b) {
    a = $(a); b = $(b);
    var tmp = $('<span>').hide();
    a.before(tmp);
    b.before(a);
    tmp.replaceWith(b);
};
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1  
This should be the accepted answer. Cloning removes any event triggers and is not necessary. I make use of this exact method in my code. –  thekingoftruth Jul 23 at 19:07

I've made a function which allows you to move multiple selected options up or down

$('#your_select_box').move_selected_options('down');
$('#your_select_boxt').move_selected_options('up');

Dependencies:

$.fn.reverse = [].reverse;
function swapWith() (Paolo Bergantino)

First it checks whether the first/last selected option is able to move up/down. Then it loops through all the elements and calls

swapWith(element.next() or element.prev())

jQuery.fn.move_selected_options = function(up_or_down) {
  if(up_or_down == 'up'){
      var first_can_move_up = $("#" + this.attr('id') + ' option:selected:first').prev().size();
      if(first_can_move_up){
          $.each($("#" + this.attr('id') + ' option:selected'), function(index, option){
              $(option).swapWith($(option).prev());
          });
      }
  } else {
      var last_can_move_down = $("#" + this.attr('id') + ' option:selected:last').next().size();
      if(last_can_move_down){
        $.each($("#" + this.attr('id') + ' option:selected').reverse(), function(index, option){
            $(option).swapWith($(option).next());
        });
      }
  }
  return $(this);
}
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This is inefficient, both in the way the code is written and how it will perform. –  Blaise Jun 25 '11 at 11:53
    
It wasn't a major feature of our app and I just use it with small amounts of options. I just wanted something quick & easy... I would love it if you could improve this! That would be great! –  Tom Maeckelberghe Jul 18 '11 at 9:52

I used a technique like this before. I use it for the connector list on http://mybackupbox.com

// clone element1 and put the clone before element2
$('element1').clone().before('element2').end();

// replace the original element1 with element2
// leaving the element1 clone in it's place
$('element1').replaceWith('element2');
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If you're wanting to swap two items selected in the jQuery object, you can use this method

http://www.vertstudios.com/blog/swap-jquery-plugin/

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take a look at jQuery plugin "Swapable"

http://code.google.com/p/jquery-swapable/

it's built on "Sortable" and looks like sortable (drag-n-drop, placeholder, etc.) but only swap two elements: dragged and dropped. All other elements are not affected and stay on their current position.

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The best option is to clone them with clone() method.

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this removes any callbacks and bindings –  thekingoftruth Jul 23 at 19:05

I wanted a solution witch does not use clone() as it has side effect with attached events, here is what I ended up to do

jQuery.fn.swapWith = function(target) {
    if (target.prev().is(this)) {
        target.insertBefore(this);
        return;
    }
    if (target.next().is(this)) {
        target.insertAfter(this);
        return
    }

    var this_to, this_to_obj,
        target_to, target_to_obj;

    if (target.prev().length == 0) {
        this_to = 'before';
        this_to_obj = target.next();
    }
    else {
        this_to = 'after';
        this_to_obj = target.prev();
    }
    if (jQuery(this).prev().length == 0) {
        target_to = 'before';
        target_to_obj = jQuery(this).next();
    }
    else {
        target_to = 'after';
        target_to_obj = jQuery(this).prev();
    }

    if (target_to == 'after') {
        target.insertAfter(target_to_obj);
    }
    else {
        target.insertBefore(target_to_obj);
    }
    if (this_to == 'after') {
        jQuery(this).insertAfter(this_to_obj);
    }
    else {
        jQuery(this).insertBefore(this_to_obj);
    }

    return this;
};

it must not be used with jQuery objects containing more than one DOM element

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an other one without cloning:

I have an actual and a nominal element to swap:

            $nominal.before('<div />')
            $nb=$nominal.prev()
            $nominal.insertAfter($actual)
            $actual.insertAfter($nb)
            $nb.remove()

then insert <div> before and the remove afterwards are only needed, if you cant ensure, that there is always an element befor (in my case it is)

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I think you can do it very simple. For example let's say you have next structure: ...

<div id="first">...</div>
<div id="second">...</div>

and the result should be

<div id="second">...</div>
<div id="first">...</div>

jquery:

$('#second').after($('#first'));

I hope it helps!

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this solution was already pointed out and does not work, unless the two elements are immediately next to each other. –  BernaMariano Apr 9 '13 at 3:19

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