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I'm writing my own jQuery plugin in which I'm referencing some existing nodes and also creating some new jQ nodes that do not exist in the DOM tree (they're not appended). I'm using the .add() method to add each element into a new collection.

What happens is, the order of this collection looks weird (I can't find any logical pattern there). The following note in documentation might be the reason why:

As of jQuery 1.4 the results from .add() will always be returned in document order (rather than a simple concatenation).

Consider the following example.


    <a id="existing1"></a><a id="existing2"></a>


<script type="text/javascript">

    function addToColl(selector) {
        coll = coll.add(selector);
        var n = $(selector).get(0).id.match(/\d+/)[0];
        for (var i = 0; i < 4; i++) {
            var a = $('<a>',{id:'virtual'+n+'_'+i});
            coll = coll.add(a);

    $(document).ready(function() {

        coll = $();

        // uncomment the following to see what's happening

        $.each(coll,function(idx,elm) {





When you uncomment the commented function call it outputs


What should be done to avoid this mess?

------ [EDIT] ------
Due to the unexpected behavior of the add() function I ended up using a native Javascript array to collect the elements (namely using the push() method). Later, when I'm done with collecting the elements I'm converting it into a jQuery collection.

share|improve this question
Did you try to define coll = $([]); instead of coll = $(); – Yoni Baciu Dec 31 '12 at 17:17
The comment in the documentation only applies if all the elements in the collection are in the DOM. If not, the order is unpredictable due to the way it merges collections. – Barmar Dec 31 '12 at 17:27
@YoniBaciu it didn't change anything, unfortunately. – inhan Dec 31 '12 at 18:06
@Barmar I think, internally it searches the elements in the DOM tree first and it recreates the collection by a loop or something, which changes the order of elements. But it's interesting that this is not mentioned anywhere. – inhan Dec 31 '12 at 18:08
I think they just didn't consider the possibility that a collection would have both connected and disconnected elements. The code isn't actually very careful about it. – Barmar Dec 31 '12 at 18:12

1 Answer 1

up vote 1 down vote accepted

The code in jQuery looks like this:

    add: function( selector, context ) {
            var set = typeof selector === "string" ?
                            jQuery( selector, context ) :
                            jQuery.makeArray( selector && selector.nodeType ? [ selector ] : selector ),
                    all = jQuery.merge( this.get(), set );

            return this.pushStack( isDisconnected( set[0] ) || isDisconnected( all[0] ) ?
                    all :
                    jQuery.unique( all ) );

So if the first element of the collection being added or the merged collection is disconnected, it just returns the merged collection, in whatever order jQuery.merge() happened to put them in. If they're both connected, it calls jQuery.unique(), which puts them in DOM order.

However, the comparison function for doing the sort is:

    function( a, b ) {
            if ( a === b ) {
                    hasDuplicate = true;
                    return 0;

            return ( !a.compareDocumentPosition || !b.compareDocumentPosition ?
                    a.compareDocumentPosition :
                    a.compareDocumentPosition(b) & 4
            ) ? -1 : 1;

This is then dependent on how the browser implements compareDocumentPosition() when comparing disconnected elements with connected elements, or disconnected elements with each other. I'd expect it to return DOCUMENT_POSITION_DISCONNECTED (1) in both cases, but Chrome returns 4 (DOCUMENT_POSITION_FOLLOWING) in the latter case, and other combinations of bits in the first case.

share|improve this answer
Thanks for the insight. To keep the order right, using a native array as the collection and then converting it into a jQuery collection using the notation $(nativeArrayReference) seems like the only way to go, then. What do you think? – inhan Jan 1 '13 at 4:33
You haven't described what you're trying to accomplish, so it's hard to say. But if you want them to stay in the order that you add them, just use an array. – Barmar Jan 1 '13 at 4:45
Later in the code I'm using jQuery functions on that collection so I ended up creating a native array, then converting it into a JQ collection when array modifications are over. Good to know what's actually happening with the add() function. Thanks again :) – inhan Jan 1 '13 at 14:03

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