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Is there any elegant way of turning [$(div), $(span), $(li)] into $(div, span, li)?

What I need is a jQuery-wrapped set of elements instead of an array of jQuery elements. I would like to do this in as few lines of code as possible, and with minimal (if any) looping.

Edit: For those of you confused by this question, this code is copied and pasted from firebug using console.log on an array of elements that have already been selected.

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3  
jQuery needs to call the elements between quotes: $("li") –  jackJoe Jul 29 '11 at 0:03
2  
@jackJoe I think he's quoting firebug directly. –  fncomp Jul 29 '11 at 0:06
    
Do you really mean that you want to turn this: [$(a), $(b), $(c)] into the result of this: $(a, b, c)? The The fact that all parameters are li is making this quite confusing. –  jfriend00 Jul 29 '11 at 0:11
    
Yes, that's what I meant... I will edit my question to be more specific. –  Scott Greenfield Jul 29 '11 at 14:36

9 Answers 9

up vote 24 down vote accepted

jQuery's map() function is perfect for reshaping arrays and/or jQuery collections.

So, given an array set like so:

var arrayOfJQ_Objects = [$("div"), $("span"), $("li")];


This one line of code is all you need (See it in action at jsFiddle):

$(arrayOfJQ_Objects).map (function () {return this.toArray(); } );

Resulting in this console display in Firebug:

jQuery(div, span, li)


Reference, also, jQuery's .toArray() function.

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@Septagram, is that a little clearer? Added links to the relevant docs. –  Brock Adams Dec 29 '12 at 6:59
5  
the jsfiddle example is way over kill.. I'd down vote just for the 150 lines of code to demonstrate $.map() –  JBeckton Jul 2 '13 at 3:38
1  
Also works: $(arrayOfJQ_Objects).map (function () {return this.get(0);}); or $(arrayOfJQ_Objects).map (function () {return this.get();}); –  Renato Feb 11 '14 at 18:45

Or simply $( <array of jquery elements> );

i.e. $( [$("selector1"), $("selector2"), $("selector3"), ...] );

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If what you really mean is how to convert:

[$(a), $(b), $(c)]

into the result of:

$(a, b, c)

then you can use the add function to add each jQuery object to another jQuery object:

var x = $();  // empty jQuery object
$.each([$(a), $(b), $(c)], function(i, o) {x = x.add(o)});

At this point, x will contain a combined jQuery object that is the combination of the previous a, b and c jQuery objects in the array.

I couldn't find any way to do it without the each() loop. The add() function accepts an array of DOM elements as an argument, but (at least according to the documentation), not an array of jQuery objects.


Or, you could use this which would likely be a little more efficient because it only makes one new jQuery object at the end:

$([$(".a"), $(".b"), $(".c")].reduce(function(result, current) { return result.concat(current.get())}, []));
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add returns a copy, so this is O(n^2). –  Paul Draper Dec 10 '13 at 17:13

If Array.prototype.reduce() is supported in your environment.

var jQueryCollection = [$("a"), $("div")]
                          .reduce(function (masterCollection, collection) {
                               return masterCollection.add(collection);
                          }, $());

jsFiddle.

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To add single element:

var $previousElements = $();
$previousElements.add($element); 

to convert array to jQuery set of elements:

var myjQueryElementArray = [$element1, $element2, $elementN];
$(myjQueryElementArray ).map (function () {return this.toArray(); } );

to add array of elements to existing elements:

var $previousElements = $(),
     myjQueryElementArray = [$element1, $element2, $elementN];

$previousElements.add($(myjQueryElementArray).map (function () {return this.toArray(); } ));
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to the point.. great answer.. thank you for not linking to 150 lines of js code in jsfiddle just to demonstrate .map() –  JBeckton Jul 2 '13 at 3:42

You can use the add method to copy the elements in a jQuery object to another. This will copy all elements from each of the jQuery objects in the array source into the jQuery object items:

// Create an empty jQuery object
var items = $([]);
// Add the elements from each jQuery object to it
$.each(source, function(){ items = items.add(this); });

(Prior to version 1.3.2 the add method doesn't support adding a jQuery object, so you would need to use items.add(this.get()); instead.)

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What is there reason not to do var items = $()? to create your empty jQuery object? –  meo Jul 29 '11 at 0:12
    
@meo: That works too, but only for version 1.4 or later. –  Guffa Jul 29 '11 at 0:18
    
FYI, this solution only seems to work when I replace items.add(this); with items = items.add(this); I'm guessing that .add() does not change the object it was called on. –  Scott Greenfield Jul 29 '11 at 15:34
    
@Scott Greenfield: That is correct. I have updated the code in the answer to reflect this. –  Guffa Jul 29 '11 at 20:33
1  
Why the downvote? If you don't explain what you think is wrong, it can't improve the answer. –  Guffa Aug 7 '12 at 3:25

Edit: I thought jQuery supported all Array methods, but nay, so here's a working version of my initial solution, albeit it's a bit odd since I am sticking to the same methods:

var set; // The array of jQuery objects, 
         // but make sure it's an Array.
var output = set.pop();
$.each(set, function (_, item) { 
    return [].push.call(output, [].pop.call(item));
});
share|improve this answer
    
what is .pop() ? –  meo Jul 29 '11 at 0:09
    
Returns and removes the last item from an Array. –  fncomp Jul 29 '11 at 0:10
    
That would just create a new array that contains exactly the same as the old one did. –  Guffa Jul 29 '11 at 0:16
    
No it wouldn't I'm poping item... –  fncomp Jul 29 '11 at 0:17

you could do something like this:

var $temp = $();
$.each([$("li"), $("li"), $("li")], function(){
    $temp.push(this[0]);
})

$temp all your elements in one jQuery selector

But i am curious what brings you to this situation having an array of different jQuery elements. You know that you can select different elements using a comma? like $("li, ul > li:eq(0), div")

edit as Guffa pointed out, this only adds the first element of each section. .add() is a better choice then .push() here.

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looks like we had the same idea. –  fncomp Jul 29 '11 at 0:07
    
That would only get the first element from each jQuery object, and there is no push method in jQuery. –  Guffa Jul 29 '11 at 0:13
    
or maybe the OP would like to target nested li? like $("li li li")? –  jackJoe Jul 29 '11 at 0:15
1  
@Guffa; True just tested it. But push is a native JS prototype no? –  meo Jul 29 '11 at 0:17
    
@meo: There is a push method in the Array object, and it seems that the jQuery inherits that somehow, but I can't find it documented. –  Guffa Jul 29 '11 at 0:27
$('li').each(function(){
    $(this).doSomething();

})

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I don't understand what you're trying to get accross with that answer. –  fncomp Jul 29 '11 at 0:09
    
I see what you mean, but how do you know the set of lis is the same as the set you'd be selecting? –  fncomp Jul 29 '11 at 0:16
    
I was asking about a group of elements that are already selected and stored in a variable, in the form of an array, not how to select a set of elements and do something. –  Scott Greenfield Jul 29 '11 at 14:47

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