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I know that it's faster to do the following:

var $header = $("#header");
$header.css({color:"#ff0000"});
$header.find("a").addClass("foo");

Instead of:

$("#header").css({color:"#ff0000"});
$("#header a").addClass("foo");

Because jQuery doesn't need to find the elements again in the DOM as we have direct reference to them.

Let's say that I have this:

var $header_elements = $("#header li");
var $footer_elements = $("#footer li");

And I use both individually for a few jQuery manipulations. But then, I need to do something on both. Using selector, I would do this:

$("#header li, #footer li").css({color:"#ff0000"});

But then, the DOM needs to be parsed again to find matching elements. Is there a way to use my previously declared variables instead of a new selector? Something like the following (which is not working, I know, it's to give an idea of what I'm looking for):

$($header_elements + $footer_elements).css({color:"#ff0000"});

I think that the selector returns some kind of array or object. What I'm looking for is a way to merge those. Anyone know if this is possible and how to do it?

Thanks for your help!

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7 Answers 7

up vote 31 down vote accepted

Just use the add method:

$header_elements.add($footer_elements).css({color:'#ff0000'});

Given a jQuery object that represents a set of DOM elements, the .add() method constructs a new jQuery object from the union of those elements and the ones passed into the method. The argument to .add() can be pretty much anything that $() accepts, including a jQuery selector expression, references to DOM elements, or an HTML snippet.

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2  
Or to use his source examples: $header_elements.add($footer_elements).css({color:'#ff0000'}); –  gnarf Aug 26 '10 at 15:41
    
@gnarf updated. –  GenericTypeTea Aug 26 '10 at 15:59
    
Maybe not the fastest possibility according to the tests I did, but gnarf is right, it looks cleaner and in case where there are duplicates between the two "sets", it'll take care of it. Thanks! –  Gabriel Aug 26 '10 at 16:56
1  
For this case, add() is the correct function to use. Almost unexpectedly, add() does not permanently modify the jQuery collection. So, even after you add $footer_elements to $header_elements, references to $header_elements from that point on will only effect the original collection. $.merge, however, will permanently modify the first collection in the argument, so after $.merge($header_elements,$footer_elements), any action taken on $header_elements will effect the $footer_elements collection as well. - Example here: jsbin.com/osupi3/2/edit –  RussellUresti Aug 26 '10 at 18:27

It does not matter performance wise wether you'll do something like (even if it worked):

$($header_elements + $footer_elements).css({color:"#ff0000"});

or do them separately:

$($header_elements).css({color:"#ff0000"});
$($footer_elements).css({color:"#ff0000"});

as jquery will internally go through the supplied arguments using each().

If the principle is more DRY inspired, than performance wise, you can create a function:

function makeThemRed( el ) {el.css({color:"#ff0000"})}

and then

makeThemRed($header_elements);
makeThemRed($footer_elements);

or even:

function makeThemRed() 
{
   var l=arguments.length,
       o=0;
   while (o<l) {
       arguments[o++].css({color:"#ff0000"})
    }
}

and then

 makeThemRed($header_elements, $footer_elements); //any number of parameters
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Pass an array of references:

$([$header_elements, $footer_elements]).css({color:"#ff0000"});
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1  
This would be my approach, but you can't pass jQuery objects in the array. You need to pass DOM elements. $([$header_elements[0], $footer_elements[0]]) –  user113716 Aug 26 '10 at 15:51

I found the solutions a few minutes after posting this. For those who are wondering, here it is:

$.merge($header_elements, $footer_elements).css({color:"#ff0000"});

Is it faster? I don't know yet, I'll need to run some tests to find out.

EDIT:

I tested it with JS Fiddle here : http://jsfiddle.net/bgLfz/1/

I tested using selector each time, variable for both selector, variables with $.merge() and using .add(). Each test was run 1000 times.

Results on my side are as follow (from faster to slower):

  1. Using $.merge() (average of 7ms)
  2. Using both variable one after the other (average of 10ms but the code needs to be duplicated)
  3. Using .add() (average of 16ms)
  4. Using selectors each time (average of 295ms)
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1  
it will definitely be slower as jquery will have to merge the variables and then still go through them with each. –  Raveren Aug 26 '10 at 15:33
1  
Merge will append directly to $header_elements though... Making it contain $footer_elements as well –  gnarf Aug 26 '10 at 15:50
1  
See jsperf.com/adding-selectors for some simple performance testing... Also note, the function add() takes more time, but it also looks cleaner, and removes potential duplicates :) –  gnarf Aug 26 '10 at 15:56
    
@Raveren - Take a look at the jsperf - The "slowerness" is almost un-noticeable. –  gnarf Aug 26 '10 at 16:04
2  
Performance isn't so much the issue here - the fact that $.merge() permanently modifies the first argument is a much larger concern( as gnarf pointed out). After the merge, $header_elements will now contain the $footer_elements collection, meaning if you just wanted to affect the header elements, you couldn't (without running the query again). Example is here: jsbin.com/osupi3/2/edit –  RussellUresti Aug 26 '10 at 18:30

You could always set all of the elements to one variable:

var $lis = $('#header li, #footer li');
$($lis).css({color:"#ff0000"});
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This is exactly what the OP said they didn't want to do. –  GenericTypeTea Aug 26 '10 at 15:37

You can use add or merge method:
Add

$header_elements.add($footer_elements).css({color:'#f00'});

merge

$.merge($header_elements, $footer_elements).css({color:"#f00"});

Both work, but add is more performant. enter image description here Source: http://jsperf.com/add-vs-merge

Credit: I upvoted @GenericTypeTea and @Gabriel answers, did a summary of both, compared them and here is the result.

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The thing with using 'merge' is that it's limited to just two selectors, and using 'add' will be so messy if it's more than two, so if it's more than two, you should use 'each' like this:

$([selector1, selector2, selector3, .....etc]).each(function(){
    // your code here
});
share|improve this answer
    
If you are going to answer a question almost 4 years after it's been posted, you should be absolutely sure that you are actually answering the question correctly and that your solution is better than the already accepted one. Your answer is not even close to answering the original question. –  Gabriel May 14 at 13:28
    
I thought the " original question " is somehow related to jquery ;) :D –  Hazem_M May 15 at 8:22

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