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Possible Duplicate:
Merging jQuery objects


** The goal is performance. The duplicate question addresses the function, but I don't believe adds performance value and doesn't address that aspect. **

I want to chain several jQuery elements, for the sake of performance, but for optimization sake they're already cached in variables.

so if I have

$elem1 = $('div#elem1');
$elem2 = $('div#elem2');
$elem3 = $('div#elem3');

This doesn't work so well:

$elem1,$elem2,$elem3.hide(); 

Is there any way to do that, chaining with already cached elements?

Thanks!

[Edits]
Ok, I really need to clarify. My goal for chaining is performance, with the bonus of concise yet clear code.
$('div#elem1, div#elem2, div#elem3').hide();
defeats the point as it's no longer using the cached vars, but accessing the dom again. Accessing the dom is expensive, so i'm pretty sure it's slower than the 3 lines.
.add() and .merge(), I'm assuming are more expensive than seperating the operation on three lines. For performance sake, until I have time to jPerf, I'll assume 3 different lines rather than extra operations has the best performance.


Thanks for the collaboration, brainstorming, and thoughts, I do appreciate it. I wasn't aware of the possibilities and wouldn't have known what to test on jPerf otherwise.

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marked as duplicate by Felix Kling, Musa, Rory McCrossan, onof, j0k Sep 4 '12 at 7:17

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

    
How would you chain these if they were 'uncached' elements? –  David Barker Sep 3 '12 at 16:30
    
If they were uncached it would be $('div#elem1', 'div#elem2', 'div#elem3').hide() –  Nick Sep 3 '12 at 16:32
    
I think it would need to be this instead $('div#elem1, div#elem2, div#elem3').hide() passing multiple strings to jQuery doesn't work at least with my version... –  pebbl Sep 3 '12 at 16:58

4 Answers 4

Not sure how much cleaner it is, but you can use jQuery's each() to iterate over an array of them. It's not exactly chaining, but the end result should be the same:

$.each([$elem1,$elem2,$elem3], function() {this.hide()})
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The only thing I can think of is putting all of them together with .add()

$elem1.add($elem2).add($elem3).hide();
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+1 - deleted my answer - i'd write it like this however var $collection = $().add($elem1).add($elem2).add($elem3).hide(); rather than working with / modifiying an existing collection already. –  pebbl Sep 3 '12 at 17:04
1  
@pebbl $elem1 will not be modified, add returns a new jQuery object. –  Musa Sep 3 '12 at 21:07
    
Ah... very good point. foolish me. I shall be quiet now. –  pebbl Sep 3 '12 at 21:57

No my friend, this will never work. Try to do this

$('div#elem1, div#elem2, div#elem3').hide();

or

$elem1.hide(); $elem2.hide(); $elem3.hide()

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or the add() function as talked before.. –  Guilherme Sep 3 '12 at 16:37
    
This completely defeats the point. My goal is chaining for optimization. The latter is not chaining - it's just compressing it into a single line. The former, uses unchached vars, and selects the from the dom again. –  David Hobs Sep 4 '12 at 19:01
var elements = [];
elements.push($elem1);
elements.push($elem2);
elements.push($elem3);

$(elements).each(function(i){
    elements[i].hide();
});
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