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So I know that when using $.fn.each, $.fn.bind, etc, it is standard for the this keyword within jQuery chaining callbacks to be a DOM element.

I know in my development at least I usually want the DOM element wrapped in a jQuery set - 90% of the time I end up doing var $this = $(this). I am sure there was a good (likely performance-based) rationale for why they chose to bind to the unwrapped element but does anyone know what exactly it was?

This is one of those things that I feel like knowing the answer to might open the door for understanding the library and language at a deeper level.

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The only one who could give you the real answer is Jhon Resig or another of the main developers of jQuery; personally i think that is just readibility, if you write "this.omnibox" you are not sure if its a jQuery object, but "$(this).omnibox" is pretty clear. Plus is really convinient for avoiding the creation of unnecessary jQuery objects, like when you do $(".box").not(this).remove() –  Ivan Castellanos Jan 9 '12 at 0:28

2 Answers 2

I am sure there was a good (likely performance-based) rationale

I'm sure this is precisely it. If there's any likelihood that you might not need the jQuery wrapper (which there is – it's hardly uncommon to work directly on DOM properties, especially in callbacks to functions like val; indeed, you might not need to look at the element at all) then you don't want to waste time and processing resources in creating the jQuery object.

As an example, here's a jsperf that shows that doing $(this) on every element in the loop carries about as much overhead as the each function does itself.

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Fwiw, I once tested how long it takes to wrap a DOM element ($(elem)), and my results were less than a microsecond. –  Šime Vidas Jan 9 '12 at 0:36
@ŠimeVidas: With what JS engine? It's obviously going to be relevant. I suspect it matters less now than it did when John first wrote jQuery (for instance, lonesomeday's jsperf runs less than half as many loops on IE6 when we wrap as when we don't; IE9 does better, as does Chrome). But John was making decisions in a very different age than we now live in. That said, even then it would have had to be a lot of loops for it to really matter. :-) –  T.J. Crowder Jan 9 '12 at 0:48
@T.J.Crowder In Firefox it's a bit more than one microsecond. This is on a low-end laptop. –  Šime Vidas Jan 9 '12 at 2:03

Barring someone being able to point to an article by John Resig specifically addressing the question, I doubt a definitive answer is on offer. But I frequently wondered this when I started using jQuery, and have come to the conclusion that it's the least harmful thing. After all, it's entirely possible that all you need is the DOM element. If you need/want to use a jQuery wrapper around it, then $() is but three keystrokes away (or more of you do the var $this = $(this); thing). As opposed to having the library always do it for you, which involves multiple function calls and memory allocations, when it may well be that you don't need it.

For instance, consider:

$("input").each(function() {
    // Use this.value

There, there's no reason whatsoever for a jQuery wrapper around the DOM element. this.value is all you need for all input fields (other than input type="file", but val() won't help you there, either). In event handlers (where this is also "just" the raw element), you may not look at this at all.

But in this case:

$(":input").each(function() {
    var val = $(this).val();
    // Use `val`

...there's a genuine reason for using $(this): The :input selector matches several different element types (input, select, button, textarea) for which the value comes from different properties, and val() abstracts that for you.

So I've concluded that providing the raw element is a performance thing. If you don't use it at all, or you only use the basic DOM properties of it, there's no need to wrap it in a jQuery instance. If you need/want to do that, you can do it in your code.

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I misunderstood the question but this is exactly it.. you dont always need a jQuery object. –  meder Jan 9 '12 at 0:33
I'm sure that one of the core team has addressed this at some point...right? –  George Mauer Jan 9 '12 at 0:34
What does this mean? –  Jared Farrish Jan 9 '12 at 0:38
@JaredFarrish: You've lost me. Must be my aged brain cells. ;-) –  T.J. Crowder Jan 9 '12 at 0:42
The first are not DOM elements. Is that not a good example? I'm not sure I follow the premise of the question. –  Jared Farrish Jan 9 '12 at 0:43

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