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This code was working fine:

if (chk.checked)
    div.show(delay);
else
    div.hide(delay);

I tried to be clever by refactoring it like this:

var showHide = chk.checked ? div.show : div.hide;
showHide(delay);

but that caused an exception inside jQuery. Shouldn't the 2 pieces of code be equivalent?

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What was the exception that was thrown? –  Sly Oct 4 '12 at 14:32

2 Answers 2

up vote 5 down vote accepted

You can do this instead:

var showHide = chk.checked ? 'show' : 'hide';
div[showHide](delay);

If you just save a reference to the function, you'll lose the receiver — that is, inside the function the this reference will be wrong.

I guess you could do this instead:

var showHide = chk.checked ? div.show : div.hide;
showHide.call(div, delay);

edit or, to avoid referring to "div" twice in the first line:

var showHide = div[chk.checked ? 'show' : 'hide'];

I'm not sure such a refactoring makes anything clearer :-)

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The only thing I don't like about this solution is it repeats references to "div" –  JoelFan Oct 4 '12 at 14:49
    
@JoelFan OK I can fix that :-) –  Pointy Oct 4 '12 at 14:51
    
I like this better because it doesn't reference 'div' at all: var showHide = chk.checked ? $.fn.show : $.fn.hide; –  JoelFan Oct 4 '12 at 14:57
    
@JoelFan well sure but then it references $.fn twice in exchange. If div is a local variable, references to it would be (trivially) cheaper. –  Pointy Oct 4 '12 at 15:00
    
I still prefer referencing $.fn because it's more general... you are not really gaining anything specific from "div" by referencing it. –  JoelFan Oct 4 '12 at 15:03

The problem is that the show and hide functions are not properties of that particular jQuery selection object. They are properties of the jQuery prototype object.

So this, for instance, returns true:

$('div').show === $.fn.show;

There is only one show function, and doing var showHide = div.show only assigns the generic function to the variable. Crucially, it does not import the context, which is what calling it with div.show() does.

The simple way is to use the property name as a variable, rather than the function itself, as Pointy's answer does, or to use call, as he also suggests. The other alternative is to use bind (or $.proxy if you have to support older browsers):

var showHide = (chk.checked ? div.show : div.hide).bind(div);
showHide(delay);

I'm really not sure this is worth the effort, however...

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1  
I found that you can also do: var showHide = (chk.checked ? $.fn.show : $.fn.hide).bind(div); This avoids unnecessary references to "div" –  JoelFan Oct 4 '12 at 14:47
    
This is a bit clearer than using "bind" and also works: var showHide = chk.checked ? $.fn.show : $.fn.hide; showHide.call(div, delay); –  JoelFan Oct 4 '12 at 15:00
    
@JoelFan You can do that, if you prefer. I would still recommend Pointy's solution, though. Or, of course, toggle for this particular instance. –  lonesomeday Oct 4 '12 at 15:34
    
How could I use "toggle"? I need to show or hide based on if the checkbox is checked or not –  JoelFan Oct 4 '12 at 15:36
1  
@JoelFan Sorry, my mistake. You can use toggle(chk.checked) (will show if chk.checked is true, hide otherwise), but it's not possible to do a delay as well. (Unless, of course, you programmed an extension to toggle yourself, which would be trivially easy.) –  lonesomeday Oct 4 '12 at 15:41

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