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As gdoron pointed out,

var a = "a";
var b = "b";

a = [b][b = a,0];

Will swap a and b, and although it looks a bit of hacky, it has triggered my curiosity and I am very curious at how it works. It doesn't make any sense to me.

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2  
"a bit of hacky"??? a lot of hacky... :-) –  gdoron Mar 25 '12 at 21:59
    
    
Wouldn't it have made more sense to comment on godron's other answer and ask for clarification in your original question? –  Felix Kling Mar 25 '12 at 22:36
1  
@FelixKling. I suggested him to ask it in other question. comments are not the place of questions-answers. And it's not just clarification of the answer, it's totally different question (In my humble opinion!) –  gdoron Mar 25 '12 at 23:00

2 Answers 2

up vote 7 down vote accepted
var a = "a";
var b = "b";

a = [b][b = a, 0];

Let's break the last line into pieces:

[b]       // Puts b in an array - a safe place for the swap.
[b = a]   // Assign a in b
[b = a,0] // Assign a in b and return the later expression - 0 with the comma operator.

so finally it is a =[b][0] - the first object in the [b] array => b assigned to a

Live DEMO

read @am not I am comments in this question:
Comma operator(,) Where it can "really" be useful
It's his code...

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So when b is put in the array, it is safe? –  Derek 朕會功夫 Mar 25 '12 at 22:01
1  
@Derek. It's not going lost when b = a –  gdoron Mar 25 '12 at 22:02

It might help (or hinder) to think of it terms of the semantically equivalent lambda construction (here, parameter c takes the place of element 0):

a = (function(c) { b = a; return c; })(b);
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