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A swap() function would result in cleaner code (DRY) than doing the work inline. Unfortunately, the following function accomplished nothing because in JavaScript parameters are always pass-by-value:

function swap(a,b) { var temp=a; a=b; b=temp; }

Is there any way of writing a function that accomplished what this is attempting, particularly for numeric values?

I'm not impressed with the answers to this related question.
This answer has the right idea, but doesn't handle the general case.

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Are you talking about variables outside the function scope? –  jsmorph Sep 15 '13 at 22:06
    
@jsmorph: Outside the function scope of swap()? Yes. –  nobar Sep 15 '13 at 22:18
    
Then you're looking for something like: function swap(_a, _b) {a = _b; b = _a} ? –  jsmorph Sep 15 '13 at 22:38
    
@jsmorph: Your swap function only works if you want to modify variables named 'a' and 'b' -- not what I had in mind. –  nobar Sep 15 '13 at 22:44

2 Answers 2

As you correctly identified, since the parameters are passed by value you cannot write a function that replaces the block:

var a,b;
...
var tmp = a; a = b; b = tmp;

However, you can do it if both are values of an object:

var o = {};
o.a = 3;
o.b = 4;
function swap(obj) { var tmp = obj.a; obj.a = obj.b; obj.b = tmp; }
swap(o);

You can also generalize the swap:

function swap(obj, a, b) { var tmp = obj[a]; obj[a] = obj[b]; obj[b] = tmp; }
swap(o,'a','b')

You can also make this a prototype function:

Object.prototype.swap = function(a,b) { var tmp = this[a]; this[a] = this[b]; this[b] = tmp; }
o.swap('a','b')
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Alternatively, without an intermediate tmp var: function swap(obj) { obj.a+=obj.b; obj.b=obj.a-obj.b; obj.a-=obj.b; } –  Thalis K. Sep 15 '13 at 22:12
    
@ThalisKalfigkopoulos there are certainly many ways to do it, but the question was focusing more on the feasibility, and by sticking to the method that the OP proposed the different ways (prototype method, straight function) are more clear –  Nirk Sep 15 '13 at 22:17
    
Is there some way of passing the 'local scope' as your object in order to make this work with arbitrary local variables? –  nobar Sep 15 '13 at 22:31
    
You can do it if you define the function within the closure (e.g. function foo() { function swap() { var tmp = a; a = b; b = tmp; }; var a = 3, b = 7; swap(); /* here a = 7 and b = 3 */ } but it has to be defined in the same scope and is not really much different from inlining the swap –  Nirk Sep 15 '13 at 23:21
    
@Nirk: I meant something like: swap(locals,'a','b') to be used with your generalized swap(obj,a,b), but I haven't found a way to do that. –  nobar Sep 15 '13 at 23:38
up vote -1 down vote accepted

I found this approach, which isn't too bad (at least for my purposes):

function swap( swap_name_a, swap_name_b )
   {
   eval
      (
      "var swap_temp="+swap_name_a+";"
    + swap_name_a+"="+swap_name_b+";"
    + swap_name_b+"=swap_temp;"
      );
   }

You are required to quote the arguments:

swap('a','b');

It seems to also work with more complex arguments:

swap('list[index1]','list[index2]');

Note: You will need to implement the swap() function within each scope that it will be used because it must have access to the named arguments. This goes against the "don't-repeat-yourself" principal, but in some circumstances it may be acceptable to copy-and-paste a bit of boilerplate code like this if it results in simplification of your algorithm logic.


By the way: The example from which I derived this returned the string from swap() and relied on the caller to forward the string to eval: eval(swap('a','b')). This solves the scope problem, but makes the swap operation more error prone -- and less attractive.

Be careful, that source also warned that this method could result in taunting.


Will time-traveling space-vampires steal your credit cards if you use eval()? You should decide that for yourself, but here's some help:

The biggest concern I see is that this might be relatively slow (depending on how the interpreter manages caching). If it is too slow for your purposes, then don't use it.

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In most cases, this will not work. –  icktoofay Sep 15 '13 at 22:48
    
@icktoofay: Thanks for pointing that out. I edited my answer to address this. –  nobar Sep 15 '13 at 23:04
    
Ok, now I'm really getting silly. You could import swap() into functions that require it with eval(swapfn);, where you have previously declared swapfn as a global string that contains the entire function declaration for swap(). –  nobar Sep 16 '13 at 1:18
    
This answer is not very popular so far, and maybe should be avoided in production code, but it solved my problem (for use in graphics "experiments") -- and answers the question. Tested in Chromium and Firefox. –  nobar Sep 26 '13 at 3:09
    
I have run into problems when using my "import" technique with "use strict". –  nobar Oct 5 '13 at 20:02

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