Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Let's say I've come up with a particular sort function that I want to put in the prototype of some Array based object (I'll use Array itself here). I can do

Array.prototype.specialSort = function...

but what I'd really like to do is

Array.prototype.sort.special = function...

the problem, of course, is that when it's called, the latter won't know about the Array object, it will only know about the sort, so it can't sort. Is there any magical incantation to pass a "this" down the tree?

Secondary question (since the answer to the primary question is likely "no"): What would you do to implement the notion of "sub-methods" with maximum elegance?

share|improve this question
    
I don't understand the question. Also, the "this" pointer has nothing to do with how a function is defined. It's completely determined at invocation time. –  Pointy Jul 21 '10 at 23:36
1  
Also, don't bother trying to subclass Array - you really can't succeed at that: perfectionkills.com/… –  Pointy Jul 21 '10 at 23:38
    
Pointy: The "this" pointer is used when defining a method, which is what I hope to be doing here. It would be a sorting method, but rather than overriding the built-in sort method, it would be a distinct method. But because it is a method that sorts, and because I could maybe have several special sorting functions, it would be appealing to be able to "group" them all under the existing sort function. But if I do that, they don't know about the Array that they're supposed to be sorting. –  Roy J Jul 21 '10 at 23:51
    
No. The "this" pointer is set by the runtime when calling a method. And no, it won't work to call it like that. You'd have to use arr.sort.special.call(arr, ...) –  Pointy Jul 21 '10 at 23:53
    
I'm not sure what is suggesting that I don't know when "this" gets its value. The method only runs when it is called, so of course that's when "this" would get a value. But the method has to be written before then, and I would use that pointer in my code. –  Roy J Jul 22 '10 at 0:03

2 Answers 2

This should be fairly close to what you want:

Array.prototype.sort = function () {
  return {
      self: this;
    , special: function () {
        return sortLogic (self);
      }
  };
};

var xs = [1, 2, 3];
xs.sort ().special ();

Another option would be to use Function.prototype.call or Function.prototype.apply, especially if you want arr.sort () to sort the list as normal.

Array.prototype.sort.special.call (arr, arg1, arg2, etc);

Using the second method over the first allows one to use the call and apply methods easily on the sort.special method. Could be useful when doing something like the following:

function () {
  Array.prototype.sort.special.call (arguments);
}

If you want both worlds, something like this could work:

Array.prototype.sort = (function () {
  var special = function () {
    if (this [0] > this [1]) {
      var tmp = this [0];
      this [0] = this [1];
      this [1] = tmp;
    }
    return this;
  };
  var sort = function () {
    var context = this;
    return {
      special: function () {
        return special.apply (context, arguments)
      }
    };
  };
  sort.special = special;
  return sort;
}) ();


/*** Example Below ***/


function foo () {
  Array.prototype.sort.special.call (arguments);
  var xs = [5, 2, 3];
  xs.sort ().special ();
  alert (arguments);
  alert (xs);
}

foo (9, 6);
share|improve this answer
    
I don't think he wants to redefine the "sort" function on native Array –  Pointy Jul 21 '10 at 23:58

Thanks for the guidance to both Pointy and trinithis. I think I am clear on the subject now. The sticking point is that, although sort() is a method of the Array, if it's not invoked, it's just a member (or property), so it has no "this". I was wanting the "this" it would have had if it had been invoked. And since I was invoking something at the end of the chain, I was kind of hoping there was some magic that would keep it all method-y. But no.

What I would probably do is have a separate "sorts" method to act as the grouper for my special methods, and leave the existing sort alone.

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.