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.

Currently, I create objects in javascript by declaring a construction (regular function) then add methods to the prototype like so

function Test(){
}
Test.prototype.test1 = function(){
    var me = this;
}

However, I would like to avoid having to declare var me = this at the top of every function. The following seems to work, but seems like it would be very inefficient:

$(document).ready(function(){
var n = 0;
(function(){

     function createTest(){
        var me;
        function Test(){
            this.n = n;
            this.testArr = [1, 2, 3, 4];
            n++;
        }

        Test.prototype.test1 = function(){
            me.test2();
        };
        Test.prototype.test2 = function(){
            alert(me.n);
            $.getJSON('test.php', {}, function(reply)
                //want to be able to use 'me' here
                me.newField = reply;
            });
        };

        var t = new Test();
        me = t;
        return t;
    }
    window['createTest'] = createTest;
})();

var t = createTest();
t.test1();
var t2 = createTest();
t2.test1();
t.test1();
});

This code outputs the expected, but is it actually as inefficient as it looks (the Test object being re-declared every time you call createTest())?

Anyhoo, this would seem a bit hacky... is there a completely different way to do this that is better?

EDIT: The real reason I would like to do this is so that callbacks like the one in test2 will have references to the correct this.

share|improve this question
2  
You should read this (excuse the pun): bonsaiden.github.com/JavaScript-Garden/#function.this –  Bernhard Hofmann Mar 15 '11 at 20:45
    
very informative. Thanks a lot! Oh, and your pun is excused :) –  Hersheezy Mar 15 '11 at 20:47

3 Answers 3

What you can do is bind the current this value to a function and store a copy somewhere. (For the sake of efficiency.)

if (!Function.prototype.bind) {
    // Most modern browsers will have this built-in but just in case.
    Function.prototype.bind = function (obj) {
        var slice = [].slice,
            args = slice.call(arguments, 1),
            self = this,
            nop = function () { },
            bound = function () {
                return self.apply(this instanceof nop ? this : (obj || {}),
                                    args.concat(slice.call(arguments)));
            };
        nop.prototype = self.prototype;
        bound.prototype = new nop();
        return bound;
    };
}

function Test(n) {
    this.n = n;
    this.callback = (function () {
        alert(this.n);
    }).bind(this)
}

Test.prototype.test1 = function () {
    this.test2();
}

Test.prototype.test2 = function () {
    doSomething(this.callback);
}

function doSomething(callback) {
    callback();
}

var t = new Test(2);
t.test1();
share|improve this answer
    
yeah but then if you had a callback inside of any of the prototypes, this will not refer to the object. sorry for not being clear enough. please see the edit. –  Hersheezy Mar 15 '11 at 20:42
    
@Hersheezy - See update. –  ChaosPandion Mar 15 '11 at 20:59
    
Hmmm, so would this mean that for each function in the Test object, I would have to add this.func = (function(){...}).bind(this) in the constructor? If this is the case, I think that just declaring var me = this at the top of each Test.prototype func would be cleaner... –  Hersheezy Mar 15 '11 at 21:14
1  
@Hersheezy - You don't necessarily need to do that. If it were up to me though I would keep the this reference local to the function that needs it. That way you can avoid that factory style object creation. –  ChaosPandion Mar 15 '11 at 21:23
    
I think I am starting to understand what you are getting at. I can see avoiding callback execution inside of a prototype function as a useful pattern. As far as 'avoiding the factory style object creation' you mention, I will have to think about this a bit more... not particularly familiar with this pattern... –  Hersheezy Mar 15 '11 at 21:55

I realize your question was not tagged with jQuery, but you are using it in your example, so my solution also utilizes jQuery.

I sometimes use the $.proxy function to avoid callback context. Look at this simple jsfiddle example. Source below.

function Test(){
    this.bind();
}

Test.prototype.bind = function(){
    $('input').bind('change', $.proxy(this.change, this)); 
    // you could use $.proxy on anonymous functions also (as in your $.getJSON example)
}
Test.prototype.change = function(event){ 
    // currentField must be set from e.target
    // because this is `Test` instance
    console.log(this instanceof Test);          // true
    console.log(event.target == $('input')[0]); // true
    this.currentField = event.target;           // set new field
};

function createTest(){
    return new Test();
}

$(function(){ // ready callback calls test factory
    var t1 = createTest();
});
share|improve this answer
    
Very cool! Good point, I should have tagged with jQuery... I think I will play around with this and see how much this will suit my needs in practice. –  Hersheezy Mar 15 '11 at 22:07

Most of the time, I just declare a local variable that references this, wherever I need a reference to this in a callback:

function Foo() {
}

Foo.prototype.bar = function() {
  var that=this;
  setTimeout(function() {
     that.something="This goes to the right object";
  }, 5000);
}

Alternatively, you can use bind() like this:

Function Foo() {
   this.bar = this.bar.bind(this);
   // ... repeated for each function ...
}

Foo.prototype.bar = function() {
}

What this gives you is that every time you create a new Foo instance, the methods are bound to the current instance, so you can use them as callback functions for setTimeout() et al.

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.