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I have a class-like function

var myapp = function() {
    this.method = function() {
        //Do something...
    }
}

To reference myapp from within methods, the first line in the myapp function is

var self = this;

So a method in myapp can reference the "class" safely

this.anothermethod = function() {
    self.method();
}

The full code:

var myapp = function() {
    var self = this;

    this.dosomething = function(Callback) {
        Callback();
    }

    this.anothermethod = function() {
        //Pass a callback ("self" is required here)...
        this.dosomething(function() { 
            self.complete(); 
        )};
    }

    this.complete = function() {
        console.log('All done!');
    }
}

My question is: can I assign var self = this; from outside the declaration of myapp? I don't want to set self every single time I write a "class".

Kind of like this:

var library = function() {
    this.loadclass = function(Name) {
        var tempclass = window[Name];

        library[Name] = new tempclass();

        library[Name].self = library[Name];
    }
}

var myapp = new library();

myapp.loadclass('myapp');

myapp.myapp.dosomething();

It doesn't work as expected. self equals window for some reason.

I know it's a little abnormal programming, but can it be done?


Note about using self: I remember why I started using it. I wanted to reference the base class (this) from within callbacks inside methods. As soon as you try to use this within a function within a method, it then references the method, not the base class.

share|improve this question
    
Why are you assigning methods on this in the constructor instead of setting them on the prototype? –  user2357112 Oct 23 '13 at 2:22
    
Can you give me an example? –  Jazza Oct 23 '13 at 2:23
1  
Not even necessary. It depends on how anothermethod is called. If called as myapp_instance.anothermethod(); then you can omit the whole self stuff. –  Felix Kling Oct 23 '13 at 2:23
    
I've updated the last example to use the previous examples. It now shows how I'm actually using it. –  Jazza Oct 23 '13 at 2:25
    
The following code goes outside the body of myapp to declare the method anothermethod through the prototype: myapp.prototype.anothermethod = function() {this.method();}; –  user2357112 Oct 23 '13 at 2:28
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2 Answers

up vote 1 down vote accepted

No, you can't really; not the way you're creating objects at least.

You can sort of do this, by enumerating all the functions on the object and binding them to the object itself. Something like this:

Object.keys(obj)
  .filter(function(n) { return typeof obj[n] == "function" })
  .forEach(function(n) { obj[n] = obj[n].bind(obj) })

This function will go over the public, enumerable properties of obj and make sure that any functions on it are bound to obj; i.e. this is now bound to obj.


A primer on this

When you call new, this within the constructor gets bound to the newly created object. If you do need a reference to this as it was bound at constructor time, you do need to keep away a reference to it.

Functions in JavaScript are bound to wherever it is called. Here's an example:

var foo = new function() {
  this.bar = function() {
    return 'bar'
  }

  this.baz = function() {
    return this.bar()
  }
}

console.log(foo.bar()) // bar
console.log(foo.baz()) // bar

var bar = function() {
  return "window"
}

var baz = foo.baz

console.log(baz()) // window

When we call foo.baz() it'll look to foo for the implementation of bar, but when calling foo.baz through a "detached" reference, it'll look to whatever the global object is (in this case the browser window object) and call bar from there. Because we defined bar in the global context, it then returns window.

The practice of assign a variable called self is so that it doesn't matter how you call your methods, because you always reference the this at the time of creation through the self variable. You don't have to write things this way, but then you should understand that references to this may change under your feet.

share|improve this answer
    
Thanks for clearing up why I was getting that result when trying to assign self in the last example! –  Jazza Oct 23 '13 at 2:46
    
Does it answer your question? –  macke Oct 23 '13 at 2:50
    
It explains why I was getting the result that I'm currently getting, not how I can programmatically set self when instantiating my fake class. Or you could actually have answered it and I'm just getting caught up in the massing number of comments and answers. :s –  Jazza Oct 23 '13 at 2:51
    
Well, I did answer it: you can't, not the way you're creating these classes. There is a way to sorta kinda do it, I'll amend the answer. –  macke Oct 23 '13 at 2:53
    
Actually yes, now that I think about it. This isn't the type of thing one should be asking the first thing in the morning! :) –  Jazza Oct 23 '13 at 2:55
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Unless you are detaching the methods from the object and calling them as plain functions, you don't need a self variable at all. The method can reach its object using the this keyword:

var myapp = function() {

  this.method = function() {
    //Do something...
  }

  this.anothermethod = function() {
    this.method();
  }

}
share|improve this answer
    
Might wan't to clarify that "detaching the methods" means calling them without myapp.; I have a feeling the OP might get confused otherwise. –  macke Oct 23 '13 at 2:25
    
I don't think I've ever actually tried doing it without self. I've always thought this was affected by scope, so this.method() would error out because it hasn't been declared. –  Jazza Oct 23 '13 at 2:28
    
@Jazza: this is bound to where it is called, so on an instance it would be instance.anothermethod, where this === instance insite anothermethod in Guffa's version of it. –  OneKitten Oct 23 '13 at 2:30
    
@Jazza: It wasn't declared when you used it in var self = this; either. Whenever you call a method with the syntax foo.bar(), this is set to foo in the scope of the bar call. –  user2357112 Oct 23 '13 at 2:30
    
@user2357112 Yeah I just remembered why I started using self. I commented why on the OP. –  Jazza Oct 23 '13 at 2:33
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