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I'm playing around with scopes in JavaScript and I was curious about something I ran across when calling a function from an array. In the below example I work with three different scopes. One bound to an Object called foobar, one bound to window and then a third one which actually refers to the function itself. I'm just curious why the function is scoped to itself and not to the global window object. Is it because Array access is a function call itself so the stored function is in a local scope?

var foobar = {
  doWork: function() {
      console.log('doing some work...');
      console.log(this);
  }
}

foobar.doWork(); // `this` will refer to foobar

var doWorkClone = foobar.doWork;
doWorkClone(); // `this` will refer to window

var workClones = [];
workClones.push(foobar.doWork);
workClones[0](); // `this` will refer to the doWork function itself
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2  
That value of this has nothing to do with scope –  Quentin Aug 22 '12 at 16:38
    
Functions are never really "bound" to anything in JavaScript. The value of this is determined upon each function call based on the situation. –  Pointy Aug 22 '12 at 16:38
2  
"this will refer to the doWork function itself" — No, it won't. Note the [ and ] in the output. It refers to workClones –  Quentin Aug 22 '12 at 16:39
1  
@Humberto: Strictly speaking that's just a trick. The function that .bind returns calls the original function with a predefined this - but neither of the two functions have a this value bound, technically. –  pimvdb Aug 22 '12 at 16:42
1  
@Humberto oh yes, you're definitely correct about the behavior - really we're just being picky about the terminology :-) –  Pointy Aug 22 '12 at 16:48

2 Answers 2

up vote 4 down vote accepted

They behave the same way. In a.b(), the function a.b is called with this set to a.

foobar.doWork();  // function is `foobar.doWork`, `this` is `foobar`
workClones[0]();  // function is `workClones[0]`, `this` is `workClones`

This is because the . and [] notation are functionally the same thing. It does not matter which one you use, nor does it matter whether you're dealing with an array or not.

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to understand this, litteraly, it might be helpfull to see how the js works under the hood.

when you write f(args), js will execute f.call(this, args). Hence this always refers to where you call the function from.

In your case:

foobar.doWork()   --> foobar
doWorkClone()     --> window or wrapping expression
workClones[0]()   --> "0" is in workClones, so workClones
share|improve this answer
    
The examples are correct but I don't fully agree with your this reasoning. Surely foobar.doWork.call(this) is different. –  pimvdb Aug 22 '12 at 16:54
    
f(args) is not like f.call(this, args) at all. Or were you referring to a special case? In general it's completely wrong. –  Esailija Aug 22 '12 at 16:55
    
Of course "this" is different when you type it down (as you overwrite the "this" passed by default). We can argue than "this" is actually the parent object, but I won't as your your explanation is already way more clear. –  roselan Aug 22 '12 at 17:02

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