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This little gem is giving me a bit of a headache. Let's say I create an object that returns a function, like this:

function Bar(prop) {
    this.prop = prop;
    var that = this;
    return function() {
        this.prop = that.prop;
    }
}

var bar = new Bar();
console.log(bar instanceof Bar)​;

Bar() returns a function, as you can see. Now, Bar() instanceof Bar returns false, which isn't what I want. How do I check to see if a new Bar() is an instance of Bar? Is this even possible?

share|improve this question
    
I'm not even sure I understand what you're trying to do. new foo.bar() will never be an instanceof foo, it's an instanceof foo.bar. –  zzzzBov May 10 '12 at 15:14
    
"The instanceof operator tests whether an object has in its prototype chain the prototype property of a constructor." (developer.mozilla.org/en/JavaScript/Reference/Operators/…). I don't see why you expect bar() to be an instance of foo.bar. –  Denys Séguret May 10 '12 at 15:14
    
Also, returning an object from a constructor will use the returned object instead of instantiating a new object of that type. –  zzzzBov May 10 '12 at 15:15
    
I'm a bit confused about your variable names. Did you mean new test.bar() or (new foo).bar()? Or what does new foo.bar() mean? foo has no property bar. In any case, since bar() returns a function, it is never an instance of test.bar... which overall problem are you trying to solve? –  Felix Kling May 10 '12 at 15:15
1  
It's not possible, since you simply don't return an instance of Bar. You return a new function... if you could create a function that inherits from Bar, then it would work, but afaik this is not possible (yet, who knows what will come in future ES versions). –  Felix Kling May 10 '12 at 15:23

2 Answers 2

up vote 3 down vote accepted

Returning any object from a constructor will use that object instead of returning an instance automatically generated by the constructor. It's a bit abstract, so here's an example to show my point:

function Foo() {}
function Bar() {
    return new Foo();
}
f = new Foo();
console.log(f instanceof Foo); //true
b = new Bar();
console.log(b instanceof Bar); //false
console.log(b instanceof Foo); //true

Everything in JavaScript is an object, including functions, so the fact that your foo.bar function returns a function means that when you call new foo.bar() you're going to receive the function returned by foo.bar instead of a new foo.bar instance.


While I'm not 100% certain of what you're trying to do exactly, you can check whether a function is being called as an object initializer or as a function simply by using instanceof on the context. This pattern is often used for forcing object initialization:

function Foo(...arguments...) {
    if (!(this instanceof Foo)) {
        return new Foo(...arguments...);
    }
    //do stuff
}

This allows Foo to be called as a function and still return a new Foo instance:

a = new Foo(); //a instanceof Foo
b = Foo(); //b instanceof Foo
share|improve this answer

Not entirely sure why you'd want to do what you are doing but I see what the issue is.

In the scope of 'test', this.bar is the function bar(prop) rather than the function returned as a result of executing this function, if that makes sense. However, new this.bar('hi') will be first executing bar('hi'), which returns an anonymous function that then acts as the constructor.

In other words, you are comparing an instance created from the anonymous function with a different function so instanceof is correctly returning false.

The following logs 'true' but may not be what you are looking for:

function foo() {
    this.test = function() {
        var cls = this.bar('hi');
        console.log(new cls() instanceof cls);
    };

    this.bar = function bar(prop) {
        this.prop = prop;
        var that = this;
        return function() {
            this.prop = that.prop;
        }
    }
}

var test = new foo();
test.test();
share|improve this answer
    
Posted before the OP updated with the new code sample. :( –  howard10 May 10 '12 at 15:24
    
This is still useful, howard10. I think it may in fact solve my problem. –  Elliot Bonneville May 10 '12 at 15:27

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