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Javascript multiple inheritance

Is there a way in JavaScript to do this:

Foo = function() {

};

Bar = function() {

};

Baz = function() {
    Foo.call(this);
    Bar.call(this);
};

Baz.prototype = Object.create(Foo.prototype, Bar.prototype);

var b = new Baz();
console.log(b);
console.log(b instanceof Foo);
console.log(b instanceof Bar);
console.log(b instanceof Baz);

So that Baz is both an instance of Foo and Bar?

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marked as duplicate by jbabey, Anders R. Bystrup, alxx, Aleksander Blomskøld, Jon Egerton Jan 29 '13 at 9:27

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

    
This was discussed on this question: stackoverflow.com/questions/7373644/… –  Ismael Ghalimi Jan 29 '13 at 1:50
    
@IsmaelGhalimi so it was. I did read that question, and only its accepted answer. While there is an answer in there, I would not call this a duplicate. –  Petah Jan 29 '13 at 1:58
    
Let me read it again and the answers to your question. I might have missed something. Sorry if I did. –  Ismael Ghalimi Jan 29 '13 at 2:06
    
The supplementary answer to another question is correct for this question. That how ever does not mean this question is a duplicate of that question. –  Petah Jan 29 '13 at 2:10
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1 Answer

up vote 3 down vote accepted

JavaScript does not have multiple inheritance. instanceof tests the chain of prototypes, which is linear. You can have mixins, though, which is basically what you're doing with Foo.call(this); Bar.call(this). But it is not inheritance; in Object.create, the second parameter only gives properties to copy, and is not a parent.

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If instanceof won't work, is there another way to test whether an object inherits from two different classes? –  streetlight Apr 10 at 19:10
2  
@streetlight: No. In JavaScript I think testing for capabilities makes more sense than testing for parentage. That is, say you inherit from Dog; instead of if (x instanceof Dog) x.bark(), you'd write if (x.bark) x.bark(); (or safer but more verbose, if (typeof(x.bark) == "function") x.bark()). –  Amadan Apr 11 at 4:24
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