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I know you can have one javascript instantiated object inherit the prototype of another constructor with constructer.prototype.__proto__ = otherConstructer.prototype, but can you use the call method like this to do the same thing?:

function constructor () {
  otherConstructor.call(this);
}
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Not sure, but apply may help. –  Passerby Oct 10 '12 at 4:39
    
The call operator only sets the value of this within a function, it has nothing to do with inheritance (i.e. property resolution along the [[Prototype]] chain) or scope (i.e. identifier resolution on the scope chain). Ok, you didn't mention scope, but I thought I'd throw it in there. :-) –  RobG Oct 10 '12 at 6:13
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1 Answer 1

up vote 1 down vote accepted

No, the prototype can't be replaced except by referencing the object itself and directly replacing it with the __proto__ property, which doesn't exist in all implementations. Look at this sample code:

function B() {
    this.someValue = "BBB";
}
B.prototype.testfunc = function() {
    console.log("Called from B: someValue =" + this.someValue);
}

function A() {
  this.someValue = "AAA";
  return B.call(this);
}
A.prototype.testfunc = function() {
    console.log("Called from A: someValue =" + this.someValue);
}

var test = new A();
test.testfunc();

// Will output "Called from A: someValue =BBB"

As you can see, the B constructor is correctly called and the object setup is from B and not A, but nevertheless the object's prototype is still from A. You can, of course, replace individual functions:

test.testfunc = B.prototype.testfunc;
test.testfunc();

// Will output "Called from A: someValue =BBB"

If you want a great explanation of why this is so, check out the accepted answer to this question.

Edit: There is no association with B.prototype when an A object is created. If you changed the code so that A.prototype.testfunc is not defined, then even though the A constructor calls B, nevertheless calling test.testfunc() will result in an undefined exception.

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Good example. But if this.textfunc were not defined in B, would if then be used from A? That is, does your example completely strip out everything on the A prototype, or does everything on the B prototype just override that on the A prototype? –  user730569 Oct 10 '12 at 4:56
    
I assume you mean if A.prototype.testfunc wasn't defined, would it use it from B instead of the A prototype, and no, it won't. You get an undefined function when you try to call test.testfunc. There is no association with B.prototype when creating a new A object. –  Ed Bayiates Oct 10 '12 at 4:59
    
Is there a good way to have one constructor completely inherit the prototype of another then? –  user730569 Oct 10 '12 at 5:51
    
this looks pretty nice: phrogz.net/JS/classes/OOPinJS2.html –  user730569 Oct 10 '12 at 6:03
    
@AresAvatar—saying "B constructor is conrrectly called" is misleading. B is called as a function, so it just modifies the value of this it is given (an instance of A in your code), that's it. There is nothing special happening, the instances of A don't inherit anything from B.prototype. When you do test.testfunc = B.prototype.testfunc, that is simple assignment, the instance still doesn't "inherit" from B.prototype, it just has a property referencing the function directly. Modify B.prototype.testfunc and the instance still has the old function. –  RobG Oct 10 '12 at 6:25
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