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I'm trying to work through some javascript inheritance examples and I hit a wall with this one:

function Animal(){}
Animal.prototype.type = "animal";
Animal.prototype.speak = function(){ console.log( "I'm a " + this.type + 
    ". I can't really talk ;)" ); }

function Dog(){}

function F(){}
F.prototype = Animal.prototype;

Dog.prototype = new F();
Dog.prototype.constructor = Dog;
Dog.prototype.type = "Dog";
Dog._super = Animal.prototype;
Dog.woof = function(){ console.log( "Woof!" ); _super.speak(); }

var rover = new Dog();
rover.woof();

I am getting this and I have no idea why:

TypeError: Object #<Dog> has no method 'woof'

I know I can put the not-found method into the constructor function, but I am trying to do this with prototype modification. What am I doing wrong here?

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woof should be under prototype of dog to be invoked as Dog.woof() –  Deeptechtons Oct 12 '11 at 4:35
    
@Deeptechtons can you submit your suggestion as a succinct answer? I'm not following 100%. –  javamonkey79 Oct 12 '11 at 4:42
    
my answer would be more or less the same as bjornd's –  Deeptechtons Oct 12 '11 at 4:51
    
@javamonkey79 - objects inherit from their constructor's prototype, not the constructor itself. So rover inherits from Dog.prototype, not Dog. –  RobG Oct 12 '11 at 5:10
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4 Answers

up vote 4 down vote accepted

Change:

Dog._super = Animal.prototype;
Dog.woof = function(){ console.log( "Woof!" ); _super.speak(); }

To:

// Dog.prototype._super = Animal.prototype; <- you can remove this line
Dog.prototype.woof = function(){ console.log( "Woof!" ); this.speak(); }
share|improve this answer
    
Ah, I think I see my mistake now. Ug - I was trying to add the function to the Dog function, which is a function object, not a Dog object. Man alive grokking prototype inheritance is tricky! Thanks. –  javamonkey79 Oct 12 '11 at 4:48
    
@javamonkey79 I made a correction to my answer; it now logs I'm a Dog, I can't really talk instead of I'm a Animal, I can't really talk –  NullUserException Oct 12 '11 at 4:52
    
oh, cool - I think either solution is fine...I had the "ah ha" moment of what I was doing wrong. Thank God for SO :) –  javamonkey79 Oct 12 '11 at 4:57
    
@javamonkey79 Oh, you can remove the reference to _super unless you need it for some other reason. You don't really need here. –  NullUserException Oct 12 '11 at 5:08
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The last string of the Dog pseudo-class definition is wrong. It should be

Dog.prototype.woof = function(){ console.log( "Woof!" ); Dog._super.speak.call(this); }
  1. You should define method woof as the property of the Dog's prototype.
  2. _super is available only as the property of the Dog constructor.
  3. You should call the methods of the parent class in context of the current instance.
share|improve this answer
    
+1 for teaching call –  Deeptechtons Oct 12 '11 at 4:52
    
+1 For making it work correctly and making me realize I had a mistake in my answer. –  NullUserException Oct 12 '11 at 4:53
    
very nice answer, thanks for explaining it :) –  javamonkey79 Oct 12 '11 at 4:58
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So your woof method is actually effectively a static method (If you're coming from java. Basically, it's hanging off the Dog function, and can be accessed without an instance of Dog. ie: Dog.woof())

To get it working with an instance of a dog, you want to make sure it's a prototype definition (again, with a Java analogy, effectively a instance method definition). As qwertymik said,

Dog.prototype.woof = function(){ console.log( "Woof!" ); this.speak(); }

Then you'll be able to do

var foo = new Dog();
foo.woof();
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right, I think I thought about this when I had my "ah ha" moment due to @NullUserExceptions answer, however, this is good that you bring it up for others +1 thanks! –  javamonkey79 Oct 12 '11 at 5:00
    
You're Welcome :) –  Gopherkhan Oct 12 '11 at 17:08
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Maybe you mean to do this:

Dog.prototype._super = Animal.prototype;
Dog.prototype.woof = function(){ console.log( "Woof!" ); this._super.speak(); }
share|improve this answer
    
I couldn't get this one to work. I am using node.js standalone exe. –  javamonkey79 Oct 12 '11 at 4:47
    
It would work if woof was defined as function() { ...; this._super.speak.call(this())}. As is, the context of the speak call will be Animal.prototype instead of this. –  Juan Mendes Feb 2 '12 at 8:19
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