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I have the following code:

    class Animal
        constructor: (@name) -> 
        say: () -> console.log "Hello from animal called #{ @name }"

    class Dog extends Animal

        say: () ->
            super.say()
            console.log "Hello from dog called #{ @name }"

    a = new Animal('Bobby')
    a.say()

    d = new Dog("Duffy")
    d.say()            

The result is not

Hello from animal called Bobby
Hello from animal called Duffy
Hello from dog called Duffy

But I get the following error:

Hello from animal called Bobby
Hello from animal called Duffy
Uncaught TypeError: Cannot call method 'say' of undefined

How come super is undefined? How to call a parent method in order to extend it? Thanks

share|improve this question
up vote 57 down vote accepted

I found the answer myself, it should be:

class Dog extends Animal

    say: () ->
        super
        console.log "Hello from dog called #{ @name }"
share|improve this answer
4  
Don't hesitate to mark your answer as right. – TheHippo Jul 17 '12 at 17:43
2  
Shouldn't this be super()? – Ryan_IRL Jul 29 '14 at 17:43
1  
@Ryan_IRL you don't need to use () when calling super. The compiler can tell that when you use the super keyword you are invoking the function. – grammar Oct 17 '14 at 20:44
    
We should be able to put arguments through as well I suppose. – Ziyan Junaideen Jul 3 '15 at 11:10

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