Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Can anybody help me understand why the "counter" property seems to get reset on every new instance? I expected it to work like the "letters" property, which is shared across all instantiated objects.

I came across this while putting together some sample code as to why prototype properties shouldn't be used this way unless they are intended to be static.

Sample Code:

var Dog = function() {
    this.initialize.apply(this, arguments);
};
Dog.prototype = {
    counter : 2,
    letters : [ 'a', 'b', 'c' ],
    initialize : function(dogName) {
        this.dogName = dogName;
    },
    add : function(amount) {
        this.counter += amount;
    },
    arr : function(char) {
        this.letters.push(char);
    }
};

var fido = new Dog("fido");
fido.add(1);
fido.arr('d');
console.log(fido.counter); // 3, as expected
console.log(fido.letters.toString()); // ABCD, as expected

var maxx = new Dog("maxx");
maxx.add(1);
maxx.arr('e');
console.log(maxx.counter); // 3, Unexpected, Why isn't this 4?
console.log(maxx.letters.toString()); // ABCDE, as expected
share|improve this question
    
Because your line this.counter += amount is actually doing this.counter = Dog.Prototype.counter + 1 –  david Sep 20 '13 at 19:28

2 Answers 2

up vote 3 down vote accepted

This is due to the line

this.counter += amount;

What happens? this.counter doesn't find property counter on the instance, so it takes it from the prototype, but when it comes to setting, it sets it on the instance

var fido = new Dog("fido");
console.log(fido.hasOwnProperty('counter')); // false
fido.add(1);
console.log(fido.hasOwnProperty('counter')); // true

Remember it is shorthand for

this.counter = this.counter + amount;
/*    ↑              ↑
   instance          |
                 prototype */

As for letters, that is working as expected because push is happening on the Object in the prototype - you're not setting a new instance variable. If you were setting an instance variable, it may still work because Objects are assigned to variables by reference, i.e.

var a = {}, b = a;
b.foo = 'bar';
a.foo; // "bar";
share|improve this answer
    
Good answer; you should speak to why the array letters remains shared across instances of Dog. –  Nick Husher Sep 20 '13 at 19:31
2  
@NickHusher I've edited in an explanation for letters too, as requested. Though I don't feel there is too much to say about it, as the action performed is entirely different. –  Paul S. Sep 20 '13 at 19:35
    
Kudos. I thought this was a very clear answer. –  Joe Simmons Sep 20 '13 at 19:38
    
Thank you Paul! I suspected the instance vs. prototype scope on the counter but the array was throwing me off. I didn't think about the fact that I'm calling a function on the array vs setting it directly. –  Brad C Sep 20 '13 at 19:40

When you say this.counter += amount in add, this refers to the object that add was called on (in this case fido or maxx). In this case the += operator reads from the inherited value because there is no local value for counter and the writes to a new local value. Because fido or maxx now have their own counter properties the prototype covered up. Try the following:

Dog.prototype = {

    ...

    add : function(amount) {
        Dog.prototype.counter += amount;
    },

    ...

};
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.