Sign up ×
Stack Overflow is a community of 4.7 million programmers, just like you, helping each other. Join them; it only takes a minute:

I'm trying to write a wrapper on an array and I've come up with code below:

myList = function () { };
myList.prototype.innerArray = [];
myList.prototype.add = function(pt) { this.innerArray.push (pt); return this; };

For every object myList i create, I hope to get an empty attribute innerArray. But I'm afraid i haven't really understood the concept of prototypes yet, because:

m = new myList().add(4).add(5); 

returns 2, so far so good, but now I do:

j = new myList();

which returns also 2, and I would have expected 0 (a fresh new innerArray); I'm afraid i'm missing something fundamental.

share|improve this question

3 Answers 3

up vote 1 down vote accepted

All instances of myList share the exact same prototype object. It is not copied or cloned to each instance. For functions this is fine because when you call foo.add() then this is the instance, allowing you to fetch per instance values. foo.add and bar.add are the same function object but this is different in each call. But with values directly on the prototype when you change them they change for all instances, since they all point to the same objects.

Instead you want to make a new array in the constructor:

myList = function () {
  this.innerArray = [];
myList.prototype.add = function(pt) {
  this.innerArray.push (pt);
  return this;
share|improve this answer

You don't want to use prototype with innerArray. In your constructor simply do this.innerArray = [] and now you have an instance variable. By using prototype you are creating a class attribute (e.g. shared amongst class instances), not an instance variable (e.g. unique to an instance of the class).

share|improve this answer

You should do

myList = function () { this.innerArray = []; };

as this:

myList.prototype.innerArray = [];

creates innerArray variable common to all instances.

share|improve this answer

Your Answer


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.