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Consider the following:

    SomeView = Backbone.View.extend({
        render0: function () {
            var view0 = new View0();
            view0.setElement("#right-block");
            view0.render();
        },
        render1: function(event) {
            var view1 = new View1();
            view1.setElement("#right-block");
            view1.render();
        },

    });

If I call render0() and then render1, what will happen to the object view0? Do I have to explicitly destroy the old view?

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2 Answers 2

5

Your view0 will stay in memory as long as the DOM element #right-block exists. Because the event handlers on the DOM element is pointing to methods of your view, so it won't be garbage collected.

Ideally you should invoke view0.remove(), which will remove the element from DOM and also calls stopListening().

But in your sample code, if you do that, the element #right-block will be removed from DOM, and view1.setElement("#right-block"); won't work as expected.

In this case try invoking view0.undelegateEvents(); view0.stopListening();, and if nothing else is referring to the view instance, it'll be garbage collected

1
  • Or override View0#remove to just undelegateEvents and stopListening if it is intended to be used with existing elements, that way you could always call remove. Commented Jan 13, 2016 at 16:36
0

No, you don't have to destroy the old view. Variables in objects that themselves go out of scope do not have to be manually cleared. When they go out of scope or when the parent object is deleted, the data contained within will also be eligible for garbage collection.

1
  • I understand. My concern is that even though they go out of scope after render(), they still seem to be not garbage collected as the views still operate.
    – khajvah
    Commented Jan 13, 2016 at 8:58

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