95

I'm using KnockoutJS version 2.0.0

If I'm looping through all properties of an object, how can I test whether each property is a ko.observable? Here's what I've tried so far:

    var vm = {
        prop: ko.observable(''),
        arr: ko.observableArray([]),
        func: ko.computed(function(){
            return this.prop + " computed";
        }, vm)
    };

    for (var key in vm) {
        console.log(key, 
            vm[key].constructor === ko.observable, 
            vm[key] instanceof ko.observable);
    }

But so far everything is false.

151

Knockout includes a function called ko.isObservable(). You can call it like ko.isObservable(vm[key]).

Update from comment:

Here is a function to determine if something is a computed observable:

ko.isComputed = function (instance) {
    if ((instance === null) || (instance === undefined) || (instance.__ko_proto__ === undefined)) return false;
    if (instance.__ko_proto__ === ko.dependentObservable) return true;
    return ko.isComputed(instance.__ko_proto__); // Walk the prototype chain
};

UPDATE: If you are using KO 2.1+ - then you can use ko.isComputed directly.

  • 2
    Thank you. Do you by chance know how to tell if an observable is computed? I can determine if an observable is an observable array via $.isArray(vm[key]()), but do you know how to differentiate observables from a ko.computed?? – Adam Rackis Mar 8 '12 at 22:19
  • 7
    KO 2.1 that should be out in the next few weeks will include a ko.isComputed function. The code would be the equivalent to what I added to the answer above. – RP Niemeyer Mar 9 '12 at 2:36
25

Knockout has the following function which I think is what you are looking for:

ko.isObservable(vm[key])
1

To tack on to RP Niemeyer's answer, if you're simply looking to determine if something is "subscribable" (which is most often the case). Then ko.isSubscribable is also available.

-2

I'm using

ko.utils.unwrapObservable(vm.key)

Update: As of version 2.3.0, ko.unwrap was added as substitute for ko.utils.unwrapObservable

  • 2
    That unwraps an observable. It doesn't test whether a property is an observable. – Adam Rackis Jul 29 '14 at 14:48
  • 1
    You're right. But usually if you need to know to get the actual observable value ;) – Ivan Rodriguez Jul 30 '14 at 7:57
  • 1
    It provides a valid way to access a property that may or may not be observable however it doesn't answer the question per se. – Ozil Jun 14 '17 at 10:41

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