4

How are we supposed to declare viewmodels in typescript?

As classes, modules or as var/functions?

In the definitelytyped examples they use var and function mostly https://github.com/borisyankov/DefinitelyTyped/blob/master/knockout/tests/knockout-tests.ts

EDIT: Thank you Basarat - in this edit I extend the question: If I use class I suppose it should be like this:

class Player
{
    min:KnockoutObservable<number>;
    constructor(min:number=0)
    {
        this.min=ko.observable(min);
    }
}

BUT how should computed be defined?

6

You can use computed with generics (latest Typescript 0.9), just define type in declaration and in constructor you will assign value to result of call to ko.computed:

export class Inbox extends vm.BriskIdeaViewModel {

    public rapidEntryText = ko.observable<string>();
    public todosActive: KnockoutComputed<Array<ITodo>>;

    constructor() {
        super();
        this.todosActive = ko.computed(() => {
            return _.filter(this.dataContext.todos(), x => !x.isDone());
        });
    }
}
| improve this answer | |
  • Why do you use public and why the () in the end at rapidEntryText = ko.observable<string>()? (I know observables are functions but VS underscores it as an error) – Rune Jeppesen Jun 28 '13 at 11:12
  • public is just personal preference - it is same ase without public (typescript is by default public unless you make it private). – nihique Jun 28 '13 at 12:23
  • and rapidEntryText = ko.observable<tring>(); is to have default value - you could just separate this assigment to constructor (like for this.todosActive), but this is much easier. – nihique Jun 28 '13 at 12:24
  • and basically, you cannot do same with computed in my example, because it references 'this' and in that case you cannot use field assigment as with rapidEntryText – nihique Jun 28 '13 at 12:25
3

I prefer to use classes since they really encapsulate functionality extremely well.

e.g. a simple class :

class Player {
    min = ko.observable(0);
    sec = ko.observable(0);
    mil = ko.observable(0);
}

And then do a simple apply:

    var vm = new Player();
    ko.applyBindings(vm);
| improve this answer | |
  • 1
    I've been waiting for someone (other than me :P) to model ko observables with generics - they seem tailor made for it. Have you tried this at all? – Jude Fisher Jun 27 '13 at 13:06
  • @JcFx Nope. I did do significant generic work though: github.com/basarat/typescript-collections I very much prefer AngularJS over knockout. All the knockout I know is now a year old :) AngularJS is now second nature for me :) – basarat Jun 27 '13 at 13:22
  • Not to hijack your answer, but hopefuly to add to its usefulness, someone has: typescript.codeplex.com/discussions/441964 – Jude Fisher Jun 27 '13 at 15:54
  • Thank you, but should it not be like: class Player{min:KnockoutObservable<number> constructor(min:number=0){this.min=ko.computed(min)}} – Rune Jeppesen Jun 28 '13 at 9:56
  • correction 'ko.computed(min)'='ko.observable(min)' Also edited the question to reflect this – Rune Jeppesen Jun 28 '13 at 10:02

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