I would like to be able to instantiate a typescript class where I get the class and constructor details at runtime. The function I would like to write will take in the class name and constructor parameters.

export function createInstance(moduleName : string, className : string, instanceParameters : string[]) {
    //return new [moduleName].[className]([instancePameters]); (THIS IS THE BIT I DON'T KNOW HOW TO DO)
}
up vote 14 down vote accepted

You could try:

var newInstance = Object.create(window[className].prototype);
newInstance.constructor.apply(newInstance, instanceparameters);
return newInstance;

Edit This version is working using the TypeScript playground, with the example:

class Greeter {
    greeting: string;
    constructor(message: string) {
        this.greeting = message;
    }
    greet() {
        return "Hello, " + this.greeting;
    }
}

//instance creation here
var greeter = Object.create(window["Greeter"].prototype);
greeter.constructor.apply(greeter, new Array("World"));

var button = document.createElement('button');
button.innerText = "Say Hello";
button.onclick = function() {
    alert(greeter.greet());
}

document.body.appendChild(button);
  • 2
    This is good; Although I would recommend not explicitly calling window. Ie, what if he is using NodeJs? And the window object doesn't exist? – AlanFoster Mar 11 '13 at 13:37
  • Can't he substitute window with global for NodeJs? – Colin Dumitru Mar 11 '13 at 13:41
  • 4
    Needed a little extra to get the module portion working nicely (which was not specified in the original question). var newInstance = Object.create(window["moduleName1"]["moduleName"]["ClassName"].prototype); To replace something like var person = new entities.Mammal.Person(); – Greg van Berkel Mar 28 '13 at 13:32
  • 8
    In TypeScript 1.8.9 and SystemJS, this doesn't work, since window doesn't contain the exported classes. – Ondra Žižka Aug 14 '16 at 18:06
  • 2
    Instead of using 'window', you can use namespaces. e.g. export namespace Model { export class Greeter{...} } . Then you can use Object.create(Model['Greeter'].prototype); – Michael Brown Jun 15 at 4:39

As you are using TypeScript I'm assuming you want the loaded object to be typed. So here is the example class (and an interface because you are choosing to load one of many implementations, for example).

interface IExample {
    test() : string;
}

class Example {
    constructor (private a: string, private b: string) {

    }

    test() {
        return this.a + ' ' + this.b;
    }
}

So you would use some kind of loader to give you back an implementation:

class InstanceLoader {
    constructor(private context: Object) {

    }

    getInstance(name: string, ...args: any[]) {
        var instance = Object.create(this.context[name].prototype);
        instance.constructor.apply(instance, args);
        return instance;
    }
}

And then load it like this:

var loader = new InstanceLoader(window);

var example = <IExample> loader.getInstance('Example', 'A', 'B');
alert(example.test());

At the moment, we have a cast: <IExample> - but when generics are added, we could do away with this and use generics instead. It will look like this (bearing in mind it isn't part of the language yet!)

class InstanceLoader<T> {
    constructor(private context: Object) {

    }

    getInstance(name: string, ...args: any[]) : T {
        var instance = Object.create(this.context[name].prototype);
        instance.constructor.apply(instance, args);
        return <T> instance;
    }
}

var loader = new InstanceLoader<IExample>(window);

var example = loader.getInstance('Example', 'A', 'B');
  • 1
    +1 for a solution that also worked on the latest TypeScript. I had to add a cast to get my version to work nowaday :). – Gone Coding Jun 12 at 20:21
  • 1
    This worked for me. The only thing I would add is some clarification around namespaces (shown as context above). In this example: const il = new InstanceLoader(Model); const employee = il.getInstance('Employee'); Model is an exported namespace. e.g. export namespace Model { export class Employee{...} } Then when you want to load Employee from the namespace model, import { Model } from '.your_model_path' So instead of using the context of 'window' you can add your class to a namespace and then load a class by name from that namespace. – Michael Brown Jun 15 at 4:33

Update

To get this to work in latest TypeScript you now need to cast the namespace to any. Otherwise you get an Error TS7017 Build:Element implicitly has an 'any' type because type '{}' has no index signature.

If you have a specific namespace/module, for all the classes you want to create, you can simply do this:

var newClass: any = new (<any>MyNamespace)[classNameString](parametersIfAny);

Update: Without a namespace use new (<any>window)[classname]()

In TypeScript, if you declare a class outside of a namespace, it generates a var for the "class function". That means it is stored against the current scope (most likely window unless you are running it under another scope e.g. like nodejs). That means that you can just do new (<any>window)[classNameString]:

This is a working example (all code, no namespace):

class TestClass
{
    public DoIt()
    {
        alert("Hello");
    }
}

var test = new (<any>window)["TestClass"]();
test.DoIt();

To see why it works, the generated JS code looks like this:

var TestClass = (function () {
    function TestClass() {
    }
    TestClass.prototype.DoIt = function () {
        alert("Hello");
    };
    return TestClass;
}());
var test = new window["TestClass"]();
test.DoIt();
  • 2
    Should be the answer ;-) – MarzSocks Jul 12 '16 at 16:10
  • What if you're not using a namespace? Is there a default namespace to use? – Learner Nov 9 '16 at 8:05
  • 1
    @Learner: Very good question. Added that to the answer. Just use new window[classname]() to construct a non-namespaced TypeScript class by name (assuming you are running code in the default namespace). – Gone Coding Nov 9 '16 at 10:00
  • 3
    Neat thanks. In my project, I don't declare typescript namespaces explicitly, but instead export types from an index.ts file. So I was able to use this solution to do the following. import * as MyNamespace from '/someFileWithExports' then new MyNamespace[classNameString] – Learner Nov 10 '16 at 0:06
  • Thanks Good Stuff! – Greg van Berkel Apr 26 '17 at 12:17

This works in TypeScript 1.8 with ES6 module:

import * as handlers from './handler';

function createInstance(className: string, ...args: any[]) {
  return new (<any>handlers)[className](...args);
}

Classes are exported in handler module. They can be re-exported from other modules.

export myClass {};
export classA from './a';
export classB from './b';

As for passing module name in arugments, I can't make it work because ES6 module is unable to be dynamic loaded.

  • I finally found the right answer for me. Thank you! – boyd Aug 18 at 18:51
  • Fantastic! Thanks for this. I was searching for hours for a solution to the disappearing type. This is working with 3.0.3 ES7 – Ian Carson 6 hours ago

As of typescript 0.9.1, you can do something like this playground:

class Handler {
    msgs:string[];  
    constructor(msgs:string[]) {
        this.msgs = msgs;
    }
    greet() {
        this.msgs.forEach(x=>alert(x));
    }
}

function createHandler(handler: typeof Handler, params: string[]) {
    var obj = new handler(params);
    return obj;
}

var h = createHandler(Handler, ['hi', 'bye']);
h.greet();
  • I just want you know, I've been scouring the internet for a solution to this problem for nearly 4 hours. Yours is the ONLY answer that works for me. I can't believe this is so obscure, I would think dynamic loading of polymorphic subclasses would be more common. – pixelpax Jan 30 '17 at 7:10
  • It's been that long that I don't even remember answering this or what it does... sure the accepted answer didn't help you @user2130130 ? In any case, I'm glad I helped someone with this hehe :) – Joe Jan 31 '17 at 5:50
  • 2
    No way! Yours is the only valuable answer here imho. All of the other ones either involve dereferencing the global object. Yours is the only one which allows me to get the TYPE of a CLASS. Since classes are really just constructor functions in JS, this is one of those things that's REALLY easy in vanilla and obnoxiously difficult in TS. Use case: Taking in serialized objects and turning them into full-featured class instances using different classes depending on some kind of class-code contained in the serialized object. Absolutely necessary for a lot of applications. Post should be @top. – pixelpax Feb 2 '17 at 3:00

One other way would be calling the file dynamically and new

// -->Import: it dynamically
const plug = await import(absPath);
const constructorName = Object.keys(plug)[0];

// -->Set: it
const plugin = new plug[constructorName]('new', 'data', 'to', 'pass');
function fromCamelCase(str: string) {
  return str
    // insert a '-' between lower & upper
    .replace(/([a-z])([A-Z])/g, '$1-$2').toLowerCase();
}

async getViewModelFromName(name: string) {
    //
    // removes the 'ViewModel' part ('MyModelNameViewModel' = 'MyModelName').
    let index = name.indexOf('ViewModel');
    let shortName = index > 0 ? name.substring(0, index) : name;

    // gets the '-' separator representation of the camel cased model name ('MyModelName' = 'my-model-name').
    let modelFilename = fromCamelCase(shortName) + '.view-model';

    var ns = await import('./../view-models/' + modelFilename);

    return new ns[name]();
  }

or

declare var require: any; // if using typescript.

getInstanceByName(name: string) {
    let instance;

    var f = function (r) {
      r.keys().some(key => {
        let o = r(key);
        return Object.keys(o).some(prop => {
          if (prop === name) {
            instance = new o[prop];
            return true;
          }
        })
      });
    }
    f(require.context('./../view-models/', false, /\.view-model.ts$/));

    return instance;
}

I've found another way as in my case I don't have access to window.

Example class that want to be created:

class MyService {

  private someText: string;

  constructor(someText: string) {
    this.someText = someText;
  }

  public writeSomeText() {
    console.log(this.someText);
  }
}

Factory class:

interface Service<T> {
  new (param: string): T;
}

export class ServiceFactory<T> {

  public createService(ctor: Service<T>, param: string) {
    return new ctor(param);
  }

}

And then to create the instance using the Factory:

const factory: ServiceFactory<MyService> = new ServiceFactory<MyService>();
const service: MyService = factory.createService(MyService, 'Hello World');
service.writeSomeText();

I'm using typescript ~2.5.3 and I'm able to do this:

class AEmailNotification implements IJobStateEmailNotification {}
class ClientJobRequestNotification extends AEmailNotification {}
class ClientJobRequestAcceptedNotification extends AEmailNotification {}
class ClientJobRequestDeclinedNotification extends AEmailNotification {}
class ClientJobRequestCounterOfferNotification extends AEmailNotification {}
class ClientJobRequestEscrowedFundsNotification extends AEmailNotification {}
class ClientJobRequestCommenceNotification extends AEmailNotification {}

export function notificationEmail(action: string) {
    console.log(`+ build factory object for action: ${action}`)

    const actions = {}

    actions['Create job'] = ClientJobRequestNotification
    actions['Accept terms'] = ClientJobRequestAcceptedNotification
    actions['Decline terms'] = ClientJobRequestDeclinedNotification
    actions['Counter offer'] = ClientJobRequestCounterOfferNotification
    actions['Add funds to escrow'] = ClientJobRequestEscrowedFundsNotification
    actions['-- provider to commence the job --'] = ClientJobRequestCommenceNotification

    const jobAction = actions[action]

    if (!jobAction) {
        console.log(`! unknown action type: ${action}`)
        return undefined
    }

    return new jobAction()
}

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