318

I read a JSON object from a remote REST server. This JSON object has all the properties of a typescript class (by design). How do I cast that received JSON object to a type var?

I don't want to populate a typescript var (ie have a constructor that takes this JSON object). It's large and copying everything across sub-object by sub-object & property by property would take a lot of time.

Update: You can however cast it to a typescript interface!

16 Answers 16

133

You can't simple cast a plain-old-JavaScript result from an Ajax request into a prototypical JavaScript/TypeScript class instance. There are a number of techniques for doing it, and generally involve copying data. Unless you create an instance of the class, it won't have any methods or properties. It will remain a simple JavaScript object.

While if you only were dealing with data, you could just do a cast to an interface (as it's purely a compile time structure), this would require that you use a TypeScript class which uses the data instance and performs operations with that data.

Some examples of copying the data:

  1. Copying AJAX JSON object into existing Object
  2. Parse JSON String into a Particular Object Prototype in JavaScript

In essence, you'd just :

var d = new MyRichObject();
d.copyInto(jsonResult);
  • I agree with your answer. As an addition, although I'm not in a place to look it up and test it right now, I think those two steps could be combined by giving a wakeup function as a param to JSON.parse(). Both would still need to be done, but syntactically they could be combined. – JAAulde Apr 5 '14 at 2:48
  • Sure, that might work too -- I don't have a sense of whether it would be any more efficient though as it would need to call an extra function call for each property. – WiredPrairie Apr 5 '14 at 2:57
  • Definitely not the answer I was looking for :( Out of curiosity why is this? It seems to me the way javascript works that this should be doable. – David Thielen Apr 5 '14 at 19:25
  • No, it doesn't work in TypeScript because there isn't a simple way in JavaScript to do this. – WiredPrairie Apr 5 '14 at 20:45
  • What about Object.setPrototypeOf – Petah Aug 24 '15 at 21:13
74

I had the same issue and I have found a library that does the job : https://github.com/pleerock/class-transformer.

It works like this :

        let jsonObject = response.json() as Object;
        let fooInstance = plainToClass(Models.Foo, jsonObject);
        return fooInstance;

It supports nested childs but you have to decorate your class's member.

  • 9
    This brilliant little library solved it perfectly with the least of effort (don't forget your @Type annotations, though). This Answer deserves more credit. – Benny Bottema May 20 '17 at 18:30
  • Oh wow!, this library is not so tiny it have maybe everything you need, even lets you control the transformation with the @transform decorator :D – Diego Fernando Murillo Valenci Jan 18 '18 at 19:41
  • 2
    Take note that this library is barely maintained anymore. It doesn't work with Angular5+ anymore and as they aren't even merging pull requests anymore, I don't think they are going to work on that anytime soon. It's a great library though. – kentor Apr 27 '18 at 20:47
  • There is a workaround for Angular5+ (it's actually an Angular Bug) : github.com/typestack/class-transformer/issues/108 – Pak May 3 '18 at 8:21
  • 2
    This works just fine in Angular 6 (at least for my use case which is just to literally map JSON <=> Class) – tftd Jul 24 '18 at 12:31
44

In TypeScript you can do a type assertion using an interface and generics like so:

var json = Utilities.JSONLoader.loadFromFile("../docs/location_map.json");
var locations: Array<ILocationMap> = JSON.parse(json).location;

Where ILocationMap describes the shape of your data. The advantage of this method is that your JSON could contain more properties but the shape satisfies the conditions of the interface.

I hope that helps!

  • 42
    FYI: It's a type assertion, not a cast. – WiredPrairie Aug 25 '15 at 0:42
  • 5
    See here for the difference between a type assertion and a cast. – Stefan Hanke Sep 2 '15 at 4:33
  • 7
    Where can I find Utilities.JSONLoader? – HypeXR Apr 15 '16 at 18:38
  • 20
    But it won't have any methods, as mentioned in the answer. – Martín Coll Sep 12 '16 at 14:41
  • The main point is able to use method(s) which is implemented in the type. – Must.Tek Nov 29 '18 at 9:57
29

If you are using ES6, try this:

class Client{
  name: string

  displayName(){
    console.log(this.name)
  }
}

service.getClientFromAPI().then(clientData => {

  // Here the client data from API only have the "name" field
  // If we want to use the Client class methods on this data object we need to:
  let clientWithType = Object.assign(new Client(), clientData)

  clientWithType.displayName()
})

But this way will not work on the nest object, sadly.

  • 2
    They asked for it in Typescript. – joe.feser Mar 22 '17 at 3:22
  • HI @joe.feser , I mention ES6 because this way the 'Object.assign' method is required. – ilovezcd May 9 '17 at 7:08
  • 1
    In case the default constructor is missing, the target instance can be created through Object.create(MyClass.prototype), bypassing the constructor altogether. – Marcello Jul 26 '17 at 11:59
25

I found a very interesting article on generic casting of JSON to a Typescript Class:

http://cloudmark.github.io/Json-Mapping/

You end up with following code:

let example = {
                "name": "Mark", 
                "surname": "Galea", 
                "age": 30, 
                "address": {
                  "first-line": "Some where", 
                  "second-line": "Over Here",
                  "city": "In This City"
                }
              };

MapUtils.deserialize(Person, example);  // custom class
16

Assuming the json has the same properties as your typescript class, you don't have to copy your Json properties to your typescript object. You will just have to construct your Typescript object passing the json data in the constructor.

In your ajax callback, you receive a company:

onReceiveCompany( jsonCompany : any ) 
{
   let newCompany = new Company( jsonCompany );

   // call the methods on your newCompany object ...
}

In in order to to make that work:

1) Add a constructor in your Typescript class that takes the json data as parameter. In that constructor you extend your json object with jQuery, like this: $.extend( this, jsonData). $.extend allows keeping the javascript prototypes while adding the json object's properties.

2) Note you will have to do the same for linked objects. In the case of Employees in the example, you also create a constructor taking the portion of the json data for employees. You call $.map to translate json employees to typescript Employee objects.

export class Company
{
    Employees : Employee[];

    constructor( jsonData: any )
    {
        $.extend( this, jsonData);

        if ( jsonData.Employees )
            this.Employees = $.map( jsonData.Employees , (emp) => {
                return new Employee ( emp );  });
    }
}

export class Employee
{
    name: string;
    salary: number;

    constructor( jsonData: any )
    {
        $.extend( this, jsonData);
    }
}

This is the best solution I found when dealing with Typescript classes and json objects.

  • I prefer this solution over implementing and maintaining interfaces, because my Angular2 applications have a real application model that may be different to the model of the webservices my application consumes. It can have private datas and calculated properties. – Anthony Brenelière Jan 19 '17 at 9:16
  • 6
    Using JQuery in Angular projects is a terrible idea. And if your models contain a bunch of functions on them, they are not models anymore. – Davor Jun 15 '17 at 15:06
  • 1
    @Davor You mean POJO, or model? POJO (basically plain objects) have no functions, while model is a wider term, and it includes repository. Repository pattern, in contrast to POJO, is about functions, but it's still model. – forsberg Jun 18 '17 at 16:05
  • @Davor: using JQuery in Angular projects is not a bad idea as long as you do not use it to manipulate the DOM, which is indeed a terrible idea. I do use any library I need for my Angular projects, and for jQuery it is not an option because my project uses SignalR that depends on it. In case of classes, now used by javascript ES6, data is accessed with properties that are function that encapsulate the way the data is stored in memory. For constructors, there is a proper way which using factories. – Anthony Brenelière Jun 18 '17 at 22:01
  • The OP is clearly about plain data models for REST. You're making it needlessly complicated, guys. And yeah, you can use Jquery for additional stuff, but you're importing a massive library to use 1% of it. That is a code smell if I've ever seen one. – Davor Jun 19 '17 at 9:32
15

TLDR: One liner

// This assumes your constructor method will assign properties from the arg.
.map((instanceData: MyClass) => new MyClass(instanceData));

The Detailed Answer

I would not recommend the Object.assign approach, as it can inappropriately litter your class instance with irrelevant properties (as well as defined closures) that were not declared within the class itself.

In the class you are trying to deserialize into, I would ensure any properties you want deserialized are defined (null, empty array, etc). By defining your properties with initial values you expose their visibility when trying to iterate class members to assign values to (see deserialize method below).

export class Person {
  public name: string = null;
  public favoriteSites: string[] = [];

  private age: number = null;
  private id: number = null;
  private active: boolean;

  constructor(instanceData?: Person) {
    if (instanceData) {
      this.deserialize(instanceData);
    }
  }

  private deserialize(instanceData: Person) {
    // Note this.active will not be listed in keys since it's declared, but not defined
    const keys = Object.keys(this);

    for (const key of keys) {
      if (instanceData.hasOwnProperty(key)) {
        this[key] = instanceData[key];
      }
    }
  }
}

In the example above, I simply created a deserialize method. In a real world example, I would have it centralized in a reusable base class or service method.

Here is how to utilize this in something like an http resp...

this.http.get(ENDPOINT_URL)
  .map(res => res.json())
  .map((resp: Person) => new Person(resp) ) );

If tslint/ide complains about argument type being incompatible, just cast the argument into the same type using angular brackets <YourClassName>, example:

const person = new Person(<Person> { name: 'John', age: 35, id: 1 });

If you have class members that are of a specific type (aka: instance of another class), then you can have them casted into typed instances through getter/setter methods.

export class Person {
  private _acct: UserAcct = null;
  private _tasks: Task[] = [];

  // ctor & deserialize methods...

  public get acct(): UserAcct {
    return this.acct;
  }
  public set acct(acctData: UserAcct) {
    this._acct = new UserAcct(acctData);
  }

  public get tasks(): Task[] {
    return this._tasks;
  }

  public set tasks(taskData: Task[]) {
    this._tasks = taskData.map(task => new Task(task));
  }
}

The above example will deserialize both acct and the list of tasks into their respective class instances.

  • 1
    I like the one-liner ;-) – LeO Jul 5 '17 at 13:53
  • I get this error message: Type '{ name: string, age: number, id: number }' cannot be converted to type 'Person'. Property 'id' is private in type 'Person' but not in type '{ name: string, age: number, id: number }' – utiq Sep 29 '17 at 22:21
  • How should I use this with enums? Do I have to use the specific type approach and add getter and setter for it? – Tadija Bagarić Nov 16 '17 at 9:44
  • @TimothyParez When do you set the tasks? – Kay Dec 4 '17 at 11:52
  • I tried to do something similar but my tasks array is empty when i console.log person. – Kay Dec 4 '17 at 11:53
13

In my case it works. I used functions Object.assign (target, sources ...). First, the creation of the correct object, then copies the data from json object to the target.Example :

let u:User = new User();
Object.assign(u , jsonUsers);

And a more advanced example of use. An example using the array.

this.someService.getUsers().then((users: User[]) => {
  this.users = [];
  for (let i in users) {
    let u:User = new User();
    Object.assign(u , users[i]);
    this.users[i] = u;
    console.log("user:" + this.users[i].id);
    console.log("user id from function(test it work) :" + this.users[i].getId());
  }

});

export class User {
  id:number;
  name:string;
  fullname:string;
  email:string;

  public getId(){
    return this.id;
  }
}
  • What happens when you have a private property? – prasanthv Apr 10 '17 at 18:36
  • Because the jsonUser object is not a User class. Without operation Object.assign (u, jsonUsers); You can not use the getId() function. Only after assign you get a valid User object in which you can use the getId() function. The getId() function is only for the example that the operation was successful. – Adam111p Apr 14 '17 at 7:24
  • you can skip the temp var - just do this.users[i] = new User(); Object.assign(this.users[i], users[i]) – cyptus Aug 30 '18 at 9:45
  • or even better make use of the return value: this.users[i] = Object.assign(new User(), users[i]); – cyptus Aug 30 '18 at 9:47
  • This long version is for explanation only. You can shorten the code as much as you like :) – Adam111p Aug 30 '18 at 10:12
11

There is nothing yet to automatically check if the JSON object you received from the server has the expected (read is conform to the) typescript's interface properties. But you can use User-Defined Type Guards

Considering the following interface and a silly json object (it could have been any type):

interface MyInterface {
    key: string;
 }

const json: object = { "key": "value" }

Three possible ways:

A. Type Assertion or simple static cast placed after the variable

const myObject: MyInterface = json as MyInterface;

B. Simple static cast, before the variable and between diamonds

const myObject: MyInterface = <MyInterface>json;

C. Advanced dynamic cast, you check yourself the structure of the object

function isMyInterface(json: any): json is MyInterface {
    // silly condition to consider json as conform for MyInterface
    return typeof json.key === "string";
}

if (isMyInterface(json)) {
    console.log(json.key)
}
else {
        throw new Error(`Expected MyInterface, got '${json}'.`);
}

You can play with this example here

Note that the difficulty here is to write the isMyInterface function. I hope TS will add a decorator sooner or later to export complex typing to the runtime and let the runtime check the object's structure when needed. For now, you could either use a json schema validator which purpose is approximately the same OR this runtime type check function generator

2

While it is not casting per say; I have found https://github.com/JohnWhiteTB/TypedJSON to be a useful alternative.

@JsonObject
class Person {
    @JsonMember
    firstName: string;

    @JsonMember
    lastName: string;

    public getFullname() {
        return this.firstName + " " + this.lastName;
    }
}
var person = TypedJSON.parse('{ "firstName": "John", "lastName": "Doe" }', Person);

person instanceof Person; // true
person.getFullname(); // "John Doe"
  • 1
    It not casting, what does it really do? – DanielM Feb 15 '17 at 8:48
2

An old question with mostly correct, but not very efficient answers. This what I propose:

Create a base class that contains init() method and static cast methods (for a single object and an array). The static methods could be anywhere; the version with the base class and init() allows easy extensions afterwards.

export class ContentItem {
    // parameters: doc - plain JS object, proto - class we want to cast to (subclass of ContentItem)
    static castAs<T extends ContentItem>(doc: T, proto: typeof ContentItem): T {
        // if we already have the correct class skip the cast
        if (doc instanceof proto) { return doc; }
        // create a new object (create), and copy over all properties (assign)
        const d: T = Object.create(proto.prototype);
        Object.assign(d, doc);
        // reason to extend the base class - we want to be able to call init() after cast
        d.init(); 
        return d;
    }
    // another method casts an array
    static castAllAs<T extends ContentItem>(docs: T[], proto: typeof ContentItem): T[] {
        return docs.map(d => ContentItem.castAs(d, proto));
    }
    init() { }
}

Similar mechanics (with assign()) have been mentioned in @Adam111p post. Just another (more complete) way to do it. @Timothy Perez is critical of assign(), but imho it is fully appropriate here.

Implement a derived (the real) class:

import { ContentItem } from './content-item';

export class SubjectArea extends ContentItem {
    id: number;
    title: string;
    areas: SubjectArea[]; // contains embedded objects
    depth: number;

    // method will be unavailable unless we use cast
    lead(): string {
        return '. '.repeat(this.depth);
    }

    // in case we have embedded objects, call cast on them here
    init() {
        if (this.areas) {
            this.areas = ContentItem.castAllAs(this.areas, SubjectArea);
        }
    }
}

Now we can cast an object retrieved from service:

const area = ContentItem.castAs<SubjectArea>(docFromREST, SubjectArea);

All hierarchy of SubjectArea objects will have correct class.

A use case/example; create an Angular service (abstract base class again):

export abstract class BaseService<T extends ContentItem> {
  BASE_URL = 'http://host:port/';
  protected abstract http: Http;
  abstract path: string;
  abstract subClass: typeof ContentItem;

  cast(source: T): T {
    return ContentItem.castAs(source, this.subClass);
  }
  castAll(source: T[]): T[] {
    return ContentItem.castAllAs(source, this.subClass);
  }

  constructor() { }

  get(): Promise<T[]> {
    const value = this.http.get(`${this.BASE_URL}${this.path}`)
      .toPromise()
      .then(response => {
        const items: T[] = this.castAll(response.json());
        return items;
      });
    return value;
  }
}

The usage becomes very simple; create an Area service:

@Injectable()
export class SubjectAreaService extends BaseService<SubjectArea> {
  path = 'area';
  subClass = SubjectArea;

  constructor(protected http: Http) { super(); }
}

get() method of the service will return a Promise of an array already cast as SubjectArea objects (whole hierarchy)

Now say, we have another class:

export class OtherItem extends ContentItem {...}

Creating a service that retrieves data and casts to the correct class is as simple as:

@Injectable()
export class OtherItemService extends BaseService<OtherItem> {
  path = 'other';
  subClass = OtherItem;

  constructor(protected http: Http) { super(); }
}
2

You can create an interface of your type (SomeType) and cast the object in that.

const typedObject: SomeType = <SomeType> responseObject;
0

I used this library here: https://github.com/pleerock/class-transformer

<script lang="ts">
    import { plainToClass } from 'class-transformer';
</script>

Implementation:

private async getClassTypeValue() {
  const value = await plainToClass(ProductNewsItem, JSON.parse(response.data));
}

Sometimes you will have to parse the JSON values for plainToClass to understand that it is a JSON formatted data

0

In the lates TS you can do like this:

const isMyInterface = (val: any): val is MyInterface => {
  if (!val) { return false; }
  if (!val.myProp) { return false; }
  return true;
};

And than user like this:

if (isMyInterface(data)) {
 // now data will be type of MyInterface
}
0

I am using Angular 6 on the frontend and Spring Boot application on the backend which returns Java Objects. All I need to do is define a similar class on the angular application which has matching properties and then I can accept the object 'as' an angular class object (comp as Company in the below example).

Refer to the front end code below for example. Let me know in comments if anything needs more clarity.

  createCompany() {
    let company = new Company();
    company.name = this.companyName;

    this.companyService.createCompany(company).subscribe(comp => {
       if (comp !== null) {
        this.employerAdminCompany = comp as Company;
      }
    });
  }

where company is an entity object in spring boot app and is also a class in Angular.

export class Company {
    public id: number;
    public name: string;
    public owner: User;
    public locations: Array<Location>;
}
-2

This is a simple and a really good option

let person = "{"name":"Sam","Age":"30"}";

const jsonParse: ((key: string, value: any) => any) | undefined = undefined;
let objectConverted = JSON.parse(textValue, jsonParse);

And then you'll have

objectConverted.name

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.