Stack Overflow is a community of 4.7 million programmers, just like you, helping each other.

Join them; it only takes a minute:

Sign up
Join the Stack Overflow community to:
  1. Ask programming questions
  2. Answer and help your peers
  3. Get recognized for your expertise

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!

share|improve this question
    
you can use github.com/vojtechhabarta/typescript-generator to generate TypeScript interfaces in case your JSON is mapped using Java classes – Vojta Oct 24 '15 at 11:02
    
I've coded a small casting library: sulphur-blog.azurewebsites.net/typescript-mini-cast-library – Camille Wintz Jan 11 at 19:15
up vote 20 down vote accepted

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);
share|improve this answer
    
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

In TypeScript you can cast (if it can be called that) 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!

share|improve this answer
11  
FYI: It's a type assertion, not a cast. – WiredPrairie Aug 25 '15 at 0:42
    
See here for the difference between a type assertion and a cast. – Stefan Hanke Sep 2 '15 at 4:33
1  
Where can I find Utilities.JSONLoader? – HypeXR Apr 15 at 18:38

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
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

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