235

In TypeScript in class it is possible to declare type for property, for example:

class className{
    property : string;
};

How should I write code to declare type for property in object literal? Such code don't compile:

var obj = {
    property: string;
};

(I am getting error - The name 'string' does not exist in the current scope).

What I am doing wrong or it is a bug?

307

You're pretty close, you just need to replace the = with a :. You can use an object type literal (see spec section 3.5.3) or an interface. Using an object type literal is close to what you have:

var obj: { property: string; } = { property: "foo" };

But you can also use an interface

interface MyObjLayout {
    property: string;
}

var obj: MyObjLayout = { property: "foo" };
  • 9
    The DRY (Don't Repeat Yourself) option by @Rick Love with the cast operator seems mucho neater. Just commenting, not downvoting... – spechter Nov 17 '17 at 0:43
  • I know this has been answered a while ago, but am I mistaken in the assumptions that issues can arise when the class has methods as well as properties? Since the class doesn't get initialized and we only assign properties, calling a method on the class will cause a null exception. Basically, the object we create only 'acts' as the class because we assign its type, but it is not actually an instance of that class. I.e. we need to create the class with the 'new' keyword. And we're then back to square 1, since we can't do something like new class() {prop: 1}; in TS like we can in C#, for example. – DeuxAlpha Mar 14 at 18:34
212

Use the cast operator to make this succinct (by casting null to the desired type).

var obj = {
    property: <string> null
};

A longer example:

var call = {
    hasStarted: <boolean> null,
    hasFinished: <boolean> null,
    id: <number> null,
};

This is much better than having two parts (one to declare types, the second to declare defaults):

var callVerbose: {
    hasStarted: boolean;
    hasFinished: boolean;
    id: number;
} = {
    hasStarted: null,
    hasFinished: null,
    id: null,
};

Update 2016-02-10 - To Handle TSX (Thanks @Josh)

Use the as operator for TSX.

var obj = {
    property: null as string
};

A longer example:

var call = {
    hasStarted: null as boolean,
    hasFinished: null as boolean,
    id: null as number,
};
  • 8
    If you are using TSX (TS with JSX), you cannot use the angle bracket naming, so those lines become something like property: null as string wherein the important difference is the as operator. – Josh Feb 2 '16 at 12:31
  • 2
    @RickLove Does this actually constrain the type of the object variable, or is this only a way to specify the types when assigned? In other words, after you assign to the variable call in your second example, can you assign a completely different type to it? – Daniel Griscom Nov 11 '16 at 0:21
  • 1
    This should be answer – Drew R Feb 24 '17 at 0:01
  • 3
    not working. Error:(33, 15) TS2352:Type 'null' cannot be converted to type 'string'. – slideshowp2 Jun 27 '17 at 6:53
  • 1
    Is this just an abuse of a feature of the language or is this actually Legit? Could you provide link for mor reading to oficial docs? Thanks! – Qwerty Apr 2 '18 at 19:20
11

If you're trying to write a type annotation, the syntax is:

var x: { property: string; } = ...;

If you're trying to write an object literal, the syntax is:

var x = { property: 'hello' };

Your code is trying to use a type name in a value position.

  • 7
    Your var x: { property: string; } = ...; is a tease! I hoped the ellipsis was valid syntax to be shorthand for var x: { property: string; } = { property: 'hello' };. – Jason Kleban Jan 25 '13 at 2:41
6

In typescript if we are declaring object then

[access modifier] variable name : { // structure of object}

private Object:{Key1:string , Key2:number }
1

If you're trying to add typings to a destructured object literal, for example in arguments to a function, the syntax is:

function foo({ bar, baz }: { bar: boolean, baz: string }) {
  // ...
}

foo({ bar: true, baz: 'lorem ipsum' });

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