113

This

const { foo: IFoo[] } = bar;

and this

const { foo: Array<IFoo> } = bar;

will reasonably cause an error.

And this

const { foo: TFoo } = bar;

will just destructure TFoo property.

How can types be specified for destructured object properties?

  • Good question, but isn't it going to be able to infer the type from the definition of bar anyway? – user663031 Sep 24 '16 at 5:34
  • 2
    This is covered quite well here. – user663031 Sep 24 '16 at 7:00
  • The @user663031 comment should be removed as it is misleading. – Sasuke Uchiha Jun 16 at 12:04
  • @SasukeUchiha The article is unavailable, but most articles can be googled by article title. It was moved to mariusschulz.com/blog/… . It sheds some light indeed. – Estus Flask Jun 16 at 12:10
  • That is helpful. Thank you. – Sasuke Uchiha Jun 17 at 11:06
180
0

It turns out it's possible to specify the type after : for the whole destructuring pattern:

const {foo}: {foo: IFoo[]} = bar;

Which in reality is not any better than plain old

const foo: IFoo[] = bar.foo;
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  • 2
    But {foo} is not a value. It is what is usually called a "deconstructing assignment pattern". What you are seeing here is actually a special TypeScript feature which allows types of be associated with such patterns. – user663031 Sep 24 '16 at 7:02
  • Indeed, it's more like a special case, especially compared to let x, y, z: string which apparently specifies type for z only. I updated the answer. – artem Sep 24 '16 at 7:19
53
0

I'm clearly a bit late to the party, but:

interface User {
  name: string;
  age: number;
}

const obj: any = { name: 'Johnny', age: 25 };
const { name, age }: User = obj;

The types of properties name and age should be correctly inferred to string and number respectively.

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  • 8
    It's a rare case when you would like to use an interface for every destruction. – RA. Sep 13 '19 at 3:14
2
0

A follow-up to my own question.

Types don't need to be specified for object properties because they are inferred from destructured object.

Considering that bar was typed properly, foo type will be inferred:

const bar = { foo: [fooValue], ... }; // bar type is { foo: IFoo[], ... }
...
const { foo } = bar; // foo type is IFoo[]

Even if bar wasn't correctly typed (any or unknown), its type can be asserted:

const { foo } = bar as { foo: IFoo[] }; // foo type is IFoo[]
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