750

Say I have the following type:

type Event = {
   name: string;
   dateCreated: string;
   type: string;
}

I now want to extend this type, i.e.

type UserEvent extends Event = {
   UserId: string; 
}

This doesn't work. How can I do this?

2
  • 12
    The type keyword is used to define type aliases, not interfaces or classes. Commented Dec 29, 2016 at 18:20
  • Your code is like saying that the true name is an alias, and it doesn't make sense. Commented Apr 7 at 23:04

7 Answers 7

1370

The keyword extends can be used for interfaces and classes only.

If you just want to declare a type that has additional properties, you can use intersection type:

type UserEvent = Event & {UserId: string}

UPDATE for TypeScript 2.2, it's now possible to have an interface that extends object-like type, if the type satisfies some restrictions:

type Event = {
   name: string;
   dateCreated: string;
   type: string;
}

interface UserEvent extends Event {
   UserId: string; 
}

It does not work the other way round - UserEvent must be declared as interface, not a type if you want to use extends syntax.

And it's still impossible to use extend with arbitrary types - for example, it does not work if Event is a type parameter without any constraints.

7
  • I am using TS v3.5.2, and I am not able to have an interface extend a type. interface A<T> extends B<T> {blar} An interface can only extend an object type or intersection of object types with statically known members
    – WORMSS
    Commented Jul 18, 2019 at 9:59
  • @WORMSS doing this interface Identifiable<T> extends T { id: string } gives me error "An interface can only extend an object type or intersection of object types with statically known members.ts(2312)"
    – maninak
    Commented Jun 15, 2020 at 11:46
  • 1
    As typeScript is structurally typed, vs nominally, extending an 'arbitrary type' that has no further structure (constraints) will likely always be impossible. Commented Aug 23, 2021 at 15:24
  • @artem can we assign a value to some members while extending? for example: interface UserEvent extends Event { name: 'test name'; UserId: string; } Commented Dec 13, 2022 at 6:06
  • no the meaning of that is not what it seems - both 'test name' and string here are types, not values - 'test name' is a literal type. You can't assign values in the interfaces, you can assign values in classes but within the class, the syntax for assignment is name = 'test name', and name: 'test name' within the class is again declaring a type, not assigning a value.
    – artem
    Commented Dec 13, 2022 at 6:25
139

you can intersect types:

type TypeA = {
    nameA: string;
};
type TypeB = {
    nameB: string;
};
export type TypeC = TypeA & TypeB;

somewhere in you code you can now do:

const some: TypeC = {
    nameB: 'B',
    nameA: 'A',
};
3
  • 1
    This is a great solution. I'm working in React Native and this allows me to easily extend TextInputProps for my own custom text entry component. Thanks! Commented Sep 28, 2020 at 14:01
  • 4
    I'm a little confused by this, surely this TypeC a union? I would expect an intersect of TypeA and TypeB would be {}? I.e. nothing in common? Commented Oct 3, 2022 at 15:53
  • @BenTaliadoros yes, its a bit confusing. See this question & answers
    – Juan Perez
    Commented Oct 12, 2022 at 15:15
40

A generic extension type can be written as follows:

type Extension<T> = T & { someExtensionProperty: string }
3
  • 4
    I would do something like this instead to make it truly generic: type Extension<T, E> = T & E;
    – imp
    Commented Nov 28, 2022 at 19:47
  • I don't get it, why would you do this instead of using & directly?
    – Cuminato
    Commented Apr 6 at 3:35
  • @Cuminato Generic lets you write future-proof code by allowing more types for the same thing you're doing for now. Commented Apr 7 at 22:46
30

What you are trying to achieve is equivalent to

interface Event {
   name: string;
   dateCreated: string;
   type: string;
}

interface UserEvent extends Event {
   UserId: string; 
}

The way you defined the types does not allow for specifying inheritance, however you can achieve something similar using intersection types, as artem pointed out.

2
  • 50
    Yeah, but I don't like the word interface when I actually mean a type
    – Kousha
    Commented Dec 29, 2016 at 18:22
  • 3
    Fair enough, then artem's answer should suit you :)
    – olydis
    Commented Dec 29, 2016 at 18:22
25

You can also do that by using type in addition to interface:

type Event = {
   name: string;
   dateCreated: string;
   type: string;
}

type UserEvent = {
   UserId: string; 
} & Event
2

If you have a type defined with Union (more than one possible types) and you want to add an additional type, you can do something like this

interface TextInputProps = { type: string };
interface TextAreaProps  = { type: string | number };

export type InputCompProps = TextInputProps | TextAreaProps

to

interface CustomProps = { length: number };
export type InputCompProps = (TextInputProps | TextAreaProps) & CustomProps
2
  • "you want to add an additional type" The verb "add" here is a bit confusing. For example, both union(| Type) and intersection(& Type) add a type in terms of the syntax. Commented Apr 7 at 0:31
  • This example is wrong. Using | is an OR - it's not merging / extending the structs (like extends does for interfaces). If you use it, can use either Event or { UserId: string } but not their union. The right approach is & Commented May 31 at 17:17
1

You cannot constrain an alias.

This is OK, even though the semantic is incorrect:

type UserEvent /* extends Event */ = {
   UserId: string; 
}

but this is not:

type UserEvent extends Event = {
   UserId: string; 
}

To correctly express what you mean, you can use & Event instead of extends Event:

type UserEvent = { UserId: string } & Event;

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