195

I'd like to exclude a single property from the type. How can I do that?

For example I have

interface XYZ {
  x: number;
  y: number;
  z: number;
}

And I want to exclude property z to get

type XY = { x: number, y: number };
392

For versions of TypeScript at or above 3.5

In TypeScript 3.5, the Omit type was added to the standard library. See examples below for how to use it.

For versions of TypeScript below 3.5

In TypeScript 2.8, the Exclude type was added to the standard library, which allows an omission type to be written simply as:

type Omit<T, K extends keyof T> = Pick<T, Exclude<keyof T, K>>

For versions of TypeScript below 2.8

You cannot use the Exclude type in versions below 2.8, but you can create a replacement for it in order to use the same sort of definition as above. However, this replacement will only work for string types, so it is not as powerful as Exclude.

// Functionally the same as Exclude, but for strings only.
type Diff<T extends string, U extends string> = ({[P in T]: P } & {[P in U]: never } & { [x: string]: never })[T]
type Omit<T, K extends keyof T> = Pick<T, Diff<keyof T, K>>

And an example of that type in use:

interface Test {
    a: string;
    b: number;
    c: boolean;
}

// Omit a single property:
type OmitA = Omit<Test, "a">; // Equivalent to: {b: number, c: boolean}

// Or, to omit multiple properties:
type OmitAB = Omit<Test, "a"|"b">; // Equivalent to: {c: boolean}
| improve this answer | |
  • Great! You are declaring Diff<T, U> (with T and U as types available for keys) as a T-keyed subset of an intersection of 3 types: type with key same as a value for T, type with never for U and type with never for all keys. Then you pass it through indexer to get correct values types. Am I right? – Qwertiy Jan 11 '18 at 21:43
  • 5
    Yep! But this does have a drawback. For example, Omit<{a?: string, b?: boolean}, "b"> results in {a: string | undefined}, which still accepts undefined as a value, but loses the optional modifier on a. :( – CRice Jan 11 '18 at 21:57
  • 1
    @Qwertiy It works! Many thanks! I edited the post. But I wonder what the difference was, since what was there was literally identical to the type definition for Pick as far as I can see. – CRice Jan 11 '18 at 23:54
  • 3
    Note that for TS 3.5, the standard library's definition of Omit differs from that given here. In the stdlib, it is type Omit<T, K extends keyof any> = Pick<T, Exclude<keyof T, K>>; The change, while slight, has caused some debate, so be aware of the difference. – CRice May 20 '19 at 2:04
  • 1
    Note that this doesn't complain if the property you are trying exclude doesn't exist. For example, Omit<Test, "doesNotExist"> is still valid. If you don't want that, you can use StrictOmit from ts-essentials instead. This is useful if you want to make sure renaming the property accidentally doesn't break the omit rule. – CookieMonster Nov 8 '19 at 21:05
42

With typescript 2.8, you can use the new built-in Exclude type. The 2.8 release notes actually mention this in the section "Predefined conditional types":

Note: The Exclude type is a proper implementation of the Diff type suggested here. [...] We did not include the Omit type because it is trivially written as Pick<T, Exclude<keyof T, K>>.

Applying this to your example, type XY could be defined as:

type XY = Pick<XYZ, Exclude<keyof XYZ, "z">>
| improve this answer | |
20

I've found solution with declaring some variables and using spread operator to infer type:

interface XYZ {
  x: number;
  y: number;
  z: number;
}

declare var { z, ...xy }: XYZ;

type XY = typeof xy; // { x: number; y: number; }

It works, but I would be glad to see a better solution.

| improve this answer | |
  • 4
    This is a great pre-2.8 solution. typeof is one of the more underappreciated features of typescript. – Jason Hoetger Apr 5 '18 at 0:38
  • 1
    Clever, I like it :)! (for pre 2.8) – maxime1992 Jul 1 '18 at 13:36
  • How I can add z with type string in your result – user602291 Dec 19 '18 at 1:30
  • @user602291, type Smth = XY & { z: string };? – Qwertiy Dec 19 '18 at 7:30
  • 1
    This one is perfect for old version of typescript. I could not get the accpeted answer to work for 2.3, yet this one worked great. – k0pernikus Feb 5 '19 at 16:16
5

If you prefer to use a library, use ts-essentials.

import { Omit } from "ts-essentials";

type ComplexObject = {
  simple: number;
  nested: {
    a: string;
    array: [{ bar: number }];
  };
};

type SimplifiedComplexObject = Omit<ComplexObject, "nested">;

// Result:
// {
//  simple: number
// }

// if you want to Omit multiple properties just use union type:
type SimplifiedComplexObject = Omit<ComplexObject, "nested" | "simple">;

// Result:
// { } (empty type)

PS: You will find lots of other useful stuff there ;)

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5

Typescript 3.5

As of Typescript 3.5, the Omit helper will be included: TypeScript 3.5 RC - The Omit Helper Type

You can use it directly, and you should remove your own definition of the Omit helper when updating.

| improve this answer | |
5

In Typescript 3.5+:

interface TypographyProps {
    variant: string
    fontSize: number
}

type TypographyPropsMinusVariant = Omit<TypographyProps, "variant">
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3

Omit

single property

type T1 = Omit<XYZ, "z"> // { x: number; y: number; }

multiple properties

type T2 = Omit<XYZ, "y" | "z"> // { x: number; } 

properties conditionally

e.g. all string types:
type Keys_StringExcluded<T> = { [K in keyof T]: T[K] extends string ? never : K }[keyof T]

type XYZ = { x: number; y: string; z: number; }
type T3a = Pick<XYZ, Keys_StringExcluded<XYZ>> // { x: number; z: number; }
Shorter version with TS 4.1 mapped type as clause:
type T3b = { [K in keyof XYZ as XYZ[K] extends string ? never : K]: XYZ[K] } 
// { x: number; z: number; }

properties by string pattern

e.g. exclude getters (props with 'get' string prefixes)
type OmitGet<T> = { [K in keyof T as K extends `get${infer _}` ? never : K]: T[K] }

type XYZ2 = { getA: number; b: string; getC: boolean; }
type T4 = OmitGet<XYZ2> //  { b: string; }

Note: Above template literal types are supported with TS 4.1


Playground sample

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0

I do like that:

interface XYZ {
  x: number;
  y: number;
  z: number;
}
const a:XYZ = {x:1, y:2, z:3};
const { x, y, ...last } = a;
const { z, ...firstTwo} = a;
console.log(firstTwo, last);
| improve this answer | |

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