65

I want to define a generic type ExcludeCart<T> that is essentially T but with a given key (in my case, cart) removed. So, for instance, ExcludeCart<{foo: number, bar: string, cart: number}> would be {foo: number, bar: string}. Is there a way to do this in TypeScript?

Here's why I want to do this, in case I'm barking up the wrong tree: I'm converting an existing JavaScript codebase to TypeScript, which contains a decorator function called cartify that takes a React component class Inner and returns another component class Wrapper.

Inner should take a cart prop, and zero or more other props. Wrapper accepts a cartClient prop (which is used to generate the cart prop to pass to Inner), and any prop that Inner accepts, except cart.

In other words, once I can figure out how to define ExcludeCart, I want to do this with it:

function cartify<P extends {cart: any}>(Inner: ComponentClass<P>) : ComponentClass<ExcludeCart<P> & {cartClient: any}>
1

7 Answers 7

89

Update for TypeScript 3.5: The Omit<Type, Keys> utility type is now available. Please see Mathias' answer for an example usage.


Old Answer: Since TypeScript 2.8 and the introduction of Exclude, It's now possible to write this as follows:

type Without<T, K> = {
    [L in Exclude<keyof T, K>]: T[L]
};

Or alternatively, and more concisely, as:

type Without<T, K> = Pick<T, Exclude<keyof T, K>>;

For your usage, you could now write the following:

type ExcludeCart<T> = Without<T, "cart">;
3
  • This works pretty good. One thing I noticed was that if T has types that are optional, after using Without they are all required. Do you know why that is?
    – Henrik R
    Jul 6, 2018 at 7:27
  • 7
    The docs also mention that type Omit<T, K> = Pick<T, Exclude<keyof T, K>> will also work, in the 2.8 release notes (down the bottom of the linked section). This version of Omit seems to work as expected with optional members too. Aug 9, 2018 at 6:10
  • This is a good answer, I couldn't figure out how to scale it to multiple keys. I took an attempt at a more direct use of exclude in another answer. That approach scales rather easily. Oct 4, 2019 at 20:05
75

While this has been correctly answered, I wanted to point out that TypeScript 3.5 did add an Omit<T, E> type.

type NoCart = Omit<{foo: string, bar: string, cart: number}, "cart">;

This results in the {foo: string, bar: string} type.

2
  • 6
    To omit multiple, do type NoCart = Omit<{foo: string, bar: string, cart: number}, "cart" | "bar">; Mar 11, 2022 at 11:49
  • Omit seems easier Jan 22, 2023 at 14:43
14

While there isn't a built-in subtraction type, you can currently hack it in:

type Sub0<
    O extends string,
    D extends string,
> = {[K in O]: (Record<D, never> & Record<string, K>)[K]}

type Sub<
    O extends string,
    D extends string,
    // issue 16018
    Foo extends Sub0<O, D> = Sub0<O, D>
> = Foo[O]

type Omit<
    O,
    D extends string,
    // issue 16018
    Foo extends Sub0<keyof O, D> = Sub0<keyof O, D>
> = Pick<O, Foo[keyof O]>

In the question's case, you would do:

type ExcludeCart<T> = Omit<T, 'cart'>

With TypeScript >= 2.6, you can simplify it to:

/**
 * for literal unions
 * @example Sub<'Y' | 'X', 'X'> // === 'Y'
 */
export type Sub<
    O extends string,
    D extends string
    > = {[K in O]: (Record<D, never> & Record<string, K>)[K]}[O]

/**
 * Remove the keys represented by the string union type D from the object type O.
 *
 * @example Omit<{a: number, b: string}, 'a'> // === {b: string}
 * @example Omit<{a: number, b: string}, keyof {a: number}> // === {b: string}
 */
export type Omit<O, D extends string> = Pick<O, Sub<keyof O, D>>

test it on the playground

4
  • This is great, thanks! All of the previous implementations of Omit that I'd tried didn't work on generics, but these ones do. Dec 5, 2017 at 2:02
  • Very cool! Adrian, did you develop this, or did you find it somewhere else? If it's from somewhere else, can you link to that source? I was trying to look into your answer to see if it had any limitations or any other relevant discussion about it. I've also linked to your answer from mine because it seems to work well
    – JKillian
    Dec 5, 2017 at 15:00
  • 1
    @JKillian no, I can't remember where I got it from, but various variants are discussed on the corresponding TS issue, for example github.com/Microsoft/TypeScript/issues/… Dec 5, 2017 at 17:52
  • I remember going through that exact thread and trying all the variants there around the time I posted this question, and all of the ones I tried didn't work for generics (as in, you could go Omit<T, 'foo'> where T was some concrete type, but something like function myfunc<T extends {foo: any}>(in: T) : Omit<T, 'foo'> would break with rather confusing errors). So I'm not sure if it's a different way of defining Omit that popped up later or an improvement/bugfix in TS, but I think your answer was correct at the time it was posted, @JKillian :) Dec 11, 2017 at 5:40
2

there is another very simple way to have this result

When combining type in typescript, the type "never" have higher priority to everything.

You can simply create a type:

type noCart<T> = T & {cart : never}

Or, without creating type

function removeCart<T>(obj : T) : T & {cart : never} {
    if("cart" in obj) {
        delete (obj as T & {cart : any}).cart;
    }
    return <T & {cart : never}> obj;
}

This is less generic than the solution of Adrian, but a bit simpler when we don't need the complexity.

1

Update: See Adrian's answer above for a solution to this question. I've left my answer here though since it still contains some useful links.


There are various old requests for this feature ("outersection" types, subtraction types), but none have really progressed.

Recently, with the addition of mapped types I asked about this again, and Anders said that while there's no plans to make a general subtraction type operator, a more limited version might be implemented, presumably looking something like this proposal.

I've personally run into quite similar situations to you when working with React, and unfortunately haven't been able to find any good solution. In a simple case, you can get away with something like:

interface BaseProps {
    foo: number;
    bar: number;
}

interface Inner extends BaseProps {
    cart: Cart;
}

interface Wrapper extends BaseProps {
    cartClient: Client;
}

but I almost find this to be a semantic abuse of the extends keyword. And of course, if you don't control the typings of Inner or BaseProps, then this won't work out.

1
  • 1
    Thanks for that! Unfortunately I can't really do what you're suggesting, because I want to be able to just type MyComponent = cartify(MyComponent) (or @cartify↵class MyComponent… once that syntax lands) and have TypeScript automatically infer the correct type for the wrapped component. And it's a reusable library, so I definitely can't predict Inner ahead of time either. Jan 5, 2017 at 5:23
1

Probably all the answers are correct, but I built a shorter Subtract generic which does what you need:

type Subtract<T extends K, K> = Omit<T, keyof K>;
0

So, for instance, ExcludeCart<{foo: number, bar: string, cart: number}> would be {foo: number, bar: string}

You can use the Exclude syntax to do this directly:

Exclude<{foo: number, bar: string, cart: number}, { cart: number}>
3
  • I believe simply Exclude<{ foo: number, bar: string, cart: number }, "cart"> will do the trick.
    – Mathias
    Oct 8, 2019 at 5:55
  • You're right! I was thinking Omit<{foo: number, bar: string, card: number}, "cart"> which achieves the correct result. Again. thanks for double checking! Should I delete the comment above?
    – Mathias
    Oct 21, 2019 at 4:42
  • Oh neat. I will have to try that out. Up to you on the comment. Oct 23, 2019 at 4:31

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