19

I have a string union type like so:

type Suit = 'hearts' | 'diamonds' | 'spades' | 'clubs';

I want a type-safe way to get all the possible values that can be used in this string union. But because interfaces are largely a design-time construct, the best I can do is this:

export const ALL_SUITS = getAllStringUnionValues<Suit>({
    hearts: 0,
    diamonds: 0,
    spades: 0,
    clubs: 0
});

export function getAllStringUnionValues<TStringUnion extends string>(valuesAsKeys: { [K in TStringUnion]: 0 }): TStringUnion[] {
    const result = Object.getOwnPropertyNames(valuesAsKeys);
    return result as any;
}

This works okay, the function ensures I always pass an object where each key is an element in the string union and that every element is included, and returns a string array of all the elements. So if the string union ever changes, the call to this function will error at compile time if not also updated.

However the problem is the type signature for the constant ALL_SUITS is ('hearts' | 'diamonds' | 'spades' | 'clubs')[]. In other words, TypeScript thinks it is an array containing none or more of these values possibly with duplicates, rather than an array containing all the values just once, e.g. ['hearts', 'diamonds', 'spades', 'clubs'].

What I'd really like is a way for my generic getAllStringUnionValues function to specify that it returns ['hearts', 'diamonds', 'spades', 'clubs'].

How can I achieve this generically while being as DRY as possible?

27

Update Feb 2019

In TypeScript 3.4, which should be released in March 2019 it will be possible to tell the compiler to infer the type of a tuple of literals as a tuple of literals, instead of as, say, string[], by using the as const syntax. This type of assertion causes the compiler to infer the narrowest type possible for a value, including making everything readonly. It should look like this:

const ALL_SUITS = ['hearts', 'diamonds', 'spades', 'clubs'] as const; // TS 3.4
type SuitTuple = typeof ALL_SUITS; // readonly ['hearts', 'diamonds', 'spades', 'clubs']
type Suit = SuitTuple[number];  // union type

This will obviate the need for a helper function of any kind. Good luck again to all!


Update July 2018

It looks like, starting with TypeScript 3.0, it will be possible for TypeScript to automatically infer tuple types. Once that is released, the tuple() function you need can be succinctly written as:

export type Lit = string | number | boolean | undefined | null | void | {};
export const tuple = <T extends Lit[]>(...args: T) => args;

And then you can use it like this:

const ALL_SUITS = tuple('hearts', 'diamonds', 'spades', 'clubs');
type SuitTuple = typeof ALL_SUITS;
type Suit = SuitTuple[number];  // union type

Update August 2017

Since I posted this answer, I found a way to infer tuple types if you're willing to add a function to your library. Check out the function tuple() in tuple.ts.

export type Lit = string | number | boolean | undefined | null | void | {};

// infers a tuple type for up to twelve values (add more here if you need them)
export function tuple<A extends Lit, B extends Lit, C extends Lit, D extends Lit, E extends Lit, F extends Lit, G extends Lit, H extends Lit, I extends Lit, J extends Lit, K extends Lit, L extends Lit>(a: A, b: B, c: C, d: D, e: E, f: F, g: G, h: H, i: I, j: J, k: K, l: L): [A, B, C, D, E, F, G, H, I, J, K, L];
export function tuple<A extends Lit, B extends Lit, C extends Lit, D extends Lit, E extends Lit, F extends Lit, G extends Lit, H extends Lit, I extends Lit, J extends Lit, K extends Lit>(a: A, b: B, c: C, d: D, e: E, f: F, g: G, h: H, i: I, j: J, k: K): [A, B, C, D, E, F, G, H, I, J, K];
export function tuple<A extends Lit, B extends Lit, C extends Lit, D extends Lit, E extends Lit, F extends Lit, G extends Lit, H extends Lit, I extends Lit, J extends Lit>(a: A, b: B, c: C, d: D, e: E, f: F, g: G, h: H, i: I, j: J): [A, B, C, D, E, F, G, H, I, J];
export function tuple<A extends Lit, B extends Lit, C extends Lit, D extends Lit, E extends Lit, F extends Lit, G extends Lit, H extends Lit, I extends Lit>(a: A, b: B, c: C, d: D, e: E, f: F, g: G, h: H, i: I): [A, B, C, D, E, F, G, H, I];
export function tuple<A extends Lit, B extends Lit, C extends Lit, D extends Lit, E extends Lit, F extends Lit, G extends Lit, H extends Lit>(a: A, b: B, c: C, d: D, e: E, f: F, g: G, h: H): [A, B, C, D, E, F, G, H];
export function tuple<A extends Lit, B extends Lit, C extends Lit, D extends Lit, E extends Lit, F extends Lit, G extends Lit>(a: A, b: B, c: C, d: D, e: E, f: F, g: G): [A, B, C, D, E, F, G];
export function tuple<A extends Lit, B extends Lit, C extends Lit, D extends Lit, E extends Lit, F extends Lit>(a: A, b: B, c: C, d: D, e: E, f: F): [A, B, C, D, E, F];
export function tuple<A extends Lit, B extends Lit, C extends Lit, D extends Lit, E extends Lit>(a: A, b: B, c: C, d: D, e: E): [A, B, C, D, E];
export function tuple<A extends Lit, B extends Lit, C extends Lit, D extends Lit>(a: A, b: B, c: C, d: D): [A, B, C, D];
export function tuple<A extends Lit, B extends Lit, C extends Lit>(a: A, b: B, c: C): [A, B, C];
export function tuple<A extends Lit, B extends Lit>(a: A, b: B): [A, B];
export function tuple<A extends Lit>(a: A): [A];
export function tuple(...args: any[]): any[] {
  return args;
}

Using it, you are able to write the following and not repeat yourself:

const ALL_SUITS = tuple('hearts', 'diamonds', 'spades', 'clubs');
type SuitTuple = typeof ALL_SUITS;
type Suit = SuitTuple[number];  // union type

What do you think?


Original Answer

The most straightforward way to get what you want is to specify the tuple type explicitly and derive the union from it, instead of trying to force TypeScript to do the reverse, which it doesn't know how to do. For example:

type SuitTuple = ['hearts', 'diamonds', 'spades', 'clubs'];
const ALL_SUITS: SuitTuple = ['hearts', 'diamonds', 'spades', 'clubs']; // extra/missing would warn you
type Suit = SuitTuple[number];  // union type

Note that you are still writing out the literals twice, once as types in SuitTuple and once as values in ALL_SUITS; you'll find there's no great way to avoid repeating yourself this way, since TypeScript cannot currently be told to infer tuples, and it will never generate the runtime array from the tuple type.

The advantage here is you don't require key enumeration of a dummy object at runtime. You can of course build types with the suits as keys if you still need them:

const symbols: {[K in Suit]: string} = {
  hearts: '♥', 
  diamonds: '♦', 
  spades: '♠', 
  clubs: '♣'
}

Hope that helps.

  • 1
    Oh nice job inferring the tuple type. This is definitely the DRYest solution I've seen now. Thanks! Also that's an interesting syntax for inferring a union type from a tuple type (SuitTuple[number]). – CodeAndCats Aug 30 '17 at 22:43
  • The other thing that I like about your solution is that it can be used for unions of any type. 👍 – CodeAndCats Aug 30 '17 at 22:47
  • For the tuple function definition, I receive an error that says, "A rest parameter must be of an array type.ts(2370)". You might have meant this: export const tuple = <T extends Lit>(...args: T[]) => args; instead. – Shaun Luttin Dec 4 '18 at 18:21
  • 1
    @ShaunLuttin you are probably using a version of TypeScript before 3.0. Double check that and get back to me. – jcalz Dec 4 '18 at 19:21
  • 1
    Correct you are. – Shaun Luttin Dec 4 '18 at 21:45
2

Update for TypeScript 3.4:

There will be a more concise syntax coming with TypeScript 3.4 called "const contexts". It is already merged into master and should be available soon as seen in this PR.

This feature will make it possible to create an immutable (constant) tuple type / array by using the as const or <const> keywords. Because this array can't be modified, TypeScript can safely assume a narrow literal type ['a', 'b'] instead of a wider ('a' | 'b')[] or even string[] type and we can skip the call of a tuple() function.

To refer to your question

However the problem is the type signature for the constant ALL_SUITS is ('hearts' | 'diamonds' | 'spades' | 'clubs')[]. (... it should rather be) ['hearts', 'diamonds', 'spades', 'clubs']

With the new syntax, we are able to achieve exactly that:

const ALL_SUITS = <const> ['hearts', 'diamonds', 'spades', 'clubs'];  
// or 
const ALL_SUITS = ['hearts', 'diamonds', 'spades', 'clubs'] as const;

// type of ALL_SUITS is infererd to ['hearts', 'diamonds', 'spades', 'clubs']

With this immutable array, we can easily create the desired union type:

type Suits = typeof ALL_SUITS[number]  
  • Sounds great, looking forward to it! 👌 – CodeAndCats Jan 28 at 21:34
  • 3.3.1 has landed, but this feature is not there yet. – kikap Feb 2 at 1:58
  • you are right, it looks like it won't be there until 3.4. I edited the post accordingly – ggradnig Feb 2 at 7:06
0

Method for transforming string union into a non-duplicating array

Using keyof we can transform union into an array of keys of an object. That can be reapplied into an array.

Playground link

type Diff<T, U> = T extends U ? never : T;

interface IEdiatblePartOfObject {
    name: string;
}

/**
 * At least one key must be present, 
 * otherwise anything would be assignable to `keys` object.
 */
interface IFullObject extends IEdiatblePartOfObject {
    potato: string;
}

type toRemove = Diff<keyof IFullObject, keyof IEdiatblePartOfObject>;

const keys: { [keys in toRemove]: any } = {
    potato: void 0,
};

const toRemove: toRemove[] = Object.keys(keys) as any;

This method will create some overhead but will error out, if someone adds new keys to IFullObject.

Bonus:

declare const safeData: IFullObject;
const originalValues: { [keys in toRemove]: IFullObject[toRemove] } = {
    potato: safeData.potato || '',
};

/**
 * This will contain user provided object,
 * while keeping original keys that are not alowed to be modified
 */
Object.assign(unsafeObject, originalValues);
  • Thanks @Akxe. I found the accepted answer to be the DRYest solution and thus created a small npm package based on it some time ago. You can find it here if interested. npmjs.com/package/typed-tuple – CodeAndCats Mar 3 at 7:06

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