<A, K>(
f: (a: NoInfer<A>) => K,
options?: {
readonly bufferSize?: number | undefined
readonly idleTimeToLive?: Duration.Input | undefined
}
): <E, R>(self: Stream<A, E, R>) => Stream<readonly [K, Stream<A>], E, R>
<A, E, R, K>(
self: Stream<A, E, R>,
f: (a: NoInfer<A>) => K,
options?: {
readonly bufferSize?: number | undefined
readonly idleTimeToLive?: Duration.Input | undefined
}
): Stream<readonly [K, Stream<A>], E, R>Groups elements by a key and emits a stream per key.
Example (Grouping elements by key)
import { Console, Effect, Stream } from "effect"
const program = Effect.gen(function*() {
const grouped = yield* Stream.make(1, 2, 3, 4, 5).pipe(
Stream.groupByKey((n) => n % 2 === 0 ? "even" : "odd"),
Stream.mapEffect(
([key, stream]) =>
Stream.runCollect(stream).pipe(
Effect.map((values) => [key, values] as const)
),
{ concurrency: "unbounded" }
),
Stream.runCollect
)
yield* Console.log(grouped)
})
Effect.runPromise(program)
// Output: [ [ "odd", [ 1, 3, 5 ] ], [ "even", [ 2, 4 ] ] ]export const const groupByKey: {
<A, K>(
f: (a: NoInfer<A>) => K,
options?: {
readonly bufferSize?: number | undefined
readonly idleTimeToLive?:
| Duration.Input
| undefined
}
): <E, R>(
self: Stream<A, E, R>
) => Stream<readonly [K, Stream<A>], E, R>
<A, E, R, K>(
self: Stream<A, E, R>,
f: (a: NoInfer<A>) => K,
options?: {
readonly bufferSize?: number | undefined
readonly idleTimeToLive?:
| Duration.Input
| undefined
}
): Stream<readonly [K, Stream<A>], E, R>
}
Groups elements by a key and emits a stream per key.
Example (Grouping elements by key)
import { Console, Effect, Stream } from "effect"
const program = Effect.gen(function*() {
const grouped = yield* Stream.make(1, 2, 3, 4, 5).pipe(
Stream.groupByKey((n) => n % 2 === 0 ? "even" : "odd"),
Stream.mapEffect(
([key, stream]) =>
Stream.runCollect(stream).pipe(
Effect.map((values) => [key, values] as const)
),
{ concurrency: "unbounded" }
),
Stream.runCollect
)
yield* Console.log(grouped)
})
Effect.runPromise(program)
// Output: [ [ "odd", [ 1, 3, 5 ] ], [ "even", [ 2, 4 ] ] ]
groupByKey: {
<function (type parameter) A in <A, K>(f: (a: NoInfer<A>) => K, options?: {
readonly bufferSize?: number | undefined;
readonly idleTimeToLive?: Duration.Input | undefined;
}): <E, R>(self: Stream<A, E, R>) => Stream<readonly [K, Stream<A>], E, R>
A, function (type parameter) K in <A, K>(f: (a: NoInfer<A>) => K, options?: {
readonly bufferSize?: number | undefined;
readonly idleTimeToLive?: Duration.Input | undefined;
}): <E, R>(self: Stream<A, E, R>) => Stream<readonly [K, Stream<A>], E, R>
K>(
f: (a: NoInfer<A>) => Kf: (a: NoInfer<A>a: type NoInfer<A> = [A][A extends any ? 0 : never]Prevents TypeScript from inferring a type parameter from a specific
position.
When to use
Use when a function parameter must match an inferred type without becoming
an inference source.
Details
The parameter using NoInfer must still match the inferred type.
Example (Controlling inference)
import type { Types } from "effect"
declare function withDefault<T>(value: T, fallback: Types.NoInfer<T>): T
// T is inferred as "a" | "b" from the first argument only
const result = withDefault<"a" | "b">("a", "b")
NoInfer<function (type parameter) A in <A, K>(f: (a: NoInfer<A>) => K, options?: {
readonly bufferSize?: number | undefined;
readonly idleTimeToLive?: Duration.Input | undefined;
}): <E, R>(self: Stream<A, E, R>) => Stream<readonly [K, Stream<A>], E, R>
A>) => function (type parameter) K in <A, K>(f: (a: NoInfer<A>) => K, options?: {
readonly bufferSize?: number | undefined;
readonly idleTimeToLive?: Duration.Input | undefined;
}): <E, R>(self: Stream<A, E, R>) => Stream<readonly [K, Stream<A>], E, R>
K,
options: {
readonly bufferSize?: number | undefined
readonly idleTimeToLive?:
| Duration.Input
| undefined
}
options?: {
readonly bufferSize?: number | undefinedbufferSize?: number | undefined
readonly idleTimeToLive?: Duration.Input | undefinedidleTimeToLive?: import DurationDuration.type Input =
| number
| bigint
| Duration.Duration
| readonly [seconds: number, nanos: number]
| `${number} nano`
| `${number} nanos`
| `${number} micro`
| `${number} micros`
| `${number} milli`
| `${number} millis`
| `${number} second`
| `${number} seconds`
| `${number} minute`
| `${number} minutes`
| `${number} hour`
| `${number} hours`
| `${number} day`
| `${number} days`
| `${number} week`
| `${number} weeks`
| "Infinity"
| "-Infinity"
| Duration.DurationObject
Valid input types that can be converted to a Duration.
When to use
Use when an API should accept any value that Effect can convert into a
Duration, including existing durations, millisecond numbers, nanosecond
bigints, high-resolution tuples, duration strings, infinity strings, or
duration objects.
Details
String inputs accept values like "10 seconds", "500 millis",
"Infinity", and "-Infinity". Finite fractional values that are
normalized to nanoseconds are rounded to the nearest nanosecond, with ties
away from zero.
Input | undefined
}
): <function (type parameter) E in <E, R>(self: Stream<A, E, R>): Stream<readonly [K, Stream<A>], E, R>E, function (type parameter) R in <E, R>(self: Stream<A, E, R>): Stream<readonly [K, Stream<A>], E, R>R>(self: Stream<A, E, R>(parameter) self: {
channel: Channel.Channel<Arr.NonEmptyReadonlyArray<A>, E, void, unknown, unknown, unknown, R>;
pipe: { <A>(this: A): A; <A, B = never>(this: A, ab: (_: A) => B): B; <A, B = never, C = never>(this: A, ab: (_: A) => B, bc: (_: B) => C): C; <A, B = never, C = never, D = never>(this: A, ab: (_: A) => B, bc: (_: B) => C, cd: (_: C) => D): D; <…;
}
self: interface Stream<out A, out E = never, out R = never>A Stream<A, E, R> describes a program that can emit many A values, fail
with E, and require R.
Details
Streams are pull-based with backpressure and emit chunks to amortize effect
evaluation. They support monadic composition and error handling similar to
Effect, adapted for multiple values.
Example (Creating and consuming streams)
import { Console, Effect, Stream } from "effect"
const program = Effect.gen(function*() {
yield* Stream.make(1, 2, 3).pipe(
Stream.map((n) => n * 2),
Stream.runForEach((n) => Console.log(n))
)
})
Effect.runPromise(program)
// Output:
// 2
// 4
// 6
Stream<function (type parameter) A in <A, K>(f: (a: NoInfer<A>) => K, options?: {
readonly bufferSize?: number | undefined;
readonly idleTimeToLive?: Duration.Input | undefined;
}): <E, R>(self: Stream<A, E, R>) => Stream<readonly [K, Stream<A>], E, R>
A, function (type parameter) E in <E, R>(self: Stream<A, E, R>): Stream<readonly [K, Stream<A>], E, R>E, function (type parameter) R in <E, R>(self: Stream<A, E, R>): Stream<readonly [K, Stream<A>], E, R>R>) => interface Stream<out A, out E = never, out R = never>A Stream<A, E, R> describes a program that can emit many A values, fail
with E, and require R.
Details
Streams are pull-based with backpressure and emit chunks to amortize effect
evaluation. They support monadic composition and error handling similar to
Effect, adapted for multiple values.
Example (Creating and consuming streams)
import { Console, Effect, Stream } from "effect"
const program = Effect.gen(function*() {
yield* Stream.make(1, 2, 3).pipe(
Stream.map((n) => n * 2),
Stream.runForEach((n) => Console.log(n))
)
})
Effect.runPromise(program)
// Output:
// 2
// 4
// 6
Stream<readonly [function (type parameter) K in <A, K>(f: (a: NoInfer<A>) => K, options?: {
readonly bufferSize?: number | undefined;
readonly idleTimeToLive?: Duration.Input | undefined;
}): <E, R>(self: Stream<A, E, R>) => Stream<readonly [K, Stream<A>], E, R>
K, interface Stream<out A, out E = never, out R = never>A Stream<A, E, R> describes a program that can emit many A values, fail
with E, and require R.
Details
Streams are pull-based with backpressure and emit chunks to amortize effect
evaluation. They support monadic composition and error handling similar to
Effect, adapted for multiple values.
Example (Creating and consuming streams)
import { Console, Effect, Stream } from "effect"
const program = Effect.gen(function*() {
yield* Stream.make(1, 2, 3).pipe(
Stream.map((n) => n * 2),
Stream.runForEach((n) => Console.log(n))
)
})
Effect.runPromise(program)
// Output:
// 2
// 4
// 6
Stream<function (type parameter) A in <A, K>(f: (a: NoInfer<A>) => K, options?: {
readonly bufferSize?: number | undefined;
readonly idleTimeToLive?: Duration.Input | undefined;
}): <E, R>(self: Stream<A, E, R>) => Stream<readonly [K, Stream<A>], E, R>
A>], function (type parameter) E in <E, R>(self: Stream<A, E, R>): Stream<readonly [K, Stream<A>], E, R>E, function (type parameter) R in <E, R>(self: Stream<A, E, R>): Stream<readonly [K, Stream<A>], E, R>R>
<function (type parameter) A in <A, E, R, K>(self: Stream<A, E, R>, f: (a: NoInfer<A>) => K, options?: {
readonly bufferSize?: number | undefined;
readonly idleTimeToLive?: Duration.Input | undefined;
}): Stream<readonly [K, Stream<A>], E, R>
A, function (type parameter) E in <A, E, R, K>(self: Stream<A, E, R>, f: (a: NoInfer<A>) => K, options?: {
readonly bufferSize?: number | undefined;
readonly idleTimeToLive?: Duration.Input | undefined;
}): Stream<readonly [K, Stream<A>], E, R>
E, function (type parameter) R in <A, E, R, K>(self: Stream<A, E, R>, f: (a: NoInfer<A>) => K, options?: {
readonly bufferSize?: number | undefined;
readonly idleTimeToLive?: Duration.Input | undefined;
}): Stream<readonly [K, Stream<A>], E, R>
R, function (type parameter) K in <A, E, R, K>(self: Stream<A, E, R>, f: (a: NoInfer<A>) => K, options?: {
readonly bufferSize?: number | undefined;
readonly idleTimeToLive?: Duration.Input | undefined;
}): Stream<readonly [K, Stream<A>], E, R>
K>(
self: Stream<A, E, R>(parameter) self: {
channel: Channel.Channel<Arr.NonEmptyReadonlyArray<A>, E, void, unknown, unknown, unknown, R>;
pipe: { <A>(this: A): A; <A, B = never>(this: A, ab: (_: A) => B): B; <A, B = never, C = never>(this: A, ab: (_: A) => B, bc: (_: B) => C): C; <A, B = never, C = never, D = never>(this: A, ab: (_: A) => B, bc: (_: B) => C, cd: (_: C) => D): D; <…;
}
self: interface Stream<out A, out E = never, out R = never>A Stream<A, E, R> describes a program that can emit many A values, fail
with E, and require R.
Details
Streams are pull-based with backpressure and emit chunks to amortize effect
evaluation. They support monadic composition and error handling similar to
Effect, adapted for multiple values.
Example (Creating and consuming streams)
import { Console, Effect, Stream } from "effect"
const program = Effect.gen(function*() {
yield* Stream.make(1, 2, 3).pipe(
Stream.map((n) => n * 2),
Stream.runForEach((n) => Console.log(n))
)
})
Effect.runPromise(program)
// Output:
// 2
// 4
// 6
Stream<function (type parameter) A in <A, E, R, K>(self: Stream<A, E, R>, f: (a: NoInfer<A>) => K, options?: {
readonly bufferSize?: number | undefined;
readonly idleTimeToLive?: Duration.Input | undefined;
}): Stream<readonly [K, Stream<A>], E, R>
A, function (type parameter) E in <A, E, R, K>(self: Stream<A, E, R>, f: (a: NoInfer<A>) => K, options?: {
readonly bufferSize?: number | undefined;
readonly idleTimeToLive?: Duration.Input | undefined;
}): Stream<readonly [K, Stream<A>], E, R>
E, function (type parameter) R in <A, E, R, K>(self: Stream<A, E, R>, f: (a: NoInfer<A>) => K, options?: {
readonly bufferSize?: number | undefined;
readonly idleTimeToLive?: Duration.Input | undefined;
}): Stream<readonly [K, Stream<A>], E, R>
R>,
f: (a: NoInfer<A>) => Kf: (a: NoInfer<A>a: type NoInfer<A> = [A][A extends any ? 0 : never]Prevents TypeScript from inferring a type parameter from a specific
position.
When to use
Use when a function parameter must match an inferred type without becoming
an inference source.
Details
The parameter using NoInfer must still match the inferred type.
Example (Controlling inference)
import type { Types } from "effect"
declare function withDefault<T>(value: T, fallback: Types.NoInfer<T>): T
// T is inferred as "a" | "b" from the first argument only
const result = withDefault<"a" | "b">("a", "b")
NoInfer<function (type parameter) A in <A, E, R, K>(self: Stream<A, E, R>, f: (a: NoInfer<A>) => K, options?: {
readonly bufferSize?: number | undefined;
readonly idleTimeToLive?: Duration.Input | undefined;
}): Stream<readonly [K, Stream<A>], E, R>
A>) => function (type parameter) K in <A, E, R, K>(self: Stream<A, E, R>, f: (a: NoInfer<A>) => K, options?: {
readonly bufferSize?: number | undefined;
readonly idleTimeToLive?: Duration.Input | undefined;
}): Stream<readonly [K, Stream<A>], E, R>
K,
options: {
readonly bufferSize?: number | undefined
readonly idleTimeToLive?:
| Duration.Input
| undefined
}
options?: {
readonly bufferSize?: number | undefinedbufferSize?: number | undefined
readonly idleTimeToLive?: Duration.Input | undefinedidleTimeToLive?: import DurationDuration.type Input =
| number
| bigint
| Duration.Duration
| readonly [seconds: number, nanos: number]
| `${number} nano`
| `${number} nanos`
| `${number} micro`
| `${number} micros`
| `${number} milli`
| `${number} millis`
| `${number} second`
| `${number} seconds`
| `${number} minute`
| `${number} minutes`
| `${number} hour`
| `${number} hours`
| `${number} day`
| `${number} days`
| `${number} week`
| `${number} weeks`
| "Infinity"
| "-Infinity"
| Duration.DurationObject
Valid input types that can be converted to a Duration.
When to use
Use when an API should accept any value that Effect can convert into a
Duration, including existing durations, millisecond numbers, nanosecond
bigints, high-resolution tuples, duration strings, infinity strings, or
duration objects.
Details
String inputs accept values like "10 seconds", "500 millis",
"Infinity", and "-Infinity". Finite fractional values that are
normalized to nanoseconds are rounded to the nearest nanosecond, with ties
away from zero.
Input | undefined
}
): interface Stream<out A, out E = never, out R = never>A Stream<A, E, R> describes a program that can emit many A values, fail
with E, and require R.
Details
Streams are pull-based with backpressure and emit chunks to amortize effect
evaluation. They support monadic composition and error handling similar to
Effect, adapted for multiple values.
Example (Creating and consuming streams)
import { Console, Effect, Stream } from "effect"
const program = Effect.gen(function*() {
yield* Stream.make(1, 2, 3).pipe(
Stream.map((n) => n * 2),
Stream.runForEach((n) => Console.log(n))
)
})
Effect.runPromise(program)
// Output:
// 2
// 4
// 6
Stream<readonly [function (type parameter) K in <A, E, R, K>(self: Stream<A, E, R>, f: (a: NoInfer<A>) => K, options?: {
readonly bufferSize?: number | undefined;
readonly idleTimeToLive?: Duration.Input | undefined;
}): Stream<readonly [K, Stream<A>], E, R>
K, interface Stream<out A, out E = never, out R = never>A Stream<A, E, R> describes a program that can emit many A values, fail
with E, and require R.
Details
Streams are pull-based with backpressure and emit chunks to amortize effect
evaluation. They support monadic composition and error handling similar to
Effect, adapted for multiple values.
Example (Creating and consuming streams)
import { Console, Effect, Stream } from "effect"
const program = Effect.gen(function*() {
yield* Stream.make(1, 2, 3).pipe(
Stream.map((n) => n * 2),
Stream.runForEach((n) => Console.log(n))
)
})
Effect.runPromise(program)
// Output:
// 2
// 4
// 6
Stream<function (type parameter) A in <A, E, R, K>(self: Stream<A, E, R>, f: (a: NoInfer<A>) => K, options?: {
readonly bufferSize?: number | undefined;
readonly idleTimeToLive?: Duration.Input | undefined;
}): Stream<readonly [K, Stream<A>], E, R>
A>], function (type parameter) E in <A, E, R, K>(self: Stream<A, E, R>, f: (a: NoInfer<A>) => K, options?: {
readonly bufferSize?: number | undefined;
readonly idleTimeToLive?: Duration.Input | undefined;
}): Stream<readonly [K, Stream<A>], E, R>
E, function (type parameter) R in <A, E, R, K>(self: Stream<A, E, R>, f: (a: NoInfer<A>) => K, options?: {
readonly bufferSize?: number | undefined;
readonly idleTimeToLive?: Duration.Input | undefined;
}): Stream<readonly [K, Stream<A>], E, R>
R>
} = dual<(...args: Array<any>) => any, <A, E, R, K>(self: Stream<A, E, R>, f: (a: NoInfer<A>) => K, options?: {
readonly bufferSize?: number | undefined;
readonly idleTimeToLive?: Duration.Input | undefined;
}) => Stream<readonly [K, Stream<A>], E, R>>(isDataFirst: (args: IArguments) => boolean, body: <A, E, R, K>(self: Stream<A, E, R>, f: (a: NoInfer<A>) => K, options?: {
readonly bufferSize?: number | undefined;
readonly idleTimeToLive?: Duration.Input | undefined;
}) => Stream<readonly [K, Stream<A>], E, R>): ((...args: Array<any>) => any) & (<A, E, R, K>(self: Stream<A, E, R>, f: (a: NoInfer<A>) => K, options?: {
readonly bufferSize?: number | undefined;
readonly idleTimeToLive?: Duration.Input | undefined;
}) => Stream<readonly [K, Stream<A>], E, R>) (+1 overload)
Creates a function that can be called in data-first style or data-last
(pipe-friendly) style.
When to use
Use to expose one implementation through both direct and pipe-friendly
call styles.
Details
Pass either the arity of the uncurried function or a predicate that decides
whether the current call is data-first. Arity is the common case. Use a
predicate when optional arguments make arity ambiguous.
Example (Selecting data-first or data-last style by arity)
import { Function, pipe } from "effect"
const sum = Function.dual<
(that: number) => (self: number) => number,
(self: number, that: number) => number
>(2, (self, that) => self + that)
console.log(sum(2, 3)) // 5
console.log(pipe(2, sum(3))) // 5
Example (Defining overloads with call signatures)
import { Function, pipe } from "effect"
const sum: {
(that: number): (self: number) => number
(self: number, that: number): number
} = Function.dual(2, (self: number, that: number): number => self + that)
console.log(sum(2, 3)) // 5
console.log(pipe(2, sum(3))) // 5
Example (Selecting data-first or data-last style with a predicate)
import { Function, pipe } from "effect"
const sum = Function.dual<
(that: number) => (self: number) => number,
(self: number, that: number) => number
>(
(args) => args.length === 2,
(self, that) => self + that
)
console.log(sum(2, 3)) // 5
console.log(pipe(2, sum(3))) // 5
dual((args: IArgumentsargs) => const isStream: (
u: unknown
) => u is Stream<unknown, unknown, unknown>
Checks whether a value is a Stream.
Example (Checking whether a value is a Stream)
import { Console, Effect, Stream } from "effect"
const program = Effect.gen(function*() {
const stream = Stream.make(1, 2, 3)
const notStream = { data: [1, 2, 3] }
yield* Console.log(Stream.isStream(stream))
// true
yield* Console.log(Stream.isStream(notStream))
// false
})
Effect.runPromise(program)
isStream(args: IArgumentsargs[0]), <function (type parameter) A in <A, E, R, K>(self: Stream<A, E, R>, f: (a: NoInfer<A>) => K, options?: {
readonly bufferSize?: number | undefined;
readonly idleTimeToLive?: Duration.Input | undefined;
}): Stream<readonly [K, Stream<A>], E, R>
A, function (type parameter) E in <A, E, R, K>(self: Stream<A, E, R>, f: (a: NoInfer<A>) => K, options?: {
readonly bufferSize?: number | undefined;
readonly idleTimeToLive?: Duration.Input | undefined;
}): Stream<readonly [K, Stream<A>], E, R>
E, function (type parameter) R in <A, E, R, K>(self: Stream<A, E, R>, f: (a: NoInfer<A>) => K, options?: {
readonly bufferSize?: number | undefined;
readonly idleTimeToLive?: Duration.Input | undefined;
}): Stream<readonly [K, Stream<A>], E, R>
R, function (type parameter) K in <A, E, R, K>(self: Stream<A, E, R>, f: (a: NoInfer<A>) => K, options?: {
readonly bufferSize?: number | undefined;
readonly idleTimeToLive?: Duration.Input | undefined;
}): Stream<readonly [K, Stream<A>], E, R>
K>(
self: Stream<A, E, R>(parameter) self: {
channel: Channel.Channel<Arr.NonEmptyReadonlyArray<A>, E, void, unknown, unknown, unknown, R>;
pipe: { <A>(this: A): A; <A, B = never>(this: A, ab: (_: A) => B): B; <A, B = never, C = never>(this: A, ab: (_: A) => B, bc: (_: B) => C): C; <A, B = never, C = never, D = never>(this: A, ab: (_: A) => B, bc: (_: B) => C, cd: (_: C) => D): D; <…;
}
self: interface Stream<out A, out E = never, out R = never>A Stream<A, E, R> describes a program that can emit many A values, fail
with E, and require R.
Details
Streams are pull-based with backpressure and emit chunks to amortize effect
evaluation. They support monadic composition and error handling similar to
Effect, adapted for multiple values.
Example (Creating and consuming streams)
import { Console, Effect, Stream } from "effect"
const program = Effect.gen(function*() {
yield* Stream.make(1, 2, 3).pipe(
Stream.map((n) => n * 2),
Stream.runForEach((n) => Console.log(n))
)
})
Effect.runPromise(program)
// Output:
// 2
// 4
// 6
Stream<function (type parameter) A in <A, E, R, K>(self: Stream<A, E, R>, f: (a: NoInfer<A>) => K, options?: {
readonly bufferSize?: number | undefined;
readonly idleTimeToLive?: Duration.Input | undefined;
}): Stream<readonly [K, Stream<A>], E, R>
A, function (type parameter) E in <A, E, R, K>(self: Stream<A, E, R>, f: (a: NoInfer<A>) => K, options?: {
readonly bufferSize?: number | undefined;
readonly idleTimeToLive?: Duration.Input | undefined;
}): Stream<readonly [K, Stream<A>], E, R>
E, function (type parameter) R in <A, E, R, K>(self: Stream<A, E, R>, f: (a: NoInfer<A>) => K, options?: {
readonly bufferSize?: number | undefined;
readonly idleTimeToLive?: Duration.Input | undefined;
}): Stream<readonly [K, Stream<A>], E, R>
R>,
f: (a: NoInfer<A>) => Kf: (a: NoInfer<A>a: type NoInfer<A> = [A][A extends any ? 0 : never]Prevents TypeScript from inferring a type parameter from a specific
position.
When to use
Use when a function parameter must match an inferred type without becoming
an inference source.
Details
The parameter using NoInfer must still match the inferred type.
Example (Controlling inference)
import type { Types } from "effect"
declare function withDefault<T>(value: T, fallback: Types.NoInfer<T>): T
// T is inferred as "a" | "b" from the first argument only
const result = withDefault<"a" | "b">("a", "b")
NoInfer<function (type parameter) A in <A, E, R, K>(self: Stream<A, E, R>, f: (a: NoInfer<A>) => K, options?: {
readonly bufferSize?: number | undefined;
readonly idleTimeToLive?: Duration.Input | undefined;
}): Stream<readonly [K, Stream<A>], E, R>
A>) => function (type parameter) K in <A, E, R, K>(self: Stream<A, E, R>, f: (a: NoInfer<A>) => K, options?: {
readonly bufferSize?: number | undefined;
readonly idleTimeToLive?: Duration.Input | undefined;
}): Stream<readonly [K, Stream<A>], E, R>
K,
options: {
readonly bufferSize?: number | undefined
readonly idleTimeToLive?:
| Duration.Input
| undefined
}
options?: {
readonly bufferSize?: number | undefinedbufferSize?: number | undefined
readonly idleTimeToLive?: Duration.Input | undefinedidleTimeToLive?: import DurationDuration.type Input =
| number
| bigint
| Duration.Duration
| readonly [seconds: number, nanos: number]
| `${number} nano`
| `${number} nanos`
| `${number} micro`
| `${number} micros`
| `${number} milli`
| `${number} millis`
| `${number} second`
| `${number} seconds`
| `${number} minute`
| `${number} minutes`
| `${number} hour`
| `${number} hours`
| `${number} day`
| `${number} days`
| `${number} week`
| `${number} weeks`
| "Infinity"
| "-Infinity"
| Duration.DurationObject
Valid input types that can be converted to a Duration.
When to use
Use when an API should accept any value that Effect can convert into a
Duration, including existing durations, millisecond numbers, nanosecond
bigints, high-resolution tuples, duration strings, infinity strings, or
duration objects.
Details
String inputs accept values like "10 seconds", "500 millis",
"Infinity", and "-Infinity". Finite fractional values that are
normalized to nanoseconds are rounded to the nearest nanosecond, with ties
away from zero.
Input | undefined
}
): interface Stream<out A, out E = never, out R = never>A Stream<A, E, R> describes a program that can emit many A values, fail
with E, and require R.
Details
Streams are pull-based with backpressure and emit chunks to amortize effect
evaluation. They support monadic composition and error handling similar to
Effect, adapted for multiple values.
Example (Creating and consuming streams)
import { Console, Effect, Stream } from "effect"
const program = Effect.gen(function*() {
yield* Stream.make(1, 2, 3).pipe(
Stream.map((n) => n * 2),
Stream.runForEach((n) => Console.log(n))
)
})
Effect.runPromise(program)
// Output:
// 2
// 4
// 6
Stream<readonly [function (type parameter) K in <A, E, R, K>(self: Stream<A, E, R>, f: (a: NoInfer<A>) => K, options?: {
readonly bufferSize?: number | undefined;
readonly idleTimeToLive?: Duration.Input | undefined;
}): Stream<readonly [K, Stream<A>], E, R>
K, interface Stream<out A, out E = never, out R = never>A Stream<A, E, R> describes a program that can emit many A values, fail
with E, and require R.
Details
Streams are pull-based with backpressure and emit chunks to amortize effect
evaluation. They support monadic composition and error handling similar to
Effect, adapted for multiple values.
Example (Creating and consuming streams)
import { Console, Effect, Stream } from "effect"
const program = Effect.gen(function*() {
yield* Stream.make(1, 2, 3).pipe(
Stream.map((n) => n * 2),
Stream.runForEach((n) => Console.log(n))
)
})
Effect.runPromise(program)
// Output:
// 2
// 4
// 6
Stream<function (type parameter) A in <A, E, R, K>(self: Stream<A, E, R>, f: (a: NoInfer<A>) => K, options?: {
readonly bufferSize?: number | undefined;
readonly idleTimeToLive?: Duration.Input | undefined;
}): Stream<readonly [K, Stream<A>], E, R>
A>], function (type parameter) E in <A, E, R, K>(self: Stream<A, E, R>, f: (a: NoInfer<A>) => K, options?: {
readonly bufferSize?: number | undefined;
readonly idleTimeToLive?: Duration.Input | undefined;
}): Stream<readonly [K, Stream<A>], E, R>
E, function (type parameter) R in <A, E, R, K>(self: Stream<A, E, R>, f: (a: NoInfer<A>) => K, options?: {
readonly bufferSize?: number | undefined;
readonly idleTimeToLive?: Duration.Input | undefined;
}): Stream<readonly [K, Stream<A>], E, R>
R> =>
const suspend: <A, E, R>(
stream: LazyArg<Stream<A, E, R>>
) => Stream<A, E, R>
Creates a lazily constructed stream.
Details
The stream factory is evaluated each time the stream is run.
Example (Creating a lazily constructed stream)
import { Console, Effect, Stream } from "effect"
const program = Effect.gen(function*() {
const values = yield* Stream.suspend(() => Stream.make(1, 2, 3)).pipe(Stream.runCollect)
yield* Console.log(values)
})
Effect.runPromise(program)
// Output: [ 1, 2, 3 ]
suspend(() => {
const const batch: MutableHashMap.MutableHashMap<
K,
[A, ...A[]]
>
const batch: {
backing: Map<K, V>;
buckets: Map<number, NonEmptyArray<K>>;
pipe: { <A>(this: A): A; <A, B = never>(this: A, ab: (_: A) => B): B; <A, B = never, C = never>(this: A, ab: (_: A) => B, bc: (_: B) => C): C; <A, B = never, C = never, D = never>(this: A, ab: (_: A) => B, bc: (_: B) => C, cd: (_: C) => D): D; <…;
toString: () => string;
toJSON: () => unknown;
}
batch = import MutableHashMapMutableHashMap.const empty: <K, V>() => MutableHashMap<
K,
V
>
Creates an empty MutableHashMap.
When to use
Use to create a fresh mutable map before adding entries over time.
Details
Each call returns a new empty map instance.
Example (Creating an empty map)
import { MutableHashMap } from "effect"
const map = MutableHashMap.empty<string, number>()
// Add some entries
MutableHashMap.set(map, "key1", 42)
MutableHashMap.set(map, "key2", 100)
console.log(MutableHashMap.size(map)) // 2
empty<function (type parameter) K in <A, E, R, K>(self: Stream<A, E, R>, f: (a: NoInfer<A>) => K, options?: {
readonly bufferSize?: number | undefined;
readonly idleTimeToLive?: Duration.Input | undefined;
}): Stream<readonly [K, Stream<A>], E, R>
K, import ArrArr.type NonEmptyArray<A> = [A, ...A[]]A mutable array guaranteed to have at least one element.
When to use
Use when mutation is acceptable and non-emptiness must be tracked at the type
level.
Details
This is the mutable counterpart of
NonEmptyReadonlyArray
. Most Array
module functions return NonEmptyArray when the result is guaranteed
non-empty.
Example (Typing a mutable non-empty array)
import type { Array } from "effect"
const nonEmpty: Array.NonEmptyArray<number> = [1, 2, 3]
nonEmpty.push(4)
NonEmptyArray<function (type parameter) A in <A, E, R, K>(self: Stream<A, E, R>, f: (a: NoInfer<A>) => K, options?: {
readonly bufferSize?: number | undefined;
readonly idleTimeToLive?: Duration.Input | undefined;
}): Stream<readonly [K, Stream<A>], E, R>
A>>()
return const groupByImpl: <
A,
E,
R,
K,
V,
E2,
R2
>(
self: Stream<A, E, R>,
f: (
arr: Arr.NonEmptyReadonlyArray<A>,
queues: RcMap.RcMap<
K,
Queue.Queue<V, Cause.Done>
>,
queueMap: MutableHashMap.MutableHashMap<
K,
Queue.Queue<V, Cause.Done>
>
) => Effect.Effect<void, E2, R2>,
options?: {
readonly bufferSize?: number | undefined
readonly idleTimeToLive?:
| Duration.Input
| undefined
}
) => Stream<
readonly [K, Stream<V>],
E | E2,
R | R2
>
groupByImpl(
self: Stream<A, E, R>(parameter) self: {
channel: Channel.Channel<Arr.NonEmptyReadonlyArray<A>, E, void, unknown, unknown, unknown, R>;
pipe: { <A>(this: A): A; <A, B = never>(this: A, ab: (_: A) => B): B; <A, B = never, C = never>(this: A, ab: (_: A) => B, bc: (_: B) => C): C; <A, B = never, C = never, D = never>(this: A, ab: (_: A) => B, bc: (_: B) => C, cd: (_: C) => D): D; <…;
}
self,
import EffectEffect.const fnUntraced: <Effect.Effect<void, never, never>, void, [arr: readonly [A, ...A[]], queues: RcMap.RcMap<K, Queue.Queue<A, Cause.Done<void>>, never>, queueMap: MutableHashMap.MutableHashMap<K, Queue.Queue<A, Cause.Done<void>>>]>(body: (this: unassigned, arr: readonly [A, ...A[]], queues: RcMap.RcMap<K, Queue.Queue<A, Cause.Done<void>>, never>, queueMap: MutableHashMap.MutableHashMap<K, Queue.Queue<A, Cause.Done<void>>>) => Generator<Effect.Effect<void, never, never>, void, never>) => (arr: readonly [...], queues: RcMap.RcMap<...>, queueMap: MutableHashMap.MutableHashMap<...>) => Effect.Effect<...> (+41 overloads)fnUntraced(function*(arr: readonly [A, ...A[]](parameter) arr: {
0: A;
length: number;
toString: () => string;
toLocaleString: { (): string; (locales: string | string[], options?: Intl.NumberFormatOptions & Intl.DateTimeFormatOptions): string };
concat: { (...items: Array<ConcatArray<A>>): Array<A>; (...items: Array<A | ConcatArray<A>>): Array<A> };
join: (separator?: string) => string;
slice: (start?: number, end?: number) => Array<A>;
indexOf: (searchElement: A, fromIndex?: number) => number;
lastIndexOf: (searchElement: A, fromIndex?: number) => number;
every: { (predicate: (value: A, index: number, array: ReadonlyArray<A>) => value is S, thisArg?: any): this is readonly S[]; (predicate: (value: A, index: number, array: ReadonlyArray<A>) => unknown, thisArg?: any): boolean };
some: (predicate: (value: A, index: number, array: ReadonlyArray<A>) => unknown, thisArg?: any) => boolean;
forEach: (callbackfn: (value: A, index: number, array: ReadonlyArray<A>) => void, thisArg?: any) => void;
map: (callbackfn: (value: A, index: number, array: ReadonlyArray<A>) => U, thisArg?: any) => Array<U>;
filter: { (predicate: (value: A, index: number, array: ReadonlyArray<A>) => value is S, thisArg?: any): Array<S>; (predicate: (value: A, index: number, array: ReadonlyArray<A>) => unknown, thisArg?: any): Array<A> };
reduce: { (callbackfn: (previousValue: A, currentValue: A, currentIndex: number, array: ReadonlyArray<A>) => A): A; (callbackfn: (previousValue: A, currentValue: A, currentIndex: number, array: ReadonlyArray<A>) => A, initialValue: A): A; (callbac…;
reduceRight: { (callbackfn: (previousValue: A, currentValue: A, currentIndex: number, array: ReadonlyArray<A>) => A): A; (callbackfn: (previousValue: A, currentValue: A, currentIndex: number, array: ReadonlyArray<A>) => A, initialValue: A): A; (callbac…;
find: { (predicate: (value: A, index: number, obj: ReadonlyArray<A>) => value is S, thisArg?: any): S | undefined; (predicate: (value: A, index: number, obj: ReadonlyArray<A>) => unknown, thisArg?: any): A | undefined };
findIndex: (predicate: (value: A, index: number, obj: ReadonlyArray<A>) => unknown, thisArg?: any) => number;
entries: () => ArrayIterator<[number, A]>;
keys: () => ArrayIterator<number>;
values: () => ArrayIterator<A>;
includes: (searchElement: A, fromIndex?: number) => boolean;
flatMap: (callback: (this: This, value: A, index: number, array: Array<A>) => U | ReadonlyArray<U>, thisArg?: This | undefined) => Array<U>;
flat: (this: A, depth?: D | undefined) => Array<FlatArray<A, D>>;
at: (index: number) => A | undefined;
findLast: { (predicate: (value: A, index: number, array: ReadonlyArray<A>) => value is S, thisArg?: any): S | undefined; (predicate: (value: A, index: number, array: ReadonlyArray<A>) => unknown, thisArg?: any): A | undefined };
findLastIndex: (predicate: (value: A, index: number, array: ReadonlyArray<A>) => unknown, thisArg?: any) => number;
toReversed: () => Array<A>;
toSorted: (compareFn?: ((a: A, b: A) => number) | undefined) => Array<A>;
toSpliced: { (start: number, deleteCount: number, ...items: Array<A>): Array<A>; (start: number, deleteCount?: number): Array<A> };
with: (index: number, value: A) => Array<A>;
}
arr, queues: RcMap.RcMap<
K,
Queue.Queue<A, Cause.Done<void>>,
never
>
(parameter) queues: {
lookup: (key: K) => Effect.Effect<A, E, Scope.Scope>;
context: Context.Context<never>;
scope: Scope.Scope;
idleTimeToLive: (key: K) => Duration.Duration;
capacity: number;
state: State<K, A, E>;
pipe: { <A>(this: A): A; <A, B = never>(this: A, ab: (_: A) => B): B; <A, B = never, C = never>(this: A, ab: (_: A) => B, bc: (_: B) => C): C; <A, B = never, C = never, D = never>(this: A, ab: (_: A) => B, bc: (_: B) => C, cd: (_: C) => D): D; <…;
}
queues, queueMap: MutableHashMap.MutableHashMap<
K,
Queue.Queue<A, Cause.Done<void>>
>
(parameter) queueMap: {
backing: Map<K, V>;
buckets: Map<number, NonEmptyArray<K>>;
pipe: { <A>(this: A): A; <A, B = never>(this: A, ab: (_: A) => B): B; <A, B = never, C = never>(this: A, ab: (_: A) => B, bc: (_: B) => C): C; <A, B = never, C = never, D = never>(this: A, ab: (_: A) => B, bc: (_: B) => C, cd: (_: C) => D): D; <…;
toString: () => string;
toJSON: () => unknown;
}
queueMap) {
for (let let i: numberi = 0; let i: numberi < arr: readonly [A, ...A[]](parameter) arr: {
0: A;
length: number;
toString: () => string;
toLocaleString: { (): string; (locales: string | string[], options?: Intl.NumberFormatOptions & Intl.DateTimeFormatOptions): string };
concat: { (...items: Array<ConcatArray<A>>): Array<A>; (...items: Array<A | ConcatArray<A>>): Array<A> };
join: (separator?: string) => string;
slice: (start?: number, end?: number) => Array<A>;
indexOf: (searchElement: A, fromIndex?: number) => number;
lastIndexOf: (searchElement: A, fromIndex?: number) => number;
every: { (predicate: (value: A, index: number, array: ReadonlyArray<A>) => value is S, thisArg?: any): this is readonly S[]; (predicate: (value: A, index: number, array: ReadonlyArray<A>) => unknown, thisArg?: any): boolean };
some: (predicate: (value: A, index: number, array: ReadonlyArray<A>) => unknown, thisArg?: any) => boolean;
forEach: (callbackfn: (value: A, index: number, array: ReadonlyArray<A>) => void, thisArg?: any) => void;
map: (callbackfn: (value: A, index: number, array: ReadonlyArray<A>) => U, thisArg?: any) => Array<U>;
filter: { (predicate: (value: A, index: number, array: ReadonlyArray<A>) => value is S, thisArg?: any): Array<S>; (predicate: (value: A, index: number, array: ReadonlyArray<A>) => unknown, thisArg?: any): Array<A> };
reduce: { (callbackfn: (previousValue: A, currentValue: A, currentIndex: number, array: ReadonlyArray<A>) => A): A; (callbackfn: (previousValue: A, currentValue: A, currentIndex: number, array: ReadonlyArray<A>) => A, initialValue: A): A; (callbac…;
reduceRight: { (callbackfn: (previousValue: A, currentValue: A, currentIndex: number, array: ReadonlyArray<A>) => A): A; (callbackfn: (previousValue: A, currentValue: A, currentIndex: number, array: ReadonlyArray<A>) => A, initialValue: A): A; (callbac…;
find: { (predicate: (value: A, index: number, obj: ReadonlyArray<A>) => value is S, thisArg?: any): S | undefined; (predicate: (value: A, index: number, obj: ReadonlyArray<A>) => unknown, thisArg?: any): A | undefined };
findIndex: (predicate: (value: A, index: number, obj: ReadonlyArray<A>) => unknown, thisArg?: any) => number;
entries: () => ArrayIterator<[number, A]>;
keys: () => ArrayIterator<number>;
values: () => ArrayIterator<A>;
includes: (searchElement: A, fromIndex?: number) => boolean;
flatMap: (callback: (this: This, value: A, index: number, array: Array<A>) => U | ReadonlyArray<U>, thisArg?: This | undefined) => Array<U>;
flat: (this: A, depth?: D | undefined) => Array<FlatArray<A, D>>;
at: (index: number) => A | undefined;
findLast: { (predicate: (value: A, index: number, array: ReadonlyArray<A>) => value is S, thisArg?: any): S | undefined; (predicate: (value: A, index: number, array: ReadonlyArray<A>) => unknown, thisArg?: any): A | undefined };
findLastIndex: (predicate: (value: A, index: number, array: ReadonlyArray<A>) => unknown, thisArg?: any) => number;
toReversed: () => Array<A>;
toSorted: (compareFn?: ((a: A, b: A) => number) | undefined) => Array<A>;
toSpliced: { (start: number, deleteCount: number, ...items: Array<A>): Array<A>; (start: number, deleteCount?: number): Array<A> };
with: (index: number, value: A) => Array<A>;
}
arr.length: numberlength; let i: numberi++) {
const const key: Kkey = f: (a: NoInfer<A>) => Kf(arr: readonly [A, ...A[]](parameter) arr: {
0: A;
length: number;
toString: () => string;
toLocaleString: { (): string; (locales: string | string[], options?: Intl.NumberFormatOptions & Intl.DateTimeFormatOptions): string };
concat: { (...items: Array<ConcatArray<A>>): Array<A>; (...items: Array<A | ConcatArray<A>>): Array<A> };
join: (separator?: string) => string;
slice: (start?: number, end?: number) => Array<A>;
indexOf: (searchElement: A, fromIndex?: number) => number;
lastIndexOf: (searchElement: A, fromIndex?: number) => number;
every: { (predicate: (value: A, index: number, array: ReadonlyArray<A>) => value is S, thisArg?: any): this is readonly S[]; (predicate: (value: A, index: number, array: ReadonlyArray<A>) => unknown, thisArg?: any): boolean };
some: (predicate: (value: A, index: number, array: ReadonlyArray<A>) => unknown, thisArg?: any) => boolean;
forEach: (callbackfn: (value: A, index: number, array: ReadonlyArray<A>) => void, thisArg?: any) => void;
map: (callbackfn: (value: A, index: number, array: ReadonlyArray<A>) => U, thisArg?: any) => Array<U>;
filter: { (predicate: (value: A, index: number, array: ReadonlyArray<A>) => value is S, thisArg?: any): Array<S>; (predicate: (value: A, index: number, array: ReadonlyArray<A>) => unknown, thisArg?: any): Array<A> };
reduce: { (callbackfn: (previousValue: A, currentValue: A, currentIndex: number, array: ReadonlyArray<A>) => A): A; (callbackfn: (previousValue: A, currentValue: A, currentIndex: number, array: ReadonlyArray<A>) => A, initialValue: A): A; (callbac…;
reduceRight: { (callbackfn: (previousValue: A, currentValue: A, currentIndex: number, array: ReadonlyArray<A>) => A): A; (callbackfn: (previousValue: A, currentValue: A, currentIndex: number, array: ReadonlyArray<A>) => A, initialValue: A): A; (callbac…;
find: { (predicate: (value: A, index: number, obj: ReadonlyArray<A>) => value is S, thisArg?: any): S | undefined; (predicate: (value: A, index: number, obj: ReadonlyArray<A>) => unknown, thisArg?: any): A | undefined };
findIndex: (predicate: (value: A, index: number, obj: ReadonlyArray<A>) => unknown, thisArg?: any) => number;
entries: () => ArrayIterator<[number, A]>;
keys: () => ArrayIterator<number>;
values: () => ArrayIterator<A>;
includes: (searchElement: A, fromIndex?: number) => boolean;
flatMap: (callback: (this: This, value: A, index: number, array: Array<A>) => U | ReadonlyArray<U>, thisArg?: This | undefined) => Array<U>;
flat: (this: A, depth?: D | undefined) => Array<FlatArray<A, D>>;
at: (index: number) => A | undefined;
findLast: { (predicate: (value: A, index: number, array: ReadonlyArray<A>) => value is S, thisArg?: any): S | undefined; (predicate: (value: A, index: number, array: ReadonlyArray<A>) => unknown, thisArg?: any): A | undefined };
findLastIndex: (predicate: (value: A, index: number, array: ReadonlyArray<A>) => unknown, thisArg?: any) => number;
toReversed: () => Array<A>;
toSorted: (compareFn?: ((a: A, b: A) => number) | undefined) => Array<A>;
toSpliced: { (start: number, deleteCount: number, ...items: Array<A>): Array<A>; (start: number, deleteCount?: number): Array<A> };
with: (index: number, value: A) => Array<A>;
}
arr[let i: numberi])
const const ovalues: Option.Option<[A, ...A[]]>ovalues = import MutableHashMapMutableHashMap.const get: {
<K>(key: K): <V>(
self: MutableHashMap<K, V>
) => Option.Option<V>
<K, V>(
self: MutableHashMap<K, V>,
key: K
): Option.Option<V>
}
get(const batch: MutableHashMap.MutableHashMap<
K,
[A, ...A[]]
>
const batch: {
backing: Map<K, V>;
buckets: Map<number, NonEmptyArray<K>>;
pipe: { <A>(this: A): A; <A, B = never>(this: A, ab: (_: A) => B): B; <A, B = never, C = never>(this: A, ab: (_: A) => B, bc: (_: B) => C): C; <A, B = never, C = never, D = never>(this: A, ab: (_: A) => B, bc: (_: B) => C, cd: (_: C) => D): D; <…;
toString: () => string;
toJSON: () => unknown;
}
batch, const key: Kkey)
if (import OptionOption.const isNone: <A>(
self: Option<A>
) => self is None<A>
Checks whether an Option is None (absent).
When to use
Use when you need to branch on an absent Option before accessing .value.
Details
- Acts as a type guard, narrowing to
None<A>
Example (Checking for None)
import { Option } from "effect"
console.log(Option.isNone(Option.some(1)))
// Output: false
console.log(Option.isNone(Option.none()))
// Output: true
isNone(const ovalues: Option.Option<[A, ...A[]]>ovalues)) {
import MutableHashMapMutableHashMap.const set: {
<K, V>(key: K, value: V): (
self: MutableHashMap<K, V>
) => MutableHashMap<K, V>
<K, V>(
self: MutableHashMap<K, V>,
key: K,
value: V
): MutableHashMap<K, V>
}
set(const batch: MutableHashMap.MutableHashMap<
K,
[A, ...A[]]
>
const batch: {
backing: Map<K, V>;
buckets: Map<number, NonEmptyArray<K>>;
pipe: { <A>(this: A): A; <A, B = never>(this: A, ab: (_: A) => B): B; <A, B = never, C = never>(this: A, ab: (_: A) => B, bc: (_: B) => C): C; <A, B = never, C = never, D = never>(this: A, ab: (_: A) => B, bc: (_: B) => C, cd: (_: C) => D): D; <…;
toString: () => string;
toJSON: () => unknown;
}
batch, const key: Kkey, [arr: readonly [A, ...A[]](parameter) arr: {
0: A;
length: number;
toString: () => string;
toLocaleString: { (): string; (locales: string | string[], options?: Intl.NumberFormatOptions & Intl.DateTimeFormatOptions): string };
concat: { (...items: Array<ConcatArray<A>>): Array<A>; (...items: Array<A | ConcatArray<A>>): Array<A> };
join: (separator?: string) => string;
slice: (start?: number, end?: number) => Array<A>;
indexOf: (searchElement: A, fromIndex?: number) => number;
lastIndexOf: (searchElement: A, fromIndex?: number) => number;
every: { (predicate: (value: A, index: number, array: ReadonlyArray<A>) => value is S, thisArg?: any): this is readonly S[]; (predicate: (value: A, index: number, array: ReadonlyArray<A>) => unknown, thisArg?: any): boolean };
some: (predicate: (value: A, index: number, array: ReadonlyArray<A>) => unknown, thisArg?: any) => boolean;
forEach: (callbackfn: (value: A, index: number, array: ReadonlyArray<A>) => void, thisArg?: any) => void;
map: (callbackfn: (value: A, index: number, array: ReadonlyArray<A>) => U, thisArg?: any) => Array<U>;
filter: { (predicate: (value: A, index: number, array: ReadonlyArray<A>) => value is S, thisArg?: any): Array<S>; (predicate: (value: A, index: number, array: ReadonlyArray<A>) => unknown, thisArg?: any): Array<A> };
reduce: { (callbackfn: (previousValue: A, currentValue: A, currentIndex: number, array: ReadonlyArray<A>) => A): A; (callbackfn: (previousValue: A, currentValue: A, currentIndex: number, array: ReadonlyArray<A>) => A, initialValue: A): A; (callbac…;
reduceRight: { (callbackfn: (previousValue: A, currentValue: A, currentIndex: number, array: ReadonlyArray<A>) => A): A; (callbackfn: (previousValue: A, currentValue: A, currentIndex: number, array: ReadonlyArray<A>) => A, initialValue: A): A; (callbac…;
find: { (predicate: (value: A, index: number, obj: ReadonlyArray<A>) => value is S, thisArg?: any): S | undefined; (predicate: (value: A, index: number, obj: ReadonlyArray<A>) => unknown, thisArg?: any): A | undefined };
findIndex: (predicate: (value: A, index: number, obj: ReadonlyArray<A>) => unknown, thisArg?: any) => number;
entries: () => ArrayIterator<[number, A]>;
keys: () => ArrayIterator<number>;
values: () => ArrayIterator<A>;
includes: (searchElement: A, fromIndex?: number) => boolean;
flatMap: (callback: (this: This, value: A, index: number, array: Array<A>) => U | ReadonlyArray<U>, thisArg?: This | undefined) => Array<U>;
flat: (this: A, depth?: D | undefined) => Array<FlatArray<A, D>>;
at: (index: number) => A | undefined;
findLast: { (predicate: (value: A, index: number, array: ReadonlyArray<A>) => value is S, thisArg?: any): S | undefined; (predicate: (value: A, index: number, array: ReadonlyArray<A>) => unknown, thisArg?: any): A | undefined };
findLastIndex: (predicate: (value: A, index: number, array: ReadonlyArray<A>) => unknown, thisArg?: any) => number;
toReversed: () => Array<A>;
toSorted: (compareFn?: ((a: A, b: A) => number) | undefined) => Array<A>;
toSpliced: { (start: number, deleteCount: number, ...items: Array<A>): Array<A>; (start: number, deleteCount?: number): Array<A> };
with: (index: number, value: A) => Array<A>;
}
arr[let i: numberi]])
} else {
const ovalues: Option.Some<[A, ...A[]]>const ovalues: {
_tag: "Some";
_op: "Some";
value: A;
valueOrUndefined: A;
pipe: { <A>(this: A): A; <A, B = never>(this: A, ab: (_: A) => B): B; <A, B = never, C = never>(this: A, ab: (_: A) => B, bc: (_: B) => C): C; <A, B = never, C = never, D = never>(this: A, ab: (_: A) => B, bc: (_: B) => C, cd: (_: C) => D): D; <…;
toString: () => string;
toJSON: () => unknown;
}
ovalues.Some<[A, ...A[]]>.value: [A, ...A[]](property) Some<[A, ...A[]]>.value: {
0: A;
length: number;
toString: () => string;
toLocaleString: { (): string; (locales: string | string[], options?: Intl.NumberFormatOptions & Intl.DateTimeFormatOptions): string };
pop: () => A | undefined;
push: (...items: Array<A>) => number;
concat: { (...items: Array<ConcatArray<A>>): Array<A>; (...items: Array<A | ConcatArray<A>>): Array<A> };
join: (separator?: string) => string;
reverse: () => Array<A>;
shift: () => A | undefined;
slice: (start?: number, end?: number) => Array<A>;
sort: (compareFn?: ((a: A, b: A) => number) | undefined) => [A, ...A[]];
splice: { (start: number, deleteCount?: number): Array<A>; (start: number, deleteCount: number, ...items: Array<A>): Array<A> };
unshift: (...items: Array<A>) => number;
indexOf: (searchElement: A, fromIndex?: number) => number;
lastIndexOf: (searchElement: A, fromIndex?: number) => number;
every: { (predicate: (value: A, index: number, array: Array<A>) => value is S, thisArg?: any): this is S[]; (predicate: (value: A, index: number, array: Array<A>) => unknown, thisArg?: any): boolean };
some: (predicate: (value: A, index: number, array: Array<A>) => unknown, thisArg?: any) => boolean;
forEach: (callbackfn: (value: A, index: number, array: Array<A>) => void, thisArg?: any) => void;
map: (callbackfn: (value: A, index: number, array: Array<A>) => U, thisArg?: any) => Array<U>;
filter: { (predicate: (value: A, index: number, array: Array<A>) => value is S, thisArg?: any): Array<S>; (predicate: (value: A, index: number, array: Array<A>) => unknown, thisArg?: any): Array<A> };
reduce: { (callbackfn: (previousValue: A, currentValue: A, currentIndex: number, array: Array<A>) => A): A; (callbackfn: (previousValue: A, currentValue: A, currentIndex: number, array: Array<A>) => A, initialValue: A): A; (callbackfn: (previousVa…;
reduceRight: { (callbackfn: (previousValue: A, currentValue: A, currentIndex: number, array: Array<A>) => A): A; (callbackfn: (previousValue: A, currentValue: A, currentIndex: number, array: Array<A>) => A, initialValue: A): A; (callbackfn: (previousVa…;
find: { (predicate: (value: A, index: number, obj: Array<A>) => value is S, thisArg?: any): S | undefined; (predicate: (value: A, index: number, obj: Array<A>) => unknown, thisArg?: any): A | undefined };
findIndex: (predicate: (value: A, index: number, obj: Array<A>) => unknown, thisArg?: any) => number;
fill: (value: A, start?: number, end?: number) => [A, ...A[]];
copyWithin: (target: number, start: number, end?: number) => [A, ...A[]];
entries: () => ArrayIterator<[number, A]>;
keys: () => ArrayIterator<number>;
values: () => ArrayIterator<A>;
includes: (searchElement: A, fromIndex?: number) => boolean;
flatMap: (callback: (this: This, value: A, index: number, array: Array<A>) => U | ReadonlyArray<U>, thisArg?: This | undefined) => Array<U>;
flat: (this: A, depth?: D | undefined) => Array<FlatArray<A, D>>;
at: (index: number) => A | undefined;
findLast: { (predicate: (value: A, index: number, array: Array<A>) => value is S, thisArg?: any): S | undefined; (predicate: (value: A, index: number, array: Array<A>) => unknown, thisArg?: any): A | undefined };
findLastIndex: (predicate: (value: A, index: number, array: Array<A>) => unknown, thisArg?: any) => number;
toReversed: () => Array<A>;
toSorted: (compareFn?: ((a: A, b: A) => number) | undefined) => Array<A>;
toSpliced: { (start: number, deleteCount: number, ...items: Array<A>): Array<A>; (start: number, deleteCount?: number): Array<A> };
with: (index: number, value: A) => Array<A>;
}
value.Array<A>.push(...items: A[]): numberAppends new elements to the end of an array, and returns the new length of the array.
push(arr: readonly [A, ...A[]](parameter) arr: {
0: A;
length: number;
toString: () => string;
toLocaleString: { (): string; (locales: string | string[], options?: Intl.NumberFormatOptions & Intl.DateTimeFormatOptions): string };
concat: { (...items: Array<ConcatArray<A>>): Array<A>; (...items: Array<A | ConcatArray<A>>): Array<A> };
join: (separator?: string) => string;
slice: (start?: number, end?: number) => Array<A>;
indexOf: (searchElement: A, fromIndex?: number) => number;
lastIndexOf: (searchElement: A, fromIndex?: number) => number;
every: { (predicate: (value: A, index: number, array: ReadonlyArray<A>) => value is S, thisArg?: any): this is readonly S[]; (predicate: (value: A, index: number, array: ReadonlyArray<A>) => unknown, thisArg?: any): boolean };
some: (predicate: (value: A, index: number, array: ReadonlyArray<A>) => unknown, thisArg?: any) => boolean;
forEach: (callbackfn: (value: A, index: number, array: ReadonlyArray<A>) => void, thisArg?: any) => void;
map: (callbackfn: (value: A, index: number, array: ReadonlyArray<A>) => U, thisArg?: any) => Array<U>;
filter: { (predicate: (value: A, index: number, array: ReadonlyArray<A>) => value is S, thisArg?: any): Array<S>; (predicate: (value: A, index: number, array: ReadonlyArray<A>) => unknown, thisArg?: any): Array<A> };
reduce: { (callbackfn: (previousValue: A, currentValue: A, currentIndex: number, array: ReadonlyArray<A>) => A): A; (callbackfn: (previousValue: A, currentValue: A, currentIndex: number, array: ReadonlyArray<A>) => A, initialValue: A): A; (callbac…;
reduceRight: { (callbackfn: (previousValue: A, currentValue: A, currentIndex: number, array: ReadonlyArray<A>) => A): A; (callbackfn: (previousValue: A, currentValue: A, currentIndex: number, array: ReadonlyArray<A>) => A, initialValue: A): A; (callbac…;
find: { (predicate: (value: A, index: number, obj: ReadonlyArray<A>) => value is S, thisArg?: any): S | undefined; (predicate: (value: A, index: number, obj: ReadonlyArray<A>) => unknown, thisArg?: any): A | undefined };
findIndex: (predicate: (value: A, index: number, obj: ReadonlyArray<A>) => unknown, thisArg?: any) => number;
entries: () => ArrayIterator<[number, A]>;
keys: () => ArrayIterator<number>;
values: () => ArrayIterator<A>;
includes: (searchElement: A, fromIndex?: number) => boolean;
flatMap: (callback: (this: This, value: A, index: number, array: Array<A>) => U | ReadonlyArray<U>, thisArg?: This | undefined) => Array<U>;
flat: (this: A, depth?: D | undefined) => Array<FlatArray<A, D>>;
at: (index: number) => A | undefined;
findLast: { (predicate: (value: A, index: number, array: ReadonlyArray<A>) => value is S, thisArg?: any): S | undefined; (predicate: (value: A, index: number, array: ReadonlyArray<A>) => unknown, thisArg?: any): A | undefined };
findLastIndex: (predicate: (value: A, index: number, array: ReadonlyArray<A>) => unknown, thisArg?: any) => number;
toReversed: () => Array<A>;
toSorted: (compareFn?: ((a: A, b: A) => number) | undefined) => Array<A>;
toSpliced: { (start: number, deleteCount: number, ...items: Array<A>): Array<A>; (start: number, deleteCount?: number): Array<A> };
with: (index: number, value: A) => Array<A>;
}
arr[let i: numberi])
}
}
for (const [const key: Kkey, const values: [A, ...A[]]const values: {
0: A;
length: number;
toString: () => string;
toLocaleString: { (): string; (locales: string | string[], options?: Intl.NumberFormatOptions & Intl.DateTimeFormatOptions): string };
pop: () => A | undefined;
push: (...items: Array<A>) => number;
concat: { (...items: Array<ConcatArray<A>>): Array<A>; (...items: Array<A | ConcatArray<A>>): Array<A> };
join: (separator?: string) => string;
reverse: () => Array<A>;
shift: () => A | undefined;
slice: (start?: number, end?: number) => Array<A>;
sort: (compareFn?: ((a: A, b: A) => number) | undefined) => [A, ...A[]];
splice: { (start: number, deleteCount?: number): Array<A>; (start: number, deleteCount: number, ...items: Array<A>): Array<A> };
unshift: (...items: Array<A>) => number;
indexOf: (searchElement: A, fromIndex?: number) => number;
lastIndexOf: (searchElement: A, fromIndex?: number) => number;
every: { (predicate: (value: A, index: number, array: Array<A>) => value is S, thisArg?: any): this is S[]; (predicate: (value: A, index: number, array: Array<A>) => unknown, thisArg?: any): boolean };
some: (predicate: (value: A, index: number, array: Array<A>) => unknown, thisArg?: any) => boolean;
forEach: (callbackfn: (value: A, index: number, array: Array<A>) => void, thisArg?: any) => void;
map: (callbackfn: (value: A, index: number, array: Array<A>) => U, thisArg?: any) => Array<U>;
filter: { (predicate: (value: A, index: number, array: Array<A>) => value is S, thisArg?: any): Array<S>; (predicate: (value: A, index: number, array: Array<A>) => unknown, thisArg?: any): Array<A> };
reduce: { (callbackfn: (previousValue: A, currentValue: A, currentIndex: number, array: Array<A>) => A): A; (callbackfn: (previousValue: A, currentValue: A, currentIndex: number, array: Array<A>) => A, initialValue: A): A; (callbackfn: (previousVa…;
reduceRight: { (callbackfn: (previousValue: A, currentValue: A, currentIndex: number, array: Array<A>) => A): A; (callbackfn: (previousValue: A, currentValue: A, currentIndex: number, array: Array<A>) => A, initialValue: A): A; (callbackfn: (previousVa…;
find: { (predicate: (value: A, index: number, obj: Array<A>) => value is S, thisArg?: any): S | undefined; (predicate: (value: A, index: number, obj: Array<A>) => unknown, thisArg?: any): A | undefined };
findIndex: (predicate: (value: A, index: number, obj: Array<A>) => unknown, thisArg?: any) => number;
fill: (value: A, start?: number, end?: number) => [A, ...A[]];
copyWithin: (target: number, start: number, end?: number) => [A, ...A[]];
entries: () => ArrayIterator<[number, A]>;
keys: () => ArrayIterator<number>;
values: () => ArrayIterator<A>;
includes: (searchElement: A, fromIndex?: number) => boolean;
flatMap: (callback: (this: This, value: A, index: number, array: Array<A>) => U | ReadonlyArray<U>, thisArg?: This | undefined) => Array<U>;
flat: (this: A, depth?: D | undefined) => Array<FlatArray<A, D>>;
at: (index: number) => A | undefined;
findLast: { (predicate: (value: A, index: number, array: Array<A>) => value is S, thisArg?: any): S | undefined; (predicate: (value: A, index: number, array: Array<A>) => unknown, thisArg?: any): A | undefined };
findLastIndex: (predicate: (value: A, index: number, array: Array<A>) => unknown, thisArg?: any) => number;
toReversed: () => Array<A>;
toSorted: (compareFn?: ((a: A, b: A) => number) | undefined) => Array<A>;
toSpliced: { (start: number, deleteCount: number, ...items: Array<A>): Array<A>; (start: number, deleteCount?: number): Array<A> };
with: (index: number, value: A) => Array<A>;
}
values] of const batch: MutableHashMap.MutableHashMap<
K,
[A, ...A[]]
>
const batch: {
backing: Map<K, V>;
buckets: Map<number, NonEmptyArray<K>>;
pipe: { <A>(this: A): A; <A, B = never>(this: A, ab: (_: A) => B): B; <A, B = never, C = never>(this: A, ab: (_: A) => B, bc: (_: B) => C): C; <A, B = never, C = never, D = never>(this: A, ab: (_: A) => B, bc: (_: B) => C, cd: (_: C) => D): D; <…;
toString: () => string;
toJSON: () => unknown;
}
batch) {
const const oentry: Option.Option<
Queue.Queue<A, Cause.Done<void>>
>
oentry = import MutableHashMapMutableHashMap.const get: {
<K>(key: K): <V>(
self: MutableHashMap<K, V>
) => Option.Option<V>
<K, V>(
self: MutableHashMap<K, V>,
key: K
): Option.Option<V>
}
get(queueMap: MutableHashMap.MutableHashMap<
K,
Queue.Queue<A, Cause.Done<void>>
>
(parameter) queueMap: {
backing: Map<K, V>;
buckets: Map<number, NonEmptyArray<K>>;
pipe: { <A>(this: A): A; <A, B = never>(this: A, ab: (_: A) => B): B; <A, B = never, C = never>(this: A, ab: (_: A) => B, bc: (_: B) => C): C; <A, B = never, C = never, D = never>(this: A, ab: (_: A) => B, bc: (_: B) => C, cd: (_: C) => D): D; <…;
toString: () => string;
toJSON: () => unknown;
}
queueMap, const key: Kkey)
const const queue: Queue.Queue<
A,
Cause.Done<void>
>
const queue: {
strategy: "suspend" | "dropping" | "sliding";
dispatcher: SchedulerDispatcher;
capacity: number;
messages: MutableList.MutableList<any>;
state: Queue.State<any, any>;
scheduleRunning: boolean;
toString: () => string;
toJSON: () => unknown;
}
queue = import OptionOption.const isSome: <A>(
self: Option<A>
) => self is Some<A>
Checks whether an Option contains a value (Some).
When to use
Use when you need to branch on a present Option before accessing .value.
Details
- Acts as a type guard, narrowing to
Some<A>
Example (Checking for Some)
import { Option } from "effect"
console.log(Option.isSome(Option.some(1)))
// Output: true
console.log(Option.isSome(Option.none()))
// Output: false
isSome(const oentry: Option.Option<
Queue.Queue<A, Cause.Done<void>>
>
oentry)
? const oentry: Option.Some<
Queue.Queue<A, Cause.Done<void>>
>
const oentry: {
_tag: "Some";
_op: "Some";
value: A;
valueOrUndefined: A;
pipe: { <A>(this: A): A; <A, B = never>(this: A, ab: (_: A) => B): B; <A, B = never, C = never>(this: A, ab: (_: A) => B, bc: (_: B) => C): C; <A, B = never, C = never, D = never>(this: A, ab: (_: A) => B, bc: (_: B) => C, cd: (_: C) => D): D; <…;
toString: () => string;
toJSON: () => unknown;
}
oentry.Some<Queue<A, Done<void>>>.value: Queue.Queue<A, Cause.Done<void>>(property) Some<Queue<A, Done<void>>>.value: {
strategy: "suspend" | "dropping" | "sliding";
dispatcher: SchedulerDispatcher;
capacity: number;
messages: MutableList.MutableList<any>;
state: Queue.State<any, any>;
scheduleRunning: boolean;
toString: () => string;
toJSON: () => unknown;
}
value
: yield* import EffectEffect.const scoped: <A, E, R>(
self: Effect<A, E, R>
) => Effect<A, E, Exclude<R, Scope>>
Runs an effect with a scope that closes when the effect completes.
When to use
Use to acquire scoped resources for the duration of a single workflow.
Details
Finalizers for resources acquired inside the workflow run as soon as the
workflow completes, whether by success, failure, or interruption.
Example (Running a scoped acquisition)
import { Console, Effect } from "effect"
const resource = Effect.acquireRelease(
Console.log("Acquiring resource").pipe(Effect.as("resource")),
() => Console.log("Releasing resource")
)
const program = Effect.scoped(
Effect.gen(function*() {
const res = yield* resource
yield* Console.log(`Using ${res}`)
return res
})
)
Effect.runFork(program)
// Output: "Acquiring resource"
// Output: "Using resource"
// Output: "Releasing resource"
scoped(import RcMapRcMap.const get: {
<K>(key: K): <A, E>(
self: RcMap<K, A, E>
) => Effect.Effect<A, E, Scope.Scope>
<K, A, E>(
self: RcMap<K, A, E>,
key: K
): Effect.Effect<A, E, Scope.Scope>
}
get(queues: RcMap.RcMap<
K,
Queue.Queue<A, Cause.Done<void>>,
never
>
(parameter) queues: {
lookup: (key: K) => Effect.Effect<A, E, Scope.Scope>;
context: Context.Context<never>;
scope: Scope.Scope;
idleTimeToLive: (key: K) => Duration.Duration;
capacity: number;
state: State<K, A, E>;
pipe: { <A>(this: A): A; <A, B = never>(this: A, ab: (_: A) => B): B; <A, B = never, C = never>(this: A, ab: (_: A) => B, bc: (_: B) => C): C; <A, B = never, C = never, D = never>(this: A, ab: (_: A) => B, bc: (_: B) => C, cd: (_: C) => D): D; <…;
}
queues, const key: Kkey))
yield* import RcMapRcMap.const touch: {
<K>(key: K): <A, E>(
self: RcMap<K, A, E>
) => Effect.Effect<void>
<K, A, E>(
self: RcMap<K, A, E>,
key: K
): Effect.Effect<void>
}
touch(queues: RcMap.RcMap<
K,
Queue.Queue<A, Cause.Done<void>>,
never
>
(parameter) queues: {
lookup: (key: K) => Effect.Effect<A, E, Scope.Scope>;
context: Context.Context<never>;
scope: Scope.Scope;
idleTimeToLive: (key: K) => Duration.Duration;
capacity: number;
state: State<K, A, E>;
pipe: { <A>(this: A): A; <A, B = never>(this: A, ab: (_: A) => B): B; <A, B = never, C = never>(this: A, ab: (_: A) => B, bc: (_: B) => C): C; <A, B = never, C = never, D = never>(this: A, ab: (_: A) => B, bc: (_: B) => C, cd: (_: C) => D): D; <…;
}
queues, const key: Kkey)
yield* import QueueQueue.const offerAll: <A, E>(
self: Enqueue<A, E>,
messages: Iterable<A>
) => Effect<Array<A>>
Adds multiple messages to the queue. Returns the remaining messages that
were not added.
When to use
Use when producers can submit a batch at once and need to know which messages
did not fit under the queue's capacity strategy.
Details
For bounded queues, this operation may suspend if the queue doesn't have
enough capacity. The operation returns an array of messages that couldn't
be added (empty array means all messages were successfully added).
Example (Offering multiple values)
import { Effect, Queue } from "effect"
const program = Effect.gen(function*() {
const queue = yield* Queue.dropping<number>(3)
// Try to add more messages than capacity without suspending
const remaining1 = yield* Queue.offerAll(queue, [1, 2, 3, 4, 5])
console.log(remaining1) // [4, 5] - couldn't fit the last 2
})
offerAll(const queue: Queue.Queue<
A,
Cause.Done<void>
>
const queue: {
strategy: "suspend" | "dropping" | "sliding";
dispatcher: SchedulerDispatcher;
capacity: number;
messages: MutableList.MutableList<any>;
state: Queue.State<any, any>;
scheduleRunning: boolean;
toString: () => string;
toJSON: () => unknown;
}
queue, const values: [A, ...A[]]const values: {
0: A;
length: number;
toString: () => string;
toLocaleString: { (): string; (locales: string | string[], options?: Intl.NumberFormatOptions & Intl.DateTimeFormatOptions): string };
pop: () => A | undefined;
push: (...items: Array<A>) => number;
concat: { (...items: Array<ConcatArray<A>>): Array<A>; (...items: Array<A | ConcatArray<A>>): Array<A> };
join: (separator?: string) => string;
reverse: () => Array<A>;
shift: () => A | undefined;
slice: (start?: number, end?: number) => Array<A>;
sort: (compareFn?: ((a: A, b: A) => number) | undefined) => [A, ...A[]];
splice: { (start: number, deleteCount?: number): Array<A>; (start: number, deleteCount: number, ...items: Array<A>): Array<A> };
unshift: (...items: Array<A>) => number;
indexOf: (searchElement: A, fromIndex?: number) => number;
lastIndexOf: (searchElement: A, fromIndex?: number) => number;
every: { (predicate: (value: A, index: number, array: Array<A>) => value is S, thisArg?: any): this is S[]; (predicate: (value: A, index: number, array: Array<A>) => unknown, thisArg?: any): boolean };
some: (predicate: (value: A, index: number, array: Array<A>) => unknown, thisArg?: any) => boolean;
forEach: (callbackfn: (value: A, index: number, array: Array<A>) => void, thisArg?: any) => void;
map: (callbackfn: (value: A, index: number, array: Array<A>) => U, thisArg?: any) => Array<U>;
filter: { (predicate: (value: A, index: number, array: Array<A>) => value is S, thisArg?: any): Array<S>; (predicate: (value: A, index: number, array: Array<A>) => unknown, thisArg?: any): Array<A> };
reduce: { (callbackfn: (previousValue: A, currentValue: A, currentIndex: number, array: Array<A>) => A): A; (callbackfn: (previousValue: A, currentValue: A, currentIndex: number, array: Array<A>) => A, initialValue: A): A; (callbackfn: (previousVa…;
reduceRight: { (callbackfn: (previousValue: A, currentValue: A, currentIndex: number, array: Array<A>) => A): A; (callbackfn: (previousValue: A, currentValue: A, currentIndex: number, array: Array<A>) => A, initialValue: A): A; (callbackfn: (previousVa…;
find: { (predicate: (value: A, index: number, obj: Array<A>) => value is S, thisArg?: any): S | undefined; (predicate: (value: A, index: number, obj: Array<A>) => unknown, thisArg?: any): A | undefined };
findIndex: (predicate: (value: A, index: number, obj: Array<A>) => unknown, thisArg?: any) => number;
fill: (value: A, start?: number, end?: number) => [A, ...A[]];
copyWithin: (target: number, start: number, end?: number) => [A, ...A[]];
entries: () => ArrayIterator<[number, A]>;
keys: () => ArrayIterator<number>;
values: () => ArrayIterator<A>;
includes: (searchElement: A, fromIndex?: number) => boolean;
flatMap: (callback: (this: This, value: A, index: number, array: Array<A>) => U | ReadonlyArray<U>, thisArg?: This | undefined) => Array<U>;
flat: (this: A, depth?: D | undefined) => Array<FlatArray<A, D>>;
at: (index: number) => A | undefined;
findLast: { (predicate: (value: A, index: number, array: Array<A>) => value is S, thisArg?: any): S | undefined; (predicate: (value: A, index: number, array: Array<A>) => unknown, thisArg?: any): A | undefined };
findLastIndex: (predicate: (value: A, index: number, array: Array<A>) => unknown, thisArg?: any) => number;
toReversed: () => Array<A>;
toSorted: (compareFn?: ((a: A, b: A) => number) | undefined) => Array<A>;
toSpliced: { (start: number, deleteCount: number, ...items: Array<A>): Array<A>; (start: number, deleteCount?: number): Array<A> };
with: (index: number, value: A) => Array<A>;
}
values)
}
import MutableHashMapMutableHashMap.const clear: <K, V>(
self: MutableHashMap<K, V>
) => MutableHashMap<K, V>
Removes all key-value pairs from the MutableHashMap, mutating the map in place.
The map becomes empty after this operation.
When to use
Use to empty a mutable hash map while keeping the same map instance.
Example (Clearing all entries)
import { MutableHashMap } from "effect"
const map = MutableHashMap.make(
["key1", 42],
["key2", 100],
["key3", 200]
)
console.log(MutableHashMap.size(map)) // 3
// Clear all entries
MutableHashMap.clear(map)
console.log(MutableHashMap.size(map)) // 0
console.log(MutableHashMap.has(map, "key1")) // false
// Can still add new entries after clearing
MutableHashMap.set(map, "new", 999)
console.log(MutableHashMap.size(map)) // 1
clear(const batch: MutableHashMap.MutableHashMap<
K,
[A, ...A[]]
>
const batch: {
backing: Map<K, V>;
buckets: Map<number, NonEmptyArray<K>>;
pipe: { <A>(this: A): A; <A, B = never>(this: A, ab: (_: A) => B): B; <A, B = never, C = never>(this: A, ab: (_: A) => B, bc: (_: B) => C): C; <A, B = never, C = never, D = never>(this: A, ab: (_: A) => B, bc: (_: B) => C, cd: (_: C) => D): D; <…;
toString: () => string;
toJSON: () => unknown;
}
batch)
}),
options: {
readonly bufferSize?: number | undefined
readonly idleTimeToLive?:
| Duration.Input
| undefined
}
options
)
}))