<In0, In, E2, R2>(f: (input: In0) => Effect.Effect<In, E2, R2>): <
A,
L,
E,
R
>(
self: Sink<A, In, L, E, R>
) => Sink<A, In0, L, E2 | E, R2 | R>
<A, In, L, E, R, In0, E2, R2>(
self: Sink<A, In, L, E, R>,
f: (input: In0) => Effect.Effect<In, E2, R2>
): Sink<A, In0, L, E | E2, R | R2>Transforms this sink's input elements effectfully.
export const const mapInputEffect: {
<In0, In, E2, R2>(
f: (input: In0) => Effect.Effect<In, E2, R2>
): <A, L, E, R>(
self: Sink<A, In, L, E, R>
) => Sink<A, In0, L, E2 | E, R2 | R>
<A, In, L, E, R, In0, E2, R2>(
self: Sink<A, In, L, E, R>,
f: (input: In0) => Effect.Effect<In, E2, R2>
): Sink<A, In0, L, E | E2, R | R2>
}
Transforms this sink's input elements effectfully.
mapInputEffect: {
<function (type parameter) In0 in <In0, In, E2, R2>(f: (input: In0) => Effect.Effect<In, E2, R2>): <A, L, E, R>(self: Sink<A, In, L, E, R>) => Sink<A, In0, L, E2 | E, R2 | R>In0, function (type parameter) In in <In0, In, E2, R2>(f: (input: In0) => Effect.Effect<In, E2, R2>): <A, L, E, R>(self: Sink<A, In, L, E, R>) => Sink<A, In0, L, E2 | E, R2 | R>In, function (type parameter) E2 in <In0, In, E2, R2>(f: (input: In0) => Effect.Effect<In, E2, R2>): <A, L, E, R>(self: Sink<A, In, L, E, R>) => Sink<A, In0, L, E2 | E, R2 | R>E2, function (type parameter) R2 in <In0, In, E2, R2>(f: (input: In0) => Effect.Effect<In, E2, R2>): <A, L, E, R>(self: Sink<A, In, L, E, R>) => Sink<A, In0, L, E2 | E, R2 | R>R2>(
f: (
input: In0
) => Effect.Effect<In, E2, R2>
f: (input: In0input: function (type parameter) In0 in <In0, In, E2, R2>(f: (input: In0) => Effect.Effect<In, E2, R2>): <A, L, E, R>(self: Sink<A, In, L, E, R>) => Sink<A, In0, L, E2 | E, R2 | R>In0) => import EffectEffect.interface Effect<out A, out E = never, out R = never>The Effect interface defines a value that lazily describes a workflow or
job. The workflow requires some context R, and may fail with an error of
type E, or succeed with a value of type A.
When to use
Use when you need to represent a lazy, composable workflow that can require
services, fail with a typed error, or succeed with a typed value.
Details
Effect values model resourceful interaction with the outside world,
including synchronous, asynchronous, concurrent, and parallel interaction.
They use a fiber-based concurrency model, with built-in support for
scheduling, fine-grained interruption, structured concurrency, and high
scalability.
To run an Effect value, you need a Runtime, which is a type that is
capable of executing Effect values.
Effect<function (type parameter) In in <In0, In, E2, R2>(f: (input: In0) => Effect.Effect<In, E2, R2>): <A, L, E, R>(self: Sink<A, In, L, E, R>) => Sink<A, In0, L, E2 | E, R2 | R>In, function (type parameter) E2 in <In0, In, E2, R2>(f: (input: In0) => Effect.Effect<In, E2, R2>): <A, L, E, R>(self: Sink<A, In, L, E, R>) => Sink<A, In0, L, E2 | E, R2 | R>E2, function (type parameter) R2 in <In0, In, E2, R2>(f: (input: In0) => Effect.Effect<In, E2, R2>): <A, L, E, R>(self: Sink<A, In, L, E, R>) => Sink<A, In0, L, E2 | E, R2 | R>R2>
): <function (type parameter) A in <A, L, E, R>(self: Sink<A, In, L, E, R>): Sink<A, In0, L, E2 | E, R2 | R>A, function (type parameter) L in <A, L, E, R>(self: Sink<A, In, L, E, R>): Sink<A, In0, L, E2 | E, R2 | R>L, function (type parameter) E in <A, L, E, R>(self: Sink<A, In, L, E, R>): Sink<A, In0, L, E2 | E, R2 | R>E, function (type parameter) R in <A, L, E, R>(self: Sink<A, In, L, E, R>): Sink<A, In0, L, E2 | E, R2 | R>R>(self: Sink<A, In, L, E, R>(parameter) self: {
transform: (upstream: Pull.Pull<NonEmptyReadonlyArray<In>, never, void>, scope: Scope.Scope) => Effect.Effect<End<A, L>, E, 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 Sink<out A, in In = unknown, out L = never, out E = never, out R = never>A Sink<A, In, L, E, R> is used to consume elements produced by a Stream.
You can think of a sink as a function that will consume a variable amount of
In elements (could be 0, 1, or many), might fail with an error of type E,
and will eventually yield a value of type A together with a remainder of
type L (i.e. any leftovers).
Example (Running a sink with a stream)
import { Effect, Sink, Stream } from "effect"
// Create a simple sink that always succeeds with a value
const sink: Sink.Sink<number> = Sink.succeed(42)
// Use the sink to consume a stream
const stream = Stream.make(1, 2, 3)
const program = Stream.run(stream, sink)
Effect.runPromise(program).then(console.log)
// Output: 42
Namespace containing types and interfaces for Sink variance and type relationships.
Sink<function (type parameter) A in <A, L, E, R>(self: Sink<A, In, L, E, R>): Sink<A, In0, L, E2 | E, R2 | R>A, function (type parameter) In in <In0, In, E2, R2>(f: (input: In0) => Effect.Effect<In, E2, R2>): <A, L, E, R>(self: Sink<A, In, L, E, R>) => Sink<A, In0, L, E2 | E, R2 | R>In, function (type parameter) L in <A, L, E, R>(self: Sink<A, In, L, E, R>): Sink<A, In0, L, E2 | E, R2 | R>L, function (type parameter) E in <A, L, E, R>(self: Sink<A, In, L, E, R>): Sink<A, In0, L, E2 | E, R2 | R>E, function (type parameter) R in <A, L, E, R>(self: Sink<A, In, L, E, R>): Sink<A, In0, L, E2 | E, R2 | R>R>) => interface Sink<out A, in In = unknown, out L = never, out E = never, out R = never>A Sink<A, In, L, E, R> is used to consume elements produced by a Stream.
You can think of a sink as a function that will consume a variable amount of
In elements (could be 0, 1, or many), might fail with an error of type E,
and will eventually yield a value of type A together with a remainder of
type L (i.e. any leftovers).
Example (Running a sink with a stream)
import { Effect, Sink, Stream } from "effect"
// Create a simple sink that always succeeds with a value
const sink: Sink.Sink<number> = Sink.succeed(42)
// Use the sink to consume a stream
const stream = Stream.make(1, 2, 3)
const program = Stream.run(stream, sink)
Effect.runPromise(program).then(console.log)
// Output: 42
Namespace containing types and interfaces for Sink variance and type relationships.
Sink<function (type parameter) A in <A, L, E, R>(self: Sink<A, In, L, E, R>): Sink<A, In0, L, E2 | E, R2 | R>A, function (type parameter) In0 in <In0, In, E2, R2>(f: (input: In0) => Effect.Effect<In, E2, R2>): <A, L, E, R>(self: Sink<A, In, L, E, R>) => Sink<A, In0, L, E2 | E, R2 | R>In0, function (type parameter) L in <A, L, E, R>(self: Sink<A, In, L, E, R>): Sink<A, In0, L, E2 | E, R2 | R>L, function (type parameter) E2 in <In0, In, E2, R2>(f: (input: In0) => Effect.Effect<In, E2, R2>): <A, L, E, R>(self: Sink<A, In, L, E, R>) => Sink<A, In0, L, E2 | E, R2 | R>E2 | function (type parameter) E in <A, L, E, R>(self: Sink<A, In, L, E, R>): Sink<A, In0, L, E2 | E, R2 | R>E, function (type parameter) R2 in <In0, In, E2, R2>(f: (input: In0) => Effect.Effect<In, E2, R2>): <A, L, E, R>(self: Sink<A, In, L, E, R>) => Sink<A, In0, L, E2 | E, R2 | R>R2 | function (type parameter) R in <A, L, E, R>(self: Sink<A, In, L, E, R>): Sink<A, In0, L, E2 | E, R2 | R>R>
<function (type parameter) A in <A, In, L, E, R, In0, E2, R2>(self: Sink<A, In, L, E, R>, f: (input: In0) => Effect.Effect<In, E2, R2>): Sink<A, In0, L, E | E2, R | R2>A, function (type parameter) In in <A, In, L, E, R, In0, E2, R2>(self: Sink<A, In, L, E, R>, f: (input: In0) => Effect.Effect<In, E2, R2>): Sink<A, In0, L, E | E2, R | R2>In, function (type parameter) L in <A, In, L, E, R, In0, E2, R2>(self: Sink<A, In, L, E, R>, f: (input: In0) => Effect.Effect<In, E2, R2>): Sink<A, In0, L, E | E2, R | R2>L, function (type parameter) E in <A, In, L, E, R, In0, E2, R2>(self: Sink<A, In, L, E, R>, f: (input: In0) => Effect.Effect<In, E2, R2>): Sink<A, In0, L, E | E2, R | R2>E, function (type parameter) R in <A, In, L, E, R, In0, E2, R2>(self: Sink<A, In, L, E, R>, f: (input: In0) => Effect.Effect<In, E2, R2>): Sink<A, In0, L, E | E2, R | R2>R, function (type parameter) In0 in <A, In, L, E, R, In0, E2, R2>(self: Sink<A, In, L, E, R>, f: (input: In0) => Effect.Effect<In, E2, R2>): Sink<A, In0, L, E | E2, R | R2>In0, function (type parameter) E2 in <A, In, L, E, R, In0, E2, R2>(self: Sink<A, In, L, E, R>, f: (input: In0) => Effect.Effect<In, E2, R2>): Sink<A, In0, L, E | E2, R | R2>E2, function (type parameter) R2 in <A, In, L, E, R, In0, E2, R2>(self: Sink<A, In, L, E, R>, f: (input: In0) => Effect.Effect<In, E2, R2>): Sink<A, In0, L, E | E2, R | R2>R2>(
self: Sink<A, In, L, E, R>(parameter) self: {
transform: (upstream: Pull.Pull<NonEmptyReadonlyArray<In>, never, void>, scope: Scope.Scope) => Effect.Effect<End<A, L>, E, 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 Sink<out A, in In = unknown, out L = never, out E = never, out R = never>A Sink<A, In, L, E, R> is used to consume elements produced by a Stream.
You can think of a sink as a function that will consume a variable amount of
In elements (could be 0, 1, or many), might fail with an error of type E,
and will eventually yield a value of type A together with a remainder of
type L (i.e. any leftovers).
Example (Running a sink with a stream)
import { Effect, Sink, Stream } from "effect"
// Create a simple sink that always succeeds with a value
const sink: Sink.Sink<number> = Sink.succeed(42)
// Use the sink to consume a stream
const stream = Stream.make(1, 2, 3)
const program = Stream.run(stream, sink)
Effect.runPromise(program).then(console.log)
// Output: 42
Namespace containing types and interfaces for Sink variance and type relationships.
Sink<function (type parameter) A in <A, In, L, E, R, In0, E2, R2>(self: Sink<A, In, L, E, R>, f: (input: In0) => Effect.Effect<In, E2, R2>): Sink<A, In0, L, E | E2, R | R2>A, function (type parameter) In in <A, In, L, E, R, In0, E2, R2>(self: Sink<A, In, L, E, R>, f: (input: In0) => Effect.Effect<In, E2, R2>): Sink<A, In0, L, E | E2, R | R2>In, function (type parameter) L in <A, In, L, E, R, In0, E2, R2>(self: Sink<A, In, L, E, R>, f: (input: In0) => Effect.Effect<In, E2, R2>): Sink<A, In0, L, E | E2, R | R2>L, function (type parameter) E in <A, In, L, E, R, In0, E2, R2>(self: Sink<A, In, L, E, R>, f: (input: In0) => Effect.Effect<In, E2, R2>): Sink<A, In0, L, E | E2, R | R2>E, function (type parameter) R in <A, In, L, E, R, In0, E2, R2>(self: Sink<A, In, L, E, R>, f: (input: In0) => Effect.Effect<In, E2, R2>): Sink<A, In0, L, E | E2, R | R2>R>,
f: (
input: In0
) => Effect.Effect<In, E2, R2>
f: (input: In0input: function (type parameter) In0 in <A, In, L, E, R, In0, E2, R2>(self: Sink<A, In, L, E, R>, f: (input: In0) => Effect.Effect<In, E2, R2>): Sink<A, In0, L, E | E2, R | R2>In0) => import EffectEffect.interface Effect<out A, out E = never, out R = never>The Effect interface defines a value that lazily describes a workflow or
job. The workflow requires some context R, and may fail with an error of
type E, or succeed with a value of type A.
When to use
Use when you need to represent a lazy, composable workflow that can require
services, fail with a typed error, or succeed with a typed value.
Details
Effect values model resourceful interaction with the outside world,
including synchronous, asynchronous, concurrent, and parallel interaction.
They use a fiber-based concurrency model, with built-in support for
scheduling, fine-grained interruption, structured concurrency, and high
scalability.
To run an Effect value, you need a Runtime, which is a type that is
capable of executing Effect values.
Effect<function (type parameter) In in <A, In, L, E, R, In0, E2, R2>(self: Sink<A, In, L, E, R>, f: (input: In0) => Effect.Effect<In, E2, R2>): Sink<A, In0, L, E | E2, R | R2>In, function (type parameter) E2 in <A, In, L, E, R, In0, E2, R2>(self: Sink<A, In, L, E, R>, f: (input: In0) => Effect.Effect<In, E2, R2>): Sink<A, In0, L, E | E2, R | R2>E2, function (type parameter) R2 in <A, In, L, E, R, In0, E2, R2>(self: Sink<A, In, L, E, R>, f: (input: In0) => Effect.Effect<In, E2, R2>): Sink<A, In0, L, E | E2, R | R2>R2>
): interface Sink<out A, in In = unknown, out L = never, out E = never, out R = never>A Sink<A, In, L, E, R> is used to consume elements produced by a Stream.
You can think of a sink as a function that will consume a variable amount of
In elements (could be 0, 1, or many), might fail with an error of type E,
and will eventually yield a value of type A together with a remainder of
type L (i.e. any leftovers).
Example (Running a sink with a stream)
import { Effect, Sink, Stream } from "effect"
// Create a simple sink that always succeeds with a value
const sink: Sink.Sink<number> = Sink.succeed(42)
// Use the sink to consume a stream
const stream = Stream.make(1, 2, 3)
const program = Stream.run(stream, sink)
Effect.runPromise(program).then(console.log)
// Output: 42
Namespace containing types and interfaces for Sink variance and type relationships.
Sink<function (type parameter) A in <A, In, L, E, R, In0, E2, R2>(self: Sink<A, In, L, E, R>, f: (input: In0) => Effect.Effect<In, E2, R2>): Sink<A, In0, L, E | E2, R | R2>A, function (type parameter) In0 in <A, In, L, E, R, In0, E2, R2>(self: Sink<A, In, L, E, R>, f: (input: In0) => Effect.Effect<In, E2, R2>): Sink<A, In0, L, E | E2, R | R2>In0, function (type parameter) L in <A, In, L, E, R, In0, E2, R2>(self: Sink<A, In, L, E, R>, f: (input: In0) => Effect.Effect<In, E2, R2>): Sink<A, In0, L, E | E2, R | R2>L, function (type parameter) E in <A, In, L, E, R, In0, E2, R2>(self: Sink<A, In, L, E, R>, f: (input: In0) => Effect.Effect<In, E2, R2>): Sink<A, In0, L, E | E2, R | R2>E | function (type parameter) E2 in <A, In, L, E, R, In0, E2, R2>(self: Sink<A, In, L, E, R>, f: (input: In0) => Effect.Effect<In, E2, R2>): Sink<A, In0, L, E | E2, R | R2>E2, function (type parameter) R in <A, In, L, E, R, In0, E2, R2>(self: Sink<A, In, L, E, R>, f: (input: In0) => Effect.Effect<In, E2, R2>): Sink<A, In0, L, E | E2, R | R2>R | function (type parameter) R2 in <A, In, L, E, R, In0, E2, R2>(self: Sink<A, In, L, E, R>, f: (input: In0) => Effect.Effect<In, E2, R2>): Sink<A, In0, L, E | E2, R | R2>R2>
} = dual<(...args: Array<any>) => any, <A, In, L, E, R, In0, E2, R2>(self: Sink<A, In, L, E, R>, f: (input: In0) => Effect.Effect<In, E2, R2>) => Sink<A, In0, L, E | E2, R | R2>>(arity: 2, body: <A, In, L, E, R, In0, E2, R2>(self: Sink<A, In, L, E, R>, f: (input: In0) => Effect.Effect<In, E2, R2>) => Sink<A, In0, L, E | E2, R | R2>): ((...args: Array<any>) => any) & (<A, In, L, E, R, In0, E2, R2>(self: Sink<A, In, L, E, R>, f: (input: In0) => Effect.Effect<In, E2, R2>) => Sink<A, In0, L, E | E2, R | R2>) (+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(
2,
<function (type parameter) A in <A, In, L, E, R, In0, E2, R2>(self: Sink<A, In, L, E, R>, f: (input: In0) => Effect.Effect<In, E2, R2>): Sink<A, In0, L, E | E2, R | R2>A, function (type parameter) In in <A, In, L, E, R, In0, E2, R2>(self: Sink<A, In, L, E, R>, f: (input: In0) => Effect.Effect<In, E2, R2>): Sink<A, In0, L, E | E2, R | R2>In, function (type parameter) L in <A, In, L, E, R, In0, E2, R2>(self: Sink<A, In, L, E, R>, f: (input: In0) => Effect.Effect<In, E2, R2>): Sink<A, In0, L, E | E2, R | R2>L, function (type parameter) E in <A, In, L, E, R, In0, E2, R2>(self: Sink<A, In, L, E, R>, f: (input: In0) => Effect.Effect<In, E2, R2>): Sink<A, In0, L, E | E2, R | R2>E, function (type parameter) R in <A, In, L, E, R, In0, E2, R2>(self: Sink<A, In, L, E, R>, f: (input: In0) => Effect.Effect<In, E2, R2>): Sink<A, In0, L, E | E2, R | R2>R, function (type parameter) In0 in <A, In, L, E, R, In0, E2, R2>(self: Sink<A, In, L, E, R>, f: (input: In0) => Effect.Effect<In, E2, R2>): Sink<A, In0, L, E | E2, R | R2>In0, function (type parameter) E2 in <A, In, L, E, R, In0, E2, R2>(self: Sink<A, In, L, E, R>, f: (input: In0) => Effect.Effect<In, E2, R2>): Sink<A, In0, L, E | E2, R | R2>E2, function (type parameter) R2 in <A, In, L, E, R, In0, E2, R2>(self: Sink<A, In, L, E, R>, f: (input: In0) => Effect.Effect<In, E2, R2>): Sink<A, In0, L, E | E2, R | R2>R2>(
self: Sink<A, In, L, E, R>(parameter) self: {
transform: (upstream: Pull.Pull<NonEmptyReadonlyArray<In>, never, void>, scope: Scope.Scope) => Effect.Effect<End<A, L>, E, 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 Sink<out A, in In = unknown, out L = never, out E = never, out R = never>A Sink<A, In, L, E, R> is used to consume elements produced by a Stream.
You can think of a sink as a function that will consume a variable amount of
In elements (could be 0, 1, or many), might fail with an error of type E,
and will eventually yield a value of type A together with a remainder of
type L (i.e. any leftovers).
Example (Running a sink with a stream)
import { Effect, Sink, Stream } from "effect"
// Create a simple sink that always succeeds with a value
const sink: Sink.Sink<number> = Sink.succeed(42)
// Use the sink to consume a stream
const stream = Stream.make(1, 2, 3)
const program = Stream.run(stream, sink)
Effect.runPromise(program).then(console.log)
// Output: 42
Namespace containing types and interfaces for Sink variance and type relationships.
Sink<function (type parameter) A in <A, In, L, E, R, In0, E2, R2>(self: Sink<A, In, L, E, R>, f: (input: In0) => Effect.Effect<In, E2, R2>): Sink<A, In0, L, E | E2, R | R2>A, function (type parameter) In in <A, In, L, E, R, In0, E2, R2>(self: Sink<A, In, L, E, R>, f: (input: In0) => Effect.Effect<In, E2, R2>): Sink<A, In0, L, E | E2, R | R2>In, function (type parameter) L in <A, In, L, E, R, In0, E2, R2>(self: Sink<A, In, L, E, R>, f: (input: In0) => Effect.Effect<In, E2, R2>): Sink<A, In0, L, E | E2, R | R2>L, function (type parameter) E in <A, In, L, E, R, In0, E2, R2>(self: Sink<A, In, L, E, R>, f: (input: In0) => Effect.Effect<In, E2, R2>): Sink<A, In0, L, E | E2, R | R2>E, function (type parameter) R in <A, In, L, E, R, In0, E2, R2>(self: Sink<A, In, L, E, R>, f: (input: In0) => Effect.Effect<In, E2, R2>): Sink<A, In0, L, E | E2, R | R2>R>,
f: (
input: In0
) => Effect.Effect<In, E2, R2>
f: (input: In0input: function (type parameter) In0 in <A, In, L, E, R, In0, E2, R2>(self: Sink<A, In, L, E, R>, f: (input: In0) => Effect.Effect<In, E2, R2>): Sink<A, In0, L, E | E2, R | R2>In0) => import EffectEffect.interface Effect<out A, out E = never, out R = never>The Effect interface defines a value that lazily describes a workflow or
job. The workflow requires some context R, and may fail with an error of
type E, or succeed with a value of type A.
When to use
Use when you need to represent a lazy, composable workflow that can require
services, fail with a typed error, or succeed with a typed value.
Details
Effect values model resourceful interaction with the outside world,
including synchronous, asynchronous, concurrent, and parallel interaction.
They use a fiber-based concurrency model, with built-in support for
scheduling, fine-grained interruption, structured concurrency, and high
scalability.
To run an Effect value, you need a Runtime, which is a type that is
capable of executing Effect values.
Effect<function (type parameter) In in <A, In, L, E, R, In0, E2, R2>(self: Sink<A, In, L, E, R>, f: (input: In0) => Effect.Effect<In, E2, R2>): Sink<A, In0, L, E | E2, R | R2>In, function (type parameter) E2 in <A, In, L, E, R, In0, E2, R2>(self: Sink<A, In, L, E, R>, f: (input: In0) => Effect.Effect<In, E2, R2>): Sink<A, In0, L, E | E2, R | R2>E2, function (type parameter) R2 in <A, In, L, E, R, In0, E2, R2>(self: Sink<A, In, L, E, R>, f: (input: In0) => Effect.Effect<In, E2, R2>): Sink<A, In0, L, E | E2, R | R2>R2>
): interface Sink<out A, in In = unknown, out L = never, out E = never, out R = never>A Sink<A, In, L, E, R> is used to consume elements produced by a Stream.
You can think of a sink as a function that will consume a variable amount of
In elements (could be 0, 1, or many), might fail with an error of type E,
and will eventually yield a value of type A together with a remainder of
type L (i.e. any leftovers).
Example (Running a sink with a stream)
import { Effect, Sink, Stream } from "effect"
// Create a simple sink that always succeeds with a value
const sink: Sink.Sink<number> = Sink.succeed(42)
// Use the sink to consume a stream
const stream = Stream.make(1, 2, 3)
const program = Stream.run(stream, sink)
Effect.runPromise(program).then(console.log)
// Output: 42
Namespace containing types and interfaces for Sink variance and type relationships.
Sink<function (type parameter) A in <A, In, L, E, R, In0, E2, R2>(self: Sink<A, In, L, E, R>, f: (input: In0) => Effect.Effect<In, E2, R2>): Sink<A, In0, L, E | E2, R | R2>A, function (type parameter) In0 in <A, In, L, E, R, In0, E2, R2>(self: Sink<A, In, L, E, R>, f: (input: In0) => Effect.Effect<In, E2, R2>): Sink<A, In0, L, E | E2, R | R2>In0, function (type parameter) L in <A, In, L, E, R, In0, E2, R2>(self: Sink<A, In, L, E, R>, f: (input: In0) => Effect.Effect<In, E2, R2>): Sink<A, In0, L, E | E2, R | R2>L, function (type parameter) E in <A, In, L, E, R, In0, E2, R2>(self: Sink<A, In, L, E, R>, f: (input: In0) => Effect.Effect<In, E2, R2>): Sink<A, In0, L, E | E2, R | R2>E | function (type parameter) E2 in <A, In, L, E, R, In0, E2, R2>(self: Sink<A, In, L, E, R>, f: (input: In0) => Effect.Effect<In, E2, R2>): Sink<A, In0, L, E | E2, R | R2>E2, function (type parameter) R in <A, In, L, E, R, In0, E2, R2>(self: Sink<A, In, L, E, R>, f: (input: In0) => Effect.Effect<In, E2, R2>): Sink<A, In0, L, E | E2, R | R2>R | function (type parameter) R2 in <A, In, L, E, R, In0, E2, R2>(self: Sink<A, In, L, E, R>, f: (input: In0) => Effect.Effect<In, E2, R2>): Sink<A, In0, L, E | E2, R | R2>R2> => const mapInputArrayEffect: {
<In0, In, E2, R2>(
f: (
input: Arr.NonEmptyReadonlyArray<In0>
) => Effect.Effect<
Arr.NonEmptyReadonlyArray<In>,
E2,
R2
>
): <A, L, E, R>(
self: Sink<A, In, L, E, R>
) => Sink<A, In0, L, E2 | E, R2 | R>
<A, In, L, E, R, In0, E2, R2>(
self: Sink<A, In, L, E, R>,
f: (
input: Arr.NonEmptyReadonlyArray<In0>
) => Effect.Effect<
Arr.NonEmptyReadonlyArray<In>,
E2,
R2
>
): Sink<A, In0, L, E | E2, R | R2>
}
mapInputArrayEffect(self: Sink<A, In, L, E, R>(parameter) self: {
transform: (upstream: Pull.Pull<NonEmptyReadonlyArray<In>, never, void>, scope: Scope.Scope) => Effect.Effect<End<A, L>, E, 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 forEach: {
<
B,
E,
R,
S extends Iterable<any>,
Discard extends boolean = false
>(
f: (
a: Arr.ReadonlyArray.Infer<S>,
i: number
) => Effect<B, E, R>,
options?:
| {
readonly concurrency?:
| Concurrency
| undefined
readonly discard?: Discard | undefined
}
| undefined
): (
self: S
) => Effect<
Discard extends false
? Arr.ReadonlyArray.With<S, B>
: void,
E,
R
>
<
B,
E,
R,
S extends Iterable<any>,
Discard extends boolean = false
>(
self: S,
f: (
a: Arr.ReadonlyArray.Infer<S>,
i: number
) => Effect<B, E, R>,
options?:
| {
readonly concurrency?:
| Concurrency
| undefined
readonly discard?: Discard | undefined
}
| undefined
): Effect<
Discard extends false
? Arr.ReadonlyArray.With<S, B>
: void,
E,
R
>
}
forEach(f: (
input: In0
) => Effect.Effect<In, E2, R2>
f))
)