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semantic/prototype/Doubt/Cofree.swift

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/// The cofree comonad over `Syntax`.
///
/// This is free in the sense of unconstrained rather than zero-cost; its the comonad obtained by taking a functor (in this case `Syntax`) and adding the minimum necessary details (the `B` paired with it) to satisfy the comonad laws.
///
/// This type is dual to `Free`. Where `Free` is inhabited by syntax trees where some terms are replaced with `B`s, `Cofree` is inhabited by syntax trees where all terms are annotated with `B`s. In Doubt, this allows us to e.g. annotate terms with source range information, categorization, etc.
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public enum Cofree<A, B> {
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indirect case Unroll(B, Syntax<Cofree, A>)
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public var unwrap: Syntax<Cofree, A> {
switch self {
case let .Unroll(_, rest):
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return rest
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}
}
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public init(_ annotation: B, _ syntax: Syntax<Cofree, A>) {
self = .Unroll(annotation, syntax)
}
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/// Constructs a cofree by coiteration.
///
/// The initial seed is used as the annotation of the returned value. The continuation of the structure is unpacked by applying `annotate` to the seed and mapping the resulting syntaxs values recursively. In this manner, the structure is unfolded bottom-up, starting with `seed` and ending at the leaves.
///
/// As this is the dual of `Free.iterate`, its unsurprising that we have a similar guarantee: coiteration is linear in the size of the constructed tree.
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public static func coiterate(annotate: B -> Syntax<B, A>)(_ seed: B) -> Cofree {
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return .Unroll(seed, annotate(seed).map(coiterate(annotate)))
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}
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}
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// MARK: - CustomDebugStringConvertible
extension Cofree: CustomDebugStringConvertible {
public var debugDescription: String {
return "(\(String(reflecting: extract)), \(String(reflecting: unwrap)))"
}
}
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// MARK: - Functor
extension Cofree {
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public func map<Other>(transform: B -> Other) -> Cofree<A, Other> {
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return .Unroll(transform(extract), unwrap.map { $0.map(transform) })
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}
}
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// MARK: - Comonad
extension Cofree {
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/// Returns the value annotating the syntax tree at this node.
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public var extract: B {
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switch self {
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case let .Unroll(b, _):
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return b
}
}
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/// Returns a new `Cofree` by recursively applying `transform` to each node, producing the annotations for the copy.
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public func extend<Other>(transform: Cofree -> Other) -> Cofree<A, Other> {
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return .Unroll(transform(self), unwrap.map { $0.extend(transform) })
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}
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/// Returns a new `Cofree` constructed by recursively annotating each subtree with itself.
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public var duplicate: Cofree<A, Cofree<A, B>> {
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return extend(id)
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}
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}
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// MARK: - Equality
extension Cofree {
public static func equals(annotation annotation: (B, B) -> Bool, leaf: (A, A) -> Bool)(_ left: Cofree, _ right: Cofree) -> Bool {
return annotation(left.extract, right.extract)
&& Syntax.equals(ifLeaf: leaf, ifRecur: Cofree.equals(annotation: annotation, leaf: leaf))(left.unwrap, right.unwrap)
}
}
public func == <A: Equatable, B: Equatable> (left: Cofree<A, B>, right: Cofree<A, B>) -> Bool {
return Cofree.equals(annotation: ==, leaf: ==)(left, right)
}
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// MARK: - JSON
extension Cofree {
public func JSON(annotation annotation: B -> Doubt.JSON, leaf: A -> Doubt.JSON) -> Doubt.JSON {
return [
"extract": annotation(extract),
"unwrap": unwrap.JSON(ifLeaf: leaf, ifRecur: { $0.JSON(annotation: annotation, leaf: leaf) })
]
}
}
extension Cofree where A: CustomJSONConvertible, B: CustomJSONConvertible {
public var JSON: Doubt.JSON {
return JSON(annotation: { $0.JSON }, leaf: { $0.JSON })
}
}
// MARK: - Categorizable
extension Cofree where B: Categorizable {
var categories: Set<B.Category> {
return extract.categories
}
}
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import Prelude