{-# OPTIONS_GHC -fno-warn-orphans #-} module Pandora.Paradigm.Inventory.Accumulator (Accumulator (..), Accumulated, gather) where import Pandora.Pattern.Category ((.), ($)) import Pandora.Pattern.Functor.Covariant (Covariant ((<$>), (<$$>))) import Pandora.Pattern.Functor.Pointable (Pointable (point)) import Pandora.Pattern.Functor.Applicative (Applicative ((<*>))) import Pandora.Pattern.Functor.Bindable (Bindable ((>>=))) import Pandora.Pattern.Functor.Monad (Monad) import Pandora.Pattern.Object.Monoid (Monoid (zero)) import Pandora.Pattern.Object.Semigroup (Semigroup ((+))) import Pandora.Paradigm.Primary.Functor.Product (Product ((:*:)), type (:*:)) import Pandora.Paradigm.Controlflow.Effect.Interpreted (Schematic, Interpreted (Primary, run)) import Pandora.Paradigm.Controlflow.Effect.Transformer.Monadic (Monadic (wrap), (:>) (TM)) import Pandora.Paradigm.Controlflow.Effect.Adaptable (Adaptable (adapt)) import Pandora.Paradigm.Schemes.UT (UT (UT), type (<.:>)) newtype Accumulator e a = Accumulator (e :*: a) instance Covariant (Accumulator e) where f <$> Accumulator x = Accumulator $ f <$> x instance Semigroup e => Applicative (Accumulator e) where f <*> v = Accumulator $ k (run f) (run v) where k ~(e :*: g) ~(e' :*: w) = e + e' :*: g w instance Monoid e => Pointable (Accumulator e) where point = Accumulator . (zero :*:) instance Semigroup e => Bindable (Accumulator e) where Accumulator (e :*: x) >>= f = let (e' :*: b) = run $ f x in Accumulator $ e + e':*: b type instance Schematic Monad (Accumulator e) = (<.:>) ((:*:) e) instance Interpreted (Accumulator e) where type Primary (Accumulator e) a = e :*: a run ~(Accumulator x) = x instance Monoid e => Monadic (Accumulator e) where wrap = TM . UT . point . run type Accumulated e t = Adaptable (Accumulator e) t instance Covariant u => Covariant ((:*:) e <.:> u) where f <$> UT x = UT $ f <$$> x instance (Semigroup e, Applicative u) => Applicative ((:*:) e <.:> u) where UT f <*> UT x = UT $ k <$> f <*> x where k ~(u :*: g) ~(v :*: y) = u + v :*: g y instance (Pointable u, Monoid e) => Pointable ((:*:) e <.:> u) where point = UT . point . (zero :*:) instance (Semigroup e, Pointable u, Bindable u) => Bindable ((:*:) e <.:> u) where UT x >>= f = UT $ x >>= \(acc :*: v) -> (\(acc' :*: y) -> (acc + acc' :*: y)) <$> run (f v) gather :: Accumulated e t => e -> t () gather x = adapt . Accumulator $ x :*: ()