First pass at sugar for instances.
This commit is contained in:
7
Makefile
7
Makefile
@@ -1,6 +1,9 @@
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SRCS=$(shell find src -name "*.idr")
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all: build/exec/newt build/exec/newt.js build/exec/newt.min.js
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.PHONY:
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all: build/exec/newt build/exec/newt.js
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# build/exec/newt.min.js
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build/exec/newt: ${SRCS}
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idris2 --build newt.ipkg
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@@ -17,3 +20,5 @@ test: build/exec/newt
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vscode:
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cd newt-vscode && vsce package && code --install-extension *.vsix
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playground: .PHONY
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cd playground && ./build
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3
TODO.md
3
TODO.md
@@ -1,8 +1,11 @@
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## TODO
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NOW - sorting out instance sugar for `Monad {a} -> (Either a)`.
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- [ ] accepting DCon for another type (skipping case, but should be an error)
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- [ ] don't allow (or dot) duplicate names on LHS
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- [ ] remove metas from context, M has TopContext
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- [ ] improve test driver
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- maybe a file listing jobs, whether they are known broken, optional expected output, optional expected JS execution output.
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- [x] forall / ∀ sugar (Maybe drop this, issues with `.` and `{A}` works fine)
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@@ -56,8 +56,9 @@ plus' = \ n m => case n of
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Z => m
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S n => S (plus' n m)
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-- We can define operators, currently only infix
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-- and we allow unicode and letters in operators
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-- We can define operators. Mixfix is supported, but we don't
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-- allow ambiguity (so you can't have both [_] and [_,_]). See
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-- the Reasoning.newt sample for a mixfix example.
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infixl 2 _≡_
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-- Here is an equality, like Idris, everything goes to the right of the colon
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@@ -70,29 +71,18 @@ data _≡_ : {A : U} -> A -> A -> U where
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test : plus (S Z) (S Z) ≡ S (S Z)
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test = Refl
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-- Ok now we do typeclasses. There isn't any sugar, but we have
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-- search for implicits marked with double brackets.
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-- Ok now we do typeclasses. `class` and `instance` are sugar for
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-- ordinary data and functions:
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-- Let's say we want a generic `_+_` operator
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infixl 7 _+_
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-- We don't have records yet, so we define a single constructor
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-- inductive type. Here we also use `∀ A.` which is sugar for `{A : _} ->`
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data Plus : U -> U where
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MkPlus : ∀ A. (A -> A -> A) -> Plus A
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class Add a where
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_+_ : a -> a -> a
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-- and the generic function that uses it
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-- the double brackets indicate an argument that is solved by search
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_+_ : ∀ A. {{_ : Plus A}} -> A -> A -> A
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_+_ {{MkPlus f}} x y = f x y
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-- The typeclass is now defined, search will look for functions in scope
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-- that return a type matching (same type constructor) the implicit
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-- and only have implicit arguments (inspired by Agda).
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-- We make an instance `Plus Nat`
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PlusNat : Plus Nat
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PlusNat = MkPlus plus
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instance Add Nat where
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Z + m = m
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(S n) + m = S (n + m)
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-- and it now finds the implicits, you'll see the solutions to the
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-- implicits if you hover over the `+`.
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@@ -108,7 +98,7 @@ foo a b = ?
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-- javascript output. It is not doing erasure (or inlining) yet, so the
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-- code is a little verbose.
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-- We can define native types:
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-- We can define native types, if the type is left off, it defaults to U
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ptype Int : U
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ptype String : U
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@@ -133,36 +123,49 @@ pfunc plusString : String -> String -> String := "(x,y) => x + y"
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-- We can make them Plus instances:
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PlusInt : Plus Int
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PlusInt = MkPlus plusInt
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PlusString : Plus String
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PlusString = MkPlus plusString
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instance Add Int where
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_+_ = plusInt
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instance Add String where
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_+_ = plusString
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concat : String -> String -> String
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concat a b = a + b
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-- Now we define Monad
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class Monad (m : U -> U) where
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pure : {a} -> a -> m a
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bind : {a b} -> m a -> (a -> m b) -> m b
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data Monad : (U -> U) -> U where
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/-
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This desugars to:
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data Monad : (m : U -> U) -> U where
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MkMonad : {m : U -> U} ->
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({a : U} -> a -> m a) ->
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({a b : U} -> m a -> (a -> m b) -> m b) ->
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(pure : {a : _} -> a -> m a) ->
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(bind : {a : _} -> {b : _} -> m a -> a -> m b -> m b) ->
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Monad m
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pure : ∀ m. {{Monad m}} -> {a : U} -> a -> m a
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pure {{MkMonad p _}} a = p a
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pure : {m : U -> U} -> {{_ : Monad m}} -> {a : _} -> a -> m a
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pure {m} {{MkMonad pure bind}} = pure
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bind : {m : U -> U} -> {{_ : Monad m}} -> {a : _} -> {b : _} -> m a -> a -> m b -> m b
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bind {m} {{MkMonad pure bind}} = bind
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-/
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-- we can declare multiple infix operators at once
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infixl 1 _>>=_ _>>_
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_>>=_ : ∀ m a b. {{Monad m}} -> m a -> (a -> m b) -> m b
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_>>=_ {{MkMonad _ b}} ma amb = b ma amb
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_>>=_ : {m} {{Monad m}} {a b} -> m a -> (a -> m b) -> m b
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_>>=_ ma amb = bind ma amb
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_>>_ : ∀ m a b. {{Monad m}} -> m a -> m b -> m b
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_>>_ : {m} {{Monad m}} {a b} -> m a -> m b -> m b
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ma >> mb = ma >>= (λ _ => mb)
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-- That's our Monad typeclass, now let's make a List monad
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-- Now we define list and show it is a monad. At the moment, I don't
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-- have sugar for Lists,
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infixr 3 _::_
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data List : U -> U where
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@@ -174,15 +177,26 @@ _++_ : ∀ a. List a -> List a -> List a
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Nil ++ ys = ys
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(x :: xs) ++ ys = x :: (xs ++ ys)
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bindList : ∀ a b. List a -> (a -> List b) -> List b
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bindList Nil f = Nil
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bindList (x :: xs) f = f x ++ bindList xs f
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instance Monad List where
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pure a = a :: Nil
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bind Nil f = Nil
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bind (x :: xs) f = f x ++ bind xs f
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-- Both `\` and `λ` work for lambda expressions:
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MonadList : Monad List
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MonadList = MkMonad (λ a => a :: Nil) bindList
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/-
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This desugars to: (the names in guillemots are not user-accessible)
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-- We'll want Pair below too. `,` has been left for use as an operator.
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«Monad List,pure» : { a : U } -> a:0 -> List a:1
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pure a = _::_ a Nil
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«Monad List,bind» : { a : U } -> { b : U } -> (List a) -> (a -> List b) -> List b
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bind Nil f = Nil bind (_::_ x xs) f = _++_ (f x) (bind xs f)
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«Monad List» : Monad List
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«Monad List» = MkMonad «Monad List,pure» «Monad List,bind»
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-/
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-- We'll want Pair below. `,` has been left for use as an operator.
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-- Also we see that → can be used in lieu of ->
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infixr 1 _,_ _×_
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data _×_ : U → U → U where
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@@ -1,42 +1,35 @@
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module TypeClass
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data Monad : (U -> U) -> U where
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MkMonad : { M : U -> U } ->
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(bind : {A B : U} -> (M A) -> (A -> M B) -> M B) ->
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(pure : ∀ A. A -> M A) ->
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Monad M
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class Monad (m : U → U) where
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bind : {a b} → m a → (a → m b) → m b
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pure : {a} → a → m a
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infixl 1 _>>=_ _>>_
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_>>=_ : ∀ m a b. {{Monad m}} -> (m a) -> (a -> m b) -> m b
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_>>=_ {{MkMonad bind' _}} ma amb = bind' ma amb
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_>>=_ : {m} {{Monad m}} {a b} -> (m a) -> (a -> m b) -> m b
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ma >>= amb = bind ma amb
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_>>_ : ∀ m a b. {{Monad m}} -> m a -> m b -> m b
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ma >> mb = mb
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pure : ∀ m a. {{Monad m}} -> a -> m a
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pure {{MkMonad _ pure'}} a = pure' a
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data Either : U -> U -> U where
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Left : ∀ A B. A -> Either A B
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Right : ∀ A B. B -> Either A B
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bindEither : ∀ A B C. (Either A B) -> (B -> Either A C) -> Either A C
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bindEither (Left a) amb = Left a
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bindEither (Right b) amb = amb b
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instance {a} → Monad (Either a) where
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bind (Left a) amb = Left a
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bind (Right b) amb = amb b
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EitherMonad : ∀ A. Monad (Either A)
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EitherMonad = MkMonad {Either A} bindEither Right
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pure a = Right a
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data Maybe : U -> U where
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Just : ∀ A. A -> Maybe A
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Nothing : ∀ A. Maybe A
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bindMaybe : ∀ A B. Maybe A -> (A -> Maybe B) -> Maybe B
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bindMaybe Nothing amb = Nothing
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bindMaybe (Just a) amb = amb a
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instance Monad Maybe where
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bind Nothing amb = Nothing
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bind (Just a) amb = amb a
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MaybeMonad : Monad Maybe
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MaybeMonad = MkMonad bindMaybe Just
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pure a = Just a
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infixr 7 _::_
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data List : U -> U where
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@@ -48,16 +41,11 @@ _++_ : ∀ A. List A -> List A -> List A
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Nil ++ ys = ys
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(x :: xs) ++ ys = x :: (xs ++ ys)
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bindList : ∀ A B. List A -> (A -> List B) -> List B
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bindList Nil f = Nil
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bindList (x :: xs) f = f x ++ bindList xs f
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instance Monad List where
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bind Nil f = Nil
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bind (x :: xs) f = f x ++ bind xs f
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singleton : ∀ A. A -> List A
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singleton a = a :: Nil
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-- TODO need better error when the monad is not defined
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ListMonad : Monad List
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ListMonad = MkMonad bindList singleton
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pure x = x :: Nil
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infixr 1 _,_
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data Pair : U -> U -> U where
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@@ -157,7 +157,7 @@ eval env mode (Let fc nm t u) = pure $ VLet fc nm !(eval env mode t) !(eval (VVa
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-- translate to a level
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eval env mode (Bnd fc i) = case getAt i env of
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Just rval => pure rval
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Nothing => error' "Bad deBruin index \{show i}"
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Nothing => error fc "Bad deBruin index \{show i}"
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eval env mode (Lit fc lit) = pure $ VLit fc lit
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eval env mode tm@(Case fc sc alts) = do
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@@ -406,7 +406,7 @@ parseData = do
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nakedBind : Parser Telescope
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nakedBind = do
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names <- some (withPos varname)
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pure $ map (\(pos,name) => (pos, name, Implicit, RImplicit pos)) names
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pure $ map (\(pos,name) => (pos, name, Explicit, RImplicit pos)) names
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export
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parseClass : Parser Decl
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@@ -419,6 +419,16 @@ parseClass = do
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decls <- startBlock $ manySame $ parseSig
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pure $ Class fc name (join teles) decls
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export
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parseInstance : Parser Decl
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parseInstance = do
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fc <- getPos
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keyword "instance"
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ty <- typeExpr
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keyword "where"
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decls <- startBlock $ manySame $ parseDef
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pure $ Instance fc ty decls
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-- Not sure what I want here.
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-- I can't get a Tm without a type, and then we're covered by the other stuff
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parseNorm : Parser Decl
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@@ -427,7 +437,8 @@ parseNorm = DCheck <$> getPos <* keyword "#check" <*> typeExpr <* keyword ":" <*
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export
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parseDecl : Parser Decl
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parseDecl = parseMixfix <|> parsePType <|> parsePFunc
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<|> parseNorm <|> parseData <|> parseSig <|> parseDef <|> parseClass
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<|> parseNorm <|> parseData <|> parseSig <|> parseDef
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<|> parseClass <|> parseInstance
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export
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@@ -3,6 +3,7 @@ module Lib.ProcessDecl
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import Data.IORef
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import Data.String
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import Data.Vect
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import Data.List
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import Data.Maybe
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import Lib.Elab
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@@ -27,7 +28,7 @@ isCandidate _ _ = False
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-- TODO consider ctx
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findMatches : Context -> Val -> List TopEntry -> M (List (Tm, MetaContext))
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findMatches ctx ty [] = pure []
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findMatches ctx ty ((MkEntry name type def@(Fn t)) :: xs) = do
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findMatches ctx ty ((MkEntry name type def) :: xs) = do
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let True = isCandidate ty type | False => findMatches ctx ty xs
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top <- get
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-- let ctx = mkCtx top.metas (getFC ty)
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@@ -207,8 +208,10 @@ processDecl (Def fc nm clauses) = do
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putStrLn "check \{nm} at \{pprint [] ty}"
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vty <- eval empty CBN ty
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debug "\{nm} vty is \{show vty}"
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-- I can take LHS apart syntactically or elaborate it with an infer
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clauses' <- traverse (makeClause top) clauses
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tm <- buildTree (mkCtx top.metas fc) (MkProb clauses' vty)
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@@ -217,7 +220,6 @@ processDecl (Def fc nm clauses) = do
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mc <- readIORef top.metas
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let mlen = length mc.metas `minus` mstart
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solveAutos mlen (take mlen mc.metas)
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-- TODO - make nf that expands all metas and drop zonk
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-- Day1.newt is a test case
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-- tm' <- nf [] tm
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@@ -261,16 +263,14 @@ processDecl (Class classFC nm tele decls) = do
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processDecl decl
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for_ fields $ \ (fc,name,ty) => do
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let funType = teleToPi impTele $ RPi fc Nothing Auto tail ty
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putStrLn "\{name} : \{pretty funType}"
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processDecl $ TypeSig fc [name] funType
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let autoPat = foldl (\acc, (fc,nm,ty) => RApp fc acc (RVar fc nm) Explicit) (RVar classFC dcName) fields
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putStrLn "\{pretty autoPat}"
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let lhs = foldl (\acc, (fc', nm, _, _) => RApp fc' acc (RVar fc' nm) Implicit) (RVar fc name) tele
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let lhs = RApp classFC lhs autoPat Auto
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let decl = Def fc name [(lhs, (RVar fc name))]
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putStrLn "\{name} : \{pretty funType}"
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putStrLn "\{pretty decl}"
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processDecl $ TypeSig fc [name] funType
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processDecl decl
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where
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@@ -287,6 +287,99 @@ processDecl (Class classFC nm tele decls) = do
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teleToPi [] end = end
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teleToPi ((fc, nm, icit, ty) :: tele) end = RPi fc (Just nm) icit ty (teleToPi tele end)
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processDecl (Instance instfc ty decls) = do
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let decls = collectDecl decls
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putStrLn "-----"
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putStrLn "Instance \{pretty ty}"
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top <- get
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let tyFC = getFC ty
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vty <- check (mkCtx top.metas instfc) ty (VU instfc)
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-- Here `tele` holds arguments to the instance
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let (codomain, tele) = splitTele vty
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-- env represents the environment of those arguments
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let env = tenv (length tele)
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debug "codomain \{pprint [] codomain}"
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debug "tele is \{show tele}"
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-- ok so we need a name, a hack for now.
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-- Maybe we need to ask the user (e.g. `instance someName : Monad Foo where`)
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-- or use "Monad\{show $ length defs}"
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let instname = interpolate $ pprint [] codomain
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let sigDecl = TypeSig instfc [instname] ty
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let (Ref _ tconName _, args) := funArgs codomain
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| (tm, _) => error tyFC "\{pprint [] codomain} doesn't appear to be a TCon application"
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let (Just (MkEntry name type (TCon cons))) = lookup tconName top
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| _ => error tyFC "\{tconName} is not a type constructor"
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let [con] = cons
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| _ => error tyFC "\{tconName} has multiple constructors \{show cons}"
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let (Just (MkEntry _ dcty (DCon _ _))) = lookup con top
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| _ => error tyFC "can't find constructor \{show con}"
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vdcty@(VPi _ nm icit a b) <- eval [] CBN dcty
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| x => error (getFC x) "dcty not Pi"
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debug "dcty \{pprint [] dcty}"
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let (_,args) = funArgs codomain
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debug "traverse \{show $ map showTm args}"
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-- This is a little painful because we're reverse engineering the
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-- individual types back out from the composite type
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args' <- traverse (eval env CBN) args
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debug "args' is \{show args'}"
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conTele <- getFields !(apply vdcty args') env []
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-- declare individual functions, collect their defs
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defs <- for conTele $ \case
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(MkBind fc nm Explicit ty) => do
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let ty' = foldr (\(MkBind fc nm' icit ty'), acc => Pi fc nm' icit ty' acc) ty tele
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let nm' = "\{instname},\{nm}"
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-- we're working with a Tm, so we define directly instead of processDecl
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setDef nm' fc ty' Axiom
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let Just (Def fc name xs) = find (\case (Def y name xs) => name == nm; _ => False) decls
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| _ => error instfc "no definition for \{nm}"
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let decl = (Def fc nm' xs)
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putStrLn "***"
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putStrLn "«\{nm'}» : \{pprint [] ty'}"
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putStrLn $ render 80 $ pretty decl
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pure $ Just decl
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_ => pure Nothing
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-- This needs to be declared before processing the defs, but the defs need to be
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-- declared before this
|
||||
processDecl sigDecl
|
||||
for_ (mapMaybe id defs) $ \decl => do
|
||||
-- debug because already printed above, but nice to have it near processing
|
||||
debug $ render 80 $ pretty decl
|
||||
processDecl decl
|
||||
|
||||
let decl = Def instfc instname [(RVar instfc instname, mkRHS instname conTele (RVar instfc con))]
|
||||
putStrLn "SIGDECL"
|
||||
putStrLn "\{pretty sigDecl}"
|
||||
putStrLn $ render 80 $ pretty decl
|
||||
processDecl decl
|
||||
where
|
||||
-- try to extract types of individual fields from the typeclass dcon
|
||||
-- We're assuming they don't depend on each other.
|
||||
getFields : Val -> Env -> List Binder -> M (List Binder)
|
||||
getFields tm@(VPi fc nm Explicit ty sc) env bnds = do
|
||||
bnd <- MkBind fc nm Explicit <$> quote (length env) ty
|
||||
getFields !(sc $$ VVar fc (length env) [<]) env (bnd :: bnds)
|
||||
getFields tm@(VPi fc nm _ ty sc) env bnds = getFields !(sc $$ VVar fc (length env) [<]) env bnds
|
||||
getFields tm xs bnds = pure $ reverse bnds
|
||||
|
||||
tenv : Nat -> Env
|
||||
tenv Z = []
|
||||
tenv (S k) = (VVar emptyFC k [<] :: tenv k)
|
||||
|
||||
mkRHS : String -> List Binder -> Raw -> Raw
|
||||
mkRHS instName (MkBind fc nm Explicit ty :: bs) tm = mkRHS instName bs (RApp fc tm (RVar fc "\{instName},\{nm}") Explicit)
|
||||
mkRHS instName (b :: bs) tm = mkRHS instName bs tm
|
||||
mkRHS instName [] tm = tm
|
||||
|
||||
apply : Val -> List Val -> M Val
|
||||
apply x [] = pure x
|
||||
apply (VPi fc nm icit a b) (x :: xs) = apply !(b $$ x) xs
|
||||
apply x (y :: xs) = error instfc "expected pi type \{show x}"
|
||||
|
||||
processDecl (Data fc nm ty cons) = do
|
||||
putStrLn "-----"
|
||||
putStrLn "Data \{nm}"
|
||||
|
||||
@@ -121,6 +121,7 @@ data Decl
|
||||
| PFunc FC Name Raw String
|
||||
| PMixFix FC (List Name) Nat Fixity
|
||||
| Class FC Name Telescope (List Decl)
|
||||
| Instance FC Raw (List Decl)
|
||||
|
||||
|
||||
public export
|
||||
@@ -154,6 +155,7 @@ Show Clause where
|
||||
Show Import where
|
||||
show (MkImport _ str) = foo ["MkImport", show str]
|
||||
|
||||
-- this is for debugging, use pretty when possible
|
||||
covering
|
||||
Show Decl where
|
||||
show (TypeSig _ str x) = foo ["TypeSig", show str, show x]
|
||||
@@ -163,7 +165,8 @@ Show Decl where
|
||||
show (PType _ name ty) = foo ["PType", name, show ty]
|
||||
show (PFunc _ nm ty src) = foo ["PFunc", nm, show ty, show src]
|
||||
show (PMixFix _ nms prec fix) = foo ["PMixFix", show nms, show prec, show fix]
|
||||
show (Class _ nm _ _) = foo ["Class", "FIXME"]
|
||||
show (Class _ nm tele decls) = foo ["Class", nm, "...", show $ map show decls]
|
||||
show (Instance _ nm decls) = foo ["Instance", show nm, show $ map show decls]
|
||||
|
||||
export covering
|
||||
Show Module where
|
||||
@@ -261,7 +264,8 @@ Pretty Decl where
|
||||
pretty (PType _ nm ty) = text "ptype" <+> text nm <+> (maybe empty (\ty => ":" <+> pretty ty) ty)
|
||||
pretty (PFunc _ nm ty src) = "pfunc" <+> text nm <+> ":" <+> nest 2 (pretty ty <+> ":=" <+/> text (show src))
|
||||
pretty (PMixFix _ names prec fix) = text (show fix) <+> text (show prec) <+> spread (map text names)
|
||||
pretty (Class _ _ _ _) = text "TODO pretty PClass"
|
||||
pretty (Class _ _ _ _) = text "TODO pretty Class"
|
||||
pretty (Instance _ _ _) = text "TODO pretty Instance"
|
||||
|
||||
export
|
||||
Pretty Module where
|
||||
|
||||
Reference in New Issue
Block a user