less prototype, less bad code implementation of CCHM type theory
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  1. {-# LANGUAGE BlockArguments #-}
  2. {-# LANGUAGE LambdaCase #-}
  3. {-# LANGUAGE DeriveAnyClass #-}
  4. {-# LANGUAGE ScopedTypeVariables #-}
  5. {-# LANGUAGE ViewPatterns #-}
  6. {-# LANGUAGE TupleSections #-}
  7. module Elab.Eval where
  8. import Control.Monad.Reader
  9. import Control.Exception
  10. import qualified Data.Map.Strict as Map
  11. import qualified Data.Sequence as Seq
  12. import qualified Data.Set as Set
  13. import qualified Data.Text as T
  14. import Data.Map.Strict (Map)
  15. import Data.Sequence (Seq)
  16. import Data.List (sortOn)
  17. import Data.Traversable
  18. import Data.Set (Set)
  19. import Data.Typeable
  20. import Data.Foldable
  21. import Data.IORef
  22. import Data.Maybe
  23. import Elab.Eval.Formula
  24. import Elab.Monad
  25. import GHC.Stack
  26. import Presyntax.Presyntax (Plicity(..))
  27. import Prettyprinter
  28. import Syntax.Pretty
  29. import Syntax
  30. import System.IO.Unsafe ( unsafePerformIO )
  31. import {-# SOURCE #-} Elab.WiredIn
  32. eval :: HasCallStack => Term -> ElabM Value
  33. eval t = asks (flip eval' t)
  34. -- everywhere force
  35. zonkIO :: Value -> IO Value
  36. zonkIO (VNe hd sp) = do
  37. sp' <- traverse zonkSp sp
  38. case hd of
  39. HMeta (mvCell -> cell) -> do
  40. solved <- liftIO $ readIORef cell
  41. case solved of
  42. Just vl -> zonkIO $ foldl applProj vl sp'
  43. Nothing -> pure $ VNe hd sp'
  44. hd -> pure $ VNe hd sp'
  45. zonkIO (GluedVl h sp vl) = GluedVl h <$> traverse zonkSp sp <*> zonkIO vl
  46. zonkIO (VLam p (Closure s k)) = pure $ VLam p (Closure s (zonk . k))
  47. zonkIO (VPi p d (Closure s k)) = VPi p <$> zonkIO d <*> pure (Closure s (zonk . k))
  48. zonkIO (VSigma d (Closure s k)) = VSigma <$> zonkIO d <*> pure (Closure s (zonk . k))
  49. zonkIO (VPair a b) = VPair <$> zonkIO a <*> zonkIO b
  50. zonkIO (VPath line x y) = VPath <$> zonkIO line <*> zonkIO x <*> zonkIO y
  51. zonkIO (VLine line x y f) = VLine <$> zonkIO line <*> zonkIO x <*> zonkIO y <*> zonkIO f
  52. -- Sorts
  53. zonkIO VType = pure VType
  54. zonkIO VTypeω = pure VTypeω
  55. zonkIO VI = pure VI
  56. zonkIO VI0 = pure VI0
  57. zonkIO VI1 = pure VI1
  58. zonkIO (VIAnd x y) = iand <$> zonkIO x <*> zonkIO y
  59. zonkIO (VIOr x y) = ior <$> zonkIO x <*> zonkIO y
  60. zonkIO (VINot x) = inot <$> zonkIO x
  61. zonkIO (VPartial x y) = VPartial <$> zonkIO x <*> zonkIO y
  62. zonkIO (VPartialP x y) = VPartialP <$> zonkIO x <*> zonkIO y
  63. zonkIO (VSystem fs) = do
  64. t <- for (Map.toList fs) $ \(a, b) -> (,) <$> zonkIO a <*> zonkIO b
  65. pure (mkVSystem (Map.fromList t))
  66. zonkIO (VSub a b c) = VSub <$> zonkIO a <*> zonkIO b <*> zonkIO c
  67. zonkIO (VInc a b c) = VInc <$> zonkIO a <*> zonkIO b <*> zonkIO c
  68. zonkIO (VComp a b c d) = comp <$> zonkIO a <*> zonkIO b <*> zonkIO c <*> zonkIO d
  69. zonkIO (VHComp a b c d) = hComp <$> zonkIO a <*> zonkIO b <*> zonkIO c <*> zonkIO d
  70. zonkIO (VGlueTy a phi ty e) = glueType <$> zonkIO a <*> zonkIO phi <*> zonkIO ty <*> zonkIO e
  71. zonkIO (VGlue a phi ty e t x) = glueElem <$> zonkIO a <*> zonkIO phi <*> zonkIO ty <*> zonkIO e <*> zonkIO t <*> zonkIO x
  72. zonkIO (VUnglue a phi ty e x) = unglue <$> zonkIO a <*> zonkIO phi <*> zonkIO ty <*> zonkIO e <*> zonkIO x
  73. zonkIO (VCase env t x xs) = do
  74. env' <- (\x -> x {getEnv = env}) <$> emptyEnv
  75. let xs' = map (\(a, i, n) -> (a, i, quote (eval' env' n))) xs
  76. evalCase env' . (@@) <$> zonkIO t <*> zonkIO x <*> pure xs'
  77. zonkIO (VEqStrict a x y) = VEqStrict <$> zonkIO a <*> zonkIO x <*> zonkIO y
  78. zonkIO (VReflStrict a x) = VReflStrict <$> zonkIO a <*> zonkIO x
  79. zonkSp :: Projection -> IO Projection
  80. zonkSp (PApp p x) = PApp p <$> zonkIO x
  81. zonkSp (PIElim l x y i) = PIElim <$> zonkIO l <*> zonkIO x <*> zonkIO y <*> zonkIO i
  82. zonkSp (POuc a phi u) = POuc <$> zonkIO a <*> zonkIO phi <*> zonkIO u
  83. zonkSp (PK a x p pr) = PK <$> zonkIO a <*> zonkIO x <*> zonkIO p <*> zonkIO pr
  84. zonkSp (PJ a x p pr y) = PJ <$> zonkIO a <*> zonkIO x <*> zonkIO p <*> zonkIO pr <*> zonkIO y
  85. zonkSp PProj1 = pure PProj1
  86. zonkSp PProj2 = pure PProj2
  87. zonk :: Value -> Value
  88. zonk = unsafePerformIO . zonkIO
  89. eval' :: HasCallStack => ElabEnv -> Term -> Value
  90. eval' env (Ref x) =
  91. case Map.lookup x (getEnv env) of
  92. Just (_, vl) -> vl
  93. _ -> VNe (HVar x) mempty
  94. eval' env (Con x) =
  95. case Map.lookup x (getEnv env) of
  96. Just (ty, _) -> VNe (HCon ty x) mempty
  97. Nothing -> error $ "constructor " ++ show x ++ " has no type in scope"
  98. eval' env (PCon sys x) =
  99. case Map.lookup x (getEnv env) of
  100. Just (ty, _) -> VNe (HPCon (eval' env sys) ty x) mempty
  101. Nothing -> error $ "constructor " ++ show x ++ " has no type in scope"
  102. eval' _ (Data n x) = VNe (HData n x) mempty
  103. eval' env (App p f x) = vApp p (eval' env f) (eval' env x)
  104. eval' env (Lam p s t) =
  105. VLam p $ Closure s $ \a ->
  106. eval' env { getEnv = Map.insert s (error "type of abs", a) (getEnv env) } t
  107. eval' env (Pi p s d t) =
  108. VPi p (eval' env d) $ Closure s $ \a ->
  109. eval' env { getEnv = (Map.insert s (error "type of abs", a) (getEnv env))} t
  110. eval' _ (Meta m) = VNe (HMeta m) mempty
  111. eval' env (Sigma s d t) =
  112. VSigma (eval' env d) $ Closure s $ \a ->
  113. eval' env { getEnv = Map.insert s (error "type of abs", a) (getEnv env) } t
  114. eval' e (Pair a b) = VPair (eval' e a) (eval' e b)
  115. eval' e (Proj1 a) = vProj1 (eval' e a)
  116. eval' e (Proj2 a) = vProj2 (eval' e a)
  117. eval' _ Type = VType
  118. eval' _ Typeω = VTypeω
  119. eval' _ I = VI
  120. eval' _ I0 = VI0
  121. eval' _ I1 = VI1
  122. eval' e (IAnd x y) = iand (eval' e x) (eval' e y)
  123. eval' e (IOr x y) = ior (eval' e x) (eval' e y)
  124. eval' e (INot x) = inot (eval' e x)
  125. eval' e (PathP l a b) = VPath (eval' e l) (eval' e a) (eval' e b)
  126. eval' e (IElim l x y f i) = ielim (eval' e l) (eval' e x) (eval' e y) (eval' e f) (eval' e i)
  127. eval' e (PathIntro p x y f) = VLine (eval' e p) (eval' e x) (eval' e y) (eval' e f)
  128. eval' e (Partial x y) = VPartial (eval' e x) (eval' e y)
  129. eval' e (PartialP x y) = VPartialP (eval' e x) (eval' e y)
  130. eval' e (System fs) = mkVSystem (Map.fromList $ map (\(x, y) -> (eval' e x, eval' e y)) $ Map.toList $ fs)
  131. eval' e (Sub a phi u) = VSub (eval' e a) (eval' e phi) (eval' e u)
  132. eval' e (Inc a phi u) = VInc (eval' e a) (eval' e phi) (eval' e u)
  133. eval' e (Ouc a phi u x) = outS (eval' e a) (eval' e phi) (eval' e u) (eval' e x)
  134. eval' e (Comp a phi u a0) = comp (eval' e a) (eval' e phi) (eval' e u) (eval' e a0)
  135. eval' e (HComp a phi u a0) = hComp (eval' e a) (eval' e phi) (eval' e u) (eval' e a0)
  136. eval' e (GlueTy a phi tys f) = glueType (eval' e a) (eval' e phi) (eval' e tys) (eval' e f)
  137. eval' e (Glue a phi tys eqvs t x) = glueElem (eval' e a) (eval' e phi) (eval' e tys) (eval' e eqvs) (eval' e t) (eval' e x)
  138. eval' e (Unglue a phi tys f x) = unglue (eval' e a) (eval' e phi) (eval' e tys) (eval' e f) (eval' e x)
  139. eval' e (Let ns x) =
  140. let env' = foldl (\newe (n, ty, x) ->
  141. let nft = eval' newe ty
  142. in newe { getEnv = Map.insert n (nft, evalFix' newe n nft x) (getEnv newe) })
  143. e
  144. ns
  145. in eval' env' x
  146. eval' e (Case range sc xs) = evalCase e (eval' e range @@) (force (eval' e sc)) xs
  147. eval' e (EqS a x y) = VEqStrict (eval' e a) (eval' e x) (eval' e y)
  148. eval' e (Syntax.Refl a x) = VReflStrict (eval' e a) (eval' e x)
  149. eval' e (Syntax.AxK a x p pr eq) = strictK (eval' e a) (eval' e x) (eval' e p) (eval' e pr) (eval' e eq)
  150. eval' e (Syntax.AxJ a x p pr y eq) = strictJ (eval' e a) (eval' e x) (eval' e p) (eval' e pr) (eval' e y) (eval' e eq)
  151. evalCase :: ElabEnv -> (Value -> Value) -> Value -> [(Term, Int, Term)] -> Value
  152. evalCase env rng sc [] = VCase (getEnv env) (fun rng) sc []
  153. evalCase env rng (VSystem fs) cases = VSystem (fmap (flip (evalCase env rng) cases) fs)
  154. evalCase env rng (VHComp a phi u a0) cases =
  155. comp (fun \i -> rng (v i)) phi (system \i is1 -> evalCase env rng (u @@ i @@ is1) cases)
  156. (VInc (rng a) phi (evalCase env rng (outS a0 phi (u @@ VI0) a0) cases))
  157. where
  158. v = Elab.WiredIn.fill (fun (const a)) phi u a0
  159. evalCase env _ sc ((Ref _, _, k):_) = eval' env k @@ sc
  160. evalCase env rng (val@(VNe (HCon _ x) sp)) ((Con x', _, k):xs)
  161. | x == x' = foldl applProj (eval' env k) sp
  162. | otherwise = evalCase env rng val xs
  163. evalCase env rng (val@(VNe (HPCon _ _ x) sp)) ((Con x', _, k):xs)
  164. | x == x' = foldl applProj (eval' env k) sp
  165. | otherwise = evalCase env rng val xs
  166. evalCase env rng sc xs = VCase (getEnv env) (fun rng) sc xs
  167. evalFix' :: ElabEnv -> Name -> NFType -> Term -> Value
  168. evalFix' env name nft term = fix $ \val -> eval' env{ getEnv = Map.insert name (nft, val) (getEnv env) } term
  169. evalFix :: Name -> NFType -> Term -> ElabM Value
  170. evalFix name nft term = do
  171. t <- ask
  172. pure (evalFix' t name nft term)
  173. data NotEqual = NotEqual Value Value
  174. deriving (Show, Typeable, Exception)
  175. unify' :: HasCallStack => Value -> Value -> ElabM ()
  176. -- unify' (GluedVl h sp _) (GluedVl h' sp' _)
  177. -- | h == h', length sp == length sp' = traverse_ (uncurry unify'Spine) (Seq.zip sp sp')
  178. unify' topa topb = join $ go <$> forceIO topa <*> forceIO topb where
  179. go (VNe (HMeta mv) sp) rhs = solveMeta mv sp rhs
  180. go rhs (VNe (HMeta mv) sp) = solveMeta mv sp rhs
  181. go (VNe (HPCon s _ _) _) rhs = go (force s) rhs
  182. go lhs (VNe (HPCon s _ _) _) = go lhs (force s)
  183. go (VCase e _ a b) (VCase e' _ a' b') = do
  184. env <- ask
  185. unify' a a'
  186. let go (_, _, a) (_, _, b) = unify' (eval' env{getEnv=e} a) (eval' env{getEnv=e'} b)
  187. zipWithM_ go (sortOn (\(x, _, _) -> x) b) (sortOn (\(x, _, _) -> x) b')
  188. go (VCase e _ _ b) y = do
  189. env <- ask
  190. let
  191. go (_, n, a') = do
  192. ns <- replicateM n (VVar <$> newName)
  193. let a = foldl (vApp Ex) (eval' env{getEnv=e} a') ns
  194. unify' a y
  195. traverse_ go b
  196. go (VNe x a) (VNe x' a')
  197. | x == x', length a == length a' =
  198. traverse_ (uncurry unify'Spine) (Seq.zip a a')
  199. go (VLam p (Closure n k)) vl = do
  200. t <- VVar <$> newName' n
  201. unify' (k t) (vApp p vl t)
  202. go vl (VLam p (Closure n k)) = do
  203. t <- VVar <$> newName' n
  204. unify' (vApp p vl t) (k t)
  205. go (VPair a b) vl = unify' a (vProj1 vl) *> unify' b (vProj2 vl)
  206. go vl (VPair a b) = unify' (vProj1 vl) a *> unify' (vProj2 vl) b
  207. go (VPi p d (Closure _ k)) (VPi p' d' (Closure _ k')) | p == p' = do
  208. t <- VVar <$> newName
  209. unify' d d'
  210. unify' (k t) (k' t)
  211. go (VSigma d (Closure _ k)) (VSigma d' (Closure _ k')) = do
  212. t <- VVar <$> newName
  213. unify' d d'
  214. unify' (k t) (k' t)
  215. go VType VType = pure ()
  216. go VTypeω VTypeω = pure ()
  217. go VI VI = pure ()
  218. go (VPath l x y) (VPath l' x' y') = do
  219. unify' l l'
  220. unify' x x'
  221. unify' y y'
  222. go (VLine l x y p) p' = do
  223. n <- VVar <$> newName
  224. unify' (p @@ n) (ielim l x y p' n)
  225. go p' (VLine l x y p) = do
  226. n <- VVar <$> newName
  227. unify' (ielim l x y p' n) (p @@ n)
  228. go (VPartial phi r) (VPartial phi' r') = unify' phi phi' *> unify' r r'
  229. go (VPartialP phi r) (VPartialP phi' r') = unify' phi phi' *> unify' r r'
  230. go (VSub a phi u) (VSub a' phi' u') = traverse_ (uncurry unify') [(a, a'), (phi, phi'), (u, u')]
  231. go (VInc a phi u) (VInc a' phi' u') = traverse_ (uncurry unify') [(a, a'), (phi, phi'), (u, u')]
  232. go (VComp a phi u a0) (VComp a' phi' u' a0') =
  233. traverse_ (uncurry unify') [(a, a'), (phi, phi'), (u, u'), (a0, a0')]
  234. go (VGlueTy _ (force -> VI1) u _0) rhs = unify' (u @@ VReflStrict VI VI1) rhs
  235. go lhs (VGlueTy _ (force -> VI1) u _0) = unify' lhs (u @@ VReflStrict VI VI1)
  236. go (VGlueTy a phi u a0) (VGlueTy a' phi' u' a0') =
  237. traverse_ (uncurry unify') [(a, a'), (phi, phi'), (u, u'), (a0, a0')]
  238. go (VGlue a phi u a0 t x) (VGlue a' phi' u' a0' t' x') =
  239. traverse_ (uncurry unify') [(a, a'), (phi, phi'), (u, u'), (a0, a0'), (t, t'), (x, x')]
  240. go (VUnglue a phi u a0 x) (VUnglue a' phi' u' a0' x') =
  241. traverse_ (uncurry unify') [(a, a'), (phi, phi'), (u, u'), (a0, a0'), (x, x')]
  242. go (VSystem sys) rhs = goSystem unify' sys rhs
  243. go rhs (VSystem sys) = goSystem (flip unify') sys rhs
  244. go (VEqStrict a x y) (VEqStrict a' x' y') = traverse_ (uncurry unify') [(a, a'), (x, x'), (y, y')]
  245. go (VReflStrict a x) (VReflStrict a' x') = traverse_ (uncurry unify') [(a, a'), (x, x')]
  246. go _ VReflStrict{} = pure ()
  247. go VReflStrict{} _ = pure ()
  248. go x y
  249. | x == y = pure ()
  250. | otherwise =
  251. case (toDnf x, toDnf y) of
  252. (Just xs, Just ys) -> unify'Formula xs ys
  253. _ -> fail
  254. goSystem :: (Value -> Value -> ElabM ()) -> Map.Map Value Value -> Value -> ElabM ()
  255. goSystem k sys rhs = do
  256. let rhs_q = quote rhs
  257. env <- ask
  258. for_ (Map.toList sys) $ \(f, i) -> do
  259. let i_q = quote i
  260. for (truthAssignments f (getEnv env)) $ \e -> do
  261. k (eval' env{getEnv = e} i_q) (eval' env{getEnv = e} rhs_q)
  262. fail = throwElab $ NotEqual topa topb
  263. unify'Formula x y
  264. | compareDNFs x y = pure ()
  265. | otherwise = fail
  266. unify'Spine :: Projection -> Projection -> ElabM ()
  267. unify'Spine (PApp a v) (PApp a' v')
  268. | a == a' = unify' v v'
  269. unify'Spine PProj1 PProj1 = pure ()
  270. unify'Spine PProj2 PProj2 = pure ()
  271. unify'Spine (PIElim _ _ _ i) (PIElim _ _ _ j) = unify' i j
  272. unify'Spine (POuc a phi u) (POuc a' phi' u') =
  273. traverse_ (uncurry unify') [(a, a'), (phi, phi'), (u, u')]
  274. unify'Spine (PK a x p pr) (PK a' x' p' pr') =
  275. traverse_ (uncurry unify') [(a, a'), (x, x'), (p, p'), (pr, pr')]
  276. unify'Spine (PJ a x p pr y) (PJ a' x' p' pr' y') =
  277. traverse_ (uncurry unify') [(a, a'), (x, x'), (p, p'), (pr, pr'), (y, y')]
  278. unify'Spine _ _ = throwElab (NotEqual undefined undefined)
  279. unify :: HasCallStack => Value -> Value -> ElabM ()
  280. unify a b = unify' a b `catchElab` \(_ :: SomeException) -> liftIO $ throwIO (NotEqual a b)
  281. isConvertibleTo :: Value -> Value -> ElabM (Term -> Term)
  282. isConvertibleTo a b = isConvertibleTo (force a) (force b) where
  283. VPi Im d (Closure _v k) `isConvertibleTo` ty = do
  284. meta <- newMeta d
  285. cont <- k meta `isConvertibleTo` ty
  286. pure (\f -> cont (App Im f (quote meta)))
  287. VType `isConvertibleTo` VTypeω = pure id
  288. VPi p d (Closure _ k) `isConvertibleTo` VPi p' d' (Closure _ k') | p == p' = do
  289. wp <- d' `isConvertibleTo` d
  290. n <- newName
  291. wp_n <- eval (Lam Ex n (wp (Ref n)))
  292. wp' <- k (VVar n) `isConvertibleTo` k' (wp_n @@ VVar n)
  293. pure (\f -> Lam p n (wp' (App p f (wp (Ref n)))))
  294. VPath a x y `isConvertibleTo` VPi Ex d (Closure _ k') = do
  295. unify d VI
  296. nm <- newName
  297. wp <- isConvertibleTo (a @@ VVar nm) (k' (VVar nm))
  298. pure (\f -> Lam Ex nm (wp (IElim (quote a) (quote x) (quote y) f (Ref nm))))
  299. isConvertibleTo a b = do
  300. unify' a b
  301. pure id
  302. newMeta :: Value -> ElabM Value
  303. newMeta dom = do
  304. loc <- liftM2 (,) <$> asks currentFile <*> asks currentSpan
  305. n <- newName
  306. c <- liftIO $ newIORef Nothing
  307. let m = MV (getNameText n) c dom (flatten <$> loc)
  308. flatten (x, (y, z)) = (x, y, z)
  309. env <- asks getEnv
  310. t <- for (Map.toList env) $ \(n, _) -> pure $
  311. case n of
  312. Bound{} -> Just (PApp Ex (VVar n))
  313. _ -> Nothing
  314. pure (VNe (HMeta m) (Seq.fromList (catMaybes t)))
  315. newName :: MonadIO m => m Name
  316. newName = liftIO $ do
  317. x <- atomicModifyIORef _nameCounter $ \x -> (x + 1, x + 1)
  318. pure (Bound (T.pack (show x)) x)
  319. newName' :: Name -> ElabM Name
  320. newName' n = do
  321. ~(Bound _ x) <- newName
  322. pure (Bound (getNameText n) x)
  323. _nameCounter :: IORef Int
  324. _nameCounter = unsafePerformIO $ newIORef 0
  325. {-# NOINLINE _nameCounter #-}
  326. solveMeta :: MV -> Seq Projection -> Value -> ElabM ()
  327. solveMeta m@(mvCell -> cell) sp rhs = do
  328. env <- ask
  329. names <- tryElab $ checkSpine Set.empty sp
  330. case names of
  331. Right names -> do
  332. checkScope (Set.fromList names) rhs
  333. `withNote` hsep [prettyTm (quote (VNe (HMeta m) sp)), pretty '≡', prettyTm (quote rhs)]
  334. let tm = quote rhs
  335. lam = eval' env $ foldr (Lam Ex) tm names
  336. liftIO . atomicModifyIORef' cell $ \case
  337. Just _ -> error "filled cell in solvedMeta"
  338. Nothing -> (Just lam, ())
  339. Left (_ :: SpineProjection) -> do
  340. liftIO . atomicModifyIORef' (unsolvedMetas env) $ \x -> (, ()) $
  341. case Map.lookup m x of
  342. Just qs -> Map.insert m ((sp, rhs):qs) x
  343. Nothing -> Map.insert m [(sp, rhs)] x
  344. checkScope :: Set Name -> Value -> ElabM ()
  345. checkScope scope (VNe h sp) =
  346. do
  347. case h of
  348. HVar v@Bound{} ->
  349. unless (v `Set.member` scope) . throwElab $
  350. NotInScope v
  351. HVar{} -> pure ()
  352. HCon{} -> pure ()
  353. HPCon{} -> pure ()
  354. HMeta{} -> pure ()
  355. HData{} -> pure ()
  356. traverse_ checkProj sp
  357. where
  358. checkProj (PApp _ t) = checkScope scope t
  359. checkProj (PIElim l x y i) = traverse_ (checkScope scope) [l, x, y, i]
  360. checkProj (PK l x y i) = traverse_ (checkScope scope) [l, x, y, i]
  361. checkProj (PJ l x y i j) = traverse_ (checkScope scope) [l, x, y, i, j]
  362. checkProj (POuc a phi u) = traverse_ (checkScope scope) [a, phi, u]
  363. checkProj PProj1 = pure ()
  364. checkProj PProj2 = pure ()
  365. checkScope scope (GluedVl _ _p vl) = checkScope scope vl
  366. checkScope scope (VLam _ (Closure n k)) =
  367. checkScope (Set.insert n scope) (k (VVar n))
  368. checkScope scope (VPi _ d (Closure n k)) = do
  369. checkScope scope d
  370. checkScope (Set.insert n scope) (k (VVar n))
  371. checkScope scope (VSigma d (Closure n k)) = do
  372. checkScope scope d
  373. checkScope (Set.insert n scope) (k (VVar n))
  374. checkScope s (VPair a b) = traverse_ (checkScope s) [a, b]
  375. checkScope _ VType = pure ()
  376. checkScope _ VTypeω = pure ()
  377. checkScope _ VI = pure ()
  378. checkScope _ VI0 = pure ()
  379. checkScope _ VI1 = pure ()
  380. checkScope s (VIAnd x y) = traverse_ (checkScope s) [x, y]
  381. checkScope s (VIOr x y) = traverse_ (checkScope s) [x, y]
  382. checkScope s (VINot x) = checkScope s x
  383. checkScope s (VPath line a b) = traverse_ (checkScope s) [line, a, b]
  384. checkScope s (VLine _ _ _ line) = checkScope s line
  385. checkScope s (VPartial x y) = traverse_ (checkScope s) [x, y]
  386. checkScope s (VPartialP x y) = traverse_ (checkScope s) [x, y]
  387. checkScope s (VSystem fs) =
  388. for_ (Map.toList fs) $ \(x, y) -> traverse_ (checkScope s) [x, y]
  389. checkScope s (VSub a b c) = traverse_ (checkScope s) [a, b, c]
  390. checkScope s (VInc a b c) = traverse_ (checkScope s) [a, b, c]
  391. checkScope s (VComp a phi u a0) = traverse_ (checkScope s) [a, phi, u, a0]
  392. checkScope s (VHComp a phi u a0) = traverse_ (checkScope s) [a, phi, u, a0]
  393. checkScope s (VGlueTy a phi ty eq) = traverse_ (checkScope s) [a, phi, ty, eq]
  394. checkScope s (VGlue a phi ty eq inv x) = traverse_ (checkScope s) [a, phi, ty, eq, inv, x]
  395. checkScope s (VUnglue a phi ty eq vl) = traverse_ (checkScope s) [a, phi, ty, eq, vl]
  396. checkScope s (VCase _ _ v _) = checkScope s v
  397. checkScope s (VEqStrict a x y) = traverse_ (checkScope s) [a, x, y]
  398. checkScope s (VReflStrict a x) = traverse_ (checkScope s) [a, x]
  399. checkSpine :: Set Name -> Seq Projection -> ElabM [Name]
  400. checkSpine scope (PApp Ex (VVar n@Bound{}) Seq.:<| xs)
  401. | n `Set.member` scope = throwElab $ NonLinearSpine n
  402. | otherwise = (n:) <$> checkSpine scope xs
  403. checkSpine _ (p Seq.:<| _) = throwElab $ SpineProj p
  404. checkSpine _ Seq.Empty = pure []
  405. newtype NonLinearSpine = NonLinearSpine { getDupeName :: Name }
  406. deriving (Show, Typeable, Exception)
  407. newtype SpineProjection = SpineProj { getSpineProjection :: Projection }
  408. deriving (Show, Typeable, Exception)
  409. substituteIO :: Map.Map Name Value -> Value -> IO Value
  410. substituteIO sub = substituteIO . force where
  411. substituteIO (VNe hd sp) = do
  412. sp' <- traverse (substituteSp sub) sp
  413. case hd of
  414. HMeta (mvCell -> cell) -> do
  415. solved <- liftIO $ readIORef cell
  416. case solved of
  417. Just vl -> substituteIO $ foldl applProj vl sp'
  418. Nothing -> pure $ VNe hd sp'
  419. HVar v ->
  420. case Map.lookup v sub of
  421. Just vl -> substituteIO $ foldl applProj vl sp'
  422. Nothing -> pure $ VNe hd sp'
  423. hd -> pure $ VNe hd sp'
  424. substituteIO (GluedVl h sp vl) = GluedVl h <$> traverse (substituteSp sub) sp <*> substituteIO vl
  425. substituteIO (VLam p (Closure s k)) = pure $ VLam p (Closure s (substitute (Map.delete s sub) . k))
  426. substituteIO (VPi p d (Closure s k)) = VPi p <$> substituteIO d <*> pure (Closure s (substitute (Map.delete s sub) . k))
  427. substituteIO (VSigma d (Closure s k)) = VSigma <$> substituteIO d <*> pure (Closure s (substitute (Map.delete s sub) . k))
  428. substituteIO (VPair a b) = VPair <$> substituteIO a <*> substituteIO b
  429. substituteIO (VPath line x y) = VPath <$> substituteIO line <*> substituteIO x <*> substituteIO y
  430. substituteIO (VLine line x y f) = VLine <$> substituteIO line <*> substituteIO x <*> substituteIO y <*> substituteIO f
  431. -- Sorts
  432. substituteIO VType = pure VType
  433. substituteIO VTypeω = pure VTypeω
  434. substituteIO VI = pure VI
  435. substituteIO VI0 = pure VI0
  436. substituteIO VI1 = pure VI1
  437. substituteIO (VIAnd x y) = iand <$> substituteIO x <*> substituteIO y
  438. substituteIO (VIOr x y) = ior <$> substituteIO x <*> substituteIO y
  439. substituteIO (VINot x) = inot <$> substituteIO x
  440. substituteIO (VPartial x y) = VPartial <$> substituteIO x <*> substituteIO y
  441. substituteIO (VPartialP x y) = VPartialP <$> substituteIO x <*> substituteIO y
  442. substituteIO (VSystem fs) = do
  443. t <- for (Map.toList fs) $ \(a, b) -> (,) <$> substituteIO a <*> substituteIO b
  444. pure (mkVSystem (Map.fromList t))
  445. substituteIO (VSub a b c) = VSub <$> substituteIO a <*> substituteIO b <*> substituteIO c
  446. substituteIO (VInc a b c) = VInc <$> substituteIO a <*> substituteIO b <*> substituteIO c
  447. substituteIO (VComp a b c d) = comp <$> substituteIO a <*> substituteIO b <*> substituteIO c <*> substituteIO d
  448. substituteIO (VHComp a b c d) = hComp <$> substituteIO a <*> substituteIO b <*> substituteIO c <*> substituteIO d
  449. substituteIO (VGlueTy a phi ty e) = glueType <$> substituteIO a <*> substituteIO phi <*> substituteIO ty <*> substituteIO e
  450. substituteIO (VGlue a phi ty e t x) = glueElem <$> substituteIO a <*> substituteIO phi <*> substituteIO ty <*> substituteIO e <*> substituteIO t <*> substituteIO x
  451. substituteIO (VUnglue a phi ty e x) = unglue <$> substituteIO a <*> substituteIO phi <*> substituteIO ty <*> substituteIO e <*> substituteIO x
  452. substituteIO (VCase env t x xs) = VCase env <$> substituteIO t <*> substituteIO x <*> pure xs
  453. substituteIO (VEqStrict a x y) = VEqStrict <$> zonkIO a <*> zonkIO x <*> zonkIO y
  454. substituteIO (VReflStrict a x) = VReflStrict <$> zonkIO a <*> zonkIO x
  455. substitute :: Map Name Value -> Value -> Value
  456. substitute sub = unsafePerformIO . substituteIO sub
  457. substituteSp :: Map Name Value -> Projection -> IO Projection
  458. substituteSp sub (PApp p x) = PApp p <$> substituteIO sub x
  459. substituteSp sub (PIElim l x y i) = PIElim <$> substituteIO sub l <*> substituteIO sub x <*> substituteIO sub y <*> substituteIO sub i
  460. substituteSp sub (PK l x y i) = PK <$> substituteIO sub l <*> substituteIO sub x <*> substituteIO sub y <*> substituteIO sub i
  461. substituteSp sub (PJ l x y i j) = PJ <$> substituteIO sub l <*> substituteIO sub x <*> substituteIO sub y <*> substituteIO sub i <*> substituteIO sub j
  462. substituteSp sub (POuc a phi u) = POuc <$> substituteIO sub a <*> substituteIO sub phi <*> substituteIO sub u
  463. substituteSp _ PProj1 = pure PProj1
  464. substituteSp _ PProj2 = pure PProj2
  465. mkVSystem :: Map.Map Value Value -> Value
  466. mkVSystem vals =
  467. let map' = Map.fromList (Map.toList vals >>= go)
  468. go (x, y) =
  469. case (force x, y) of
  470. (VI0, _) -> []
  471. (VIOr _ _, VSystem y) -> Map.toList y >>= go
  472. (a, b) -> [(a, b)]
  473. in case Map.lookup VI1 map' of
  474. Just x -> x
  475. Nothing -> VSystem map'
  476. forceIO :: MonadIO m => Value -> m Value
  477. forceIO mv@(VNe (HMeta (mvCell -> cell)) args) = do
  478. solved <- liftIO $ readIORef cell
  479. case solved of
  480. Just vl -> forceIO (foldl applProj vl args)
  481. Nothing -> pure mv
  482. forceIO vl@(VSystem fs) =
  483. case Map.lookup VI1 fs of
  484. Just x -> forceIO x
  485. Nothing -> pure vl
  486. forceIO (GluedVl _ _ vl) = forceIO vl
  487. forceIO (VComp line phi u a0) = comp <$> forceIO line <*> forceIO phi <*> pure u <*> pure a0
  488. forceIO (VHComp line phi u a0) = hComp <$> forceIO line <*> forceIO phi <*> pure u <*> pure a0
  489. forceIO (VCase env rng v vs) = do
  490. env' <- liftIO emptyEnv
  491. r <- forceIO rng
  492. evalCase env'{getEnv=env} (r @@) <$> forceIO v <*> pure vs
  493. forceIO x = pure x
  494. force :: Value -> Value
  495. force = unsafePerformIO . forceIO
  496. applProj :: HasCallStack => Value -> Projection -> Value
  497. applProj fun (PApp p arg) = vApp p fun arg
  498. applProj fun (PIElim l x y i) = ielim l x y fun i
  499. applProj fun (POuc a phi u) = outS a phi u fun
  500. applProj fun (PK a x p pr) = strictK a x p pr fun
  501. applProj fun (PJ a x p pr y) = strictJ a x p pr y fun
  502. applProj fun PProj1 = vProj1 fun
  503. applProj fun PProj2 = vProj2 fun
  504. vApp :: HasCallStack => Plicity -> Value -> Value -> Value
  505. vApp _ (VLam _ k) arg = clCont k arg
  506. vApp p (VNe h sp) arg = VNe h (sp Seq.:|> PApp p arg)
  507. vApp p (GluedVl h sp vl) arg = GluedVl h (sp Seq.:|> PApp p arg) (vApp p vl arg)
  508. vApp p (VSystem fs) arg = mkVSystem (fmap (flip (vApp p) arg) fs)
  509. vApp p (VCase env rng sc branches) arg =
  510. VCase env (fun \x -> let VPi _ _ (Closure _ r) = rng @@ x in r arg) sc
  511. (map (projIntoCase (flip (App p) (quote arg))) branches)
  512. vApp _ x _ = error $ "can't apply " ++ show (prettyTm (quote x))
  513. (@@) :: HasCallStack => Value -> Value -> Value
  514. (@@) = vApp Ex
  515. infixl 9 @@
  516. vProj1 :: HasCallStack => Value -> Value
  517. vProj1 (VPair a _) = a
  518. vProj1 (VNe h sp) = VNe h (sp Seq.:|> PProj1)
  519. vProj1 (GluedVl h sp vl) = GluedVl h (sp Seq.:|> PProj1) (vProj1 vl)
  520. vProj1 (VSystem fs) = VSystem (fmap vProj1 fs)
  521. vProj1 (VInc (VSigma a _) b c) = VInc a b (vProj1 c)
  522. vProj1 (VCase env rng sc branches) =
  523. VCase env rng sc (map (projIntoCase Proj1) branches)
  524. vProj1 x = error $ "can't proj1 " ++ show (prettyTm (quote x))
  525. vProj2 :: HasCallStack => Value -> Value
  526. vProj2 (VPair _ b) = b
  527. vProj2 (VNe h sp) = VNe h (sp Seq.:|> PProj2)
  528. vProj2 (GluedVl h sp vl) = GluedVl h (sp Seq.:|> PProj2) (vProj2 vl)
  529. vProj2 (VSystem fs) = VSystem (fmap vProj2 fs)
  530. vProj2 (VInc (VSigma _ (Closure _ r)) b c) = VInc (r (vProj1 c)) b (vProj2 c)
  531. vProj2 (VCase env rng sc branches) =
  532. VCase env rng sc (map (projIntoCase Proj2) branches)
  533. vProj2 x = error $ "can't proj2 " ++ show (prettyTm (quote x))