Merge in mutual recursion handling
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1 changed files with 89 additions and 105 deletions
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@ -6,16 +6,15 @@
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-- | A module for type checking and inference using algorithm W, Hindley-Milner
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-- | A module for type checking and inference using algorithm W, Hindley-Milner
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module TypeChecker.TypeCheckerHm where
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module TypeChecker.TypeCheckerHm where
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import Auxiliary (int, litType, maybeToRightM, tupSequence, unzip4)
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import Auxiliary (int, litType, maybeToRightM, unzip4)
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import Auxiliary qualified as Aux
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import Auxiliary qualified as Aux
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import Control.Monad.Except
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import Control.Monad.Except
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import Control.Monad.Identity (Identity, runIdentity)
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import Control.Monad.Identity (Identity, runIdentity)
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import Control.Monad.Reader
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import Control.Monad.Reader
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import Control.Monad.State
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import Control.Monad.State
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import Data.Bifunctor (first)
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import Data.Coerce (coerce)
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import Data.Coerce (coerce)
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import Data.Function (on)
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import Data.Function (on)
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import Data.List (foldl')
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import Data.List (foldl', intercalate)
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import Data.List.Extra (unsnoc)
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import Data.List.Extra (unsnoc)
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import Data.Map (Map)
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import Data.Map (Map)
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import Data.Map qualified as M
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import Data.Map qualified as M
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@ -40,19 +39,10 @@ typecheck = onLeft msg . run . checkPrg
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checkPrg :: Program -> Infer (T.Program' Type)
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checkPrg :: Program -> Infer (T.Program' Type)
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checkPrg (Program bs) = do
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checkPrg (Program bs) = do
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preRun bs
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preRun bs
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bs <- checkDef bs
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(subs, bs) <- checkDef bs
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sub0 <- solveUndecidable
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ctrace "SUBS" $ unionSubsts subs
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bs <- mapM (mono sub0) bs
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return $ T.Program bs
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return $ T.Program bs
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mono :: Subst -> T.Def' Type -> Infer (T.Def' Type)
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mono s bind@(T.DBind (T.Bind (name, t) args e)) = do
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b <- gets (S.member name . toDecide)
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if b
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then return $ T.DBind $ T.Bind (name, apply s t) (apply s args) (apply s e)
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else return bind
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mono _ (T.DData d) = return $ T.DData d
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preRun :: [Def] -> Infer ()
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preRun :: [Def] -> Infer ()
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preRun [] = return ()
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preRun [] = return ()
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preRun (x : xs) = case x of
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preRun (x : xs) = case x of
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@ -62,7 +52,8 @@ preRun (x : xs) = case x of
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duplicateDecl n s $ Aux.do
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duplicateDecl n s $ Aux.do
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"Multiple signatures of function"
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"Multiple signatures of function"
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quote $ printTree n
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quote $ printTree n
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insertSig (coerce n) (Just t) >> preRun xs
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insertSig (coerce n) t
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preRun xs
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DBind (Bind n _ e) -> do
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DBind (Bind n _ e) -> do
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s <- gets (S.toList . declaredBinds)
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s <- gets (S.toList . declaredBinds)
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duplicateDecl n s $ Aux.do
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duplicateDecl n s $ Aux.do
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@ -70,43 +61,46 @@ preRun (x : xs) = case x of
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quote $ printTree n
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quote $ printTree n
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collect (collectTVars e)
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collect (collectTVars e)
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insertBind $ coerce n
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insertBind $ coerce n
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s <- gets sigs
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sigs <- gets sigs
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case M.lookup (coerce n) s of
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case M.lookup (coerce n) sigs of
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Nothing -> insertSig (coerce n) Nothing >> preRun xs
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Nothing -> do
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fr <- fresh
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insertSig (coerce n) fr
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preRun xs
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Just _ -> preRun xs
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Just _ -> preRun xs
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DData d@(Data t _) -> collect (collectTVars t) >> checkData d >> preRun xs
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DData d@(Data t _) -> collect (collectTVars t) >> checkData d >> preRun xs
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where
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where
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-- Check if function body / signature has been declared already
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-- Check if function body / signature has been declared already
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duplicateDecl :: (Monad m, MonadError Error m) => LIdent -> [T.Ident] -> String -> m ()
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duplicateDecl n env msg = when (coerce n `elem` env) (uncatchableErr msg)
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duplicateDecl n env msg = when (coerce n `elem` env) (uncatchableErr msg)
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checkDef :: [Def] -> Infer [T.Def' Type]
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checkDef :: [Def] -> Infer ([Subst], [T.Def' Type])
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checkDef [] = return []
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checkDef [] = return ([], [])
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checkDef (x : xs) = case x of
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checkDef (x : xs) = case x of
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(DBind b) -> do
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(DBind b) -> do
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b' <- checkBind b
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(sub0, b') <- checkBind b
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xs' <- checkDef xs
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(sub1, xs') <- checkDef xs
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return $ T.DBind b' : xs'
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return (sub1 ++ sub0, T.DBind b' : xs')
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(DData d) -> do
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(DData d) -> do
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xs' <- checkDef xs
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(sub, xs') <- checkDef xs
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return $ T.DData (coerceData d) : xs'
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return (sub, T.DData (coerceData d) : xs')
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(DSig _) -> checkDef xs
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(DSig _) -> checkDef xs
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where
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where
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coerceData (Data t injs) =
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coerceData (Data t injs) =
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T.Data t $ map (\(Inj name typ) -> T.Inj (coerce name) typ) injs
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T.Data t $ map (\(Inj name typ) -> T.Inj (coerce name) typ) injs
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checkBind :: Bind -> Infer (T.Bind' Type)
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checkBind :: Bind -> Infer ([Subst], T.Bind' Type)
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checkBind bind@(Bind name args e) = do
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checkBind bind@(Bind name args e) = do
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setCurrentBind $ coerce name
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let lambda = makeLambda e (reverse (coerce args))
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let lambda = makeLambda e (reverse (coerce args))
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(sub0, (e, lambda_t)) <- inferExp lambda
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(sub0, (e, lambda_t)) <- inferExp lambda
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s <- gets sigs
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s <- gets sigs
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case M.lookup (coerce name) s of
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case M.lookup (coerce name) s of
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Just (Just t') -> do
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Just t' -> do
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sub1 <- bindErr (unify lambda_t (skolemize t')) bind
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sub1 <- bindErr (unify t' lambda_t) bind
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return $ T.Bind (coerce name, apply (sub1 `compose` sub0) t') [] (e, lambda_t)
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ctrace "SUB0" sub0
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_ -> do
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ctrace "SUB1" sub1
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insertSig (coerce name) (Just lambda_t)
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return ([sub1, sub0], T.Bind (coerce name, t') [] (e, lambda_t))
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return (T.Bind (coerce name, lambda_t) [] (e, lambda_t))
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_ -> error "First pass through failed to add function to env"
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checkData :: (MonadState Env m, Monad m, MonadError Error m) => Data -> m ()
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checkData :: (MonadState Env m, Monad m, MonadError Error m) => Data -> m ()
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checkData err@(Data typ injs) = do
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checkData err@(Data typ injs) = do
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@ -174,8 +168,7 @@ returnType a = a
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inferExp :: Exp -> Infer (Subst, T.ExpT' Type)
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inferExp :: Exp -> Infer (Subst, T.ExpT' Type)
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inferExp e = do
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inferExp e = do
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(s, (e', t)) <- algoW e
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(s, (e', t)) <- algoW e
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let subbed = apply s t
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subbed <- apply s t
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modify (\st -> st{undecidedSigs = apply s st.undecidedSigs})
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return (s, (e', subbed))
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return (s, (e', subbed))
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class CollectTVars a where
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class CollectTVars a where
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@ -202,16 +195,9 @@ algoW = \case
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(sub0, (e', t')) <- exprErr (algoW e) err
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(sub0, (e', t')) <- exprErr (algoW e) err
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sub1 <- unify t t'
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sub1 <- unify t t'
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sub2 <- unify t' t
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sub2 <- unify t' t
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unless
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(apply sub1 t == t' && apply sub2 t' == t)
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( uncatchableErr $ Aux.do
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"Annotated type"
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quote $ printTree t
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"does not match inferred type"
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quote $ printTree t'
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)
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let comp = sub2 `compose` sub1 `compose` sub0
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let comp = sub2 `compose` sub1 `compose` sub0
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return (comp, apply comp (e', t))
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et <- apply comp (e', t)
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return (comp, et)
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-- \| ------------------
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-- \| ------------------
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-- \| Γ ⊢ i : Int, ∅
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-- \| Γ ⊢ i : Int, ∅
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@ -228,13 +214,8 @@ algoW = \case
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return (nullSubst, (T.EVar $ coerce i, x))
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return (nullSubst, (T.EVar $ coerce i, x))
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Nothing -> do
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Nothing -> do
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sig <- gets sigs
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sig <- gets sigs
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cb <- gets currentBind
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case M.lookup (coerce i) sig of
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case M.lookup (coerce i) sig of
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Just (Just t) -> return (nullSubst, (T.EVar $ coerce i, t))
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Just t -> return (nullSubst, (T.EVar $ coerce i, t))
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Just Nothing -> do
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fr <- fresh
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modify (\st -> st{toDecide = S.insert cb st.toDecide, undecidedSigs = M.insert (coerce $ concat [[prefix], i, [delim], coerce cb]) fr st.undecidedSigs})
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return (nullSubst, (T.EVar $ coerce i, fr))
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Nothing ->
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Nothing ->
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uncatchableErr $
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uncatchableErr $
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"Unbound variable: "
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"Unbound variable: "
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@ -257,9 +238,10 @@ algoW = \case
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fr <- fresh
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fr <- fresh
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withBinding (coerce name) fr $ do
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withBinding (coerce name) fr $ do
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(s1, (e', t')) <- exprErr (algoW e) err
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(s1, (e', t')) <- exprErr (algoW e) err
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let varType = apply s1 fr
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varType <- apply s1 fr
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let newArr = TFun varType t'
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let newArr = TFun varType t'
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return (s1, apply s1 (T.EAbs (coerce name) (e', t'), newArr))
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eabs <- apply s1 (T.EAbs (coerce name) (e', t'), newArr)
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return (s1, eabs)
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-- \| Γ ⊢ e₀ : τ₀, S₀ S₀Γ ⊢ e₁ : τ₁, S₁
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-- \| Γ ⊢ e₀ : τ₀, S₀ S₀Γ ⊢ e₁ : τ₁, S₁
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-- \| s₂ = mgu(s₁τ₀, Int) s₃ = mgu(s₂τ₁, Int)
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-- \| s₂ = mgu(s₁τ₀, Int) s₃ = mgu(s₂τ₁, Int)
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@ -302,7 +284,7 @@ algoW = \case
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err@(ELet b@(Bind name args e) e1) -> do
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err@(ELet b@(Bind name args e) e1) -> do
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(s1, (_, t0)) <- algoW (makeLambda e (coerce args))
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(s1, (_, t0)) <- algoW (makeLambda e (coerce args))
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bind' <- exprErr (checkBind b) err
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(_, bind') <- exprErr (checkBind b) err
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env <- asks vars
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env <- asks vars
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let t' = generalize (apply s1 env) t0
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let t' = generalize (apply s1 env) t0
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withBinding (coerce name) t' $ do
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withBinding (coerce name) t' $ do
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@ -422,15 +404,15 @@ unify t0 t1 =
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s1 <- unify a c
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s1 <- unify a c
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s2 <- unify (apply s1 b) (apply s1 d)
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s2 <- unify (apply s1 b) (apply s1 d)
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return $ s2 `compose` s1
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return $ s2 `compose` s1
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(TVar (MkTVar a), t@(TData _ _)) -> return $ M.singleton (coerce a) t
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(TVar (MkTVar a), t@(TData _ _)) -> return $ coerce $ M.singleton (coerce a) t
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(t@(TData _ _), TVar (MkTVar b)) -> return $ M.singleton (coerce b) t
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(t@(TData _ _), TVar (MkTVar b)) -> return $ coerce $ M.singleton (coerce b) t
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(TVar (MkTVar a), t) -> occurs (coerce a) t
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(TVar (MkTVar a), t) -> occurs (coerce a) t
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(t, TVar (MkTVar b)) -> occurs (coerce b) t
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(t, TVar (MkTVar b)) -> occurs (coerce b) t
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(TAll _ t, b) -> unify t b
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(TAll _ t, b) -> unify t b
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(a, TAll _ t) -> unify a t
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(a, TAll _ t) -> unify a t
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(TLit a, TLit b) ->
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(TLit a, TLit b) ->
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if a == b
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if a == b
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then return M.empty
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then return nullSubst
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else catchableErr $
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else catchableErr $
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Aux.do
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Aux.do
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"Can not unify"
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"Can not unify"
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@ -452,7 +434,7 @@ unify t0 t1 =
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quote $ printTree t'
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quote $ printTree t'
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(TEVar a, TEVar b) ->
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(TEVar a, TEVar b) ->
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if a == b
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if a == b
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then return M.empty
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then return nullSubst
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else catchableErr $
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else catchableErr $
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Aux.do
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Aux.do
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"Can not unify"
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"Can not unify"
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@ -472,7 +454,7 @@ I.E. { a = a -> b } is an unsolvable constraint since there is no substitution
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where these are equal
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where these are equal
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-}
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-}
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occurs :: T.Ident -> Type -> Infer Subst
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occurs :: T.Ident -> Type -> Infer Subst
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occurs i t@(TVar _) = return (M.singleton i t)
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occurs i t@(TVar _) = return (coerce $ M.singleton i t)
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occurs i t =
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occurs i t =
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if S.member i (free t)
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if S.member i (free t)
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then
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then
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@ -483,7 +465,7 @@ occurs i t =
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"with"
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"with"
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quote $ printTree t
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quote $ printTree t
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)
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)
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else return $ M.singleton i t
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else return $ coerce $ M.singleton i t
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{- | Generalize a type over all free variables in the substitution set
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{- | Generalize a type over all free variables in the substitution set
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Used for let bindings to allow expression that do not type check in
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Used for let bindings to allow expression that do not type check in
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@ -509,7 +491,7 @@ inst :: Type -> Infer Type
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inst = \case
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inst = \case
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TAll (MkTVar bound) t -> do
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TAll (MkTVar bound) t -> do
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fr <- fresh
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fr <- fresh
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let s = M.singleton (coerce bound) fr
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let s = coerce $ M.singleton (coerce bound) fr
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apply s <$> inst t
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apply s <$> inst t
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TFun t1 t2 -> TFun <$> inst t1 <*> inst t2
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TFun t1 t2 -> TFun <$> inst t1 <*> inst t2
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rest -> return rest
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rest -> return rest
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@ -545,7 +527,8 @@ skolemize t = t
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-- | A class for substitutions
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-- | A class for substitutions
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class SubstType t where
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class SubstType t where
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-- | Apply a substitution to t
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-- | Apply a substitution to t
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apply :: Subst -> t -> t
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-- apply :: MonadError e m => Subst -> t -> m t
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apply :: Subst -> t -> Infer t
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class FreeVars t where
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class FreeVars t where
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-- | Get all free variables from t
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-- | Get all free variables from t
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@ -565,32 +548,47 @@ instance FreeVars a => FreeVars [a] where
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free = let f acc x = acc `S.union` free x in foldl' f S.empty
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free = let f acc x = acc `S.union` free x in foldl' f S.empty
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instance SubstType Type where
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instance SubstType Type where
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apply :: Subst -> Type -> Type
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apply sub@(Subst s) t = do
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apply sub t = do
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case t of
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case t of
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TLit a -> TLit a
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TLit a -> return $ TLit a
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TVar (MkTVar a) -> case M.lookup (coerce a) sub of
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TVar (MkTVar a) -> case M.lookup (coerce a) s of
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Nothing -> TVar (MkTVar $ coerce a)
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Nothing -> return $ TVar (MkTVar $ coerce a)
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Just t -> t
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Just t -> return $ t
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TAll (MkTVar i) t -> case M.lookup (coerce i) sub of
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TAll (MkTVar i) t -> case M.lookup (coerce i) s of
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Nothing -> TAll (MkTVar i) (apply sub t)
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Nothing -> TAll (MkTVar i) <$> apply sub t
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Just _ -> apply sub t
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Just _ -> apply sub t
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TFun a b -> TFun (apply sub a) (apply sub b)
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TFun a b -> TFun <$> apply sub a <*> apply sub b
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TData name a -> TData name (apply sub a)
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TData name a -> TData name <$> apply sub a
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TEVar (MkTEVar a) -> case M.lookup (coerce a) sub of
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TEVar (MkTEVar a) -> case M.lookup (coerce a) s of
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Nothing -> TEVar (MkTEVar a)
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Nothing -> return $ TEVar (MkTEVar a)
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Just t -> t
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Just t -> return $ t
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instance FreeVars (Map T.Ident Type) where
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instance FreeVars (Map T.Ident Type) where
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free :: Map T.Ident Type -> Set T.Ident
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free :: Map T.Ident Type -> Set T.Ident
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free = free . M.elems
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free = free . M.elems
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instance SubstType (Map T.Ident Type) where
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instance SubstType (Map T.Ident Type) where
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apply :: Subst -> Map T.Ident Type -> Map T.Ident Type
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apply s = undefined -- M.map (apply s)
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apply = M.map . apply
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instance SubstType (Map T.Ident (Maybe Type)) where
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instance SubstType Subst where
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apply s = M.map (fmap $ apply s)
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apply s@(Subst m1) (Subst m2) = do
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let both = M.keys $ M.intersection m1 m2
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case both of
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[] -> Subst <$> apply s m2
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xs -> do
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sub0 <- apply s m2
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sub1 <- loop xs m1 m2
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apply sub1 (Subst sub0)
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|
where
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||||||
|
loop [] _ _ = return nullSubst
|
||||||
|
loop (x : xs) m1 m2 = do
|
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|
let k1 = m1 M.! x
|
||||||
|
let k2 = m2 M.! x
|
||||||
|
sub <- unify k1 k2
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||||||
|
subs <- loop xs m1 m2
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|
return $ sub `compose` subs
|
||||||
|
|
||||||
|
-- Subst $ M.map (apply s) m2
|
||||||
|
|
||||||
instance SubstType (T.ExpT' Type) where
|
instance SubstType (T.ExpT' Type) where
|
||||||
apply s (e, t) = (apply s e, apply s t)
|
apply s (e, t) = (apply s e, apply s t)
|
||||||
|
|
@ -636,16 +634,19 @@ instance SubstType (T.Id' Type) where
|
||||||
|
|
||||||
-- | Represents the empty substition set
|
-- | Represents the empty substition set
|
||||||
nullSubst :: Subst
|
nullSubst :: Subst
|
||||||
nullSubst = mempty
|
nullSubst = Subst mempty
|
||||||
|
|
||||||
-- | Compose two substitution sets
|
-- | Compose two substitution sets
|
||||||
compose :: Subst -> Subst -> Subst
|
compose :: Subst -> Subst -> Subst
|
||||||
compose m1 m2 = M.map (apply m1) m2 `M.union` m1
|
compose m1 m2 = Subst $ M.map (apply $ coerce m1) (coerce m2) `M.union` coerce m1
|
||||||
|
|
||||||
-- | Compose a list of substitution sets into one
|
-- | Compose a list of substitution sets into one
|
||||||
composeAll :: [Subst] -> Subst
|
composeAll :: [Subst] -> Subst
|
||||||
composeAll = foldl' compose nullSubst
|
composeAll = foldl' compose nullSubst
|
||||||
|
|
||||||
|
unionSubsts :: [Subst] -> Subst
|
||||||
|
unionSubsts = Subst . foldl' M.union M.empty . map coerce
|
||||||
|
|
||||||
{- | Convert a function with arguments to its pointfree version
|
{- | Convert a function with arguments to its pointfree version
|
||||||
> makeLambda (add x y = x + y) = add = \x. \y. x + y
|
> makeLambda (add x y = x + y) = add = \x. \y. x + y
|
||||||
-}
|
-}
|
||||||
|
|
@ -671,7 +672,7 @@ withPattern p ma = case p of
|
||||||
T.PEnum _ -> ma
|
T.PEnum _ -> ma
|
||||||
|
|
||||||
-- | Insert a function signature into the environment
|
-- | Insert a function signature into the environment
|
||||||
insertSig :: T.Ident -> Maybe Type -> Infer ()
|
insertSig :: T.Ident -> Type -> Infer ()
|
||||||
insertSig i t = modify (\st -> st{sigs = M.insert i t (sigs st)})
|
insertSig i t = modify (\st -> st{sigs = M.insert i t (sigs st)})
|
||||||
|
|
||||||
insertBind :: T.Ident -> Infer ()
|
insertBind :: T.Ident -> Infer ()
|
||||||
|
|
@ -691,24 +692,6 @@ with an equivalent name has been declared already
|
||||||
existInj :: (Monad m, MonadState Env m) => T.Ident -> m (Maybe Type)
|
existInj :: (Monad m, MonadState Env m) => T.Ident -> m (Maybe Type)
|
||||||
existInj n = gets (M.lookup n . injections)
|
existInj n = gets (M.lookup n . injections)
|
||||||
|
|
||||||
setCurrentBind :: T.Ident -> Infer ()
|
|
||||||
setCurrentBind i = modify (\st -> st{currentBind = i})
|
|
||||||
|
|
||||||
solveUndecidable :: Infer Subst
|
|
||||||
solveUndecidable = do
|
|
||||||
sigs <- gets sigs
|
|
||||||
undecided <- gets undecidedSigs
|
|
||||||
ys <-
|
|
||||||
maybeToRightM
|
|
||||||
(Error "SIGNATURE MISSING" False)
|
|
||||||
( mapM (tupSequence . first (join . flip M.lookup sigs . getOriginal)) $
|
|
||||||
M.toList undecided
|
|
||||||
)
|
|
||||||
composeAll <$> mapM (uncurry unify) ys
|
|
||||||
|
|
||||||
getOriginal :: T.Ident -> T.Ident
|
|
||||||
getOriginal (T.Ident i) = coerce $ takeWhile (/= delim) $ drop 1 i
|
|
||||||
|
|
||||||
delim :: Char
|
delim :: Char
|
||||||
delim = '_'
|
delim = '_'
|
||||||
prefix :: Char
|
prefix :: Char
|
||||||
|
|
@ -785,7 +768,7 @@ dataErr ma d =
|
||||||
)
|
)
|
||||||
|
|
||||||
initCtx = Ctx mempty
|
initCtx = Ctx mempty
|
||||||
initEnv = Env 0 'a' mempty mempty mempty "" mempty mempty mempty
|
initEnv = Env 0 'a' mempty mempty mempty mempty
|
||||||
|
|
||||||
run :: Infer a -> Either Error a
|
run :: Infer a -> Either Error a
|
||||||
run = run' initEnv initCtx
|
run = run' initEnv initCtx
|
||||||
|
|
@ -804,19 +787,20 @@ newtype Ctx = Ctx {vars :: Map T.Ident Type}
|
||||||
data Env = Env
|
data Env = Env
|
||||||
{ count :: Int
|
{ count :: Int
|
||||||
, nextChar :: Char
|
, nextChar :: Char
|
||||||
, sigs :: Map T.Ident (Maybe Type)
|
, sigs :: Map T.Ident Type
|
||||||
, takenTypeVars :: Set T.Ident
|
, takenTypeVars :: Set T.Ident
|
||||||
, injections :: Map T.Ident Type
|
, injections :: Map T.Ident Type
|
||||||
, currentBind :: T.Ident
|
|
||||||
, undecidedSigs :: Map T.Ident Type
|
|
||||||
, toDecide :: Set T.Ident
|
|
||||||
, declaredBinds :: Set T.Ident
|
, declaredBinds :: Set T.Ident
|
||||||
}
|
}
|
||||||
deriving (Show)
|
deriving (Show)
|
||||||
|
|
||||||
data Error = Error {msg :: String, catchable :: Bool}
|
data Error = Error {msg :: String, catchable :: Bool}
|
||||||
deriving (Show)
|
deriving (Show)
|
||||||
type Subst = Map T.Ident Type
|
|
||||||
|
newtype Subst = Subst (Map T.Ident Type)
|
||||||
|
|
||||||
|
instance Show Subst where
|
||||||
|
show (Subst s) = "[" ++ let xs = (map (\(a, b) -> printTree a ++ " = " ++ printTree b) $ M.toList s) in intercalate " | " xs ++ "]"
|
||||||
|
|
||||||
newtype Infer a = Infer {runInfer :: StateT Env (ReaderT Ctx (ExceptT Error Identity)) a}
|
newtype Infer a = Infer {runInfer :: StateT Env (ReaderT Ctx (ExceptT Error Identity)) a}
|
||||||
deriving (Functor, Applicative, Monad, MonadReader Ctx, MonadError Error, MonadState Env)
|
deriving (Functor, Applicative, Monad, MonadReader Ctx, MonadError Error, MonadState Env)
|
||||||
|
|
|
||||||
Loading…
Add table
Add a link
Reference in a new issue