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65
Interpreter.hs
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65
Interpreter.hs
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module Interpreter (interFile) where
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import qualified Data.Map.Strict as Map
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import Lexer (lexL)
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import Parser (AstNode(..), parse)
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interFile :: FilePath -> IO ()
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interFile path = do
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putStrLn $ "Interpreting " ++ path
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content <- readFile path
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let ls = zip [1..] (lines content)
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mapM_ (uncurry interLine) ls
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interLine :: Int -> String -> IO ()
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interLine lineNum line =
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case lexL lineNum line of
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Left e -> error $ "Lexer error: " ++ e
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Right toks ->
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case parse toks of
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Left e -> error $ "Parser error: " ++ e
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Right ast ->
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case ast of
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Epsilon -> return ()
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_ -> do
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let result = evaluate ast
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putStrLn $ show ast ++ " => " ++ show result
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evaluate :: AstNode -> AstNode
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evaluate ast =
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let ast' = reduce ast Map.empty
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in if ast' == ast then ast else evaluate ast'
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reduce :: AstNode -> Map.Map String AstNode -> AstNode
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reduce (Abstraction p t) env =
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case p of
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Identifier pid ->
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let env' = Map.delete pid env
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in case t of
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Application tl tr
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| tr == p && not (isFree tl p) -> reduce tl env'
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_ -> Abstraction p (reduce t env')
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_ -> error "Invalid abstraction"
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reduce (Application l r) env =
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case l of
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Abstraction p body ->
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case p of
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Identifier pid ->
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let env' = Map.insert pid (reduce r env) env
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in reduce body env'
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_ -> error "Invalid application"
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_ -> Application (reduce l env) (reduce r env)
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reduce (Identifier id_) env =
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case Map.lookup id_ env of
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Just x -> x
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Nothing -> Identifier id_
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reduce Epsilon _ = Epsilon
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isFree :: AstNode -> AstNode -> Bool
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isFree (Abstraction p t) id_ = id_ /= p && isFree t id_
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isFree (Application l r) id_ = isFree l id_ || isFree r id_
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isFree (Identifier s) id_ = Identifier s == id_
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isFree _ _ = False
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115
Lexer.hs
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115
Lexer.hs
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@ -0,0 +1,115 @@
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module Lexer
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( TokenType(..)
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, Token(..)
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, lexL
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) where
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import Data.Char (isAlphaNum)
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data TokenType
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= Lambda
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| Dot
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| Identifier
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| OpenParen
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| CloseParen
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| EOF
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deriving (Show, Eq)
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data Token = Token
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{ tokType :: TokenType
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, tokLine :: Int
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, tokCol :: Int
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, tokLexeme :: String
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} deriving (Show)
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data LexState = LexState
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{ src :: String
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, col :: Int
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, line :: Int
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}
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type LexResult = Either String (Maybe Token, LexState)
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iic :: Char -> Bool
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iic c = isAlphaNum c || c == '_'
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isIgnoreChar :: Char -> Bool
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isIgnoreChar c = c `elem` "() \t"
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peek :: LexState -> Either String Char
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peek st = case drop (col st) (src st) of
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[] -> Left "Out of characters"
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(c:_) -> Right c
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mkToken :: LexState -> TokenType -> Int -> Either String Token
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mkToken st ttype start
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| ttype == EOF =
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Right $ Token ttype (line st) start (drop start (take (col st) (src st)))
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| start < length (src st) && col st > 0 && col st - 1 < length (src st) =
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Right $ Token ttype (line st) start (drop start (take (col st) (src st)))
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| otherwise =
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Left $ "Failed to resolve " ++ show ttype ++
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". Line " ++ show (line st) ++ ", " ++ show start ++ ":" ++ show (col st)
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advance :: LexState -> LexState
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advance st = st { col = col st + 1 }
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isEol :: LexState -> Bool
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isEol st = col st >= length (src st)
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lexC :: LexState -> LexResult
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lexC st
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| isEol st = Right (Nothing, st)
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| otherwise = lexC (advance st)
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lexIdent :: LexState -> LexResult
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lexIdent st =
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let start = col st
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st' = scanIdent st
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in case mkToken st' Identifier start of
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Left e -> Left e
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Right t -> Right (Just t, st')
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where
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scanIdent s
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| isEol s = s
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| otherwise = case peek s of
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Right c | iic c -> scanIdent (advance s)
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_ -> s
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lexS :: LexState -> TokenType -> LexResult
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lexS st ttype =
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let st' = advance st
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in case mkToken st' ttype (col st) of
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Left e -> Left e
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Right t -> Right (Just t, st')
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lexToken :: LexState -> LexResult
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lexToken st = case peek st of
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Left e -> Left e
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Right c -> case c of
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'λ' -> lexS st Lambda
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'\\' -> lexS st Lambda
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'.' -> lexS st Dot
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'(' -> lexS st OpenParen
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')' -> lexS st CloseParen
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'#' -> lexC st
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_ | iic c -> lexIdent st
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_ | isIgnoreChar c -> Right (Nothing, advance st)
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_ -> Left $ "Bad character. Line " ++ show (line st) ++
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", column " ++ show (col st)
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lexAll :: LexState -> Either String ([Token], LexState)
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lexAll st
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| isEol st = Right ([], st)
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| otherwise = case lexToken st of
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Left e -> Left e
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Right (mt, st') -> case lexAll st' of
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Left e -> Left e
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Right (ts, st'') -> Right (maybe ts (:ts) mt, st'')
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lexL :: Int -> String -> Either String [Token]
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lexL lineNum input = do
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let st = LexState { src = input, col = 0, line = lineNum }
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(tokens, st') <- lexAll st
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let eofTok = Token EOF (line st') (col st') ""
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return (tokens ++ [eofTok])
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11
Main.hs
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11
Main.hs
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@ -0,0 +1,11 @@
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module Main where
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import System.Environment (getArgs)
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import Interpreter (interFile)
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main :: IO ()
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main = do
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args <- getArgs
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case args of
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[path] -> interFile path
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_ -> putStrLn "Usage: lambda-calc <file_path>"
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138
Parser.hs
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138
Parser.hs
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@ -0,0 +1,138 @@
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module Parser
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( AstNode(..)
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, parse
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) where
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import qualified Data.Map.Strict as Map
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import Lexer (Token(..), TokenType)
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import qualified Lexer as L
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-- AST
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data AstNode
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= Abstraction { parameter :: AstNode, term :: AstNode }
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| Application { lhs :: AstNode, rhs :: AstNode }
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| Identifier String
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| Epsilon
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deriving (Eq)
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instance Show AstNode where
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show (Application l r) = "(" ++ show l ++ " " ++ show r ++ ")"
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show (Abstraction p t) = "λ" ++ show p ++ "." ++ show t
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show (Identifier s) = s
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show Epsilon = "ε"
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reduce :: AstNode -> Map.Map String AstNode -> AstNode
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reduce (Abstraction p t) env =
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case p of
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Identifier pid ->
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let env' = Map.delete pid env
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in case t of
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Application tl tr
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| tr == p && not (isFree tl p) -> reduce tl env'
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_ -> Abstraction p (reduce t env')
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_ -> error "Invalid abstraction"
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reduce (Application l r) env =
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case l of
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Abstraction p body ->
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case p of
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Identifier pid ->
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let env' = Map.insert pid (reduce r env) env
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in reduce body env'
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_ -> error "Invalid application"
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_ -> Application (reduce l env) (reduce r env)
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reduce (Identifier id_) env =
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case Map.lookup id_ env of
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Just x -> x
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Nothing -> Identifier id_
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reduce Epsilon _ = Epsilon
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isFree :: AstNode -> AstNode -> Bool
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isFree (Abstraction p t) id_ = id_ /= p && isFree t id_
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isFree (Application l r) id_ = isFree l id_ || isFree r id_
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isFree (Identifier s) id_ = Identifier s == id_
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isFree _ _ = False
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-- Parser state
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data ParseState = ParseState
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{ tokens :: [Token]
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, idx :: Int
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}
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type ParseResult = Either String AstNode
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peekTok :: ParseState -> Either String Token
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peekTok ps = case drop (idx ps) (tokens ps) of
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[] -> Left "Out of tokens"
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(t:_) -> Right t
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advanceP :: ParseState -> ParseState
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advanceP ps = ps { idx = idx ps + 1 }
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consume :: ParseState -> TokenType -> Either String (Token, ParseState)
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consume ps expected = do
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t <- peekTok ps
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if tokType t /= expected
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then Left $ "Unexpected token. Expected " ++ show expected ++
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", but found " ++ show (tokType t)
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else Right (t, advanceP ps)
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parseIdentifier :: ParseState -> Either String (AstNode, ParseState)
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parseIdentifier ps = do
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(t, ps') <- consume ps L.Identifier
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return (Identifier (tokLexeme t), ps')
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parseAbstraction :: ParseState -> Either String (AstNode, ParseState)
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parseAbstraction ps = do
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(_, ps1) <- consume ps L.Lambda
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(ident, ps2) <- parseIdentifier ps1
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(_, ps3) <- consume ps2 L.Dot
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(t, ps4) <- parseTerm ps3
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return (Abstraction ident t, ps4)
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parseAtom :: ParseState -> Maybe (Either String (AstNode, ParseState))
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parseAtom ps = case peekTok ps of
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Left e -> Just (Left ("Error parsing atom. " ++ e))
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Right t -> case tokType t of
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L.Identifier -> Just (parseIdentifier ps)
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L.OpenParen -> Just (pGT ps)
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_ -> Nothing
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pA :: ParseState -> Either String (AstNode, ParseState)
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pA ps = do
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(l0, ps') <- parseAtomOrFail ps
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go l0 ps'
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where
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parseAtomOrFail s = case parseAtom s of
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Just r -> r
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Nothing -> Left "Expected atom"
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go lhs_ ps_ = case parseAtom ps_ of
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Nothing -> Right (lhs_, ps_)
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Just (Left e) -> Left e
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Just (Right (r, ps_')) -> go (Application lhs_ r) ps_'
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pGT :: ParseState -> Either String (AstNode, ParseState)
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pGT ps = do
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(_, ps1) <- consume ps L.OpenParen
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(t, ps2) <- parseTerm ps1
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(_, ps3) <- consume ps2 L.CloseParen
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return (t, ps3)
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Epsilon :: ParseState -> Either String (AstNode, ParseState)
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Epsilon ps = Right (Epsilon, advanceP ps)
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parseTerm :: ParseState -> Either String (AstNode, ParseState)
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parseTerm ps = do
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t <- peekTok ps
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case tokType t of
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L.EOF -> Epsilon ps
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L.CloseParen -> Epsilon ps
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L.Lambda -> parseAbstraction ps
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_ -> pA ps
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parse :: [Token] -> Either String AstNode
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parse toks = do
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(ast, _) <- parseTerm (ParseState toks 0)
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return ast
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