31 Commits
Author SHA1 Message Date
msyds 2fdc1382ae idk
build / build (push) Successful in 1m36s
2026-09-24 16:08:43 -06:00
msyds f143df400a prim syntax → builtin 2026-09-21 05:01:20 -06:00
msyds 94ab42007a prim → builtin 2026-09-21 04:58:27 -06:00
msyds 5a030b66b7 2026-09-21 04:42:29 -06:00
msyds b136737a49 2026-09-16 00:32:22 -06:00
msyds 9ab371ba01 expand kinda 2026-09-16 00:08:49 -06:00
msyds daf21ce3f5 works kinda 2026-09-15 02:21:00 -06:00
msyds fc931ca77c 2026-09-15 01:39:23 -06:00
msyds 4a6a15ae39 2026-09-14 21:51:06 -06:00
msyds a16a4a764f 2026-09-11 17:51:24 -06:00
msyds 8aee7c9a58 2026-09-11 16:53:07 -06:00
msyds 1a93f168a9 2026-09-11 16:32:15 -06:00
msyds 309f722712 cleanup options
build / build (push) Successful in 1m14s
2026-09-06 22:15:37 -06:00
msyds 31cc2b1720 cleanup
build / build (push) Successful in 26s
2026-09-06 22:10:43 -06:00
msyds 3cdae9eab4 disable broken tests
build / build (push) Successful in 1m33s
2026-09-06 21:51:39 -06:00
msyds c6036ffbb4 parse/print libraries 2026-09-06 21:39:52 -06:00
msyds 6ebe92e7cd tests 2026-09-06 00:00:30 -06:00
msyds 0f9ba3c51e eval call/cc }:) 2026-09-05 23:58:37 -06:00
msyds 10bd6b733a eval cons 2026-09-05 23:00:44 -06:00
msyds d1588bd917 fix runtime parsing lol
build / build (push) Failing after 1m35s
2026-09-05 20:22:07 -06:00
msyds c495fc064a arith prims 2026-09-05 20:22:07 -06:00
msyds ac39175767 eval agian 2026-09-05 20:22:07 -06:00
msyds 31c610db34 superfuck 2026-09-05 20:22:07 -06:00
msyds 1ec3d35282 arith 2026-09-05 20:22:07 -06:00
msyds 9f37d10e4f ughhh evaluate cps 2026-09-05 20:22:07 -06:00
msyds ba5dc401d9 okay it's time for a hard reset and some thinking </3 2026-09-05 20:22:07 -06:00
msyds bc599df65f shared closures maybe 2026-09-05 20:22:07 -06:00
msyds f26ac50d4e hoist 2026-09-05 20:22:07 -06:00
msyds 3196d8db84 kexp 2026-09-05 20:22:07 -06:00
msyds 75e6c963c7 stupid 2026-09-05 20:22:07 -06:00
msyds 25f1f008bd wip: call/cc = capture/cc × invoke/cc 2026-09-05 20:22:06 -06:00
39 changed files with 2201 additions and 1500 deletions
+3
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@@ -9,6 +9,9 @@
. (progn (defun apply-cabal-fmt-h () . (progn (defun apply-cabal-fmt-h ()
(haskell-mode-buffer-apply-command "cabal-fmt")) (haskell-mode-buffer-apply-command "cabal-fmt"))
(add-hook 'before-save-hook #'apply-cabal-fmt-h nil t))))) (add-hook 'before-save-hook #'apply-cabal-fmt-h nil t)))))
(scheme-mode
. ((eval . (dolist (s '(kappa κ prim))
(put s 'scheme-indent-function 1)))))
(nil (nil
. ((eval . ((eval
. (progn (defun display-ansi () . (progn (defun display-ansi ()
+31
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@@ -132,3 +132,34 @@ multiple ~env-ref~ calls could probably be replaced with a primitive that loads
$code) $code)
1)))) 1))))
#+end_src #+end_src
** example
#+begin_src scheme
(λ (n m ktail)
(letrec ((f (λ (x ktail-0) (+ x n ktail-0)))
(g (λ (y ktail-1) (+ y g ktail-1))))
(prim (cons f g) ktail)))
#+end_src
#+begin_src scheme
(λ (n m ktail)
(letrec ((f-code (λ (x ktail-0)
(prim (env-get 2)
(κ (n)
(+ x n ktail-0)))))
(g-code (λ (y ktail-1)
(prim (env-get 3)
(κ (m)
(+ y m ktail-1))))))
(letrec ((with-closure-code
(κ (f g)
(prim (get-env 0)
(κ (ktail)
(prim cons f g ktail))))))
(prim (make-shared-closure (with-closure-code)
ktail)
(κ (with-closure)
(prim (make-shared-closure (f-code g-code) n m)
with-closure))))))
#+end_src
+9
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@@ -0,0 +1,9 @@
#+title: on libraries
R⁷RS leaves it unspecified how exactly libraries correspond to files:
#+begin_quote
Programs and libraries are typically stored in files, although in some implementations they can be entered interactively into a running Scheme system. Other paradigms are possible. Implementations which store libraries in files should document the mapping from the name of a library to its location in the file system.
#+end_quote
thus the implementation of ~define-library~ is open to much interpretation. we could possibly define libraries as first-class objects, or deal with them statically. the former case is appealing to me, as it could massively simplify interactive use.
+1 -1
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@@ -55,7 +55,7 @@
nodejs nodejs
wasm-tools wasm-tools
wac-cli wac-cli
guile gauche
rust-analyzer rust-analyzer
wasmtime wasmtime
# bashInteractive is necessary to work around an # bashInteractive is necessary to work around an
+2
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@@ -0,0 +1,2 @@
ret > ExitSuccess
out > (456 . 123)
+2
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@@ -0,0 +1,2 @@
(let ((p (cons 123 456)))
(cons (cdr p) (car p)))
+2
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@@ -0,0 +1,2 @@
ret > ExitSuccess
out > 123
+1
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@@ -0,0 +1 @@
123
+2
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@@ -0,0 +1,2 @@
ret > ExitSuccess
out > (0 . (1 . (4 . (9 . (16 . ())))))
+7
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@@ -0,0 +1,7 @@
(letrec ((my-map (λ (f l)
(if (pair? l)
(cons (f (car l))
(my-map f (cdr l)))
(list)))))
(my-map (λ (x) (* x x))
(list 0 1 2 3 4)))
+11 -10
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@@ -60,15 +60,17 @@ library
Gyehoek.CPS.Close Gyehoek.CPS.Close
Gyehoek.CPS.Convert Gyehoek.CPS.Convert
Gyehoek.CPS.Eval Gyehoek.CPS.Eval
Gyehoek.CPS.Stackify Gyehoek.CPS.Hoist
Gyehoek.CPS.Syntax Gyehoek.CPS.Syntax
Gyehoek.Driver Gyehoek.Driver
Gyehoek.Language
Gyehoek.GenSym Gyehoek.GenSym
Gyehoek.Jalmot Gyehoek.Jalmot
Gyehoek.Language
Gyehoek.Lift1 Gyehoek.Lift1
Gyehoek.Options Gyehoek.Options
Gyehoek.Prelude Gyehoek.Prelude
Gyehoek.Scheme.Expand
Gyehoek.Scheme.Expand.Old
Gyehoek.Scheme.Syntax Gyehoek.Scheme.Syntax
Gyehoek.Sexp Gyehoek.Sexp
Gyehoek.Sexp.Grammar Gyehoek.Sexp.Grammar
@@ -77,9 +79,6 @@ library
Gyehoek.Sexp.QQ Gyehoek.Sexp.QQ
Gyehoek.Sexp.Read Gyehoek.Sexp.Read
Gyehoek.Sexp.Syntax Gyehoek.Sexp.Syntax
Gyehoek.Stack.Lower
Gyehoek.Stack.Syntax
Gyehoek.Stack.VM
Gyehoek.Wasm Gyehoek.Wasm
build-depends: build-depends:
@@ -100,6 +99,7 @@ library
, hashable , hashable
, invertible-grammar , invertible-grammar
, lens , lens
, lucid
, megaparsec , megaparsec
, mtl , mtl
, optparse-applicative , optparse-applicative
@@ -107,18 +107,21 @@ library
, pretty-simple , pretty-simple
, prettyprinter , prettyprinter
, prettyprinter-ansi-terminal , prettyprinter-ansi-terminal
, prettyprinter-lucid
, process , process
, recursion-schemes , recursion-schemes
, scientific , scientific
, string-interpolate , string-interpolate
, tardis
, template-haskell , template-haskell
, text , text
, text-short , text-short
, typed-process , typed-process
, unordered-containers , unordered-containers
, vector , vector
, lucid , witherable
, prettyprinter-lucid , semialign
, these
hs-source-dirs: src hs-source-dirs: src
default-language: GHC2024 default-language: GHC2024
@@ -133,14 +136,11 @@ test-suite test
-- cabal-fmt: expand test -Main -- cabal-fmt: expand test -Main
other-modules: other-modules:
Gyehoek.Test.CPS.Eval Gyehoek.Test.CPS.Eval
Gyehoek.Test.CPS.Stackify
Gyehoek.Test.CPS.Syntax Gyehoek.Test.CPS.Syntax
Gyehoek.Test.Golden
Gyehoek.Test.Scheme.Syntax Gyehoek.Test.Scheme.Syntax
Gyehoek.Test.Sexp.Print Gyehoek.Test.Sexp.Print
Gyehoek.Test.Sexp.QQ Gyehoek.Test.Sexp.QQ
Gyehoek.Test.Sexp.Read Gyehoek.Test.Sexp.Read
Gyehoek.Test.Stack.VM
Gyehoek.TestUtil Gyehoek.TestUtil
Root Root
@@ -171,6 +171,7 @@ test-suite doctest
build-depends: build-depends:
, base , base
, gyehoek , gyehoek
default-extensions: CPP default-extensions: CPP
main-is: doctest.hs main-is: doctest.hs
+11
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@@ -0,0 +1,11 @@
(define-syntax if-not
(syntax-rules ()
((_ c t f) (if (not c) t f))
((_ c t) (if (not c) t))))
(write (macroexpand-1 '(if-not #t 123 456)))
(define (main)
(let loop ((datum (read)))
(unless (eof-object? datum)
())))
+37 -20
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@@ -7,32 +7,49 @@ import Gyehoek.CPS.Syntax
import Data.List (nub) import Data.List (nub)
import Gyehoek.GenSym import Gyehoek.GenSym
import Gyehoek.Prelude import Gyehoek.Prelude
import Debug.Pretty.Simple
import Gyehoek.Sexp qualified as S
import Data.HashSet.Lens
import Data.Traversable
close :: GenSym :> es => Exp -> Eff es Exp genCodeName :: GenSym :> es => Name -> Eff es Name
close = transformM \case genCodeName f = gensym' @Name $ f ^. _Wrapped' . to (<> "-code")
ExpLetRec [(f, AbsLambda lam@(MkLambda bs kb m))] e -> do
f_code <- gensym' @Name $ f ^. _Wrapped' . to (<> "-code") bindEnv :: List Name -> Exp -> Exp
-- it would probably be most sane to generate a symbol for `env`, bindEnv frees m = [cps|
-- but we're reusing the lambda binding so we don't have to (builtin (get-env) (κ #{frees} #{m}))
-- explicitly substitute recursive calls. |]
let frees = nub $ free' lam
let m' = ifoldr close1 :: forall es. GenSym :> es => Exp -> Eff es Exp
(\n x q -> close1 = \case
let p = if x == f then PrimEnv @Val else PrimEnvRef n lr@(ExpLetRec bs e) -> do
in [cps| let boundNames = bs ^.. each . _1
(prim #{p} let boundNames' = setOf each boundNames
(κ (#{x}) #{q})) let frees = bs
|]) & foldMapOf
m frees (each . _2)
(freeWithBound' boundNames')
& nub
env_cont_l <- gensym' @Name "env-cont"
e_l <- gensym' @Name "letrec-body-cont"
bs' <- for bs \(f,ab) -> do
f_code_l <- genCodeName f
pure ( f_code_l
, ab & absBody %~ bindEnv (boundNames ++ frees)
)
let codes = bs' ^.. each . _1 . to MkLabel
pure [cps| pure [cps|
(letrec ((#{f_code} (λ (##{bs} #{kb}) (letrec #{bs'}
#{m'}))) (builtin (make-shared-closure #{codes} #{frees})
(prim (make-closure #{f_code} ##{frees}) (κ #{boundNames}
(κ (#{f}) #{e}))) #{e})))
|] |]
e -> pure e e -> pure e
close :: forall es. GenSym :> es => Exp -> Eff es Exp
close = transformM close1
closeProgram :: GenSym :> es => Program -> Eff es Program closeProgram :: GenSym :> es => Program -> Eff es Program
closeProgram = traverseOf (#body . #body) close closeProgram = traverseOf (#body . #body) close
+19 -27
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@@ -46,29 +46,13 @@ convert (Scm.ExpLit l) k = k . one . ValImm $ case l of
LitBool b -> ImmBool b LitBool b -> ImmBool b
_ -> _ _ -> _
-- special case: call/cc is desugared during cps-conversion... convert (Scm.ExpBuiltin p) k =
-- convert (Scm.ExpPrim (PrimCallCC withcc)) k = do
-- convert1 withcc \withcc' -> do
-- cc_l <- gensym' @Name "cc"
-- r1_l <- gensym' @Name "r"
-- r2_l <- gensym' @Name "r"
-- ccish_l <- gensym' @Name "ccish"
-- reified_cc_l <- gensym' @Name "reified-cc"
-- m <- k [ValVar r1_l]
-- pure [cps|
-- (letrec ((#{cc_l} (κ (#{r1_l})
-- #{m})))
-- (prim (capture/cc)
-- (κ (#{reified_cc_l})
-- (#{withcc'} #{reified_cc_l} #{cc_l}))))
-- |]
-- ...while all other prims are left as-is for later stages to
-- handle..
convert (Scm.ExpPrim p) k =
telescope (convert1 @es) p \p' -> do telescope (convert1 @es) p \p' -> do
r <- gensym' "r" r_l <- gensym' "r"
ExpPrim p' . MkKappa [r] <$> k [ValVar r] m <- k [ValVar r_l]
pure [cps|
(builtin #{p'} (κ (#{r_l}) #{m}))
|]
convert (Scm.ExpLambda xs e) k = do convert (Scm.ExpLambda xs e) k = do
f <- gensym' "lambda-body" f <- gensym' "lambda-body"
@@ -81,17 +65,25 @@ convert (Scm.ExpLambda xs e) k = do
convert (Scm.ExpApply f xs) k = convert (Scm.ExpApply f xs) k =
telescope (convert1 @es) (f:|xs) \(f':|xs') -> do telescope (convert1 @es) (f:|xs) \(f':|xs') -> do
r <- gensym' "r" r <- gensym' @Name "r"
x <- gensym' "x" x <- gensym' "x"
m <- k [ValVar x] m <- k [ValVar x]
pure $ ExpLetRec [(r, AbsKappa' [x] m)] $ pure $ ExpLetRec [(r, AbsKappa' [x] m)] $
ExpApply f' xs' r ExpApply f' xs' (KexpVar r)
convert (Scm.ExpBegin xs) k = telescope (convert @es) xs (k . NE.last) convert (Scm.ExpBegin xs) k = telescope (convert @es) xs (k . NE.last)
convert (Scm.ExpIf c t f) k = convert (Scm.ExpIf c t (Just f)) k =
convert1 c \c' -> convert1 c \c' -> do
ExpIf c' <$> convert t k <*> convert f k t_l <- gensym' @Name "truthy-cont"
f_l <- gensym' @Name "falsey-cont"
t' <- convert t k
f' <- convert f k
pure [cps|
(letrec ((#{t_l} (κ () #{t'}))
(#{f_l} (κ () #{f'})))
(if #{c'} #{t_l} #{f_l}))
|]
-- let-bindings are desugared into continuation calls whose parameters -- let-bindings are desugared into continuation calls whose parameters
-- are the left-hand sides and whose arguments are the right-hand -- are the left-hand sides and whose arguments are the right-hand
+282 -78
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@@ -1,99 +1,303 @@
{-# LANGUAGE ViewPatterns #-} {-# LANGUAGE ViewPatterns #-}
{-# LANGUAGE DeriveAnyClass #-}
{-# LANGUAGE TypeFamilies #-}
{-# LANGUAGE OverloadedLists #-}
module Gyehoek.CPS.Eval module Gyehoek.CPS.Eval
( evalProgram ( evalProgram
, module Gyehoek.CPS.Syntax , module Gyehoek.CPS.Syntax
, evalExp , evalExp
, eGrammar
) where ) where
import Gyehoek.CPS.Syntax import Gyehoek.CPS.Syntax hiding (Hob(..), Obj(..), cont)
import Control.Lens import Gyehoek.Sexp qualified as S
import Data.Maybe (fromMaybe) import Control.Lens hiding (assign)
import Data.Maybe (fromMaybe, isJust)
import Text.Show.Functions () import Text.Show.Functions ()
import qualified Data.HashMap.Strict as H import qualified Data.HashMap.Strict as H
import Gyehoek.Prelude import Gyehoek.Prelude hiding (assign)
import Debug.Pretty.Simple import Debug.Pretty.Simple
import Gyehoek.Jalmot
import Control.Monad.Cont
import Gyehoek.Sexp qualified as S
import GHC.Generics (Generically(..))
import Gyehoek.Sexp ((:-)(..))
import Data.List (nub, mapAccumR, compareLength)
import Data.HashSet.Lens (setOf)
import Data.IntMap.Strict (IntMap)
import Data.IntMap.Strict qualified as IM
import Data.Monoid
import Control.Monad.State
import Data.Traversable (for)
import Data.Foldable (traverse_, foldrM)
data Env = MkEnv newtype Loc = MkLoc { getLoc :: Int }
{ vars :: HashMap Name Obj deriving stock (Generic, Data)
, labels :: HashMap Name (Env, Abs) deriving newtype (Show, Eq, Ord, Enum)
data Store = MkStore
{ nextLoc :: Loc
, heap :: IntMap E
} }
deriving (Show, Generic) deriving stock (Show, Generic)
eval :: Env -> Exp -> List Obj type instance Index Store = Loc
type instance IxValue Store = E
eval g (Halt xs) = evalVal g <$> xs instance Ixed Store where ix (MkLoc j) = #heap . ix j
instance At Store where at (MkLoc j) = #heap . at j
eval g (ExpContinue k xs) = emptyStore :: Store
case g ^. #labels . at k' of emptyStore = MkStore
Just (h, AbsKappa' bs m) -> eval h' m { nextLoc = MkLoc 0
where , heap = mempty
h' = h & #vars <>~ envOfBinds bs (evalVal g <$> xs) }
_ -> error [i|not a kappa: #{k}|]
where
k' = case evalVal g k of
ObjImm (ImmLabel x) -> x
x -> error [i|expected label, got #{x}|]
eval g (ExpApply f xs ktail) = newtype Env = MkEnv { getEnv :: HashMap Name Loc }
case g ^?! #labels . at f' of deriving stock (Show, Generic, Data)
Just (h,AbsLambda' bs kb m) -> eval h' m deriving newtype (Semigroup, Monoid)
where h' = h & #vars <>~ envOfBinds bs (evalVal g <$> xs)
& #labels . at kb .~ (g ^. #labels . at ktail)
Nothing -> error [i|undefined label: #{f}|]
where
f' = case evalVal g f of
ObjImm (ImmLabel x) -> x
x -> error [i|expected label, got #{x}|]
eval g (ExpLetRec [(b, ab)] e) = eval g' e
where g' = g & #labels . at b ?~ ab
eval g (ExpPrim p (MkKappa bs e)) = case evalVal g <$> p of
PrimAdd x y -> arithBinop (+) x y
PrimMul x y -> arithBinop (*) x y
PrimSub x y -> arithBinop (-) x y
PrimDiv x y -> arithBinop div x y
PrimMakeClosure x env -> ret [ObjHob (HobClosure lbl env) ]
where
lbl = case x of
ObjImm (ImmLabel l) -> l
_ -> error [i|expected label, got #{x}|]
_ -> error [i|unhandled prim: #{p}|]
where
ret rs = eval
(g & #vars <>~ envOfBinds bs rs)
e
arithBinop f (ObjImm (ImmInt x)) (ObjImm (ImmInt y)) =
ret [ObjImm . ImmInt $ f x y]
arithBinop _ x y = error [i|bad arith: #{x}, #{y}|]
eval _ e = error [i|unimplemented case: #{e}|]
envOfBinds bs xs = foldMap (uncurry H.singleton) (zip bs xs)
evalVal :: Env -> Val -> Obj
evalVal g = \case
ValVar x -> fromMaybe (error [i|unbound: #{x}|]) $ g ^?! #vars . at x
ValImm x -> ObjImm x
emptyEnv :: Env emptyEnv :: Env
emptyEnv = MkEnv emptyEnv = mempty
{ vars = mempty
-- a kinda silly hack to make sure `halt` is handled correctly when
-- it appears as the tail continuation of an application. the
-- special case of `eval` responsible for `halt` only covers terms
-- of the form `(continue $halt xs …)`; other terms such as
-- `($some-fn xs $halt)` just see an undefined label `$halt`.
, labels = H.singleton "halt" $
AbsKappa' ["h0"] $ Halt [ValVar "h0"]
}
evalExp :: Exp -> List Obj type instance Index Env = Name
evalExp = eval emptyEnv type instance IxValue Env = Loc
evalProgram :: Program -> List Obj instance Ixed Env where ix j = #getEnv . ix j
evalProgram (MkProgram lam) = eval emptyEnv [cps| instance At Env where at j = #getEnv . at j
(letrec ((start #{lam}))
(start halt)) update :: Loc -> E -> Store -> Store
|] update (MkLoc loc) v = #heap %~ IM.alter f loc
where
f (Just _) = Just v
f Nothing = error "segfault lol"
updates :: Foldable f => f (Loc, E) -> Store -> Store
updates = alaf Endo foldMap (uncurry update)
fetch :: Loc -> M r E
fetch (MkLoc loc) = gets (^?! #heap . ix loc)
new :: M r Loc
new = state \st -> (st.nextLoc, st & #nextLoc %~ succ)
new' :: E -> M r Loc
new' e = state \st ->
( st.nextLoc
, st & #nextLoc %~ succ & at st.nextLoc ?~ e
)
defines :: Traversable t => t (Name, E) -> M Answer Env
defines = alaf Ap foldMap \(name,e) -> do
l <- new' e
pure $ bind name l
var :: HasCallStack => Env -> Name -> M Answer Loc
var g x = case g ^. at x of
Just l -> pure l
Nothing -> wrong [i|unbound variable #{x}|]
type CmdCont = Store -> Answer
type ExpCont = List E -> CmdCont
type M r = ContT r (State Store)
data Answer
= AnswerValues (List E)
| AnswerError AJalmot
deriving (Show, Generic)
data Mutability
= Mut
| NoMut
deriving (Show, Generic, Data, Eq)
wrong :: Text -> M Answer a
wrong s = ContT \_ -> pure . AnswerError . EvalError $ s
orWrong
:: Getting (First a) s a
-> Text -> s -> M Answer a
orWrong p msg s = case getFirst . getConst $ p (Const . First . Just) s of
Nothing -> wrong msg
Just x -> pure x
bind :: Name -> Loc -> Env
bind k = MkEnv . H.singleton k
extends :: Foldable f => f (Name, Loc) -> Env -> Env
extends xs g = g <> foldMap (uncurry bind) xs
assign :: Loc -> E -> M Answer ()
assign l e = do
use (at l) >>= \case
Just _ -> at l ?= e
Nothing -> wrong [i|#{e}에서 #{l}이라는 주소는 없다|]
-- | The denotation of an expressed value.
data E
= ESymbol Text
| ECharacter Char
| EInt Int
| EBool Bool
| EUndefined
| EUnspecified
| ENull
| EPair Mutability Loc Loc
| EVec Mutability (List Loc)
| EString Mutability (List Loc)
| EProcedure Procedure
deriving stock (Show, Generic)
type Procedure = List E -> DynPoints -> M Answer (List E)
eGrammar :: Store -> S.DatumGrammar E
eGrammar st = S.partialOsi (const . Left $ mempty) go
where
gofetch x = go $ st ^?! ix x
go = \case
ESymbol s -> S.Symbol s
ECharacter c -> S.Character c
EInt n -> S.Number (fromIntegral n)
EBool b -> S.Boolean b
EUndefined -> S.Unreadable "#<undefined>"
EUnspecified -> S.Unreadable "#<unspecified>"
EProcedure _ -> S.Unreadable "#<procedure>"
ENull -> S.List []
EPair _mut car cdr -> S.DotList [gofetch car] (gofetch cdr)
EVec _mut xs -> S.Vector . fmap gofetch $ xs
EString _mut xs -> S.String _
data DynPoints = MkDynPoints
deriving (Generic, Data)
truthy :: E -> Bool
truthy (EBool False) = False
truthy _ = True
evalVal :: Env -> Val -> M Answer E
evalVal g (ValVar x) = var g x >>= fetch
evalVal g (ValImm imm) = case imm of
ImmLabel (MkLabel l) -> var g l >>= fetch
ImmInt n -> pure $ EInt n
ImmBool b -> pure $ EBool b
ImmUndefined -> pure EUndefined
evalKexp :: Env -> Kexp -> M Answer E
evalKexp g (KexpVar x) = var g x >>= fetch
evalKexp g (KexpKappa kap) = evalAbs g (AbsKappa kap)
evalAbs :: Env -> Abs -> M Answer E
evalAbs g (MkAbs formals ktail e) = pure . EProcedure $ \xs dps ->
let
formals' = formals ++ foldMap (:[]) ktail
lformals = length formals'
lxs = length xs
in if lformals /= lxs
then wrong [i|함수는 #{lformals}개의 인자를 필요로 하는데 #{lxs}개 받았다.|]
else do
ls <- xs & traverse new'
let g' = g & extends (zip formals' ls)
eval g' dps e
eval :: Env -> DynPoints -> Exp -> M Answer (List E)
eval g dps (ExpJump f xs ktail) = do
f' <- evalVal g f
xs' <- traverse (evalVal g) xs
ktail' <- traverse (evalKexp g) (ktail ^.. _Just)
case f' of
EProcedure p -> p (xs' ++ ktail') dps
_ -> wrong "bad procedure"
eval g dps (ExpLetRec bs e) = do
ls <- for bs . const $ new' EUndefined
let g' = g & extends (zip (bs ^.. each . _1) ls)
bs' <- forOf (each . _2) bs (evalAbs g')
traverse_ (uncurry assign) $ zip ls (bs' ^.. each . _2)
eval g' dps e
eval g dps (ExpBuiltin (BuiltinCallCC withcc) k) = do
withcc' <- evalVal g withcc >>= orWrong #_EProcedure
[i|call/cc: 함수가 아닌 것을 받았다|]
k' <- evalKexp g k
kproc <- orWrong #_EProcedure [i|call/cc: 몰라...|] k'
let cc = EProcedure \xs dps -> case unsnoc xs of
Just (xs',_) -> kproc xs' dps
Nothing -> wrong [i|call/cc: 잘못하는데!|]
withcc' [cc,k'] dps
eval g dps (ExpBuiltin p k) = do
p' <- evalBuiltin g dps =<< traverse (evalVal g) p
evalKexp g k >>= \case
EProcedure fp -> fp p' dps
_ -> wrong [i|prim(#{p})의 계속을 나쁘다|]
eval g dps (ExpIf c t f) = do
c' <- evalVal g c
let b = if truthy c' then t else f
var g b >>= fetch >>= \case
EProcedure fp -> fp [] dps
_ -> wrong [i|if의 계속을 나쁘다|]
eval g dps e = error [i|unimplemented #{e}|]
evalBuiltin :: Env -> DynPoints -> Builtin E -> M Answer (List E)
evalBuiltin g dps = \case
BuiltinAdd x y -> arith2 (+) x y
BuiltinMul x y -> arith2 (*) x y
BuiltinSub x y -> arith2 (-) x y
BuiltinDiv x y -> arith2 div x y
BuiltinZeroP x -> pure1 . EBool . isJust $ x ^? #EInt . only 0
BuiltinCons x y -> pcons x y >>= pure1
BuiltinCar p -> cr p _2
BuiltinCdr p -> cr p _3
BuiltinPairP p -> pure1 . EBool . maybe False (const True) $
p ^? #_EPair
BuiltinValues xs -> pure xs
BuiltinList xs -> foldrM pcons ENull xs >>= pure1
p -> wrong [i|prim(#{p})은 벌써 나지 않다|]
where
pure1 x = pure [x]
pcons x y = do
(x',y') <- traverseOf both new' (x,y)
pure $ EPair Mut x' y'
arith2 f (EInt x) (EInt y) = pure [EInt $ f x y]
arith2 f x y = wrong [i|나쁜 인자: #{x}, #{y}|]
cr p l = orWrong (#_EPair . l) [i|car/cdr는 pair을 받지 않다|] p
>>= fmap (:[]) . fetch
evalExp :: Jalmot :> es => Exp -> Eff es _
evalExp e = _
evalProgram :: Jalmot :> es => Program -> Eff es (List S.Datum)
evalProgram (MkProgram lam) = case run (pure . AnswerValues) of
(AnswerError jm, _) -> throwError jm
(AnswerValues vs, st) -> traverse (S.toDatum $ eGrammar st) vs
where
run f = (`runState` emptyStore) . (`runContT` f) $ do
g <- setup
eval g MkDynPoints (ExpLetRec
[("_start",AbsLambda lam)]
(ExpApply (ValVar "_start") [] (KexpVar "halt")))
setup :: M Answer Env
setup = defines @List
[ ("halt", EProcedure prim_halt)
]
prim_halt :: Procedure
prim_halt xs _dps = ContT \_ -> pure $ AnswerValues xs
+24
View File
@@ -0,0 +1,24 @@
module Gyehoek.CPS.Hoist
( hoistProgram
) where
import Gyehoek.CPS.Syntax
import Gyehoek.Prelude
import qualified Data.HashMap.Strict as H
import Effectful.Writer.Static.Local
import Data.Foldable
type Hoist = Writer (HashMap Label Abs)
hoist :: Hoist :> es => Exp -> Eff es Exp
hoist = transformM \case
ExpLetRec bs m -> do
traverse_ (\(k,v) -> tell $ H.singleton (MkLabel k) v) bs
pure m
e -> pure e
hoistProgram :: Program -> Eff es HoistedProgram
hoistProgram p = do
(body,bindings) <- runWriter $ traverseOf #body hoist p.body
pure $ MkHoistedProgram {body,bindings}
-200
View File
@@ -1,200 +0,0 @@
{-# LANGUAGE OverloadedLists #-}
module Gyehoek.CPS.Stackify
( stackifyProgram
, module Gyehoek.CPS.Syntax
) where
import Gyehoek.CPS.Syntax
import Gyehoek.Stack.Syntax qualified as Stk
import Data.Sequence (Seq)
import Data.Sequence qualified as Seq
import Gyehoek.GenSym
import Effectful.Writer.Static.Shared
import Data.Foldable
import qualified Data.HashMap.Strict as H
import Data.List (elemIndex, nub)
import Data.Text qualified as T
import Gyehoek.Prelude
import Debug.Pretty.Simple
import qualified Gyehoek.Sexp as S
type Stackify = Writer Stk.Program
runStackify :: Eff (Stackify : es) a -> Eff es (a, Stk.Program)
runStackify = runWriter
live :: Free a => Env -> a -> List Name
-- TODO: free' should return an OSet lol
live g e = nub (free' e) & filter \x ->
x `elem` g.bound
-- && not (x `elem` g.contStack)
data BlockBuilder
= Code (List Stk.Instr) BlockBuilder
| Tail Stk.Tail
deriving (Show, Generic)
buildBlock :: BlockBuilder -> Stk.Block
buildBlock = go [] where
go acc (Code xs bb) = go (acc ++ xs) bb
go acc (Tail t) = Stk.MkBlock acc t
emitRoutine :: Stackify :> es => Stk.Routine -> Eff es ()
emitRoutine rt = tell [rt]
stackify
:: (GenSym :> es, Stackify :> es)
=> Env -> Exp -> Eff es BlockBuilder
stackify g (ExpLetRec [(f, AbsKappa kap)] e) = do
kap' <- stackifyKappa g kap
emitRoutine . Stk.MkRoutine (MkLabel f) . buildBlock $ kap'
stackify g e
stackify g (ExpLetRec [(f, AbsLambda lam)] e) = do
lam' <- stackifyLambda g (MkLabel f) lam
emitRoutine lam'
stackify g e
stackify g (ExpIf c t f) = do
let c' = stackifyVal g c
t' <- buildBlock <$> stackify g t
f' <- buildBlock <$> stackify g f
pure . Tail $ Stk.If c' t' f'
stackify g (ExpApply f xs ktail) = do
pure $
Code [ Stk.Push $ stackifyVal g (ValVar ktail)
, Stk.Push $ stackifyVal g f
] $
Code (pushArgs g xs) $
Tail (Stk.Call (length xs))
stackify g e@(ExpContinue k xs)
| isn't (#_ValVar . only g.tail) k = pure $
Code [ Stk.Push (stackifyVal g k) ] $
Code (pushArgs g xs) $
Tail $ Stk.TailCall (length xs)
| otherwise = pure $
Code (pushArgs g xs) $
Tail (Stk.Return (length xs))
stackify g (ExpPrim (PrimCallCC withcc) cc) = do
cc' <- stackifyKappa g cc
cc_l <- gensym' @Label "cc"
emitRoutine . Stk.MkRoutine cc_l . buildBlock $ cc'
pure $
Code [ Stk.Push $ stackifyVal g withcc
, Stk.Push $ stackifyVal g (ValLabel cc_l)
] $
Tail Stk.CallCC
stackify g (ExpPrim p kap) = do
kap' <- stackifyKappa g kap
pure $ Code [ Stk.Prim (stackifyVal g <$> p) ] kap'
stackify _ e = error [i|unimplemented exp: #{e}|]
loadArgs :: List Name -> List Stk.Instr
loadArgs = imapOf itraversed \n x -> Stk.Load (MkReg x) n
pushArgs :: Env -> List Val -> List Stk.Instr
pushArgs g args = [ Stk.Push $ stackifyVal g x | x <- reverse args ]
-- affine
_ValName :: Traversal' Val Name
_ValName = failing #_ValVar (#_ValImm . #_ImmLabel . #_MkLabel)
stackifyKappa
:: (Stackify :> es, GenSym :> es)
=> Env -> Kappa
-> Eff es BlockBuilder
stackifyKappa g (MkKappa xs m) = do
let g' = g & #bound <>:~ xs
Code (loadArgs g'.bound)
<$> stackify g' m
stackifyLambda
:: (Stackify :> es, GenSym :> es)
=> Env -> Label -> Lambda
-> Eff es Stk.Routine
stackifyLambda g name (MkLambda xs k m) = do
m' <- stackify (g & #bound .~ xs & #tail .~ k) m
pure $
Stk.MkRoutine name . buildBlock $
Code (loadArgs xs) $
Code [Stk.Load (MkReg k) (length xs + 1)] m'
stackifyVal :: Env -> Val -> Stk.Val
stackifyVal g = \case
ValImm imm -> Stk.ValImm imm
ValVar v -> case regOf g v of
Just r -> Stk.ValReg r
Nothing -> Stk.ValLabel (MkLabel v)
v -> error [i|unimplemented val: #{v}|]
regOf :: Env -> Name -> Maybe Reg
regOf g x
| x `elem` g.bound || x == g.tail = Just . MkReg $ x
| otherwise = Nothing
data Env = MkEnv
-- | `bound` tracks the stack lifetime of bound variables.
{ bound :: List Name
-- | for each locally-bound continuation @k@, @liveness@ has an
-- entry @(k,ls)@ where @ls@ is the sequence of registers @k@
-- expects to find saved on the stack.
, liveness :: HashMap Label (List Name)
, tail :: Name
}
deriving (Show, Generic)
emptyEnv :: Env
emptyEnv = MkEnv
{ bound = mempty
, liveness = mempty
, tail = "halt"
}
stackifyProgram :: GenSym :> es => Program -> Eff es Stk.Program
stackifyProgram (MkProgram lam) = do
let g = emptyEnv
(_,p) <- runStackify $ emitRoutine =<< stackifyLambda g "start" lam
pure p
letfn :: Program
letfn = [cps|
(λ (start-ktail0)
(letrec ((lambda-body1
(λ (x lambda-tail2)
(prim (* x x) (κ (r3) (continue lambda-tail2 r3))))))
(letrec ((let-body6
(κ (square)
(letrec ((r4 (κ (x5) (continue start-ktail0 x5))))
(square 4 r4)))))
(continue let-body6 lambda-body1))))
|]
blah :: Program
blah = [cps|
(λ (ktail0)
(letrec ((fac (λ (n ktail)
(prim (zero? n)
(κ (x0)
(if x0
(continue ktail 1)
(prim (- n 1)
(κ (x1)
(letrec ((fac-k0
(κ (x2)
(prim (* n x2)
(κ (x3)
(continue ktail x3))))))
(fac x1 fac-k0))))))))))
(fac 6 halt)))
|]
+145 -33
View File
@@ -10,10 +10,12 @@ module Gyehoek.CPS.Syntax
, Kappa(..) , Kappa(..)
, Lambda(..) , Lambda(..)
, Exp(..) , Exp(..)
, Kexp(..)
, ExpF(..) , ExpF(..)
, Name(..) , Name(..)
, Prim(..) , Builtin(..)
, Program(..) , Program(..)
, HoistedProgram(..)
, Lit(..) , Lit(..)
, Imm(..) , Imm(..)
, Obj(..) , Obj(..)
@@ -23,7 +25,7 @@ module Gyehoek.CPS.Syntax
, pattern Halt , pattern Halt
, pattern Halt1 , pattern Halt1
, _MkKappa , _MkKappa
, _ExpPrim , _ExpBuiltin
, _ExpLetRec , _ExpLetRec
, _ExpApply , _ExpApply
, _AbsLambda' , _AbsLambda'
@@ -39,10 +41,16 @@ module Gyehoek.CPS.Syntax
, Free(..) , Free(..)
, pattern ValLabel , pattern ValLabel
, pattern ObjLabel , pattern ObjLabel
, absBody
, pattern MkAbs
, _MkAbs
, unhoist
, pattern ExpJump
, _ExpJump
) )
where where
import Gyehoek.Scheme.Syntax (Name (..), Prim(..), primDatumIso, Lit(..)) import Gyehoek.Scheme.Syntax (Name (..), Builtin(..), builtinDatumIso, Lit(..))
import Gyehoek.Sexp qualified as S import Gyehoek.Sexp qualified as S
import Control.Category import Control.Category
import Prelude hiding ((.), id) import Prelude hiding ((.), id)
@@ -56,6 +64,10 @@ import Gyehoek.Sexp (G, (:-)(..))
import qualified Data.InvertibleGrammar.Base as IG import qualified Data.InvertibleGrammar.Base as IG
import Gyehoek.GenSym (Gen) import Gyehoek.GenSym (Gen)
import Data.String (IsString) import Data.String (IsString)
import Control.Applicative
import qualified Data.HashMap.Strict as H
import GHC.Records (HasField (..))
import Data.Bifunctor
-- Data types -- Data types
@@ -113,24 +125,60 @@ data Abs
| AbsLambda Lambda | AbsLambda Lambda
deriving (Show, Generic, Data, Eq) deriving (Show, Generic, Data, Eq)
pattern AbsKappa' :: [Name] -> Exp -> Abs pattern AbsKappa' :: List Name -> Exp -> Abs
pattern AbsKappa' xs e = AbsKappa (MkKappa xs e) pattern AbsKappa' xs e = AbsKappa (MkKappa xs e)
pattern AbsLambda' :: [Name] -> Name -> Exp -> Abs pattern AbsLambda' :: List Name -> Name -> Exp -> Abs
pattern AbsLambda' xs e ktail = AbsLambda (MkLambda xs e ktail) pattern AbsLambda' xs e ktail = AbsLambda (MkLambda xs e ktail)
{-# COMPLETE AbsKappa', AbsLambda' #-}
_MkAbs :: Iso' Abs (List Name, Maybe Name, Exp)
_MkAbs = iso
(\case
AbsKappa' xs e -> (xs,Nothing,e)
AbsLambda' xs ktail e -> (xs,Just ktail,e))
(\(xs,ktail,e) -> case ktail of
Just k -> AbsLambda' xs k e
Nothing -> AbsKappa' xs e)
pattern MkAbs :: List Name -> Maybe Name -> Exp -> Abs
pattern MkAbs xs ktail body <- (view _MkAbs -> (xs,ktail,body))
where MkAbs xs ktail body = review _MkAbs (xs,ktail,body)
{-# COMPLETE MkAbs #-}
_ExpJump :: Prism' Exp (Val, List Val, Maybe Kexp)
_ExpJump = prism'
(\(f,xs,ktail) -> case ktail of
Just k -> ExpApply f xs k
Nothing -> ExpContinue f xs)
\case
ExpApply f xs ktail -> Just (f,xs,Just ktail)
ExpContinue f xs -> Just (f,xs,Nothing)
_ -> Nothing
pattern ExpJump :: Val -> List Val -> Maybe Kexp -> Exp
pattern ExpJump f xs ktail <- (preview _ExpJump -> Just (f,xs,ktail))
where ExpJump f xs ktail = review _ExpJump (f,xs,ktail)
data Exp data Exp
= ExpPrim (Prim Val) Kappa = ExpBuiltin (Builtin Val) Kexp
| ExpLetRec { binders :: List (Name, Abs), body :: Exp } | ExpLetRec { binders :: List (Name, Abs), body :: Exp }
| ExpContinue Val (List Val) | ExpContinue Val (List Val)
| ExpIf Val Exp Exp | ExpIf Val Name Name
| ExpApply | ExpApply
{ op :: Val { op :: Val
, args :: List Val , args :: List Val
, cont :: Name , cont :: Kexp
} }
deriving (Show, Generic, Data, Eq) deriving (Show, Generic, Data, Eq)
data Kexp
= KexpVar Name
| KexpKappa Kappa
deriving (Show, Generic, Data, Eq)
pattern Halt :: List Val -> Exp pattern Halt :: List Val -> Exp
pattern Halt xs = ExpContinue (ValLabel "halt") xs pattern Halt xs = ExpContinue (ValLabel "halt") xs
@@ -145,6 +193,22 @@ data Program = MkProgram
} }
deriving (Show, Generic, Data) deriving (Show, Generic, Data)
data HoistedProgram = MkHoistedProgram
{ bindings :: HashMap Label Abs
, body :: Lambda
}
deriving stock (Show, Generic, Data)
type instance Index HoistedProgram = Label
type instance IxValue HoistedProgram = Abs
instance Ixed HoistedProgram where ix j = #bindings . ix j
instance At HoistedProgram where at j = #bindings . at j
instance Each HoistedProgram HoistedProgram Abs Abs where
each = #bindings . each
makePrisms ''Kappa makePrisms ''Kappa
makePrisms ''Exp makePrisms ''Exp
makeFieldsId ''Exp makeFieldsId ''Exp
@@ -168,6 +232,21 @@ _AbsLambda' = prism'
instance Plated Exp where plate = uniplate instance Plated Exp where plate = uniplate
absBody :: Lens' Abs Exp
absBody = lens
(\case
AbsLambda lam -> lam.body
AbsKappa kap -> kap.body)
(\cases
(AbsLambda lam) b -> AbsLambda $ lam & #body .~ b
(AbsKappa kap) b -> AbsKappa $ kap & #body .~ b)
unhoist :: HoistedProgram -> Program
unhoist p =
MkProgram $ p.body & body %~ ExpLetRec
(p ^.. #bindings . itraversed . withIndex
. to (\(MkLabel l, ab) -> (l,ab)))
-- DatumIso instances -- DatumIso instances
@@ -256,7 +335,7 @@ instance S.DatumIso Abs where
instance S.DatumIso Exp where instance S.DatumIso Exp where
datumIso = S.match datumIso = S.match
$ S.With (. prim) $ S.With (. builtin)
$ S.With (. letrec) $ S.With (. letrec)
$ S.With (. continue) $ S.With (. continue)
$ S.With (. if_) $ S.With (. if_)
@@ -271,30 +350,51 @@ instance S.DatumIso Exp where
if_ = S.ifLike "if" if_ = S.ifLike "if"
S.datumIso S.datumIso S.datumIso S.datumIso S.datumIso S.datumIso
app :: forall t. app :: forall t.
G (Datum :- t) (Name :- ([Val] :- (Val :- t))) G (Datum :- t) (Kexp :- List Val :- Val :- t)
app = S.list $ S.el (S.datumIso @Val) app = S.list $
-- >>> S.flipped Gyehoek.Datum.nonEmptyGrammar S.flipped (S.PartialIso
(\(S.MkListContext ctx :- t) ->
case ctx of
f:kexp:xs -> S.MkListContext (f : snoc xs kexp) :- t
_ -> error "unreachable")
(\(S.MkListContext ctx :- t) ->
case unsnoc ctx of
Just (f:xs,kexp) -> Right $ S.MkListContext (f:kexp:xs) :- t
_ -> Left $ S.expected "continuation arg"))
>>> S.el (S.datumIso @Val)
>>> S.el (S.datumIso @Kexp)
>>> S.rest (S.datumIso @Val) >>> S.rest (S.datumIso @Val)
-- >>> _ >>> S.onTail S.swap
>>> S.onTail (S.flipped $ IG.PartialIso builtin = S.list $
(\(karg :- args :- op :- t) -> S.el (S.decorate S.SynBuiltin >>> S.sym "builtin")
(args ++ [ValVar karg]) :- op :- t) >>> S.el (builtinDatumIso id (S.datumIso @Val))
(\(xs :- op :- t) -> case xs ^? _Snoc of
Just (args,preview #ValVar -> Just karg) ->
Right $ karg:- args :- op :- t
_ -> Left $ S.expected "continuation arg"
))
-- prim = S.headTagged2 "prim"
-- (primDatumIso id (S.datumIso @Val))
-- (S.datumIso @Kappa)
prim = S.list $
S.el (S.decorate S.SynBuiltin >>> S.sym "prim")
>>> S.el (primDatumIso id (S.datumIso @Val))
>>> S.el S.datumIso >>> S.el S.datumIso
instance S.DatumIso Kexp where
datumIso = S.match
$ S.With (S.datumIso @Name >>>)
$ S.With (S.datumIso @Kappa >>>)
$ S.End
instance S.DatumIso Program where instance S.DatumIso Program where
datumIso = S.with \prog -> S.datumIso @Lambda >>> prog datumIso = S.with \prog -> S.datumIso @Lambda >>> prog
-- the printed representation is pretty dishonest in its current
-- state. consider the following hoisted program:
--
-- (letrec ((k (κ () (continue start-ktail 123))))
-- (λ (start-ktail)
-- (continue k)))
--
-- here, `start-ktail` is bound in `k`, but the printed representation
-- fails to reflect that.
instance S.DatumIso HoistedProgram where
datumIso = S.with \prog ->
S.letLike "letrec"
(S.datumIso @Label) (S.datumIso @Abs) (S.datumIso @Lambda)
>>> S.onTail (S.iso H.fromList H.toList)
>>> prog
-- quasiquoters -- quasiquoters
@@ -307,6 +407,7 @@ instance CPS Kappa where toCPS = S.fromDatumUnsafe S.datumIso
instance CPS Lambda where toCPS = S.fromDatumUnsafe S.datumIso instance CPS Lambda where toCPS = S.fromDatumUnsafe S.datumIso
instance CPS Abs where toCPS = S.fromDatumUnsafe S.datumIso instance CPS Abs where toCPS = S.fromDatumUnsafe S.datumIso
instance CPS Program where toCPS = S.fromDatumUnsafe S.datumIso instance CPS Program where toCPS = S.fromDatumUnsafe S.datumIso
instance CPS HoistedProgram where toCPS = S.fromDatumUnsafe S.datumIso
cps :: S.QuasiQuoter cps :: S.QuasiQuoter
cps = S.makeSx' [| toCPS |] cps = S.makeSx' [| toCPS |]
@@ -329,7 +430,8 @@ class Free a where
freeWithBound :: HashSet Name -> a -> HashSet Name freeWithBound :: HashSet Name -> a -> HashSet Name
freeWithBound bound = HS.fromList . freeWithBound' bound freeWithBound bound = HS.fromList . freeWithBound' bound
-- | Free variables given in the order of their appearance. -- | Free variables given in the same left-to-right order they
-- appear.
free' :: a -> List Name free' :: a -> List Name
free' = freeWithBound' mempty free' = freeWithBound' mempty
@@ -339,11 +441,21 @@ instance Free Abs where
freeWithBound' bound (AbsKappa kap) = freeWithBound' bound kap freeWithBound' bound (AbsKappa kap) = freeWithBound' bound kap
freeWithBound' bound (AbsLambda lam) = freeWithBound' bound lam freeWithBound' bound (AbsLambda lam) = freeWithBound' bound lam
mif :: Alternative f => (a -> Bool) -> a -> f a
mif p a
| p a = pure a
| otherwise = empty
instance Free Kexp where
freeWithBound' bound = \case
KexpVar x -> mif (`notElem` bound) x
KexpKappa kap -> freeWithBound' bound kap
instance Free Exp where instance Free Exp where
freeWithBound' bound = \case freeWithBound' bound = \case
ExpPrim p k -> ExpBuiltin p k ->
p & toListOf (folded . #ValVar . filtered (`notElem` bound)) (p ^.. folded . #ValVar . filtered (`notElem` bound))
& (<> freeWithBound' bound k) ++ freeWithBound' bound k
ExpLetRec bs m -> ExpLetRec bs m ->
foldMapOf (each . _2) (freeWithBound' bound') bs foldMapOf (each . _2) (freeWithBound' bound') bs
<> freeWithBound' bound' m <> freeWithBound' bound' m
@@ -351,10 +463,10 @@ instance Free Exp where
ExpContinue k xs -> filter (`notElem` bound) ((k:xs) ^.. each . #ValVar) ExpContinue k xs -> filter (`notElem` bound) ((k:xs) ^.. each . #ValVar)
ExpIf c t f -> ExpIf c t f ->
(c ^.. #ValVar . filtered (`notElem` bound)) (c ^.. #ValVar . filtered (`notElem` bound))
<> freeWithBound' bound t <> freeWithBound' bound f <> mif (`notElem` bound) t <> mif (`notElem` bound) f
ExpApply f xs k -> ExpApply f xs k ->
(f:xs) ^.. (each . #ValVar . filtered (`notElem` bound)) (f:xs) ^.. (each . #ValVar . filtered (`notElem` bound))
<> (k ^.. filtered (`notElem` bound)) <> freeWithBound' bound k
instance Free Kappa where instance Free Kappa where
freeWithBound' bound (MkKappa xs m) = freeWithBound' bound (MkKappa xs m) =
+26 -32
View File
@@ -1,5 +1,5 @@
module Gyehoek.Driver module Gyehoek.Driver
(main, lower_e2e, convert_e2e, parse_e2e, readScm, eval_e2e) (main, convert_e2e, parse_e2e, readScm, eval_cps1_e2e, eval_cps2_e2e)
where where
import Gyehoek.Options import Gyehoek.Options
@@ -17,7 +17,6 @@ import qualified Data.Text.Encoding as T
import System.IO (Handle) import System.IO (Handle)
import System.IO qualified as IO import System.IO qualified as IO
import Gyehoek.CPS.Convert import Gyehoek.CPS.Convert
import Gyehoek.Stack.Lower
import Gyehoek.CPS.Eval qualified as CPS import Gyehoek.CPS.Eval qualified as CPS
import Control.Monad import Control.Monad
import Text.Pretty.Simple (pShowNoColor) import Text.Pretty.Simple (pShowNoColor)
@@ -25,16 +24,14 @@ import System.Process.Typed
import System.Environment.Blank (getEnvDefault) import System.Environment.Blank (getEnvDefault)
import qualified Data.Text.IO as TIO import qualified Data.Text.IO as TIO
import qualified Data.ByteString.Lazy as BS import qualified Data.ByteString.Lazy as BS
import Gyehoek.CPS.Stackify (stackifyProgram)
import Gyehoek.Stack.VM (eval, writeObj, Obj, traceEval)
import qualified Data.Text as T import qualified Data.Text as T
import Gyehoek.Stack.Syntax qualified as Stk
import Gyehoek.CPS.Close (closeProgram) import Gyehoek.CPS.Close (closeProgram)
import Control.Lens.Extras (is) import Control.Lens.Extras (is)
import Control.Arrow ((>>>)) import Control.Arrow ((>>>))
import Gyehoek.Prelude import Gyehoek.Prelude
import Gyehoek.Jalmot import Gyehoek.Jalmot
import qualified Gyehoek.Sexp as S import qualified Gyehoek.Sexp as S
import Gyehoek.CPS.Hoist (hoistProgram)
main :: IO () main :: IO ()
@@ -118,29 +115,20 @@ driver opts = do
hPutStrLn FS.stdout . view strict . pShowNoColor $ scm hPutStrLn FS.stdout . view strict . pShowNoColor $ scm
cps <- convertProgram scm cps <- convertProgram scm
when opts.dumpCPS do when opts.dumpCPS do
hPutStrLn FS.stdout =<< S.encodeWith S.datumIso cps S.writeDatum cps
closedCps <- closeProgram cps closedCps <- closeProgram cps
when opts.dumpClosed do when opts.dumpClosed do
hPutStrLn FS.stdout =<< S.encodeWith S.datumIso closedCps S.writeDatum closedCps
hoistedCps <- hoistProgram closedCps
when opts.dumpHoisted do
S.writeDatum hoistedCps
let rt_is p = is (_Just . p) opts.runtime let rt_is p = is (_Just . p) opts.runtime
dumpOrRun opts.dumpStackified (rt_is #Stackify) when (rt_is #HigherOrderCPS) do
(stackifyProgram closedCps) CPS.evalProgram cps
(hPutStrLn FS.stdout <=< S.encodeDataWith S.dataIso) >>= S.writeData
(eval >=> fmap writeObj
>>> T.unwords
>>> hPutStrLn FS.stdout)
when (rt_is #CPS) do when (rt_is #CPS) do
closedCps CPS.evalProgram closedCps
& CPS.evalProgram >>= S.writeData
& fmap writeObj
& T.unwords
& hPutStrLn FS.stdout
-- dumpOrRun opts.inspectWasm (rt_is #Wasm)
-- (lowerProgram cps)
-- inspectWasm
-- (\wat -> withFile opts.output FS.WriteMode \h -> hPutStrLn h wat)
when opts.traceStackified do
stackifyProgram closedCps >>= traceEval
parse_e2e :: FilePath -> IO Scm.Program parse_e2e :: FilePath -> IO Scm.Program
parse_e2e = runJalmotIO . runFileSystem . readScm parse_e2e = runJalmotIO . runFileSystem . readScm
@@ -149,12 +137,18 @@ convert_e2e :: FilePath -> IO CPS.Program
convert_e2e = runJalmotIO . runFileSystem . runGenSym convert_e2e = runJalmotIO . runFileSystem . runGenSym
. (closeProgram <=< convertProgram <=< readScm) . (closeProgram <=< convertProgram <=< readScm)
lower_e2e :: FilePath -> IO Text eval_cps1_e2e :: FilePath -> IO Text
lower_e2e = eval_cps1_e2e fp = runJalmotIO . runFileSystem . runGenSym $
runJalmotIO . runFileSystem . runGenSym readScm fp
. (lowerProgram <=< closeProgram <=< convertProgram <=< readScm) >>= convertProgram
>>= closeProgram
>>= CPS.evalProgram
>>= pure . S.encodeOrShowData' S.dataIso
eval_e2e :: FilePath -> IO (List Obj) eval_cps2_e2e :: FilePath -> IO Text
eval_e2e fp = runJalmotIO . runFileSystem . runGenSym $ do eval_cps2_e2e fp = runJalmotIO . runFileSystem . runGenSym $
stk <- stackifyProgram <=< closeProgram <=< convertProgram <=< readScm $ fp readScm fp
eval stk >>= convertProgram
-- >>= closeProgram
>>= CPS.evalProgram
>>= pure . S.encodeOrShowData' S.dataIso
+2
View File
@@ -31,6 +31,7 @@ data AJalmot
= ReaderError (ParseErrorBundle Text Void) = ReaderError (ParseErrorBundle Text Void)
| GrammarError (Grammar.ErrorMessage Ann) | GrammarError (Grammar.ErrorMessage Ann)
| VMError Text | VMError Text
| EvalError Text
deriving (Show, Generic, Data) deriving (Show, Generic, Data)
data AJalmotCS = MkAJalmotCS !CallStack !AJalmot data AJalmotCS = MkAJalmotCS !CallStack !AJalmot
@@ -66,6 +67,7 @@ instance Exception AJalmot where
& layoutPretty defaultLayoutOptions & layoutPretty defaultLayoutOptions
& renderString & renderString
VMError err -> [i|#{err}|] VMError err -> [i|#{err}|]
EvalError err -> [i|#{err}|]
instance Exception AJalmotCS where instance Exception AJalmotCS where
backtraceDesired = const False backtraceDesired = const False
+22 -12
View File
@@ -13,14 +13,13 @@ import Data.Foldable
import Gyehoek.Prelude hiding (argument) import Gyehoek.Prelude hiding (argument)
data Runtime = Stackify | Wasm | CPS data Runtime = Wasm | CPS | HigherOrderCPS
deriving (Show, Generic, Eq) deriving (Show, Generic, Eq)
data Language data Language
= LanguageScheme = LanguageScheme
| LanguageCPS | LanguageCPS
| LanguageClosed | LanguageClosed
| LanguageStackified
| LanguageWasm | LanguageWasm
deriving (Show, Generic, Eq) deriving (Show, Generic, Eq)
@@ -28,30 +27,30 @@ data Options = MkOptions
{ dumpClosed :: Bool { dumpClosed :: Bool
, dumpCPS :: Bool , dumpCPS :: Bool
, dumpParsed :: Bool , dumpParsed :: Bool
, dumpStackified :: Bool , dumpHoisted :: Bool
, traceStackified :: Bool , noColour :: Bool
, runtime :: Maybe Runtime , runtime :: Maybe Runtime
, inspectWasm :: Bool , inspectWasm :: Bool
, output :: FilePath , output :: FilePath
, sourceFile :: FilePath , sourceFile :: FilePath
, sourceLanguage :: Language , sourceLanguage :: Language
, targetLanguage :: Language
} }
deriving (Show, Generic) deriving (Show, Generic)
languageValues = ["scheme","cps","closed","stackified","wasm"] languageValues = ["scheme","cps","closed","wasm"]
languageReader = maybeReader \case languageReader = maybeReader \case
"scheme" -> Just LanguageScheme "scheme" -> Just LanguageScheme
"cps" -> Just LanguageCPS "cps" -> Just LanguageCPS
"closed" -> Just LanguageClosed "closed" -> Just LanguageClosed
"stackified" -> Just LanguageStackified
"wasm" -> Just LanguageWasm "wasm" -> Just LanguageWasm
_ -> Nothing _ -> Nothing
runtimeValues = ["stackify","wasm","cps","none"] runtimeValues = ["stackify","wasm","cps","none"]
runtimeReader = maybeReader \case runtimeReader = maybeReader \case
"stackify" -> Just (Just Stackify)
"wasm" -> Just (Just Wasm) "wasm" -> Just (Just Wasm)
"cps" -> Just (Just CPS) "cps1" -> Just (Just CPS)
("cps";"higher-order-cps") -> Just (Just HigherOrderCPS)
"none" -> Just Nothing "none" -> Just Nothing
_ -> Nothing _ -> Nothing
@@ -59,16 +58,19 @@ parser :: Parser Options
parser = do parser = do
dumpClosed <- switch (long "dump-closed") dumpClosed <- switch (long "dump-closed")
dumpCPS <- switch (long "dump-cps") dumpCPS <- switch (long "dump-cps")
dumpStackified <- switch (long "dump-stackified")
dumpParsed <- switch (long "dump-parsed") dumpParsed <- switch (long "dump-parsed")
traceStackified <- switch (long "trace-stackified") dumpHoisted <- switch (long "dump-hoisted")
noColour <- switch . fold $
[ long "no-colour"
, long "no-color"
]
inspectWasm <- switch $ long "inspect-wasm" <> short 'p' inspectWasm <- switch $ long "inspect-wasm" <> short 'p'
runtime <- option runtimeReader . fold $ runtime <- option runtimeReader . fold $
[ long "runtime" [ long "runtime"
, short 'R' , short 'R'
, value (Just Stackify) , value (Just HigherOrderCPS)
, completeWith runtimeValues , completeWith runtimeValues
, showDefaultWith $ const "stackify" , showDefaultWith $ const "higher-order-cps"
, metavar "RUNTIME" , metavar "RUNTIME"
] ]
sourceLanguage <- option languageReader . fold $ sourceLanguage <- option languageReader . fold $
@@ -79,6 +81,14 @@ parser = do
, showDefaultWith $ const "scheme" , showDefaultWith $ const "scheme"
, metavar "LANGUAGE" , metavar "LANGUAGE"
] ]
targetLanguage <- option languageReader . fold $
[ long "target"
, short 'T'
, value LanguageCPS
, completeWith languageValues
, showDefaultWith $ const "cps"
, metavar "LANGUAGE"
]
output <- strOption . fold $ output <- strOption . fold $
[ long "output" [ long "output"
, short 'o' , short 'o'
+536
View File
@@ -0,0 +1,536 @@
{-# LANGUAGE ViewPatterns #-}
{-# LANGUAGE DeriveAnyClass #-}
{-# LANGUAGE TypeFamilies #-}
module Gyehoek.Scheme.Expand
(
) where
import Gyehoek.Sexp.Syntax
import Gyehoek.Sexp qualified as S
import Gyehoek.Prelude
import Gyehoek.Scheme.Syntax hiding (Prim(..))
import Gyehoek.Scheme.Syntax qualified as Scm
import qualified Data.HashSet as HS
import qualified Data.HashMap.Strict as H
import Data.Foldable
import Data.These
import Data.Zip
import Prelude hiding (filter, zip, mapMaybe)
import qualified Data.List.NonEmpty as NE
import Data.Monoid (Ap(Ap, getAp))
import Gyehoek.Sexp.Grammar.Base ((:-)(..))
import Control.Lens.Extras (is)
import Control.Applicative (Alternative(..))
import Gyehoek.GenSym
import Data.HashSet.Lens (setOf)
import Data.List (sort)
import GHC.Exts (IsList(..))
import Gyehoek.Jalmot
import Data.Maybe (isNothing)
import Data.Kind (Type)
import Data.Traversable (for, mapAccumR)
import Effectful.State.Dynamic
import Witherable
import Data.Semigroup (Arg(..))
import Data.Ord (Down(..))
import qualified Data.Scientific as Sci
data Bind
= BindLexical { symbol :: Name, identity :: Natural }
| BindGlobal { symbol :: Name }
deriving stock (Generic, Eq, Show)
deriving anyclass (Hashable)
newtype Scope = MkScope { identity :: Natural }
deriving stock (Show, Generic, Eq, Ord)
deriving anyclass (Hashable)
deriving newtype (Gen)
type ScopeSet = HashSet Scope
data Formals
= FormalsFixed (List Name)
| FormalsRest (List Name) Name
deriving (Show, Generic)
data PrimLambda e = MkPrimLambda Formals (List e)
deriving (Show, Generic, Functor, Foldable, Traversable)
data PrimLet e = MkPrimLet (Maybe Name) (List (Name, e)) (List e)
deriving (Show, Generic, Functor, Foldable, Traversable)
data PrimIf e = MkPrimIf e e (Maybe e)
deriving (Show, Generic, Functor, Foldable, Traversable)
data PrimLetSyntax e = MkPrimLetSyntax (List (Name, e)) (List e)
deriving (Show, Generic, Functor, Foldable, Traversable)
data Prim e
= PrimLambda (PrimLambda e)
| PrimLet (PrimLet e)
| PrimIf (PrimIf e)
| PrimLetSyntax (PrimLetSyntax e)
| PrimSyntaxRules Trans
deriving (Show, Generic)
data Key = MkKey Name (HashSet Scope)
deriving stock (Show, Generic, Eq)
deriving anyclass (Hashable)
instance S.DatumIso Scope where
datumIso = S.with (S.datumIso >>>)
hashSetGrammar
:: forall a. (Hashable a, Ord a)
=> S.DatumGrammar a -> S.DatumGrammar (HashSet a)
hashSetGrammar g =
S.list (S.rest g)
>>> S.iso HS.fromList (sort . HS.toList)
instance S.DatumIso Key where
datumIso = S.with \g ->
S.list
( S.el (S.symBuiltin "@")
>>> S.el (S.datumIso @Name)
>>> S.el (hashSetGrammar S.datumIso)
)
>>> g
instance S.DatumIso Formals where
datumIso = S.match
$ S.With (fixed >>>)
$ S.With (rest >>>)
$ S.End
where
fixed :: S.G (Datum :- t) (List Name :- t)
fixed = S.list $ S.rest $ S.datumIso @Name
rest :: S.G (Datum :- t) (Name :- List Name :- t)
rest = S.coproduct
[ S.dottedList (S.rest $ S.datumIso @Name) (S.datumIso @Name)
, S.datumIso @Name >>> S.onTail (S.push [] null (const mempty))
]
optEl
:: S.G (S.Datum :- t) (a :- t)
-> S.G (S.ListContext :- t) (S.ListContext :- Maybe a :- t)
optEl g =
S.coproduct
[ S.el g >>> S.onTail (S.partialIso Just \case
Nothing -> Left mempty
Just x -> Right x)
, S.onTail $ S.push Nothing isNothing (const mempty)
]
anykw :: Text -> S.G (Datum :- t) t
anykw s = S.Flip $ S.PartialIso
(\t -> adorn SynBuiltin (Symbol s) :- t)
\case
(Symbol _ :- t) -> Right t
_ -> Left $ S.expected "symbol"
prim_if :: S.DatumIso e => S.DatumGrammar (PrimIf e)
prim_if = S.with \g ->
S.listWithIndentation (NSpecial 1)
(S.el (anykw "if")
>>> S.el S.datumIso
>>> S.el S.datumIso
>>> optEl S.datumIso)
>>> g
prim_lambda :: S.DatumIso e => S.DatumGrammar (PrimLambda e)
prim_lambda = S.with \g ->
S.lambdaLike (anykw "λ") (S.datumIso @Formals) (S.rest S.datumIso)
>>> g
prim_let
:: forall e. S.DatumIso e => S.DatumGrammar (PrimLet e)
prim_let = S.with \g ->
(S.listWithIndentation (NSpecial 1) $
S.el (anykw "let")
>>> optEl (S.datumIso @Name)
>>> S.el (S.list $ S.rest $ S.datumIso @(Name,e))
>>> S.rest S.datumIso)
>>> g
prim_let_syntax :: S.DatumIso e => S.DatumGrammar (PrimLetSyntax e)
prim_let_syntax = S.with \g ->
(S.listWithIndentation (NSpecial 1) $
S.el (anykw "let-syntax")
>>> S.el (S.list $ S.rest $ S.datumIso)
>>> S.rest S.datumIso)
>>> g
instance S.DatumIso Bind where
datumIso = S.match
$ S.With (\g ->
S.list (S.el (S.symBuiltin "L") >>> S.el S.datumIso >>> S.el S.datumIso)
>>> g)
$ S.With (\g ->
S.list (S.el (S.symBuiltin "G") >>> S.el S.datumIso)
>>> g)
$ S.End
{- |
* Examples
>>> :set -XTemplateHaskellQuotes
>>> pat = S.makeSx [|| S.fromDatumUnsafe @Pat S.datumIso ||]
>>> match [] [pat|(x . y)|] [S.sx|(1 2 . 2)|]
Nothing
>>> match [] [pat|(x . y)|] [S.sx|(1 . 2)|]
Just
...
>>> match ["=>"] [pat|(x => y)|] [S.sx|(1 => 2)|]
Just
...
>>> match ["=>"] [pat|(x => y)|] [S.sx|(1 -> 2)|]
Nothing
-}
match :: Foldable f
=> f Text
-- ^ Literal keywords
-> Pat
-> Datum
-> Maybe (HashMap Name Datum)
match kws p = getAp . match' p where
match' :: Pat -> Datum -> Ap Maybe (HashMap Name Datum)
match' PatWildcard _ = pure mempty
match' (PatVar x) e
| coerce x `elem` kws = case e of
Symbol x' | coerce x == x' -> pure mempty
_ -> empty
| otherwise = pure $ H.singleton x e
match' (PatList ps Nothing Nothing) (List es) = matches ps es
match' (PatList ps (Just []) Nothing) (List es) = do
let (ps',p) = ps ^?! _Snoc
(r,rest) <- fold $ alignWith f ps' es
rest' <- rest
& fmap (fmap (fmap (:[])) . match' p)
& foldr (liftA2 $ H.unionWith (<>)) mempty
& fmap (fmap List)
pure $ r <> rest'
where
f (These a b) = (,[]) <$> match' a b
f (This a) = empty
f (That b) = pure (mempty,[b])
match' (PatList ps Nothing (Just p)) (DotList es e) =
matches (p:|ps) (NE.cons e es)
match' _ _ = _
matchPrefix
:: (Semialign f, Foldable f)
=> f Pat -> f Datum -> Ap Maybe (HashMap Name Datum, List Datum)
matchPrefix ps es = fold $ alignWith f ps es
where
f (These a b) = (,[]) <$> match' a b
f (This a) = empty
f (That b) = pure (mempty,[b])
matches
:: (Semialign f, Foldable f)
=> f Pat -> f Datum -> Ap Maybe (HashMap Name Datum)
matches ps es = fold $ alignWith matchThese ps es
matchThese (These a b) = match' a b
matchThese _ = empty
-- | this hashmap is "curried" since we often want to traverse the
-- entire set of scopes associated with a given symbol.
newtype SymTable = MkSymTable
{ curried :: HashMap Name (HashMap (HashSet Scope) Bind) }
deriving (Show, Generic)
type instance Index SymTable = Name
type instance IxValue SymTable = HashMap (HashSet Scope) Bind
instance Ixed SymTable where ix j = #curried . ix j
instance At SymTable where at j = #curried . at j
instance Semigroup SymTable where
MkSymTable c1 <> MkSymTable c2 = MkSymTable $ H.unionWith (<>) c1 c2
instance Monoid SymTable where mempty = MkSymTable mempty
type Expand es = (State SymTable :> es, GenSym :> es)
runExpand :: SymTable -> Eff (State SymTable : GenSym : es) a -> Eff es (a, SymTable)
runExpand tab = runGenSym . runStateLocal tab
testExpand :: Datum -> IO (CommandOrDef, SymTable)
testExpand = runJalmotIO . runExpand (symTableOfEnv env_scheme_base)
. expand env_scheme_base mempty
-- | denotations
data Denot
= DenotVar
| DenotMacro Trans
| DenotPrim Name
| DenotSyntax Datum
| DenotKeyword Name
deriving stock (Show, Generic)
newtype Env = MkEnv { names :: HashMap Bind Denot }
deriving stock (Show, Generic)
deriving newtype (Semigroup, Monoid)
-- | @(environment '(scheme base))@
env_scheme_base :: Env
env_scheme_base = MkEnv . fromList . fold $
[ [ (BindGlobal p, DenotPrim p) | p <- prims ]
, [ (BindGlobal "λ", DenotPrim "lambda")
]
]
where
prims =
[ "if"
, "lambda"
, "let"
, "let-syntax"
]
symTableOfEnv :: Env -> SymTable
symTableOfEnv = ifoldMapOf (#names . itraversed) \cases
b@(BindGlobal n) d -> binding n mempty b
type instance IxValue Env = Denot
type instance Index Env = Bind
instance Ixed Env where ix j = #names . ix j
instance At Env where at j = #names . at j
err :: Jalmot :> es => Text -> Eff es a
err = throwError . EvalError
run :: S.DatumGrammar a -> Datum -> Maybe a
run g = preview #_Right . runPureEff . runJalmot . S.fromDatum g
parsePrim :: S.DatumIso e => Name -> Datum -> Maybe (Prim e)
parsePrim primname d = case primname of
"let" -> PrimLet <$> run prim_let d
"let-syntax" -> PrimLetSyntax <$> run prim_let_syntax d
"lambda" -> PrimLambda <$> run prim_lambda d
"if" -> PrimIf <$> run prim_if d
emit :: (Monoid m, State m :> es) => m -> Eff es ()
emit x = modify (<> x)
binding :: Name -> HashSet Scope -> Bind -> SymTable
binding sym scopes = MkSymTable . H.singleton sym . H.singleton scopes
envOfVar :: Bind -> Env
envOfVar = MkEnv . flip H.singleton DenotVar
gensymLexical :: GenSym :> es => Name -> Eff es Bind
gensymLexical symbol = do
identity <- gensym
pure $ BindLexical {symbol,identity}
lookupSymbol
:: forall es. (State SymTable :> es, Jalmot :> es)
=> Env -> HashSet Scope -> Name -> Eff es (Bind, Denot)
lookupSymbol g scopes x = do
ss <- fmap fold . preuse @SymTable @(Eff es) $ ix x
case nearest (MkKey x scopes) (H.keys ss) of
[] -> err [i|심벌 #{x}는 정의되지 않다|]
(_:_:_) -> err [i|심벌 #{x}는 모호하다|]
[s] | Just b <- ss ^? ix s
, Just d <- g ^? ix b -> pure (b,d)
| otherwise -> error "unreachable"
{- | Given a 'Key' and a collection of 'ScopeSet's, filter that
collection down to the largest subsets of the 'Key'\'s scope set.
This is our analogue of the lexical scoping rule which chooses the
"nearest" binding of a variable when shadowing occurs.
- If no qualifying subsets are found, the name is not in scope.
- If one subset is found, we're on the happy path!
- If more than one subset is found, we're on the rarest and
saddest path: the reference is ambiguous.
* Examples
> (let ((x {A} 123))
> (λ (x {A,B})
> (let ((y {A,B,C} 456))
> x {A,B,C})))
>>> :seti -XOverloadedLists
>>> :{
nearest
(MkKey "x" [MkScope 0, MkScope 1, MkScope 2])
[ [MkScope 0]
, [MkScope 0, MkScope 1] ]
:}
-}
nearest :: (Traversable f, Filterable f) => Key -> f ScopeSet -> List ScopeSet
nearest (MkKey symbol scopes) =
mapMaybe (\x ->
if x `HS.isSubsetOf` scopes
then Just . Down $ Arg (length x) x
else Nothing)
-- 나쁨. 안 좋다. 안 좋아하야.
>>> Data.Foldable.toList >>> sort
>>> foldr (\cases
x [] -> [x]
x acc@(y:_) -> case x `compare` y of
LT -> acc
EQ -> x:acc
GT -> [x])
[]
>>> fmap (\(Down (Arg _ x)) -> x)
expand
:: (Expand es, Jalmot :> es)
=> Env -> ScopeSet -> Datum -> Eff es CommandOrDef
expand g scopes datum@(List (Symbol s : es)) = do
let s' = MkName s
(_,denot) <- lookupSymbol g scopes s'
case denot of
DenotVar -> Command . ExpApply (ExpVar s')
<$> traverse (expandAsExp g scopes) es
DenotPrim x -> expandPrim g scopes x datum
DenotMacro trans -> expandMacro g scopes trans datum
-- 신기하지 않은 경우들
expand g scopes datum = case datum of
List (x:xs) -> Command <$> (ExpApply <$> go x <*> traverse go xs)
Symbol s -> pure . Command . ExpVar . MkName $ s
Boolean b -> lit $ LitBool b
Number (Sci.floatingOrInteger -> Right n) -> lit $ LitInt n
where
go = expandAsExp g scopes
lit = pure . Command . ExpLit
expandMacro
:: (Expand es, Jalmot :> es)
=> Env -> ScopeSet -> Trans -> Datum -> Eff es CommandOrDef
expandMacro g scopes trans datum = _
expandPrim
:: (Expand es, Jalmot :> es)
=> Env -> ScopeSet -> Name -> Datum -> Eff es CommandOrDef
expandPrim g scopes primName datum
| Just prim <- parsePrim @Datum primName datum
= case prim of
PrimLetSyntax (MkPrimLetSyntax bs [body]) -> do
scopes' <- flip HS.insert scopes <$> gensym
(rhss,g') <- (_2 %~ (g<>) . fold) . Prelude.unzip <$> for bs \(x,trans) ->
expandAsExp g scopes trans >>= \case
ExpSyntaxRules trans' ->
(trans',) <$> bindLexical scopes' x (DenotMacro trans')
e -> err [i|syntax-rules를 원하는데 이것 받는다: #{e}|]
Command <$> (ExpLetSyntax
(zip (bs ^.. each . _1) rhss)
<$> expandAsExp g' scopes' body
)
PrimLet (MkPrimLet Nothing bs [body]) -> do
scopes' <- flip HS.insert scopes <$> gensym
g' <- (g<>) . fold <$> for (bs ^.. each . _1) \x ->
bindLexical scopes' x DenotVar
Command <$> (ExpLet
<$> traverseOf (each . _2) (expandAsExp g scopes) bs
<*> expandAsExp g scopes' body)
PrimLambda (MkPrimLambda (FormalsFixed xs) [body]) -> do
scopes' <- flip HS.insert scopes <$> gensym
g' <- (g<>) . fold <$> for xs \x -> bindLexical scopes' x DenotVar
Command . ExpLambda xs <$> expandAsExp g' scopes' body
PrimIf (MkPrimIf c t f) ->
Command <$> (ExpIf
<$> expandAsExp g scopes c
<*> expandAsExp g scopes t
<*> traverse (expandAsExp g scopes) f
)
| otherwise = err [i|prim #{primName}에 잘못한 신택스: #{datum}|]
expandAsExp
:: (Expand es, Jalmot :> es)
=> Env -> ScopeSet -> Datum -> Eff es Exp
expandAsExp g scopes d = expand g scopes d >>= intoExp
bindLexical :: Expand es => ScopeSet -> Name -> Denot -> Eff es Env
bindLexical scopes symbol denot = do
identity <- gensym
let bind = BindLexical {symbol,identity}
modify (<> binding symbol scopes bind)
pure $ MkEnv (H.singleton bind denot)
intoExp :: Jalmot :> es => CommandOrDef -> Eff es Exp
intoExp (Command e) = pure e
intoExp (Begin es) = traverse intoExp es >>= \case
[] -> err "begin expression은 빔"
(x:xs) -> pure . ExpBegin $ x NE.:| xs
trans_when :: Trans
trans_when = MkTrans
{ ellipsis = "..."
, keywords = []
, rules =
[ MkRule
(PatList
[ PatVar "when"
, PatVar "test"
, PatVar "body" ]
(Just [])
Nothing)
(TemList
[ El $ TemVar "if"
, El $ TemVar "test"
, El $ TemList
[ El $ TemVar "begin"
, Ellipsis $ TemVar "body"
]
Nothing
]
Nothing)
]
}
trans_and :: Trans
trans_and = MkTrans
{ ellipsis = "..."
, keywords = []
, rules =
[ MkRule
(PatList
[PatVar "and"]
Nothing
Nothing)
(TemLit (LitBool True))
, MkRule
(PatList
[PatVar "and", PatVar "x"]
Nothing
Nothing)
(TemVar "x")
, MkRule
(PatList
[PatVar "and", PatVar "x", PatVar "y"]
(Just [])
Nothing)
(TemList
[ El (TemVar "if")
, El (TemVar "x")
, El (TemList
[ El (TemVar "and")
, Ellipsis (TemVar "y")
]
Nothing)
, El . TemLit . LitBool $ False
]
Nothing)
]
}
+536
View File
@@ -0,0 +1,536 @@
{-# LANGUAGE ViewPatterns #-}
{-# LANGUAGE DeriveAnyClass #-}
{-# LANGUAGE TypeFamilies #-}
module Gyehoek.Scheme.Expand.Old
(
) where
import Gyehoek.Sexp.Syntax
import Gyehoek.Sexp qualified as S
import Gyehoek.Prelude
import Gyehoek.Scheme.Syntax hiding (Prim(..))
import Gyehoek.Scheme.Syntax qualified as Scm
import qualified Data.HashSet as HS
import qualified Data.HashMap.Strict as H
import Data.Foldable
import Data.These
import Data.Zip
import Prelude hiding (filter, zip, mapMaybe)
import qualified Data.List.NonEmpty as NE
import Data.Monoid (Ap(Ap, getAp))
import Gyehoek.Sexp.Grammar.Base ((:-)(..))
import Control.Lens.Extras (is)
import Control.Applicative (Alternative(..))
import Gyehoek.GenSym
import Data.HashSet.Lens (setOf)
import Data.List (sort)
import GHC.Exts (IsList(..))
import Gyehoek.Jalmot
import Data.Maybe (isNothing)
import Data.Kind (Type)
import Data.Traversable (for, mapAccumR)
import Effectful.State.Dynamic
import Witherable
import Data.Semigroup (Arg(..))
import Data.Ord (Down(..))
import qualified Data.Scientific as Sci
data Bind
= BindLexical { symbol :: Name, identity :: Natural }
| BindGlobal { symbol :: Name }
deriving stock (Generic, Eq, Show)
deriving anyclass (Hashable)
newtype Scope = MkScope { identity :: Natural }
deriving stock (Show, Generic, Eq, Ord)
deriving anyclass (Hashable)
deriving newtype (Gen)
type ScopeSet = HashSet Scope
data Formals
= FormalsFixed (List Name)
| FormalsRest (List Name) Name
deriving (Show, Generic)
data PrimLambda e = MkPrimLambda Formals (List e)
deriving (Show, Generic, Functor, Foldable, Traversable)
data PrimLet e = MkPrimLet (Maybe Name) (List (Name, e)) (List e)
deriving (Show, Generic, Functor, Foldable, Traversable)
data PrimIf e = MkPrimIf e e (Maybe e)
deriving (Show, Generic, Functor, Foldable, Traversable)
data PrimLetSyntax e = MkPrimLetSyntax (List (Name, e)) (List e)
deriving (Show, Generic, Functor, Foldable, Traversable)
data Prim e
= PrimLambda (PrimLambda e)
| PrimLet (PrimLet e)
| PrimIf (PrimIf e)
| PrimLetSyntax (PrimLetSyntax e)
| PrimSyntaxRules Trans
deriving (Show, Generic)
data Key = MkKey Name (HashSet Scope)
deriving stock (Show, Generic, Eq)
deriving anyclass (Hashable)
instance S.DatumIso Scope where
datumIso = S.with (S.datumIso >>>)
hashSetGrammar
:: forall a. (Hashable a, Ord a)
=> S.DatumGrammar a -> S.DatumGrammar (HashSet a)
hashSetGrammar g =
S.list (S.rest g)
>>> S.iso HS.fromList (sort . HS.toList)
instance S.DatumIso Key where
datumIso = S.with \g ->
S.list
( S.el (S.symBuiltin "@")
>>> S.el (S.datumIso @Name)
>>> S.el (hashSetGrammar S.datumIso)
)
>>> g
instance S.DatumIso Formals where
datumIso = S.match
$ S.With (fixed >>>)
$ S.With (rest >>>)
$ S.End
where
fixed :: S.G (Datum :- t) (List Name :- t)
fixed = S.list $ S.rest $ S.datumIso @Name
rest :: S.G (Datum :- t) (Name :- List Name :- t)
rest = S.coproduct
[ S.dottedList (S.rest $ S.datumIso @Name) (S.datumIso @Name)
, S.datumIso @Name >>> S.onTail (S.push [] null (const mempty))
]
optEl
:: S.G (S.Datum :- t) (a :- t)
-> S.G (S.ListContext :- t) (S.ListContext :- Maybe a :- t)
optEl g =
S.coproduct
[ S.el g >>> S.onTail (S.partialIso Just \case
Nothing -> Left mempty
Just x -> Right x)
, S.onTail $ S.push Nothing isNothing (const mempty)
]
anykw :: Text -> S.G (Datum :- t) t
anykw s = S.Flip $ S.PartialIso
(\t -> adorn SynBuiltin (Symbol s) :- t)
\case
(Symbol _ :- t) -> Right t
_ -> Left $ S.expected "symbol"
prim_if :: S.DatumIso e => S.DatumGrammar (PrimIf e)
prim_if = S.with \g ->
S.listWithIndentation (NSpecial 1)
(S.el (anykw "if")
>>> S.el S.datumIso
>>> S.el S.datumIso
>>> optEl S.datumIso)
>>> g
prim_lambda :: S.DatumIso e => S.DatumGrammar (PrimLambda e)
prim_lambda = S.with \g ->
S.lambdaLike (anykw "λ") (S.datumIso @Formals) (S.rest S.datumIso)
>>> g
prim_let
:: forall e. S.DatumIso e => S.DatumGrammar (PrimLet e)
prim_let = S.with \g ->
(S.listWithIndentation (NSpecial 1) $
S.el (anykw "let")
>>> optEl (S.datumIso @Name)
>>> S.el (S.list $ S.rest $ S.datumIso @(Name,e))
>>> S.rest S.datumIso)
>>> g
prim_let_syntax :: S.DatumIso e => S.DatumGrammar (PrimLetSyntax e)
prim_let_syntax = S.with \g ->
(S.listWithIndentation (NSpecial 1) $
S.el (anykw "let-syntax")
>>> S.el (S.list $ S.rest $ S.datumIso)
>>> S.rest S.datumIso)
>>> g
instance S.DatumIso Bind where
datumIso = S.match
$ S.With (\g ->
S.list (S.el (S.symBuiltin "L") >>> S.el S.datumIso >>> S.el S.datumIso)
>>> g)
$ S.With (\g ->
S.list (S.el (S.symBuiltin "G") >>> S.el S.datumIso)
>>> g)
$ S.End
{- |
* Examples
>>> :set -XTemplateHaskellQuotes
>>> pat = S.makeSx [|| S.fromDatumUnsafe @Pat S.datumIso ||]
>>> match [] [pat|(x . y)|] [S.sx|(1 2 . 2)|]
Nothing
>>> match [] [pat|(x . y)|] [S.sx|(1 . 2)|]
Just
...
>>> match ["=>"] [pat|(x => y)|] [S.sx|(1 => 2)|]
Just
...
>>> match ["=>"] [pat|(x => y)|] [S.sx|(1 -> 2)|]
Nothing
-}
match :: Foldable f
=> f Text
-- ^ Literal keywords
-> Pat
-> Datum
-> Maybe (HashMap Name Datum)
match kws p = getAp . match' p where
match' :: Pat -> Datum -> Ap Maybe (HashMap Name Datum)
match' PatWildcard _ = pure mempty
match' (PatVar x) e
| coerce x `elem` kws = case e of
Symbol x' | coerce x == x' -> pure mempty
_ -> empty
| otherwise = pure $ H.singleton x e
match' (PatList ps Nothing Nothing) (List es) = matches ps es
match' (PatList ps (Just []) Nothing) (List es) = do
let (ps',p) = ps ^?! _Snoc
(r,rest) <- fold $ alignWith f ps' es
rest' <- rest
& fmap (fmap (fmap (:[])) . match' p)
& foldr (liftA2 $ H.unionWith (<>)) mempty
& fmap (fmap List)
pure $ r <> rest'
where
f (These a b) = (,[]) <$> match' a b
f (This a) = empty
f (That b) = pure (mempty,[b])
match' (PatList ps Nothing (Just p)) (DotList es e) =
matches (p:|ps) (NE.cons e es)
match' _ _ = _
matchPrefix
:: (Semialign f, Foldable f)
=> f Pat -> f Datum -> Ap Maybe (HashMap Name Datum, List Datum)
matchPrefix ps es = fold $ alignWith f ps es
where
f (These a b) = (,[]) <$> match' a b
f (This a) = empty
f (That b) = pure (mempty,[b])
matches
:: (Semialign f, Foldable f)
=> f Pat -> f Datum -> Ap Maybe (HashMap Name Datum)
matches ps es = fold $ alignWith matchThese ps es
matchThese (These a b) = match' a b
matchThese _ = empty
-- | this hashmap is "curried" since we often want to traverse the
-- entire set of scopes associated with a given symbol.
newtype SymTable = MkSymTable
{ curried :: HashMap Name (HashMap (HashSet Scope) Bind) }
deriving (Show, Generic)
type instance Index SymTable = Name
type instance IxValue SymTable = HashMap (HashSet Scope) Bind
instance Ixed SymTable where ix j = #curried . ix j
instance At SymTable where at j = #curried . at j
instance Semigroup SymTable where
MkSymTable c1 <> MkSymTable c2 = MkSymTable $ H.unionWith (<>) c1 c2
instance Monoid SymTable where mempty = MkSymTable mempty
type Expand es = (State SymTable :> es, GenSym :> es)
runExpand :: SymTable -> Eff (State SymTable : GenSym : es) a -> Eff es (a, SymTable)
runExpand tab = runGenSym . runStateLocal tab
testExpand :: Datum -> IO (CommandOrDef, SymTable)
testExpand = runJalmotIO . runExpand (symTableOfEnv env_scheme_base)
. expand env_scheme_base mempty
-- | denotations
data Denot
= DenotVar
| DenotMacro Trans
| DenotPrim Name
| DenotSyntax Datum
| DenotKeyword Name
deriving stock (Show, Generic)
newtype Env = MkEnv { names :: HashMap Bind Denot }
deriving stock (Show, Generic)
deriving newtype (Semigroup, Monoid)
-- | @(environment '(scheme base))@
env_scheme_base :: Env
env_scheme_base = MkEnv . fromList . fold $
[ [ (BindGlobal p, DenotPrim p) | p <- prims ]
, [ (BindGlobal "λ", DenotPrim "lambda")
]
]
where
prims =
[ "if"
, "lambda"
, "let"
, "let-syntax"
]
symTableOfEnv :: Env -> SymTable
symTableOfEnv = ifoldMapOf (#names . itraversed) \cases
b@(BindGlobal n) d -> binding n mempty b
type instance IxValue Env = Denot
type instance Index Env = Bind
instance Ixed Env where ix j = #names . ix j
instance At Env where at j = #names . at j
err :: Jalmot :> es => Text -> Eff es a
err = throwError . EvalError
run :: S.DatumGrammar a -> Datum -> Maybe a
run g = preview #_Right . runPureEff . runJalmot . S.fromDatum g
parsePrim :: S.DatumIso e => Name -> Datum -> Maybe (Prim e)
parsePrim primname d = case primname of
"let" -> PrimLet <$> run prim_let d
"let-syntax" -> PrimLetSyntax <$> run prim_let_syntax d
"lambda" -> PrimLambda <$> run prim_lambda d
"if" -> PrimIf <$> run prim_if d
emit :: (Monoid m, State m :> es) => m -> Eff es ()
emit x = modify (<> x)
binding :: Name -> HashSet Scope -> Bind -> SymTable
binding sym scopes = MkSymTable . H.singleton sym . H.singleton scopes
envOfVar :: Bind -> Env
envOfVar = MkEnv . flip H.singleton DenotVar
gensymLexical :: GenSym :> es => Name -> Eff es Bind
gensymLexical symbol = do
identity <- gensym
pure $ BindLexical {symbol,identity}
lookupSymbol
:: forall es. (State SymTable :> es, Jalmot :> es)
=> Env -> HashSet Scope -> Name -> Eff es (Bind, Denot)
lookupSymbol g scopes x = do
ss <- fmap fold . preuse @SymTable @(Eff es) $ ix x
case nearest (MkKey x scopes) (H.keys ss) of
[] -> err [i|심벌 #{x}는 정의되지 않다|]
(_:_:_) -> err [i|심벌 #{x}는 모호하다|]
[s] | Just b <- ss ^? ix s
, Just d <- g ^? ix b -> pure (b,d)
| otherwise -> error "unreachable"
{- | Given a 'Key' and a collection of 'ScopeSet's, filter that
collection down to the largest subsets of the 'Key'\'s scope set.
This is our analogue of the lexical scoping rule which chooses the
"nearest" binding of a variable when shadowing occurs.
- If no qualifying subsets are found, the name is not in scope.
- If one subset is found, we're on the happy path!
- If more than one subset is found, we're on the rarest and
saddest path: the reference is ambiguous.
* Examples
> (let ((x {A} 123))
> (λ (x {A,B})
> (let ((y {A,B,C} 456))
> x {A,B,C})))
>>> :seti -XOverloadedLists
>>> :{
nearest
(MkKey "x" [MkScope 0, MkScope 1, MkScope 2])
[ [MkScope 0]
, [MkScope 0, MkScope 1] ]
:}
-}
nearest :: (Traversable f, Filterable f) => Key -> f ScopeSet -> List ScopeSet
nearest (MkKey symbol scopes) =
mapMaybe (\x ->
if x `HS.isSubsetOf` scopes
then Just . Down $ Arg (length x) x
else Nothing)
-- 나쁨. 안 좋다. 안 좋아하야.
>>> Data.Foldable.toList >>> sort
>>> foldr (\cases
x [] -> [x]
x acc@(y:_) -> case x `compare` y of
LT -> acc
EQ -> x:acc
GT -> [x])
[]
>>> fmap (\(Down (Arg _ x)) -> x)
expand
:: (Expand es, Jalmot :> es)
=> Env -> ScopeSet -> Datum -> Eff es CommandOrDef
expand g scopes datum@(List (Symbol s : es)) = do
let s' = MkName s
(_,denot) <- lookupSymbol g scopes s'
case denot of
DenotVar -> Command . ExpApply (ExpVar s')
<$> traverse (expandAsExp g scopes) es
DenotPrim x -> expandPrim g scopes x datum
DenotMacro trans -> expandMacro g scopes trans datum
-- 신기하지 않은 경우들
expand g scopes datum = case datum of
List (x:xs) -> Command <$> (ExpApply <$> go x <*> traverse go xs)
Symbol s -> pure . Command . ExpVar . MkName $ s
Boolean b -> lit $ LitBool b
Number (Sci.floatingOrInteger -> Right n) -> lit $ LitInt n
where
go = expandAsExp g scopes
lit = pure . Command . ExpLit
expandMacro
:: (Expand es, Jalmot :> es)
=> Env -> ScopeSet -> Trans -> Datum -> Eff es CommandOrDef
expandMacro g scopes trans datum = _
expandPrim
:: (Expand es, Jalmot :> es)
=> Env -> ScopeSet -> Name -> Datum -> Eff es CommandOrDef
expandPrim g scopes primName datum
| Just prim <- parsePrim @Datum primName datum
= case prim of
PrimLetSyntax (MkPrimLetSyntax bs [body]) -> do
scopes' <- flip HS.insert scopes <$> gensym
(rhss,g') <- (_2 %~ (g<>) . fold) . Prelude.unzip <$> for bs \(x,trans) ->
expandAsExp g scopes trans >>= \case
ExpSyntaxRules trans' ->
(trans',) <$> bindLexical scopes' x (DenotMacro trans')
e -> err [i|syntax-rules를 원하는데 이것 받는다: #{e}|]
Command <$> (ExpLetSyntax
(zip (bs ^.. each . _1) rhss)
<$> expandAsExp g' scopes' body
)
PrimLet (MkPrimLet Nothing bs [body]) -> do
scopes' <- flip HS.insert scopes <$> gensym
g' <- (g<>) . fold <$> for (bs ^.. each . _1) \x ->
bindLexical scopes' x DenotVar
Command <$> (ExpLet
<$> traverseOf (each . _2) (expandAsExp g scopes) bs
<*> expandAsExp g scopes' body)
PrimLambda (MkPrimLambda (FormalsFixed xs) [body]) -> do
scopes' <- flip HS.insert scopes <$> gensym
g' <- (g<>) . fold <$> for xs \x -> bindLexical scopes' x DenotVar
Command . ExpLambda xs <$> expandAsExp g' scopes' body
PrimIf (MkPrimIf c t f) ->
Command <$> (ExpIf
<$> expandAsExp g scopes c
<*> expandAsExp g scopes t
<*> traverse (expandAsExp g scopes) f
)
| otherwise = err [i|prim #{primName}에 잘못한 신택스: #{datum}|]
expandAsExp
:: (Expand es, Jalmot :> es)
=> Env -> ScopeSet -> Datum -> Eff es Exp
expandAsExp g scopes d = expand g scopes d >>= intoExp
bindLexical :: Expand es => ScopeSet -> Name -> Denot -> Eff es Env
bindLexical scopes symbol denot = do
identity <- gensym
let bind = BindLexical {symbol,identity}
modify (<> binding symbol scopes bind)
pure $ MkEnv (H.singleton bind denot)
intoExp :: Jalmot :> es => CommandOrDef -> Eff es Exp
intoExp (Command e) = pure e
intoExp (Begin es) = traverse intoExp es >>= \case
[] -> err "begin expression은 빔"
(x:xs) -> pure . ExpBegin $ x NE.:| xs
trans_when :: Trans
trans_when = MkTrans
{ ellipsis = "..."
, keywords = []
, rules =
[ MkRule
(PatList
[ PatVar "when"
, PatVar "test"
, PatVar "body" ]
(Just [])
Nothing)
(TemList
[ El $ TemVar "if"
, El $ TemVar "test"
, El $ TemList
[ El $ TemVar "begin"
, Ellipsis $ TemVar "body"
]
Nothing
]
Nothing)
]
}
trans_and :: Trans
trans_and = MkTrans
{ ellipsis = "..."
, keywords = []
, rules =
[ MkRule
(PatList
[PatVar "and"]
Nothing
Nothing)
(TemLit (LitBool True))
, MkRule
(PatList
[PatVar "and", PatVar "x"]
Nothing
Nothing)
(TemVar "x")
, MkRule
(PatList
[PatVar "and", PatVar "x", PatVar "y"]
(Just [])
Nothing)
(TemList
[ El (TemVar "if")
, El (TemVar "x")
, El (TemList
[ El (TemVar "and")
, Ellipsis (TemVar "y")
]
Nothing)
, El . TemLit . LitBool $ False
]
Nothing)
]
}
+310 -36
View File
@@ -10,16 +10,22 @@
{-# LANGUAGE OrPatterns #-} {-# LANGUAGE OrPatterns #-}
{-# LANGUAGE PatternSynonyms #-} {-# LANGUAGE PatternSynonyms #-}
{-# LANGUAGE DeriveAnyClass #-} {-# LANGUAGE DeriveAnyClass #-}
{-# LANGUAGE ViewPatterns #-}
module Gyehoek.Scheme.Syntax module Gyehoek.Scheme.Syntax
( Name(..) ( Name(..)
, Prim(..) , Builtin(..)
, Lit(..) , Lit(..)
, Def(..) , Def(..)
, Exp(..) , Exp(..)
, ExpF(..) , ExpF(..)
, Program(..) , Program(..)
, CommandOrDef(..) , CommandOrDef(..)
, primDatumIso , Trans(..)
, Rule(..)
, Pat(..)
, Tem(..)
, El(..)
, builtinDatumIso
, free , free
, subst , subst
, getName , getName
@@ -53,6 +59,8 @@ import Gyehoek.Sexp.Grammar qualified as Sexp
import Gyehoek.Sexp.Grammar qualified as S import Gyehoek.Sexp.Grammar qualified as S
import Gyehoek.Sexp.Grammar (DatumIso, G, DataIso, (:-)((:-))) import Gyehoek.Sexp.Grammar (DatumIso, G, DataIso, (:-)((:-)))
import Gyehoek.Prelude import Gyehoek.Prelude
import Control.Lens.Extras (is)
import qualified Data.Scientific as Sci
newtype Name = MkName { inner :: Text } newtype Name = MkName { inner :: Text }
@@ -66,32 +74,36 @@ instance Prefixed Name where
getName :: Name -> Text getName :: Name -> Text
getName (MkName x) = x getName (MkName x) = x
data Prim e data Builtin e
= PrimAdd e e = BuiltinAdd e e
| PrimSub e e | BuiltinSub e e
| PrimMul e e | BuiltinMul e e
| PrimDiv e e | BuiltinDiv e e
| PrimCons e e | BuiltinCons e e
| PrimCar e | BuiltinCar e
| PrimCdr e | BuiltinCdr e
| PrimImmediateP e | BuiltinImmediateP e
| PrimConsP e | BuiltinConsP e
| PrimIntegerP e | BuiltinIntegerP e
| PrimWrite e | BuiltinWrite e
| PrimZeroP e | BuiltinZeroP e
| PrimNewline | BuiltinNewline
| PrimMakeClosure { code :: e, env :: List e } | BuiltinMakeClosure { code :: e, env :: List e }
| PrimEnv | BuiltinMakeSharedClosure { codes :: List e, env :: List e }
| PrimEnvRef Int | BuiltinGetEnv
| PrimCallCC e | BuiltinEnv
| PrimCaptureCC | BuiltinEnvRef Int
| PrimInvokeCC e (List e) | BuiltinCallCC e
| PrimValues (List e) | BuiltinCaptureCC
| PrimCallWithValues e e | BuiltinInvokeCC e (List e)
| BuiltinValues (List e)
| BuiltinCallWithValues e e
| BuiltinPairP e
| BuiltinList (List e)
deriving stock (Show, Generic, Functor, Foldable, Traversable, Data, Eq) deriving stock (Show, Generic, Functor, Foldable, Traversable, Data, Eq)
deriving anyclass (NFData) deriving anyclass (NFData)
instance Each (Prim e) (Prim e') e e' instance Each (Builtin e) (Builtin e') e e'
data Lit data Lit
= LitInt Int = LitInt Int
@@ -106,19 +118,79 @@ data Def
deriving stock (Show, Generic, Data) deriving stock (Show, Generic, Data)
deriving anyclass (NFData) deriving anyclass (NFData)
data Formals a
= FormalsFixed (List a)
| FormalsVar (List a) a
deriving stock (Show, Generic, Data, Functor, Foldable, Traversable)
deriving anyclass (NFData)
data Exp data Exp
= ExpLet (List (Name, Exp)) Exp = ExpLet (List (Name, Exp)) Exp
| ExpLetSyntax (List (Name, Trans)) Exp
| ExpLetRec (List (Name, Exp)) Exp | ExpLetRec (List (Name, Exp)) Exp
| ExpPrim (Prim Exp) | ExpBuiltin (Builtin Exp)
| ExpBegin (NonEmpty Exp) | ExpBegin (NonEmpty Exp)
| ExpIf Exp Exp Exp | ExpIf Exp Exp (Maybe Exp)
| ExpLit Lit | ExpLit Lit
| ExpLambda (List Name) Exp | ExpLambda (List Name) Exp
| ExpVar Name | ExpVar Name
| ExpSyntaxRules Trans
| ExpApply Exp (List Exp) | ExpApply Exp (List Exp)
deriving stock (Show, Generic, Data) deriving stock (Show, Generic, Data)
deriving anyclass (NFData) deriving anyclass (NFData)
data Trans = MkTrans
{ ellipsis :: Name
, keywords :: List Name
, rules :: List Rule
}
deriving stock (Show, Generic, Data)
deriving anyclass (NFData)
data Rule = MkRule
{ rhs :: Pat
, lhs :: Tem
}
deriving (Show, Generic, Data)
deriving anyclass (NFData)
data Pat
= PatWildcard
| PatVar Name
| PatList
{ init :: List Pat
, ellipsis :: Maybe (List Pat)
, tail :: Maybe Pat
}
-- | PatVec
-- { init :: List Pat
-- , ellipsis :: Maybe (List Pat)
-- }
deriving (Show, Generic, Data)
deriving anyclass (NFData)
data Tem
-- | @(⟨element⟩ …)@
-- @(⟨element⟩ ⟨element⟩ … . ⟨element⟩)@
= TemList
{ init :: List El
, tail :: Maybe Tem
}
-- | @(⟨ellipsis⟩ ⟨template⟩)@
| TemTrail Tem
| TemLit Lit
| TemVar Name
deriving (Show, Generic, Data)
deriving anyclass (NFData)
data El
-- | @⟨template⟩ ⟨ellipsis⟩@
= Ellipsis Tem
-- | @⟨template⟩@
| El Tem
deriving (Show, Generic, Data)
deriving anyclass (NFData)
data CommandOrDef data CommandOrDef
= Command Exp = Command Exp
| Definition Def | Definition Def
@@ -126,8 +198,37 @@ data CommandOrDef
deriving stock (Show, Generic, Data) deriving stock (Show, Generic, Data)
deriving anyclass (NFData) deriving anyclass (NFData)
newtype Program = MkProgram newtype LibName = MkLibName { inner :: NonEmpty Name }
{ commandsAndDefs :: List CommandOrDef deriving stock (Show, Generic, Data)
deriving anyclass (NFData)
data ImportSet
= ImportLib LibName
| ImportOnly ImportSet (NonEmpty Name)
| ImportExcept ImportSet (NonEmpty Name)
| ImportPrefix ImportSet Name
| ImportRename ImportSet (NonEmpty (Name, Name))
deriving stock (Show, Generic, Data)
deriving anyclass (NFData)
newtype ImportDecl = MkImportDecl (NonEmpty ImportSet)
deriving stock (Show, Generic, Data)
deriving anyclass (NFData)
data LibDecl
deriving stock (Show, Generic, Data)
deriving anyclass (NFData)
data Lib = MkLib
{ name :: LibName
, decls :: List LibDecl
}
deriving stock (Show, Generic, Data)
deriving anyclass (NFData)
data Program = MkProgram
{ imports :: List ImportDecl
, commandsAndDefs :: List CommandOrDef
} }
deriving stock (Show, Generic, Data) deriving stock (Show, Generic, Data)
deriving anyclass (NFData) deriving anyclass (NFData)
@@ -150,10 +251,10 @@ instance DatumIso Name where
>>> S.symbol >>> S.symbol
>>> S.iso coerce coerce >>> S.iso coerce coerce
primDatumIso builtinDatumIso
:: (Text -> Text) :: (Text -> Text)
-> S.DatumGrammar a -> S.DatumGrammar (Prim a) -> S.DatumGrammar a -> S.DatumGrammar (Builtin a)
primDatumIso namefn a = S.match builtinDatumIso namefn a = S.match
$ S.With (. ht2 "+") $ S.With (. ht2 "+")
$ S.With (. ht2 "-") $ S.With (. ht2 "-")
$ S.With (. ht2 "*") $ S.With (. ht2 "*")
@@ -168,6 +269,10 @@ primDatumIso namefn a = S.match
$ S.With (. ht1 "zero?") $ S.With (. ht1 "zero?")
$ S.With (. ht0 "newline") $ S.With (. ht0 "newline")
$ S.With (. ht1' "make-closure") $ S.With (. ht1' "make-closure")
$ S.With (. S.headTagged2 (namefn "make-shared-closure")
(S.list $ S.rest a)
(S.list $ S.rest a))
$ S.With (. ht0 "get-env")
$ S.With (. ht0 "env") $ S.With (. ht0 "env")
$ S.With (. S.headTagged1 (namefn "env-ref") S.int) $ S.With (. S.headTagged1 (namefn "env-ref") S.int)
$ S.With (. ht1 "call/cc") $ S.With (. ht1 "call/cc")
@@ -175,6 +280,8 @@ primDatumIso namefn a = S.match
$ S.With (. ht1' "invoke/cc") $ S.With (. ht1' "invoke/cc")
$ S.With (. ht0' "values") $ S.With (. ht0' "values")
$ S.With (. ht2 "call-with-values") $ S.With (. ht2 "call-with-values")
$ S.With (. ht1 "pair?")
$ S.With (. ht0' "list")
$ S.End $ S.End
where where
idn = S.el . S.sym . namefn idn = S.el . S.sym . namefn
@@ -184,8 +291,8 @@ primDatumIso namefn a = S.match
ht1' s = S.headTagged1' (namefn s) a a ht1' s = S.headTagged1' (namefn s) a a
ht0' s = S.headTagged0' (namefn s) a ht0' s = S.headTagged0' (namefn s) a
instance DatumIso a => DatumIso (Prim a) where instance DatumIso a => DatumIso (Builtin a) where
datumIso = primDatumIso id S.datumIso datumIso = builtinDatumIso id S.datumIso
instance DatumIso Lit where instance DatumIso Lit where
datumIso = S.match datumIso = S.match
@@ -206,20 +313,42 @@ instance DatumIso Def where
>>> S.el args >>> S.rest S.datumIso >>> S.el args >>> S.rest S.datumIso
args = S.list $ S.el S.datumIso >>> S.rest S.datumIso args = S.list $ S.el S.datumIso >>> S.rest S.datumIso
instance DatumIso Trans where
datumIso = S.with \g ->
S.listWithIndentation
(S.NSpecial 1)
( S.el (S.symBuiltin "syntax-rules")
>>> S.Iso (\(ctx:-t) -> ctx:-"...":-t) (\(ctx:-_:-t) -> ctx:-t)
>>> S.el (S.list $ S.rest (S.datumIso @Name))
>>> S.rest (S.datumIso @Rule)
)
>>> g
instance DatumIso Exp where instance DatumIso Exp where
datumIso = S.match datumIso = S.match
$ S.With (. S.letLike "let" S.datumIso S.datumIso S.datumIso) $ S.With (. S.letLike "let" S.datumIso S.datumIso S.datumIso)
$ S.With (letsyntax >>>)
$ S.With (. S.letLike "letrec" S.datumIso S.datumIso S.datumIso) $ S.With (. S.letLike "letrec" S.datumIso S.datumIso S.datumIso)
$ S.With (. S.datumIso) $ S.With (. S.datumIso)
$ S.With (. begin) $ S.With (. begin)
$ S.With (. S.ifLike "if" S.datumIso S.datumIso S.datumIso) $ S.With (. if_)
$ S.With (. S.datumIso) $ S.With (. S.datumIso)
$ S.With (. lam) $ S.With (. lam)
$ S.With (. S.datumIso) $ S.With (. S.datumIso)
$ S.With (. S.datumIso)
$ S.With (\app -> app . S.list (S.el S.datumIso >>> S.rest S.datumIso)) $ S.With (\app -> app . S.list (S.el S.datumIso >>> S.rest S.datumIso))
$ S.End $ S.End
where where
letsyntax = S.listWithIndentation (S.NSpecial 1) $
S.el (S.symBuiltin "let-syntax")
>>> S.el (S.list $ S.rest $ S.datumIso)
>>> S.el S.datumIso
lam = S.lambdaLike S.lambdaKeyword S.datumIso (S.el S.datumIso) lam = S.lambdaLike S.lambdaKeyword S.datumIso (S.el S.datumIso)
if_ = S.ifLike "if" S.datumIso S.datumIso $ S.datumIso @Exp >>> S.iso
Just
\case
Just x -> x
Nothing -> error "안 괜찮다ㅠㅠ"
begin :: forall t. G (S.Datum :- t) (NonEmpty Exp :- t) begin :: forall t. G (S.Datum :- t) (NonEmpty Exp :- t)
begin = S.beginLike "begin" $ begin = S.beginLike "begin" $
S.el (S.datumIso @Exp) >>> S.rest (S.datumIso @Exp) S.el (S.datumIso @Exp) >>> S.rest (S.datumIso @Exp)
@@ -227,6 +356,101 @@ instance DatumIso Exp where
(\(xs:-x:-t) -> (x:|xs):-t) (\(xs:-x:-t) -> (x:|xs):-t)
(\((x:|xs):-t) -> xs:-x:-t)) (\((x:|xs):-t) -> xs:-x:-t))
instance S.DatumIso Rule where
datumIso = S.with \g ->
S.list (S.el S.datumIso >>> S.el S.datumIso) >>> g
instance S.DatumIso Pat where
datumIso = S.match
$ S.With (S.sym "_" >>>)
$ S.With (S.datumIso >>>)
$ S.With (lst >>>)
$ S.End
where
lst :: S.G (S.Datum :- t) (Maybe Pat :- Maybe (List Pat) :- List Pat :- t)
lst = S.coproduct
[ S.list $
ellipsis
>>> S.onTail (S.push Nothing (is _Nothing) (const mempty))
, S.dottedList
ellipsis
( S.datumIso @Pat
>>> S.partialIso Just (maybe (Left mempty) Right) )
]
ellipsis =
S.restData split
>>> S.onTail
( S.onHead (S.traversed . S.traversed . S.sealed $
S.datumIso @Pat)
>>> S.onTail (S.onHead . S.traversed . S.sealed $
S.datumIso @Pat)
)
split
:: forall t. S.G (List S.Datum :- t)
(Maybe (List S.Datum) :- List S.Datum :- t)
split = S.Iso
(\(ps0:-t) ->
let (ps,ell) = splitEllipsis ps0
in ell :- ps :- t)
(\(ell:-ps:-t) -> (ps ++ foldMap ([S.Symbol "..."]++) ell) :- t)
splitEllipsis :: List S.Datum -> (List S.Datum, Maybe (List S.Datum))
splitEllipsis [] = ([], Nothing)
splitEllipsis (S.Symbol "..." : xs) = ([], Just xs)
splitEllipsis (x:xs) = splitEllipsis xs & _1 %~ (x:)
instance S.DataIso El where
dataIso = S.match
$ S.With (ellipsis >>>)
$ S.With (noellipsis >>>)
$ S.End
where
ellipsis = S.recontextualise $
S.el (S.datumIso @Tem) >>> S.el (S.sym "...")
noellipsis = S.recontextualise $ S.el (S.datumIso @Tem)
instance S.DatumIso Tem where
datumIso = S.match
$ S.With (lst >>>)
$ S.With (trail >>>)
$ S.With (S.datumIso @Lit >>>)
$ S.With (S.datumIso @Name >>>)
$ S.End
where
trail = S.list $ S.el (S.sym "...") >>> S.el (S.datumIso @Tem)
lst :: S.G (S.Datum :- t) (Maybe Tem :- List El :- t)
lst = S.coproduct
[ S.list els
>>> (S.push Nothing (is _Nothing) (const mempty))
, S.dottedList els $
S.datumIso @Tem
>>> S.partialIso Just (maybe (Left mempty) Right)
]
els :: S.G (S.ListContext :- t) (S.ListContext :- List El :- t)
els =
S.iso
(\(S.MkListContext ds) -> affixEllipses ds)
(S.MkListContext . foldMap \(d,b) ->
d : if b then [S.Symbol "..."] else [])
>>> S.onHead (S.traversed . S.sealed $
S.flipped S.pair
>>> S.onTail (S.datumIso @Tem)
>>> S.pair
>>> S.iso
(\(t,b) -> if b then Ellipsis t else El t)
(\case
Ellipsis t -> (t,True)
El t -> (t,False)))
>>> S.push (S.MkListContext [])
(\(S.MkListContext xs) -> null xs)
(const mempty)
affixEllipses :: List S.Datum -> List (S.Datum, Bool)
affixEllipses (x : S.Symbol "..." : xs) = (x,True) : affixEllipses xs
affixEllipses (x : xs) = (x,False) : affixEllipses xs
affixEllipses [] = []
instance DatumIso CommandOrDef where instance DatumIso CommandOrDef where
datumIso = S.match datumIso = S.match
$ S.With (\_Command -> _Command . S.datumIso) $ S.With (\_Command -> _Command . S.datumIso)
@@ -234,8 +458,58 @@ instance DatumIso CommandOrDef where
$ S.With (\_Begin -> _Begin . S.beginLike "begin" (S.rest S.datumIso)) $ S.With (\_Begin -> _Begin . S.beginLike "begin" (S.rest S.datumIso))
$ S.End $ S.End
instance DatumIso LibName where
datumIso = S.with \g ->
S.list (S.restData $ S.nonEmptyData comp)
>>> g
where
comp = S.partialOsi
(\case
S.Symbol s -> Right $ MkName s
S.Number (Sci.floatingOrInteger @Double @Int -> Right n)
| n > 0 -> Right $ MkName [i|#{n}|]
_ -> Left $ S.expected "library name part"
)
\(MkName s) -> S.Symbol s
instance DatumIso ImportSet where
datumIso = S.match
$ S.With (S.datumIso @LibName >>>)
$ S.With (imp "only" >>>)
$ S.With (imp "except" >>>)
$ S.With (imp' "prefix" >>>)
$ S.With (imp "rename" >>>)
$ S.End
where
imp s = S.list $ S.el (S.symBuiltin s)
>>> S.el S.datumIso >>> S.restData S.dataIso
imp' s = S.list $
S.el (S.symBuiltin s)
>>> S.el S.datumIso
>>> S.el S.datumIso
instance DatumIso ImportDecl where
datumIso = S.with \decl ->
S.list (S.el (S.symBuiltin "import") >>> S.restData S.dataIso)
>>> decl
instance DataIso Program where instance DataIso Program where
dataIso = S.dataIso @(List CommandOrDef) >>> S.iso coerce coerce dataIso = S.with \g ->
splitG
>>> S.onHead (S.sealed S.dataIso)
>>> S.onTail (S.onHead . S.sealed $ S.dataIso)
>>> g
where
isImport = \case
S.List (S.Symbol "import" : _) -> True
_ -> False
splitG :: G (List S.Datum :- t) (List S.Datum :- List S.Datum :- t)
splitG = S.Iso
(\(xs:-t) ->
let (ys,zs) = span isImport xs
in zs :- ys :- t
)
\(zs:-ys:-t) -> (ys ++ zs) :- t
-- utilities -- utilities
+49
View File
@@ -15,6 +15,7 @@ module Gyehoek.Sexp.Grammar
, encodeDataTest , encodeDataTest
, encodeDataTestColour , encodeDataTestColour
, encodeOrShow' , encodeOrShow'
, encodeOrShowData'
, decodeDataWith , decodeDataWith
, encodeDataWith' , encodeDataWith'
, decodeTest , decodeTest
@@ -28,6 +29,8 @@ module Gyehoek.Sexp.Grammar
, fromDatumUnsafe , fromDatumUnsafe
, Control.Category.id , Control.Category.id
, fromDataUnsafe , fromDataUnsafe
, writeDatum
, writeData
) )
where where
@@ -45,6 +48,8 @@ import qualified Control.Category
import qualified Data.Vector as V import qualified Data.Vector as V
import Data.String (IsString (fromString)) import Data.String (IsString (fromString))
import qualified Data.Text as T import qualified Data.Text as T
import System.Environment (lookupEnv)
import Data.Foldable (toList)
toDatum :: Jalmot :> es => DatumGrammar a -> a -> Eff es Datum toDatum :: Jalmot :> es => DatumGrammar a -> a -> Eff es Datum
@@ -126,6 +131,39 @@ encodeOrShow' g x = fromString $
Left _ -> show x Left _ -> show x
Right t -> T.unpack t Right t -> T.unpack t
encodeOrShow :: (IsString s, Show a) => DatumGrammar a -> a -> s
encodeOrShow g x = fromString $
case runPureEff . runJalmot . encodeWith g $ x of
Left _ -> show x
Right t -> T.unpack t
encodeOrShowData' :: (IsString s, Show a) => DataGrammar a -> a -> s
encodeOrShowData' g x = fromString $
case runPureEff . runJalmot . encodeDataWith' g $ x of
Left _ -> show x
Right t -> T.unpack t
encodeOrShowData :: (IsString s, Show a) => DataGrammar a -> a -> s
encodeOrShowData g x = fromString $
case runPureEff . runJalmot . encodeDataWith g $ x of
Left _ -> show x
Right t -> T.unpack t
useColour :: IO Bool
useColour = maybe True (const False) <$> lookupEnv "NO_COLOR"
writeDatum :: (Show a, DatumIso a, MonadIO m) => a -> m ()
writeDatum x = do
c <- liftIO useColour
let f = if c then encodeOrShow else encodeOrShow'
liftIO . TIO.putStrLn . f datumIso $ x
writeData :: (Show a, DataIso a, MonadIO m) => a -> m ()
writeData x = do
c <- liftIO useColour
let f = if c then encodeOrShowData else encodeOrShowData'
liftIO . TIO.putStrLn . f dataIso $ x
class DatumIso a where class DatumIso a where
datumIso :: DatumGrammar a datumIso :: DatumGrammar a
@@ -141,6 +179,14 @@ instance DatumIso Bool where datumIso = boolean
instance DatumIso Int where datumIso = int instance DatumIso Int where datumIso = int
instance DatumIso Natural where
datumIso = int
>>> partialOsi
(\x -> if x < 0
then Left $ expected "non-negative integer" <> unexpected [i|#{x}|]
else Right $ fromIntegral x)
fromIntegral
instance DatumIso Datum where datumIso = Control.Category.id instance DatumIso Datum where datumIso = Control.Category.id
instance DatumIso a => DataIso (List a) where instance DatumIso a => DataIso (List a) where
@@ -150,5 +196,8 @@ instance DatumIso a => DataIso (V.Vector a) where
dataIso = iso fromList V.toList dataIso = iso fromList V.toList
>>> (onHead . traversed . sealed $ datumIso @a) >>> (onHead . traversed . sealed $ datumIso @a)
instance DatumIso a => DataIso (NonEmpty a) where
dataIso = nonEmptyData datumIso
instance (DatumIso a, DatumIso b) => DatumIso (a, b) where instance (DatumIso a, DatumIso b) => DatumIso (a, b) where
datumIso = with \tup2 -> list (el datumIso >>> el datumIso) >>> tup2 datumIso = with \tup2 -> list (el datumIso >>> el datumIso) >>> tup2
+45 -6
View File
@@ -9,7 +9,7 @@ module Gyehoek.Sexp.Grammar.Base
, DatumGrammar , DatumGrammar
, DataGrammar , DataGrammar
, Grammar , Grammar
, ListContext , ListContext(..)
, (:-)((:-)) , (:-)((:-))
-- * lists -- * lists
, list , list
@@ -17,6 +17,7 @@ module Gyehoek.Sexp.Grammar.Base
, el , el
, rest , rest
, restData , restData
, nonEmptyData
, headTagged0' , headTagged0'
, headTagged0 , headTagged0
, headTagged1' , headTagged1'
@@ -32,6 +33,8 @@ module Gyehoek.Sexp.Grammar.Base
, integer , integer
, int , int
, unreadable , unreadable
-- ** symbols
, symBuiltin
-- * TODO: sort lol -- * TODO: sort lol
, prismIso , prismIso
, isoIso, decorate , isoIso, decorate
@@ -41,7 +44,7 @@ module Gyehoek.Sexp.Grammar.Base
, lambdaLike , lambdaLike
, lambdaKeyword , lambdaKeyword
, kappaKeyword , kappaKeyword
, beginLike, headTagged2', dottedList , beginLike, headTagged2', dottedList, reifyContext, recontextualise, decontextualise
) where ) where
import Data.InvertibleGrammar import Data.InvertibleGrammar
@@ -49,7 +52,7 @@ import Data.InvertibleGrammar.Base
import Data.InvertibleGrammar.Base as Re import Data.InvertibleGrammar.Base as Re
( Grammar(..)) ( Grammar(..))
import Data.InvertibleGrammar.Combinators import Data.InvertibleGrammar.Combinators
import Gyehoek.Prelude hiding (iso, cons, coerced, Iso, Simple, simple) import Gyehoek.Prelude hiding (flipped, traversed, iso, cons, coerced, Iso, Simple, simple)
import Gyehoek.Sexp.Syntax hiding (position) import Gyehoek.Sexp.Syntax hiding (position)
import Gyehoek.Sexp.Print (printDatum') import Gyehoek.Sexp.Print (printDatum')
import Data.Scientific (Scientific) import Data.Scientific (Scientific)
@@ -57,6 +60,7 @@ import qualified Data.Scientific as Sci
import qualified Data.Text as T import qualified Data.Text as T
import Control.Monad.RWS (modify) import Control.Monad.RWS (modify)
import qualified Data.List.NonEmpty as NE import qualified Data.List.NonEmpty as NE
import Data.Foldable (toList)
-- $setup -- $setup
@@ -165,6 +169,33 @@ el
-> G (ListContext :- t) (ListContext :- t') -> G (ListContext :- t) (ListContext :- t')
el g = coerced (Flip cons >>> onTail g >>> Step) el g = coerced (Flip cons >>> onTail g >>> Step)
reifyContext :: G (ListContext :- t) (List Datum :- t)
reifyContext = iso coerce coerce
decontextualise
:: G (List Datum :- t) (List Datum :- t')
-> G (ListContext :- t) t'
decontextualise g = reifyContext >>> g >>> end
where
end = Flip $ PartialIso
(\t -> [] :- t)
(\(lst :- t) ->
case lst of
[] -> Right t
d:_ -> Left $ unexpectedDatum d)
recontextualise
:: G (ListContext :- t) (ListContext :- t')
-> G (List Datum :- t) t'
recontextualise g = flipped reifyContext >>> g >>> end
where
end = Flip $ PartialIso
(\t -> MkListContext [] :- t)
(\(MkListContext lst :- t) ->
case lst of
[] -> Right t
d:_ -> Left $ unexpectedDatum d)
-- | matches the remainder of a list as repetition of a given -- | matches the remainder of a list as repetition of a given
-- grammar. -- grammar.
-- --
@@ -231,13 +262,21 @@ rest g =
-- >>> encodeTest dataRestGrammar $ MkExample [1,2,3] "end" -- >>> encodeTest dataRestGrammar $ MkExample [1,2,3] "end"
-- (1 2 3 end) -- (1 2 3 end)
restData restData
:: G (List Datum :- t) (a :- t) :: G (List Datum :- t) t'
-> G (ListContext :- t) (ListContext :- a :- t) -> G (ListContext :- t) (ListContext :- t')
restData g = restData g =
iso coerce coerce iso coerce coerce
>>> g >>> g
>>> push (MkListContext []) (const True) mempty >>> push (MkListContext []) (const True) mempty
nonEmptyData :: DatumGrammar a -> DataGrammar (NonEmpty a)
nonEmptyData g = partialOsi
(\case
[] -> Left $ expected "non-empty sequence"
x:xs -> Right $ x:|xs)
toList
>>> (onHead . traversed . sealed $ g)
snoced snoced
:: Snoc s s a a :: Snoc s s a a
=> Grammar p (s :- a :- t) (s :- t) => Grammar p (s :- a :- t) (s :- t)
@@ -389,7 +428,7 @@ letLike
:: Text :: Text
-> (forall t. G (Datum :- t) (a :- t)) -> (forall t. G (Datum :- t) (a :- t))
-> (forall t. G (Datum :- t) (b :- t)) -> (forall t. G (Datum :- t) (b :- t))
-> G (Datum :- (List (a, b) :- t1)) t2 -> G (Datum :- List (a, b) :- t1) t2
-> G (Datum :- t1) t2 -> G (Datum :- t1) t2
letLike kw name rhs e = listWithIndentation (NSpecial 1) $ letLike kw name rhs e = listWithIndentation (NSpecial 1) $
el (symBuiltin kw) >>> el bindings >>> el e el (symBuiltin kw) >>> el bindings >>> el e
+11
View File
@@ -39,6 +39,7 @@ module Gyehoek.Sexp.Syntax
, Ann(..) , Ann(..)
, noAnn , noAnn
, ann , ann
, dat
, pattern List' , pattern List'
, position , position
, stripAnn , stripAnn
@@ -152,12 +153,22 @@ deriveEq1 ''CompoundF
deriveShow1 ''DatumF deriveShow1 ''DatumF
deriveEq1 ''DatumF deriveEq1 ''DatumF
--- optics
-- affine
cdr :: Traversal' Datum Datum
cdr k (a :< CompoundF (ListF ind xs)) = _
--- modification and extraction of annotations --- modification and extraction of annotations
ann :: Lens' Datum Ann ann :: Lens' Datum Ann
ann = _extract ann = _extract
dat :: Lens' Datum (DatumF Datum)
dat = _unwrap
syntax :: Lens' Datum Syn syntax :: Lens' Datum Syn
syntax = ann . #syntax syntax = ann . #syntax
-29
View File
@@ -1,29 +0,0 @@
module Gyehoek.Stack.Lower
( lowerProgram
) where
import Gyehoek.Stack.Syntax
import Gyehoek.Wasm qualified as Wasm
import Gyehoek.Prelude
import Gyehoek.Wasm (wat, watM)
lowerRoutine :: Routine -> Wasm.Function
lowerRoutine rt = _
lowerBlock :: Block -> Wasm.Expr
lowerBlock = _
lowerInstr :: Instr -> Wasm.Expr
lowerInstr = \case
-- PopCont ktail -> [wat|
-- |]
lowerProgram :: Program -> Eff es Wasm.Module
lowerProgram p = pure [watM|
(module
##{rs})
|]
where
rs = p ^.. #routines . each . to lowerRoutine
-150
View File
@@ -1,150 +0,0 @@
{-# LANGUAGE TemplateHaskellQuotes #-}
{-# LANGUAGE TypeFamilies #-}
{-# LANGUAGE TemplateHaskell #-}
{-# LANGUAGE DeriveAnyClass #-}
module Gyehoek.Stack.Syntax
( Program(..)
, Routine(..)
, Instr(..)
, Block(..)
, Tail(..)
, Val(..)
, Lit(..)
, Obj(..)
, Imm(..)
, Hob(..)
, Prim(..)
, Name(..)
, Reg(..)
, Label(..)
, pattern ValLabel
, pattern ObjLabel
, stkP
) where
import Control.Lens
import qualified Gyehoek.Sexp as S
import Gyehoek.Scheme.Syntax (Name(..), Lit(..), Prim(..))
import GHC.Exts (IsList(..))
import Data.List (intersperse)
import Gyehoek.CPS.Syntax (Imm(..), Obj(..), Hob(..), pattern ObjLabel, Reg, Label)
import Gyehoek.Prelude
import Gyehoek.Sexp ((:-)((:-)))
newtype Program = MkProgram
{ routines :: HashMap Label Routine
}
deriving stock (Show, Generic, Data)
deriving newtype (Semigroup, Monoid)
deriving anyclass (NFData)
instance IsList Program where
type Item Program = Routine
fromList rs = MkProgram
{ routines = fromList [ (r.label, r) | r <- rs ]
}
toList = toListOf $ #routines . each
data Routine = MkRoutine
{ label :: Label
, start :: Block
}
deriving stock (Show, Generic, Data)
deriving anyclass (NFData)
data Block = MkBlock
{ code :: List Instr
, tail :: Tail
}
deriving stock (Show, Generic, Data)
deriving anyclass (NFData)
data Tail
-- | call the procedure at stack index `n` supplied with `n`
-- arguments on top of the stack, then return by calling the
-- continuation at stack index `n+1`.
= TailCall Int
| Call Int
| If Val Block Block
| Return Int
| CallCC
deriving stock (Show, Generic, Data)
deriving anyclass (NFData)
data Instr
= Pop Reg
| Push Val
| Load Reg Int
| Prim (Prim Val)
deriving stock (Show, Generic, Data)
deriving anyclass (NFData)
data Val
= ValReg Reg
| ValImm Imm
deriving stock (Show, Generic, Data, Eq)
deriving anyclass (NFData)
pattern ValLabel :: Label -> Val
pattern ValLabel x = ValImm (ImmLabel x)
--- sexp work
pure []
instance S.DatumIso Instr where
datumIso = S.match
$ S.With (S.headTagged1 "pop!" S.datumIso >>>)
$ S.With (S.headTagged1 "push!" S.datumIso >>>)
$ S.With (S.headTagged2 "load" S.datumIso S.datumIso >>>)
$ S.With (S.headTagged1 "prim" S.datumIso >>>)
$ S.End
where
instance S.DataIso Block where
dataIso = S.with \g ->
S.flipped S.snoced
>>> S.onHead (S.traversed $ S.sealed S.datumIso)
>>> S.onTail (S.datumIso @Tail)
>>> S.swap
>>> g
instance S.DatumIso Tail where
datumIso = S.match
$ S.With (S.headTagged1 "tail-call" S.datumIso >>>)
$ S.With (S.headTagged1 "call" S.datumIso >>>)
$ S.With (if_ >>>)
$ S.With (S.headTagged1 "return" S.datumIso >>>)
$ S.With (S.headTagged0 "call/cc" >>>)
$ S.End
where
-- if_ = S.ifLike "if" (S.datumIso @Val) S.datumIso S.datumIso
if_ = S.ifLike "if" (S.datumIso @Val) (branch "then") (branch "else")
branch :: Text -> S.DatumGrammar Block
branch s =
S.listWithIndentation (S.NSpecial 0) $
S.el (S.decorate S.SynBuiltin >>> S.sym s)
>>> S.restData (S.dataIso @Block)
instance S.DatumIso Val where
datumIso = S.match
$ S.With (S.datumIso >>>)
$ S.With (S.datumIso >>>)
$ S.End
instance S.DatumIso Routine where
datumIso = S.with \rout ->
S.listWithIndentation (S.NSpecial 1)
( S.el (S.decorate S.SynBuiltin >>> S.sym "define")
>>> S.el (S.datumIso @Label)
>>> S.restData (S.dataIso @Block)
)
>>> rout
instance S.DataIso Program where
dataIso = S.dataIso @(List Routine) >>> S.iso fromList toList
stkP :: S.QuasiQuoter
stkP = S.makeSxs [|| S.fromDataUnsafe (S.dataIso @Program) ||]
-521
View File
@@ -1,521 +0,0 @@
{-# LANGUAGE ViewPatterns, MultilineStrings #-}
{-# LANGUAGE TypeFamilies #-}
{-# LANGUAGE DeriveAnyClass #-}
module Gyehoek.Stack.VM
( VM(..)
, Env(..)
, eval
, trace
, module Gyehoek.Stack.Syntax
, writeObj
, traceEval
) where
import Gyehoek.Stack.Syntax
import Control.Lens
import qualified Data.HashMap.Strict as H
import Data.List (unfoldr, intersperse, compareLength)
import Gyehoek.Prelude
import qualified Data.List.NonEmpty as NE
import Lucid
import Data.Foldable (traverse_)
import qualified Gyehoek.Sexp as S
import Gyehoek.Jalmot
import Text.Pretty.Simple (pStringNoColor, pShowNoColor)
import Effectful.State.Static.Local (runState, evalState, get)
import Data.Traversable
import Control.Applicative (Alternative(..))
import Gyehoek.Sexp.Print (htmlData)
import Control.DeepSeq (deepseq, ($!!))
import Gyehoek.Sexp.Print (htmlData, htmlDatum)
import Control.DeepSeq (deepseq, ($!!))
import Data.String (fromString)
import Data.Monoid (First)
import GHC.Stack (popCallStack)
import Data.Maybe (fromMaybe)
-- | non-essential information maintained only to aide in debugging.
data DebugVM = MkDebugVM
{ activeRoutine :: Label
}
deriving (Show, Generic)
newtype Frame = MkFrame { locals :: List Obj }
deriving stock (Show, Generic)
-- affine
returnAddress :: Traversal' Frame Obj
returnAddress = #locals . _last
-- affine
activeProcedure :: Traversal' Frame Obj
activeProcedure = #locals . _init . _last
newtype Stack = MkStack { frames :: NonEmpty Frame }
deriving stock (Show, Generic)
data VM = MkVM
{ stack :: Stack
, code :: List Instr
, tail :: Tail
, registers :: HashMap Reg Obj
, stdout :: Text
, result :: Maybe (List Obj)
, debug :: DebugVM
}
deriving (Show, Generic)
type instance Index Frame = Int
type instance IxValue Frame = Obj
instance Ixed Frame where
ix j = wrappedIso . ix j
instance Cons Frame Frame Obj Obj where
_Cons = prism'
(\(x,MkFrame xs) -> MkFrame (x:xs))
\case
MkFrame (x:xs) -> Just (x, MkFrame xs)
MkFrame [] -> Nothing
instance Each Frame Frame Obj Obj where each = wrappedIso . each
instance Each Stack Stack Frame Frame where each = wrappedIso . each
pushes :: Foldable f => f Obj -> Frame -> Frame
pushes = flip $ foldr cons
_NonEmpty :: Iso (NonEmpty a) (NonEmpty b) (a, List a) (b, List b)
_NonEmpty = iso
(\(x:|xs) -> (x,xs))
(\(x,xs) -> x:|xs)
pushFrame :: Frame -> Stack -> Stack
pushFrame f (MkStack xs) = MkStack $ NE.cons f xs
activeFrame :: Lens' VM Frame
activeFrame = #stack . #frames . _NonEmpty . _1
data Env = MkEnv
{ labels :: HashMap Label Routine
}
deriving (Show, Generic)
step :: Jalmot :> es => Env -> VM -> Eff es VM
step g vm = case vm ^. #code of
c:cs -> stepI g (vm & #code .~ cs) c
[] -> stepT g vm vm.tail
vmerror :: (HasCallStack, Jalmot :> es) => Text -> Eff es a
vmerror = throwError . VMError
stepI :: Jalmot :> es => Env -> VM -> Instr -> Eff es VM
stepI e vm (Load r j) = do
x <- expectOf [i|object at index #{j}|] (activeFrame . ix j) vm
pure $ vm & #registers . at r ?~ x
stepI e vm (Push v) = traverseOf activeFrame push vm
where push xs = cons <$> evalVal e vm v <*> pure xs
stepI g vm (Prim p) = stepP g vm p
stepI e vm (Pop r) = case vm ^? activeFrame . _Cons of
Nothing -> vmerror "empty stack"
Just (x,xs) -> pure $ vm & #registers . at r ?~ x
& activeFrame .~ xs
stepI e vm ins = vmerror [i|unimplemented instruction: #{ins}|]
stepT :: Jalmot :> es => Env -> VM -> Tail -> Eff es VM
stepT g vm tc@(Call nargs) = do
(args,f,ret,frm) <- parseCall nargs (vm ^. activeFrame)
& expectOf [i|bad call: #{show tc}|] _Just
rt <- getRoutine g f
let newFrame = MkFrame $ args ++ [f,ret]
pure $ vm
& jumpToRoutine rt
& activeFrame .~ frm
-- it is not essential we clear the registers, but it'll
-- make bugs more obvious.
& #registers .~ mempty
& #stack %~ \stk ->
case f of
ObjHob (HobContinuation {stack}) ->
coerce $ stack & _NonEmpty . _1 <>:~ (args ++ [f])
_ -> pushFrame newFrame stk
stepT g vm tc@(Return nret) = do
(xs,_) <- splitAtExact nret (vm ^. activeFrame . #locals)
& expectOf [i|bad return: #{show tc}|] _Just
expectOf [i|no return addr|] (activeFrame . returnAddress) vm >>= \case
ObjLabel "halt" -> pure $ vm & #result ?~ xs
ra -> do
rt <- getRoutine g ra
vm & traverseOf #stack (fmap snd . popFrame)
& mapped . activeFrame %~ pushes xs
& mapped %~ jumpToRoutine rt
-- it is not essential we clear the registers, but it'll make
-- bugs more obvious.
& mapped . #registers .~ mempty
stepT g vm tc@(TailCall nargs) = do
(args,f,ra) <- parseTailCall nargs (vm ^. activeFrame)
& expectOf [i|bad call: #{show tc}|] _Just
case f of
ObjLabel "halt" -> pure $ vm & #result ?~ args
_ -> do
rt <- getRoutine g f
let newFrame = MkFrame $ args ++ [f, ra]
pure $ vm
& jumpToRoutine rt
-- replace the active frame; don't push a new one.
& activeFrame .~ newFrame
-- it is not essential we clear the registers, but it'll make
-- bugs more obvious.
& #registers .~ mempty
stepT g vm (If c t f) = do
branch <- evalVal g vm c <&> \case
ObjImm (ImmBool False) -> f
_ -> t
pure $ jumpToBlock branch vm
stepT g vm CallCC = do
(cc,withcc,frm) <- parseCallCC (vm ^. activeFrame)
& expectOf "bad call/cc" _Just
let stk = vm.stack & #frames . _NonEmpty . _1 .~ frm
let reified_cc = ObjHob $ HobContinuation cc (coerce stk)
let newFrame = MkFrame [reified_cc, withcc, cc]
rt <- getRoutine g withcc
pure $ vm
& jumpToRoutine rt
-- replace the active frame; don't push a new one.
& activeFrame .~ newFrame
-- it is not essential we clear the registers, but it'll make
-- bugs more obvious.
& #registers .~ mempty
stepP :: Jalmot :> es => Env -> VM -> Prim Val -> Eff es VM
stepP g vm p = traverse (evalVal g vm) p >>= \case
PrimZeroP x -> case x of
ObjImm (ImmInt n) -> ret1 . ObjImm . ImmBool $ n == 0
_ -> vmerror [i|bad arg to zero?: #{x}|]
PrimAdd x y -> arith_binop (+) x y
PrimMul x y -> arith_binop (*) x y
PrimSub x y -> arith_binop (-) x y
PrimDiv x y -> arith_binop div x y
PrimMakeClosure f env ->
case f of
ObjImm (ImmLabel l) -> ret1 . ObjHob $ HobClosure l env
_ -> vmerror [i|expected label, got #{f}|]
PrimEnv -> do
x <- vm & expectOf "expected closure" (activeFrame . activeProcedure)
ret1 x
PrimEnvRef n -> do
(label,env) <- vm & expectOf "expected closure"
(activeFrame . activeProcedure . #_ObjHob . #_HobClosure)
x <- env & expectOf "expected upval" (ix n)
ret1 x
PrimCons x y -> ret1 $ ObjHob $ HobPair x y
PrimCar x -> case x of
ObjHob (HobPair car _) -> ret1 car
_ -> vmerror [i|expected pair, got ${x}|]
PrimCdr x -> case x of
ObjHob (HobPair _ cdr) -> ret1 cdr
_ -> vmerror [i|expected pair, got ${x}|]
-- PrimCaptureCC -> do
-- label <- vm & expectOf [i|bad stack, no return addr|]
-- (activeFrame . returnAddress . #_ObjImm . #_ImmLabel)
-- ret1 . ObjHob $ HobContinuation { label }
x -> vmerror [i|unimplemented prim: #{p}|]
where
ret vs = pure $ vm & activeFrame . #locals <>:~ vs
ret1 v = ret [v]
arith_binop op (ObjImm (ImmInt x)) (ObjImm (ImmInt y)) =
ret1 $ ObjImm (ImmInt (op x y))
arith_binop _ x y = vmerror [i|bad arith: #{x}, #{y}|]
popFrame :: (HasCallStack, Jalmot :> es) => Stack -> Eff es (Frame, Stack)
popFrame stk = case stk ^. #frames . to NE.uncons of
(_, Nothing) -> vmerror "no frame to pop"
(f, Just fs) -> pure (f, stk & #frames .~ fs)
jumpToBlock :: Block -> VM -> VM
jumpToBlock b vm = vm
& #code .~ b.code
& #tail .~ b.tail
jumpToRoutine :: Routine -> VM -> VM
jumpToRoutine rt vm = vm
& jumpToBlock rt.start
& #debug . #activeRoutine .~ rt.label
getLabel :: Obj -> Maybe Label
getLabel = \case
ObjHob (HobClosure {label}) -> Just label
ObjHob (HobContinuation {cont}) -> getLabel cont
ObjImm (ImmLabel label) -> Just label
x -> Nothing
getRoutine :: (HasCallStack, Jalmot :> es) => Env -> Obj -> Eff es Routine
getRoutine g f = do
l <- getLabel f & expectOf [i|no label for #{f}|] _Just
case g ^. #labels . at l of
Just rt -> pure rt
Nothing -> vmerror [i|undefined label #{l}|]
expectOf
:: (HasCallStack, Jalmot :> es)
=> Text -> Getting (First a) s a -> s -> Eff es a
expectOf msg l = maybe (vmerror msg) pure . preview l
evalToLabel :: Jalmot :> es => Env -> VM -> Val -> Eff es Label
evalToLabel e vm v =
evalVal e vm v >>= \case
ObjImm (ImmLabel x) -> pure x
x -> vmerror [i|not a label: #{x}|]
evalVal :: Jalmot :> es => Env -> VM -> Val -> Eff es Obj
evalVal e vm = \case
ValImm imm -> pure $ ObjImm imm
ValReg r -> case vm ^. #registers . at r of
Just x -> pure x
Nothing -> vmerror [i|undefined register: #{r}|]
splitAtExact :: Int -> List a -> Maybe (List a, List a)
splitAtExact n xs = case compareLength xs n of
(EQ;GT) -> Just $ splitAt n xs
LT -> Nothing
takeExact :: Int -> List a -> Maybe (List a)
takeExact n xs = case compareLength xs n of
(EQ;GT) -> Just $ take n xs
LT -> Nothing
parseCallCC :: Frame -> Maybe (Obj, Obj, Frame)
parseCallCC frm = do
([cc,withcc],ys) <- splitAtExact 2 (frm ^. #locals)
pure (cc,withcc,MkFrame ys)
parseCall :: Int -> Frame -> Maybe (List Obj, Obj, Obj, Frame)
parseCall nargs frm = do
(xs,ys) <- splitAtExact (nargs+2) (frm ^. #locals)
let (xs',[f,ret]) = splitAt nargs xs
pure (xs',f,ret,MkFrame ys)
parseTailCall :: Int -> Frame -> Maybe (List Obj, Obj, Obj)
parseTailCall nargs frm = do
(xs,_) <- splitAtExact (nargs+1) (frm ^. #locals)
let (xs',f) = xs ^?! _Snoc
pure (xs',f,frm ^?! returnAddress)
initialVM :: VM
initialVM = MkVM
{ stack = MkStack . NE.singleton . MkFrame $
[ ObjLabel "start"
, ObjLabel "<nowhere at all>"
, ObjLabel "halt"
]
, tail = TailCall 0
, code = []
, registers = mempty
, stdout = ""
, result = Nothing
, debug = MkDebugVM
{ activeRoutine = "<nowhere>"
}
}
initialEnv :: Program -> Env
initialEnv p = MkEnv
{ labels = p.routines
}
loop :: (a -> Either b a) -> a -> b
loop f a = case f a of
Right a' -> loop f a'
Left b -> b
loopM :: Monad m => (a -> m (Either b a)) -> a -> m b
loopM f a = f a >>= \case
Right a' -> loopM f a'
Left b -> pure b
eval :: Jalmot :> es => Program -> Eff es (List Obj)
eval p = initialVM & loopM \vm -> case vm ^. #result of
Nothing -> Right <$> step (initialEnv p) vm
Just rs -> pure . Left $ rs
data Trace
= Step { vm :: VM, next :: Trace }
| StepToSuccess { vm :: VM, result :: List Obj }
| StepToFailure { vm :: VM, err :: AJalmotCS }
deriving (Show)
trace :: Program -> Trace
trace p = go (initialEnv p) initialVM
where
go g vm =
case vm.result of
Just rs -> StepToSuccess vm rs
Nothing ->
case runPureEff . runJalmotCS $ step g vm of
Left err -> StepToFailure vm err
Right vm' -> Step vm (go g vm')
writeObj :: Obj -> Text
writeObj = runJalmotUnsafe . S.encodeWith' S.datumIso
traceEval :: IOE :> es => Program -> Eff es ()
traceEval p = do
let t = trace p
liftIO . renderToFile "trace.html" . ppDoc p $ t
ppDoc :: Program -> Trace -> Html ()
ppDoc p t =
html_ do
head_ do
title_ "stackify trace"
style_ """
pre {
max-width: 95vw;
overflow: scroll;
}
table {
max-width: 95vw;
}
tbody > tr:nth-of-type(even) {
background-color: rgb(237 238 242);
}
.loc {
font-size: 0.8rem;
}
.syn-builtin, .syn-macro {
color: purple;
font-style: italic;
font-weight: bold;
}
.syn-constant {
color: olive;
}
.syn-procedure {
color: teal;
}
td pre {
display: inline
}
.syn-paren-0 { color: maroon; }
.syn-paren-1 { color: olive; }
.syn-paren-2 { color: green; }
.syn-paren-3 { color: navy; }
.syn-paren-4 { color: purple; }
.stack-frame
{ display: inline-flex
; flex-direction: row
; column-gap: 0.5em
}
"""
body_ do
details_ do
summary_ "stack code"
pre_ $ code_ do
htmlData . runJalmotUnsafe . S.toData S.dataIso $ p
ppTrace t
ppTrace :: Trace -> Html ()
ppTrace trace =
table_ do
thead_ $ tr_ do
traverse_ (th_ [scope_ "col"])
["routine","next instruction","stack frame"]
tbody_ do
go trace
where
go :: Trace -> Html ()
go = \case
Step vm next -> ppVM vm >> go next
StepToSuccess vm rs -> do
tr_ [class_ "trace-result"] do
td_ do
details_ do
summary_ "result"
pre_ do
code_ . toHtml . pShowNoColor $ vm
td_ [colspan_ "2"] do
sequence_ . intersperse " | " $ code_ . ppDatum <$> rs
StepToFailure vm err -> do
ppVM vm
tr_ [class_ "trace-failure"] do
td_ [colspan_ "3"] do
details_ do
summary_ "error"
pre_ do
samp_ do
fromString $ displayException err
ppVM :: VM -> Html ()
ppVM vm = do
tr_ do
td_ do
details_ do
summary_ do
var_ [class_ "loc"] do
vm ^. #debug . #activeRoutine . to ppDatum
pre_ do
code_ . toHtml . pShowNoColor $ vm
td_ do
code_ curi
td_ do
ppStack vm.stack
where
curi = vm ^?! failing (#code . _head . to ppDatum) (#tail . to ppDatum)
ppStack :: Stack -> Html ()
ppStack stk = do
span_ [class_ "stack"] do
stk ^.. each
& fmap ppFrame
& intersperse " | "
& sequence_
ppFrame :: Frame -> Html ()
ppFrame frm = do
span_ [class_ "stack-frame"] do
sequence_ $ frm ^.. #locals . each . to ppDatum
ppData :: S.DataIso a => a -> Html ()
ppData = htmlData . runJalmotUnsafe . S.toData S.dataIso
ppDatum :: S.DatumIso a => a -> Html ()
ppDatum = htmlDatum . runJalmotUnsafe . S.toDatum S.datumIso
fac (n :: Int) = [stkP|
(define $start
(push! $fac)
(push! #{n})
(tail-call 1))
(define $fac
(load %n 0)
(prim %x0 (zero? %n))
(if %x0
(then (push! 1)
(return 1))
(else (prim %x1 (- %n 1))
(push! $fac-c0)
(push! $fac)
(push! %x1)
(call 1))))
(define $fac-c0
(pop! %x2)
(pop! %n)
(prim %x3 (* %n %x2))
(push! %x3)
(return 1))
|]
-1
View File
@@ -1,4 +1,3 @@
{- HLINT ignore "Use newtype instead of data" -}
{-# LANGUAGE TypeFamilies #-} {-# LANGUAGE TypeFamilies #-}
{-# LANGUAGE OverloadedLists #-} {-# LANGUAGE OverloadedLists #-}
{-# LANGUAGE TemplateHaskellQuotes #-} {-# LANGUAGE TemplateHaskellQuotes #-}
BIN
View File
Binary file not shown.
+4 -5
View File
@@ -1,5 +1,4 @@
((λ () (import (scheme eval))
(* 2 (call/cc
(λ (k) (eval '(λ (x) x)
(begin (k 6) (environment))
3))))))
+68 -46
View File
@@ -5,53 +5,75 @@ import Test.Tasty.HUnit
import Gyehoek.CPS.Syntax (cps, Obj(..), Hob(..), Imm(..)) import Gyehoek.CPS.Syntax (cps, Obj(..), Hob(..), Imm(..))
import Gyehoek.CPS.Eval qualified as Sut import Gyehoek.CPS.Eval qualified as Sut
import Data.List (List) import Data.List (List)
import Test.Tasty.ExpectedFailure (ignoreTestBecause) import Test.Tasty.ExpectedFailure (ignoreTestBecause, expectFail)
import System.Directory (listDirectory)
import Test.Tasty.Silver
import System.FilePath
import Control.Exception
import qualified Gyehoek.Driver as Driver
import Control.DeepSeq (($!!))
import System.Exit (ExitCode(..))
import qualified Data.Text as T
import Data.Function (applyWhen)
import Gyehoek.Prelude
test_cpsInterpreter = brokenEvalTests :: List String
ignoreTestBecause "i forgorrrr" $ brokenEvalTests =
testGroup "cps interpreter" $ []
[ primitives -- [ "adder"
, testCase "halt with constant" do -- , "apply2"
evalsTo [ObjImm (ImmInt 123)] [cps| -- , "apply-twice"
(continue halt 123) -- , "arith"
|] -- , "begin-1"
, testCase "identity cont" do -- , "callcc-constant"
evalsTo [ObjImm (ImmInt 154)] [cps| -- , "callcc-discard"
(letrec ((id (κ (x) -- , "callcc-early-exit-1"
(continue halt x)))) -- , "callcc-early-exit-2"
(continue id 154)) -- , "callcc-early-exit-3"
|] -- , "callcc-early-exit-4"
, testCase "identity function" do -- , "callcc-early-exit-5"
evalsTo [ObjImm (ImmInt 456)] [cps| -- , "callcc-early-exit-6"
(letrec ((id (λ (x ktail) -- , "callcc-nested-1"
(continue ktail x)))) -- , "callcc-nested-2"
(id 456 halt)) -- , "complicated-1"
|] -- , "cons-1"
, testCase "square" do -- , "factorial"
evalsTo [ObjImm (ImmInt 81)] [cps| -- , "false"
(letrec ((square (λ (x ktail) -- , "fn-of-fn"
(prim (* x x) -- , "if-false"
(κ (r) (continue ktail r)))))) -- , "if-number"
(square 9 halt)) -- , "if-true"
|] -- , "lambda"
] -- , "letrec-fn"
-- , "let-fn"
-- , "lit-int"
-- , "square"
-- , "true"
-- ]
evalsTo :: HasCallStack => List Obj -> Sut.Exp -> Assertion test_eval :: IO TestTree
evalsTo rs e = Sut.evalExp e @?= rs test_eval = do
cs <- listDirectory "golden/exec"
primitives = testGroup "primitives" <&> fmap ("golden/exec" </>)
[ testGroup "arith" pure $ testGroup "cps interpreter"
[ testCase "basic 1" do [ testGroup "higher-order" $ cpsCase Driver.eval_cps2_e2e <$> cs
evalsTo [ObjImm (ImmInt 20)] [cps| -- , testGroup "first-order" $ cpsCase Driver.eval_cps1_e2e <$> cs
(prim (* 4 5)
(κ (x) (continue halt x)))
|]
, testCase "basic 2" do
evalsTo [ObjImm (ImmInt 35)] [cps|
(prim (* 2 16)
(κ (x) (prim (+ x 3)
(κ (r) (continue halt r)))))
|]
] ]
]
maybeBroken name broken = applyWhen (name `elem` broken) expectFail
cpsCase :: (FilePath -> IO Text) -> FilePath -> TestTree
cpsCase f test =
maybeBroken testName brokenEvalTests $
goldenVsAction testName resultFile action printProcResult
where
testName = takeFileName test
resultFile = test </> "exec"
sourceFile = test </> "source.scm"
action = catch @SomeException
(do r <- f sourceFile
pure $!! ( ExitSuccess
, r
, "" ))
\e -> pure (ExitFailure 1, "", T.pack $ displayException e)
-95
View File
@@ -1,95 +0,0 @@
module Gyehoek.Test.CPS.Stackify where
import Test.Tasty (TestTree, testGroup)
import Test.Tasty.HUnit
import qualified Gyehoek.CPS.Stackify as Sut
import Gyehoek.Stack.VM as Stk
import Gyehoek.CPS.Syntax (cps)
import Gyehoek.CPS.Syntax qualified as CPS
import Gyehoek.GenSym (runGenSym)
import Effectful
import Gyehoek.Prelude
import Gyehoek.Jalmot
test_stackify =
[ trivialReturn
, tailCall
, prim
, condition
, procedure
]
evalsTo :: HasCallStack => List Obj -> Sut.Program -> Assertion
evalsTo rs e = runJalmotUnsafe (Stk.eval e') @?= rs
where
e' = e & Sut.stackifyProgram & runGenSym & runPureEff
trivialReturn = testGroup "trivial return"
[ testCase "return int" do
evalsTo [ObjImm (ImmInt 4)]
[cps|(λ (ktail) (continue ktail 4))|]
, testCase "return bool" do
evalsTo [ObjImm (ImmBool True)]
[cps|(λ (ktail) (continue ktail #t))|]
evalsTo [ObjImm (ImmBool False)]
[cps|(λ (ktail) (continue ktail #f))|]
]
tailCall = testGroup "tail call"
[ testCase "square" do
evalsTo [ObjImm (ImmInt 16)] [cps|
(λ (ktail0)
(letrec ((square (λ (x ktail)
(prim (* x x)
(κ (x0) (continue ktail x0))))))
(square 4 halt)))
|]
]
prim = testGroup "prim"
[ testCase "multiply" do
evalsTo [ObjImm (ImmInt 20)]
[cps|(λ (ktail0)
(prim (* 4 5)
(κ (x) (continue ktail0 x))))|]
, testCase "add" do
evalsTo [ObjImm (ImmInt 9)]
[cps|(λ (ktail0)
(prim (+ 4 5)
(κ (x) (continue ktail0 x))))|]
-- , testGroup "call/cc"
-- [ testCase "trivial" do
-- evalsTo [ObjImm (ImmInt 123)]
-- [cps|(letrec ((f (λ (cc ktail) (continue cc 123))))
-- (prim (call/cc f)))|]
-- ]
]
condition = testCase "if" do
evalsTo [ObjImm (ImmInt 123)]
[cps|(λ (ktail0)
(if #t (continue ktail0 123) (continue ktail0 456)))|]
evalsTo [ObjImm (ImmInt 456)]
[cps|(λ (ktail0)
(if #f (continue ktail0 123) (continue ktail0 456)))|]
procedure = testGroup "procedure"
[ testCase "factorial" do
evalsTo [ObjImm (ImmInt 720)]
[cps|(λ (ktail0)
(letrec ((fac (λ (n ktail)
(prim (zero? n)
(κ (x0)
(if x0
(continue ktail 1)
(prim (- n 1)
(κ (x1)
(letrec ((fac-k0
(κ (x2)
(prim (* n x2)
(κ (x3)
(continue ktail x3))))))
(fac x1 fac-k0))))))))))
(fac 6 halt)))|]
]
+2 -2
View File
@@ -46,9 +46,9 @@ qq = testGroup "parser"
, testCase "application" do , testCase "application" do
assertEqual "" (Sut.ExpApply (Sut.ValVar "f") assertEqual "" (Sut.ExpApply (Sut.ValVar "f")
[Sut.ValVar "x",Sut.ValVar "y"] [Sut.ValVar "x",Sut.ValVar "y"]
"k") (Sut.KexpVar "k"))
[cps|(f x y k)|] [cps|(f x y k)|]
assertEqual "" (Sut.ExpApply (Sut.ValVar "f") assertEqual "" (Sut.ExpApply (Sut.ValVar "f")
[] "k") [] (Sut.KexpVar "k"))
[cps|(f k)|] [cps|(f k)|]
] ]
-84
View File
@@ -1,84 +0,0 @@
module Gyehoek.Test.Golden where
import Test.Tasty (TestTree, testGroup)
import Test.Tasty.Silver
import Gyehoek.Driver qualified as Driver
import System.FilePath
import Data.List (List)
import Data.Functor ((<&>))
import System.Directory
import Data.Function
import System.Environment.Blank (getEnvDefault)
import qualified System.Process.Text as PT
import Control.Exception (SomeException (SomeException), Exception (..), catch)
import Gyehoek.Stack.VM (writeObj)
import Data.Text qualified as T
import System.Exit (ExitCode(..))
import Test.Tasty.ExpectedFailure (expectFail, ignoreTestBecause)
import Control.DeepSeq (($!!))
import Text.Pretty.Simple (pShow, pShowNoColor)
import Control.Lens (strict, view)
import Gyehoek.Sexp.Read qualified as Read
import Effectful
brokenWasmTests :: List String
brokenWasmTests =
[
]
brokenStackifyTests :: List String
brokenStackifyTests =
[
]
test_root :: IO TestTree
test_root = do
all_cases <- listDirectory "golden/exec"
let tests = all_cases
& fmap ("golden/exec"</>)
testGroup "execution" <$> sequenceA
[ ignoreTestBecause "wasm codegen is on the backburner"
<$> wasmTests tests
, stackifyTests tests
]
maybeBroken name broken = applyWhen (name `elem` broken) expectFail
wasmTests :: List FilePath -> IO TestTree
wasmTests files = do
cmd <- getEnvDefault "GYEHOEK_WASM_RUNTIME"
"runtime/target/debug/gyehoek-wasm-runtime"
pure $ testGroup "wasm" $ files <&> \test ->
let testname = takeFileName test
scmfile = test </> "source.scm"
resultfile = test </> "exec"
action = do
t <- Driver.lower_e2e scmfile
PT.readProcessWithExitCode cmd ["-"] t
in maybeBroken testname brokenWasmTests $
goldenVsAction
testname
resultfile
action
printProcResult
stackifyTests :: List FilePath -> IO TestTree
stackifyTests files = do
pure $ testGroup "stackified" $ files <&> \test ->
let testname = takeFileName test
scmfile = test </> "source.scm"
resultfile = test </> "exec"
action =
catch @SomeException
(do rs <- Driver.eval_e2e scmfile
pure $!! ( ExitSuccess
, T.unwords . fmap writeObj $ rs
, "" ))
\e -> pure (ExitFailure 1, "", T.pack $ displayException e)
in maybeBroken testname brokenStackifyTests $
goldenVsAction
testname
resultfile
action
printProcResult
-111
View File
@@ -1,111 +0,0 @@
{-# LANGUAGE OverloadedLists #-}
module Gyehoek.Test.Stack.VM where
import Test.Tasty (TestTree, testGroup)
import Test.Tasty.HUnit
import Gyehoek.Stack.Syntax
import Gyehoek.Stack.VM qualified as Sut
import Data.List (List)
import Gyehoek.Jalmot
import Gyehoek.Prelude (i)
evalsTo :: List Obj -> Program -> Assertion
evalsTo rs p = runJalmotUnsafe (Sut.eval p) @?= rs
test_root = testGroup "stack machine"
[ testCase "immediate halt" do
evalsTo [] [stkP|
(define $start
(return 0))
|]
, testCase "lit int" do
evalsTo [ObjImm (ImmInt 3)] [stkP|
(define $start
(push! 3)
(return 1))
|]
, testCase "non-tail identity function" do
evalsTo [ObjImm (ImmInt 123)] [stkP|
(define $id
(return 1))
(define $c
(return 1))
(define $start
(push! $c)
(push! $id)
(push! 123)
(call 1))
|]
, testCase "tail identity function" do
evalsTo [ObjImm (ImmInt 123)] [stkP|
(define $id
(return 1))
(define $start
(push! $id)
(push! 123)
(tail-call 1))
|]
, testCase "return constant" do
evalsTo [ObjImm (ImmInt 123)] [stkP|
(define $start
(push! $silly)
(tail-call 1))
(define $silly
(push! 123)
(return 1))
|]
, testCase "return multiple" do
evalsTo [ObjImm (ImmInt n) | n <- [1,2,3]] [stkP|
(define $start
(push! 3)
(push! 2)
(push! 1)
(return 3))
|]
, testCase "return none" do
evalsTo [] [stkP|
(define $start
(return 0))
|]
, testCase "square" do
evalsTo [ObjImm (ImmInt 16)] [stkP|
(define $start
(push! $square)
(push! 4)
(tail-call 1))
(define $square
(pop! %x)
(prim (* %x %x))
(return 1))
|]
, testGroup "factorial"
let
hsfac (n :: Int) = foldr @List (*) 1 [1..n]
fac (n :: Int) = [stkP|
(define $start
(push! $fac)
(push! #{n})
(tail-call 1))
(define $fac
(load %n 0)
(prim (zero? %n))
(pop! %x0)
(if %x0
(then (push! 1)
(return 1))
(else (push! $fac-c0)
(push! $fac)
(prim (- %n 1))
(call 1))))
(define $fac-c0
(pop! %x2)
(pop! %n)
(prim (* %n %x2))
(return 1))
|]
mkcase n = testCase [i|#{n}|] do
evalsTo [ObjImm . ImmInt $ hsfac n] $ fac n
-- 20 is the greatest `n` for which n! ≤ maxBount @Int
in [ mkcase n | n <- [0,1,6,20] ]
]