14 Commits
Author SHA1 Message Date
msyds 35e1b0cbe2 stupid
build / build (push) Failing after 1m24s
2026-08-30 10:31:46 -06:00
msyds 64641bb258 2026-08-30 05:39:13 -06:00
msyds 57b1cc830d wip: call/cc = capture/cc × invoke/cc 2026-08-30 03:33:51 -06:00
msyds 276c2c1249 fix: closure-conversion of recursive functions
build / build (push) Successful in 1m28s
2026-08-30 02:12:16 -06:00
msyds 03797d573b mark broken callcc tests 2026-08-30 02:12:16 -06:00
msyds 0df7280236 deconstruct closures only at the bytecode level 2026-08-30 02:12:16 -06:00
msyds a09c00badd works albeit comically inefficiently 2026-08-30 02:12:16 -06:00
msyds e7c0ae9161 return, pushcall
build / build (push) Failing after 1m23s
2026-08-29 07:25:48 -06:00
msyds 5ccb3f3e1a register & label newtypes 2026-08-28 11:39:37 -06:00
msyds 9cb169f9b8 new instrs, tail-call 2026-08-28 11:39:37 -06:00
msyds c0a44c89b4 wip: stack frames 2026-08-28 11:39:37 -06:00
msyds 49292d5d01 wip: call/cc primitives 2026-08-28 11:39:37 -06:00
msyds 679cc076ad fix html output
build / build (push) Successful in 1m21s
2026-08-27 02:16:52 -06:00
msyds 8048573cd8 fix tests
build / build (push) Successful in 1m19s
2026-08-27 02:01:32 -06:00
22 changed files with 730 additions and 274 deletions
+2 -1
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@@ -8,4 +8,5 @@ dist-newstyle
*.tix
.direnv
result
play/
play/
trace.html
+100
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@@ -0,0 +1,100 @@
* rationale?
previously, the VM's stack was used for storing local variables across blocks; a Scheme procedure was split into several low-level routines (one for the procedure itself and one for each continuation), and the stack was used as a communication channel for these separate routines. in contrast, registers were local to each routine. this aligns with Wasm's model of functions pretty well, with Wasm /locals/ acting as the VM's /registers/, and a global mutable stack serving as fallback.
this worked quite well until it became time to implement ~call/cc~.
we are considering making the following alterations to the VM:
- explicitly segment the stack into frames.
- passing procedures and return addresses on the stack.
- new instructions:
+ ~(tail-call /n/)~
+ ~(call /n/)~
+ ~(load /r/ /n/)~
+ ~(return /n/)~
* scratchpad
#+begin_src scheme
(letrec ((fac (λ (n)
(if (zero? n)
1
(* n (fac (- n 1)))))))
(fac 3))
#+end_src
#+begin_src scheme
(λ (ktail0)
(letrec ((fac
(λ (n ktail1)
(zero?
n
(κ (x0)
(if x0
(continue ktail1 1)
(- n 1
(κ (x1)
(fac x1
(κ (x2)
(* n x2 ktail1)))))))))))
(fac 3)))
#+end_src
#+begin_example
n ktail1
| |
| | x0
| | |
| | ^
| |
| | x1
| | |
| | ^
| |
| | x2
| | |
^ ^ ^
#+end_example
#+begin_src scheme
(define $fac-c0
(pop! %x0 0) ; [ x0 $fac-c0 n $fac ktail1 ]
(if %x0 ; [ $fac-c0 n $fac ktail1 ]
;; every variable but `ktail1' is dead so we pop them all.
;; this probably means that `if' should take two continuations
;; rather than two blocks.
(then (push! 1) ; [ $fac-c0 n $fac ktail1 ]
(return 1)) ; [ 1 $fac-c0 n $fac ktail1 ]
(else (load %n 1) ; [ $fac-c0 n $fac ktail1 ]
(prim %x1 (- %n 1)) ; [ $fac-c0 n $fac ktail1 ]
(push! $fac-c1) ; [ $fac-c0 n $fac ktail1 ]
(push! $fac) ; [ $fac-c1 $fac-c0 n $fac ktail1 ]
(push! %x1) ; [ $fac $fac-c1 $fac-c0 n $fac ktail1 ]
(call 1) ; [ x1 $fac $fac-c1 $fac-c0 n $fac ktail1 ]
)))
(define $fac-c1
(pop! %x2) ; [ x2 $fac-c1 $fac-c0 n $fac ktail1 ]
(load %n 3) ; [ $fac-c1 $fac-c0 n $fac ktail1 ]
(prim %x3 (* %n %x2))
(push! %x3) ; [ $fac-c1 $fac-c0 n $fac ktail1 ]
(return 1) ; [ x3 $fac-c1 $fac-c0 n $fac ktail1 ]
)
(define $fac
(load %ktail1 2) ; [ n $fac ktail1 ]
(load %n 0) ; [ n $fac ktail1 ]
(push! $fac-c0) ; [ n $fac ktail1 ]
(push! $zero?) ; [ $fac-c0 n $fac ktail1 ]
(push! %n) ; [ $zero? $fac-c0 n $fac ktail1 ]
(call 1) ; [ n $zero? $fac-c0 n $fac ktail1 ]
)
(define $start
(push! $fac) ; [ $start ktail0 ]
(push! 3) ; [ $fac $start ktail0 ]
(tail-call 1) ; [ 3 $fac $start ktail0 ]
;; ↑ `tail-call' knows how to dispose of the caller's stack frame.
)
#+end_src
+4 -1
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@@ -63,6 +63,7 @@ library
Gyehoek.CPS.Stackify
Gyehoek.CPS.Syntax
Gyehoek.Driver
Gyehoek.Language
Gyehoek.GenSym
Gyehoek.Jalmot
Gyehoek.Lift1
@@ -167,7 +168,9 @@ test-suite doctest
import: ghcstuffs, ghcstuffs-dev
type: exitcode-stdio-1.0
hs-source-dirs: test
build-depends: base
build-depends:
, base
, gyehoek
default-extensions: CPP
main-is: doctest.hs
+10 -14
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@@ -12,30 +12,26 @@ import Gyehoek.Prelude
close :: GenSym :> es => Exp -> Eff es Exp
close = transformM \case
ExpLetRec [(f, AbsLambda lam@(MkLambda bs kb m))] e -> do
f_code <- gensym' @Name $ f ^. _Wrapped'. to (<> "-code")
f_code <- gensym' @Name $ f ^. _Wrapped' . to (<> "-code")
-- it would probably be most sane to generate a symbol for `env`,
-- but we're reusing the lambda binding so we don't have to
-- explicitly substitute recursive calls.
let frees = nub $ freeWithBound' [f] lam
let frees = nub $ free' lam
let m' = ifoldr
(\n x q -> [cps|(prim (env-ref #{f} #{n})
(κ (#{x}) #{q}))|])
(\n x q ->
let p = if x == f then PrimEnv @Val else PrimEnvRef n
in [cps|
(prim #{p}
(κ (#{x}) #{q}))
|])
m frees
pure [cps|
(letrec ((#{f_code} (λ (#{f} ##{bs} #{kb})
(letrec ((#{f_code} (λ (##{bs} #{kb})
#{m'})))
(prim (make-closure ($ #{f_code}) ##{frees})
(prim (make-closure #{f_code} ##{frees})
(κ (#{f}) #{e})))
|]
ExpApply f xs ktail -> do
code <- gensym' @Name "code"
pure [cps|
(prim (env-code #{f})
(κ (#{code})
(#{code} #{f} ##{xs} #{ktail})))
|]
e -> pure e
closeProgram :: GenSym :> es => Program -> Eff es Program
+15 -12
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@@ -47,18 +47,21 @@ convert (Scm.ExpLit l) k = k . one . ValImm $ case l of
_ -> _
-- special case: call/cc is desugared during cps-conversion...
convert (Scm.ExpPrim (PrimCallCC withcc)) k = do
convert1 withcc \withcc' -> do
cc <- gensym' @Name "cc"
r <- gensym' "r"
m <- k . one $ ValVar r
ccish <- gensym' @Name "cc-ish"
x <- gensym' @Name "x"
pure [cps|
(letrec ((#{cc} (κ (#{r}) #{m})))
(letrec ((#{ccish} (λ (#{x} _) (continue #{cc} #{x}))))
(#{withcc'} #{ccish} #{cc})))
|]
-- 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..
-5
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@@ -59,11 +59,6 @@ eval g (ExpPrim p (MkKappa bs e)) = case evalVal g <$> p of
lbl = case x of
ObjImm (ImmLabel l) -> l
_ -> error [i|expected label, got #{x}|]
PrimEnvCode x -> ret . (:[]) . ObjImm . ImmLabel $ code
where
code = case x of
ObjHob (HobClosure lbl _) -> lbl
_ -> error [i|expected closure, got #{x}|]
_ -> error [i|unhandled prim: #{p}|]
where
ret rs = eval
+89 -67
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@@ -27,7 +27,7 @@ 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 `H.member` g.bound
x `elem` g.bound
-- && not (x `elem` g.contStack)
data BlockBuilder
@@ -48,14 +48,14 @@ stackify
=> Env -> Exp -> Eff es BlockBuilder
stackify g (ExpLetRec [(f, AbsKappa kap)] e) = do
stackifyKappa g f kap \g' kap' -> do
emitRoutine kap'
stackify g' e
kap' <- stackifyKappa g kap
emitRoutine . Stk.MkRoutine (MkLabel f) . buildBlock $ kap'
stackify g e
stackify g (ExpLetRec [(f, AbsLambda lam)] e) = do
stackifyLambda g f lam \g' lam' -> do
emitRoutine lam'
stackify g' e
lam' <- stackifyLambda g (MkLabel f) lam
emitRoutine lam'
stackify g e
stackify g (ExpIf c t f) = do
let c' = stackifyVal g c
@@ -63,104 +63,108 @@ stackify g (ExpIf c t f) = do
f' <- buildBlock <$> stackify g f
pure . Tail $ Stk.If c' t' f'
stackify g (ExpApply f xs ktail) = pure $
Code [ Stk.Push (Stk.ValReg l) | l <- ls ] $
Tail (Stk.TailCall (stackifyVal g f) (k : (stackifyVal g <$> xs)))
where
k = var g ktail
ls = fold $ (k ^? #ValImm . #ImmLabel)
>>= \klbl -> g ^. #liveness . at klbl
stackify g e@(ExpContinue k xs) = do
stackify g (ExpApply f xs ktail) = do
pure $
Code [ Stk.Push (Stk.ValReg l) | l <- ls ] $
Tail (Stk.TailCall k' (stackifyVal g <$> xs))
where
k' = stackifyVal g k
ls = fold $ (k' ^? #ValImm . #ImmLabel)
>>= \klbl -> g ^. #liveness . at klbl
Code [ Stk.Push $ stackifyVal g (ValVar ktail)
, Stk.Push $ stackifyVal g f
] $
Code (pushArgs g xs) $
Tail (Stk.Call (length xs))
-- stackify g (ExpPrim (PrimCallCC withcc) cc) = do
-- cc_l <- gensym' "cc"
-- rcc_l <- gensym' "reified-cc"
-- stackifyKappa g cc_l cc \g' rt -> do
-- emitRoutine rt
-- pure $
-- Code [ Stk.Prim rcc_l $ PrimReifyCC (Stk.ValLabel cc_l) ] $
-- Tail (Stk.TailCall (stackifyVal g' withcc) [Stk.ValLabel rcc_l])
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 p (MkKappa [x] e)) = do
e' <- stackify (g & #bound . at x ?~ Stk.ValReg x) e
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.Prim x (stackifyVal g <$> p) ] e'
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)
_ValName = failing #_ValVar (#_ValImm . #_ImmLabel . #_MkLabel)
stackifyKappa
:: (Stackify :> es, GenSym :> es)
=> Env -> Name -> Kappa
-> (Env -> Stk.Routine -> Eff es r)
-> Eff es r
stackifyKappa g name kap@(MkKappa xs m) w = do
let vs = (name, Stk.ValLabel name) : (bindReg <$> xs)
let ls = live g kap
m' <- stackify (g & #bound <>~ H.fromList (vs ++ (bindReg <$> ls))) m
let g' = g & #bound . at name ?~ Stk.ValLabel name
& #liveness . at name ?~ live g kap
let rt = Stk.MkRoutine name xs . buildBlock $
-- pop in the opposite order we push
Code [Stk.Pop x | x <- reverse ls] m'
w g' rt
=> 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 -> Name -> Lambda
-> (Env -> Stk.Routine -> Eff es r)
-> Eff es r
stackifyLambda g name (MkLambda xs k m) w = do
let vs = [ (x, Stk.ValReg x) | x <- k:xs ]
m' <- stackify (g & #bound <>~ H.fromList vs) m
let g' = g & #bound . at name ?~ Stk.ValLabel name
w g' $ Stk.MkRoutine name (k:xs) (buildBlock m')
=> 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 -> var g v
ValVar v -> case regOf g v of
Just r -> Stk.ValReg r
Nothing -> Stk.ValLabel (MkLabel v)
v -> error [i|unimplemented val: #{v}|]
var :: Env -> Name -> Stk.Val
var g v = case g ^. #bound . at v of
Just x -> x
Nothing -> Stk.ValLabel v
bindReg :: Name -> (Name, Stk.Val)
bindReg x = (x, Stk.ValReg x)
regOf :: Env -> Name -> Maybe Reg
regOf g x
| x `elem` g.bound || x == g.tail = Just . MkReg $ x
| otherwise = Nothing
data Env = MkEnv
{ bound :: HashMap Name Stk.Val
-- | `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 Name (List Name)
, liveness :: HashMap Label (List Name)
, tail :: Name
}
deriving (Show, Generic)
emptyEnv :: Env
emptyEnv = MkEnv mempty mempty
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 $ stackifyLambda g "start" lam (const emitRoutine)
(_,p) <- runStackify $ emitRoutine =<< stackifyLambda g "start" lam
pure p
letfn :: Program
@@ -176,3 +180,21 @@ letfn = [cps|
(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)))
|]
+47 -14
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@@ -18,6 +18,8 @@ module Gyehoek.CPS.Syntax
, Imm(..)
, Obj(..)
, Hob(..)
, Label(..)
, Reg(..)
, pattern Halt
, pattern Halt1
, _MkKappa
@@ -36,7 +38,7 @@ module Gyehoek.CPS.Syntax
, Abs(..)
, Free(..)
, pattern ValLabel
, labelName -- don't like that this is part of the api
, pattern ObjLabel
)
where
@@ -52,6 +54,8 @@ import Gyehoek.Prelude hiding (op)
import Gyehoek.Sexp (Datum)
import Gyehoek.Sexp (G, (:-)(..))
import qualified Data.InvertibleGrammar.Base as IG
import Gyehoek.GenSym (Gen)
import Data.String (IsString)
-- Data types
@@ -60,13 +64,23 @@ data Val
| ValVar Name
deriving (Show, Generic, Data, Eq)
pattern ValLabel :: Name -> Val
pattern ValLabel :: Label -> Val
pattern ValLabel x = ValImm (ImmLabel x)
newtype Label = MkLabel { inner :: Name }
deriving stock (Generic, Data)
deriving newtype (Show, Eq, Gen, IsString, Hashable)
deriving anyclass (NFData, Wrapped)
newtype Reg = MkReg { inner :: Name }
deriving stock (Generic, Data)
deriving newtype (Show, Eq, Gen, IsString, Hashable)
deriving anyclass (NFData, Wrapped)
data Imm
= ImmInt Int
| ImmBool Bool
| ImmLabel Name
| ImmLabel Label
| ImmUndefined
deriving stock (Show, Generic, Data, Eq)
deriving anyclass (NFData)
@@ -77,9 +91,13 @@ data Obj
deriving stock (Show, Generic, Data, Eq)
deriving anyclass (NFData)
pattern ObjLabel l = ObjImm (ImmLabel l)
-- | a heap object.
data Hob
= HobClosure { label :: Name, env :: List Obj }
= HobClosure { label :: Label, env :: List Obj }
-- should a continuation have a label, or an Obj?
| HobContinuation { cont :: Obj, stack :: NonEmpty (List Obj) }
| HobPair Obj Obj
deriving stock (Show, Generic, Data, Eq)
deriving anyclass (NFData)
@@ -169,29 +187,44 @@ instance S.DatumIso Imm where
datumIso = S.match
$ S.With (. S.int)
$ S.With (. S.datumIso)
$ S.With (. labelName)
$ S.With (. S.datumIso)
$ S.With (. S.unreadable (const "#<undefined>"))
$ S.End
labelName :: S.DatumGrammar Name
labelName = S.coproduct
[ S.decorate S.SynConstant >>> S.datumIso @Name >>> S.prismIso
(S.expected "label")
(prefixed @Name "$")
, S.list $ S.el (S.sym "$") >>> S.el (S.datumIso @Name)
]
instance S.DatumIso Label where
datumIso = S.with \g -> S.coproduct
[ S.decorate S.SynConstant >>> S.datumIso @Name >>> S.prismIso
(S.expected "label")
(prefixed @Name "$")
, S.list $ S.el (S.sym "$") >>> S.el (S.datumIso @Name)
]
>>> g
instance S.DatumIso Reg where
datumIso = S.with \g ->
S.decorate S.SynVariable >>> S.datumIso @Name >>> S.prismIso
(S.expected "register")
(prefixed @Name "%")
>>> g
instance S.DatumIso Hob where
datumIso = S.match
$ S.With (. closure)
$ S.With (. cont)
$ S.With (. conspair)
$ S.End
where
conspair = S.dottedList (S.el S.datumIso) S.datumIso
-- closures can be printed, but not parsed.
closure :: G (Datum :- t) (List Obj :- Name :- t)
closure :: G (Datum :- t) (List Obj :- Label :- t)
closure = IG.Flip $ IG.PartialIso
(\(env:-code:-t) -> S.Unreadable "#<procedure>" :- t)
(\(env:-code:-t) -> S.Unreadable [i|\#<procedure $#{code}>|] :- t)
(const . Left $ mempty)
cont :: G (Datum :- t) (NonEmpty (List Obj) :- _ :- t)
cont = IG.Flip $ IG.PartialIso
(\(_ :- l :- t) ->
let x = S.encodeOrShow' @Text S.datumIso l
in S.Unreadable [i|\#<continuation #{x}>|] :- t)
(const . Left $ mempty)
instance S.DatumIso Lambda where
+4
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@@ -0,0 +1,4 @@
module Gyehoek.Language
(
) where
+2
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@@ -19,6 +19,7 @@ module Gyehoek.Prelude
, (>>>)
, (>=>)
, (<=<)
, wrappedIso
) where
import Control.Lens hiding (List, (:<))
@@ -40,4 +41,5 @@ import Data.List.NonEmpty (NonEmpty((:|)))
import Numeric.Natural (Natural)
import Control.Category ((>>>))
import Control.Monad
import Data.Generics.Wrapped (Wrapped(..))
+10 -6
View File
@@ -81,9 +81,11 @@ data Prim e
| PrimZeroP e
| PrimNewline
| PrimMakeClosure { code :: e, env :: List e }
| PrimEnvRef e Int
| PrimEnvCode e
| PrimEnv
| PrimEnvRef Int
| PrimCallCC e
| PrimCaptureCC
| PrimInvokeCC e (List e)
| PrimValues (List e)
| PrimCallWithValues e e
deriving stock (Show, Generic, Functor, Foldable, Traversable, Data, Eq)
@@ -164,17 +166,19 @@ primDatumIso namefn a = S.match
$ S.With (. ht1 "integer?")
$ S.With (. ht1 "write")
$ S.With (. ht1 "zero?")
$ S.With (. nullop "newline")
$ S.With (. ht0 "newline")
$ S.With (. ht1' "make-closure")
$ S.With (. S.headTagged2 (namefn "env-ref") a S.int)
$ S.With (. ht1 "env-code")
$ S.With (. ht0 "env")
$ S.With (. S.headTagged1 (namefn "env-ref") S.int)
$ S.With (. ht1 "call/cc")
$ S.With (. ht0 "capture/cc")
$ S.With (. ht1' "invoke/cc")
$ S.With (. ht0' "values")
$ S.With (. ht2 "call-with-values")
$ S.End
where
idn = S.el . S.sym . namefn
nullop s = S.list $ idn s
ht0 s = S.list $ idn s
ht1 s = S.headTagged1 (namefn s) a
ht2 s = S.headTagged2 (namefn s) a a
ht1' s = S.headTagged1' (namefn s) a a
+11 -1
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@@ -107,7 +107,17 @@ list
list = listWithIndentation Ordinary
-- |
-- >>> decodeTest @(Int,Int) (with \g -> dottedList (el int) int >>> g) "(1 . 2)"
-- >>> let grammar = with \g -> dottedList (el int) int >>> g
-- >>> decodeTest @(Int,Int) grammar "(1 . 2)"
-- ( 1
-- , 2
-- )
-- >>> let grammar = with \g -> dottedList (el int >>> el int) int >>> g
-- >>> decodeTest @(Int,Int,Int) grammar "(1 2 . 3)"
-- ( 1
-- , 2
-- , 3
-- )
dottedList
:: forall t t' t''. G (ListContext :- t) (ListContext :- t')
-> G (Datum :- t') t''
+29 -20
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@@ -14,8 +14,11 @@ module Gyehoek.Stack.Syntax
, Imm(..)
, Hob(..)
, Prim(..)
, Name
, Name(..)
, Reg(..)
, Label(..)
, pattern ValLabel
, pattern ObjLabel
, stkP
) where
@@ -24,13 +27,13 @@ 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(..), labelName)
import Gyehoek.CPS.Syntax (Imm(..), Obj(..), Hob(..), pattern ObjLabel, Reg, Label)
import Gyehoek.Prelude
import Gyehoek.Sexp ((:-)((:-)))
newtype Program = MkProgram
{ routines :: HashMap Name Routine
{ routines :: HashMap Label Routine
}
deriving stock (Show, Generic, Data)
deriving newtype (Semigroup, Monoid)
@@ -44,8 +47,7 @@ instance IsList Program where
toList = toListOf $ #routines . each
data Routine = MkRoutine
{ label :: Name
, params :: List Name
{ label :: Label
, start :: Block
}
deriving stock (Show, Generic, Data)
@@ -59,25 +61,32 @@ data Block = MkBlock
deriving anyclass (NFData)
data Tail
= TailCall Val (List Val)
-- | 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 Name
= Pop Reg
| Push Val
| Prim Name (Prim Val)
| Load Reg Int
| Prim (Prim Val)
deriving stock (Show, Generic, Data)
deriving anyclass (NFData)
data Val
= ValReg Name
= ValReg Reg
| ValImm Imm
deriving stock (Show, Generic, Data, Eq)
deriving anyclass (NFData)
pattern ValLabel :: Name -> Val
pattern ValLabel :: Label -> Val
pattern ValLabel x = ValImm (ImmLabel x)
@@ -87,9 +96,10 @@ pure []
instance S.DatumIso Instr where
datumIso = S.match
$ S.With (S.headTagged1 "pop!" regName >>>)
$ S.With (S.headTagged1 "pop!" S.datumIso >>>)
$ S.With (S.headTagged1 "push!" S.datumIso >>>)
$ S.With (S.headTagged2 "prim" regName S.datumIso >>>)
$ S.With (S.headTagged2 "load" S.datumIso S.datumIso >>>)
$ S.With (S.headTagged1 "prim" S.datumIso >>>)
$ S.End
where
@@ -103,10 +113,14 @@ instance S.DataIso Block where
instance S.DatumIso Tail where
datumIso = S.match
$ S.With (S.headTagged1' "tail-call" S.datumIso S.datumIso >>>)
$ 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 =
@@ -116,7 +130,7 @@ instance S.DatumIso Tail where
instance S.DatumIso Val where
datumIso = S.match
$ S.With (regName >>>)
$ S.With (S.datumIso >>>)
$ S.With (S.datumIso >>>)
$ S.End
@@ -124,16 +138,11 @@ 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.list $ S.el labelName >>> S.rest regName)
>>> S.el (S.datumIso @Label)
>>> S.restData (S.dataIso @Block)
)
>>> rout
regName :: S.DatumGrammar Name
regName = S.decorate S.SynVariable >>> S.datumIso @Name >>> S.prismIso
(S.expected "register")
(prefixed @Name "%")
instance S.DataIso Program where
dataIso = S.dataIso @(List Routine) >>> S.iso fromList toList
+291 -59
View File
@@ -1,4 +1,6 @@
{-# LANGUAGE ViewPatterns, MultilineStrings #-}
{-# LANGUAGE TypeFamilies #-}
{-# LANGUAGE DeriveAnyClass #-}
module Gyehoek.Stack.VM
( VM(..)
, Env(..)
@@ -12,7 +14,7 @@ module Gyehoek.Stack.VM
import Gyehoek.Stack.Syntax
import Control.Lens
import qualified Data.HashMap.Strict as H
import Data.List (unfoldr, intersperse)
import Data.List (unfoldr, intersperse, compareLength)
import Gyehoek.Prelude
import qualified Data.List.NonEmpty as NE
import Lucid
@@ -28,27 +30,75 @@ 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)
-- | inessential information maintained only to aide in debugging.
-- | non-essential information maintained only to aide in debugging.
data DebugVM = MkDebugVM
{ currentRoutine :: Name
{ 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 :: List Obj
{ stack :: Stack
, code :: List Instr
, tail :: Tail
, registers :: HashMap Name Obj
, 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 Name Routine
{ labels :: HashMap Label Routine
}
deriving (Show, Generic)
@@ -62,12 +112,96 @@ vmerror = throwError . VMError
stepI :: Jalmot :> es => Env -> VM -> Instr -> Eff es VM
stepI e vm (Push v) = traverseOf #stack push vm
where push xs = (:) <$> evalVal e vm v <*> pure xs
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 (Prim r p) = traverse (evalVal e vm) p >>= \case
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) -> ret . ObjImm . ImmBool $ n == 0
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
@@ -75,59 +209,72 @@ stepI e vm (Prim r p) = traverse (evalVal e vm) p >>= \case
PrimDiv x y -> arith_binop div x y
PrimMakeClosure f env ->
case f of
ObjImm (ImmLabel l) -> ret . ObjHob $ HobClosure l env
ObjImm (ImmLabel l) -> ret1 . ObjHob $ HobClosure l env
_ -> vmerror [i|expected label, got #{f}|]
PrimEnvCode env ->
case env of
ObjHob (HobClosure l _) -> ret . ObjImm . ImmLabel $ l
_ -> vmerror [i|expected closure, got #{env}|]
PrimEnvRef env n ->
case env of
ObjHob (HobClosure _ xs) -> ret $ xs ^?! ix n
_ -> vmerror [i|expected closure, got #{env}|]
PrimCons x y -> ret $ ObjHob $ HobPair x y
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 _) -> ret car
ObjHob (HobPair car _) -> ret1 car
_ -> vmerror [i|expected pair, got ${x}|]
PrimCdr x -> case x of
ObjHob (HobPair _ cdr) -> ret cdr
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 v = pure $ vm & #registers . at r ?~ v
ret vs = pure $ vm & activeFrame . #locals <>:~ vs
ret1 v = ret [v]
arith_binop op (ObjImm (ImmInt x)) (ObjImm (ImmInt y)) =
ret $ ObjImm (ImmInt (op x y))
ret1 $ ObjImm (ImmInt (op x y))
arith_binop _ x y = vmerror [i|bad arith: #{x}, #{y}|]
stepI e vm (Pop r) = case vm ^. #stack of
[] -> vmerror "empty stack"
(x:xs) -> pure $ vm & #registers . at r ?~ x
& #stack .~ xs
stepI e vm ins = vmerror [i|unimplemented instruction: #{ins}|]
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)
stepT :: Jalmot :> es => Env -> VM -> Tail -> Eff es VM
jumpToBlock :: Block -> VM -> VM
jumpToBlock b vm = vm
& #code .~ b.code
& #tail .~ b.tail
stepT g vm (TailCall f xs) = do
xs' <- traverse (evalVal g vm) xs
evalToLabel g vm f >>= \case
"halt" -> pure $ vm & #result ?~ xs'
l -> do
rt <- case g ^. #labels . at l of
Nothing -> vmerror [i|undefined label: #{l}|]
Just x -> pure x
pure $ vm & #code .~ rt.start.code
& #tail .~ rt.start.tail
& #registers .~ H.fromList (rt.params `zip` xs')
& #debug . #currentRoutine .~ rt.label
jumpToRoutine :: Routine -> VM -> VM
jumpToRoutine rt vm = vm
& jumpToBlock rt.start
& #debug . #activeRoutine .~ rt.label
stepT g vm (If c t f) = do
branch <- evalVal g vm c <&> \case
ObjImm (ImmBool False) -> f
_ -> t
pure $ vm & #code .~ branch.code & #tail .~ branch.tail
getLabel :: Obj -> Maybe Label
getLabel = \case
ObjHob (HobClosure {label}) -> Just label
ObjHob (HobContinuation {cont}) -> getLabel cont
ObjImm (ImmLabel label) -> Just label
x -> Nothing
evalToLabel :: Jalmot :> es => Env -> VM -> Val -> Eff es Name
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
@@ -140,16 +287,47 @@ evalVal e vm = \case
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 = []
{ stack = MkStack . NE.singleton . MkFrame $
[ ObjLabel "start"
, ObjLabel "<nowhere at all>"
, ObjLabel "halt"
]
, tail = TailCall 0
, code = []
, tail = TailCall (ValLabel "start") [ValLabel "halt"]
, registers = mempty
, stdout = ""
, result = Nothing
, debug = MkDebugVM
{ currentRoutine = "<nowhere>"
{ activeRoutine = "<nowhere>"
}
}
@@ -228,11 +406,19 @@ ppDoc p t =
.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
@@ -246,7 +432,7 @@ ppTrace trace =
table_ do
thead_ $ tr_ do
traverse_ (th_ [scope_ "col"])
["location","instruction","stack"]
["routine","next instruction","stack frame"]
tbody_ do
go trace
where
@@ -254,9 +440,14 @@ ppTrace trace =
go = \case
Step vm next -> ppVM vm >> go next
StepToSuccess vm rs -> do
ppVM vm
tr_ [colspan_ "3",class_ "trace-result"] do
sequence_ . intersperse " | " $ code_ . ppDatum <$> rs
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
@@ -273,17 +464,58 @@ ppVM vm = do
td_ do
details_ do
summary_ do
var_ [class_ "loc"] . toHtml $ vm ^. #debug . #currentRoutine
. re (_Unwrapped' . prefixed "$")
var_ [class_ "loc"] do
vm ^. #debug . #activeRoutine . to ppDatum
pre_ do
code_ . toHtml . pShowNoColor $ vm
td_ do
code_ curi
td_ do
let xs = code_ . ppDatum <$> (vm ^. #stack)
sequence_ $ intersperse " | " xs
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))
|]
+5
View File
@@ -0,0 +1,5 @@
((λ ()
(* 2 (call/cc
(λ (k)
(begin (k 6)
3))))))
+25 -20
View File
@@ -20,42 +20,44 @@ test_stackify =
, procedure
]
evalsTo :: List Obj -> Sut.Exp -> Assertion
evalsTo :: HasCallStack => List Obj -> Sut.Program -> Assertion
evalsTo rs e = runJalmotUnsafe (Stk.eval e') @?= rs
where
e' = e & CPS.MkLambda [] "_ktail"
& CPS.MkProgram
& Sut.stackifyProgram & runGenSym & runPureEff
e' = e & Sut.stackifyProgram & runGenSym & runPureEff
trivialReturn = testGroup "trivial return"
[ testCase "return int" do
evalsTo [ObjImm (ImmInt 4)]
[cps|(continue halt 4)|]
[cps|(λ (ktail) (continue ktail 4))|]
, testCase "return bool" do
evalsTo [ObjImm (ImmBool True)]
[cps|(continue halt #t)|]
[cps|(λ (ktail) (continue ktail #t))|]
evalsTo [ObjImm (ImmBool False)]
[cps|(continue halt #f)|]
[cps|(λ (ktail) (continue ktail #f))|]
]
tailCall = testGroup "tail call"
[ testCase "square" do
evalsTo [ObjImm (ImmInt 16)]
[cps|(letrec ((square (λ (x ktail)
(prim (* x x)
(κ (x0) (continue ktail x0))))))
(square 4 halt))|]
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|(prim (* 4 5)
(κ (x) (continue halt x)))|]
[cps|(λ (ktail0)
(prim (* 4 5)
(κ (x) (continue ktail0 x))))|]
, testCase "add" do
evalsTo [ObjImm (ImmInt 9)]
[cps|(prim (+ 4 5)
(κ (x) (continue halt x)))|]
[cps|(λ (ktail0)
(prim (+ 4 5)
(κ (x) (continue ktail0 x))))|]
-- , testGroup "call/cc"
-- [ testCase "trivial" do
-- evalsTo [ObjImm (ImmInt 123)]
@@ -66,14 +68,17 @@ prim = testGroup "prim"
condition = testCase "if" do
evalsTo [ObjImm (ImmInt 123)]
[cps|(if #t (continue halt 123) (continue halt 456))|]
[cps|(λ (ktail0)
(if #t (continue ktail0 123) (continue ktail0 456)))|]
evalsTo [ObjImm (ImmInt 456)]
[cps|(if #f (continue halt 123) (continue halt 456))|]
[cps|(λ (ktail0)
(if #f (continue ktail0 123) (continue ktail0 456)))|]
procedure = testGroup "procedure"
[ testCase "factorial" do
evalsTo [ObjImm (ImmInt 720)]
[cps|(letrec ((fac (λ (n ktail)
[cps|(λ (ktail0)
(letrec ((fac (λ (n ktail)
(prim (zero? n)
(κ (x0)
(if x0
@@ -86,5 +91,5 @@ procedure = testGroup "procedure"
(κ (x3)
(continue ktail x3))))))
(fac x1 fac-k0))))))))))
(fac 6 halt))|]
(fac 6 halt)))|]
]
+2 -5
View File
@@ -29,11 +29,8 @@ brokenWasmTests =
brokenStackifyTests :: List String
brokenStackifyTests =
[]
-- [ "adder"
-- , "let-fn"
-- , "callcc-nested1" -- requires closure-conversion
-- ]
[
]
test_root :: IO TestTree
test_root = do
+84 -49
View File
@@ -7,70 +7,105 @@ 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 "lit int" do
[ testCase "immediate halt" do
evalsTo [] [stkP|
(define $start
(return 0))
|]
, testCase "lit int" do
evalsTo [ObjImm (ImmInt 3)] [stkP|
(define ($start %ktail)
(tail-call %ktail 3))
(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 %ktail)
(tail-call $silly %ktail))
(define ($silly %ktail)
(tail-call %ktail 123))
(define $start
(push! $silly)
(tail-call 1))
(define $silly
(push! 123)
(return 1))
|]
, testCase "identity continuation" do
evalsTo [ObjImm (ImmInt 45)] [stkP|
(define ($start %ktail)
(push! %ktail)
(tail-call $id 45))
(define ($id %x)
(pop! %ktail)
(tail-call %ktail %x))
, testCase "return multiple" do
evalsTo [ObjImm (ImmInt n) | n <- [1,2,3]] [stkP|
(define $start
(push! 3)
(push! 2)
(push! 1)
(return 3))
|]
, testCase "identity function" do
evalsTo [ObjImm (ImmInt 45)] [stkP|
(define ($start %ktail)
(tail-call $id 45 %ktail))
(define ($id %x %ktail)
(tail-call %ktail %x))
, testCase "return none" do
evalsTo [] [stkP|
(define $start
(return 0))
|]
, testCase "square" do
evalsTo [ObjImm (ImmInt 16)] [stkP|
(define ($start %ktail)
(tail-call $square 4 %ktail))
(define ($square %x %ktail)
(prim %x2 (* %x %x))
(tail-call %ktail %x2))
(define $start
(push! $square)
(push! 4)
(tail-call 1))
(define $square
(pop! %x)
(prim (* %x %x))
(return 1))
|]
, testCase "factorial" do
let hsfac (n :: Int) = foldr (*) (1) [1..n]
let fac (n :: Int) = [stkP|
(define ($fac %n %ktail)
(prim %x0 (zero? %n))
(if %x0
(then (tail-call %ktail 1))
(else (push! %n)
(push! %ktail)
(prim %x1 (- %n 1))
(tail-call $fac %x1 $fac-k0))))
(define ($fac-k0 %x2)
(pop! %ktail)
(pop! %n)
(prim %x3 (* %x2 %n))
(tail-call %ktail %x3))
(define ($start %ktail)
(tail-call $fac #{n} %ktail))
|]
evalsTo [ObjImm (ImmInt 1)] $ fac 0
evalsTo [ObjImm (ImmInt 1)] $ fac 1
evalsTo [ObjImm (ImmInt 720)] $ fac 6
, 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
evalsTo [ObjImm (ImmInt 2432902008176640000)] $ fac 20
in [ mkcase n | n <- [0,1,6,20] ]
]