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|
functor Parser(structure Tree: TREE; structure P: PPC;
structure D: DYNARRAY): PARSER = struct
structure P = P
structure T = P.T
type nid = int
datatype unop =
UnopPreInc |
UnopPreDec |
UnopAddr |
UnopDeref |
UnopPos |
UnopNeg |
UnopComp |
UnopLogNeg |
UnopSizeof |
UnopCast |
UnopPostInc |
UnopPostDec
and binopReg =
BrSubscript |
BrMul |
BrDiv |
BrMod |
BrSum |
BrSub |
BrShiftLeft |
BrShiftRight |
BrGreater |
BrLess |
BrLessEqual |
BrGreaterEqual |
BrEqual |
BrNotEqual |
BrBitAnd |
BrBitXor |
BrBitOr |
BrLogAnd |
BrLogOr |
BrAssign |
BrMulAssign |
BrDivAssign |
BrModAssign |
BrSumAssign |
BrSubAssign |
BrLeftShiftAssign |
BrRightShiftAssign |
BrBitAndAssign |
BrBitXorAssign |
BrBitOrAssign |
BrComma
and cnum =
Ninteger of Word64.word
| Nfloat of Real32.real
| Ndouble of Real64.real
and evalRes = ER of Word64.word * ctype
and id = Lid of int | Gid of int
and expr =
Eid of int * id option |
Econst of int * cnum |
Estrlit of int |
EmemberByV of exprAug * int |
EmemberByP of exprAug * int |
EfuncCall of exprAug * exprAug list |
Eternary of exprAug * exprAug * exprAug |
EsizeofType of ctype |
Eunop of unop * exprAug |
Ebinop of binop * exprAug * exprAug
and exprAug = EA of expr * P.tkPos * bool * ctype
and binop = BR of binopReg | BinopTernaryIncomplete of exprAug
and ctype =
unknown_t |
void_t |
char_t |
uchar_t |
short_t |
ushort_t |
int_t |
uint_t |
long_t |
ulong_t |
longlong_t |
ulonglong_t |
(*
float_t |
double_t |
*)
pointer_t of int * ctype |
function_t of ctype * ctype list |
array_t of Word64.word * ctype |
struct_t of
{ name: nid, size: word, alignment: word,
fields: (nid * word * ctype) list } |
remote_t of int
val typeSizes = [
(char_t, 1), (uchar_t, 1),
(short_t, 2), (ushort_t, 2),
(int_t, 4), (uint_t, 4),
(long_t, 8), (ulong_t, 8),
(longlong_t, 8), (longlong_t, 8)
]
val pointerSize = Word64.fromInt 8
val (ternaryOpPrio, ternaryOpLeftAssoc) = (2, false)
val voidp = pointer_t (1, void_t)
datatype exprPart =
EPexpr of exprAug |
(* last two are prio and leftAssoc *)
EPbinop of binop * P.tkPos * int * bool
type unopList = (unop * P.tkPos * ctype) list
datatype exprPrefix =
NormalPrefix of unopList |
SizeofType of unopList * ctype * P.tkPos * ctype
datatype ini = IniExpr of exprAug | IniCompound of ini list
datatype storageSpec =
SpecTypedef |
SpecExtern |
SpecStatic |
SpecRegister
type rawDecl = {
id: int option,
pos: P.tkPos,
spec: storageSpec option,
t: ctype,
ini: ini option,
params: (int option * P.tkPos) list option
}
val updateRD = fn z =>
let
fun from id pos spec t ini params = { id, pos, spec, t, ini, params }
fun to f { id, pos, spec, t, ini, params } = f id pos spec t ini params
in
FRU.makeUpdate6 (from, from, to)
end z
datatype stmt =
StmtExpr of exprAug |
StmtCompound of (int * ini option) list * stmt list |
StmtIf of exprAug * stmt * stmt option |
StmtFor of exprAug option * exprAug option * exprAug option * stmt |
StmtWhile of exprAug * stmt |
StmtDoWhile of stmt * exprAug |
StmtReturn of exprAug option |
StmtBreak |
StmtContinue
datatype parseBinopRes = BRbinop of exprPart | BRfinish of int
datatype token =
Tk of T.token |
TkParens of (token * P.tkPos) list |
TkBrackets of (token * P.tkPos) list |
TkBraces of (token * P.tkPos) list |
TkTernary of (token * P.tkPos) list
datatype linkage = LinkInternal | LinkExternal
datatype declClass = DeclRegular | DeclTentative | DeclDefined
type objDef = int * P.tkPos * ctype * ini * linkage
type funcInfo = {
name: int,
pos: P.tkPos,
t: ctype,
paramNum: int,
localVars: (int * P.tkPos * ctype) vector,
stmt: stmt
}
datatype def = Objects of objDef list | Definition of funcInfo
type scope = (nid, int) Tree.t
datatype typeStatus = TsDefined | TsIncomplete | TsNotDefined
(*
* For structures and unions the type name (nid) is duplicated for the
* ease of pctype function
*)
val types: (nid * P.tkPos * ctype) D.t = D.create0 ()
datatype ctx = Ctx of {
aggrTypeNames: scope,
localScopes: scope list,
localVars: (int * P.tkPos * ctype) list,
funcRetType: ctype option,
globalDecls: (int, P.tkPos * declClass * ctype * linkage) Tree.t,
tokenBuf: P.t * (token * P.tkPos) list list,
loopLevel: int
}
val intCompare = fn a => fn b => Int.compare (a, b)
val lookup = fn z => Tree.lookup intCompare z
val lookup2 = fn z => Tree.lookup2 intCompare z
fun updateCtx (Ctx ctx) = fn z =>
let
fun from aggrTypeNames localScopes localVars
funcRetType globalDecls tokenBuf loopLevel
=
{ aggrTypeNames, localScopes, localVars,
funcRetType, globalDecls, tokenBuf, loopLevel }
fun to f { aggrTypeNames, localScopes, localVars,
funcRetType, globalDecls, tokenBuf, loopLevel }
=
f aggrTypeNames localScopes localVars funcRetType
globalDecls tokenBuf loopLevel
in
FRU.makeUpdate7 (from, from, to) ctx (fn (a, f) => z (a, Ctx o f))
end
datatype declParts =
Pointer of int |
Id of int * P.tkPos |
AbstructRoot of P.tkPos |
FuncApp of (int option * P.tkPos * ctype) list |
ArrayApplication of Word64.word
datatype abstructPolicy = APpermitted | APenforced | APprohibited
datatype specType =
StorageSpec of storageSpec | TypeSpec of T.token
val binopTable = [
(BrSubscript, T.Invalid, 0, false),
(BrMul, T.Asterisk, 13, true),
(BrDiv, T.Slash, 13, true),
(BrMod, T.Percent, 13, true),
(BrSum, T.Plus, 12, true),
(BrSub, T.Minus, 12, true),
(BrShiftLeft, T.DoubleLess, 11, true),
(BrShiftRight, T.DoubleGreater, 11, true),
(BrGreater, T.Greater, 10, true),
(BrLess, T.Less, 10, true),
(BrLessEqual, T.LessEqualSign, 10, true),
(BrGreaterEqual, T.GreaterEqualSign, 10, true),
(BrEqual, T.DoubleEqualSign, 9, true),
(BrNotEqual, T.ExclMarkEqualSign, 9, true),
(BrBitAnd, T.Ampersand, 8, true),
(BrBitXor, T.Cap, 7, true),
(BrBitOr, T.VerticalBar, 6, true),
(BrLogAnd, T.DoubleAmpersand, 5, true),
(BrLogOr, T.DoubleVerticalBar, 4, true),
(BrAssign, T.EqualSign, 2, false),
(BrMulAssign, T.AmpersandEqualSign, 2, false),
(BrDivAssign, T.SlashEqualSign, 2, false),
(BrModAssign, T.PercentEqualSign, 2, false),
(BrSumAssign, T.PlusEqualSign, 2, false),
(BrSubAssign, T.MinusEqualSign, 2, false),
(BrLeftShiftAssign, T.DoubleLessEqualSign, 2, false),
(BrRightShiftAssign, T.DoubleGreaterEqualSign, 2, false),
(BrBitAndAssign, T.AmpersandEqualSign, 2, false),
(BrBitXorAssign, T.CapEqualSign, 2, false),
(BrBitOrAssign, T.VerticalBarEqualSign, 2, false),
(BrComma, T.Comma, 1, true)
]
datatype justConvArithResType = ResFromHigher | ResFromLeft | ResIsInt
fun pctype short t out =
let
fun &(f, s) = Printf out `(if short then s else f) %
in
case t of
unknown_t => & ("unknown", "u")
| void_t => & ("void", "v")
| char_t => & ("char", "c")
| uchar_t => & ("unsigned char", "C")
| short_t => & ("short", "s")
| ushort_t => & ("usigned short", "S")
| int_t => & ("int", "i")
| uint_t => & ("unsigned int", "I")
| long_t => & ("long", "l")
| ulong_t => & ("unsigned long", "L")
| longlong_t => & ("long long", "w")
| ulonglong_t => & ("unsigned long long", "W")
| remote_t id =>
let
val (_, _, t) = D.get types id
in
pctype short t out
end
(*
| float_t => & ("float", "f")
| double_t => & ("double", "d")
*)
| pointer_t (plevel, t) =>
if short then
Printf out I plevel A2 pctype true t %
else
Printf out `"{" I plevel `"} " A2 pctype false t %
| function_t (ret, params) => Printf out `"{"
Plist (pctype short) params (if short then "" else ", ", false)
`"}" `(if short then "" else " -> ") A2 pctype short ret %
| array_t (n, el) =>
Printf out `"[" `(Word64.toString n) `"]" A2 pctype short el %
| struct_t { name, ... } =>
if short then
Printf out `"r" I name %
else
Printf out `"struct " P.? name %
end
val Pctype = fn z => bind A1 (pctype false) z
val typeSpecs = [
T.kwVoid,
T.kwChar,
T.kwShort,
T.kwInt,
T.kwLong,
T.kwFloat,
T.kwDouble,
T.kwSigned,
T.kwUnsigned,
T.kwStruct
]
fun ts2idx ts =
let
fun find _ [] = raise Unreachable
| find idx (ts' :: tss) =
if ts = ts' then
idx
else
find (idx + 1) tss
in
find 0 typeSpecs
end
val tsMaxIdxP1 = length typeSpecs
val prefixes = [
(void_t, [[T.kwVoid]]),
(char_t, [[T.kwChar], [T.kwChar, T.kwSigned]]),
(uchar_t, [[T.kwUnsigned, T.kwChar]]),
(short_t, [[T.kwShort], [T.kwSigned, T.kwShort], [T.kwSigned, T.kwInt],
[T.kwSigned, T.kwShort, T.kwInt]]),
(ushort_t, [[T.kwUnsigned, T.kwShort],
[T.kwUnsigned, T.kwShort, T.kwInt]]),
(int_t, [[T.kwInt], [T.kwSigned], [T.kwSigned, T.kwInt]]),
(uint_t, [[T.kwUnsigned], [T.kwUnsigned, T.kwInt]]),
(long_t, [[T.kwLong], [T.kwSigned, T.kwLong], [T.kwLong, T.kwInt],
[T.kwSigned, T.kwLong, T.kwInt]]),
(ulong_t, [[T.kwUnsigned, T.kwLong],
[T.kwUnsigned, T.kwLong, T.kwInt]]),
(longlong_t, [[T.kwLong, T.kwLong], [T.kwSigned, T.kwLong, T.kwLong],
[T.kwLong, T.kwLong, T.kwInt],
[T.kwSigned, T.kwLong, T.kwLong, T.kwInt]]),
(ulonglong_t, [[T.kwUnsigned, T.kwLong, T.kwLong],
[T.kwUnsigned, T.kwLong, T.kwLong, T.kwInt]])
(*
(float_t, [[T.kwFloat]]),
(double_t, [[T.kwDouble]])
*)
]
fun genReprChildren l =
let
open List
fun genWithoutOne i =
if i = length l then
[]
else
let
val e = nth (l, i)
val bef = take (l, i)
val after = drop (l, i + 1)
in
(e, bef @ after) :: genWithoutOne (i + 1)
end
fun unique acc [] = acc
| unique acc ((e, l) :: tail) =
case List.find (fn (e', _) => e' = e) acc of
NONE => unique ((e, l) :: acc) tail
| SOME _ => unique acc tail
in
unique [] $ genWithoutOne 0
end
fun addRepr repr (P as (repr2id, _)) =
case List.find (fn (repr', _) => repr' = repr) repr2id of
SOME (_, id) => (id, P)
| NONE =>
let
fun createId (repr2id, trs) =
let
val id = length repr2id
in
(id, ((repr, id) :: repr2id, trs))
end
in
if length repr = 1 then
let
val (id, (repr2id, trs)) = createId P
in
(id, (repr2id, (0, ts2idx $ hd repr, id) :: trs))
end
else
let
val children = genReprChildren repr
val (P, ids) = List.foldl (fn ((e, l), (P, ids)) =>
let
val (id, P) = addRepr l P
in
(P, (id, e) :: ids)
end) (P, []) children
val (id, (repr2id, trs)) = createId P
val trs = List.foldl (fn ((id', e), trs) =>
(id', ts2idx e, id) :: trs) trs ids
in
(id, (repr2id, trs))
end
end
fun addTypeRepr ctype repr (repr2id, id2type, trs) =
let
val (id, (repr2id, trs)) = addRepr repr (repr2id, trs)
in
(repr2id, (id, ctype) :: id2type, trs)
end
(*
fun prefixFsmPrint fsm repr2id =
let
fun findRepr id =
case List.find (fn (_, id') => id' = id) repr2id of
SOME (repr, _) => repr
| NONE => raise Unreachable
fun printRepr l out =
let
fun printRepr' [] _ = ()
| printRepr' [tk] out = Printf out P.Ptk tk %
| printRepr' (tk1 :: tk2 :: tail) out =
Printf out P.Ptk tk1 `", " A1 printRepr' (tk2 :: tail) %
in
Printf out `"[" A1 printRepr' l `"]" %
end
fun idx2ts idx = List.nth (typeSpecs, idx)
open Array
fun printRow i =
let
val (ctype, trs) = sub (fsm, i)
fun printTrs () = appi (fn (j, id) =>
if id = ~1 then
()
else
printf P.Ptk (idx2ts j) `" -> " I id `", " %
) trs
fun printType out =
case ctype of
NONE => Printf out `"none" %
| SOME ctype => Printf out Pctype ctype %
in
printf I i `" " A1 printRepr (findRepr i)
`" |" A0 printType `"|: " %;
printTrs ();
printf `"\n" %
end
val i = ref 0
in
while !i < length fsm do (
printRow $ !i;
i := !i + 1
)
end
*)
fun buildPrefixFsm () =
let
val T = ([([], 0)], [], [])
val (repr2id, id2type, trs) = List.foldl (fn ((t, rl), T) =>
List.foldl (fn (r, T) => addTypeRepr t r T) T rl) T prefixes
open Array
fun fsmInit len =
let
val fsm = array (len, (NONE, array (tsMaxIdxP1, ~1)))
val i = ref 1
in
while !i < len do (
update (fsm, !i, (NONE, array (tsMaxIdxP1, ~1)));
i := !i + 1
);
fsm
end
val fsm = fsmInit $ List.length repr2id
val () = List.app (fn (id, ctype) =>
let
val (_, subarray) = sub (fsm, id)
in
update (fsm, id, (SOME ctype, subarray))
end) id2type
val () = List.app (fn (id', n, id) =>
let
val (_, subarray) = sub (fsm, id')
in
update (subarray, n, id)
end) trs
in
(* prefixFsmPrint fsm repr2id; *)
fsm
end
val prefixFsm = buildPrefixFsm ()
fun advanceTypeRepr typeReprId (tk, pos) =
let
open Array
val n = ts2idx tk
val (_, subarray) = sub (prefixFsm, typeReprId)
val id = sub (subarray, n)
in
if id = ~1 then
P.error pos `"unexpected type specifier" %
else
id
end
fun typeRepr2type typeReprId =
valOf o #1 o Array.sub $ (prefixFsm, typeReprId)
(*
fun pTokenL l out =
let
fun pToken (tk, _) out =
let
fun printList list opr cpr = Printf out `(opr ^ "| ")
Plist pToken list (",", false) `(" |" ^ cpr) %
in
case tk of
Tk tk => Printf out P.Ptk tk %
| TkParens list => printList list "(" ")"
| TkBrackets list => printList list "[" "]"
| TkBraces list => printList list "{" "}"
| TkTernary list => printList list "?" ":"
end
in
Printf out Plist pToken l (",", false) %
end
*)
val isIntegral = fn
char_t | uchar_t | short_t | ushort_t | int_t | uint_t
| long_t | ulong_t | longlong_t | ulonglong_t => true
| _ => false
fun isArith t =
case t of
(* float_t | double_t => true | *)
_ => isIntegral t
val isSigned = fn
char_t | short_t | int_t | long_t | longlong_t => true
| _ => false
fun isScalar t =
case t of
pointer_t _ => true
| t => isArith t
val isFunc = fn
function_t _ => true
| _ => false
val isPointer = fn
pointer_t _ => true
| _ => false
fun isObj (void_t | function_t _) = false
| isObj _ = true
fun isPointerToObj (pointer_t (n, t)) =
if n > 1 then
true
else
isObj t
| isPointerToObj _ = false
fun funcParts (function_t pair) = pair
| funcParts _ = raise Unreachable
val pointsTo = fn
pointer_t (1, t) => t
| pointer_t (n, t) =>
if n < 2 then raise Unreachable else pointer_t (n - 1, t)
| _ => raise Unreachable
fun tryGetFields (struct_t { fields, ... }) = SOME fields
| tryGetFields (remote_t id) = (tryGetFields o #3 o D.get types) id
| tryGetFields _ = NONE
fun createCtx fname incDirs = Ctx {
aggrTypeNames = Tree.empty,
localScopes = [],
localVars = [],
funcRetType = NONE,
globalDecls = Tree.empty,
tokenBuf = (P.create { fname, incDirs, debugMode = false }, []),
loopLevel = 0
}
fun loopWrapper ctx f =
let
val ctx = updateCtx ctx u#loopLevel (fn l => l + 1) %
val (r, ctx) = f ctx
val ctx = updateCtx ctx u#loopLevel (fn l => l - 1) %
in
(r, ctx)
end
fun isInLoop (Ctx ctx) = #loopLevel ctx > 0
fun getToken (ppc, []) =
let
fun first T.RParen = "'('"
| first T.RBracket = "'['"
| first T.RBrace = "'{'"
| first T.Colon = "'?'"
| first _ = raise Unreachable
fun newFrom start pos =
let
fun new con tkEnd = SOME (con, pos, tkEnd, [])
in
case start of
T.LParen => new TkParens T.RParen
| T.LBracket => new TkBrackets T.RBracket
| T.LBrace => new TkBraces T.RBrace
| T.QuestionMark => new TkTernary T.Colon
| _ => NONE
end
fun collect ppc (S as ((con, pos, tkEnd, list) :: tail)) =
let
val (tk, pos1, ppc) = P.getToken ppc
in
if tk = tkEnd then
let
val tk = con (rev $ (Tk T.EOS, pos1) :: list)
in
case tail of
[] => (tk, pos, ppc)
| ((con', pos', tkEnd, list) :: tail) =>
collect ppc ((con', pos', tkEnd, (tk, pos) :: list) :: tail)
end
else
collect ppc (
case newFrom tk pos1 of
SOME layer => (layer :: S)
| NONE => (
case tk of
T.RParen | T.RBracket | T.RBrace | T.Colon =>
P.error pos `"unmatched " `(first tkEnd) %
| _ => (con, pos, tkEnd, (Tk tk, pos1) :: list) :: tail
)
)
end
| collect _ _ = raise Unreachable
val (tk, pos, ppc) = P.getToken ppc
in
case newFrom tk pos of
SOME layer =>
(fn (tk, pos, ppc) => (tk, pos, (ppc, []))) $ collect ppc [layer]
| NONE => (Tk tk, pos, (ppc, []))
end
| getToken (C as (_, [(Tk T.EOS, pos)] :: _)) =
(Tk T.EOS, pos, C)
| getToken (_, [_] :: _) = raise Unreachable
| getToken (_, [] :: _) = raise Unreachable
| getToken (ppc, ((tk, pos) :: tail) :: layers) =
(tk, pos, (ppc, tail :: layers))
fun getTokenCtx (C as Ctx { tokenBuf, ... }) =
let
val (tk, pos, tokenBuf) = getToken tokenBuf
in
(tk, pos, updateCtx C s#tokenBuf tokenBuf %)
end
fun isGlobalScope (Ctx { localScopes, ... }) = null localScopes
fun ctxWithLayer (C as Ctx { tokenBuf = (ppc, layers), ... }) list cl =
let
val ctx = updateCtx C s#tokenBuf (ppc, list :: layers) %
val (v, ctx) = cl ctx
val restore = fn (ppc, layers) => (ppc, tl layers)
in
(v, updateCtx ctx u#tokenBuf restore %)
end
fun Punop unop out =
let
fun ~s = Printf out `s %
in
case unop of
UnopPreInc => ~"++@"
| UnopPostInc => ~"@++"
| UnopPreDec => ~"--@"
| UnopPostDec => ~"@--"
| UnopSizeof => ~"sizeof"
| UnopPos => ~"+"
| UnopNeg => ~"-"
| UnopAddr => ~"&"
| UnopDeref => ~"*"
| UnopComp => ~"~"
| UnopLogNeg => ~"!"
| UnopCast => raise Unreachable
end
and Pbinop binop out =
case List.find (fn (binop', _, _, _) => binop' = binop) binopTable
of
SOME (_, tk, _, _) => Printf out P.Ptk tk %
| NONE => raise Unreachable
and pid (Lid id) out = Printf out `"l" I id %
| pid (Gid _) out = Printf out `"gl" %
and pexpr e out =
let
fun mem (ea, id) s = Printf out A1 pea ea `s P.? id %
in
case e of
Eid (nid, id) => Printf out P.? nid `"{" A3 poptN "none" pid id `"}" %
| Econst (id, n) => (
case n of
Ninteger _ => Printf out P.? id %
| Nfloat _ => Printf out P.? id `":float" %
| Ndouble _ => Printf out P.? id `":double" %
)
| Estrlit id => Printf out P.? id %
| EmemberByV p => mem p "."
| EmemberByP p => mem p "->"
| EsizeofType ctype => Printf out `"sizeof(" Pctype ctype `")" %
| EfuncCall (func, args) =>
Printf out `"fcall " A1 pea func `", " Plist pea args (", ", false) %
| Eternary (cond, ifB, elseB) =>
Printf out A1 pea cond `" ? " A1 pea ifB `" : " A1 pea elseB %
| Ebinop(BinopTernaryIncomplete _, _, _) => raise Unreachable
| Ebinop(BR binop, left, right) =>
let
val binop =
if binop = BrSubscript then "[]" else sprintf A1 Pbinop binop %
in
Printf out A1 pea left `" " `binop `" " A1 pea right %
end
| Eunop (UnopCast, _) => raise Unreachable
| Eunop (unop, ea) => Printf out A1 Punop unop `" " A1 pea ea %
end
and pea (EA (e, _, _, t)) out =
let
fun pType out = Printf out A2 pctype true t %
fun exprPrinter e out =
case e of
Eid _ | Econst _ | Estrlit _ =>
Printf out A1 pexpr e `":" A0 pType %
| Eunop (UnopCast, ea) =>
Printf out A1 pea ea `"@" A0 pType %
| _ => Printf out `"(" A1 pexpr e `"):" A0 pType %
in
Printf out A1 exprPrinter e %
end
and parseTypeInParens tk ctx =
case tk of
TkParens list =>
if isTypeNameStart (#1 $ hd list) then
let
val (ctype, ctx) = ctxWithLayer ctx list parseTypeName
in
SOME (ctype, ctx)
end
else
NONE
| _ => NONE
and parseUnaryPrefix ctx acc =
let
val unopPreTable = [
(T.DoublePlus, UnopPreInc),
(T.DoubleMinus, UnopPreDec),
(T.Plus, UnopPos),
(T.Minus, UnopNeg),
(T.Ampersand, UnopAddr),
(T.Asterisk, UnopDeref),
(T.Tilde, UnopComp),
(T.ExclMark, UnopLogNeg),
(T.kwSizeof, UnopSizeof)
]
val (tk, pos, ctx') = getTokenCtx ctx
in
case tk of
Tk tk => (
case List.find (fn (tk', _) => tk' = tk) unopPreTable of
SOME (_, unop) =>
parseUnaryPrefix ctx' ((unop, pos, unknown_t) :: acc)
| _ => (NormalPrefix acc, ctx)
)
| _ => (
case parseTypeInParens tk ctx' of
SOME (ctype, ctx) =>
if #1 (hd acc) = UnopSizeof handle Empty => false then
(SizeofType (tl acc, ctype, #2 $ hd acc, ulong_t), ctx)
else
parseUnaryPrefix ctx ((UnopCast, pos, ctype) :: acc)
| NONE => (NormalPrefix acc, ctx)
)
end
and oneOfEndTks tk terms =
let
fun f idx tk (tk' :: tks) =
if tk = tk' then idx else f (idx + 1) tk tks
| f _ _ [] = 0
in
case tk of
Tk tk => f 1 tk terms
| _ => 0
end
and parseBinop ctx endTks =
let
val (tk', pos, ctx) = getTokenCtx ctx
in
case tk' of
TkTernary list =>
let
val ((_, ea), ctx) = ctxWithLayer ctx list (parseExpr [])
in
(BRbinop $ EPbinop (BinopTernaryIncomplete ea, pos,
ternaryOpPrio, ternaryOpLeftAssoc), ctx)
end
| Tk tk =>
if tk = T.EOS then
(BRfinish 0, ctx)
else
let
val status = oneOfEndTks tk' endTks
in
if status > 0 then
(BRfinish status, ctx)
else
case List.find (fn (_, tk', _, _) => tk' = tk) binopTable of
SOME (binop, _, prio, leftAssoc) =>
(BRbinop $ EPbinop (BR binop, pos, prio, leftAssoc), ctx)
| NONE => P.clerror pos [P.Cbinop]
end
| _ => P.clerror pos [P.Cbinop]
end
and makeEA e pos = EA (e, pos, false, unknown_t)
and parseFuncCall funcEa pos ctx =
let
fun isEmpty ctx =
case #1 $ getTokenCtx ctx of
Tk T.EOS => true
| _ => false
fun collectArgs acc ctx =
let
val ((status, ea), ctx) = parseExpr [T.Comma] ctx
in
if status = 0 then
(rev $ ea :: acc, ctx)
else
collectArgs (ea :: acc) ctx
end
val (args, ctx) = if isEmpty ctx then ([], ctx) else collectArgs [] ctx
in
(SOME $ makeEA (EfuncCall (funcEa, args)) pos, ctx)
end
and parseExprSuffix1 eAug ctx =
let
val (tk, pos1, ctx1) = getTokenCtx ctx
fun formUnop1 unop = (SOME $ makeEA (Eunop (unop, eAug)) pos1, ctx1)
fun formMemberOp unop =
let
val (tk, pos2, ctx2) = getTokenCtx ctx1
in
case tk of
Tk (T.Id id) => (SOME $ makeEA (unop (eAug, id)) pos1, ctx2)
| _ => P.clerror pos2 [P.Cid]
end
in
case tk of
Tk T.DoublePlus => formUnop1 UnopPostInc
| Tk T.DoubleMinus => formUnop1 UnopPostDec
| Tk T.Dot => formMemberOp EmemberByV
| Tk T.Arrow => formMemberOp EmemberByP
| TkBrackets list =>
let
val ((_, ea), ctx) =
ctxWithLayer ctx1 list (parseExpr [])
val ea = makeEA (Ebinop (BR BrSubscript, eAug, ea)) pos1
in
(SOME ea, ctx)
end
| TkParens list => ctxWithLayer ctx1 list (parseFuncCall eAug pos1)
| _ => (NONE, ctx)
end
and parseExprSuffix eAug ctx =
let
val (eAug', ctx) = parseExprSuffix1 eAug ctx
in
case eAug' of
SOME eAug => parseExprSuffix eAug ctx
| NONE => (eAug, ctx)
end
and determineMinNumType candidates acc =
let
open IntInf
fun p n = pow (fromInt 2, n)
val limits = [
(int_t, p 31),
(uint_t, p 32),
(long_t, p 63),
(ulong_t, p 64)
]
fun findLimit longlong_t = p 63
| findLimit ulonglong_t = p 64
| findLimit ctype =
case List.find (fn (t, _) => t = ctype) limits of
NONE => raise Unreachable
| SOME (_, limit) => limit
fun find [] = (ulonglong_t, Word64.fromLargeInt acc)
| find (t :: tail) =
if acc < (findLimit t) then
(t, Word64.fromLargeInt acc)
else
find tail
in
find candidates
end
and getSuffix pos repr =
let
fun suffixChar c =
let
val c = Char.toLower c
in
c = #"u" orelse c = #"l"
end
fun findBorder idx =
if suffixChar $ String.sub (repr, idx) then
findBorder (idx - 1)
else
idx + 1
val startIdx = findBorder $ String.size repr - 1
val suffix = String.extract (repr, startIdx, NONE)
val suffixCode =
case suffix of
"" => 0
| "u" | "U" => 1
| "l" | "L" => 2
| "ul" | "uL" | "Ul" | "UL" | "lu" | "lU" | "Lu" | "LU" => 3
| "ll" | "LL" => 4
| "ull" | "uLL" | "Ull" | "ULL" | "llu" | "llU" | "LLu" | "LLU" => 5
| _ => P.error pos `"unknown integer constant suffix" %
in
(String.substring (repr, 0, startIdx), suffixCode)
end
and determiteIntNumType isDec (acc, suffix) =
let
val candidates = [
([int_t, long_t, longlong_t], [int_t, uint_t, long_t, ulong_t,
longlong_t]),
([uint_t, ulong_t], [uint_t, ulong_t]),
([long_t, longlong_t], [long_t, ulong_t, longlong_t]),
([ulong_t], [ulong_t]),
([longlong_t], [longlong_t]),
([], [])
]
val candArray = Array.fromList candidates
val (dec, other) = Array.sub (candArray, suffix)
in
determineMinNumType (if isDec then dec else other) acc
end
and parseNumGeneric (pos, conv) (idx, s) acc radix =
if idx = String.size s then
acc
else
let
val d =
case conv $ String.sub (s, idx) of
NONE => P.error pos `"invalid integer constant" %
| SOME v => IntInf.fromInt v
val idx = idx + 1
open IntInf
in
parseNumGeneric (pos, conv) (idx, s)
(acc * radix + d) radix
end
and collectNum pos num =
let
fun hexDigit c =
if Char.isDigit c then
SOME $ ord c - ord #"0"
else if Char.isHexDigit c then
SOME $ ord c - ord #"a" + 10
else
NONE
fun octDigit c =
if ord c >= ord #"0" andalso ord c < ord #"8" then
SOME $ ord c - ord #"0"
else
NONE
fun decDigit c =
if Char.isDigit c then
SOME $ ord c - ord #"0"
else
NONE
in
if String.sub (num, 0) = #"0" then
(if String.size num > 1 andalso
Char.toLower (String.sub (num, 1)) = #"x"
then
parseNumGeneric (pos, hexDigit) (2, num) 0 16
else
parseNumGeneric (pos, octDigit) (1, num) 0 8, false)
else
(parseNumGeneric (pos, decDigit) (0, num) 0 10, true)
end
and parseInteger pos s =
let
val (num, suffix) = getSuffix pos s
val (acc, isDec) = collectNum pos num
val (t, v) = determiteIntNumType isDec (acc, suffix)
in
(t, Ninteger v)
end
and isFPconst s =
let
open String
fun find idx =
if idx = size s then
false
else
case sub (s, idx) of
#"." | #"e" | #"E" => true
| c =>
if Char.isDigit c then
find (idx + 1)
else
false
in
find 0
end
(*
and parseFP pos s =
let
val lastC = String.sub (s, String.size s - 1)
fun handleStatus (status, v) =
case status of
0 => v
| 1 => P.error pos `"floating-point constant overflow" %
| ~1 => P.error pos `"floating-point constant underflow" %
| 2 => P.error pos `"invalid floating-point constant" %
| _ => raise Unreachable
in
case Char.toLower lastC of
#"f" =>
let
val repr = String.substring (s, 0, String.size s - 1)
in
(float_t, Nfloat o handleStatus o parseFloat $ repr)
end
| #"L" => P.error pos `"long double is not supported" %
| _ => (double_t, Ndouble o handleStatus o parseDouble $ s)
end
*)
and parseNumber pos s =
(if isFPconst s then
P.error pos `"floating-point numbers are not implemented" %
else parseInteger) pos s
and parsePrimaryExpr ctx =
let
val (tk, pos, ctx) = getTokenCtx ctx
fun wrap e = (makeEA e pos, ctx)
fun wrapNum id (t, v) = (EA (Econst (id, v), pos, false, t), ctx)
in
case tk of
Tk (T.Id id) => wrap $ Eid (id, NONE)
| Tk (T.Strlit (id, size)) =>
(EA (Estrlit id, pos, false,
array_t (Word64.fromInt size, char_t)), ctx)
| Tk (T.CharConst (id, v)) => wrapNum id (int_t, Ninteger v)
| Tk (T.Num id) => wrapNum id $ parseNumber pos $ P.?? id
| TkParens list =>
let
val ((_, ea), ctx) = ctxWithLayer ctx list (parseExpr [])
in
(ea, ctx)
end
| _ => P.clerror pos [P.Cid, P.Cconst, P.Cstrlit]
end
and parseUnary ctx =
let
val (prefix, ctx) = parseUnaryPrefix ctx []
fun applyPrefix prefix ea =
List.foldl (fn ((unop, pos, t), e) =>
EA (Eunop (unop, e), pos, false, t)) ea prefix
in
case prefix of
NormalPrefix unopList =>
let
val (ea, ctx) = parsePrimaryExpr ctx
val (ea, ctx) = parseExprSuffix ea ctx
in
(applyPrefix unopList ea, ctx)
end
| SizeofType (unopList, ctype, pos, resType) =>
(applyPrefix unopList
(EA (EsizeofType ctype, pos, false, resType)), ctx)
end
and constructExpr parts =
let
fun shouldTakePrev _ [] = false
| shouldTakePrev (_, _, p, assoc) ((_, _, p') :: _) =
case Int.compare (p', p) of
GREATER => true
| EQUAL => assoc
| LESS => false
fun applyTop vstack opstack =
let
fun take2 (x :: y :: tl) = (x, y, tl)
| take2 _ = raise Unreachable
val (right, left, vstack) = take2 vstack
val (binop, pos, _) = hd opstack
val head =
case binop of
BR binop => Ebinop (BR binop, left, right)
| BinopTernaryIncomplete trueBody =>
Eternary(left, trueBody, right)
in
(makeEA head pos :: vstack, tl opstack)
end
fun insert (Q as (binop, pos, p, _)) (vstack, opstack) =
if shouldTakePrev Q opstack then
insert Q (applyTop vstack opstack)
else
(vstack, (binop, pos, p) :: opstack)
fun finish ([ea], []) = ea
| finish (_, []) = raise Unreachable
| finish (vstack, opstack) = finish $ applyTop vstack opstack
fun construct (vstack, opstack) (EPexpr ea :: acc) =
construct (ea :: vstack, opstack) acc
| construct stacks (EPbinop Q :: acc) =
construct (insert Q stacks) acc
| construct stacks [] = finish stacks
in
construct ([], []) parts
end
and parseExpr endTks ctx =
let
fun collect ctx expVal acc =
if expVal then
let
val (unary, ctx) = parseUnary ctx
in
collect ctx (not expVal) (EPexpr unary :: acc)
end
else
case parseBinop ctx endTks of
(BRbinop binop, ctx) => collect ctx (not expVal) (binop :: acc)
| (BRfinish status, ctx) => (status, rev acc, ctx)
val (eof, parts, ctx) = collect ctx true []
val expr = constructExpr parts
val expr = checkExpr ctx false expr
in
((eof, expr), ctx)
end
and convAggr sizeofOrAddr t =
if sizeofOrAddr then
t
else
case t of
function_t _ => pointer_t (1, t)
| array_t (_, el_t) => pointer_t (1, el_t)
| _ => t
and findId (Ctx ctx) pos sizeofOrAddr id =
let
fun findLocal [] = NONE
| findLocal (scope :: scopes) =
let
val res = lookup scope id
in
case res of
SOME lid =>
let
val locals = rev o #localVars $ ctx
val t = #3 $ List.nth (locals, lid)
in
SOME (Lid lid, true, convAggr sizeofOrAddr t)
end
| NONE => findLocal scopes
end
in
case findLocal $ #localScopes ctx of
SOME p => p
| NONE =>
let
val res = lookup (#globalDecls ctx) id
in
case res of
SOME (_, _, t, _) => (Gid id, false, convAggr sizeofOrAddr t)
| NONE => P.error pos `"unknown identifier" %
end
end
and typeRank t =
case t of
char_t => 0
| uchar_t => 1
| short_t => 2
| ushort_t => 3
| int_t => 4
| uint_t => 5
| long_t => 6
| ulong_t => 7
| longlong_t => 8
| ulonglong_t => 9
| void_t => 12
| pointer_t _ => 13
| array_t _ => 14
| function_t _ => 15
| struct_t _ => 16
| remote_t id => (typeRank o #3 o D.get types) id
| unknown_t => raise Unreachable
and convEA t (E as EA (_, pos, _, t')) =
if t = t' then
E
else if t' = void_t then
P.error pos `"unable to convert void" %
else
EA (Eunop (UnopCast, E), pos, false, t)
and promoteToInt (E as EA (_, _, _, t)) =
if typeRank t < typeRank int_t then
convEA int_t E
else
E
and convArith (E1 as EA (_, pos1, _, t1)) (E2 as EA (_, pos2, _, t2)) =
let
val rank1 = typeRank t1
val rank2 = typeRank t2
val (higherType, pos, emax, emin, swapNeeded) =
if rank1 > rank2 then
(t1, pos1, E1, E2, false)
else
(t2, pos2, E2, E1, true)
val () =
if typeRank higherType > typeRank ulonglong_t then
P.error pos `"expected arithmetic type" %
else
()
fun swap e1 e2 = if swapNeeded then (e2, e1) else (e1, e2)
in
if rank1 = rank2 then
if rank1 >= typeRank int_t then
(t1, (E1, E2))
else
(int_t, (promoteToInt E1, promoteToInt E2))
else
(higherType, swap emax (convEA higherType emin))
end
and isLvalue (EA (_, _, lvalue, _)) = lvalue
and getT (EA (_, _, _, t)) = t
and getPos (EA (_, pos, _, _)) = pos
and setT (EA (binop, pos, lvalue, _)) t = EA (binop, pos, lvalue, t)
and checkUnop check sizeofOrAddr (EA (Eunop (unop, oper), pos, _, t)) =
let
val oper = check (unop = UnopSizeof orelse unop = UnopAddr) oper
fun finish lvalue t = EA (Eunop (unop, oper), pos, lvalue, t)
val ot = getT oper
fun toInt () =
let
val oper = promoteToInt oper
in
EA (Eunop (unop, oper), pos, false, getT oper)
end
in
case unop of
UnopPostInc | UnopPostDec | UnopPreInc | UnopPreDec =>
if isScalar ot andalso isLvalue oper then
EA (Eunop (unop, oper), pos, true, ot)
else
P.error (getPos oper)
`"expected an arithmetic or a pointer lvalue expression" %
| UnopPos | UnopNeg =>
if isArith ot then
toInt ()
else
P.error pos `"operand of not arithmetic type" %
| UnopComp =>
if isIntegral ot then
toInt ()
else
P.error pos `"operand of not integral type" %
| UnopLogNeg =>
if isScalar ot then
finish false int_t
else
P.error pos `"operand of not scalar type" %
| UnopSizeof =>
if isFunc ot then
P.error pos `"sizeof argument has function type" %
else
finish false ulong_t
| UnopAddr =>
if isFunc ot orelse isLvalue oper then
EA (Eunop (unop, oper), pos, false, pointer_t (1, getT oper))
else
P.error pos `"expected function designator or lvalue operand" %
| UnopDeref => (
case ot of
pointer_t (1, T as function_t _) =>
finish false (if sizeofOrAddr then T else ot)
| pointer_t (1, t) => finish true t
| pointer_t (n, t) => finish true (pointer_t (n-1, t))
| _ => P.error pos `"operand of not pointer type" %
)
| UnopCast =>
if t <> void_t andalso not (isScalar t) then
P.error pos `": cast to not scalar type or void" %
else if not (isScalar ot) then
P.error pos `"operand of not scalar type" %
else
finish false t
end
| checkUnop _ _ _ = raise Unreachable
and checkSizeofType (EA (E as EsizeofType t, pos, _, _)) =
if isFunc t then
P.error pos `"operand of function type" %
else
EA (E, pos, false, ulong_t)
| checkSizeofType _ = raise Unreachable
and justConvArith (EA (Ebinop (binop, left, right), pos, _, _))
resultMode =
let
val (resT, (left, right)) = convArith left right
val resT =
case resultMode of
ResIsInt => int_t
| ResFromLeft => getT left
| ResFromHigher => resT
in
EA (Ebinop (binop, left, right), pos, false, resT)
end
| justConvArith _ _ = raise Unreachable
and checkRel (E as (EA (Ebinop (binop, left, right), pos, _, _))) =
let
val isEqCheck =
case binop of BR BrEqual | BR BrNotEqual => true | _ => false
val leftT = getT left
val rightT = getT right
val rightPos = getPos right
in
if isArith leftT andalso isArith rightT then
justConvArith E ResIsInt
else if isPointer leftT then
if isPointer rightT then
if pointsTo leftT = pointsTo rightT then
setT E int_t
else if isEqCheck andalso rightT = voidp then
EA (Ebinop (binop, convEA voidp left, right), pos, false, int_t)
else if isEqCheck andalso leftT = voidp then
EA (Ebinop (binop, left, convEA voidp right), pos, false, int_t)
else
P.error rightPos `"pointer type does not match left sibling" %
else
P.error rightPos `"expected pointer" %
else
P.error (getPos left) `"expected arithmetic type or pointer" %
end
| checkRel _ = raise Unreachable
and checkLogOp (E as EA (Ebinop (_, left, right), _, _, _)) =
let
fun error ea = P.error (getPos ea)`"expected value of scalar type" %
in
if isScalar (getT left) then
if isScalar (getT right) then
setT E int_t
else
error right
else
error left
end
| checkLogOp _ = raise Unreachable
and checkSimpleArith (E as (EA (Ebinop (binop, left, right), _, _, _))) =
let
val leftT = getT left
val rightT = getT right
val leftPos = getPos left
val rightPos = getPos right
val isSub = case binop of BR BrSub => true | _ => false
in
if isArith leftT then
if isArith rightT then
justConvArith E ResFromHigher
else if isPointerToObj rightT then
setT E rightT
else
P.error rightPos `"expeced pointer" %
else if isPointerToObj leftT then
if isIntegral rightT then
setT E leftT
else if isSub andalso isPointer rightT then
if leftT = rightT then
setT E long_t
else
P.error rightPos `"value type does not match its left sibling" %
else
P.error rightPos `"expected value of an integral type" %
else
P.error leftPos `"expected value of an integral type or a pointer" %
end
| checkSimpleArith _ = raise Unreachable
and checkSimpleAssignment
(E as EA (Ebinop (binop, left, right), pos, lvalue, _))
=
if not $ isLvalue left then
P.error (getPos left) `"expected lvalue" %
else
let
val leftT = getT left
val rightT = getT right
in
if isArith leftT andalso isArith rightT then
EA (Ebinop (binop, left, convEA leftT right), pos, lvalue, leftT)
else if isPointer leftT then
if leftT = rightT then
setT E leftT
else if leftT = voidp orelse rightT = voidp then
setT E leftT
else
P.error (getPos right)
`"expression has a type incompatible with its sibling: "
`"(" Pctype leftT `", >" Pctype rightT `")" %
else
P.error (getPos left)
`"expected value of an arithmetic type or a pointer" %
end
| checkSimpleAssignment _ = raise Unreachable
and checkCompoundAssignment maybePointer
(E as EA (Ebinop (binop, left, right), pos, _, _))
=
if not $ isLvalue left then
P.error (getPos left) `"expected lvalue" %
else
let
val leftT = getT left
val rightT = getT right
in
if isArith leftT andalso isArith rightT then
if typeRank rightT < typeRank leftT then
EA (Ebinop (binop, left, convEA leftT right), pos, false, leftT)
else
setT E leftT
else if maybePointer andalso
isPointer leftT andalso isIntegral rightT
then
setT E leftT
else
P.error pos `"unvalid operands of a compound assignment" %
end
| checkCompoundAssignment _ _ = raise Unreachable
and checkComma (EA (Ebinop (binop, left, right), pos, _, _)) =
let
val left = convEA void_t left
in
EA (Ebinop (binop, left, right), pos, false, getT right)
end
| checkComma _ = raise Unreachable
and checkSubscript (EA (Ebinop (_, left, right), pos, _, _)) =
let
val leftT = getT left
val rightT = getT right
val (left, right) =
if isPointerToObj leftT andalso isIntegral rightT then
(left, convEA long_t right)
else if isIntegral leftT andalso isPointerToObj rightT then
(right, convEA long_t left)
else
P.error pos `"expected pointer and integral pair" Pctype leftT %
val resT = pointsTo $ getT left
in
EA (Ebinop(BR BrSubscript, left, right), pos, true, resT)
end
| checkSubscript _ = raise Unreachable
and checkBinop check (EA (Ebinop (binop, left, right), pos, lvalue, t)) =
let
val E = EA (Ebinop (binop, check left, check right), pos, lvalue, t)
in
case binop of
BR BrMul | BR BrDiv | BR BrMod => justConvArith E ResFromHigher
| BR BrShiftLeft | BR BrShiftRight => justConvArith E ResFromLeft
| BR BrLess | BR BrGreater | BR BrLessEqual | BR BrGreaterEqual =>
checkRel E
| BR BrEqual | BR BrNotEqual => checkRel E
| BR BrBitAnd | BR BrBitOr | BR BrBitXor =>
justConvArith E ResFromHigher
| BR BrLogAnd | BR BrLogOr => checkLogOp E
| BR BrSum | BR BrSub => checkSimpleArith E
| BR BrAssign => checkSimpleAssignment E
| BR BrSumAssign | BR BrSubAssign => checkCompoundAssignment true E
| BR BrMulAssign | BR BrDivAssign | BR BrModAssign
| BR BrLeftShiftAssign | BR BrRightShiftAssign
| BR BrBitAndAssign | BR BrBitXorAssign | BR BrBitOrAssign =>
checkCompoundAssignment false E
| BR BrComma => checkComma E
| BR BrSubscript => checkSubscript E
| BinopTernaryIncomplete _ => raise Unreachable
end
| checkBinop _ _ = raise Unreachable
and checkFuncCall check (EA (EfuncCall (func, args), pos, _, _)) =
let
fun checkArg arg =
let
val arg = check arg
in
if isObj $ getT arg then
arg
else
P.error pos `"function argument is not of object type" %
end
val func = check func
val args = List.map checkArg args
fun convertArgs (t :: ts) (arg :: args) =
convEA t arg :: convertArgs ts args
| convertArgs [] [] = []
| convertArgs _ _ =
P.error pos `"function called with invalid number of arguments" %
in
case getT func of
pointer_t (1, function_t (rt, argTypes)) =>
let
val args = convertArgs argTypes args
in
EA (EfuncCall (func, args), pos, false, rt)
end
| _ => P.error pos `"expected pointer to function" %
end
| checkFuncCall _ _ = raise Unreachable
and checkTernary check
(E as (EA (Eternary (cond, thenPart, elsePart), pos, _, _)))
=
let
val cond = check cond
val thenPart = check thenPart
val elsePart = check elsePart
in
if not $ isScalar $ getT cond then
P.error (getPos cond) `"expected expression of scalar type" %
else
let
val thenT = getT thenPart
val elseT = getT elsePart
in
if isArith thenT andalso isArith elseT then
let
val (resT, (thenPart, elsePart)) = convArith thenPart elsePart
in
EA (Eternary (cond, thenPart, elsePart), pos, false, resT)
end
else if thenT = void_t andalso elseT = void_t then
setT E void_t
else if isPointer thenT then
if thenT = elseT then
setT E thenT
else if elseT = voidp then
setT E voidp
else if isPointer elseT andalso thenT = voidp then
setT E voidp
else
P.error (getPos elsePart)
`"expression type is incompatible with its left sibling" %
else
P.error (getPos thenPart)
`"expected expression of pointer or arithmetic type" %
end
end
| checkTernary _ _ = raise Unreachable
and checkMemberAccess check byP
(EA (EmemberByV (ea, field) | EmemberByP (ea, field), pos, _, _))
=
let
val ea = check ea
val pos' = getPos ea
val t = getT ea
val t =
if byP then
if isPointer t then
pointsTo t
else
P.error pos' `"expected a pointer to aggregate" %
else
t
val fields =
case (tryGetFields t, byP) of
(NONE, true) =>
P.error pos' `"expected a pointer to an aggregate" %
| (NONE, false) => P.error pos' `"expected an aggregate" %
| (SOME fields, _) => fields
val e =
if byP then
EmemberByP (ea, field)
else
EmemberByV (ea, field)
in
case List.find (fn (f, _, _) => f = field) fields of
NONE => P.error pos `"unknown field" %
| SOME (_, _, field_type) => EA (e, pos, true, field_type)
end
| checkMemberAccess _ _ _ = raise Unreachable
and checkExpr ctx sizeofOrAddr (E as EA (e, pos, _, _)) =
let
val check = checkExpr ctx
(* val () = printf `"Checking " A1 pea E `"\n" % *)
in
case e of
Eid (id', _) =>
let
val (id, lvalue, t) = findId ctx pos sizeofOrAddr id'
in
EA (Eid (id', SOME id), pos, lvalue, t)
end
| EsizeofType _ => checkSizeofType E
| EfuncCall _ => checkFuncCall (check false) E
| Ebinop (_, _, _) => checkBinop (check false) E
| Eternary _ => checkTernary (check false) E
| Eunop (_, _) => checkUnop check sizeofOrAddr E
| EmemberByV _ => checkMemberAccess (check false) false E
| EmemberByP _ => checkMemberAccess (check false) true E
| Econst _ | Estrlit _ => E
end
and tryGetSpec ctx =
let
val (tk, pos, ctx') = getTokenCtx ctx
val storageSpecs = [
(T.kwTypedef, SpecTypedef),
(T.kwExtern, SpecExtern),
(T.kwStatic, SpecStatic),
(T.kwRegister, SpecRegister)
]
val cmp = (fn tk' => case tk of Tk tk => tk = tk' | _ => false)
val cmp2 = (fn (tk', _) => case tk of Tk tk => tk = tk' | _ => false)
in
case List.find cmp typeSpecs of
SOME tk => (SOME (TypeSpec tk, pos), ctx')
| NONE => (
case List.find cmp2 storageSpecs of
SOME (_, spec) => (SOME (StorageSpec spec, pos), ctx')
| NONE => (NONE, ctx)
)
end
and findPrimTypeSize t =
case List.find (fn (t', _) => t' = t) typeSizes of
SOME (_, size) => Word64.fromInt size
| _ => raise Unreachable
and alignOfType (pointer_t _) = pointerSize
| alignOfType (array_t (_, t)) = alignOfType t
| alignOfType (struct_t { alignment, ... }) = alignment
| alignOfType (remote_t id) = (alignOfType o #3 o D.get types) id
| alignOfType t = findPrimTypeSize t
and sizeOfType (pointer_t _) = pointerSize
| sizeOfType (array_t (n, t)) = Word64.* (n, sizeOfType t)
| sizeOfType (struct_t { size, ... }) = size
| sizeOfType (remote_t id) = (sizeOfType o #3 o D.get types) id
| sizeOfType t = findPrimTypeSize t
and sizeofWrapper t = Word64.toInt $ sizeOfType t
and zeroExtend (ER (w, t)) =
let
val size = Word.fromLarge $ sizeOfType t
val minus1 = Word64.notb (Word64.fromInt 0)
val mask = Word64.>> (minus1, 0w64 - size * 0w8)
val () = printf `"ZH0: " W w `"\n" %
val res = Word64.andb (mask, w)
val () = printf `"ZH1: " W res `"\n" %
in
res
end
and getSignBit w sizeInBits =
let
val shift = Word64.>> (w, Word.fromInt $ sizeInBits -1)
val bit = Word64.andb (shift, Word64.fromInt 1)
in
Word64.toInt bit
end
and signExtend (R as (ER (w, t))) =
let
val sizeInBits = 8 * sizeofWrapper t
val signBit = getSignBit w sizeInBits
val signExtMask =
Word64.<< (Word64.notb $ Word64.fromInt 0, Word.fromInt sizeInBits)
in
if Int.compare (signBit, 0) = EQUAL then
zeroExtend R
else
Word64.orb (signExtMask, w)
end
and evalUnop UnopPos _ arg = arg
| evalUnop UnopNeg _ (R as (ER (_, t))) =
let
val w = zeroExtend R
in
ER (Word64.~ w, t)
end
| evalUnop UnopComp _ (ER (w, t)) =
let
val minus1 = Word64.notb $ Word64.fromInt 0
val res as ER (w, _) = ER (Word64.xorb (minus1, w), t)
val () = printf `"~ after: " W w `"\n" %
in
res
end
| evalUnop UnopCast (t', pos) (R as (ER (w, t))) =
let
val () =
if not $ isArith t' then
P.error pos `"not an arithmetic expression" %
else
()
in
case Int.compare (sizeofWrapper t', sizeofWrapper t) of
GREATER =>
if isSigned t then
ER (signExtend R, t')
else
ER (zeroExtend R, t')
| EQUAL => ER (w, t')
| LESS => ER (w, t')
end
| evalUnop _ (_, pos) _ =
P.error pos `"invalid unop in constant expression" %
and evalEqCheck eq left right =
let
val w1 = zeroExtend left
val w2 = zeroExtend right
val ` = Word64.fromInt
in
case (Word64.compare (w1, w2), eq) of
(EQUAL, true) => `1
| (EQUAL, false) => `0
| (_, true) => `0
| (_, false) => `1
end
and ebGetT (ER (_, t)) = t
and ebIsNonzero arg =
let
val cleaned = zeroExtend arg
in
case Word64.compare (cleaned, Word64.fromInt 0) of
EQUAL => false
| _ => true
end
and ebIsNegative (ER (w, t)) =
if isSigned t then
if getSignBit w (8 * sizeofWrapper t) = 1 then
true
else
false
else
false
and w64FromBool true = Word64.fromInt 1
| w64FromBool false = Word64.fromInt 0
and ebDirect w64op (ER (w1, t)) (ER (w2, _)) = ER (w64op (w1, w2), t)
and ebCompare left right convResult =
let
val (conv, comp) =
if isSigned (ebGetT left) then
(signExtend,
fn (w1, w2) =>
Int64.compare (word64Toint64 w1, word64Toint64 w2))
else
(zeroExtend, Word64.compare)
val left' = conv left
val right' = conv right
val () = printf `"eval compare: " W left' `", " W right' `"\n" %
val res = convResult $ comp (left', right')
in
ER (w64FromBool res, int_t)
end
and ebShiftLeft pos (ER (w1, t)) (right as ER (w2, _)) =
let
val count =
if ebIsNegative right then
P.error pos `"left shift count is negative" %
else
Word.fromLarge w2
in
ER (Word64.<< (w1, count), t)
end
and ebShiftRight pos left (right as ER (w, _)) =
let
val count =
if ebIsNegative right then
P.error pos `"right shift count is negative" %
else
Word.fromLarge w
val (conv, w64op) =
if isSigned (ebGetT left) then
(signExtend, Word64.~>>)
else
(zeroExtend, Word64.>>)
in
ER (w64op (conv left, count), ebGetT left)
end
and ebHardArith (int32op, int64op, word64op) (left as ER (w1, t))
(right as ER (w2, _))
=
if isSigned t then
let
val w = case sizeofWrapper t of
4 => int32Toword64 $ int32op (word64Toint32 w1, word64Toint32 w2)
| 8 => int64Toword64 $ int64op (word64Toint64 w1, word64Toint64 w2)
| _ => raise Unreachable
in
ER (w, t)
end
else
ebDirect word64op left right
and evalBinop (BR BrSum) _ left right = ebDirect Word64.+ left right
| evalBinop (BR BrSub) _ left right = ebDirect Word64.- left right
| evalBinop (BR BrBitAnd) _ left right =
ebDirect Word64.andb left right
| evalBinop (BR BrBitOr) _ left right = ebDirect Word64.orb left right
| evalBinop (BR BrBitXor) _ left right =
ebDirect Word64.xorb left right
| evalBinop (BR BrMul) _ left right =
ebHardArith (Int32.*, Int64.*, Word64.*) left right
| evalBinop (BR BrDiv) _ left right =
ebHardArith (Int32.div, Int64.div, Word64.div) left right
| evalBinop (BR BrMod) _ left right =
ebHardArith (Int32.mod, Int64.mod, Word64.mod) left right
| evalBinop (BR BrEqual) _ left right =
ER (evalEqCheck true left right, ebGetT left)
| evalBinop (BR BrNotEqual) _ left right =
ER (evalEqCheck false left right, ebGetT left)
| evalBinop (BR BrLogAnd) _ left right =
if ebIsNonzero left then
ER (w64FromBool $ ebIsNonzero right, int_t)
else
ER (Word64.fromInt 0, int_t)
| evalBinop (BR BrLogOr) _ left right =
if ebIsNonzero left then
ER (Word64.fromInt 1, int_t)
else
ER (w64FromBool $ ebIsNonzero right, int_t)
| evalBinop (BR BrShiftLeft) pos left right =
ebShiftLeft pos left right
| evalBinop (BR BrShiftRight) pos left right =
ebShiftRight pos left right
| evalBinop (BR BrGreater) _ left right =
ebCompare left right (fn GREATER => true | _ => false)
| evalBinop (BR BrGreaterEqual) _ left right =
ebCompare left right (fn GREATER | EQUAL => true | _ => false)
| evalBinop (BR BrLess) _ left right =
ebCompare left right (fn LESS => true | _ => false)
| evalBinop (BR BrLessEqual) _ left right =
ebCompare left right (fn LESS | EQUAL => true | _ => false)
| evalBinop _ pos _ _ = P.error pos
`"unsupported operator in constant expression" %
and sizeofValue (EA (_, _, _, t)) = ER (sizeOfType t, ulong_t)
and evalTernary cond left right =
eval' (if ebIsNonzero $ eval' cond then left else right)
and eval' (EA (e, pos, _, t)) =
case e of
Eid _ => P.error pos `"variable in constant expression" %
| Econst (_, Ninteger w) =>
(printf `"eval num: " W w `": " Pctype t `"\n" %;
ER (w, t))
| Econst _ => raise Unreachable
| Estrlit _ => P.error pos `"string literal in constant expression" %
| EmemberByV _ | EmemberByP _ =>
P.error pos `"field access in constant expresssion" %
| EfuncCall _ => P.error pos `"function call in constant expression" %
| EsizeofType t' => ER (sizeOfType t', ulong_t)
| Eunop (UnopSizeof, sub) => sizeofValue sub
| Eunop (unop, sub) =>
if isArith $ getT sub then
evalUnop unop (t, pos) (eval' sub)
else
P.error pos `"not an arithmetic expression" %
| Ebinop (binop, left, right) =>
if isArith $ getT left then
if isArith $ getT right then
evalBinop binop pos (eval' left) (eval' right)
else
P.error pos `"not an arithmetic expression" %
else
P.error pos `"not an arithmetic expression" %
| Eternary (cond, left, right) => evalTernary cond left right
and eval (E as EA (_, pos, _, _)) t' =
let
val e = Eunop (UnopCast, E)
val res = eval' $ EA (e, pos, false, t')
val ER (w, _) = res
val () = printf `"eval: " W w `"\n" %
in
zeroExtend res
end
and parseDeclPrefix ctx =
let
datatype state = TypeId of int | Type of ctype
fun collect ctx (storSpec, typeReprId) =
let
val (spec, ctx) = tryGetSpec ctx
in
case (spec, typeReprId) of
(NONE, TypeId 0) =>
let
val (_, pos, _) = getTokenCtx ctx
val ets = "expected type specifier"
val etss = "expected type or storage specifier"
in
P.error pos `(if isSome storSpec then ets else etss) %
end
| (NONE, TypeId id) => ((storSpec, typeRepr2type id), ctx)
| (NONE, Type t) => ((storSpec, t), ctx)
| (SOME (StorageSpec spec, pos), _) => (
case storSpec of
NONE => collect ctx (SOME spec, typeReprId)
| SOME _ =>
P.error pos `"storage specifier is already provided" %
)
| (SOME (TypeSpec T.kwStruct, _), TypeId 0) =>
let
val (t, ctx) = processStruct ctx
in
((storSpec, t), ctx)
end
| (SOME (TypeSpec T.kwStruct, pos), _) =>
P.error pos `"invalid type specifier" %
| (SOME (TypeSpec tk, pos), TypeId id) =>
collect ctx (storSpec, TypeId $ advanceTypeRepr id (tk, pos))
| (SOME (TypeSpec _, pos), _) =>
P.error pos `"invalid type specifier" %
end
in
collect ctx (NONE, TypeId 0)
end
and getStructName ctx =
let
val (tk, pos, ctx) = getTokenCtx ctx
in
case tk of
Tk (T.Id id) => (id, pos, ctx)
| TkBrackets _ =>
P.error pos `"anonymous structures are not supported" %
| _ => P.error pos `"expected struct name" %
end
and parseStructDeclaration ctx =
let
val (prefix, ctx) = parseDeclPrefix ctx
fun convToField ({ pos, spec = SOME _, ... }) =
P.error pos `"aggregate field with storage specifier" %
| convToField ({ id, pos, spec = NONE, t, ... }) =
if isFunc t then
P.error pos `"field of function type" %
else
(valOf id, pos, t)
fun collect acc ctx =
let
val (parts, ctx) = parseDeclarator (false, APprohibited) [] ctx
val declaredId = assembleDeclarator prefix parts
val field = convToField declaredId
val acc = field :: acc
val (tk, pos, ctx) = getTokenCtx ctx
in
case tk of
Tk T.Semicolon => (rev acc, ctx)
| Tk T.Comma => collect acc ctx
| _ => P.clerror pos [P.Ctk T.Semicolon, P.Ctk T.Comma]
end
in
collect [] ctx
end
and tryGetStructBody pos ctx: (nid * ctype) list option * ctx =
let
val (tk, _, ctx') = getTokenCtx ctx
fun checkFieldUniqueness ((id, _, _) :: fs) = (
case List.find (fn (id', _, _) => id' = id) fs of
SOME (_, pos, _) => P.error pos `"field name is reused" %
| NONE => checkFieldUniqueness fs
)
| checkFieldUniqueness [] = ()
fun collectFields acc ctx =
let
val (tk, _, _) = getTokenCtx ctx
in
case tk of
Tk T.EOS =>
let
val acc = rev acc
in
if null acc then
P.error pos `"empty structures are not supported" %
else (
checkFieldUniqueness acc;
(SOME $ map (fn (id, _, t) => (id, t)) acc, ctx)
)
end
| _ =>
let
val (fields, ctx) = parseStructDeclaration ctx
in
collectFields (List.revAppend (fields, acc)) ctx
end
end
in
case tk of
TkBraces list => ctxWithLayer ctx' list (collectFields [])
| _ => (NONE, ctx)
end
and getStructStatus id (Ctx { aggrTypeNames, ... }) =
let
val bufId = lookup aggrTypeNames id
(* val () = printf `"Searching for " P.? id `"\n" % *)
in
case bufId of
NONE => TsNotDefined
| SOME id =>
case #3 $ D.get types id of
struct_t { fields = [], ... } => TsIncomplete
| _ => TsDefined
end
and getTypeIdFromName id (Ctx { aggrTypeNames, ... }) =
valOf $ lookup aggrTypeNames id
and calcStruct id [] =
struct_t { name = id, size = 0w0, alignment = 0w0, fields = [] }
| calcStruct id fields =
let
val alignment: word =
List.foldl (fn ((_, t), m) =>
let
val fa = alignOfType t
in
if fa > m then fa else m
end) 0w0 $ fields
fun align v align =
if v mod align = 0w0 then v else v + align - v mod align
fun calcSize size [] offsets =
if size mod alignment = 0w0 then
(size, rev offsets)
else
(align size alignment, rev offsets)
| calcSize size ((_, t) :: fields) offsets =
let
val fieldOffset = align size (alignOfType t)
val size = fieldOffset + sizeOfType t
val () = printf `"foffset : " W fieldOffset `"\n" %
in
calcSize size fields (fieldOffset :: offsets)
end
val (size, offsets) =
calcSize ((sizeOfType o #2 o hd) fields) (tl fields) [0w0]
fun zipOffsets (off :: offs) ((id, t) :: fs) =
(id, off, t) :: zipOffsets offs fs
| zipOffsets [] [] = []
| zipOffsets _ _ = raise Unreachable
in
struct_t { name = id, size, alignment,
fields = zipOffsets offsets fields }
end
and Pstruct z =
let
fun p [] _ = ()
| p ((id, offset, t) :: fields) out =
Printf out `"\t" W offset `": " P.? id `": "
Pctype t `"\n" A1 p fields %
fun f (struct_t { size, alignment, fields, ... }) out =
Printf out `"{ size = " W size `", alignment = " W alignment `"\n"
A1 p fields `"}\n" %
| f _ _ = raise Unreachable
in
bind A1 f
end z
(*
val Ptk = fn z =>
let
fun f tk out = Printf out T.Ptk symtab tk %
in
bind A1 f
end z
*)
and registerStruct id _ TsIncomplete NONE ctx =
(getTypeIdFromName id ctx, ctx)
| registerStruct id _ TsDefined NONE ctx =
(getTypeIdFromName id ctx, ctx)
| registerStruct id pos TsNotDefined body
(C as Ctx { aggrTypeNames, ... })
=
let
val newBufId = D.length types
val (_, aggrTypeNames) = Tree.insert intCompare aggrTypeNames id newBufId
val (body', status) =
case body of
NONE => ([], "incomplete")
| SOME body => (body, "complete")
val newInfo = (id, pos, calcStruct id body')
in
D.push types newInfo;
printf `"new " `status `" struct: " P.? id `":" I id `"\n" %;
printf Pstruct (#3 newInfo) %;
(newBufId, updateCtx C s#aggrTypeNames aggrTypeNames %)
end
| registerStruct id pos TsIncomplete (SOME body)
(C as Ctx { aggrTypeNames, ... })
=
let
val bufId = valOf $ lookup aggrTypeNames id
val newInfo = (id, pos, calcStruct id body)
in
D.set types bufId newInfo;
printf `"completing struct: " P.? id `":" I id `"\n" %;
printf Pstruct (#3 newInfo) %;
(bufId, C)
end
| registerStruct _ pos TsDefined (SOME _) _ =
P.error pos `"struct redefinition" %
and processStruct ctx =
let
val (id, pos, ctx) = getStructName ctx
val status = getStructStatus id ctx
val (body, ctx) = tryGetStructBody pos ctx
val (bufTypeId, ctx) = registerStruct id pos status body ctx
in
(remote_t bufTypeId, ctx)
end
(*
and Ppart part out =
case part of
Pointer plevel => Printf out `"[" I plevel `"] " %
| Id _ => Printf out `"id" %
| AbstructRoot _ => Printf out `":root" %
| FuncApp _ => Printf out `"()" %
| ArrayApplication _ => Printf out `"[]" %
*)
and isTypeNameStart tk =
isSome $ List.find
(fn tk' => case tk of Tk tk => tk = tk' | _ => false) typeSpecs
and parseTypeName ctx =
let
val (prefix, ctx) = parseDeclPrefix ctx
val (parts, ctx) = parseDeclarator (true, APenforced) [] ctx
val declId = assembleDeclarator prefix parts
in
(#t declId, ctx)
end
and checkParamStorSpec ({ spec = spec, pos, ... }: rawDecl) =
case spec of
SOME SpecRegister =>
P.warning pos `"declaration with register storage specifier" %
| SOME _ => P.error pos `"parameter with invalid storage specifier" %
| _ => ()
and parseFuncParams ctx =
let
fun collect ctx acc =
let
val (prefix, ctx) = parseDeclPrefix ctx
val (parts, ctx) = parseDeclarator (false, APpermitted) [] ctx
val declaredId = assembleDeclarator prefix parts
val () = checkParamStorSpec declaredId
val (tk, pos, ctx) = getTokenCtx ctx
in
case tk of
Tk T.EOS => (rev $ declaredId :: acc, ctx)
| Tk T.Comma => collect ctx (declaredId :: acc)
| _ => P.clerror pos [P.Ctk T.Comma, P.Ctk T.RParen]
end
fun collect2 () =
let
val (tk, _, _) = getTokenCtx ctx
in
case tk of
Tk T.EOS => ([], ctx)
| _ => collect ctx []
end
val (params, ctx) = collect2 ()
val params =
map (fn { id, pos, t, ... } => (id, pos, t)) params
in
(FuncApp params, ctx)
end
and collectDDeclaratorTail parts untilEnd ctx =
let
val (tk, pos, ctx') = getTokenCtx ctx
fun % ctx list f parts =
let
val (part, ctx) = ctxWithLayer ctx list (fn ctx => f ctx)
in
collectDDeclaratorTail (part :: parts) untilEnd ctx
end
in
case tk of
TkParens list => % ctx' list parseFuncParams parts
| TkBrackets list =>
let
val ((_, ea), ctx) = ctxWithLayer ctx' list $ parseExpr []
val w = eval ea ulong_t
in
collectDDeclaratorTail (ArrayApplication w :: parts) untilEnd ctx
end
| Tk T.EOS => (parts, ctx)
| _ =>
if untilEnd then
P.clerror pos [P.Ctk T.LParen, P.Ctk T.RParen]
else
(parts, ctx)
end
and isParams list =
case (#1 $ hd list) of
Tk T.EOS => true
| tk => isTypeNameStart tk
and parseDDeclarator (untilEnd, absPolicy) ctx parts =
let
val (tk, pos, ctx') = getTokenCtx ctx
val isEOS = fn Tk T.EOS => true | _ => false
val consAbstruct = fn () => (AbstructRoot pos :: parts, ctx)
val (parts, ctx) =
case (tk, absPolicy) of
(Tk (T.Id _), APenforced) =>
P.error pos `"unexpected identifier in abstract declarator" %
| (Tk (T.Id id), _) => (Id (id, pos) :: parts, ctx')
| (TkParens list, _) => (
case (isParams list, absPolicy) of
(true, APprohibited) =>
P.clerror (#2 $ hd list) [P.Cid, P.Ctk T.Asterisk]
| (true, _) => consAbstruct ()
| (false, _) => ctxWithLayer ctx' list
(parseDeclarator (true, absPolicy) parts)
)
| (TkBrackets _, APenforced) | (TkBrackets _, APpermitted) =>
consAbstruct ()
| (_, APprohibited) =>
P.clerror pos [P.Cid, P.Ctk T.LParen]
| (_, _) =>
if untilEnd andalso not (isEOS tk) then
P.error pos `"expected abstruct declarator end" %
else
consAbstruct ()
in
collectDDeclaratorTail parts untilEnd ctx
end
and parseDeclarator conf parts ctx =
let
fun collectPointer plevel ctx =
let
val (tk, pos, ctx') = getTokenCtx ctx
in
case tk of
Tk T.Asterisk => collectPointer (plevel + 1) ctx'
| Tk T.kwConst => P.error pos `"const is not supported" %
| Tk T.kwVolatile => P.error pos `"volatile is not supported" %
| _ => (plevel, ctx)
end
val (plevel, ctx) = collectPointer 0 ctx
val (parts, ctx) = parseDDeclarator conf ctx parts
in
(if plevel > 0 then
Pointer plevel :: parts
else
parts, ctx)
end
and checkParamUniqueness _ [] = ()
| checkParamUniqueness acc ((SOME id, pos, _) :: ids) = (
case List.find (fn id' => id' = id) acc of
SOME _ => P.error pos `"parameter redefinition" %
| NONE => checkParamUniqueness (id :: acc) ids
)
| checkParamUniqueness acc ((NONE, _, _) :: ids) =
checkParamUniqueness acc ids
and assembleDeclarator (storSpec, ctype) parts =
let
val parts = rev parts
val (id, pos) =
case hd parts of
Id (id, pos) => (SOME id, pos)
| AbstructRoot pos => (NONE, pos)
| _ => raise Unreachable
fun complete (Pointer plevel :: tail) =
let
val t = complete tail
in
case t of
pointer_t (plevel', t) => pointer_t (plevel' + plevel, t)
| _ => pointer_t (plevel, t)
end
| complete (FuncApp params :: tail) =
let
val () = checkParamUniqueness [] params
val params = map (fn (_, _, ctype) => ctype) params
in
function_t (complete tail, params)
end
| complete (ArrayApplication n :: tail) = array_t (n, complete tail)
| complete [] = ctype
| complete _ = raise Unreachable
val params =
case parts of
_ :: FuncApp p :: _ => SOME $ map (fn (id, pos, _) => (id, pos)) p
| _ => NONE
in
({ id, pos, spec = storSpec, t = complete $ tl parts,
ini = NONE, params }: rawDecl)
end
fun printIni (IniExpr ea) out = Printf out A1 pea ea %
| printIni (IniCompound inis) out = Printf out
`"{" Plist (printIni) inis (", ", false) `"}" %
fun dieExpTerms pos terms = P.clerror pos $ map P.Ctk terms
fun parseCompoundInitializer ctx =
let
fun collect ctx acc =
let
val (status, ini, ctx) = parseInitializer [T.Comma] ctx
in
if status = 0 then
(rev $ ini :: acc, ctx)
else
collect ctx (ini :: acc)
end
val (inis, ctx) = collect ctx []
in
(IniCompound inis, ctx)
end
and parseInitializer terms ctx =
let
val (tk, _, ctx') = getTokenCtx ctx
in
case tk of
TkBraces list =>
let
val (ini, ctx) = ctxWithLayer ctx' list parseCompoundInitializer
val (tk, pos, ctx) = getTokenCtx ctx
val status = oneOfEndTks tk terms
in
if status = 0 then
dieExpTerms pos terms
else
(status, ini, ctx)
end
| _ =>
let
val ((status, ea), ctx) = parseExpr terms ctx
fun isToplev [_, _] = true
| isToplev _ = false
in
if status = 0 andalso isToplev terms then
dieExpTerms (#2 $ getTokenCtx ctx) terms
else
(status, IniExpr ea, ctx)
end
end
fun tryParseInitializer ctx rawId =
let
val (status, ini, ctx) = parseInitializer [T.Comma, T.Semicolon] ctx
in
(status, updateRD rawId s#ini (SOME ini) %, ctx)
end
fun getLinkage ctx (D as { spec = NONE, t, ... }) =
if isFunc t then
getLinkage ctx (updateRD D s#spec (SOME SpecExtern) %)
else
LinkExternal
| getLinkage _ { spec = SOME SpecStatic, ... } = LinkInternal
| getLinkage (Ctx ctx) { spec = SOME SpecExtern, id, ... } =
let
val prevLinkage =
case lookup (#globalDecls ctx) (valOf id) of
NONE => NONE
| SOME (_, _, _, linkage) => SOME linkage
in
case prevLinkage of
SOME linkage => linkage
| NONE => LinkExternal
end
| getLinkage _ { pos, ... } =
P.error pos `"declaration with invalid storage specifier" %
fun getToplevFuncDeclKind ctx (D as { id, pos, t, ... }: rawDecl) =
let
val linkage = getLinkage ctx D
in
(DeclRegular, (valOf id, pos, t, linkage), NONE)
end
fun getToplevObjDeclKind ctx
(D as { ini, id, pos, t, spec, ... }: rawDecl) =
let
val linkage = getLinkage ctx D
val decl = (valOf id, pos, t, linkage)
in
case ini of
SOME _ => (DeclDefined, decl, ini)
| NONE =>
let
val class =
case spec of
SOME SpecExtern => DeclRegular
| NONE | SOME SpecStatic =>
if isFunc t then DeclRegular else DeclTentative
| _ => raise Unreachable
in
(class, decl, ini)
end
end
fun getToplevDeclKind ctx (id as { t, ... }: rawDecl) =
(if isFunc t then getToplevFuncDeclKind else getToplevObjDeclKind)
ctx id
fun link2str LinkInternal = "internal"
| link2str LinkExternal = "external"
fun class2str DeclRegular = "regular"
| class2str DeclTentative = "tentative"
| class2str DeclDefined = "definition"
fun addDeclaration (Ctx ctx) (id, pos, t, linkage) class =
let
fun f NONE = ((), SOME (pos, class, t, linkage))
| f (SOME (_, class', t', linkage')) =
if linkage' <> linkage then
P.error pos `"declaration linkage conflict" %
else if t <> t' then
P.error pos `"declaration type conflict" %
else
let
val newClass =
case (class, class') of
(DeclRegular, DeclRegular) => DeclRegular
| (DeclRegular, DeclTentative) | (DeclTentative, DeclRegular) |
(DeclTentative, DeclTentative) => DeclTentative
| (DeclDefined, DeclDefined) =>
P.error pos `"redefinition" %
| _ => DeclDefined
in
((), SOME (pos, newClass, t, linkage))
end
val () = printf `(class2str class) `" decl "
`(link2str linkage) `" " P.?id `": " Pctype t `"\n" %
val ((), tree) = lookup2 (#globalDecls ctx) id f
in
updateCtx (Ctx ctx) s#globalDecls tree %
end
datatype idData = ToplevId of objDef | LocalId of int * ini option
fun handleToplevDecl ctx rawDecl =
let
val (class, D as (id, pos, t, linkage), ini) =
getToplevDeclKind ctx rawDecl
val ctx = addDeclaration ctx D class
in
if class = DeclDefined then
(SOME $ ToplevId (id, pos, t, valOf ini, linkage), ctx)
else
(NONE, ctx)
end
fun warnRegister pos (SOME SpecRegister) =
P.warning pos `"register storage specifier" %
| warnRegister _ _ = ()
fun checkLocalVarType pos t =
if isFunc t then
P.error pos `"variable with function type" %
else
()
fun insertLocalVar (Ctx ctx) ({ id, pos, t, ... }: rawDecl) =
let
val id = valOf id
val scope = hd $ #localScopes ctx
val oldVal = lookup scope id
in
case oldVal of
SOME _ => P.error pos `"local variable redefinition" %
| NONE =>
let
val varId = length $ #localVars ctx
val localVars = (id, pos, t) :: #localVars ctx
val (_, scope) = Tree.insert intCompare scope id varId
in
(varId, id, updateCtx (Ctx ctx)
u#localScopes (fn scs => scope :: tl scs)
s#localVars localVars %)
end
end
fun handleLocalVar ctx (D as { spec, pos, t, ini, ... }: rawDecl) =
let
val () = warnRegister pos spec
val () = checkLocalVarType pos t
val (varId, nid, ctx) = insertLocalVar ctx D
val offset = case ctx of Ctx v => length $ #localScopes v
in
printf R offset
`"local var " P.?nid `"(" I varId `"): " Pctype t `"\n" %;
if isSome ini orelse not $ isScalar t then
(SOME $ LocalId (varId, ini), ctx)
else
(NONE, ctx)
end
fun handleRawDecl ctx (D as { spec, pos, ... }: rawDecl) =
case spec of
SOME SpecTypedef => P.error pos `"typedef is not supported yet\n" %
| _ =>
(if isGlobalScope ctx then handleToplevDecl else handleLocalVar)
ctx D
datatype fdecRes =
FDnormal of (bool * idData option) |
FDFuncDef of rawDecl * (token * P.tkPos) list
fun finishDeclarator rawId expectFdef ctx =
let
val (tk, pos, ctx) = getTokenCtx ctx
fun ret continue rawId ctx =
let
val (def, ctx) = handleRawDecl ctx rawId
in
(FDnormal (continue, def), ctx)
end
in
case tk of
Tk T.Comma => ret true rawId ctx
| Tk T.Semicolon => ret false rawId ctx
| Tk T.EqualSign =>
let
val (status, rawId, ctx) = tryParseInitializer ctx rawId
in
ret (status = 1) rawId ctx
end
| _ =>
if expectFdef then
case tk of
TkBraces list => (FDFuncDef (rawId, list), ctx)
| _ => P.clerror pos
[P.Ctk T.Comma, P.Ctk T.Semicolon, P.Ctk T.LBrace]
else
P.clerror pos [P.Ctk T.Comma, P.Ctk T.Semicolon]
end
datatype toplev =
ObjDefs of objDef list |
LocalVarInits of (int * ini option) list |
FuncDef of rawDecl * (token * P.tkPos) list
fun parseDeclaration ctx =
let
val toplev = isGlobalScope ctx
val (prefix, ctx) = parseDeclPrefix ctx
fun finishNormal acc =
let
val acc = rev acc
in
if toplev then
ObjDefs $ map (fn ToplevId v => v | _ => raise Unreachable) acc
else
LocalVarInits $ map (fn LocalId v => v | _ => raise Unreachable)
acc
end
fun collectDeclarators acc ctx =
let
fun add (SOME v) = v :: acc
| add NONE = acc
val (parts, ctx) = parseDeclarator (false, APprohibited) [] ctx
val declIdRaw = assembleDeclarator prefix parts
val (res, ctx) = finishDeclarator declIdRaw
(toplev andalso null acc) ctx
in
case res of
FDFuncDef fd => (FuncDef fd, ctx)
| FDnormal (continue, toplevMaybe) =>
if continue then
collectDeclarators (add toplevMaybe) ctx
else
(finishNormal $ add toplevMaybe, ctx)
end
val (tk, _, ctx') = getTokenCtx ctx
in
case tk of
Tk T.Semicolon => (finishNormal [], ctx')
| _ => collectDeclarators [] ctx
end
fun skipExpected expectedTk ctx =
let
val (tk, pos, ctx) = getTokenCtx ctx
fun die () = P.clerror pos [P.Ctk expectedTk]
in
case tk of
Tk tk =>
if tk = expectedTk then
ctx
else
die ()
| _ => die ()
end
fun parseJmp (ctx, pos) stmt =
let
val () =
if not $ isInLoop ctx then
P.error pos `"loop jump outside of loop" %
else
()
val ctx' = skipExpected T.Semicolon ctx
in
(stmt, ctx')
end
fun parseStmt ctx =
let
val (tk, pos, ctx') = getTokenCtx ctx
val loopWrapper = loopWrapper ctx'
val parseJmp = parseJmp (ctx', pos)
in
case tk of
TkBraces list => ctxWithLayer ctx' list (parseStmtCompound false)
| Tk T.kwIf => parseIf ctx'
| Tk T.kwFor => loopWrapper parseFor
| Tk T.kwWhile => loopWrapper parseWhile
| Tk T.kwDo => loopWrapper parseDoWhile
| Tk T.kwBreak => parseJmp StmtBreak
| Tk T.kwContinue => parseJmp StmtContinue
| Tk T.kwReturn => parseReturn ctx
| _ => parseStmtExpr ctx
end
and getParenInsides ctx =
let
val (tk, pos, ctx) = getTokenCtx ctx
in
case tk of
TkParens list => (list, ctx)
| _ => P.clerror pos [P.Ctk T.LParen]
end
and getReturnExpr ctx =
let
val (tk, _, ctx') = getTokenCtx ctx
in
case tk of
Tk T.Semicolon => (NONE, ctx')
| _ =>
let
val ((status, ea), ctx) = parseExpr [T.Semicolon] ctx
in
if status = 0 then
P.clerror (#2 $ getTokenCtx ctx) [P.Ctk T.Semicolon]
else
(SOME ea, ctx)
end
end
and parseReturn ctx =
let
val (_, pos, ctx) = getTokenCtx ctx
val (ea, ctx) = getReturnExpr ctx
val Ctx ctx' = ctx
val rt = valOf $ #funcRetType ctx'
fun ret () = (StmtReturn $ Option.map (convEA rt) ea, ctx)
in
case ea of
NONE =>
if rt = void_t then
ret ()
else
P.error pos `"empty return in non-void function" %
| SOME _ =>
if rt = void_t then
P.error pos `"attempt to return value in void function" %
else
ret ()
end
and parseExprFor last ctx =
let
val (tk, pos, ctx') = getTokenCtx ctx
val notlastExp = [P.Ctk T.Semicolon, P.Cexpr]
val lastExp = [P.Ctk T.RParen, P.Cexpr]
in
case tk of
Tk tk =>
if (last andalso tk = T.EOS) orelse
(not last andalso tk = T.Semicolon)
then
(NONE, ctx')
else
let
val ((status, ea), ctx) = parseExpr [T.Semicolon] ctx
in
if status = 0 andalso not last then
P.clerror (#2 $ getTokenCtx ctx) [P.Ctk T.Semicolon]
else if status <> 0 andalso last then
P.clerror (#2 $ getTokenCtx ctx) [P.Ctk T.RParen]
else
(SOME ea, ctx)
end
| _ => P.clerror pos (if last then lastExp else notlastExp)
end
and parseFor ctx =
let
fun parseHeader ctx =
let
val (pre, ctx) = parseExprFor false ctx
val (cord, ctx) = parseExprFor false ctx
val (post, ctx) = parseExprFor true ctx
in
((pre, cord, post), ctx)
end
val (list, ctx) = getParenInsides ctx
val ((pre, cord, post), ctx) = ctxWithLayer ctx list parseHeader
val (body, ctx) = parseStmt ctx
in
(StmtFor (pre, cord, post, body), ctx)
end
and parseExprInParens ctx =
let
val (list, ctx) = getParenInsides ctx
val ((_, ea), ctx) = ctxWithLayer ctx list (parseExpr [])
in
(ea, ctx)
end
and parseIf ctx =
let
val (cond, ctx) = parseExprInParens ctx
val (stmt, ctx) = parseStmt ctx
val (tk, _, ctx') = getTokenCtx ctx
val (elseBody, ctx) =
case tk of
Tk T.kwElse => (fn (a, b) => (SOME a, b)) $ parseStmt ctx'
| _ => (NONE, ctx)
in
(StmtIf (cond, stmt, elseBody), ctx)
end
and parseWhile ctx =
let
val (cond, ctx) = parseExprInParens ctx
val (stmt, ctx) = parseStmt ctx
in
(StmtWhile (cond, stmt), ctx)
end
and parseDoWhile ctx =
let
val (stmt, ctx) = parseStmt ctx
val ctx = skipExpected T.kwWhile ctx
val (cond, ctx) = parseExprInParens ctx
val ctx = skipExpected T.Semicolon ctx
in
(StmtDoWhile (stmt, cond), ctx)
end
and parseStmtExpr ctx =
let
val ((status, ea), ctx) = parseExpr [T.Semicolon] ctx
in
if status = 0 then
P.clerror (#2 $ getTokenCtx ctx) [P.Ctk T.Semicolon]
else
(StmtExpr ea, ctx)
end
and parseStmtCompound isFuncBody ctx =
let
fun collectDecls acc ctx =
let
val (tk, _, _) = getTokenCtx ctx
in
if isTypeNameStart tk then
let
val (res, ctx) = parseDeclaration ctx
val inits =
case res of
LocalVarInits l => l
| _ => raise Unreachable
in
collectDecls (List.revAppend (inits, acc)) ctx
end
else
(rev acc, ctx)
end
fun collectStmts acc ctx =
let
val (tk, _, _) = getTokenCtx ctx
in
case tk of
Tk T.EOS => (rev acc, ctx)
| _ =>
let
val (stmt, ctx) = parseStmt ctx
in
collectStmts (stmt :: acc) ctx
end
end
val ctx =
if isFuncBody then
ctx
else
updateCtx ctx u#localScopes (fn scs => Tree.empty :: scs) %
val (inits, ctx) = collectDecls [] ctx
val (stmts, ctx) = collectStmts [] ctx
val ctx = updateCtx ctx u#localScopes tl %
in
(StmtCompound (inits, stmts), ctx)
end
fun pinit off (id, ini) out =
Printf out R off
`"%" I id `" <- " A3 poptN "alloc" printIni ini `"\n" %
fun pstmt' off (StmtCompound (inits, stmts)) out =
Printf out `"{\n"
Plist (pinit (off + 1)) inits ("", false)
Plist (pstmt (off + 1)) stmts ("\n", false)
R off `"}" %
| pstmt' _ (StmtExpr ea) out = Printf out A1 pea ea `";" %
| pstmt' off (StmtIf (cond, ifBody, elseBody)) out =
Printf out `"if " A1 pea cond `" " A2 pCompBody (off + 1) ifBody
Popt (fn stmt => fn out =>
Printf out R off `"else " A2 pCompBody (off + 1) stmt %) elseBody %
| pstmt' off (StmtFor (pre, cond, post, body)) out =
Printf out
`"for " Popt pea pre `"; " Popt pea cond `"; " Popt pea post
A2 pCompBody (off + 1) body %
| pstmt' off (StmtWhile (cond, body)) out =
Printf out `"while " A1 pea cond `" "
A2 pCompBody (off + 1) body %
| pstmt' off (StmtDoWhile (body, cond)) out =
Printf out `"do " A2 pCompBody (off + 1) body
`" " A1 pea cond `";" %
| pstmt' _ (StmtReturn ea) out =
Printf out `"return " Popt pea ea `";" %
| pstmt' _ StmtBreak out = Printf out `"break;" %
| pstmt' _ StmtContinue out = Printf out `"continue;" %
and pCompBody off (S as (StmtCompound _)) out =
Printf out A2 pstmt' (off - 1) S %
| pCompBody (off:int) stmt out = Printf out `"\n" A2 pstmt off stmt %
and pstmt off stmt out = Printf out R off A2 pstmt' off stmt `"\n" %
val Pstmt = fn z => bind A2 pstmt z
fun validateFuncHeader ({ t, pos, params, ... }: rawDecl) =
let
val () =
if not $ isFunc t then
P.error pos `"identifier not of function type\n" %
else
()
fun checkParams [] = ()
| checkParams ((id, pos) :: tail) =
case id of
NONE => P.error pos `"expected parameter name\n" %
| SOME _ => checkParams tail
fun checkParamTypes (arg :: args) =
if not $ isScalar arg then
P.error pos `"function has parameter with non-scalar type" %
else
checkParamTypes args
| checkParamTypes [] = ()
val (rt, args) = funcParts t
val () =
if isScalar rt orelse rt = void_t then
()
else
P.error pos `"function return type is not scalar or void" %
in
checkParams $ valOf params;
checkParamTypes args
end
fun ctxPrepareForFunc ctx t params =
let
val (rt, paramTypes) = funcParts t
fun createLocalVars (acc, scope) [] [] = (acc, scope)
| createLocalVars (acc, scope) (t :: ts) ((SOME id, pos) :: params) =
let
val localVar = (id, pos, t)
val (_, scope) = Tree.insert intCompare scope id $ length acc
in
createLocalVars (localVar :: acc, scope) ts params
end
| createLocalVars _ _ _ = raise Unreachable
val (localVars, scope) =
createLocalVars ([], Tree.empty) paramTypes params
in
updateCtx ctx s#localVars localVars s#localScopes [scope]
s#funcRetType (SOME rt) %
end
fun finishLocalVars (Ctx ctx) = Vector.fromList o rev o #localVars $ ctx
fun parseFuncDefinition (D as { id, pos, t, params, ... }: rawDecl) ctx =
let
val () = validateFuncHeader D
val (id, params) = (valOf id, valOf params)
val ctx = ctxPrepareForFunc ctx t params
val linkage = getLinkage ctx D
val ctx = addDeclaration ctx (id, pos, t, linkage) DeclDefined
val (stmt, ctx) = parseStmtCompound true ctx
val localVars = finishLocalVars ctx
in
(Definition {
name = id,
pos,
t,
paramNum = length params,
localVars,
stmt },
ctx)
end
fun printFuncHeader ({ name, localVars, paramNum, t, ... }: funcInfo) =
let
fun getParams acc idx =
if idx = paramNum then
rev acc
else
let
val param = #3 $ Vector.sub (localVars, idx)
in
getParams ((idx, param) :: acc) (idx + 1)
end
val params = getParams [] 0
fun printParam (id, t) out = Printf out `"%" I id `": " Pctype t %
val ret = case t of function_t (ret, _) => ret | _ => raise Unreachable
in
printf P.?name Plist printParam params (", ", true)
`" -> " Pctype ret `"\n" %
end
fun printDef (Objects objs) =
let
fun pobj (id, _, t, ini, linkage) out =
let
val link = if linkage = LinkInternal then "static" else "global"
in
Printf out `link `" " P.?id `":" Pctype t
`" = " A1 printIni ini `"\n" %
end
in
printf Plist pobj objs ("", false) %
end
| printDef (Definition (D as { stmt, localVars, ... })) =
let
fun pLocalVar i (id, _, t) out =
Printf out `"%" I i `"(" P.?id `"): " Pctype t `"\n" %
in
printFuncHeader D;
printf Pstmt 0 stmt %;
Vector.appi (fn (i, var) => printf A2 pLocalVar i var %) localVars
end
fun parseDef ctx =
let
val (tk, _, _) = getTokenCtx ctx
in
case tk of
Tk T.EOS => NONE
| _ =>
let
val (toplev, ctx) = parseDeclaration ctx
in
SOME (case toplev of
ObjDefs objDefList => (Objects objDefList, ctx)
| FuncDef (id, body) =>
ctxWithLayer ctx body (parseFuncDefinition id)
| LocalVarInits _ => raise Unreachable)
end
end
end
|