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|
structure Elab =
struct
structure StringMap = Map(type k = string val cmp = String.compare)
structure IntMap = Map(type k = int val cmp = Int.compare)
fun primop (s : string) : Syntax.primop =
case s of
"exit" => Syntax.PExit
| "add" => Syntax.PAdd
| "sub" => Syntax.PSub
| "mul" => Syntax.PMul
| "div" => Syntax.PDiv
| _ => raise Fail ("invalid op: " ^ s)
fun enumerate l = ListPair.zip (List.tabulate (length l, (fn x => x)), l)
fun hdstls ([] : 'a list list) : ('a list * 'a list list) option = SOME ([], [])
| hdstls ([] :: _) = NONE
| hdstls ((x :: xs) :: ls) =
case hdstls ls of
NONE => NONE
| SOME (heads, tails) => SOME (x :: heads, xs :: tails)
fun transpose ([] : 'a list list) : 'a list list = []
| transpose l =
case hdstls l of
NONE => []
| SOME (heads, tails) => heads :: transpose tails
fun patternMatrix (arms : Syntax.pat list) : Syntax.pat list list =
let val ts =
foldl
(fn (Syntax.PWild, tupleSize) => tupleSize
| (Syntax.PVar _, tupleSize) => tupleSize
| (Syntax.PInt _, _) => ~2
| (Syntax.PTuple t, ~1) => length t
| (Syntax.PTuple t, tupleSize) =>
if tupleSize = length t
then tupleSize
else raise Fail "a type checker would have caught this")
~1
arms
in if ts < 0
then [arms]
else let
val expandedArms =
map
(fn Syntax.PTuple t => t
| _ => List.tabulate (ts, fn _ => Syntax.PWild))
arms
val cols = transpose expandedArms
in List.concat (map patternMatrix cols)
end
end
fun occurrenceVector (expr : Syntax.lexp) (arms : Syntax.pat list) : Syntax.lexp list =
let
val expandedArms =
List.mapPartial
(fn Syntax.PTuple t => SOME t
| _ => NONE)
arms
val cols = transpose expandedArms
in
case cols of
[] => [expr]
| _ => List.concat (map (fn (i, col) => occurrenceVector (Syntax.LSelect (i, expr)) col) (enumerate cols))
end
fun patternBindings (expr : Syntax.lexp) (Syntax.PVar v) : (string * Syntax.lexp) list = [(v, expr)]
| patternBindings expr (Syntax.PTuple t) =
List.concat (map (fn (i, p) => patternBindings (Syntax.LSelect (i, expr)) p) (enumerate t))
| patternBindings _ _ = []
fun swap1 0 (l : 'a list) : 'a list = l
| swap1 n (first :: rest) =
(case swap1 (n - 1) rest of
x :: rest => x :: first :: rest
| _ => raise Fail "swap1: index out of bounds")
| swap1 _ _ = raise Fail "swap1: index out of bounds"
fun swap (n : int) (patterns : Syntax.pat list list) (occurrences : Syntax.lexp list) : Syntax.pat list list * Syntax.lexp list =
(map (swap1 n) patterns, swap1 n occurrences)
fun specialize (n : int) (patterns : Syntax.pat list list, occurrences : Syntax.lexp list, actions : Syntax.lexp list) : Syntax.pat list list * Syntax.lexp list * Syntax.lexp list =
let
val (patterns, actions) =
ListPair.unzip
(List.mapPartial
(fn (Syntax.PInt i :: rest, a) => if i = n then SOME (rest, a) else NONE
| (Syntax.PWild :: rest, a) => SOME (rest, a)
| (Syntax.PVar _ :: rest, a) => SOME (rest, a)
| _ => raise Fail "unexpected pattern in the matrix")
(ListPair.zip (patterns, actions)))
in (patterns, tl occurrences, actions)
end
fun default (patterns : Syntax.pat list list, occurrences : Syntax.lexp list, actions : Syntax.lexp list) : Syntax.pat list list * Syntax.lexp list * Syntax.lexp list =
let
val (patterns, actions) =
ListPair.unzip
(List.mapPartial
(fn (Syntax.PWild :: rest, a) => SOME (rest, a)
| (Syntax.PVar _ :: rest, a) => SOME (rest, a)
| _ => NONE)
(ListPair.zip (patterns, actions)))
in (patterns, tl occurrences, actions)
end
fun compilePatternMatching ([] : Syntax.pat list list, _ : Syntax.lexp list, _ : Syntax.lexp list) : Syntax.lexp =
raise Fail "nonexhaustive match"
| compilePatternMatching (patterns as firstRow :: rows, occurrences, actions) =
let val refutablePattern =
List.find
(fn (_, Syntax.PInt _) => true
| _ => false)
(enumerate firstRow)
in
case refutablePattern of
NONE => hd actions
| SOME (i, _) =>
let
val (patterns, occurrences) =
if i = 0
then (patterns, occurrences)
else swap i patterns occurrences
val signatures =
map (fn (x, _) => x)
(IntMap.toList
(foldl
(fn (Syntax.PInt i, acc) => IntMap.insert i true acc
| (_, acc) => acc)
IntMap.empty
(map hd patterns)))
in
Syntax.LSwitch
( hd occurrences
, map
(fn i => (i, compilePatternMatching (specialize i (patterns, occurrences, actions))))
signatures
, compilePatternMatching (default (patterns, occurrences, actions))
)
end
end
fun actionVector (env : int StringMap.map) (expr : Syntax.lexp) (arms : (Syntax.pat * Syntax.expr) list) : Syntax.lexp list =
map
(fn (p, body) =>
let
val bindings = patternBindings expr p
val env =
foldl
(fn ((name, _), env) =>
StringMap.insert name (Gensym.new ()) env)
env
bindings
in
foldl
(fn ((name, binding), acc) =>
Syntax.LApp (Syntax.LFn (valOf (StringMap.lookup name env), acc), binding))
(elab env body)
bindings
end)
arms
and elabCase (env : int StringMap.map) (expr : Syntax.lexp) (arms : (Syntax.pat * Syntax.expr) list) =
let
val patterns = transpose (patternMatrix (map (fn (x, _) => x) arms))
val occurrences = occurrenceVector expr (map (fn (x, _) => x) arms)
val actions = actionVector env expr arms
val actionFns =
map
(fn a => (Gensym.new (), Gensym.new (), a))
actions
val smallActions =
map
(fn (f, _, _) => Syntax.LApp (Syntax.LVar f, Syntax.LInt 0))
actionFns
in
Syntax.LFix
( actionFns
, compilePatternMatching (patterns, occurrences, smallActions)
)
end
and elab (env : int StringMap.map) (p : Syntax.expr) : Syntax.lexp =
case p of
Syntax.EIdent [i] => (case StringMap.lookup i env of
NONE => raise Fail ("unbound identifier " ^ i)
| SOME x => Syntax.LVar x)
| Syntax.EIdent _ => raise Fail "long identifiers are not supported"
| Syntax.EBuiltin builtin => Syntax.LPrim (primop builtin)
| Syntax.EInt i => Syntax.LInt i
| Syntax.EStr s => Syntax.LString s
| Syntax.ETuple exprs => Syntax.LRecord (map (elab env) exprs)
| Syntax.EList exprs =>
foldr
(fn (x, acc) =>
Syntax.LRecord [elab env x, acc])
(Syntax.LInt 0)
exprs
| Syntax.EApp (f, x) => Syntax.LApp (elab env f, elab env x)
| Syntax.ETyped (e, _) => elab env e
| Syntax.EAndAlso (_, _) => raise Fail "unimplemented"
| Syntax.EOrElse (_, _) => raise Fail "unimplemented"
| Syntax.ELet ([], body) => elab env body
| Syntax.ELet (Syntax.DVal (pat, v) :: decls, body) =>
elab env (Syntax.ECase (v, [(pat, Syntax.ELet (decls, body))]))
| Syntax.ELet (Syntax.DValRec (Syntax.PVar name, f as Syntax.ELambda _) :: decls, body) =>
let
val n = Gensym.new ()
val env' = StringMap.insert name n env
val (arg, fnBody) =
case elab env' f of
Syntax.LFn x => x
| _ => raise Fail "Syntax.ELambda should expand to Syntax.LFn"
in
Syntax.LFix ([(n, arg, fnBody)], elab env' (Syntax.ELet (decls, body)))
end
| Syntax.ELet (Syntax.DValRec _ :: _, _) => raise Fail "invalid val rec"
| Syntax.ELambda body =>
let val v = Gensym.new ()
in Syntax.LFn (v, elabCase env (Syntax.LVar v) [body])
end
| Syntax.ECase (expr, arms) =>
let val v = Gensym.new ()
in Syntax.LApp (Syntax.LFn (v, elabCase env (Syntax.LVar v) arms), elab env expr)
end
fun elaborate (p : Syntax.expr) : Syntax.lexp = elab StringMap.empty p
end
|