Source file generate_closure.ml
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open! Stdlib
open Code
let debug_tc = Debug.find "gen_tc"
type cps_pair =
{ direct_c : Code.Var.t
; cps_c : Code.Var.t
;
cps_code : Code.instr
}
type closure_info =
{ f_name : Code.Var.t
; args : Code.Var.t list
; cont : Code.cont
; tc : Code.Addr.Set.t Code.Var.Map.t
; pos : int
; cloc : Parse_info.t option
;
cps_pair : cps_pair option
}
module SCC = Strongly_connected_components.Make (Var)
let add_multi k v map =
Var.Map.update
k
(fun set -> Some (Addr.Set.add v (Option.value ~default:Addr.Set.empty set)))
map
let rec collect_apply pc blocks visited tc =
if Addr.Set.mem pc visited
then visited, tc
else
let visited = Addr.Set.add pc visited in
let block = Addr.Map.find pc blocks in
let tc_opt =
match block.branch with
| Return x -> (
match List.last block.body with
| Some (Let (y, Apply { f; exact = true; _ })) when Code.Var.equal x y ->
Some (add_multi f pc tc)
| None | Some _ -> None)
| _ -> None
in
match tc_opt with
| Some tc -> visited, tc
| None ->
Code.fold_children
blocks
pc
(fun pc (visited, tc) -> collect_apply pc blocks visited tc)
(visited, tc)
let rec collect_closures blocks l pos =
match l with
| Let (direct_c, Closure (args, ((pc, _) as cont), cloc))
:: (Let (cps_c, Closure (_, _, _)) as cps_code)
:: Let (x, Prim (Extern "caml_cps_closure", [ Pv d; Pv c ]))
:: rem
when Var.equal d direct_c && Var.equal c cps_c ->
let _, tc = collect_apply pc blocks Addr.Set.empty Var.Map.empty in
let l, rem = collect_closures blocks rem (succ pos) in
( { f_name = x
; args
; cont
; tc
; pos
; cloc
; cps_pair = Some { direct_c; cps_c; cps_code }
}
:: l
, rem )
| Let (f_name, Closure (args, ((pc, _) as cont), cloc)) :: rem ->
let _, tc = collect_apply pc blocks Addr.Set.empty Var.Map.empty in
let l, rem = collect_closures blocks rem (succ pos) in
{ f_name; args; cont; tc; pos; cloc; cps_pair = None } :: l, rem
| rem -> [], rem
let group_closures closures_map =
let names =
Var.Map.fold (fun _ x names -> Var.Set.add x.f_name names) closures_map Var.Set.empty
in
let graph =
Var.Map.fold
(fun _ x graph ->
let calls = Var.Map.fold (fun x _ tc -> Var.Set.add x tc) x.tc Var.Set.empty in
Var.Map.add x.f_name (Var.Set.inter names calls) graph)
closures_map
Var.Map.empty
in
SCC.connected_components_sorted_from_roots_to_leaf graph |> Array.to_list
type w =
{ name : Code.Var.t
; code : Code.instr list
}
let wrapper_closure pc args cloc = Closure (args, (pc, []), cloc)
let start_loc blocks ci =
let block = Addr.Map.find (fst ci.cont) blocks in
match block.body with
| Event loc :: _ -> loc
| _ -> Parse_info.zero
let debug_cycle msg all =
if debug_tc ()
then (
Format.eprintf "%s of size (%d).\n%!" msg (List.length all);
Format.eprintf
"%a\n%!"
(Format.pp_print_list
~pp_sep:(fun fmt () -> Format.pp_print_string fmt ", ")
Var.print)
all)
module Trampoline = struct
let direct_call_block ~counter ~x ~f ~args =
let return = Code.Var.fork x in
match counter with
| None ->
{ params = []
; body = [ Let (return, Apply { f; args; exact = true }) ]
; branch = Return return
}
| Some counter ->
let counter_plus_1 = Code.Var.fork counter in
{ params = []
; body =
[ Let
( counter_plus_1
, Prim (Extern "%int_add", [ Pv counter; Pc (Int Targetint.one) ]) )
; Let (return, Apply { f; args = counter_plus_1 :: args; exact = true })
]
; branch = Return return
}
let bounce_call_block ~x ~f ~args =
let return = Code.Var.fork x in
let new_args = Code.Var.fresh () in
{ params = []
; body =
[ Let
( new_args
, Prim
( Extern "%js_array"
, Pc (Int Targetint.zero) :: List.map args ~f:(fun x -> Pv x) ) )
; Let (return, Prim (Extern "caml_trampoline_return", [ Pv f; Pv new_args ]))
]
; branch = Return return
}
let wrapper_block f ~args ~counter loc =
let result1 = Code.Var.fresh () in
let result2 = Code.Var.fresh () in
{ params = []
; body =
(match counter with
| None ->
[ Event loc
; Let (result1, Apply { f; args; exact = true })
; Event Parse_info.zero
; Let (result2, Prim (Extern "caml_trampoline", [ Pv result1 ]))
]
| Some counter ->
[ Event loc
; Let (counter, Constant (Int Targetint.zero))
; Let (result1, Apply { f; args = counter :: args; exact = true })
; Event Parse_info.zero
; Let (result2, Prim (Extern "caml_trampoline", [ Pv result1 ]))
])
; branch = Return result2
}
let has_loop free_pc blocks closures_map all =
debug_cycle "Detect cycles" all;
let tailcall_max_depth = Config.Param.tailcall_max_depth () in
let all =
List.map all ~f:(fun id ->
( (if tailcall_max_depth = 0 then None else Some (Code.Var.fresh_n "counter"))
, Var.Map.find id closures_map ))
in
let blocks, free_pc, closures =
List.fold_left
all
~init:(blocks, free_pc, [])
~f:(fun (blocks, free_pc, closures) (counter, ci) ->
if debug_tc () then Format.eprintf "Rewriting for %a\n%!" Var.print ci.f_name;
let new_f = Code.Var.fork ci.f_name in
let new_args = List.map ci.args ~f:Code.Var.fork in
let wrapper_pc = free_pc in
let free_pc = free_pc + 1 in
let new_counter = Option.map counter ~f:Code.Var.fork in
let wrapper_block =
wrapper_block new_f ~args:new_args ~counter:new_counter (start_loc blocks ci)
in
let blocks = Addr.Map.add wrapper_pc wrapper_block blocks in
let instr_wrapper =
Let (ci.f_name, wrapper_closure wrapper_pc new_args ci.cloc)
in
let instr_real =
match counter with
| None -> Let (new_f, Closure (ci.args, ci.cont, ci.cloc))
| Some counter -> Let (new_f, Closure (counter :: ci.args, ci.cont, ci.cloc))
in
let counter_and_pc =
List.fold_left all ~init:[] ~f:(fun acc (counter, ci2) ->
try
let pcs = Addr.Set.elements (Var.Map.find ci.f_name ci2.tc) in
List.map pcs ~f:(fun x -> counter, x) @ acc
with Not_found -> acc)
in
let blocks, free_pc =
List.fold_left
counter_and_pc
~init:(blocks, free_pc)
~f:(fun (blocks, free_pc) (counter, pc) ->
if debug_tc () then Format.eprintf "Rewriting tc in %d\n%!" pc;
let block = Addr.Map.find pc blocks in
let x, args, rem_rev =
match List.rev block.body with
| Let (x, Apply { f; args; exact = true }) :: rem_rev ->
assert (Var.equal f ci.f_name);
x, args, rem_rev
| _ -> assert false
in
let direct_call_pc = free_pc in
let bounce_call_pc = free_pc + 1 in
let free_pc = free_pc + 2 in
let blocks =
Addr.Map.add
direct_call_pc
(direct_call_block ~counter ~x ~f:new_f ~args)
blocks
in
let blocks =
Addr.Map.add bounce_call_pc (bounce_call_block ~x ~f:new_f ~args) blocks
in
let block =
match counter with
| None ->
let branch = Branch (bounce_call_pc, []) in
{ block with body = List.rev rem_rev; branch }
| Some counter ->
let direct = Code.Var.fresh () in
let branch =
Cond (direct, (direct_call_pc, []), (bounce_call_pc, []))
in
let last =
Let
( direct
, Prim
( Lt
, [ Pv counter
; Pc (Int (Targetint.of_int_exn tailcall_max_depth))
] ) )
in
{ block with body = List.rev (last :: rem_rev); branch }
in
let blocks = Addr.Map.remove pc blocks in
Addr.Map.add pc block blocks, free_pc)
in
( blocks
, free_pc
, { name = ci.f_name; code = [ instr_real; instr_wrapper ] } :: closures ))
in
free_pc, blocks, closures
end
module Trampoline_dt = struct
let direct_call_block ~x ~f ~args =
let return = Code.Var.fork x in
{ params = []
; body = [ Let (return, Apply { f; args; exact = true }) ]
; branch = Return return
}
let bounce_call_block ~x ~f ~args =
let return = Code.Var.fork x in
let new_args = Code.Var.fresh () in
{ params = []
; body =
[ Let (new_args, Prim (Extern "%js_array", List.map args ~f:(fun x -> Pv x)))
; Let
( return
, Prim
( Extern "caml_trampoline_return"
, [ Pv f; Pv new_args; Pc (Int Targetint.one) ] ) )
]
; branch = Return return
}
let wrapper_block inner ~args loc =
let args_arr = Code.Var.fresh () in
let result = Code.Var.fresh () in
{ params = []
; body =
[ Event loc
; Let (args_arr, Prim (Extern "%js_array", List.map args ~f:(fun x -> Pv x)))
; Event Parse_info.zero
; Let (result, Prim (Extern "caml_direct_trampoline", [ Pv inner; Pv args_arr ]))
]
; branch = Return result
}
let has_loop free_pc blocks closures_map all =
debug_cycle "Detect cycles (paired, double-translation)" all;
let all = List.map all ~f:(fun id -> Var.Map.find id closures_map) in
let blocks, free_pc, closures =
List.fold_left
all
~init:(blocks, free_pc, [])
~f:(fun (blocks, free_pc, closures) ci ->
let { direct_c; cps_c; cps_code } =
match ci.cps_pair with
| Some p -> p
| None -> assert false
in
if debug_tc ()
then Format.eprintf "Rewriting (paired) for %a\n%!" Var.print ci.f_name;
let new_direct_c = Code.Var.fork direct_c in
let new_args = List.map ci.args ~f:Code.Var.fork in
let wrapper_pc = free_pc in
let free_pc = free_pc + 1 in
let wrapper_b =
wrapper_block new_direct_c ~args:new_args (start_loc blocks ci)
in
let blocks = Addr.Map.add wrapper_pc wrapper_b blocks in
let wrapper_c = Code.Var.fresh_n "wrapper" in
let wrapper_code =
Let (wrapper_c, wrapper_closure wrapper_pc new_args ci.cloc)
in
let inner_direct_code =
Let (new_direct_c, Closure (ci.args, ci.cont, ci.cloc))
in
let pair_code =
Let (ci.f_name, Prim (Extern "caml_cps_closure", [ Pv wrapper_c; Pv cps_c ]))
in
let scc_callees =
List.fold_left all ~init:[] ~f:(fun acc ci2 ->
try
let pcs = Addr.Set.elements (Var.Map.find ci.f_name ci2.tc) in
pcs @ acc
with Not_found -> acc)
in
let blocks, free_pc =
List.fold_left
scc_callees
~init:(blocks, free_pc)
~f:(fun (blocks, free_pc) pc ->
if debug_tc () then Format.eprintf "Rewriting tc (paired) in %d\n%!" pc;
let block = Addr.Map.find pc blocks in
let x, args, rem_rev =
match List.rev block.body with
| Let (x, Apply { f; args; exact = true }) :: rem_rev ->
assert (Var.equal f ci.f_name);
x, args, rem_rev
| _ -> assert false
in
let direct_call_pc = free_pc in
let bounce_call_pc = free_pc + 1 in
let free_pc = free_pc + 2 in
let blocks =
Addr.Map.add
direct_call_pc
(direct_call_block ~x ~f:new_direct_c ~args)
blocks
in
let blocks =
Addr.Map.add
bounce_call_pc
(bounce_call_block ~x ~f:new_direct_c ~args)
blocks
in
let direct = Code.Var.fresh () in
let branch = Cond (direct, (direct_call_pc, []), (bounce_call_pc, [])) in
let last = Let (direct, Prim (Extern "caml_stack_check_depth", [])) in
let block = { block with body = List.rev (last :: rem_rev); branch } in
let blocks = Addr.Map.remove pc blocks in
Addr.Map.add pc block blocks, free_pc)
in
( blocks
, free_pc
, { name = ci.f_name
; code = [ inner_direct_code; wrapper_code; cps_code; pair_code ]
}
:: closures ))
in
free_pc, blocks, closures
end
let emit_unchanged closures_map id =
let ci = Var.Map.find id closures_map in
{ name = ci.f_name; code = [ Let (ci.f_name, Closure (ci.args, ci.cont, ci.cloc)) ] }
let dispatch_component_disabled free_pc blocks closures_map = function
| SCC.No_loop id -> free_pc, blocks, [ emit_unchanged closures_map id ]
| SCC.Has_loop all -> Trampoline.has_loop free_pc blocks closures_map all
let dispatch_component_dt free_pc blocks closures_map = function
| SCC.No_loop id -> (
let ci = Var.Map.find id closures_map in
match ci.cps_pair with
| None -> free_pc, blocks, [ emit_unchanged closures_map id ]
| Some { direct_c; cps_c; cps_code } ->
let direct_code = Let (direct_c, Closure (ci.args, ci.cont, ci.cloc)) in
let pair_code =
Let (ci.f_name, Prim (Extern "caml_cps_closure", [ Pv direct_c; Pv cps_c ]))
in
( free_pc
, blocks
, [ { name = ci.f_name; code = [ direct_code; cps_code; pair_code ] } ] ))
| SCC.Has_loop all ->
let paired id = Option.is_some (Var.Map.find id closures_map).cps_pair in
let all_paired = List.for_all all ~f:paired in
assert (all_paired || not (List.exists all ~f:paired));
if all_paired
then Trampoline_dt.has_loop free_pc blocks closures_map all
else free_pc, blocks, List.map all ~f:(emit_unchanged closures_map)
let dispatch_component free_pc blocks closures_map component =
match Config.effects () with
| `Disabled -> dispatch_component_disabled free_pc blocks closures_map component
| `Double_translation -> dispatch_component_dt free_pc blocks closures_map component
| `Cps | `Jspi | `Native -> assert false
let rec rewrite_closures free_pc blocks body : int * _ * _ list =
match body with
| Let (_, Closure _) :: _ ->
let closures, rem = collect_closures blocks body 0 in
let closures_map =
List.fold_left closures ~init:Var.Map.empty ~f:(fun closures_map x ->
Var.Map.add x.f_name x closures_map)
in
let components = group_closures closures_map in
let free_pc, blocks, closures =
List.fold_left
components
~init:(free_pc, blocks, [])
~f:(fun (free_pc, blocks, acc) component ->
let free_pc, blocks, closures =
dispatch_component free_pc blocks closures_map component
in
let intrs = closures :: acc in
free_pc, blocks, intrs)
in
let closures =
let pos w = (Var.Map.find w.name closures_map).pos in
List.flatten closures
|> List.sort ~cmp:(fun a b -> compare (pos a) (pos b))
|> List.concat_map ~f:(fun w -> w.code)
in
let free_pc, blocks, rem = rewrite_closures free_pc blocks rem in
free_pc, blocks, closures @ rem
| i :: rem ->
let free_pc, blocks, rem = rewrite_closures free_pc blocks rem in
free_pc, blocks, i :: rem
| [] -> free_pc, blocks, []
let f p : Code.program =
Code.invariant p;
let blocks, free_pc =
Addr.Map.fold
(fun pc _ (blocks, free_pc) ->
let block = Addr.Map.find pc blocks in
let free_pc, blocks, body = rewrite_closures free_pc blocks block.body in
Addr.Map.add pc { block with body } blocks, free_pc)
p.blocks
(p.blocks, p.free_pc)
in
let p = { p with blocks; free_pc } in
Code.invariant p;
p
let f p =
assert (
match Config.effects () with
| `Disabled | `Jspi | `Native | `Double_translation -> true
| `Cps -> false);
let open Config.Param in
match tailcall_optim () with
| TcNone -> p
| TcTrampoline ->
let t = Timer.make () in
let p' = f p in
if Debug.find "times" ()
then Format.eprintf " generate closures: %a@." Timer.print t;
p'