Source file members.ml
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open Ast
open Infer
type member_kind = Field | Method | Function
type member_candidate = {
member_name : string;
member_kind : member_kind;
member_detail : string;
}
type member_receiver =
| R_numeric of inferred_type
(** a value receiver: its integer / float / v128 methods *)
| R_struct of fieldtype Ast.annotated_array (** the struct's fields *)
| R_array of fieldtype (** by element type: [length]/[fill]/[copy]/[init] *)
| R_memory of [ `I32 | `I64 ] (** by address type *)
| R_table of [ `I32 | `I64 ] * reftype (** by address and element type *)
| R_cont of member_candidate list
(** a continuation-typed receiver: the resume family and [switch],
prebuilt (their signatures need the type context) *)
type method_result = Same | Reinterpret
type value_method = {
vm_name : string;
vm_binary : bool; (** takes a second operand of the receiver's type *)
vm_result : method_result;
}
let meth ?(binary = false) ?(result = Same) vm_name =
{ vm_name; vm_binary = binary; vm_result = result }
let integer_methods =
[
meth "clz";
meth "ctz";
meth "popcnt";
meth "extend8_s";
meth "extend16_s";
meth ~result:Reinterpret "from_bits";
meth ~binary:true "rotl";
meth ~binary:true "rotr";
]
let float_methods =
[
meth "abs";
meth "ceil";
meth "floor";
meth "trunc";
meth "nearest";
meth "sqrt";
meth ~result:Reinterpret "to_bits";
meth ~binary:true "min";
meth ~binary:true "max";
meth ~binary:true "copysign";
]
let numtype_name : Ast.valtype -> string = function
| I32 -> "i32"
| I64 -> "i64"
| F32 -> "f32"
| F64 -> "f64"
| V128 -> "v128"
| Ref _ -> "ref"
let method_candidates ~recv_name ~reinterp_name methods =
List.map
(fun m ->
let params = if m.vm_binary then recv_name else "" in
let result =
match m.vm_result with
| Same -> recv_name
| Reinterpret -> reinterp_name
in
{
member_name = m.vm_name;
member_kind = Method;
member_detail = Printf.sprintf "fn(%s) -> %s" params result;
})
methods
let render_fieldtype (f : Ast.fieldtype) = Output.fieldtype_string f
let render_reftype (rt : Ast.reftype) = Output.valtype_string (Ast.Ref rt)
let struct_candidates fields =
Array.to_list fields
|> List.map (fun f ->
let nm, typ = f.Annot.desc in
{
member_name = nm.Annot.desc;
member_kind = Field;
member_detail = render_fieldtype typ;
})
let simd_valtype : Simd.ty -> inferred_valtype = function
| TV128 -> { typ = V128; internal = V128; anon_comptype = None }
| TI32 -> i32_valtype
| TI64 -> i64_valtype
| TF32 -> f32_valtype
| TF64 -> f64_valtype
let simd_ty_name t = numtype_name (simd_valtype t).typ
let simd_method_candidate name =
let detail =
match Simd.classify name with
| Some { operands = _receiver :: rest; result; imm; _ } ->
let imm_params =
match imm with
| Simd.No_imm -> []
| Lane _ -> [ "lane index" ]
| Shuffle -> [ "16 lane indices" ]
in
let params = imm_params @ List.map simd_ty_name rest in
let result =
match result with Some t -> simd_ty_name t | None -> "()"
in
Printf.sprintf "fn(%s) -> %s" (String.concat ", " params) result
| _ -> ""
in
{ member_name = name; member_kind = Method; member_detail = detail }
let simd_v128_methods () =
List.map simd_method_candidate (Simd.method_names Simd.TV128)
let numeric_receiver_candidates (t : inferred_type) :
member_candidate list option =
let ints ~recv_name ~reinterp =
method_candidates ~recv_name ~reinterp_name:reinterp integer_methods
in
let floats ~recv_name ~reinterp =
method_candidates ~recv_name ~reinterp_name:reinterp float_methods
in
match t with
| Valtype { typ = I32; _ } -> Some (ints ~recv_name:"i32" ~reinterp:"f32")
| Valtype { typ = I64; _ } -> Some (ints ~recv_name:"i64" ~reinterp:"f64")
| Valtype { typ = F32; _ } -> Some (floats ~recv_name:"f32" ~reinterp:"i32")
| Valtype { typ = F64; _ } -> Some (floats ~recv_name:"f64" ~reinterp:"i64")
| Valtype { typ = V128; _ } -> Some (simd_v128_methods ())
| Int -> Some (ints ~recv_name:"int" ~reinterp:"float")
| Number ->
Some
(ints ~recv_name:"number" ~reinterp:"float"
@ floats ~recv_name:"number" ~reinterp:"int")
| LargeInt ->
Some
(ints ~recv_name:"large number" ~reinterp:"float"
@ floats ~recv_name:"large number" ~reinterp:"int")
| Float -> Some (floats ~recv_name:"float" ~reinterp:"int")
| _ -> None
let numeric_receiver_kind (t : inferred_type) : member_receiver option =
match t with
| Valtype { typ = I32 | I64 | F32 | F64 | V128; _ }
| Int | Number | LargeInt | Float ->
Some (R_numeric t)
| _ -> None
let address_type_name : [ `I32 | `I64 ] -> string = function
| `I32 -> "i32"
| `I64 -> "i64"
let render_signature params result =
let result =
match result with
| [] -> "()"
| [ r ] -> r
| rs -> "(" ^ String.concat ", " rs ^ ")"
in
Printf.sprintf "fn(%s) -> %s" (String.concat ", " params) result
let cont_method_candidates ~params ~results ~switch_results =
let m member_name member_detail =
{ member_name; member_kind = Method; member_detail }
in
let leading = List.filteri (fun i _ -> i < List.length params - 1) params in
[
m "resume" (render_signature params results);
m "resume_throw" (render_signature [ "tag(payload)" ] results);
m "resume_throw_ref" (render_signature [ "&?exn" ] results);
m "switch" (render_signature (leading @ [ "tag: tag" ]) switch_results);
]
let atomic_method_candidates ~addr_name =
let value : Wax_wasm.Atomics.width -> string = function
| `W8 | `W16 | `W32 -> "int"
| `W64 -> "i64"
in
let load_result : Wax_wasm.Atomics.width -> string = function
| `W8 -> "i8"
| `W16 -> "i16"
| `W32 -> "i32"
| `W64 -> "i64"
in
List.map
(fun f ->
let operands, results =
match (f : Wax_wasm.Atomics.family) with
| Load w -> ([], [ load_result w ])
| Store w -> ([ value w ], [])
| Rmw (Wax_wasm.Ast.AtomicCmpxchg, w) ->
([ value w; value w ], [ value w ])
| Rmw (_, w) -> ([ value w ], [ value w ])
| Wait `I32 -> ([ "i32"; "i64" ], [ "i32" ])
| Wait `I64 -> ([ "i64"; "i64" ], [ "i32" ])
| Notify -> ([ "i32" ], [ "i32" ])
in
{
member_name = Wax_wasm.Atomics.method_name f;
member_kind = Method;
member_detail =
render_signature
((addr_name :: operands) @ [ "offset?: int" ])
results;
})
Wax_wasm.Atomics.families
let simd_mem_method_candidates ~addr_name =
List.map
(fun name ->
let mi : Simd.mem_intrinsic = Option.get (Simd.mem_method name) in
let rest =
match mi.m_operands with
| _addr :: r -> List.map simd_ty_name r
| [] -> []
in
let params =
(addr_name :: rest)
@ (if mi.m_lane then [ "lane: int" ] else [])
@ [ "offset?: int"; "align?: int" ]
in
{
member_name = name;
member_kind = Method;
member_detail =
render_signature params
(match mi.m_result with Some t -> [ simd_ty_name t ] | None -> []);
})
Simd.mem_method_names
let memory_method_candidates ~addr_name =
let m member_name member_detail =
{ member_name; member_kind = Method; member_detail }
in
let load name r =
m name
(Printf.sprintf "fn(%s, offset?: int, align?: int) -> %s" addr_name r)
in
let store name v =
m name
(Printf.sprintf "fn(%s, %s, offset?: int, align?: int) -> ()" addr_name v)
in
[
load "load8" "i32";
load "load16" "i32";
load "load32" "i32";
load "load64" "i64";
load "loadf32" "f32";
load "loadf64" "f64";
store "store8" "i32";
store "store16" "i32";
store "store32" "i32";
store "store64" "i64";
store "storef32" "f32";
store "storef64" "f64";
m "size" (Printf.sprintf "fn() -> %s" addr_name);
m "grow" (Printf.sprintf "fn(%s) -> %s" addr_name addr_name);
m "fill" (Printf.sprintf "fn(%s, i32, %s) -> ()" addr_name addr_name);
m "copy"
(Printf.sprintf "fn(%s, %s, %s) -> ()" addr_name addr_name addr_name);
m "init" (Printf.sprintf "fn(data, %s, i32, i32) -> ()" addr_name);
]
@ atomic_method_candidates ~addr_name
@ simd_mem_method_candidates ~addr_name
let table_method_candidates ~addr_name ~elem_name =
let m member_name member_detail =
{ member_name; member_kind = Method; member_detail }
in
[
m "size" (Printf.sprintf "fn() -> %s" addr_name);
m "grow" (Printf.sprintf "fn(%s, %s) -> %s" elem_name addr_name addr_name);
m "fill"
(Printf.sprintf "fn(%s, %s, %s) -> ()" addr_name elem_name addr_name);
m "copy"
(Printf.sprintf "fn(%s, %s, %s) -> ()" addr_name addr_name addr_name);
m "init" (Printf.sprintf "fn(elem, %s, i32, i32) -> ()" addr_name);
]
let array_method_candidates elem =
let m member_name member_detail =
{ member_name; member_kind = Method; member_detail }
in
let value = render_fieldtype { elem with Ast.mut = false } in
let arr = "&[" ^ render_fieldtype elem ^ "]" in
[
m "length" "fn() -> i32";
m "fill" (Printf.sprintf "fn(i32, %s, i32) -> ()" value);
m "copy" (Printf.sprintf "fn(i32, %s, i32, i32) -> ()" arr);
m "init" (Printf.sprintf "fn(seg, i32, i32, i32) -> ()");
]
let member_candidates : member_receiver -> member_candidate list = function
| R_numeric t -> Option.value ~default:[] (numeric_receiver_candidates t)
| R_struct fields -> struct_candidates fields
| R_array elem -> array_method_candidates elem
| R_memory at -> memory_method_candidates ~addr_name:(address_type_name at)
| R_table (at, rt) ->
table_method_candidates ~addr_name:(address_type_name at)
~elem_name:(render_reftype rt)
| R_cont l -> l
let simd_free_members () =
List.map
(fun name ->
let full = Simd.free_full name in
let detail =
match Simd.const_shape_of_name full with
| Some shape ->
Printf.sprintf "fn(%d lanes) -> v128" (Simd.const_arity shape)
| None -> (
match Simd.classify full with
| Some { operands; result; _ } ->
Printf.sprintf "fn(%s) -> %s"
(String.concat ", " (List.map simd_ty_name operands))
(match result with Some t -> simd_ty_name t | None -> "()")
| None -> "")
in
{ member_name = name; member_kind = Function; member_detail = detail })
Simd.free_member_names
let namespace_members ns : member_candidate list =
let fn member_name member_detail =
{ member_name; member_kind = Function; member_detail }
in
let wide = "fn(i64, i64, i64, i64) -> (i64, i64)" in
let mul = "fn(i64, i64) -> (i64, i64)" in
match ns with
| "v128" -> simd_free_members ()
| "i64" ->
[
fn "add128" wide;
fn "sub128" wide;
fn "mul_wide_s" mul;
fn "mul_wide_u" mul;
]
| "atomic" -> [ fn "fence" "fn() -> ()" ]
| _ -> []
let intrinsic_namespaces = [ "v128"; "i64"; "atomic" ]