package wax-lib
sectionYPositions = computeSectionYPositions($el), 10)"
x-init="setTimeout(() => sectionYPositions = computeSectionYPositions($el), 10)"
>
Libraries for Wax, a Rust-like syntax for WebAssembly
Install
dune-project
Dependency
Authors
Maintainers
Sources
wax-0.1.0.tbz
sha256=41b580846af8d41bdf6c3f005f62e38feda3e60fe2e9e4aa440db34ce515a153
sha512=4b3a181fcc7d743194a8647260870fb5190770066a197bcc48104c2b77fd40c643228b795c2bcd6b29a120820e969eb42a37a9bcec98b3f608d13f152d9f6579
doc/src/wax-lib.wax/typing.ml.html
Source file typing.ml
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11678 11679 11680 11681 11682 11683 11684 11685 11686 11687 11688 11689 11690 11691 11692 11693 11694 11695 11696 11697 11698 11699 11700 11701 11702 11703 11704 11705 11706 11707 11708 11709 11710 11711 11712 11713 11714 11715 11716 11717 11718 11719 11720 11721 11722 11723 11724 11725 11726 11727 11728 11729 11730 11731open Ast module Cond = Wax_wasm.Cond_solver module Nz = Wax_wasm.Types.Normalized type typed_module_annotation = Ast.storagetype option array * Ast.location open Infer (* The typed tree as it stands during checking, before the cells are resolved to [typed_module_annotation]: each node carries the inference cells for the values it leaves on the stack, plus its span. [f] resolves these to storage types for the Wasm conversion; the editor reads the cells directly (they carry the flexible-literal / unknown distinctions [output_inferred_type] renders, which resolution discards). *) type inferred_module_annotation = inferred_type Cell.t array * Ast.location (* A resolved name or label reference: the source span of a *use*, the span(s) of the *definition(s)* it binds to, and a rendered one-line summary of what it resolves to (the referenced type's structure, or a variable's type) for a hover on a name that is not itself an expression. There is more than one definition only under conditional compilation (a name declared in several mutually exclusive branches). Accumulated during type checking into a [reference list ref] when the caller supplies one, for the editor's go-to-definition and hover; nil otherwise, so an ordinary compile pays nothing. *) (* What a resolved reference summarises for a hover on a name that is not itself an expression: a variable's type, or a referenced type's definition. Kept as data, not a rendered string — nothing is formatted until a hover actually asks (the editor renders the one it needs), so a check pays only a boxing per reference. *) type hover_target = Value_type of inferred_valtype | Type_def of subtype type reference = { use : Ast.location; definitions : Ast.location list; hover : hover_target option; } type resolve_sink = reference list ref option (* A synthesized node (an interned function type looked up for a call, a desugared construct) carries [Ast.dummy_loc] rather than a source span; skip those, so only genuine source references are recorded. *) let is_source (l : location) = l.loc_start.Lexing.pos_cnum >= 0 let same_span (a : location) (b : location) = a.loc_start.Lexing.pos_cnum = b.loc_start.Lexing.pos_cnum && a.loc_end.Lexing.pos_cnum = b.loc_end.Lexing.pos_cnum (* Record a punned struct-literal field's span (the field name, which is also the variable use), so the editor can expand it on rename. *) let record_pun (sink : location list ref option) (name_info : location) = match sink with | Some r when is_source name_info -> r := name_info :: !r | _ -> () (* A member-completion candidate for [recv.<here>] or [ns::<here>]: a struct field, a value method, or a namespace free function, its [member_kind] driving the editor's icon and [member_detail] a rendered type/signature — the field's declared type or the method/function's signature. *) type member_kind = Field | Method | Function type member_candidate = { member_name : string; member_kind : member_kind; member_detail : string; } (* What a member access [recv.<here>]'s completion candidates are derived from. The typer records this lightweight descriptor (a kind and the receiver's type), and {!member_candidates} turns it into the candidate list on demand — so the list, which for a v128 or memory receiver is large, is built only for the access under the cursor, not at every access in the file. *) 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) *) (* Record, at a struct field access, the (possibly partial) field's span and the receiver it is on, for member completion. [None] outside the editor. *) let record_members (sink : (location * member_receiver) list ref option) field receiver = match sink with | Some r when is_source field -> r := (field, receiver) :: !r | _ -> () (* What a value method's result type is relative to its receiver: [Same] as the receiver, or the equal-width opposite numeric family ([i32]<->[f32], [i64]<->[f64]), as [from_bits] / [to_bits] reinterpret. *) 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 } (* The value methods offered by member completion for an integer / float receiver. A curated registry: the method dispatch (see [type_unary_intrinsic_call] / [type_binary_intrinsic_call]) is match-based and cannot be enumerated, so the test in test/method-consistency type-checks each of these — arity and result type included — to keep the registry in step with what the typer actually accepts. Vector ([v128]) and memory / table methods (a different dispatch path) are not covered yet. *) 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" (* The member-completion candidates for [methods] on a numeric receiver rendered as [recv_name] (a concrete [i32] or a flexible-literal family like [int]), with a real signature ([fn() -> i32], [fn(f32) -> f32]). [reinterp_name] is the result type of a bit-reinterpreting method ([from_bits]/[to_bits]) — the opposite family, which for a flexible receiver is rendered by family name too. *) 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 (* A struct field's declared type, rendered for the member-completion detail (e.g. [i32], [mut i32], [&point]) as it reads in a type definition. [Output] here is [Infer.Output] (open Infer), whose printers take a formatter. *) let render_fieldtype (f : Ast.fieldtype) = String.trim (Format.asprintf "%a" Output.fieldtype f) (* A reference type rendered as it reads in source (e.g. [&func], [&?extern]), for a table's element type in the member-completion detail. *) let render_reftype (rt : Ast.reftype) = String.trim (Format.asprintf "%a" Output.valtype (Ast.Ref rt)) (* The member candidates for a struct's [fields] (each name and declared type), for member completion. *) let struct_candidates fields = Array.to_list fields |> List.map (fun f -> let nm, typ = f.Ast.desc in { member_name = nm.Ast.desc; member_kind = Field; member_detail = render_fieldtype typ; }) let record_reference ?(hover = None) (sink : resolve_sink) use definitions = match sink with | Some r when is_source use -> ( (* Drop synthesized definitions and the self-reference a name's own declaration makes when it looks itself up (go-to-definition on a definition has nowhere useful to go). *) match List.filter (fun d -> is_source d && not (same_span d use)) definitions with | [] -> () | definitions -> r := { use; definitions; hover } :: !r) | _ -> () (*** Diagnostics ***) module Error = struct open Wax_utils (* Message-building combinators (see {!Wax_utils.Message}). Prose is [text], joined with [++] (soft, wrap-point space) or [^^] (no space). An emphasized atom — [name] an identifier, [kw] a code token, [num] a numeric literal, [typ] an inferred type — is coloured when the theme is coloured and quoted ['…'] when it is not (so JSON/short, always uncoloured, are always quoted). *) let text = Message.text let ( ++ ) = Message.( ++ ) let ( ^^ ) = Message.( ^^ ) let name x = Message.ident x.desc let kw = Message.code let num s = Message.styled Colors.Constant s (* An inferred type, rendered through the shared pretty-printer so it shares the message's theme and width. Quoted when the theme is uncoloured, to match the other emphasized atoms. *) let typ ty = Message.raw (fun sp -> let quote = Colors.escape_sequence sp.Styled_printer.theme Colors.Type = "" in if quote then Printer.string sp.Styled_printer.printer "'"; (* Render the whole type in the [Type] colour as one unit, rather than syntax-highlighting its innards (parens, [&], keywords) in separate role colours — a type in a message reads as a single concept. *) Styled_printer.with_style sp Colors.Type (fun () -> Infer.output_inferred_type_styled sp ty); if quote then Printer.string sp.Styled_printer.printer "'") (* All errors share the same envelope: severity [Error], a message, and an optional hint. [report] captures that boilerplate so each error below is just its message (and, where relevant, a hint). *) let report ?hint ? context ~location message = Diagnostic.report context ~location ~severity:Error ?hint ?related ~message () (* Warnings share the same envelope as [report] but with severity [Warning], so they are printed without aborting the pass. [warning] names the warning so its level can be configured (see {!Wax_utils.Warning}). In error-recovery mode (type-checking a best-effort AST past syntax errors) every warning is at best secondary and usually a cascade: a local is "unused" only because its use was dropped at a sync boundary or auto-closed away at EOF, a result is "unused" because the following code was skipped, and the lints may fire on mangled recovered code. Warnings are advisory, so suppress them wholesale here — the user fixes the syntax errors first and the warnings surface on a clean re-check. This is the warning-severity analogue of the [unbound_name]/[empty_stack] cascade guards. *) let warn ?warning ?universal ?hint ? context ~location message = if not (Wax_utils.Diagnostic.in_recovery context) then Diagnostic.report context ~location ~severity:Warning ?warning ?universal ?hint ?related ~message () (* A local declared by a [let] but never read. Prefix its name with [_] to silence the warning. *) let unused_local context ~location x = warn ~warning:Wax_utils.Warning.Unused_local ~universal:true context ~location (text "The local variable" ++ name x ++ text "is never used.") (* A module field (a function or global) declared but never referenced, exported, or used as the start function. Prefix its name with [_] to silence the warning. *) let unused_field context ~location kind x = warn ~warning:Wax_utils.Warning.Unused_field ~universal:true context ~location (text "The" ++ text kind ++ name x ++ text "is never used.") (* An imported function or global never referenced, exported, or used as the start function. Prefix its name with [_] to silence the warning. *) let unused_import context ~location kind x = warn ~warning:Wax_utils.Warning.Unused_import ~universal:true context ~location (text "The imported" ++ text kind ++ name x ++ text "is never used.") (* An operation with no effect on its result, or a constant result. *) let redundant_operation context ~location message = warn ~warning:Wax_utils.Warning.Redundant_operation ~universal:true context ~location message (* A cast/test whose operand can never have the target type. *) let cast_always_fails context ~location ~is_test = warn ~warning:Wax_utils.Warning.Cast_always_fails ~universal:true context ~location (text (if is_test then "This type test is always false: the value can never have this \ type." else "This cast always traps: the value can never have this type.")) (* A cast/test whose operand already has the target type. *) let redundant_cast context ~location ~is_test = warn ~warning:Wax_utils.Warning.Redundant_operation ~universal:true context ~location (text (if is_test then "This type test is always true: the value already has this type." else "This cast is redundant: the value already has this type.")) (* A block label declared but never branched to. Prefix its name with [_] to silence the warning. *) let unused_label context ~location x = warn ~warning:Wax_utils.Warning.Unused_label ~universal:true context ~location (text "The label" ++ name x ++ text "is never used.") (* A shift whose constant count is at least the operand's bit width. Wasm shifts mask the count modulo the width, so the result is very likely not what was intended. *) let shift_overflow context ~location ~width count = warn ~warning:Wax_utils.Warning.Shift_overflow ~universal:true context ~location ~hint: ((text "Wasm masks the count modulo" ++ Message.int width) ^^ text "," ++ text "shifting by" ++ Message.int64 (Int64.rem count (Int64.of_int width)) ++ text "instead.") (text "The shift count" ++ Message.int64 count ++ text "is at least the operand width (" ^^ Message.int width ^^ text " bits).") (* An integer division or remainder by a constant zero: it always traps. *) let division_by_zero context ~location = warn ~warning:Wax_utils.Warning.Constant_trap ~universal:true context ~location (text "This integer division or remainder by zero always traps.") (* A comparison whose result does not depend on its variable operand. *) let tautological_comparison context ~location ~value = warn ~warning:Wax_utils.Warning.Tautological_comparison ~universal:true context ~location ((text "This comparison is always" ++ Message.bool value) ^^ text ".") (* A branch, loop, or [select] condition that is a constant. *) let constant_condition context ~location ~value = warn ~warning:Wax_utils.Warning.Constant_condition ~universal:true context ~location ((text "This condition is always" ++ Message.bool value) ^^ text ".") (* A side-effect-free expression whose result is computed and then dropped. *) let unused_result context ~location = warn ~warning:Wax_utils.Warning.Unused_result ~universal:true context ~location (text "The result of this expression is discarded, and computing it has no \ effect.") (* A trapping float-to-integer conversion of a constant that lies outside the target type's range (or is NaN/infinite): it always traps. *) let conversion_out_of_range context ~location = warn ~warning:Wax_utils.Warning.Constant_trap ~universal:true context ~location (text "This conversion always traps: the constant is out of the target \ type's range.") (* A statement that can never be reached: it follows an unconditional branch, [return], or [unreachable]. [related] points at the diverging instruction. *) let dead_code context ~location ~ = warn ~warning:Wax_utils.Warning.Dead_code ~universal:true context ~location ~related (text "This code is unreachable.") (* A trapping or effectful operation inside a branch of a [?:]. Because [?:] compiles to a [select], which evaluates both branches, the operation runs even when the condition selects the other branch — unlike the [?:] of most languages, which is lazy. [select] points at the whole [?:]. *) let eager_select context ~location ~select = warn ~warning:Wax_utils.Warning.Eager_select ~universal:true context ~location ~related: [ { Wax_utils.Diagnostic.location = select; message = text "This '?:' evaluates both branches (it compiles to a 'select')."; }; ] ~hint:(text "Use an 'if' expression to evaluate only the chosen branch.") (text "This operation is evaluated even when the condition selects the \ other branch.") (* Two operators whose relative precedence is easy to misremember are mixed without parentheses (see {!lint_precedence}). [location] is the outer operator, [inner] the tighter-binding one; the [kind]s name the two operator classes ("shift", "arithmetic", "comparison", "bitwise"). *) let precedence context ~location ~inner ~outer_kind ~inner_kind = warn ~warning:Wax_utils.Warning.Precedence ~universal:true context ~location ~related: [ { Wax_utils.Diagnostic.location = inner; message = text "This" ++ text inner_kind ++ text "operator binds tighter than the" ++ text outer_kind ++ text "operator."; }; ] ~hint:(text "Add parentheses to make the grouping explicit.") (text "Operator precedence here is easy to misread.") let empty_stack context ~location = (* Like [unbound_name], suppress this in error-recovery mode: a stack underflow while type-checking a best-effort AST is usually a cascade from a value-producing construct dropped at a sync boundary, not a real mistake. Both callers ([pop_any]/[pop]) recover with [Error]/[()], so nothing downstream cascades; genuine underflows in intact code still surface on a clean re-check once the syntax errors are fixed. *) if not (Wax_utils.Diagnostic.in_recovery context) then report context ~location (text "The stack is empty.") let let_in_conditional context ~location = report context ~location (text "A let binding is not allowed inside a conditional annotation; \ declare the local before the conditional.") let non_empty_stack context ~location render = report context ~location (text "Some values remain on the stack:" ^^ Message.raw render) (* Report the values still on the stack by pointing a caret at each of them. [location] carries the topmost value; [related] the others. *) let leftover_values context ~location ~ = report context ~location ~related (text (if related = [] then "This value remains on the stack." else "These values remain on the stack.")) let expected_func_type context ~location = report context ~location (text "Expected function type.") let inline_function_type_mismatch context ~location = report context ~location (text "The inline function type does not match the type definition.") let expected_struct_type context ~location = report context ~location (text "Expected struct type.") let expected_array_type context ~location = report context ~location (text "Expected array type.") (* An operation (a call, a field/array access, …) needs its operand's concrete type to be compiled, but the operand's type is unknown: it was taken off the polymorphic stack of unreachable or branch-terminated code. This is the first error for the operand (an already-failed operand reads as the [Error] type and stays silent), so it is reported here. *) let unknown_operand_type context ~location = report context ~location (text "Cannot determine the type of this expression, which is needed to \ compile this operation.") (* A struct literal omitted its type name in a position where the expected type does not pin an exact struct type, so the type cannot be inferred. *) let cannot_infer_struct_type context ~location = report context ~location (text "Cannot infer the struct type here; add an explicit type, as in" ++ kw "{T| ..}" ^^ text ".") let cannot_infer_array_type context ~location = report context ~location (text "Cannot infer the array type here; add an explicit type, as in" ++ kw "[T| ..]" ^^ text ".") let method_needs_parentheses context ~location meth = report context ~location (kw meth ++ text "is an instruction method and must be called with parentheses, as" ++ kw (meth ^ "()") ^^ text ".") let type_mismatch context ~location ty' ty = report context ~location ((text "Expecting type" ++ typ ty ++ text "but got type" ++ typ ty') ^^ text ".") let not_an_expression context ~location n = (* Suppress in error-recovery mode, like [empty_stack]: an instruction with the wrong number of values in expression position is usually a cascade from recovery mangling the surrounding code (a dropped operand, or a construct auto-closed at EOF). Both callers recover with [Error], so nothing downstream cascades; a genuine arity error in intact code still surfaces on a clean re-check. *) if not (Wax_utils.Diagnostic.in_recovery context) then report context ~location (text "An expression is expected here. This instruction returns" ++ Message.int n ++ text "values.") let binop_type_mismatch context ~location ty1 ty2 = report context ~location (text "This operator cannot be applied to operands of types" ++ typ ty1 ++ text "and" ++ typ ty2 ^^ text ".") let instruction_type_mismatch context ~location ty ty' = report context ~location (text "This instruction has type" ++ typ ty ++ text "but is expected to have type" ++ typ ty' ^^ text ".") let value_count_mismatch context ~location ~expected ~provided = report context ~location (text "This instruction provides" ++ Message.int provided ++ text "value(s) but" ++ Message.int expected ++ text "was/were expected.") let invalid_method_receiver context ~location ty = report context ~location ((text "This operation cannot be applied to a value of type" ++ typ ty) ^^ text ".") let invalid_management_call context ~location meth = report context ~location ((text "Invalid arguments in call to" ++ kw meth) ^^ text ".") let if_without_else context ~location = report context ~location (text "This 'if' must produce a value and so requires an 'else' branch.") let parameterized_block_expression context ~location = report context ~location (text "A block, loop or if used as an expression cannot take parameters.") let uninitialized_local context ~location x = report context ~location (text "The local variable" ++ name x ++ text "has not been initialized.") let non_nullable_table context ~location = report context ~location (text "A table with a non-nullable element type must have an initializer.") let start_function_signature context ~location = report context ~location (text "The start function must have no parameters and no results.") let multiple_start context ~location = report context ~location (text "A module can have at most one start function.") let multiple_module context ~location = report context ~location (text "A module can have at most one name annotation.") let unknown_annotation context ~location name = report context ~location ((text "Unknown annotation" ++ kw name) ^^ text ".") let annotation_value_mismatch context ~location name expected = report context ~location ((text "The" ++ text name ++ text "annotation expects" ++ text expected) ^^ text ".") let annotation_not_allowed context ~location name = report context ~location (text "The" ++ text name ++ text "annotation is not allowed here.") let guard_not_allowed context ~location name = report context ~location (text "A conditional guard is only allowed on an export or start \ annotation, not on" ++ text name ^^ text ".") let multiple_import context ~location = report context ~location (text "An import can have at most one import-name annotation.") let final_supertype context ~location x = report context ~location (text "The type" ++ name x ++ text "is final and cannot be extended; declare it 'open'.") let invalid_subtype context ~location x = report context ~location ((text "This type is not a valid subtype of" ++ name x) ^^ text ".") let descriptor_outside_rec_group context ~location ~described = report context ~location (text "The" ++ text (if described then "described" else "descriptor") ++ text "type must be in the same recursion group.") let descriptor_not_reciprocal context ~location ~described = report context ~location (text (if described then "This descriptor does not describe the type it is attached to." else "The descriptor of this type does not describe it back.")) let forward_use_of_described context ~location = report context ~location (text "A described type must be declared before its descriptor.") let descriptor_not_struct context ~location ~described = report context ~location (text "A" ++ text (if described then "described" else "descriptor") ++ text "type must be a struct type.") let type_without_descriptor context ~location = report context ~location (text "This descriptor instruction requires a type that has a descriptor.") let descriptor_allocation_required context ~location = report context ~location (text "A type with a descriptor must be allocated with a descriptor: \ {descriptor(d) | …}.") let feature_disabled context ~location feature = report context ~location (text "This uses the" ++ text (Wax_utils.Feature.name feature) ++ text "feature, which is not enabled; pass --feature" ++ text (Wax_utils.Feature.name feature) ^^ text ".") let unknown_feature context ~location name = report context ~location ((text "Unknown feature" ++ kw name) ^^ text ". Known features:" ++ text (String.concat ", " (List.map Wax_utils.Feature.name Wax_utils.Feature.all)) ^^ text ".") let feature_conflict context ~location feature = report context ~location (text "This module requires the" ++ text (Wax_utils.Feature.name feature) ++ text "feature, which is disabled on the command line; drop --feature" ++ text (Wax_utils.Feature.name feature ^ "=off") ^^ text ".") (* A secondary caret at [location] labelled with an inferred value type. Used to point at each branch of an [if]/select whose branches are in incompatible type hierarchies: there is no common supertype — and, unlike a checked position which can name one expected type, no annotation that would reconcile them — so we just show what each branch produces. *) let typed_branch_label location ty = { Wax_utils.Diagnostic.location; message = typ ty } let select_type_mismatch context ~location ~loc1 ~loc2 ty1 ty2 = report context ~location ~related:[ typed_branch_label loc1 ty1; typed_branch_label loc2 ty2 ] (text "The two branches of this select have no common supertype, so its \ result type cannot be inferred.") (* The exit values of a block-like construct (an [if]'s two branches, or a [do]/[loop]/[try]'s fall-through and/or values branched to its label) do not join to a common supertype. A caret marks each offending value. *) let block_exit_type_mismatch context ~location ~loc1 ~loc2 ty1 ty2 = report context ~location ~related:[ typed_branch_label loc1 ty1; typed_branch_label loc2 ty2 ] (text "The values reaching this block's exit have no common supertype, so \ its result type cannot be inferred.") (* A value delivered by [br_if] stays on the stack (the fall-through) typed as the block's result, so its type must equal the inferred result exactly, not merely be a subtype. Here it is a strict subtype and there is no annotation to pin the result, so the block cannot be given a result type consistent with both. *) let br_if_result_mismatch context ~location ~loc ~result ty = report context ~location ~related:[ typed_branch_label loc ty; typed_branch_label location result ] (text "This [br_if] value stays on the stack as the block's result, so its \ type must match the inferred result exactly; add a result annotation \ to the block.") let name_already_bound context ~location kind x = report context ~location (text "A" ++ text kind ++ text "named" ++ name x ++ text "is already bound.") let did_you_mean = function | [] -> None | suggestions -> Some (text "Did you mean" ++ Message.enumerate ~conj:"or" (List.map Message.ident suggestions) ^^ text "?") let unbound_name context ~location ?(suggestions = []) kind x = (* In error-recovery mode (type-checking a best-effort AST past syntax errors) a name is often unbound only because the construct that would bind it was dropped at a sync boundary — our recovery drops spans rather than leaving a placeholder node, so the binding is simply absent. Such "not bound" reports are cascades from the syntax error, so suppress them; the caller has already reported the syntax errors, and real type errors in the intact regions still surface. The value still recovers as [Error] at the use site, so nothing downstream cascades either. *) if not (Wax_utils.Diagnostic.in_recovery context) then report ?hint:(did_you_mean suggestions) context ~location (text "The" ++ text kind ++ name x ++ text "is not bound.") let unknown_intrinsic context ~location ns name = report context ~location (text "There is no" ++ kw (ns ^ "::" ^ name) ++ text "intrinsic.") let intrinsic_not_called context ~location ns name = report context ~location (text "The qualified name" ++ kw (ns ^ "::" ^ name) ++ text "can only be used as a function call.") let before_hole context ~location = report context ~location (text "This expression occurs before a hole '_'.") let duplicated_field context ~location x = report context ~location ((text "Several fields have the same name" ++ name x) ^^ text ".") let splice_without_supertype context ~location = report context ~location (text "'..' requires a supertype to inherit fields from (write 'type t: \ super = { .., ... }').") let splice_non_struct context ~location x = report context ~location (text "'..' can only inherit fields from a struct supertype;" ++ name x ++ text "is not a struct.") let duplicated_parameter context ~location x = report context ~location ((text "Several parameters have the same name" ++ name x) ^^ text ".") let constant_expression_required context ~location = report context ~location (text "Only constant expressions are allowed here.") let data_run_bad_element context ~location typename = report context ~location (text "This value is out of range for the data run's element type" ++ kw typename ^^ text ".") let data_v128_arity context ~location count = report context ~location (text "This v128 lane group must have" ++ Message.int count ++ text "lanes.") let memory_offset_too_large context ~location max_offset = report context ~location (text "The memory offset should be less than" ++ num (Printf.sprintf "0x%Lx" (Wax_utils.Uint64.to_int64 max_offset)) ^^ text ".") let memory_align_too_large context ~location natural = report context ~location (text "The memory alignment is larger than the natural alignment" ++ Message.int natural ^^ text ".") let memory_immediate_too_large context ~location = report context ~location (text "This memory offset or alignment must fit a 64-bit unsigned integer.") let bad_memory_align context ~location = report context ~location (text "The memory alignment should be a power of two.") let atomic_alignment context ~location natural = report context ~location (text "The alignment of an atomic access must be its natural alignment" ++ Message.int natural ^^ text ".") let atomic_signed_load context ~location ~cast ~extend = report context ~location (text "An atomic load zero-extends; use" ++ (kw cast ^^ text ",") ++ text "then" ++ kw extend ++ text "if you need the sign.") let invalid_lane_index context ~location max_lane = report context ~location ((text "The lane index should be less than" ++ Message.int max_lane) ^^ text ".") let lane_value_out_of_range context ~location bits = report context ~location (text "The lane value does not fit in" ++ Message.int bits ++ text "bits.") let labelled_argument_not_allowed context ~location = report context ~location (text "Labelled arguments are only allowed for the" ++ (kw "offset" ^^ text ",") ++ kw "align" ++ text "and" ++ kw "lane" ++ text "immediates of a memory access.") let unknown_argument_label context ~location ~suggestions x = report ?hint:(did_you_mean suggestions) context ~location ((text "Unknown argument label" ++ name x) ^^ text ".") let duplicate_argument_label context ~location x = report context ~location (text "The argument label" ++ name x ++ text "is given several times.") let positional_argument_after_label context ~location = report context ~location (text "A positional argument cannot follow a labelled argument.") (* The pre-labelled-arguments syntax passed the [align]/[offset] (and SIMD [lane]) immediates positionally; give old code a targeted migration message rather than a generic arity error. *) let positional_memory_immediate context ~location ~example = report context ~location (text "The static immediates of a memory access must be labelled, e.g." ++ kw example ^^ text ".") let missing_lane_immediate context ~location = report context ~location (text "This memory access needs a" ++ kw "lane:" ++ text "immediate (e.g." ++ kw "lane: 0" ^^ text ").") let limit_too_large context ~location kind max = report context ~location (text "The" ++ text kind ++ text "size is too large. It should be less than" ++ num (Printf.sprintf "0x%Lx" (Wax_utils.Uint64.to_int64 max)) ^^ text ".") let limit_mismatch context ~location kind = report context ~location (text "The" ++ text kind ++ text "maximum size should be larger than the minimal size.") let invalid_page_size context ~location = report context ~location (text "The custom page size must be 1 or 65536.") let context ~location = report context ~location (text "A shared memory must have a maximum size.") let duplicated_export context ~location name = report context ~location ((text "There is already an export of name" ++ kw name) ^^ text ".") (* A cast to a continuation type that is not a provable no-op: continuations carry no RTT, so no cast can ever narrow one — point at the value's introduction, not the cast site. *) let cont_cast_not_ascription context ~location = report context ~location ~hint: (text "Give the value a declared continuation type where it is introduced \ (a parameter, local or block-result annotation).") (text "A cast to a continuation type is a compile-time ascription: the \ operand's type must already be a subtype of the target, as there is \ no runtime continuation cast.") let invalid_cast_type context ~location = report context ~location (text "Continuation types cannot be used in a cast instruction.") let stack_switching_type_mismatch context ~location ~descr = report context ~location ((text "Type mismatch in this stack switching instruction:" ++ text descr) ^^ text ".") let reserved_type_name context ~location x = report context ~location (name x ++ text "is a reserved built-in type name.") let expected_cont_type context ~location = report context ~location (text "This expression should be a reference to a declared continuation \ type.") (* Mirrors the call_ref rule for an abstract function reference at a call: the type immediate comes from the receiver's static type. Unlike a function reference, an abstract [&cont] cannot be cast to a declared continuation type (the proposal defines no such cast), so the fix is to give the value its precise type at its source. *) let abstract_cont_receiver context ~location = report context ~location (text "The continuation type cannot be resolved from this expression. Give \ the value a declared continuation type where it is introduced (a \ parameter, local or block-result annotation): a continuation \ reference cannot be narrowed by a cast.") let on_clause_context context ~location = report context ~location (text "An" ++ kw "on" ++ text "handler clause is only allowed on a" ++ (kw "resume" ^^ text ",") ++ kw "resume_throw" ++ text "or" ++ kw "resume_throw_ref" ++ text "call." ) let switch_needs_tag context ~location = report context ~location (text "A" ++ kw "switch" ++ text "names its enabling tag as a labelled immediate, e.g." ++ (kw "c.switch(x, tag: t)" ^^ text ".")) let resume_throw_needs_tag context ~location = report context ~location (kw "resume_throw" ++ text "raises a tag applied to its payload, e.g." ++ (kw "c.resume_throw(exc(x))" ^^ text ".")) let constant_global_required context ~location = report context ~location (text "Only accessing a constant global is allowed here.") let immutable context ~location what = report context ~location (text "This" ++ text what ++ text "is immutable and cannot be assigned.") let not_assignable context ~location x = report context ~location (name x ++ text "cannot be assigned.") let field_count_mismatch context ~location ~expected ~provided = report context ~location (text "This structure provides" ++ Message.int provided ++ text "field(s) but" ++ Message.int expected ++ text "was/were expected.") let missing_field context ~location x = report context ~location ((text "There is no field named" ++ name x) ^^ text ".") let invalid_cast context ~location ty' = report context ~location (text "This value of type" ++ typ ty' ++ text "cannot be cast to the target type.") let tag_with_results context ~location = report context ~location (text "An exception tag cannot have result values.") let catch_target_mismatch context ~location provided expected = report context ~location (text "Catching this exception provides a value of type" ++ typ provided ++ text "but the handler's branch target expects" ++ typ expected ^^ text ".") let not_defaultable context ~location = report context ~location (text "This type has no default value for all its fields.") let incompatible_array_elements context ~location = report context ~location (text "The source and destination array element types are incompatible.") let incompatible_element_type context ~location provided expected = report context ~location (text "The element type" ++ typ provided ++ text "is not compatible with the expected element type" ++ typ expected ^^ text ".") let invalid_string_element_type context ~location = report context ~location (text "A string literal can only build an [i8] or [i16] array.") let string_not_unicode context ~location = report context ~location (text "A string building an [i16] array must be a valid Unicode string.") let expected_ref context ~location = report context ~location (text "A reference type is expected here.") let dispatch_duplicate_arm context ~location x = report context ~location ((text "This dispatch has several cases named" ++ name x) ^^ text ".") end (*** Symbol tables and namespaces ***) module StringSet = Set.Make (String) module StringMap = Map.Make (String) (* The option let-operators (the [@] suffix denotes "optional"): [let*@] binds through [Some]/short-circuits on [None] (Option.bind), [let+@] maps the payload (Option.map), and [let>@] runs an effect only when [Some] (Option.iter). Distinct from the stack-threading [let*]/[let*!] defined with the typing monad further down. *) let ( let*@ ) = Option.bind let ( let+@ ) o f = Option.map f o let ( let>@ ) o f = Option.iter f o (* Names are resolved relative to a "current assumption" — the conjunction of the conditional-branch conditions enclosing the point being typed. The cell is shared by every namespace and table of one module typing, and updated as the passes descend into [#[if]]/[#[else]] branches. When no conditionals are present (or when checking a single specialized configuration) it stays [true_] and these structures behave like plain name-keyed tables. *) module Namespace = struct type t = { cond : Cond.t ref; tbl : (string, (string * location * Cond.t) list) Hashtbl.t; links : resolve_sink; (* Where [Tbl.resolve] records a use -> definition(s) reference, shared across the namespaces of one module; [None] disables recording. *) } let make ?(links = None) cond = { cond; tbl = Hashtbl.create 16; links } let entries ns x = try Hashtbl.find ns.tbl x.desc with Not_found -> [] (* A name conflicts with an earlier declaration only if their assumptions can both hold; declarations in mutually-exclusive branches do not conflict. *) let conflict ns x = let c = !(ns.cond) in List.find_opt (fun (_, _, c') -> Cond.is_satisfiable (Cond.and_ c c')) (entries ns x) let register d ns kind x = (match conflict ns x with | Some (kind', _, _) -> Error.name_already_bound d ~location:x.info kind' x | None -> ()); Hashtbl.replace ns.tbl x.desc ((kind, x.info, !(ns.cond)) :: entries ns x) let exists d ns x = match conflict ns x with | Some (kind', _, _) -> Error.name_already_bound d ~location:x.info kind' x; true | None -> false end module Tbl = struct type 'a t = { kind : string; namespace : Namespace.t; tbl : (string, (Cond.t * 'a) list) Hashtbl.t; (* Names referenced (looked up) through this table, so a declaration that is never referenced can be reported as unused. Populated by [resolve]; queried by [is_used]. *) used : (string, unit) Hashtbl.t; hover : 'a -> hover_target option; (* A summary of a resolved value (its type / definition), attached to the reference [resolve] records, for editor hover on a name that is not an expression. [fun _ -> None] leaves the reference hover-less. *) } let make ?(hover = fun _ -> None) namespace kind = { kind; namespace; tbl = Hashtbl.create 16; used = Hashtbl.create 16; hover; } (* Whether a name declared in this table has been referenced. *) let is_used env name = Hashtbl.mem env.used name let cur env = !(env.namespace.cond) let entries env x = try Hashtbl.find env.tbl x.desc with Not_found -> [] let add d env x v = Namespace.register d env.namespace env.kind x; Hashtbl.replace env.tbl x.desc ((cur env, v) :: entries env x) let exists d env x = Namespace.exists d env.namespace x (* Replace the most recently added entry (added by [add] under the current assumption); used by [add_type] to fix up rectype indices in place. *) let override env x v = match entries env x with | _ :: tl -> Hashtbl.replace env.tbl x.desc ((cur env, v) :: tl) | [] -> Hashtbl.replace env.tbl x.desc [ (cur env, v) ] (* Pick the declaration whose assumption is entailed by the current one, falling back to one merely compatible with it, then to the most recent. A successful lookup marks the name referenced (for the unused-field lint); [resolve] is only ever called to look up a reference, never for a declaration (which goes through [add]). *) let resolve env x = let r = match entries env x with | [] -> None | [ (_, v) ] -> Some v | l -> ( let c = cur env in let pick p = Option.map snd (List.find_opt (fun (c', _) -> p c') l) in match pick (fun c' -> Cond.logical_implies c c') with | Some _ as r -> r | None -> ( match pick (fun c' -> Cond.is_satisfiable (Cond.and_ c c')) with | Some _ as r -> r | None -> ( match l with (_, v) :: _ -> Some v | [] -> None))) in (match r with | Some v -> Hashtbl.replace env.used x.desc (); (* Link this use to every definition of the name (several only across conditional branches); [resolve] handles only references, so [x.info] is a use site. The resolved value's summary rides along for hover. *) record_reference ~hover:(env.hover v) env.namespace.links x.info (List.map (fun (_, loc, _) -> loc) (Namespace.entries env.namespace x)) | None -> ()); r let find d env x = match resolve env x with | Some _ as r -> r | None -> let suggestions = Wax_utils.Spell_check.f (fun f -> Hashtbl.iter (fun k _ -> f k) env.tbl) x.desc in Error.unbound_name d ~location:x.info ~suggestions env.kind x; None let find_opt env x = resolve env x let iter env f = Hashtbl.iter (fun k l -> List.iter (fun (_, v) -> f k v) l) env.tbl (* Drop the most recently added entry (the temporary [add_type] placeholder), keeping any declaration of the same name from another branch. *) let remove env x = match entries env x with | _ :: (_ :: _ as tl) -> Hashtbl.replace env.tbl x.desc tl | _ -> Hashtbl.remove env.tbl x.desc end (*** Types and the type context ***) type types = (Wax_wasm.Types.ref_index * subtype) Tbl.t type type_context = { internal_types : Wax_wasm.Types.t; types : (Wax_wasm.Types.ref_index * subtype) Tbl.t; features : Wax_utils.Feature.set; (* The enabled optional features / proposals, and which are used. *) mutable subtyping_info_cache : Wax_wasm.Types.subtyping_info option; (* Memoised subtyping info for [internal_types]; invalidated by [add_type] when a type is added (including function types minted while type-checking, e.g. an inline [&fn(..)] cast target), so subtyping queries always see the current type space. Read via [subtyping_info]. *) } let get_type_definition d types nm = Option.map snd (Tbl.find d types nm) (* The canonical index of an already-defined type; a [Rec] would mean a group still under construction, which the type-definition builders never look up. *) let def_id : Wax_wasm.Types.ref_index -> Wax_wasm.Types.Id.t = function | Def id -> id | Rec _ -> assert false (* How a source reference appears inside a rec group being registered. *) let resolve_type_ref d ctx name = let+@ res = Tbl.find d ctx.types name in fst res (* The canonical index of an already-defined referenced type. *) let resolve_type_name d ctx name = let+@ r = resolve_type_ref d ctx name in def_id r (* Record that [feature] is used and, if it is disabled, report it at [location]. Typing continues either way (error recovery). *) let require_feature d (ctx : type_context) ~location feature = Wax_utils.Feature.mark_used ctx.features feature; if not (Wax_utils.Feature.is_enabled ctx.features feature) then Error.feature_disabled d ~location feature let heaptype d ctx (h : heaptype) : Internal.heaptype option = match h with | Func -> Some Func | NoFunc -> Some NoFunc | Exn -> Some Exn | NoExn -> Some NoExn | Cont -> Some Cont | NoCont -> Some NoCont | Extern -> Some Extern | NoExtern -> Some NoExtern | Any -> Some Any | Eq -> Some Eq | I31 -> Some I31 | Struct -> Some Struct | Array -> Some Array | None_ -> Some None_ | Type idx -> let+@ ty = resolve_type_name d ctx idx in (Type ty : Internal.heaptype) | Exact idx -> require_feature d ctx ~location:idx.info Wax_utils.Feature.Custom_descriptors; let+@ ty = resolve_type_name d ctx idx in (Exact ty : Internal.heaptype) let reftype d ctx { nullable; typ } = let+@ typ = heaptype d ctx typ in { Internal.nullable; typ } let valtype d ctx ty : Internal.valtype option = match ty with | I32 -> Some I32 | I64 -> Some I64 | F32 -> Some F32 | F64 -> Some F64 | V128 -> Some V128 | Ref r -> let+@ ty = reftype d ctx r in (Ref ty : Internal.valtype) (* Like [Array.map] into an option, returning [None] as soon as [f] returns [None] on any element (so [let*!] propagates a single failure). *) let array_map_opt f arr = let exception Short_circuit in try let result = Array.init (Array.length arr) (fun i -> match f arr.(i) with Some v -> v | None -> raise Short_circuit) in Some result with Short_circuit -> None let array_mapi_opt f arr = let exception Short_circuit in try let result = Array.init (Array.length arr) (fun i -> match f i arr.(i) with Some v -> v | None -> raise Short_circuit) in Some result with Short_circuit -> None (* Report any parameter name used more than once in a signature. *) let check_unique_param_names d params = ignore (Array.fold_left (fun s p -> match fst p.desc with | None -> s | Some name -> if StringSet.mem name.desc s then Error.duplicated_parameter d ~location:name.info name; StringSet.add name.desc s) StringSet.empty params : StringSet.t) let muttype f d ctx { mut; typ } = let+@ typ = f d ctx typ in { mut; typ } (* Type-definition builders producing the normalized form ({!Wax_wasm.Types. Normalized}) that {!Wax_wasm.Types.add_rectype} takes: an in-group reference is [Rec pos], anything else [Def id]. Separate from the [Internal]-producing builders above, which serve the checker where every reference is defined. *) let n_heaptype d ctx (h : heaptype) : Nz.heaptype option = match h with | Func -> Some Func | NoFunc -> Some NoFunc | Exn -> Some Exn | NoExn -> Some NoExn | Cont -> Some Cont | NoCont -> Some NoCont | Extern -> Some Extern | NoExtern -> Some NoExtern | Any -> Some Any | Eq -> Some Eq | I31 -> Some I31 | Struct -> Some Struct | Array -> Some Array | None_ -> Some None_ | Type idx -> let+@ r = resolve_type_ref d ctx idx in (Type r : Nz.heaptype) | Exact idx -> require_feature d ctx ~location:idx.info Wax_utils.Feature.Custom_descriptors; let+@ r = resolve_type_ref d ctx idx in (Exact r : Nz.heaptype) let n_reftype d ctx { nullable; typ } : Nz.reftype option = let+@ typ = n_heaptype d ctx typ in { Nz.nullable; typ } let n_valtype d ctx ty : Nz.valtype option = match ty with | I32 -> Some I32 | I64 -> Some I64 | F32 -> Some F32 | F64 -> Some F64 | V128 -> Some V128 | Ref r -> let+@ ty = n_reftype d ctx r in (Ref ty : Nz.valtype) let n_functype d ctx { params; results } : Nz.functype option = check_unique_param_names d params; let*@ params = array_map_opt (fun p -> n_valtype d ctx (snd p.desc)) params in let+@ results = array_map_opt (fun ty -> n_valtype d ctx ty) results in { Nz.params; results } let n_storagetype d ctx ty : Nz.storagetype option = match ty with | Value ty -> let+@ ty = n_valtype d ctx ty in (Value ty : Nz.storagetype) | Packed ty -> Some (Packed ty) let n_fieldtype d ctx ty : Nz.fieldtype option = muttype n_storagetype d ctx ty let comptype d ctx (ty : comptype) : Nz.comptype option = match ty with | Func ty -> let+@ ty = n_functype d ctx ty in (Func ty : Nz.comptype) | Struct fields -> let _ : StringSet.t = Array.fold_left (fun s field -> let name, _ = field.desc in if StringSet.mem name.desc s then Error.duplicated_field d ~location:name.info name; StringSet.add name.desc s) StringSet.empty fields in let+@ fields = array_map_opt (fun field -> n_fieldtype d ctx (snd field.desc)) fields in (Struct fields : Nz.comptype) | Array field -> let+@ field = n_fieldtype d ctx field in (Array field : Nz.comptype) | Cont idx -> let+@ r = resolve_type_ref d ctx idx in (Cont r : Nz.comptype) (* A reference is to an already-defined type when it is a [Def], or a [Rec] member strictly before [current] in the group. *) let defined_before current : Wax_wasm.Types.ref_index -> bool = function | Def _ -> true | Rec pos -> pos < current let subtype d ctx current { typ; supertype; final; descriptor; describes } : Nz.subtype option = let*@ typ = comptype d ctx typ in let*@ supertype = match supertype with | None -> Some None | Some sup -> let+@ r = resolve_type_ref d ctx sup in (* A supertype must be declared before; a self-reference or a forward reference within the same rec group is treated as unbound, matching the validator (rather than crashing). *) if not (defined_before current r) then Error.unbound_name d ~location:sup.info "type" sup; Some r in (* [descriptor]/[describes] may refer mutually within the rec group, so no declared-before restriction applies. *) let resolve_opt = function | None -> Some None | Some idx -> require_feature d ctx ~location:idx.info Wax_utils.Feature.Custom_descriptors; let+@ r = resolve_type_ref d ctx idx in Some r in let*@ descriptor = resolve_opt descriptor in let+@ describes = resolve_opt describes in { Nz.typ; supertype; final; descriptor; describes } let rectype d ctx ty = array_mapi_opt (fun i elt -> subtype d ctx i (snd elt.desc)) ty (* Replace a leading [..] splice sentinel in each struct of the rec group with the supertype's fields. Called after the group's names are temporarily registered (so an in-group supertype resolves), and expands members in source order so an earlier member is already expanded when a later one inherits from it. Returns a fresh array; the parsed module AST keeps its sentinel (for [format] / decompilation round-trip), while the internal type and [ctx.types] get the expanded fields. *) let expand_splices d ctx ty = let expanded = Array.copy ty in Array.iteri (fun i elt -> let name, (sub : subtype) = elt.desc in match sub.typ with | Struct fields when Array.length fields > 0 && Ast.is_splice_field fields.(0) -> let delta = Array.sub fields 1 (Array.length fields - 1) in let parent_fields = match sub.supertype with | None -> Error.splice_without_supertype d ~location:fields.(0).info; None | Some sup -> ( match Tbl.find_opt ctx.types sup with | Some (idx, parent) -> ( (* An in-group member is a [Rec]; use its already-expanded form. A self/forward reference ([j >= i]) is reported as unbound by [subtype], so skip. *) let parent = match idx with | Wax_wasm.Types.Rec j -> if j < i then Some (snd expanded.(j).desc) else None | Def _ -> Some parent in match parent with | Some { typ = Struct pf; _ } -> Some pf | Some _ -> Error.splice_non_struct d ~location:sup.info sup; None | None -> None) | None -> None (* unbound supertype: reported by [subtype] *)) in let fields' = match parent_fields with | Some pf -> Array.append pf delta | None -> delta in expanded.(i) <- { elt with desc = (name, { sub with typ = Struct fields' }) } | _ -> ()) ty; expanded (* The built-in type names a [type] declaration (or a [rec] member) may not take: [T::] extends to declared types, making the [::] left-hand side one namespace shared by the intrinsic namespaces and user types, so the built-ins must stay unambiguous ([&i64] is the value type, [atomic::fence] the intrinsic, …). The valtypes, the abstract heap types (the parser's [absheaptype_tbl] set), and the [atomic] intrinsic namespace ([v128]/[i64] are already valtypes; [cont] is a keyword). [From_wasm] renames a [$type] that collides (see [Namespace.reserved_heap_types]). *) let reserved_type_names = [ "i32"; "i64"; "f32"; "f64"; "v128" (* the value types *); "any"; "array"; "eq"; "exn"; "extern"; "func"; "i31"; "nocont"; "noexn"; "noextern"; "nofunc"; "none"; "struct" (* the abstract heap types *); "atomic" (* the intrinsic namespace *); ] let add_type d ctx ty = Array.iteri (fun i elt -> let name, (typ : subtype) = elt.desc in if List.mem name.desc reserved_type_names then Error.reserved_type_name d ~location:name.info name; Tbl.add d ctx.types name (Wax_wasm.Types.Rec i, typ)) ty; (* Expand [..] splices before building the internal type and before the final [ctx.types] override below, so both see the supertype's fields. *) let ty = expand_splices d ctx ty in match rectype d ctx ty with | None -> (* Remove temporary names on failure *) Array.iter (fun elt -> Tbl.remove ctx.types (fst elt.desc)) ty; None | Some ity -> (* Well-formedness of [descriptor]/[describes] clauses, which must link two struct types within the same recursion group. In [ity] a [Rec] reference names a member of this group; a [Def] denotes an already-defined type outside it. *) Array.iteri (fun i (sub : Nz.subtype) -> let location = ty.(i).info in (match sub.descriptor with | None -> () | Some (Def _) -> Error.descriptor_outside_rec_group d ~location ~described:false | Some (Rec pos) -> ( match ity.(pos).describes with | Some (Rec o) when o = i -> () | _ -> Error.descriptor_not_reciprocal d ~location ~described:false)); (match sub.describes with | None -> () | Some (Def _) -> Error.descriptor_outside_rec_group d ~location ~described:true | Some (Rec pos) -> ( if pos >= i then Error.forward_use_of_described d ~location; match ity.(pos).descriptor with | Some (Rec dd) when dd = i -> () | _ -> Error.descriptor_not_reciprocal d ~location ~described:true )); if (sub.descriptor <> None || sub.describes <> None) && match sub.typ with Struct _ -> false | _ -> true then Error.descriptor_not_struct d ~location ~described:(sub.describes <> None)) ity; let i' = Wax_wasm.Types.add_rectype ctx.internal_types ity in (* The type space grew, so any memoised subtyping info is stale. *) ctx.subtyping_info_cache <- None; Array.iteri (fun i elt -> let name, (typ : subtype) = elt.desc in Tbl.override ctx.types name (Wax_wasm.Types.Def (Wax_wasm.Types.Id.add i' i), typ)) ty; Some i' (*** The module context ***) type module_context = { (* --- Diagnostics and whole-run configuration --- *) diagnostics : Wax_utils.Diagnostic.context; warn_unused : bool; (* Whether to report locals declared by a [let] but never read. Enabled only when validation is requested. *) simplify : bool; (* Whether to rewrite the AST while typing: drop casts the inferred types make redundant and tighten [&?extern]/[&?any] casts to [&extern]/[&any]. Enabled only when converting from Wasm; for hand-written Wax (formatting, or compiling to Wasm) casts are kept as written. *) (* --- Module-wide type and name tables (built once, before any body) --- *) type_context : type_context; types : (Wax_wasm.Types.ref_index * subtype) Tbl.t; (* Per function: interned type index, type name, and whether a reference to it is exact (a defined function or an exact import — custom-descriptors). *) functions : (Wax_wasm.Types.Id.t * string * bool) Tbl.t; globals : (*mutable:*) (bool * inferred_valtype option) Tbl.t; (* As for [locals], the type is [None] for a global whose initializer failed to type — a poison global read as [Error] to avoid cascades. *) import_globals : (bool * inferred_valtype option) Tbl.t; (* The globals in scope for a table initializer: only the imported ones. A table is typed before the module's own globals are registered, so its initializer can reference only imports (unlike a global initializer, which sees the globals declared before it). *) tags : functype Tbl.t; memories : (int * [ `I32 | `I64 ]) Tbl.t; datas : unit Tbl.t; tables : ([ `I32 | `I64 ] * reftype) Tbl.t; elems : reftype Tbl.t; structs_by_fields : (string, ident option) Hashtbl.t; (* Maps a struct's canonical field-set key (see [field_set_key]) to the unique struct type with that field set, or [None] when several share it. Lets a struct literal whose name is omitted resolve from its fields alone (and the name be dropped when the fields make it unambiguous). Built once at module-context creation. *) (* --- Per-function state (reset on entry to each function) --- *) mutable locals : (inferred_valtype option * location) StringMap.t; (* The local's type paired with its binding site's source span (for go-to-definition). The type is [None] when it could not be determined because its initializer failed to type — an error-recovery "poison" local, read as the [Error] type so its uses don't cascade into further errors. *) mutable initialized_locals : StringSet.t; (* Locals known to hold a value at the current point. A non-defaultable (non-nullable reference) local starts uninitialized and must be assigned before it is read. The set is captured by [{ ctx with ... }] on block entry, so an assignment inside a block does not escape it. *) read_locals : StringSet.t ref; (* Names of locals read so far in the current function. A [ref] (rather than a snapshot field) so reads inside a block propagate to the function level. Reset per function. *) local_decls : ident list ref; (* The [let]-bound locals declared in the current function, in declaration order, so an unread one can be reported as unused. Reset per function. *) used_labels : StringSet.t ref; (* Names of block labels branched to so far in the current function (marked by [branch_target]). A [ref] so a branch nested in a block propagates to the function level. Reset per function. *) label_decls : ident list; (* The block labels declared in the current function's body, collected up front from the source AST (see [collect_labels]), so one never branched to can be reported as unused. Reset per function. *) assigned_locals : StringSet.t; (* Names of locals assigned ([Set]/[Tee] targets) anywhere in the current function, collected once on entry (see [collect_assigned_locals]). Lets the annotation-drop on a fused [let x: T = e] tell a write-once local — which may narrow to [e]'s subtype just like an immutable global — from one a later assignment still needs the wider [T] for. Reset per function. *) control_types : (label option * inferred_type Cell.t array) list; (* Each enclosing control frame's label (kept as its [ident], so a branch can be linked to the labelled construct for go-to-definition) and the types it delivers. *) return_types : inferred_type Cell.t array; (* --- Conditional-compilation branch assumption --- *) cond : Cond.t ref; (* Current branch assumption (shared with every namespace/table above); set while typing a conditional branch so names resolve per branch. *) cond_env : Cond.env; resolve_links : resolve_sink; (* Where use -> definition references are recorded (locals via [resolve_variable], labels via [branch_target]; module fields via [Tbl.resolve] through the namespaces). The same sink the namespaces hold; [None] outside the editor. *) pun_spans : location list ref option; (* The span of each punned struct-literal field (the bare-name form, [x] standing for [x: x]), recorded at the field name. Such a span is both a field name and a variable use, so the editor must expand it ([x] -> [x: new]) rather than replace it on rename. [None] outside the editor. *) member_completions : (location * member_receiver) list ref option; (* At each struct field access [recv.field], the field-name span paired with the receiver's members (a struct's fields, or the value methods of a numeric / array receiver), for member completion. The editor offers those when the cursor is on the (possibly partial) field. [None] outside the editor. *) } (* The subtyping info for the current type space, memoised on [type_context] and rebuilt on demand after [add_type] invalidates it. Always current, so a subtyping query on a type minted while type-checking (an inline [&fn(..)] cast target) sees it rather than indexing past a stale snapshot. *) let subtyping_info ctx = match ctx.type_context.subtyping_info_cache with | Some info -> info | None -> let info = Wax_wasm.Types.subtyping_info ctx.type_context.internal_types in ctx.type_context.subtyping_info_cache <- Some info; info (*** Name resolution and subtyping ***) (* Type [f] under the assumption of a conditional branch ([positive] for [@then], negative for [@else]), restoring the previous assumption after. *) let with_cond_ref cond_ref cond_env diagnostics ~location cond positive f = let saved = !cond_ref in let c = Cond.of_cond cond_env diagnostics ~location cond in cond_ref := Cond.and_ saved (if positive then c else Cond.not_ c); Fun.protect ~finally:(fun () -> cond_ref := saved) f let with_cond ctx ~location cond positive f = with_cond_ref ctx.cond ctx.cond_env ctx.diagnostics ~location cond positive f let lookup_func_type ?location ctx name = let*@ ty = Tbl.find_opt ctx.type_context.types name in match (snd ty).typ with | Func f -> Some f | Struct _ | Array _ | Cont _ -> Error.expected_func_type ctx.diagnostics ~location:(Option.value ~default:name.info location); None let lookup_struct_type ?location ctx name = let*@ ty = Tbl.find_opt ctx.type_context.types name in match (snd ty).typ with | Struct fields -> Some fields | Func _ | Array _ | Cont _ -> Error.expected_struct_type ctx.diagnostics ~location:(Option.value ~default:name.info location); None (* A canonical key for a set of field names, so two structs with the same fields (in any order) get the same key. Identifiers never contain a comma. *) let field_set_key names = String.concat "," (List.sort_uniq compare names) (* The unique struct type whose field-set matches the literal's [fields], or [None] when none or several do (then the type is ambiguous and must be named). O(#fields) given the precomputed [ctx.structs_by_fields] map. *) let infer_struct_by_fields ctx fields = let key = field_set_key (List.map (fun (idx, _) -> idx.desc) fields) in match Hashtbl.find_opt ctx.structs_by_fields key with | Some (Some name) -> Some name | Some None | None -> None (* A struct-literal field's value. A punned field ([None], written [{x}]) stands for the like-named local/global, i.e. [Get x]; typing resolves it to that explicit [Get], which is what is type-checked and emitted, so lowering never sees a pun. *) let field_value (name : ident) = function | Some i -> i | None -> { desc = Get name; info = name.info } let lookup_array_type ?location ctx name = let*@ ty = Tbl.find_opt ctx.type_context.types name in match (snd ty).typ with | Array field -> Some field | Func _ | Struct _ | Cont _ -> Error.expected_array_type ctx.diagnostics ~location:(Option.value ~default:name.info location); None (* The composite type of a synthesized type (its name starting with ['<'], e.g. [<string>] or an inline function type) — used as the [anon_comptype] of an [inferred_valtype] so a reference to it renders by that composite type rather than by its meaningless synthetic name. [None] for a source-named type. *) let inline_comptype ctx (name : ident) = if name.desc <> "" && name.desc.[0] = '<' then Option.map (fun (_, (sub : subtype)) -> sub.typ) (Tbl.find_opt ctx.type_context.types name) else None (* The name of the function type a continuation type wraps. *) let lookup_cont_inner ?location ctx name = let*@ ty = Tbl.find_opt ctx.type_context.types name in match (snd ty).typ with | Cont ft -> Some ft | Func _ | Struct _ | Array _ -> Error.expected_func_type ctx.diagnostics ~location:(Option.value ~default:name.info location); None let top_heap_type ctx (t : heaptype) : heaptype option = match t with | Any | Eq | I31 | Struct | Array | None_ -> Some Any | Func | NoFunc -> Some Func | Exn | NoExn -> Some Exn | Cont | NoCont -> Some Cont | Extern | NoExtern -> Some Extern | Type ty | Exact ty -> ( let+@ ty = Tbl.find ctx.diagnostics ctx.types ty in match (snd ty).typ with | Struct _ | Array _ -> Any | Func _ -> Func | Cont _ -> Cont) (* Whether a heap type belongs to the continuation hierarchy, without reporting an unbound reference (the caller's normal resolution handles that). *) let is_cont_heaptype ctx (t : heaptype) = match t with | Cont | NoCont -> true | Type ty | Exact ty -> ( match Tbl.find_opt ctx.types ty with | Some x -> ( match (snd x).typ with Cont _ -> true | _ -> false) | None -> false) | Any | Eq | I31 | Struct | Array | None_ | Func | NoFunc | Exn | NoExn | Extern | NoExtern -> false let diff_ref_type t1 t2 = { nullable = t1.nullable && not t2.nullable; typ = t1.typ } let storage_subtype ctx ty ty' = match (ty, ty') with | Packed I8, Packed I8 | Packed I16, Packed I16 -> true | Value ty, Value ty' -> Option.value ~default:true (* Do not generate a spurious error *) (let*@ ty = valtype ctx.diagnostics ctx.type_context ty in let+@ ty' = valtype ctx.diagnostics ctx.type_context ty' in Wax_wasm.Types.val_subtype (subtyping_info ctx) ty ty') | Packed I8, Packed I16 | Packed I16, Packed I8 | Packed _, Value _ | Value _, Packed _ -> false let storage_subtype' ctx (ty : Wax_wasm.Types.Internal.storagetype) (ty' : Wax_wasm.Types.Internal.storagetype) = match (ty, ty') with | Packed I8, Packed I8 | Packed I16, Packed I16 -> true | Value ty, Value ty' -> Wax_wasm.Types.val_subtype (subtyping_info ctx) ty ty' | Packed I8, Packed I16 | Packed I16, Packed I8 | Packed _, Value _ | Value _, Packed _ -> false let field_subtype info (ty : Wax_wasm.Types.Internal.fieldtype) (ty' : Wax_wasm.Types.Internal.fieldtype) = ty.mut = ty'.mut && storage_subtype' info ty.typ ty'.typ && ((not ty.mut) || storage_subtype' info ty'.typ ty.typ) (* Whether [ty] is the result cell of a block whose type is being inferred. *) let is_inferring ty = match Cell.get ty with Collecting _ -> true | _ -> false (* The type a value passing through a branch to [ty] takes: it continues on the stack typed as the target's result. When the target is a block being inferred ([Collecting]) with a declared result (an annotation under test, or the context type in expression position), that result is the right type — resolve to it, so the pass-through is typed as the block's result rather than its own, possibly narrower, operand (which would be unsound, see [Collecting.exacts]). With no declared result (a fully-inferred block) the [Collecting] cell would leak as a value, so the caller keeps the operand's own type instead. *) let rec resolve_declared ty = match Cell.get ty with | Collecting { declared = Some d; _ } -> resolve_declared d | _ -> ty (* Whether the inferred type [ty] is a subtype of the expected type [ty']. Not a pure relation: when the two are compatible it *unifies* their union-find cells (so an as-yet-unconstrained literal like [Int]/[Number] gets pinned to the concrete type it is checked against). [Unknown] or [Error] on the left (dead code / error recovery) is a subtype of anything; [UnknownRef] is a subtype of every reference type but of no other (so a numeric use of it is rejected). None of the three appears on the right because expected types always come from a real declaration, annotation or instruction signature — hence the [assert]. *) let rec subtype ?location ctx ty ty' = let ity = Cell.get ty in let ity' = Cell.get ty' in match (ity, ity') with (* [ty'] is a block result being inferred. Record [ty]'s natural type — a snapshot taken before any validation below resolves it — as a value reaching the block's exit, to be joined later (see [block_infer_general]); pair it with [location] when the caller has one, so a join failure can point at the exit. When an annotation is under test ([declared]), also validate [ty] against it per-delivery and return that result, so a [br]/catch carrying the wrong type is reported precisely at its site rather than once, generically, at the join. A [Collecting] cell never appears as a real value type, so the left-hand cases below treat it like [Unknown]. *) | _, Collecting st -> ( match st.declared with | Some d -> (* An annotation is under test: the [subtype] check below may resolve [ty], so record a snapshot of its natural type first — the keep-bool decision compares that pre-validation type against the annotation. *) st.collected <- (location, Cell.make ity) :: st.collected; subtype ?location ctx ty d | None -> (* No annotation under test, so nothing here resolves [ty]: record the live cell. When the join later settles the block's result to a concrete width, that propagates back to a flexible numeric literal reaching the exit (the only types [join_value_types] merges) — else the literal keeps its default width and [To_wasm] emits, e.g., an f64 const as the fall-through of an f32-typed block (invalid). *) st.collected <- (location, ty) :: st.collected; true) | Collecting _, _ -> true | Valtype ty, Valtype ty' -> Wax_wasm.Types.val_subtype (subtyping_info ctx) ty.internal ty'.internal (* A flexible numeric literal ([Number]/[Int]/[LargeInt]/[Float]) never appears as the expected (right-hand) type: an expected type comes from a declaration, annotation or instruction signature — always a concrete valtype, or a [Collecting] block result (handled above). This is the numeric counterpart of the [Unknown]/[Error]/[UnknownRef] right-hand assertion below. *) | _, (Number | Int | LargeInt | Float) -> assert false | Null, Null -> Cell.merge ty ty' ity; true | Number, Valtype { internal = I32 | I64 | F32 | F64; _ } | Int, Valtype { internal = I32 | I64; _ } | Float, Valtype { internal = F32 | F64; _ } (* LargeInt — a numeric literal too big for i32: never i32, defaults to i64; the concrete types it accepts are i64, f32 and f64. *) | LargeInt, Valtype { internal = I64 | F32 | F64; _ } | Null, Valtype { internal = Ref { nullable = true; _ }; _ } -> Cell.merge ty ty' ity'; true | ( Null, Valtype { internal = I32 | I64 | F32 | F64 | V128 | Ref { nullable = false; _ }; _; } ) | Valtype _, Null | Number, (Null | Valtype { internal = V128 | Ref _; _ }) | Int, (Null | Valtype { internal = F32 | F64 | V128 | Ref _; _ }) | Float, (Null | Valtype { internal = I32 | I64 | V128 | Ref _; _ }) | LargeInt, (Null | Valtype _) -> false | (Int8 | Int16), _ | _, (Int8 | Int16) -> false | (Unknown | Error), _ -> true | UnknownRef, (Valtype { internal = Ref _; _ } as t) -> (* The bottom reference is a subtype of every reference; pin it to the hierarchy it is checked against, so it resolves to a concrete type in that hierarchy rather than the default any-hierarchy [&none]. *) Cell.set ty t; true | _, (Unknown | Error | UnknownRef) -> assert false | UnknownRef, _ -> false let cast ctx ty ty' = let ity = Cell.get ty in match (ity, ty') with | (Number | Int), Ref { typ = I31 | Extern; _ } -> Cell.set ty (Valtype i32_valtype); true | (Number | Int), I32 -> Cell.set ty (Valtype i32_valtype); true | (Number | Int), I64 -> Cell.set ty (Valtype i64_valtype); true (* A still-flexible numeric literal ([Number]) folds straight to the target float constant. A value already committed to a family — [Int] (an integer operation such as [x & y] or [clz]) or [Float] (a float operation, or a float literal) — is *not* accepted here for the opposite family: a plain [int <-> float] cast needs a signedness ([as f32_s], [as i32_u]) to lower to a [convert]/[trunc], so it falls through to the cast error, exactly as a cast of a concrete [i32]/[f32] value does. (An integer-to-float [convert] would carry a sign, as [signed_cast].) *) | (Number | Float), F32 -> Cell.set ty (Valtype f32_valtype); true | (Number | Float), F64 -> Cell.set ty (Valtype f64_valtype); true (* The literal is always i64 here since it is too big for i32. A cast to [i32] wraps it (the low 32 bits), as produced when decompiling e.g. [i64.extend32_s] of a constant; a cast to [i64] is the identity. *) | LargeInt, (I32 | I64) -> Cell.set ty (Valtype i64_valtype); true (* A cast to a float folds the literal to a float constant, exactly like a small [Number] literal above (a runtime integer-to-float [convert] would carry a sign, as [signed_cast]). Settle the operand at the target float type so [to_wasm] emits [f32.const]/[f64.const] rather than an unlowerable [i64] value. *) | LargeInt, F32 -> Cell.set ty (Valtype f32_valtype); true | LargeInt, F64 -> Cell.set ty (Valtype f64_valtype); true (* [ref.i31] takes an [i32]; the i64-sized literal wraps to [i32] first, exactly like [i64 as &i31] below ([to_wasm] re-emits [i32.wrap_i64] then [ref.i31]). This is the residue of [(big as i32) as &i31] after [simplify] fuses the inner wrap into the [i31] cast. *) | LargeInt, Ref { typ = I31; _ } -> Cell.set ty (Valtype i64_valtype); true | LargeInt, _ -> false (* not v128 or another reference *) | Null, Ref { typ = ty'; _ } -> (let>@ typ = top_heap_type ctx ty' in let ty' = Ref { nullable = true; typ } in let>@ ity' = valtype ctx.diagnostics ctx.type_context ty' in Cell.set ty (Valtype { typ = ty'; internal = ity'; anon_comptype = None })); true | Valtype { internal = F32 | F64; _ }, (F32 | F64) | Valtype { internal = I32 | I64; _ }, I32 | Valtype { internal = I64; _ }, I64 | Valtype { internal = V128; _ }, V128 (* [i32 as &i31] is [ref.i31]; [i64 as &i31] wraps to [i32] first. *) | Valtype { internal = I32 | I64; _ }, Ref { typ = I31; _ } (* [i32 as &extern]: [ref.i31] then [extern.convert_any]. *) | Valtype { internal = I32; _ }, Ref { typ = Extern; _ } -> true | Valtype { internal = Ref _ as ity; _ }, Ref { typ = ty'; _ } -> ( let sub a b = Wax_wasm.Types.val_subtype (subtyping_info ctx) a b in Option.value ~default:true (let*@ typ = top_heap_type ctx ty' in let+@ ity' = valtype ctx.diagnostics ctx.type_context (Ref { nullable = true; typ }) in sub ity ity') || (* [extern] <-> [any] across hierarchies ([any.convert_extern] / [extern.convert_any]), then a [ref.cast] to the concrete target. The [ref.cast] handles nullability, so only hierarchy membership is checked here — test the operand against a *nullable* reference regardless of the target's nullability (a nullable operand cast to a non-null target is a valid convert-then-null-checking-cast). *) match ty' with | Extern -> sub ity (Ref { nullable = true; typ = Any }) | Any -> sub ity (Ref { nullable = true; typ = Extern }) | _ -> Option.value ~default:false (let+@ top = top_heap_type ctx ty' in (sub ity (Ref { nullable = true; typ = Extern }) && top = Any) || (sub ity (Ref { nullable = true; typ = Any }) && top = Extern))) | ( (Number | Int | Float | Valtype { internal = I32 | F32 | I64 | F64; _ }), ( Ref { typ = ( Func | NoFunc | Exn | NoExn | Cont | NoCont | Extern | NoExtern | Any | Eq | Array | Struct | Type _ | Exact _ | None_ ); _; } | V128 ) ) | Valtype { internal = F32 | F64; _ }, (I32 | I64) | Valtype { internal = I32 | I64; _ }, (F32 | F64) | Valtype { internal = I32; _ }, I64 (* A value committed to one numeric family cast to the other with a plain (unsigned) cast: it needs a signedness to lower to a [convert]/[trunc], so it is rejected here (a still-flexible [Number] literal folds above). *) | Int, (F32 | F64) | Float, I64 | ( (Float | Valtype { internal = F32 | F64 | V128; _ }), (I32 | Ref { typ = I31; _ }) ) | (Null | Valtype { internal = Ref _; _ }), (I32 | I64 | F32 | F64 | V128) | Valtype { internal = V128; _ }, (I64 | F32 | F64 | Ref _) | (Int8 | Int16), _ -> false | (Unknown | Error | UnknownRef | Collecting _), _ -> true let signed_cast ctx ty ty' = let ity = Cell.get ty in match (ity, ty') with | (Int8 | Int16), (`I32 | `I64) -> true | Valtype { internal = Ref _ as ity; _ }, (`I32 | `I64) -> (* [i31.get] extracts an [i32]; [&ref as i64_X] widens it further. *) Wax_wasm.Types.val_subtype (subtyping_info ctx) ity (Ref { nullable = true; typ = Any }) | Null, `I32 -> Cell.set ty (Valtype { typ = Ref { typ = Any; nullable = true }; internal = Ref { typ = Any; nullable = true }; anon_comptype = None; }); true | (Number | Int), (`I64 | `F32 | `F64) -> (* [i64.extend_i32], [f*.convert_i32]: default the integer source to i32. *) Cell.set ty (Valtype i32_valtype); true | LargeInt, (`F32 | `F64) -> (* [f*.convert_i64]: a [LargeInt] source defaults to i64. *) Cell.set ty (Valtype i64_valtype); true | LargeInt, (`I32 | `I64) -> (* The only numeric -> i32/i64 signed cast is a float truncation ([iNN.trunc_f*_X]) — there is no i64->i32 or i64->i64 signed *integer* conversion — so the flexible source is a float and defaults to f64, as the [Number, `I32] case below. Without this a [LargeInt] there was rejected, so a decompiled [iNN.trunc_f* (f*.const <big>)] — which renders the const as a large integer literal — failed to recompile. *) Cell.set ty (Valtype f64_valtype); true | Valtype { internal = I32; _ }, `I64 | Valtype { internal = I32 | I64; _ }, (`F32 | `F64) | Valtype { internal = F32 | F64; _ }, (`I32 | `I64) -> true | Number, `I32 -> (* The only numeric -> i32 signed cast is a float truncation ([i32.trunc_f*_s]), so a flexible [Number] source is a float and defaults to f64 (like the [Float] case below). ([Int] is rejected below: no integer -> i32 signed conversion exists.) *) Cell.set ty (Valtype f64_valtype); true | Int, `I32 (* no integer-to-i32 signed conversion exists *) | Valtype { internal = I32; _ }, `I32 | Valtype { internal = I64; _ }, (`I32 | `I64) (* A signed cast to a float is an integer->float [convert]; float->float has no signedness, so a float source (concrete or the abstract [Float]) is rejected for a float target — only [demote]/[promote] via a plain cast. *) | (Float | Valtype { internal = F32 | F64; _ }), (`F32 | `F64) | (Int8 | Int16), (`F32 | `F64) | ( ( Null | Valtype { internal = Ref { typ = Type _ | Exact _ | None_ | Struct | Array | I31 | Eq | Any; _; }; _; } ), (`I64 | `F32 | `F64) ) | ( Valtype { internal = ( V128 | Ref { typ = ( Func | NoFunc | Exn | NoExn | Cont | NoCont | Extern | NoExtern ); _; } ); _; }, _ ) -> false (* A bare float literal carries the abstract [Float]; default it to its canonical f64 (like the concrete [F32 | F64] arms above) so a strict cast on it — e.g. [1.5 as i64_s_strict], the [i64.trunc_f64_s] a decompiled [f64.const] produces — type-checks instead of being rejected as float. *) | Float, (`I32 | `I64) -> Cell.set ty (Valtype f64_valtype); true (* A polymorphic reference (the bottom [UnknownRef], e.g. [null!] in dead code) is a reference: a signed cast to [i32]/[i64] is [i31.get] (as for a concrete any-hierarchy reference above), but it can never convert to a float. *) | UnknownRef, (`I32 | `I64) -> true | UnknownRef, (`F32 | `F64) -> false | (Unknown | Error | Collecting _), _ -> true (*** The typing stack ***) type stack = | Unreachable | Empty | Cons of location * inferred_type Cell.t * stack let rec output_stack pp st = let module SP = Wax_utils.Styled_printer in match st with | Empty -> () | Unreachable -> Wax_utils.Printer.space pp.SP.printer (); SP.print_styled pp Wax_utils.Colors.Keyword "unreachable" | Cons (_, ty, st) -> Wax_utils.Printer.space pp.SP.printer (); output_inferred_type_styled pp ty; output_stack pp st let print_stack st = Wax_utils.Printer.run Format.err_formatter (fun p -> let pp = Wax_utils.Styled_printer.create ~printer:p ~theme:Wax_utils.Colors.no_color ~trivia:(Hashtbl.create 0) () in Wax_utils.Printer.string p "Stack:"; output_stack pp st); (st, ()) let _ = print_stack (* The typing monad. A monadic action is a function [stack -> stack * 'a]: it reads the operand stack, may push/pop, and returns the new stack alongside its result. This threads the stack implicitly so the instruction cases read top-to-bottom instead of passing [st] by hand. The operators: - [return v] lift a value, leaving the stack unchanged; - [let* x = e] bind: run [e], thread its stack into the continuation; - [let*! x = e] run [e : _ option], short-circuiting a [None] (a failed lookup) by returning an [unreachable] recovery instruction so typing continues without cascading errors; - [unreachable e] run [e] but mark the resulting stack [Unreachable] (the polymorphic stack of code after a [br]/[return]/etc.). Not to be confused with the pure-option [let*@]/[let+@]/[let>@] above. *) let unreachable e st = let _, v = e st in (Unreachable, v) let return v st = (st, v) let ( let* ) e f st = let st, v = e st in f v st let ( let*! ) e f = match e with | Some v -> f v | None -> return { desc = Ast.Unreachable; info = ([| Cell.make Error |], (Ast.no_loc ()).info); } (* Pop the top operand's type. An [Unreachable] (polymorphic) stack yields a fresh [Unknown] and consumes nothing; [Empty] is a genuine stack underflow. *) let pop_any ctx i st = match st with | Unreachable -> (st, Cell.make Unknown) | Cons (_, ty, r) -> (r, ty) | Empty -> Error.empty_stack ctx.diagnostics ~location:i.info; (st, Cell.make Error) let rec pop_many ctx i n accu = if n = 0 then return accu else let* ty = pop_any ctx i in pop_many ctx i (n - 1) (ty :: accu) (*ZZZ This is for block parameters and return values: there should be n .. on the stack, but there are ... (with type) The nth argument should have type BLA but has type BLA (unless we have a locationfrom the stack) *) let pop ctx ~location ty st = match st with | Unreachable -> (st, ()) | Cons (loc, ty', r) -> ( match Cell.get ty' with | Error -> (* The top value is the poison of an already-reported error. Leave it on the stack instead of consuming it — like the polymorphic [Unreachable] case above — so it keeps suppressing leftover-stack diagnostics in this scope (see [with_empty_stack]). Consuming it would strip the poison and let a cascade surface: e.g. a rejected instruction recovers as an [Error] value where the correct one was void, and popping that phantom as the block's result leaves the genuine value below it reading as a bogus leftover. *) (st, ()) | _ -> if not (subtype ctx ty' ty) then Error.type_mismatch ctx.diagnostics ~location:loc ty' ty; (r, ())) | Empty -> Error.empty_stack ctx.diagnostics ~location; (st, ()) let pop_args ctx ~location args = Array.fold_right (fun ty rem -> let* () = rem in pop ctx ~location ty) args (return ()) let push loc ty st = (Cons (loc, ty, st), ()) let rec push_results results = match results with | [] -> if false then prerr_endline "PUSH"; return () | (loc, ty) :: rem -> let* () = push loc ty in push_results rem type empty_stack_context = Expression | Block | Function let with_empty_stack ctx ~kind:_ ~location f = let st, res = f Empty in (* Decide what to report about values still on the stack. A value of type [Error] is the poison of an already-reported error, so if any leftover carries it the stack is unreliable and the whole diagnostic is a cascade — suppress it. Otherwise the leftovers are genuine values and are reported: a caret on each that has a source location, or — for values that carry only an error-recovery placeholder location, which are still real values, just not locatable — the construct itself. [scan] gathers the locatable values (topmost first, after the final [List.rev]) and whether any [Error] value is present. *) let rec scan has_error locs = function | Cons (loc, cell, st) -> let has_error = has_error || match Cell.get cell with Error -> true | _ -> false in let locs = if loc.loc_start.Lexing.pos_cnum >= 0 then loc :: locs else locs in scan has_error locs st | Empty | Unreachable -> (has_error, List.rev locs) in (match st with | Empty | Unreachable -> () | Cons _ -> ( match scan false [] st with | true, _ -> () (* poison on the stack: an already-reported cascade *) | false, location :: rest -> (* Point a caret right at each locatable leftover value rather than at the (potentially large) enclosing construct. *) let = List.map (fun location -> { Wax_utils.Diagnostic.location; message = Wax_utils.Message.empty; }) rest in Error.leftover_values ctx.diagnostics ~location ~related | false, [] -> (* Real values remain but none carries a usable location: name the construct and list what is on the stack. *) Error.non_empty_stack ctx.diagnostics ~location (fun pp -> output_stack pp st))); res (*** Instruction-checking helpers ***) let internalize_valtype ctx typ = let+@ internal = valtype ctx.diagnostics ctx.type_context typ in { typ; internal; anon_comptype = None } let internalize ?inline ctx typ = let+@ internal = valtype ctx.diagnostics ctx.type_context typ in valtype_cell { typ; internal; anon_comptype = inline } (* Check that a source element reference type can be stored where [dst] elements are expected (table.copy / table.init / array.init_elem): [src] must be a subtype of [dst]. *) let check_elem_subtype ctx ~location ~src ~dst = match (internalize_valtype ctx (Ref src), internalize_valtype ctx (Ref dst)) with | Some s, Some d -> if not (Wax_wasm.Types.val_subtype (subtyping_info ctx) s.internal d.internal) then Error.incompatible_element_type ctx.diagnostics ~location (valtype_cell s) (valtype_cell d) | _ -> () (* The inferred type of a value read from a field: a packed [i8]/[i16] field reads back as the unpacked [Int8]/[Int16] cell, any other as its value type. (Distinct from the [fieldtype] type converter above, which maps a source field type to its [Internal] form.) *) let field_read_type ctx (f : fieldtype) = match f.typ with | Value typ -> internalize ctx typ | Packed I8 -> Some (Cell.make Int8) | Packed I16 -> Some (Cell.make Int16) let unpack_type (f : fieldtype) = match f.typ with Value v -> v | Packed _ -> I32 let branch_target ctx label = let rec find l label = match l with | [] -> let suggestions = Wax_utils.Spell_check.f (fun f -> List.iter (fun (l, _) -> Option.iter (fun l -> f l.desc) l) ctx.control_types) label.desc in Error.unbound_name ctx.diagnostics ~location:label.info ~suggestions "label" label; [||] | (Some label', res) :: _ when label.desc = label'.desc -> ctx.used_labels := StringSet.add label.desc !(ctx.used_labels); record_reference ctx.resolve_links label.info [ label'.info ]; res | _ :: rem -> find rem label in find ctx.control_types label (* Draw "did you mean" suggestions from the namespaces an identifier may legitimately name, which depends on how it is used: - [Get] reads any value, so a local, a global or a function; - [Set] assigns, so a local or a mutable global; - [Tee] only ever targets a local. *) let get_suggestions ctx name = Wax_utils.Spell_check.f (fun f -> StringMap.iter (fun k _ -> f k) ctx.locals; Tbl.iter ctx.globals (fun k _ -> f k); Tbl.iter ctx.functions (fun k _ -> f k)) name let set_suggestions ctx name = Wax_utils.Spell_check.f (fun f -> StringMap.iter (fun k _ -> f k) ctx.locals; Tbl.iter ctx.globals (fun k (mut, _) -> if mut then f k)) name let local_suggestions ctx name = Wax_utils.Spell_check.f (fun f -> StringMap.iter (fun k _ -> f k) ctx.locals) name (* One-line summaries of a resolved reference, rendered the way diagnostics do, for a hover on a name that is not itself an expression (a type reference, a [Set]/[Tee] target, a bare global). A poison value ([None]) has no summary. *) let hover_of_valtype ty = Option.map (fun ity -> Value_type ity) ty let hover_of_global ((_, ty) : bool * inferred_valtype option) = hover_of_valtype ty let hover_of_type ((_, st) : Wax_wasm.Types.ref_index * subtype) = Some (Type_def st) (* A name in value position resolves, in order, to a local, then a global, then a function (as a non-null reference); [Get]/[Set]/[Tee] share this ladder and only differ in what they do with each outcome. *) type resolved_var = | Local of inferred_valtype option | Global of bool (* mutable *) * inferred_valtype option | Func_ref of Wax_wasm.Types.Id.t * string * bool | Unbound let resolve_variable ctx idx = match StringMap.find_opt idx.desc ctx.locals with | Some (ty, def) -> record_reference ~hover:(hover_of_valtype ty) ctx.resolve_links idx.info [ def ]; Local ty | None -> ( match Tbl.find_opt ctx.globals idx with | Some (mut, ty) -> Global (mut, ty) | None -> ( match Tbl.find_opt ctx.functions idx with | Some (ty, ty', exact) -> Func_ref (ty, ty', exact) | None -> Unbound)) (* Whether [name] denotes a memory (resp. table) usable as a method/index receiver — [mem.load(..)], [tab[..]], [tab.size()]. A local of the same name shadows it: Wax resolves a bare name to a local first, and globals, functions, memories and tables share one namespace (so only a local can collide), so the receiver form must defer to the local just as [Get name] does. *) let memory_receiver ctx name = (not (StringMap.mem name.desc ctx.locals)) && Tbl.find_opt ctx.memories name <> None let table_receiver ctx name = (not (StringMap.mem name.desc ctx.locals)) && Tbl.find_opt ctx.tables name <> None (* Likewise for a data/element segment named by [seg.drop()] (and the segment operand of [mem.init]/[tab.init]/array segment ops): usable as such only when not shadowed by a local. *) let segment_receiver ctx name = (not (StringMap.mem name.desc ctx.locals)) && (Tbl.find_opt ctx.datas name <> None || Tbl.find_opt ctx.elems name <> None) (* When [e] is an atomic narrow-load call [mem.atomic_load8/16(p)] (whose raw-bits result a cast resolves), its access width. Used to reject an [as iN_s] cast on it: only the zero-extending [_u] atomic loads exist. *) let atomic_narrow_load_width ctx e = match e.desc with | Call ({ desc = StructGet ({ desc = Get memname; _ }, meth); _ }, _) when memory_receiver ctx memname -> ( match Wax_wasm.Atomics.of_method_name meth.desc with | Some (Wax_wasm.Atomics.Load ((`W8 | `W16) as w)) -> Some w | _ -> None) | _ -> None (* Check the operands of an integer (resp. float) binary operator and return the unified result-type cell — the two operand cells are merged on success, so the caller takes [typ1] as the operator's result type. *) let check_int_bin_op ctx ~location typ1 typ2 = (match (Cell.get typ1, Cell.get typ2) with | Valtype { internal = I32; _ }, Valtype { internal = I32; _ } | Valtype { internal = I64; _ }, Valtype { internal = I64; _ } | (Valtype { internal = I32 | I64; _ } | Int), (Number | Int) -> Cell.merge typ1 typ2 (Cell.get typ1) | (Number | Int), Valtype { internal = I32 | I64; _ } -> Cell.merge typ1 typ2 (Cell.get typ2) | Number, Number -> Cell.merge typ1 typ2 Int (* A LargeInt operand forces i64: it pairs with i64 or another flexible integer (never i32). *) | Valtype { internal = I64; _ }, LargeInt -> Cell.merge typ1 typ2 (Cell.get typ1) | LargeInt, Valtype { internal = I64; _ } -> Cell.merge typ1 typ2 (Cell.get typ2) (* An integer-only operator pins every [LargeInt] operand to i64: it exceeds i32, and the result is a committed integer (never a float), so the pair takes i64 rather than the still-float-capable [LargeInt]. *) | LargeInt, (LargeInt | Number | Int) | (Number | Int), LargeInt -> Cell.merge typ1 typ2 (Valtype i64_valtype) (* A fully-flexible [Number] on the left pairs with a flexible [Int] (the symmetric [Int, Number] and [Number, Number] cases are above). *) | Number, Int -> Cell.merge typ1 typ2 Int | _ -> Error.binop_type_mismatch ctx.diagnostics ~location typ1 typ2); typ1 let check_float_bin_op ctx ~location typ1 typ2 = (match (Cell.get typ1, Cell.get typ2) with | Valtype { internal = F32; _ }, Valtype { internal = F32; _ } | Valtype { internal = F64; _ }, Valtype { internal = F64; _ } | (Valtype { internal = F32 | F64; _ } | Float), (Number | Float | LargeInt) -> Cell.merge typ1 typ2 (Cell.get typ1) | (Number | Float | LargeInt), Valtype { internal = F32 | F64; _ } -> Cell.merge typ1 typ2 (Cell.get typ2) (* Two flexible operands of a float operator (the [Float, _] cases are above): a large-int literal is taken as a float here, so anything pairs to [Float]. *) | (Number | LargeInt), (Number | Float | LargeInt) -> Cell.merge typ1 typ2 Float | _ -> Error.binop_type_mismatch ctx.diagnostics ~location typ1 typ2); typ1 (* Check and unify the operands of a numeric binary operator that accepts either integers or floats (+, -, *, ==, !=); the two cells are merged to their common type. Operands here are concrete or flexible numeric literals — the caller handles the abstract [Unknown]/[Error] arms. Two fully-flexible [Number]s stay [Number] (the operator could still resolve either way); any more committed operand pins the pair to its group. Mirrors [check_int_bin_op] (int group) and [check_float_bin_op] (float group) unioned. *) let check_num_concrete ctx ~location ty1 ty2 = match (Cell.get ty1, Cell.get ty2) with | Valtype { internal = I32; _ }, Valtype { internal = I32; _ } | Valtype { internal = I64; _ }, Valtype { internal = I64; _ } | Valtype { internal = F32; _ }, Valtype { internal = F32; _ } | Valtype { internal = F64; _ }, Valtype { internal = F64; _ } -> () | (Valtype { internal = I32 | I64; _ } | Int), (Number | Int) | (Valtype { internal = F32 | F64; _ } | Float), (Number | Float | LargeInt) -> Cell.merge ty1 ty2 (Cell.get ty1) | (Number | Int), Valtype { internal = I32 | I64; _ } | (Number | Float | LargeInt), Valtype { internal = F32 | F64; _ } -> Cell.merge ty1 ty2 (Cell.get ty2) | Valtype { internal = I64; _ }, LargeInt -> Cell.merge ty1 ty2 (Cell.get ty1) | LargeInt, Valtype { internal = I64; _ } -> Cell.merge ty1 ty2 (Cell.get ty2) (* Two flexible literals (the [Float, _] and [LargeInt, Valtype] cases are above). A [LargeInt] with a committed [Int] must be an integer — the [Int] cannot be a float — and a [LargeInt] cannot be i32, so their sole common type is i64; with another [LargeInt] or a fully-flexible [Number] it stays [LargeInt] (the operator could still resolve to a float). *) | LargeInt, Int | Int, LargeInt -> Cell.merge ty1 ty2 (Valtype i64_valtype) | LargeInt, (LargeInt | Number) | Number, LargeInt -> Cell.merge ty1 ty2 LargeInt | LargeInt, Float -> Cell.merge ty1 ty2 Float | Number, Float -> Cell.merge ty1 ty2 Float | Number, Int -> Cell.merge ty1 ty2 Int | Number, Number -> Cell.merge ty1 ty2 Number | _ -> Error.binop_type_mismatch ctx.diagnostics ~location ty1 ty2 let field_has_default (ty : fieldtype) = match ty.typ with | Packed _ -> true | Value ty -> ( match ty with | I32 | I64 | F32 | F64 | V128 -> true | Ref { nullable; _ } -> nullable) let return_statement (i : location instr) (desc : (inferred_type Cell.t array * location) instr_desc) (ty : _ array) st = (st, { desc; info = ((ty : _ array), i.info) }) let return_expression i desc ty = return_statement i desc [| ty |] let expression_type ctx i = let typ, location = i.info in match typ with | [| ty |] -> ty | _ -> Error.not_an_expression ctx.diagnostics ~location (Array.length typ); Cell.make Error let check_subtype ctx ~location ty' ty = (* Pass [location] so that, when [ty] is an inferring block result, the value is recorded with its branch site (see [Collecting]). *) if not (subtype ~location ctx ty' ty) then Error.instruction_type_mismatch ctx.diagnostics ~location ty' ty let check_subtypes ctx ~location types' types = if Array.length types' <> Array.length types then Error.value_count_mismatch ctx.diagnostics ~location ~expected:(Array.length types) ~provided:(Array.length types') else Array.iter2 (fun ty' ty -> check_subtype ctx ~location ty' ty) types' types let check_type ctx i ty = let ty' = expression_type ctx i in let ok = subtype ctx ty' ty in if not ok then Error.instruction_type_mismatch ctx.diagnostics ~location:(snd i.info) ty' ty (*** Lint checks on constant operands ***) (* Parse a Wax integer literal (decimal or [0x] hex, with [_] separators) to an [int64], or [None] if it is malformed or does not fit. *) let int_literal_value s = Int64.of_string_opt (String.concat "" (String.split_on_char '_' s)) (* Whether [e] is the integer literal equal to [n]. *) let int_literal_value_is n (e : _ Ast.instr) = match e.desc with Ast.Int s -> int_literal_value s = Some n | _ -> false (* Whether [e] is the integer literal zero. *) let int_literal_value_is_zero e = int_literal_value_is 0L e (* [x << n] / [x >> n] with a constant [n] at least the operand's bit width: Wasm masks [n] modulo the width, so the shift is almost certainly not what was meant. Only fires when the operand is a concrete i32/i64 (so the width is known) and [n] a non-negative literal. *) let lint_shift ctx op result rhs = match op.desc with | Shl | Shr _ -> ( match rhs.desc with | Ast.Int s -> ( match (int_literal_value s, Cell.get result) with | Some n, Valtype { internal = (I32 | I64) as t; _ } when n >= 0L -> let width = match t with I32 -> 32 | _ -> 64 in if n >= Int64.of_int width then Error.shift_overflow ctx.diagnostics ~location:op.info ~width n | _ -> ()) | _ -> ()) | _ -> () (* Integer [/] or [%] by a constant zero always traps. [Div (Some _)] and [Rem _] are the integer forms ([Div None] is float division, which does not trap on a zero divisor). *) let lint_division ctx op rhs = match op.desc with | (Div (Some _) | Rem _) when int_literal_value_is_zero rhs -> Error.division_by_zero ctx.diagnostics ~location:op.info | _ -> () (* Parse a Wax float literal (decimal or hex float with [_] separators, or the [nan:0x…] form) to an OCaml float, or [None] if it is malformed. *) let float_literal_value s = if String.length s >= 3 && String.equal (String.sub s 0 3) "nan" then Some Float.nan else float_of_string_opt (String.concat "" (String.split_on_char '_' s)) (* The float value of a constant operand, looking through a leading sign. *) let rec float_operand_value i = match i.desc with | Ast.Float s -> float_literal_value s | UnOp ({ desc = Neg; _ }, e) -> Option.map Float.neg (float_operand_value e) | UnOp ({ desc = Pos; _ }, e) -> float_operand_value e | _ -> None (* Whether a trapping (toward-zero) float-to-integer conversion of [f] to the given target/signage would trap: [f] is NaN or infinite, or its truncation lies outside the target range. Bounds are the exact powers of two, so a value is flagged only when it is definitely out of range (no false positives near a boundary the float type cannot represent exactly). *) let float_conversion_traps target signage f = if not (Float.is_finite f) then true else let t = Float.trunc f in let pow2 n = Float.ldexp 1. n in match (target, signage) with | `I32, Signed -> t < -.pow2 31 || t >= pow2 31 | `I32, Unsigned -> t < 0. || t >= pow2 32 | `I64, Signed -> t < -.pow2 63 || t >= pow2 63 | `I64, Unsigned -> t < 0. || t >= pow2 64 (* A trapping float-to-integer conversion ([e as i32_s] and the like — the [strict] cast forms lower to [trunc], which traps, rather than [trunc_sat]) of a constant float that is out of the target range: it always traps. *) let lint_conversion ctx ~location typ operand = match typ with | Signedtype { typ = (`I32 | `I64) as target; signage; strict = true } -> ( match float_operand_value operand with | Some f when float_conversion_traps target signage f -> Error.conversion_out_of_range ctx.diagnostics ~location | _ -> ()) | _ -> () (* Whether two operands are the same pure read (a local or global [get]), so the two evaluations yield the same value with no side effect. Restricted to [get] to stay conservative — no calls, no field/array reads that could trap. *) let identical_operands (l : _ Ast.instr) (r : _ Ast.instr) = match (l.desc, r.desc) with | Get a, Get b -> String.equal a.desc b.desc | _ -> false (* A comparison whose result is constant regardless of its variable operand: an unsigned comparison against zero ([a <u 0] is false, [a >=u 0] is true), or a comparison of two identical operands ([a < a] is false, [a == a] is true). The signed/unsigned option marks an integer comparison; [Eq]/[Ne] carry no signage, so a self-comparison is only flagged for a concrete integer operand (a float [a == a] is false on NaN, and reference identity is a separate concern). *) let lint_comparison ctx op l r = let is_int e = match Cell.get (expression_type ctx e) with | Valtype { internal = I32 | I64; _ } -> true | _ -> false in let tautology = match op.desc with | Lt (Some Unsigned) when int_literal_value_is_zero r -> Some false | Ge (Some Unsigned) when int_literal_value_is_zero r -> Some true | Gt (Some Unsigned) when int_literal_value_is_zero l -> Some false | Le (Some Unsigned) when int_literal_value_is_zero l -> Some true | (Lt (Some _) | Gt (Some _)) when identical_operands l r -> Some false | (Le (Some _) | Ge (Some _)) when identical_operands l r -> Some true | Eq when identical_operands l r && is_int l -> Some true | Ne when identical_operands l r && is_int l -> Some false | _ -> None in match tautology with | Some value -> Error.tautological_comparison ctx.diagnostics ~location:op.info ~value | None -> () (* An arithmetic operation with no effect on its result (an identity operand or two identical operands), or whose result is a constant regardless of the variable operand (an absorbing operand). Off by default. *) let lint_redundant ctx op l r = let is0 = int_literal_value_is 0L in let is1 = int_literal_value_is 1L in let no_effect () = Error.redundant_operation ctx.diagnostics ~location:op.info (Wax_utils.Message.text "This operation has no effect on its result.") in let always v = Error.redundant_operation ctx.diagnostics ~location:op.info Wax_utils.Message.( (text "This operation always yields" ++ int64 v) ^^ text ".") in match op.desc with | Add when is0 l || is0 r -> no_effect () (* x + 0 *) | (Sub | Shl | Shr _) when is0 r -> no_effect () (* x - 0, x << 0 *) | Mul when is1 l || is1 r -> no_effect () (* x * 1 *) | Div (Some _) when is1 r -> no_effect () (* x / 1 *) | (Or | Xor) when is0 l || is0 r -> no_effect () (* x | 0, x ^ 0 *) | (And | Or) when identical_operands l r -> no_effect () (* x & x, x | x *) | Mul when is0 l || is0 r -> always 0L (* x * 0 *) | And when is0 l || is0 r -> always 0L (* x & 0 *) | Rem _ when is1 r -> always 0L (* x % 1 *) | (Sub | Xor) when identical_operands l r -> always 0L (* x - x, x ^ x *) | _ -> () (* A branch, loop, or [select] condition that is a constant literal, so it always takes the same path. [is_while] excludes the idiomatic infinite loop [while <nonzero>] (only [while 0], a loop that never runs, is flagged). *) let lint_condition ctx ?(is_while = false) (cond : _ Ast.instr) = match cond.desc with | Ast.Int s -> ( match int_literal_value s with | Some n -> let value = n <> 0L in if not (is_while && value) then Error.constant_condition ctx.diagnostics ~location:cond.info ~value | None -> ()) | _ -> () (* Whether evaluating [e] has no side effect and cannot trap, so computing it only to discard the result is pointless. Conservative: reads of locals/ globals and constants, pure arithmetic/logic over them, and heap allocations (which are effect-free and non-trapping) whose operands are themselves effect-free. Excludes calls, assignments, field/element accesses (may trap on null / out of bounds), casts, [array.new_data]/[array.new_elem] (trap out of bounds), and trapping arithmetic ([/]/[%]). Mirrors the Wasm validator's purity classification (see [lint_body] in [Validation]). *) let rec is_effectless (e : _ Ast.instr) = (* A field value; the punning shorthand [{x}] reads a local/global. *) let field (_, v) = match v with Some e -> is_effectless e | None -> true in match e.desc with | Get _ | Int _ | Float _ | Char _ | String _ | Null | StructDefault _ -> true | UnOp (_, a) -> is_effectless a | BinOp ({ desc = Div _ | Rem _; _ }, _, _) -> false | BinOp (_, a, b) -> is_effectless a && is_effectless b | Select (a, b, c) -> is_effectless a && is_effectless b && is_effectless c | Test (a, _) -> is_effectless a | Struct (_, fields) -> List.for_all field fields | StructDesc (d, fields) -> is_effectless d && List.for_all field fields | StructDefaultDesc d -> is_effectless d | Array (_, elt, len) -> is_effectless elt && is_effectless len | ArrayDefault (_, len) -> is_effectless len | ArrayFixed (_, elts) -> List.for_all is_effectless elts | _ -> false (* The concrete type an initializer would take with no annotation, matching the resolution of the unannotated [let] case. Returns [None] for types we never want to drop an annotation for (packed or still unconstrained). Pure: it does not mutate [ty], so it can be read before [check_type] constrains it. *) let standalone_valtype ctx ty = match Cell.get ty with | Valtype v -> Some v | Int | Number -> Some i32_valtype | LargeInt -> Some i64_valtype | Float -> Some f64_valtype | Null -> internalize_valtype ctx (Ref { nullable = true; typ = None_ }) (* The bottom reference concretizes to the non-null [&none], matching the type [null!] produced before [UnknownRef] existed. *) | UnknownRef -> internalize_valtype ctx (Ref { nullable = false; typ = None_ }) | Int8 | Int16 | Unknown | Error | Collecting _ -> None (* Resolve the type that an omitted annotation takes from its initializer, as in [let x = e] or [const x = e]: an as-yet-unconstrained literal is pinned to a concrete type the way the final type erasure does (int/number -> i32, float -> f64, null -> nullref), so the binding gets a definite type. Mutates [ty] so later uses observe the resolved type. *) let resolve_omitted_valtype ctx ty = match Cell.get ty with | Valtype v -> Some v | LargeInt -> let v = i64_valtype in Cell.set ty (Valtype v); Some v | Int | Number | Int8 | Int16 | Unknown | Error | Collecting _ -> let v = i32_valtype in Cell.set ty (Valtype v); Some v | Float -> let v = f64_valtype in Cell.set ty (Valtype v); Some v | Null -> let+@ v = internalize_valtype ctx (Ref { nullable = true; typ = None_ }) in Cell.set ty (Valtype v); v (* The bottom reference concretizes to the non-null [&none], matching the type [null!] produced before [UnknownRef] existed. *) | UnknownRef -> let+@ v = internalize_valtype ctx (Ref { nullable = false; typ = None_ }) in Cell.set ty (Valtype v); v (* The type an unannotated [let]/global binding takes from its initializer, recording a poison ([None]) type when the initializer has no concrete one. An [Unknown] initializer (unreachable / branch code) reports an error here: a binding needs a determinable type to be compiled, and silently demoting it to the [Error] type would mask that. An [Error] initializer (already reported) stays silent. *) let bound_value_type ctx ~location result_ty = match Cell.get result_ty with | Error -> None | Unknown -> Error.unknown_operand_type ctx.diagnostics ~location; None | _ -> resolve_omitted_valtype ctx result_ty (* --- Annotation dropping (the "keep-bool" machinery) ----------------------- When converting from Wasm, the typed AST is rewritten ([ctx.simplify]) to drop type annotations that the inferred types make redundant, so the printed Wax is not littered with annotations a reader (or a re-parse) would recover anyway. The decision is a "keep-bool": when [check_instruction] types a value against an expected type (the annotation), it returns whether that annotation is load-bearing — i.e. whether omitting it would change what the value re-infers to. The binding/construct site then drops the annotation precisely when [simplify] is on and the keep-bool says it is not needed. The pieces, by where the annotation lives: - a scalar value vs. its annotation: [annotation_needed] (the leaf keep-bool, comparing the value's standalone type to the expected one); - a block/loop/try result type: [block_keep_bool] / [block_keep_needed], with [context_block_typ] / [finalize_inferred] filling an omitted result from context or dropping a redundant declared one; - [is_null_initializer] is the one exception to the "equal type ⇒ drop" rule (a bare [null] re-infers a floating type), and [drop_supertype] the one relaxation (an immutable binding may drop a mere-supertype annotation). --------------------------------------------------------------------------- *) (* Whether [i] is a (possibly cast-wrapped) [null]. This guards the dropping of a redundant type annotation on an initialized binding ([let]/[const]) when converting from Wasm. The general rule is to drop the annotation when the initializer's type already equals it. That is unsound for [null]: [from_wasm] lowers [ref.null t] to [(null : &?t)] (a cast), so the initializer's inferred type is the concrete [&?t] and the comparison reports the annotation as redundant — but the printed bare [null] re-infers to the *floating* null type [&?none], not [&?t], so dropping the annotation would not round-trip. The annotation (or the cast) is what pins the type, so we must keep it. A cleaner fix would compare against what omitting the annotation actually re-infers to (resolving the floating [null] under the cast to [&?none] rather than reading the cast's concrete type); until then we keep the annotation whenever the initializer is a [null]. *) let rec is_null_initializer (i : _ instr) = match i.desc with | Null -> true | Cast (e, _) -> is_null_initializer e | _ -> false let valtype_equal ctx (a : inferred_valtype) (b : inferred_valtype) = Wax_wasm.Types.val_subtype (subtyping_info ctx) a.internal b.internal && Wax_wasm.Types.val_subtype (subtyping_info ctx) b.internal a.internal (* Bidirectional checking helpers (see [check_instruction] below). The keep-bool for a non-construction value: the contextual annotation is load-bearing unless the value's own standalone-resolved type ([standalone], captured BEFORE [check_type] mutates the cell) already equals it. This mirrors exactly the drop test [bind_let_value]/globals applied via [standalone_valtype], so routing those sites through [check_instruction] preserves their behaviour — e.g. [let x: i32 = 1] still drops to [let x = 1] (a floating number resolves to [i32]), while [let x: i64 = 1] keeps its annotation. [drop_supertype] loosens the test for an immutable binding (a [const] global): there the annotation is no more than a supertype of the value's own type, so dropping it narrows the binding to that subtype — sound because nothing reassigns it, and a narrower immutable global still satisfies every use (and every import) expecting the wider type. The standalone value must therefore only be a *subtype* of the annotation, not equal to it. *) let annotation_needed ?(drop_supertype = false) ctx (standalone : inferred_valtype option) expected = match (standalone, Cell.get expected) with | Some v, Valtype b -> if drop_supertype then not (Wax_wasm.Types.val_subtype (subtyping_info ctx) v.internal b.internal) else not (valtype_equal ctx v b) | _ -> true (* Whether [expected] carries a real type expectation (vs. the [Unknown] sentinel used when [check_instruction] is entered from synthesis with no context). [subtype] asserts on an [Unknown] right-hand side, so callers guard with this before checking against [expected]. *) let has_expectation expected = match Cell.get expected with Unknown | Collecting _ -> false | _ -> true (* For a block-like construct (do/loop/try/try_table) checked against [expected]: the single cell to type its body and handlers against — its declared result, or [expected] when the annotation was omitted (a re-parse of a dropped one). *) let context_result_cell ctx typ ~expected = if typ.results = [||] then expected else match array_map_opt (internalize ctx) typ.results with | Some [| c |] -> c | _ -> expected (* The [typ] to store for such a construct after its body is typed: fill an omitted result from [expected] (so re-parse / [to_wasm] recovers it), or drop a declared result on [simplify] when it equals the context — then re-parse recovers the same type from the same context, so nothing is lost. *) let context_block_typ ctx typ ~expected ~result_cell = if typ.results = [||] then match standalone_valtype ctx expected with | Some iv -> { typ with results = [| iv.typ |] } | None -> typ else if ctx.simplify && match (standalone_valtype ctx expected, standalone_valtype ctx result_cell) with | Some a, Some b -> valtype_equal ctx a b | _ -> false then { typ with results = [||] } else typ (* The exact user heap-type name [expected] pins, if any — usable to supply an omitted struct/array type name. A supertype top ([any]/[eq]/[struct]/[array]/ …) or a floating/non-ref cell returns [None]: construction needs the exact type, never a supertype. *) let exact_named_type expected = match Cell.get expected with | Valtype { typ = Ref { typ = Type ident | Exact ident; _ }; _ } -> Some ident | _ -> None (* The user type name a heap type refers to ([Type]/[Exact]), or [None] for an abstract/bottom heap type. *) let named_heaptype (t : heaptype) = match t with Type ident | Exact ident -> Some ident | _ -> None (* A value type is defaultable unless it is a non-nullable reference: such a local has no zero value and must be assigned before use. *) let is_defaultable (ty : valtype) = match ty with Ref { nullable; _ } -> nullable | _ -> true let mark_initialized ctx name = ctx.initialized_locals <- StringSet.add name ctx.initialized_locals (* Type-check one [let] binding against [result_ty] — the value it takes off the stack — and record the local. Returns the binding to emit: an annotation that [simplify] finds redundant (it equals what the value would infer to on its own) is dropped, so Wax printed back from Wasm omits it. Used for both the single-value form and each name of a multi-value [let]. *) let bind_let_value ctx ~location result_ty (name, typ) = match typ with | Some typ -> (* The type the value would take on its own, captured before [check_subtype] constrains it. *) let standalone = standalone_valtype ctx result_ty in let drop = Option.value ~default:false (let+@ ity = internalize_valtype ctx typ in check_subtype ctx ~location result_ty (valtype_cell ity); Option.iter (fun name -> ctx.locals <- StringMap.add name.desc (Some ity, name.info) ctx.locals; ctx.local_decls := name :: !(ctx.local_decls); mark_initialized ctx name.desc) name; ctx.simplify && Option.fold ~none:false ~some:(fun v -> valtype_equal ctx v ity) standalone) in (name, if drop then None else Some typ) | None -> Option.iter (fun name -> (* The local takes its initializer's type; an [Unknown]/[Error] initializer has no determinable one, so the local is recorded as poison ([None]) rather than defaulting to [i32], and an [Unknown] initializer is additionally reported (see [bound_value_type]). *) let ity = bound_value_type ctx ~location result_ty in ctx.locals <- StringMap.add name.desc (ity, name.info) ctx.locals; ctx.local_decls := name :: !(ctx.local_decls); mark_initialized ctx name.desc) name; (name, None) (* When converting from Wasm, an expression producing several values (typically a call) is emitted as a bare statement, and the values it leaves on the stack are peeled off by a following run of [let x = _] declarations (and [_ = _] drops for results that are discarded). [merge_let_tuple] folds that run back into a single multi-binding [let (..) = expr] — the exact inverse of how such a [let] lowers, so the rewrite preserves semantics. The run consumed is exactly [head]'s result arity, read from the typed info, so we never absorb a [let x = _] that draws from a value sitting below [head]. Each bound name takes one value left to right, whereas the lowering stores the topmost value first, so the bindings are the run in reverse. Only done while simplifying, i.e. on the Wasm-to-Wax path. *) let merge_let_tuple ctx head rest = let is_hole i = match i.desc with Hole -> true | _ -> false in let arity = Array.length (fst head.info) in let rec take n acc l = if n = 0 then Some (List.rev acc, l) else match l with (* A named binding [let x = _] or an anonymous drop [_ = _] (both a single-binding [Let] over a hole): peel one value each. *) | { desc = Let ([ b ], Some v); _ } :: r when is_hole v -> take (n - 1) (b :: acc) r | _ -> None in if (not ctx.simplify) || arity < 2 then head :: rest else match take arity [] rest with | Some (bindings, rest') when List.exists (fun (name, _) -> Option.is_some name) bindings -> let info = ([||], snd head.info) in { desc = Let (List.rev bindings, Some head); info } :: rest' | _ -> head :: rest (* Check a list of typed operands against an array of expected types. *) let check_operands ctx ~location l expected = if Array.length expected = List.length l then List.iter2 (fun i ty -> check_type ctx i ty) l (Array.to_list expected) else (* With the type immediates inferred from the receiver, a wrong operand count is no longer caught as an immediate/operand mismatch; report it as an arity error. *) Error.value_count_mismatch ctx.diagnostics ~location ~expected:(Array.length expected) ~provided:(List.length l) (* A missing else branch behaves like an empty one: it leaves the block parameters on the stack, so it is valid only when those already match the results (in particular, an if that produces a value needs an explicit else). *) let missing_else_ok ctx params results = Array.length params = Array.length results && Array.for_all2 (fun p r -> subtype ctx p r) params results (* The function type wrapped by a continuation type, given its (canonical) heap type. Mirrors [Validation.cont_functype_of_heaptype]. *) let cont_functype ctx (h : Internal.heaptype) : Internal.functype option = match h with | Type ty | Exact ty -> ( match (Wax_wasm.Types.get_subtype (subtyping_info ctx) ty).typ with | Cont ft -> ( match (Wax_wasm.Types.get_subtype (subtyping_info ctx) ft).typ with | Func f -> Some f | Struct _ | Array _ | Cont _ -> None) | Func _ | Struct _ | Array _ -> None) | _ -> None (* [ft] matches [ft'] when their arities agree and [ft']'s parameters / [ft]'s results are respectively subtypes. Mirrors [Validation.functype_matches]. *) let functype_matches info (ft : Internal.functype) (ft' : Internal.functype) = Array.length ft.params = Array.length ft'.params && Array.length ft.results = Array.length ft'.results && Array.for_all Fun.id (Array.mapi (fun i p -> Wax_wasm.Types.val_subtype info ft'.params.(i) p) ft.params) && Array.for_all Fun.id (Array.mapi (fun i r -> Wax_wasm.Types.val_subtype info r ft'.results.(i)) ft.results) (* A source function type with its parameter and result types resolved to their canonical (Binary) form, for structural comparison with [functype_matches]. *) let internal_functype ctx (ft : functype) : Internal.functype option = let*@ params = array_map_opt (fun p -> let+@ iv = internalize_valtype ctx (snd p.desc) in iv.internal) ft.params in let+@ results = array_map_opt (fun t -> let+@ iv = internalize_valtype ctx t in iv.internal) ft.results in ({ params; results } : Internal.functype) (* Validate a [resume]/[resume_throw] handler table. [result_types] is the result type of the resumed continuation. Mirrors [Validation.check_resume_table]. *) let check_resume_handlers ctx ~result_types handlers = let info = subtyping_info ctx in (* A block whose result is being inferred presents its label as a [Collecting] cell. The handler reads the label's type to validate the contract, which the join cannot re-derive, so resolve to the declared annotation under test and mark it needed (kept). *) let rec internal_of_inferred ty = match Cell.get ty with | Valtype { internal; _ } -> Some internal | Collecting { declared = Some d; _ } -> internal_of_inferred d | _ -> None in let to_internal arr = array_map_opt (fun typ -> let+@ iv = internalize_valtype ctx typ in iv.internal) arr in List.iter (fun handler -> match handler with | OnLabel (tag, label) -> ( match Tbl.find ctx.diagnostics ctx.tags tag with | None -> ignore (branch_target ctx label) | Some { params = ts3; results = ts4 } -> let ts' = branch_target ctx label in let mismatch () = Error.stack_switching_type_mismatch ctx.diagnostics ~location:label.info ~descr: "this handler must take the tag's parameters followed by a \ continuation of the remaining result type" in (* The handler label receives the tag's parameters followed by a continuation of type [cont (ts4 -> result_types)]. *) let n = Array.length ts' in if n <> Array.length ts3 + 1 then mismatch () else begin (* The continuation slot may be a block result still being inferred (the Wasm->Wax [simplify] pass), presented as a [Collecting] cell. Reading it to validate the contract is a use the join cannot re-derive, so mark its annotation needed (kept); [internal_of_inferred] resolves the cell to that declared type below. Only this last slot can be under inference: a block being inferred has a single result, so a handler with tag parameters (n > 1) is never inferred and its slots are concrete. A cell inferring with no declared annotation resolves to [None] below and so fails the contract check, as it must. *) (match Cell.get ts'.(n - 1) with | Collecting cs -> cs.needed <- true | _ -> ()); Array.iteri (fun i p -> let _, t = p.desc in match (internalize_valtype ctx t, internal_of_inferred ts'.(i)) with | Some it, Some it' -> if not (Wax_wasm.Types.val_subtype info it.internal it') then mismatch () | _ -> ()) ts3; match internal_of_inferred ts'.(n - 1) with | Some (Ref { typ = ht; _ }) -> ( match cont_functype ctx ht with | Some ft' -> ( match (to_internal ts4, to_internal result_types) with | Some params, Some results -> if not (functype_matches info { params; results } ft') then mismatch () | _ -> ()) | None -> mismatch ()) | _ -> mismatch () end) | OnSwitch tag -> ( match Tbl.find ctx.diagnostics ctx.tags tag with | None -> () | Some { params = ts3; results = ts4 } -> ( let mismatch descr = Error.stack_switching_type_mismatch ctx.diagnostics ~location:tag.info ~descr in (* A switch handler tag has type [] -> [t*]. The reified current continuation ([cont [t2*] -> [t*]]) runs to this [resume] boundary, whose results are [result_types], so [t*] must *equal* those results (equivalence, not merely subtyping): a subtype would let a continuation whose completion produces the boundary results be observed by a peer at the narrower tag type. Mirrors [Validation]'s [result_equivalent] check; the older written subtyping rule is unsound. *) if Array.length ts3 <> 0 then mismatch "the tag of a 'switch' handler must take no parameters" else match (to_internal ts4, to_internal result_types) with | Some tr, Some cr -> if Array.length tr <> Array.length cr || not (Array.for_all2 (fun a b -> Wax_wasm.Types.val_subtype info a b && Wax_wasm.Types.val_subtype info b a) tr cr) then mismatch "the results of a 'switch' handler's tag must match \ the resumed continuation's results" | _ -> ()))) handlers let rec count_holes i = match i.desc with | Hole -> 1 | BinOp (_, l, r) | Array (_, l, r) | ArraySegment (_, _, l, r) | ArrayGet (l, r) -> count_holes l + count_holes r | ArraySet (t, i, v) -> count_holes t + count_holes i + count_holes v | Call (f, args) | TailCall (f, args) -> count_holes f + List.fold_left (fun acc i -> acc + count_holes i) 0 args | If { cond = i; _ } | Let (_, Some i) | Set (_, _, i) | Tee (_, i) | Labelled (_, i) | UnOp (_, i) | Cast (i, _) | Test (i, _) | NonNull i | Br (_, Some i) | Br_if (_, i) | Hinted (_, i) | On (i, _) | Br_table (_, i) | Br_on_null (_, i) | Br_on_non_null (_, i) | Br_on_cast (_, _, i) | Br_on_cast_fail (_, _, i) | ArrayDefault (_, i) | ThrowRef i | ContNew (_, i) | Return (Some i) | StructDefaultDesc i | GetDescriptor i | StructGet (i, _) -> count_holes i | CastDesc (i1, _, i2) | Br_on_cast_desc_eq (_, _, i1, i2) | Br_on_cast_desc_eq_fail (_, _, i1, i2) | StructSet (i1, _, i2) -> count_holes i1 + count_holes i2 (* A punned field ([None]) is a [Get], which contains no holes. *) | Struct (_, l) -> List.fold_left (fun acc (_, i) -> acc + Option.fold ~none:0 ~some:count_holes i) 0 l | StructDesc (d, l) -> count_holes d + List.fold_left (fun acc (_, i) -> acc + Option.fold ~none:0 ~some:count_holes i) 0 l | Sequence l | ArrayFixed (_, l) | ContBind (_, _, l) | Suspend (_, l) | Resume (_, _, l) | ResumeThrow (_, _, _, l) | ResumeThrowRef (_, _, l) | Switch (_, _, l) | Throw (_, l) -> List.fold_left (fun acc i -> acc + count_holes i) 0 l | Select (c, t, e) -> count_holes c + count_holes t + count_holes e (* [dispatch]/[match], [while] and [do]-[while] are block-like: their operands/scrutinee and bodies are checked inside the blocks they desugar to, so no hole at this level draws from the stack. *) | Block _ | Loop _ | While _ | TryTable _ | Try _ | TryCatch _ | If_annotation _ | Dispatch _ | Match _ | StructDefault _ | Char _ | String _ | Int _ | Float _ | Get _ | Path _ | Null | Unreachable | Nop | Let (_, None) | Br (_, None) | Return None -> 0 (* Accumulate into [acc] the local names assigned ([Set]/[Tee] targets) anywhere in [i], recursing through every sub-instruction. Mirrors the case coverage of {!Sink_let.occurs}: only [Set]/[Tee] write a local, every other case just recurses. A drop ([_ = e], an anonymous [Let]) names no local, so it just recurses via the [Let] case. Wasm-derived locals are uniquely named within a function, so the resulting by-name set is exact; a stray name collision could only keep an annotation, never wrongly drop one. *) let rec collect_assigned_locals acc i = let in_list acc l = List.fold_left collect_assigned_locals acc l in let in_opt acc o = match o with Some i -> collect_assigned_locals acc i | None -> acc in match i.desc with | Set (id, _, e) | Tee (id, e) -> collect_assigned_locals (StringSet.add id.desc acc) e | Block { block; _ } | Loop { block; _ } | TryTable { block; _ } -> in_list acc block.desc | While { cond; step; block; _ } -> let acc = collect_assigned_locals acc cond in let acc = Option.fold ~none:acc ~some:(collect_assigned_locals acc) step in in_list acc block.desc | If { cond; if_block; else_block; _ } -> let acc = in_list (collect_assigned_locals acc cond) if_block.desc in Option.fold ~none:acc ~some:(fun b -> in_list acc b.desc) else_block | Try { block; catches; catch_all; _ } -> let acc = in_list acc block.desc in let acc = List.fold_left (fun acc (_, b) -> in_list acc b.desc) acc catches in Option.fold ~none:acc ~some:(fun b -> in_list acc b.desc) catch_all | TryCatch { block; arms; _ } -> let acc = in_list acc block.desc in List.fold_left (fun acc a -> in_list acc a.arm_body.desc) acc arms | Call (t, args) | TailCall (t, args) -> in_list (collect_assigned_locals acc t) args | Cast (e, _) | Test (e, _) | NonNull e | StructGet (e, _) | GetDescriptor e | StructDefaultDesc e | UnOp (_, e) | Br_if (_, e) | Hinted (_, e) | On (e, _) | Labelled (_, e) | Br_table (_, e) | Br_on_null (_, e) | Br_on_non_null (_, e) | Br_on_cast (_, _, e) | Br_on_cast_fail (_, _, e) | ThrowRef e | ArrayDefault (_, e) | ContNew (_, e) -> collect_assigned_locals acc e (* A punned field ([None]) is a [Get] and assigns nothing. *) | Struct (_, fields) -> List.fold_left (fun acc (_, e) -> Option.fold ~none:acc ~some:(collect_assigned_locals acc) e) acc fields | StructDesc (d, fields) -> List.fold_left (fun acc (_, e) -> Option.fold ~none:acc ~some:(collect_assigned_locals acc) e) (collect_assigned_locals acc d) fields | CastDesc (e1, _, e2) | Br_on_cast_desc_eq (_, _, e1, e2) | Br_on_cast_desc_eq_fail (_, _, e1, e2) | StructSet (e1, _, e2) | Array (_, e1, e2) | ArraySegment (_, _, e1, e2) | ArrayGet (e1, e2) | BinOp (_, e1, e2) -> collect_assigned_locals (collect_assigned_locals acc e1) e2 | ArraySet (e1, e2, e3) | Select (e1, e2, e3) -> collect_assigned_locals (collect_assigned_locals (collect_assigned_locals acc e1) e2) e3 | ArrayFixed (_, l) | ContBind (_, _, l) | Suspend (_, l) | Resume (_, _, l) | ResumeThrow (_, _, _, l) | ResumeThrowRef (_, _, l) | Switch (_, _, l) | Throw (_, l) | Sequence l -> in_list acc l | Dispatch { index; arms; _ } -> List.fold_left (fun acc (_, b) -> in_list acc b.desc) (collect_assigned_locals acc index) arms | Match { scrutinee; arms; default } -> let acc = collect_assigned_locals acc scrutinee in let acc = List.fold_left (fun acc (_, b) -> in_list acc b.desc) acc arms in in_list acc default.desc | Let (_, body) -> in_opt acc body | Br (_, o) | Return o -> in_opt acc o | If_annotation { then_body; else_body; _ } -> let acc = in_list acc then_body.desc in Option.fold ~none:acc ~some:(fun b -> in_list acc b.desc) else_body | Get _ | Path _ | Unreachable | Nop | Hole | Null | Char _ | String _ | Int _ | Float _ | StructDefault _ -> acc (* Accumulate into [acc] the block labels declared anywhere in [i], from the source AST (before any lowering, so synthesized labels from [while]/[dispatch]/ [match] desugaring are never collected). Every case recurses; the labelled constructs also contribute their own label. The [dispatch]/[match] arm labels are branch targets, not declarations, so they are not collected. Mirrors the case coverage of {!collect_assigned_locals}. *) let rec collect_labels acc (i : _ Ast.instr) = let in_list acc l = List.fold_left collect_labels acc l in let in_opt acc o = match o with Some i -> collect_labels acc i | None -> acc in let add acc label = match label with Some l -> l :: acc | None -> acc in match i.desc with | Block { label; block; _ } | Loop { label; block; _ } | TryTable { label; block; _ } -> in_list (add acc label) block.desc | While { label; cond; step; block; _ } -> let acc = collect_labels (add acc label) cond in let acc = Option.fold ~none:acc ~some:(collect_labels acc) step in in_list acc block.desc | If { label; cond; if_block; else_block; _ } -> let acc = in_list (collect_labels (add acc label) cond) if_block.desc in Option.fold ~none:acc ~some:(fun b -> in_list acc b.desc) else_block | Try { label; block; catches; catch_all; _ } -> let acc = in_list (add acc label) block.desc in let acc = List.fold_left (fun acc (_, b) -> in_list acc b.desc) acc catches in Option.fold ~none:acc ~some:(fun b -> in_list acc b.desc) catch_all | TryCatch { label; block; arms; _ } -> let acc = in_list (add acc label) block.desc in List.fold_left (fun acc a -> in_list acc a.arm_body.desc) acc arms | Call (t, args) | TailCall (t, args) -> in_list (collect_labels acc t) args | Set (_, _, e) | Tee (_, e) | Labelled (_, e) | Cast (e, _) | Test (e, _) | NonNull e | StructGet (e, _) | GetDescriptor e | StructDefaultDesc e | UnOp (_, e) | Br_if (_, e) | Hinted (_, e) | On (e, _) | Br_table (_, e) | Br_on_null (_, e) | Br_on_non_null (_, e) | Br_on_cast (_, _, e) | Br_on_cast_fail (_, _, e) | ThrowRef e | ArrayDefault (_, e) | ContNew (_, e) -> collect_labels acc e | Struct (_, fields) -> List.fold_left (fun acc (_, e) -> in_opt acc e) acc fields | StructDesc (d, fields) -> List.fold_left (fun acc (_, e) -> in_opt acc e) (collect_labels acc d) fields | CastDesc (e1, _, e2) | Br_on_cast_desc_eq (_, _, e1, e2) | Br_on_cast_desc_eq_fail (_, _, e1, e2) | StructSet (e1, _, e2) | Array (_, e1, e2) | ArraySegment (_, _, e1, e2) | ArrayGet (e1, e2) | BinOp (_, e1, e2) -> collect_labels (collect_labels acc e1) e2 | ArraySet (e1, e2, e3) | Select (e1, e2, e3) -> collect_labels (collect_labels (collect_labels acc e1) e2) e3 | ArrayFixed (_, l) | ContBind (_, _, l) | Suspend (_, l) | Resume (_, _, l) | ResumeThrow (_, _, _, l) | ResumeThrowRef (_, _, l) | Switch (_, _, l) | Throw (_, l) | Sequence l -> in_list acc l | Dispatch { index; arms; _ } -> List.fold_left (fun acc (_, b) -> in_list acc b.desc) (collect_labels acc index) arms | Match { scrutinee; arms; default } -> let acc = collect_labels acc scrutinee in let acc = List.fold_left (fun acc (_, b) -> in_list acc b.desc) acc arms in in_list acc default.desc | Let (_, body) -> in_opt acc body | Br (_, o) | Return o -> in_opt acc o | If_annotation { then_body; else_body; _ } -> let acc = in_list acc then_body.desc in Option.fold ~none:acc ~some:(fun b -> in_list acc b.desc) else_body | Get _ | Path _ | Unreachable | Nop | Hole | Null | Char _ | String _ | Int _ | Float _ | StructDefault _ -> acc (* The location of a trapping or effectful operation reached on the eagerly- evaluated spine of a [?:] branch [e], or [None] if the branch only reads locals/globals and computes pure arithmetic. Descends through pure operators (into the operands that are always evaluated) but stops at any nested control construct (an inner [if], [?:], block, loop, …): the sub-expressions guarded by it are not evaluated unconditionally, and a nested [?:] is linted in its own right. The hazard set matches the Wasm validator's ([lint_eager_select] in [Validation]): integer division/remainder, field and element accesses, [!], the descriptor cast, [array.new_data]/[array.new_elem], [unreachable], calls, assignments, throws, and stack-switching — but not plain casts (a [ref.cast] is diagnosed by [cast-always-fails] instead). *) let rec find_eager_hazard (e : _ Ast.instr) = let ( <|> ) o f = match o with Some _ -> o | None -> f () in let descend l = List.fold_left (fun acc e -> acc <|> fun () -> find_eager_hazard e) None l in match e.desc with (* Trapping or effectful operations: report the operation itself. *) | ArrayGet _ | ArraySet _ | StructGet _ | StructSet _ | GetDescriptor _ | NonNull _ | CastDesc _ | ArraySegment _ | Unreachable | Call _ | TailCall _ | Set _ | Tee _ | Throw _ | ThrowRef _ | ContNew _ | ContBind _ | Suspend _ | Resume _ | ResumeThrow _ | ResumeThrowRef _ | Switch _ -> Some e.info | BinOp ({ desc = Div (Some _) | Rem _; _ }, _, _) -> Some e.info (* Pure operators: descend into their eagerly-evaluated operands. *) | BinOp (_, a, b) -> descend [ a; b ] | UnOp (_, a) | Cast (a, _) | Test (a, _) | Labelled (_, a) | ArrayDefault (_, a) | StructDefaultDesc a -> find_eager_hazard a | Array (_, a, b) -> descend [ a; b ] | ArrayFixed (_, l) | Sequence l -> descend l | Struct (_, fields) -> descend (List.filter_map (fun (_, v) -> v) fields) | StructDesc (d, fields) -> find_eager_hazard d <|> fun () -> descend (List.filter_map (fun (_, v) -> v) fields) | Let (_, init) -> ( match init with Some e -> find_eager_hazard e | None -> None) (* Constants, reads, and allocations of default values never trap; nested control constructs guard their sub-expressions, so stop there. *) | Get _ | Path _ | Int _ | Float _ | Char _ | String _ | Null | Nop | Hole | StructDefault _ | Block _ | Loop _ | While _ | If _ | TryTable _ | Try _ | TryCatch _ | Br _ | Br_if _ | Br_table _ | Dispatch _ | Match _ | Br_on_null _ | Br_on_non_null _ | Br_on_cast _ | Br_on_cast_fail _ | Br_on_cast_desc_eq _ | Br_on_cast_desc_eq_fail _ | Hinted _ | On _ | Return _ | Select _ | If_annotation _ -> None (* Report an eager-evaluation hazard in the [?:] branch [arm]; [select] is the location of the whole [?:] (for the secondary caret). *) let lint_eager_select ctx ~select arm = match find_eager_hazard arm with | Some location -> Error.eager_select ctx.diagnostics ~location ~select | None -> () (* Human-readable name of a binary operator's precedence class, for the [precedence] lint's message. The classification and the confusing-mix table are shared with the Wax printer — see {!Ast_utils.binop_kind} and {!Ast_utils.confusing_precedence}. *) let binop_kind_name = function | `Shift -> "shift" | `Arith -> "arithmetic" | `Bitwise -> "bitwise" | `Comparison -> "comparison" (* Whether the operand [child] of a binary operator was written parenthesized. Parentheses are erased by the grammar ([1 << (n - 1)] and [1 << n - 1] parse to the same tree), so this is decided from the source text: a parenthesized operand is immediately preceded by [(] (a right operand) or followed by [)] (a left operand), skipping whitespace. With no source available, assume it is parenthesized (so the lint stays silent rather than risk a false positive). *) let operand_parenthesized ctx ~side (child : _ Ast.instr) = match Wax_utils.Diagnostic.source ctx.diagnostics with | None -> true | Some src -> ( let is_space = function ' ' | '\t' | '\n' | '\r' -> true | _ -> false in let n = String.length src in match side with | `Right -> let rec back i = if i < 0 then false else if is_space src.[i] then back (i - 1) else src.[i] = '(' in back (child.info.loc_start.pos_cnum - 1) | `Left -> let rec fwd i = if i >= n then false else if is_space src.[i] then fwd (i + 1) else src.[i] = ')' in fwd child.info.loc_end.pos_cnum) (* The [precedence] lint: flag a binary operator [op] one of whose operands is itself a binary operator of a confusingly-related class (see {!Ast_utils.confusing_precedence}), written without disambiguating parentheses. The Wax printer parenthesises exactly these mixes (see [Output]), so re-printed / decompiled Wax stays quiet under the lint. *) let lint_precedence ctx (op : (binop, location) annotated) e1 e2 = let outer = Ast_utils.binop_kind op.desc in List.iter (fun (child, side) -> match child.desc with | BinOp (inner_op, _, _) when Ast_utils.confusing_precedence outer (Ast_utils.binop_kind inner_op.desc) && not (operand_parenthesized ctx ~side child) -> Error.precedence ctx.diagnostics ~location:op.info ~inner:inner_op.info ~outer_kind:(binop_kind_name outer) ~inner_kind:(binop_kind_name (Ast_utils.binop_kind inner_op.desc)) | _ -> ()) [ (e1, `Left); (e2, `Right) ] (* Walk the source AST (before any lowering, so [while] keeps its own condition rather than the [if] it desugars to) and report the purely-syntactic lints: a constant branch/loop/select condition, and a drop ([_ = e]) of a side-effect-free expression. Runs once over the source rather than in the type checker's expression handling. Mirrors the case coverage of {!collect_labels}. *) let rec lint_source ctx (i : _ Ast.instr) = let list l = List.iter (lint_source ctx) l in let opt o = Option.iter (lint_source ctx) o in match i.desc with | If { cond; if_block; else_block; _ } -> lint_condition ctx cond; lint_source ctx cond; list if_block.desc; Option.iter (fun b -> list b.desc) else_block | While { cond; step; block; _ } -> lint_condition ctx ~is_while:true cond; lint_source ctx cond; opt step; list block.desc | Select (c, t, e) -> lint_condition ctx c; lint_eager_select ctx ~select:i.info t; lint_eager_select ctx ~select:i.info e; lint_source ctx c; lint_source ctx t; lint_source ctx e | Br_if (_, c) -> lint_condition ctx c; lint_source ctx c | Block { block; _ } | Loop { block; _ } | TryTable { block; _ } -> list block.desc | Try { block; catches; catch_all; _ } -> list block.desc; List.iter (fun (_, b) -> list b.desc) catches; Option.iter (fun b -> list b.desc) catch_all | TryCatch { block; arms; _ } -> list block.desc; List.iter (fun a -> list a.arm_body.desc) arms | Call (t, args) | TailCall (t, args) -> lint_source ctx t; list args | Set (id, op, e) -> (* A plain self-assignment [x = x] has no effect. A compound assignment [x op= x] is not redundant (e.g. [x += x] doubles it). The pointless- drop check lives in the [Let] case, since a drop [_ = e] is an anonymous binding. *) (match (op, e.desc) with | None, Get id' when String.equal id.desc id'.desc -> Error.redundant_operation ctx.diagnostics ~location:i.info (Wax_utils.Message.text "This assignment writes the variable back to itself.") | _ -> ()); lint_source ctx e | Tee (_, e) | Labelled (_, e) | Cast (e, _) | Test (e, _) | NonNull e | StructGet (e, _) | GetDescriptor e | StructDefaultDesc e | UnOp (_, e) | Hinted (_, e) | On (e, _) | Br_table (_, e) | Br_on_null (_, e) | Br_on_non_null (_, e) | Br_on_cast (_, _, e) | Br_on_cast_fail (_, _, e) | ThrowRef e | ArrayDefault (_, e) | ContNew (_, e) -> lint_source ctx e | Struct (_, fields) -> List.iter (fun (_, e) -> Option.iter (lint_source ctx) e) fields | StructDesc (d, fields) -> lint_source ctx d; List.iter (fun (_, e) -> Option.iter (lint_source ctx) e) fields | BinOp (op, e1, e2) -> lint_precedence ctx op e1 e2; lint_source ctx e1; lint_source ctx e2 | CastDesc (e1, _, e2) | Br_on_cast_desc_eq (_, _, e1, e2) | Br_on_cast_desc_eq_fail (_, _, e1, e2) | StructSet (e1, _, e2) | Array (_, e1, e2) | ArraySegment (_, _, e1, e2) | ArrayGet (e1, e2) -> lint_source ctx e1; lint_source ctx e2 | ArraySet (e1, e2, e3) -> lint_source ctx e1; lint_source ctx e2; lint_source ctx e3 | ArrayFixed (_, l) | ContBind (_, _, l) | Suspend (_, l) | Resume (_, _, l) | ResumeThrow (_, _, _, l) | ResumeThrowRef (_, _, l) | Switch (_, _, l) | Throw (_, l) | Sequence l -> list l | Dispatch { index; arms; _ } -> lint_source ctx index; List.iter (fun (_, b) -> list b.desc) arms | Match { scrutinee; arms; default } -> lint_source ctx scrutinee; List.iter (fun (_, b) -> list b.desc) arms; list default.desc | Let (bindings, body) -> (* A drop [_ = e] is a single anonymous binding; if [e] is effect-free, computing it only to discard the result is pointless. *) (match (bindings, body) with | [ (None, _) ], Some e when is_effectless e -> Error.unused_result ctx.diagnostics ~location:e.info | _ -> ()); opt body | Br (_, o) | Return o -> opt o | If_annotation { then_body; else_body; _ } -> list then_body.desc; Option.iter (fun b -> list b.desc) else_body | Get _ | Path _ | Unreachable | Nop | Hole | Null | Char _ | String _ | Int _ | Float _ | StructDefault _ -> () (* If [meth] names an intrinsic written as a method on a value receiver — a SIMD lane/vector op [v.add_i32x4(b)], or a scalar [x.copysign(y)], [x.min(y)], [x.rotl(y)] — the number of leading constant lane immediates in its argument list (always 0 for the scalar ops), else [None]. Such a call evaluates the receiver before its operands, unlike a generic call whose callee is evaluated last; the leading SIMD lane immediates are static and never reach the stack. The set of names matches the call dispatch (see [type_simd_vector_op_call], [type_binary_intrinsic_call]). This is decided by name alone — but the same names are only receiver-first when the receiver is actually a value, see [receiver_is_value]. *) let intrinsic_method_imms meth = match Wax_wasm.Simd.classify meth with | Some { free = false; imm; _ } -> ( match imm with No_imm -> Some 0 | Lane _ -> Some 1 | Shuffle -> Some 16) | _ -> ( match meth with | "rotl" | "rotr" | "copysign" | "min" | "max" -> Some 0 | _ -> None) (* Whether [obj], the receiver of an [obj.meth(args)] call, is a value rather than a reference. Only a value receiver makes [meth] an intrinsic evaluated receiver-first: when [obj] is a reference, [obj.meth] may instead load a function-pointer field, so the call is an indirect call whose arguments are evaluated first (then the loaded callee). Treating that as receiver-first could hide a value occurring before a hole, so the reorder is gated on this. *) let receiver_is_value ctx obj = match Cell.get (expression_type ctx obj) with | Null | Valtype { internal = Ref _; _ } -> false | _ -> true (* Whether the receiver of an [obj.meth(..)] call is a concrete array — the case that makes a [fill]/[copy]/[init] method an array operation (evaluated receiver-first), as opposed to a struct-field/indirect call or a static memory/table form (both args-first / static-receiver). Reads the receiver's type cell directly: a memory/table receiver carries no value type ([||]), for which [expression_type] would spuriously report "not an expression". *) let receiver_is_array ctx recv = match fst recv.Ast.info with | [| cell |] -> ( match Cell.get cell with | Valtype { typ = Ref { typ = Type ty | Exact ty; _ }; _ } -> ( match Tbl.find_opt ctx.type_context.types ty with | Some t -> ( match (snd t).typ with Array _ -> true | _ -> false) | None -> false) | _ -> false) | _ -> false (* Whether the receiver of a scalar-intrinsic-method call [recv.min(..)] names a reference (e.g. a struct) rather than a numeric value. Decided purely, by looking the name up in the locals / globals — no typing, so the dispatch can gate on it without recording a spurious use. A reference receiver means [recv.min] loads a function-pointer field (an indirect call), not the scalar [min] intrinsic; only a numeric receiver reaches [type_binary_intrinsic_call]. A non-name receiver (a literal, a nested expression) is not a reference. *) let receiver_is_ref ctx recv = let is_ref = function | Some ({ typ = Ref _; _ } : inferred_valtype) -> true | _ -> false in match recv.Ast.desc with | Get name -> ( match StringMap.find_opt name.desc ctx.locals with | Some (ity, _) -> is_ref ity | None -> ( match Tbl.entries ctx.globals name with | (_, (_, ity)) :: _ -> is_ref ity | [] -> false)) | _ -> false (* Whether the receiver of an array-op method call ([a.fill(..)]) names a value whose type is a reference to an array type. Pure, like {!receiver_is_ref}: it reads the name's type from the locals / globals and the referenced type's definition from the type table, recording nothing. Gates the recovery of a wrong-arity array op (an [a.fill()] being typed) so a struct with a field named [fill]/[copy]/[init] is left to the indirect-call path instead. *) let receiver_is_array_ref ctx recv = let ref_name = function | Some ({ typ = Ref { typ = Type n | Exact n; _ }; _ } : inferred_valtype) -> Some n | _ -> None in let arrname = match recv.Ast.desc with | Get name -> ( match StringMap.find_opt name.desc ctx.locals with | Some (ity, _) -> ref_name ity | None -> ( match Tbl.entries ctx.globals name with | (_, (_, ity)) :: _ -> ref_name ity | [] -> None)) | _ -> None in match arrname with | None -> false | Some n -> ( match Tbl.entries ctx.type_context.types n with | (_, (_, sub)) :: _ -> ( match sub.typ with Array _ -> true | _ -> false) | [] -> false) (* A cast is transparent to the hole-order check exactly when [to_wasm] lowers it to no instruction (so it occupies its operand's position and produces nothing): an operand with no value type — unreachable / failed code, where the cast emits nothing — or a numeric-scalar identity, the only [Nop] case in [to_wasm]'s cast lowering. Everything else IS emitted: a numeric conversion ([_ as f32] on an [f64] hole is [f32.demote_f64]) or a reference cast (always a [ref.cast], even an up-cast), and operates on the stack top, so it must be ordered like any other value-producing expression. *) let cast_is_transparent ctx ~cast ~operand = match Cell.get (expression_type ctx operand) with | Unknown | Error -> true | Valtype { internal = (I32 | I64 | F32 | F64) as src; _ } -> ( match Cell.get (expression_type ctx cast) with | Valtype { internal = dst; _ } -> src = dst | _ -> false) | _ -> false let rec check_hole_order_rec ctx i n = match i.desc with | Hole -> n - 1 | Get name when memory_receiver ctx name || table_receiver ctx name || segment_receiver ctx name -> (* A memory/table name (a method/index receiver [mem.load(..)], [tab[..]], or a cross-mem/table [copy] source) or a data/element segment name (a [seg.drop()] receiver or an [init] operand) is a static immediate, not a stack value, so it never counts as occurring before a hole. *) n | _ when n <= 0 -> n | Cast (inner, _) when cast_is_transparent ctx ~cast:i ~operand:inner -> (* A nop cast (see [cast_is_transparent]) is transparent: recurse into the operand, which is itself flagged if it is a value occurring before a hole, without counting the cast as such — so [(_ as T)] with a hole already of type [T] is fine even when later holes remain. A non-nop cast falls through to the normal handling below. *) check_hole_order_rec ctx inner n | _ -> let n = match i.desc with | Block _ | Loop _ | While _ | TryTable _ | Try _ | TryCatch _ | If_annotation _ | Dispatch _ | Match _ | StructDefault _ | Char _ | String _ | Int _ | Float _ | Get _ | Path _ | Null | Unreachable | Nop | Let (_, None) | Br (_, None) | Return None -> n (* A table reference [tab[..]] has a static receiver (the table name), not an evaluated operand, so it does not count as occurring before a hole; only the index/value do. *) | ArrayGet ({ desc = Get tab; _ }, r) when table_receiver ctx tab -> check_hole_order_rec ctx r n | ArraySet ({ desc = Get tab; _ }, idx, v) when table_receiver ctx tab -> n |> check_hole_order_rec ctx idx |> check_hole_order_rec ctx v | BinOp (_, l, r) | Array (_, l, r) | ArraySegment (_, _, l, r) | ArrayGet (l, r) -> n |> check_hole_order_rec ctx l |> check_hole_order_rec ctx r | ArraySet (t, i, v) -> n |> check_hole_order_rec ctx t |> check_hole_order_rec ctx i |> check_hole_order_rec ctx v | Call ({ desc = StructGet (obj, meth); _ }, args) when intrinsic_method_imms meth.desc <> None && receiver_is_value ctx obj -> (* An intrinsic method on a value receiver, [recv.op(imms.., ops..)]. [to_wasm] evaluates the receiver first, then the non-immediate stack operands; any leading SIMD lane immediates ([Lane]/[Shuffle]) are static and never reach the operand stack. Mirror that order so a static lane index — or an operand of a receiver-first scalar op like [copysign] — is not mistaken for a value before a hole. A reference receiver is excluded ([receiver_is_value]): it could be a function-pointer field, i.e. an args-first indirect call. *) let nimm = Option.get (intrinsic_method_imms meth.desc) in let operands = List.filteri (fun k _ -> k >= nimm) args in n |> check_hole_order_rec ctx obj |> check_hole_order_in_list ctx operands | Call ({ desc = StructGet (recv, meth); _ }, args) when (match meth.desc with | "fill" | "copy" | "init" -> true | _ -> false) && receiver_is_array ctx recv -> (* [arr.fill/copy/init] on an array receiver is a receiver-first array operation, like the intrinsics above: [to_wasm] and the type checker both evaluate the array receiver before the operands, so mirror that order. The same method name on a non-array receiver is a struct-field/indirect call or a static memory/table form, all of which the general case below handles (args-first, with a static [Get name] receiver not counted). The arity is not re-checked — typing has already validated it. *) n |> check_hole_order_rec ctx recv |> check_hole_order_in_list ctx args | Call (f, args) | TailCall (f, args) -> n |> check_hole_order_in_list ctx args |> check_hole_order_rec ctx f | If { cond = i; _ } | Let (_, Some i) | Set (_, _, i) | Tee (_, i) | Labelled (_, i) | UnOp (_, i) | Cast (i, _) | Test (i, _) | NonNull i | Br (_, Some i) | Br_if (_, i) | Hinted (_, i) | On (i, _) | Br_table (_, i) | Br_on_null (_, i) | Br_on_non_null (_, i) | Br_on_cast (_, _, i) | Br_on_cast_fail (_, _, i) | ArrayDefault (_, i) | ThrowRef i | ContNew (_, i) | Return (Some i) | StructDefaultDesc i | GetDescriptor i | StructGet (i, _) -> check_hole_order_rec ctx i n | CastDesc (i1, _, i2) | Br_on_cast_desc_eq (_, _, i1, i2) | Br_on_cast_desc_eq_fail (_, _, i1, i2) | StructSet (i1, _, i2) -> n |> check_hole_order_rec ctx i1 |> check_hole_order_rec ctx i2 | Sequence l | ArrayFixed (_, l) | ContBind (_, _, l) | Suspend (_, l) | Resume (_, _, l) | ResumeThrow (_, _, _, l) | ResumeThrowRef (_, _, l) | Switch (_, _, l) | Throw (_, l) -> check_hole_order_in_list ctx l n | Struct (_, l) -> let fields = match Cell.get (expression_type ctx i) with | Valtype { typ = Ref { typ = Type t | Exact t; _ }; _ } -> ( match lookup_struct_type ctx t with | Some fields -> let field_map = List.fold_left (fun acc (name, instr) -> StringMap.add name.desc instr acc) StringMap.empty l in (* Reorder fields according to definition. Pinned fields ([None]) are [Get]s with no hole, so drop them. *) Array.map (fun field -> StringMap.find (fst field.desc).desc field_map) fields |> Array.to_list |> List.filter_map Fun.id | None -> List.filter_map snd l) | _ -> List.filter_map snd l in check_hole_order_in_list ctx fields n | StructDesc (d, l) -> (* As [Struct], with the descriptor operand evaluated last (after the field values). *) let fields = match Cell.get (expression_type ctx i) with | Valtype { typ = Ref { typ = Type t | Exact t; _ }; _ } -> ( match lookup_struct_type ctx t with | Some fields -> let field_map = List.fold_left (fun acc (name, instr) -> StringMap.add name.desc instr acc) StringMap.empty l in Array.map (fun field -> StringMap.find (fst field.desc).desc field_map) fields |> Array.to_list |> List.filter_map Fun.id | None -> List.filter_map snd l) | _ -> List.filter_map snd l in check_hole_order_in_list ctx (fields @ [ d ]) n | Select (c, t, e) -> n |> check_hole_order_rec ctx t |> check_hole_order_rec ctx e |> check_hole_order_rec ctx c | Hole -> assert false in if n = 0 then 0 else ( Error.before_hole ctx.diagnostics ~location:(snd i.info); raise Exit) and check_hole_order_in_list ctx l n = List.fold_left (fun n i -> check_hole_order_rec ctx i n) n l let check_hole_order ctx l n = try let _ : int = check_hole_order_rec ctx l n in true with Exit -> false let pop_parameter st = match st with [] -> assert false | x :: r -> (r, x) let _print_arg_stack f l = Format.pp_print_list ~pp_sep:(fun f () -> Format.fprintf f "@ ") output_inferred_type f l (* Peel the condition / reference operand off the last slot of a branch instruction's operand types, returning it together with the remaining branch parameters. The operand is an arbitrary expression, which may type to no value at all (e.g. a call to a function with no results); rather than assert, report the missing operand and recover with an unknown value. *) let split_on_last_type ctx ~location i = let a = fst i.info in let len = Array.length a in if len = 0 then ( Error.value_count_mismatch ctx.diagnostics ~location ~expected:1 ~provided:0; (Cell.make Error, [||])) else (a.(len - 1), Array.sub a 0 (len - 1)) let immediate_supertype s : Ast.heaptype = match (s.supertype, s.typ) with | Some t, _ -> Type t | None, Struct _ -> Struct | None, Array _ -> Array | None, Func _ -> Func | None, Cont _ -> Cont (* The top of [h]'s subtyping hierarchy ([Any]/[Func]/[Extern]/[Exn]/[Cont]), without reporting an unbound type ([None] then). *) let heaptype_top ctx (h : Ast.heaptype) : Ast.heaptype option = match h with | Any | Eq | I31 | Struct | Array | None_ -> Some Any | Func | NoFunc -> Some Func | Extern | NoExtern -> Some Extern | Exn | NoExn -> Some Exn | Cont | NoCont -> Some Cont | Type id | Exact id -> ( match Tbl.find_opt ctx.type_context.types id with | Some (_, s) -> ( match s.typ with | Struct _ | Array _ -> Some Any | Func _ -> Some Func | Cont _ -> Some Cont) | None -> None) (* A bottom reference of a hierarchy. *) let is_bottom_heaptype = function | None_ | NoFunc | NoExtern | NoExn | NoCont -> true | _ -> false (* Lint a reference cast ([is_test = false]) or test ([is_test = true]) given the operand's inferred type and the interned target type. Under single-inheritance subtyping two heap types share a value only when one is a subtype of the other, so unrelated types make the cast always trap / the test always false (unless a shared [null] slips through); an operand that already has the target type makes it redundant. A bottom-reference operand is skipped: its cast is load-bearing (dropping it loses the type the value stands in for). *) let lint_ref_cast ctx ~location ~is_test op_natural target_natural = let info = subtyping_info ctx in match (op_natural, target_natural) with | ( Valtype { typ = Ref { typ = op_src; _ }; internal = Ref op; _ }, Valtype { internal = Ref tgt; _ } ) when not (is_bottom_heaptype op_src) -> let = Wax_wasm.Types.heap_subtype info op.typ tgt.typ || Wax_wasm.Types.heap_subtype info tgt.typ op.typ in if (not related) && not (op.nullable && tgt.nullable) then Error.cast_always_fails ctx.diagnostics ~location ~is_test else if Wax_wasm.Types.ref_subtype info op tgt then Error.redundant_cast ctx.diagnostics ~location ~is_test | _ -> () (* The type lookups below never fail *) let rec heap_lub ctx (h1 : Ast.heaptype) (h2 : Ast.heaptype) = match (h1, h2) with (* A bottom reference is below everything in its hierarchy, so its lub with any type of that same hierarchy is that other type. Handle this before walking a concrete [Type] up to its supertype, which would otherwise discard the bottom and over-generalise (e.g. [lub(none, $t)] giving [struct] not [$t]). *) | b, h when is_bottom_heaptype b && heaptype_top ctx b = heaptype_top ctx h -> Some h | h, b when is_bottom_heaptype b && heaptype_top ctx b = heaptype_top ctx h -> Some h (* [exact] survives a lub only when both sides are the same exact type; any generalization drops exactness (an [exact a]/[exact b] pair joins at their common non-exact supertype). *) | Exact id1, Exact id2 -> let*@ i1, _ = Tbl.find_opt ctx.type_context.types id1 in let*@ i2, _ = Tbl.find_opt ctx.type_context.types id2 in if i1 = i2 then Some (Exact id1) else heap_lub ctx (Type id1) (Type id2) | Exact id1, h -> heap_lub ctx (Type id1) h | h, Exact id2 -> heap_lub ctx h (Type id2) | Type id1, Type id2 -> let*@ i1, s1 = Tbl.find_opt ctx.type_context.types id1 in let*@ i2, s2 = Tbl.find_opt ctx.type_context.types id2 in if i1 > i2 then heap_lub ctx (immediate_supertype s1) h2 else if i2 > i1 then heap_lub ctx h1 (immediate_supertype s2) else Some h1 | Type id1, _ -> let*@ _, s1 = Tbl.find_opt ctx.type_context.types id1 in heap_lub ctx (immediate_supertype s1) h2 | _, Type id2 -> let*@ _, s2 = Tbl.find_opt ctx.type_context.types id2 in heap_lub ctx h1 (immediate_supertype s2) (* Abstract hierarchy *) | None_, None_ -> Some None_ | (None_ | I31), I31 | I31, None_ -> Some I31 | (None_ | Struct), Struct | Struct, None_ -> Some Struct | (None_ | Array), Array | Array, None_ -> Some Array | (None_ | I31 | Struct | Array | Eq), Eq | Eq, (None_ | I31 | Struct | Array) | (Struct | Array), I31 | I31, (Struct | Array) | Struct, Array | Array, Struct -> Some Eq | (None_ | I31 | Struct | Array | Eq | Any), Any | Any, (None_ | Eq | I31 | Struct | Array) -> Some Any | NoFunc, NoFunc -> Some NoFunc | (NoFunc | Func), Func | Func, NoFunc -> Some Func | NoExtern, NoExtern -> Some NoExtern | (NoExtern | Extern), Extern | Extern, NoExtern -> Some Extern | NoExn, NoExn -> Some NoExn | (NoExn | Exn), Exn | Exn, NoExn -> Some Exn | NoCont, NoCont -> Some NoCont | (NoCont | Cont), Cont | Cont, NoCont -> Some Cont | ( (None_ | Eq | I31 | Struct | Array | Any), (NoExtern | Extern | NoExn | Exn | NoFunc | Func) ) | ( (NoExtern | Extern | NoExn | Exn | NoFunc | Func), (None_ | Eq | I31 | Struct | Array | Any) ) | (NoFunc | Func), (NoExtern | Extern | NoExn | Exn) | (NoExtern | Extern | NoExn | Exn), (NoFunc | Func) | (NoExtern | Extern), (NoExn | Exn) | (NoExn | Exn), (NoExtern | Extern) (* Continuation types form their own hierarchy, incompatible with all others (and have no Wax surface syntax). *) | (Cont | NoCont), _ | _, (Cont | NoCont) -> None let val_lub ctx v1 v2 = match (v1, v2) with | Ref r1, Ref r2 -> let+@ lub = heap_lub ctx r1.typ r2.typ in let nullable = r1.nullable || r2.nullable in Ref { nullable; typ = lub } | _ -> if v1 = v2 then Some v1 else None (* The least upper bound of two value type cells, or [None] when they have no common type. Mirrors the [Select] (?:) reconciliation: it pins an as-yet-unconstrained literal/[null] to the other side and lubs two reference types via [val_lub]. Used to combine the values reaching a block's exit (the branches of an [if], etc.) when inferring the block's result type. *) let join_value_types ctx ty1 ty2 = match (Cell.get ty1, Cell.get ty2) with (* [Unknown]/[Error] are the universal bottom: the other side wins (the lub of [Unknown] and [UnknownRef] is the more informative [UnknownRef]). [UnknownRef] (a bottom reference) joins with any other reference — concrete, [Null] or another [UnknownRef] — which, being a supertype, wins; a bottom reference paired with a non-reference (e.g. [i32]) has no common type and falls through to a mismatch. *) (* An [Unknown] value reaching a block's exit (a hole on the polymorphic stack of dead code) genuinely takes the block's result type: pin it (merge), so a branch that also passes it through — a [br_if]/[br_on_null] whose value is then cast — sees the resolved width rather than staying [Unknown], which would make [To_wasm] drop the cast. [Error] (already reported) stays the untouched bottom. *) | _, Unknown -> Cell.merge ty1 ty2 (Cell.get ty1); Some ty1 | Unknown, _ -> Cell.merge ty1 ty2 (Cell.get ty2); Some ty2 | _, Error -> Some ty1 | Error, _ -> Some ty2 | UnknownRef, UnknownRef -> (* Merge the two bottom references so pinning one (later, against a concrete type) pins the other too. *) Cell.merge ty1 ty2 UnknownRef; Some ty1 | (Valtype { internal = Ref _; _ } | Null), UnknownRef -> Cell.set ty2 (Cell.get ty1); Some ty1 | UnknownRef, (Valtype { internal = Ref _; _ } | Null) -> Cell.set ty1 (Cell.get ty2); Some ty2 | Null, Null -> (* Unify the two nulls so pinning one (later, to a reference type) pins the other too. *) Cell.merge ty1 ty2 Null; Some ty1 | Valtype { internal = I32; _ }, Valtype { internal = I32; _ } | Valtype { internal = I64; _ }, Valtype { internal = I64; _ } | Valtype { internal = F32; _ }, Valtype { internal = F32; _ } | Valtype { internal = F64; _ }, Valtype { internal = F64; _ } -> Some ty2 | (Int | Number), (Int | Valtype { internal = I32 | I64; _ }) | (Float | Number), (Float | Valtype { internal = F32 | F64; _ }) | Number, Number -> Cell.merge ty1 ty2 (Cell.get ty2); Some ty2 | ( (Valtype { internal = I32; _ } | Valtype { internal = I64; _ }), (Int | Number) ) | ( (Valtype { internal = F32; _ } | Valtype { internal = F64; _ }), (Float | Number) ) | (Int | Float), Number -> Cell.merge ty1 ty2 (Cell.get ty1); Some ty1 (* A [LargeInt] (literal too big for i32) defaults to i64 and is also convertible to a float. It joins with another [LargeInt] or a fully-flexible [Number] staying [LargeInt] (i64/f32/f64), or with a concrete i64/f32/f64 or a flexible float taking that type, but never with i32. A committed [Int], being integer-only, has i64 as its sole common type with a [LargeInt] — pin it there, so the join cannot later be coerced to a float the [Int] cannot be. Mirrors [check_int_bin_op]/[check_num_concrete]. *) | LargeInt, Int | Int, LargeInt -> Cell.merge ty1 ty2 (Valtype i64_valtype); Some ty1 | LargeInt, (LargeInt | Number) -> Cell.merge ty1 ty2 LargeInt; Some ty1 | Number, LargeInt -> Cell.merge ty1 ty2 LargeInt; Some ty2 | LargeInt, (Float | Valtype { internal = I64 | F32 | F64; _ }) -> Cell.merge ty1 ty2 (Cell.get ty2); Some ty2 | (Float | Valtype { internal = I64 | F32 | F64; _ }), LargeInt -> Cell.merge ty1 ty2 (Cell.get ty1); Some ty1 | Valtype { typ = typ1; _ }, Valtype { typ = typ2; _ } -> ( match val_lub ctx typ1 typ2 with | Some ty -> internalize ctx ty | None -> None) | Valtype { typ = Ref { typ; _ }; _ }, Null -> ( match internalize ctx (Ref { typ; nullable = true }) with | Some ty -> Cell.set ty2 (Cell.get ty); Some ty | None -> None) | Null, Valtype { typ = Ref { typ; _ }; _ } -> ( match internalize ctx (Ref { typ; nullable = true }) with | Some ty -> Cell.set ty1 (Cell.get ty); Some ty | None -> None) | _ -> None let address_valtype (at : [ `I32 | `I64 ]) : inferred_valtype = match at with `I32 -> i32_valtype | `I64 -> i64_valtype let address_cell at = valtype_cell (address_valtype at) (* Expected operand/result type of a SIMD intrinsic, as a fresh type cell. *) 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_cell t = valtype_cell (simd_valtype t) let simd_ty_name t = numtype_name (simd_valtype t).typ (* The member-completion candidate for a SIMD method [name] (e.g. [add_i32x4]), its signature read straight from the registry the typer dispatches through ([Simd.classify]): the leading constant lane immediates, then the non-receiver stack operands, then the result. *) 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 } (* The value methods offered by member completion for a [v128] receiver — the vector ops [v.add_i32x4(w)], enumerated from the SIMD registry (so, unlike the scalar registries above, no drift is possible: the same table classifies the call). *) let simd_v128_methods () = List.map simd_method_candidate (Simd.method_names Simd.TV128) (* The value-method candidates member completion offers for a numeric receiver of inferred type [t], or [None] if it has none. Beyond the concrete numeric valtypes ([i32] … [f64], [v128]), a receiver can still be a flexible literal type: an [int] takes its integer methods only, a [number] or [large number] both families (either narrowing is still open), a [float] its float methods only. A packed [i8]/[i16] read must be cast before any method, so gets none. The [from_bits]/[to_bits] reinterpretation flips the family, rendered by family name for a flexible receiver since the width is uncommitted. *) 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 (* Whether a value receiver of type [t] has value methods, as an [R_numeric] descriptor — the cheap classification the recorder uses to decide whether to record, without building the (possibly large) candidate list. Its domain must match [numeric_receiver_candidates] returning [Some]. *) 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" (* [fn(<params>) -> <result>], with an empty result rendered [()] and several as a tuple. *) 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 (* The methods member completion offers on a continuation-typed receiver — the resume family and [switch] — with [params]/[results] the rendered parameter and result types of the continuation's function type and [switch_results] the rendered results of a [switch] (the last parameter's own continuation parameters, when it has one). Unlike the other receivers, the candidate list is built at record time (the signatures need the type context) and carried by {!R_cont}; the editor's signature help rebuilds it from the declarations. *) 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); ] (* Build the {!R_cont} descriptor of a receiver of declared continuation type [ct], rendering the method signatures from the type context. *) let cont_receiver ctx ct = let render (t : Ast.valtype) = String.trim (Format.asprintf "%a" Output.valtype t) in let sign = let*@ inner = lookup_cont_inner ctx ct in lookup_func_type ctx inner in let params, results = match sign with | Some sg -> ( Array.to_list (Array.map (fun p -> render (snd p.Ast.desc)) sg.params), Array.to_list (Array.map render sg.results) ) | None -> ([], []) in let switch_results = match let*@ sg = sign in let n = Array.length sg.params in if n = 0 then None else match snd sg.params.(n - 1).Ast.desc with | Ast.Ref { typ = Type ct2 | Exact ct2; _ } -> let*@ inner2 = lookup_cont_inner ctx ct2 in let*@ sg2 = lookup_func_type ctx inner2 in Some (Array.to_list (Array.map (fun p -> render (snd p.Ast.desc)) sg2.params)) | _ -> None with | Some rs -> rs | None -> [] in R_cont (cont_method_candidates ~params ~results ~switch_results) (* The atomic memory accesses ([mem.atomic_load32(addr)], [mem.atomic_rmw_add8(addr, v)], …), enumerated from the {!Wax_wasm.Atomics.families} the typer dispatches on; the address takes [addr_name]. The name carries the access width only: a narrow load returns the raw-bits [i8]/[i16] (resolved by a surrounding [as iN_u] cast) and a narrow store/RMW value picks the i32/i64 family by its type (rendered [int]); the 64-bit accesses are necessarily [i64]. *) 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 (* The SIMD memory accesses ([mem.loadv128(addr)], [mem.load8_lane(addr, v, lane)], …), enumerated from {!Wax_wasm.Simd.mem_method_names}; the first operand is the address. *) 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 (* The value methods member completion offers on a memory receiver [mem.load8(addr)], with [addr_name] the memory's address type: the scalar loads/stores (with their optional labelled [offset]/[align] immediates), the size/grow/fill/copy/init management ops, and the atomic and SIMD memory accesses. *) 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 (* The value methods member completion offers on a table receiver [tab.size()], with [addr_name] the table's address type and [elem_name] its element type: the size/grow/fill/copy/init management ops. Element access is [tab[i]], not a method. *) 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); ] (* The methods member completion offers on an array receiver [a.length()] with element [elem]: [length], and the [fill]/[copy]/[init] bulk operations (the last from a data / element segment). Indices and counts are [i32]; [fill]'s value and [copy]'s source array are the element type. *) 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) -> ()"); ] (* The member-completion candidates a recorded {!member_receiver} stands for, derived on demand (the editor forces only the one under the cursor). *) 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 (* Free-function members offered after [v128::] — [bitselect] and the per-shape const constructors — with signatures from the SIMD registry. *) 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 (* The free functions offered by completion after an intrinsic namespace path [ns::]: [v128::] holds the SIMD const constructors and [bitselect], [i64::] the wide-arithmetic ops, [atomic::] the memory fence. Mirrors the dispatch in [type_path_intrinsic_call] / [type_wide_arith_call] (test/method-consistency type-checks each offered call). Empty for an unknown namespace. *) 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() -> ()" ] | _ -> [] (* The intrinsic namespace names ([v128], [i64], [atomic]), for completion of the [ns] before [::]. Exactly the namespaces {!namespace_members} answers. *) let intrinsic_namespaces = [ "v128"; "i64"; "atomic" ] (* Memory access method names. The value width is in the name; signedness and the i32/i64 result come from a surrounding [as iN_s/u] cast (see [to_wasm]). *) let mem_load_result meth : inferred_type option = match meth with | "load8" -> Some Int8 | "load16" -> Some Int16 | "load32" -> Some (Valtype i32_valtype) | "load64" -> Some (Valtype i64_valtype) | "loadf32" -> Some (Valtype f32_valtype) | "loadf64" -> Some (Valtype f64_valtype) | _ -> None let mem_store_method meth = match meth with | "store8" | "store16" | "store32" | "store64" | "storef32" | "storef64" -> true | _ -> false let is_mem_method meth = mem_load_result meth <> None || mem_store_method meth (* Natural alignment (in bytes) of a scalar memory access. *) let mem_natural_align meth = match meth with | "load8" | "store8" -> 1 | "load16" | "store16" -> 2 | "load32" | "store32" | "loadf32" | "storef32" -> 4 | "load64" | "store64" | "loadf64" | "storef64" -> 8 | _ -> 1 (* The unsigned 64-bit value of an integer literal, or [None] if it is not an integer literal or does not fit u64. Parsed quietly (a plain [of_string] would print "Unsigned int overflow" before raising on an out-of-range value). *) let int_literal a = match a.Ast.desc with | Ast.Int s -> (if String.starts_with ~prefix:"0x" s then Int64.of_string_opt s else Int64.of_string_opt ("0u" ^ s)) |> Option.map Wax_utils.Uint64.of_int64 | _ -> None let max_offset_i32_exclusive = Wax_utils.Uint64.of_string "0x1_0000_0000" (* 2^32 *) let max_align = Wax_utils.Uint64.of_int 16 (* Validate the trailing [align]/[offset] literals of a memory access against the access's natural alignment (in bytes) and the address type. Mirrors [Validation.check_memarg]. [align] and [offset] are the corresponding argument expressions, when present. *) let check_memarg ctx ~address_type ~natural ~align ~offset = (let>@ offset = offset in match int_literal offset with | None -> (* The literal does not fit u64, so it cannot be a memory offset. *) Error.memory_immediate_too_large ctx.diagnostics ~location:(snd offset.info) | Some o -> if address_type = `I32 && Wax_utils.Uint64.compare o max_offset_i32_exclusive >= 0 then Error.memory_offset_too_large ctx.diagnostics ~location:(snd offset.info) max_offset_i32_exclusive); let>@ align = align in match int_literal align with | None -> Error.memory_immediate_too_large ctx.diagnostics ~location:(snd align.info) | Some a -> ( if Wax_utils.Uint64.compare a max_align > 0 || Wax_utils.Uint64.to_int a > natural then Error.memory_align_too_large ctx.diagnostics ~location:(snd align.info) natural else match Wax_utils.Uint64.to_int a with | 1 | 2 | 4 | 8 | 16 -> () | _ -> Error.bad_memory_align ctx.diagnostics ~location:(snd align.info) ) (* Split a memory-access call's (typed) argument list into the positional stack operands and the labelled immediates. A positional argument after a labelled one is reported and kept positional, for recovery. *) let split_labelled_args ctx args = let rec split positional labelled = function | [] -> (List.rev positional, List.rev labelled) | a :: rest -> ( match a.Ast.desc with | Ast.Labelled (l, e) -> split positional ((l, e) :: labelled) rest | _ -> if labelled <> [] then Error.positional_argument_after_label ctx.diagnostics ~location:(snd a.Ast.info); split (a :: positional) labelled rest) in split [] [] args (* Check the labelled immediates of a memory access against the label names [allowed] for it — an unknown or duplicate label is reported, and the payload of an accepted label must be an integer literal — and return a by-name lookup of the payloads. *) let take_labels ctx ~allowed labelled = let take (seen, acc) ((l : Ast.ident), e) = if not (List.mem l.desc allowed) then ( Error.unknown_argument_label ctx.diagnostics ~location:l.info ~suggestions: (Wax_utils.Spell_check.f (fun f -> List.iter f allowed) l.desc) l; (seen, acc)) else if StringSet.mem l.desc seen then ( Error.duplicate_argument_label ctx.diagnostics ~location:l.info l; (seen, acc)) else match e.Ast.desc with | Ast.Int _ -> (StringSet.add l.desc seen, (l.desc, e) :: acc) | _ -> (* Report it and drop the pair, so [check_memarg] (which would also fail to read it as a literal) does not report it again. *) Error.constant_expression_required ctx.diagnostics ~location:(snd e.Ast.info); (StringSet.add l.desc seen, acc) in let _, acc = List.fold_left take (StringSet.empty, []) labelled in fun name -> List.assoc_opt name acc (* The [lane]/[align]/[offset] immediates of a memory access with [nstack] stack operands, from the label lookup [find]. Extra positional arguments are the pre-labelled-arguments syntax when they are integer literals — the targeted migration error is reported and they still fill the immediates in the old positional order ([lane,] align, offset), so old code gets exactly one error and no cascade — and an ordinary arity error otherwise. *) let mem_immediates ctx ~location ~example ~nstack ~has_lane find positional = let nargs = List.length positional in let extra = List.filteri (fun k _ -> k >= nstack) positional in (if nargs < nstack then Error.value_count_mismatch ctx.diagnostics ~location ~expected:nstack ~provided:nargs else match extra with | [] -> () | a :: _ -> let nimms = if has_lane then 3 else 2 in if List.length extra <= nimms && List.for_all (fun a -> match a.Ast.desc with Ast.Int _ -> true | _ -> false) extra then Error.positional_memory_immediate ctx.diagnostics ~location:(snd a.Ast.info) ~example else Error.value_count_mismatch ctx.diagnostics ~location ~expected:nstack ~provided:nargs); let pick name k = match find name with Some e -> Some e | None -> List.nth_opt extra k in if has_lane then (pick "lane" 0, pick "align" 1, pick "offset" 2) else (None, pick "align" 0, pick "offset" 1) (* [min(2^bits - 1, 2^(bits - p))]; mirrors [Validation.max_memory_size]. *) let max_memory_size address_type page_size_log2 = let p = match page_size_log2 with None -> 16 | Some p -> p in let bits, index_max = match address_type with | `I32 -> (32, Wax_utils.Uint64.of_string "0xffff_ffff") | `I64 -> (64, Wax_utils.Uint64.of_string "0xffff_ffff_ffff_ffff") in let e = bits - p in let by_page = if e >= 64 then index_max else if e <= 0 then Wax_utils.Uint64.zero else Wax_utils.Uint64.of_int64 (Int64.shift_left 1L e) in if Wax_utils.Uint64.compare index_max by_page <= 0 then index_max else by_page let max_table_size address_type _page_size_log2 = match address_type with | `I32 -> Wax_utils.Uint64.of_string "0xffff_ffff" | `I64 -> Wax_utils.Uint64.of_string "0xffff_ffff_ffff_ffff" (* Validate a memory/table size limit and page size. Mirrors [Validation.limits]. *) let check_limits ctx ~location kind ~ address_type page_size_log2 limits max_fn = (match page_size_log2 with | None | Some (0 | 16) -> () | Some _ -> Error.invalid_page_size ctx.diagnostics ~location); if shared && match limits with Some (_, Some _) -> false | _ -> true then Error.shared_memory_without_max ctx.diagnostics ~location; match limits with | None -> () | Some (mi, ma) -> ( let max = max_fn address_type page_size_log2 in match ma with | None -> if Wax_utils.Uint64.compare mi max > 0 then Error.limit_too_large ctx.diagnostics ~location kind max | Some ma -> if Wax_utils.Uint64.compare mi ma > 0 then Error.limit_mismatch ctx.diagnostics ~location kind; if Wax_utils.Uint64.compare ma max > 0 then Error.limit_too_large ctx.diagnostics ~location kind max) (* Management methods shared by memories and tables, dispatched by the receiver (a memory or table name). *) let is_mgmt_method m = match m with "size" | "grow" | "fill" | "copy" | "init" -> true | _ -> false (* No-argument instruction methods written as a call on a value, [x.sqrt()]: the integer and float unary operators, the [to_bits]/[from_bits] reinterpret casts, and [arr.length()]. They are parsed as [Call (StructGet …, [])] and kept in that form so they print back with their parentheses. *) let is_unary_method m = match m with | "clz" | "ctz" | "popcnt" | "extend8_s" | "extend16_s" | "abs" | "ceil" | "floor" | "trunc" | "nearest" | "sqrt" | "to_bits" | "from_bits" | "length" -> true | _ -> false (* Register (once) a type definition for an anonymous function signature and return the synthetic name standing for it — used when a cast or [call_ref] needs a named [func] type but the source wrote the signature inline. The name is a deterministic mangling of the signature, so identical signatures map to the same definition; [to_wasm] materialises it through the [<..>] synthetic-type path. *) let anon_function_type ctx (sign : functype) = let buf = Buffer.create 32 in let rec vt (t : valtype) = match t with | I32 -> Buffer.add_char buf 'i' | I64 -> Buffer.add_char buf 'I' | F32 -> Buffer.add_char buf 'f' | F64 -> Buffer.add_char buf 'F' | V128 -> Buffer.add_char buf 'v' | Ref { nullable; typ } -> Buffer.add_char buf '&'; if nullable then Buffer.add_char buf '?'; ht typ and ht (h : heaptype) = Buffer.add_string buf (match h with | Func -> "func" | NoFunc -> "nofunc" | Exn -> "exn" | NoExn -> "noexn" | Cont -> "cont" | NoCont -> "nocont" | Extern -> "extern" | NoExtern -> "noextern" | Any -> "any" | Eq -> "eq" | I31 -> "i31" | Struct -> "struct" | Array -> "array" | None_ -> "none" | Type id -> "$" ^ id.desc | Exact id -> "!$" ^ id.desc) in Buffer.add_string buf "<fn:"; Array.iter (fun p -> vt (snd p.desc); Buffer.add_char buf ';') sign.params; Buffer.add_string buf "->"; Array.iter (fun t -> vt t; Buffer.add_char buf ';') sign.results; Buffer.add_char buf '>'; let name = Ast.no_loc (Buffer.contents buf) in (* A pure existence check: [Tbl.exists] would also *report* a spurious "already bound" error on the second cast with the same signature. *) if Tbl.find_opt ctx.type_context.types name = None then ignore (add_type ctx.diagnostics ctx.type_context [| Ast.no_loc ( name, { supertype = None; typ = Func sign; final = true; descriptor = None; describes = None; } ); |] : Wax_wasm.Types.Id.t option); name (* Peel a type-checked [dispatch] lowering (see [Ast_utils.lower_dispatch]) back apart: descend [k] case blocks, collecting each case body, and return the [br_table] index together with the bodies in arm order. Deterministic — the lowering we just type-checked guarantees the shape. *) let extract_dispatch wrapper k = let body_of w = match w.desc with Ast.Block { block; _ } -> block.desc | _ -> assert false in let rec peel block n = if n = 0 then match block with | [ { desc = Ast.Br_table (_, idx); _ } ] -> (idx, []) | _ -> assert false else match block with | head :: tail -> let idx, bodies = peel (body_of head) (n - 1) in (idx, tail :: bodies) | [] -> assert false in peel (body_of wrapper) k (* Rebuild a typed [dispatch] from the type-checked lowering [typed_list] (the outermost case block followed by its trailing body) and the original [arms] (for the labels). Arms are in fall-through order, the reverse of the block nesting (see [Ast_utils.lower_dispatch]), so we peel against the reversed arm list — outermost first — and reverse the result back. Returns the typed index and arms. *) let rebuild_dispatch typed_list arms = match (List.rev arms, typed_list) with | [], [ { desc = Ast.Br_table (_, idx); _ } ] -> (idx, []) | (outer_label, outer_orig) :: rest_arms, outer :: outer_body -> let idx, rest_bodies = extract_dispatch outer (List.length rest_arms) in ( idx, List.rev ((outer_label, { outer_orig with desc = outer_body }) :: List.map2 (fun (l, orig) b -> (l, { orig with desc = b })) rest_arms rest_bodies) ) | _ -> assert false (* Peel a type-checked [while] lowering (see [Ast_utils.lower_while]) back to the typed condition, continue-expression and body, dropping the synthesised loop, [if] and back-edge. Deterministic — the lowering we just type-checked guarantees the shape. [stepped]/[labelled] pick which of the three shapes [lower_while] produced. *) let rebuild_while ~stepped ~labelled typed_list = match typed_list with | [ { desc = Ast.Loop { block = { desc = [ { desc = If { cond; if_block; _ }; _ } ]; _ }; _ }; _; }; ] -> ( match (stepped, labelled) with (* Labelled step: [ block { body } ; step ; br ] *) | true, true -> ( match if_block.desc with | [ { desc = Ast.Block { block = { desc = body; _ }; _ }; _ }; step; { desc = Br _; _ }; ] -> (cond, Some step, body) | _ -> assert false) (* Unlabelled step: [ body… ; step ; br ]; else just [ body… ; br ]. *) | _ -> ( match List.rev if_block.desc with | { desc = Ast.Br _; _ } :: step :: rev_body when stepped -> (cond, Some step, List.rev rev_body) | { desc = Ast.Br _; _ } :: rev_body -> (cond, None, List.rev rev_body) | _ -> assert false)) | _ -> assert false (* Peel a type-checked [match] lowering (see [Ast_utils.lower_match]) apart. The lowering nests one block per arm inside an outer void [escape] block, each wrapping the previous block (its result consumed for the previous arm) then that arm's body; the innermost block holds the threaded test chain and the [escape] branch, and the [default] follows the [escape] block as trailing code. Descending from the [escape] block consumes the arms in reverse source order. Returns the typed arm bodies (paired with the original patterns) and the typed default. *) let rebuild_match typed_list arms = match arms with | [] -> ([], typed_list) | _ -> let block_body blk = match blk.desc with | Ast.Block { block; _ } -> block.desc | _ -> assert false in (* Strip a wrapper block's leading consume of its inner block, returning that inner block and the arm body following it. *) let unwrap pat stmts = match (pat, stmts) with | ( Ast.MatchCast (Some _, _), { desc = Ast.Let (_, Some inner); _ } :: body ) -> (inner, body) | ( Ast.MatchCast (None, _), { desc = Ast.Let ([ (None, _) ], Some inner); _ } :: body ) -> (inner, body) | Ast.MatchNull, inner :: body -> (inner, body) | _ -> assert false in let escape, default = match typed_list with x :: r -> (x, r) | [] -> assert false in let rec peel blk = function | [] -> [] (* [blk] is the innermost block (test chain + escape). *) | (pat, orig) :: rest_rev -> let inner, arm_body = unwrap pat (block_body blk) in (pat, { orig with desc = arm_body }) :: peel inner rest_rev in let arms_rev = peel escape (List.rev arms) in (List.rev arms_rev, default) (* Synthesise the block labels for a [match] lowering: one per arm, then the outer [escape] label ([n+1] in all). The [<…>] form is outside the source identifier grammar, so it cannot capture a user branch. *) let match_labels info arms = List.init (List.length arms + 1) (fun k -> { desc = Printf.sprintf "<match%d>" k; info }) (* The scrutinee's external reference type, used as the arm blocks' result type (a failed test forwards the scrutinee there). [None] if it is not a single reference value. *) let match_scrut_reftype ctx scrut' = match standalone_valtype ctx (expression_type ctx scrut') with | Some { typ = Ref _ as typ; _ } -> Some typ | _ -> None (* Classify how a block's trailing instruction produces the block's value, as [(needs_context, self_resolving)]. [needs_context] is a construction whose type the surrounding context must pin (an ambiguous/named/default struct, an array, a string, a [null] cast, or a [?:] with such a branch): it is checked against the result, so a surrounding result annotation is load-bearing. [self_resolving] resolves its own type (a nested block with no parameters, or a struct named unambiguously by its fields). Anything else — a plain statement, a parameterized block, a scalar [?:] — sets neither; a block then types it on the statement path rather than against its result. *) let rec classify_trailing ctx desc = match desc with | Struct (_, fields) | StructDesc (_, fields) -> ( match infer_struct_by_fields ctx fields with | Some _ -> (false, true) | None -> (true, false)) | StructDefault _ | StructDefaultDesc _ | Array _ | ArrayDefault _ | ArrayFixed _ | ArraySegment _ | String _ -> (true, false) | If { typ; _ } | Block { typ; _ } | Loop { typ; _ } | TryTable { typ; _ } | Try { typ; _ } | TryCatch { typ; _ } -> if Array.length typ.params = 0 then (false, true) else (false, false) | Cast (e, _) -> (is_null_initializer e, false) | Select (_, a, b) -> (* Needs the context iff a branch does; a select is not itself a self-resolving nested block. *) ( fst (classify_trailing ctx a.desc) || fst (classify_trailing ctx b.desc), false ) (* A branch hint is advisory: classify the wrapped branch itself. *) | Hinted (_, i) -> classify_trailing ctx i.desc | _ -> (false, false) (*** The instruction type-checker ***) (* Set to [true] to trace each instruction as it is type-checked. *) let debug = false (* Deliver the values below a [br_if]/[br_on_null] operand to the branch target and return their fall-through result types. Shared by both branches (their only difference is what each appends to the result afterward: [br_on_null] adds the non-null reference). [types] are the delivered values' types and [params] the target's parameter types, both at [loc]. When the target is a block result being inferred, each delivered value is an [exact] exit: its natural type — snapshotted here, before the delivery below pins it — must equal the block's result, not merely be a subtype. A flexible numeric literal among them can be pinned to a non-default width by a downstream op on re-parse, so the annotation is kept ([cs.needed]). On the fall-through the values stay typed as the target's result ([resolve_declared]); when the target has no declared result that cell would leak, so fall back to the operands' own [types]. *) let deliver_to_branch_target ctx ~loc ~types ~params = if Array.length types = Array.length params then Array.iter2 (fun ty param -> match Cell.get param with | Collecting cs -> ( cs.exacts <- (Some loc, Cell.make (Cell.get ty)) :: cs.exacts; match Cell.get ty with | Number | Int | LargeInt | Float -> cs.needed <- true | _ -> ()) | _ -> ()) types params; check_subtypes ctx ~location:loc types params; (* Guard the arity as the snapshot loop does: on a mismatch [check_subtypes] has reported the arity error, so [map2] would only crash on the unequal lengths — fall back to the target's params. *) if Array.exists is_inferring params && Array.length types = Array.length params then Array.map2 (fun ty param -> match Cell.get param with | Collecting { declared = None; _ } -> ty | _ -> resolve_declared param) types params else params let rec instruction ctx i : 'a list -> 'a list * (_, _ array * _) annotated = if debug then Format.eprintf "%a@." Output.instr i; match i.desc with | Block _ | Dispatch _ | Match _ | Loop _ | While _ | If _ | If_annotation _ | TryTable _ | Try _ | TryCatch _ -> type_block_construct ctx i | (Unreachable | Nop) as desc -> (* [unreachable] and [nop] are statements that yield no value; they are only meaningful in statement (top-level) position, where [toplevel_instruction] handles them. Reaching here means one was used where a value is expected, so report it and recover with an unknown value. *) Error.not_an_expression ctx.diagnostics ~location:i.info 0; return_expression i desc (Cell.make Error) | Hole -> let* ty = pop_parameter in return_expression i Hole ty | Null -> return_expression i Null (Cell.make Null) | Get _ | Set _ | Tee _ -> type_variable_access ctx i | Path (ns, name) -> Error.intrinsic_not_called ctx.diagnostics ~location:i.info ns.desc name.desc; return_expression i (Path (ns, name)) (Cell.make Error) | Call _ -> call_instruction ctx i | TailCall (i', l) -> ( (* Type it exactly as the corresponding call — reusing the whole intrinsic dispatch, so [become mem.grow(n)] etc. are accepted like [mem.grow(n)] — then re-tag it as a tail call and require the callee's results to be subtypes of this function's declared results. *) let* typed = call_instruction ctx { i with desc = Call (i', l) } in match typed.desc with | Call (i'', l') -> check_subtypes ctx ~location:i.info (fst typed.info) ctx.return_types; return_statement i (TailCall (i'', l')) [||] | _ -> (* The target types to a non-[Call] only when typing it already failed: a [let*!] on a [None] lookup yields an [Unreachable] node typed [Error] (with the error already reported). A call that type-checks is always a [Call] — an ill-formed or indirect callee too, via [type_indirect_call] — so there is no tail call to form here; propagate the failed result rather than re-reporting or [assert false]. *) return typed) | Labelled (_, e) -> (* A labelled argument is only meaningful as a direct argument of a memory-access call, whose typers consume the labels before typing the rest; reaching here means it appeared anywhere else (a plain call, a non-memory method, …). Recover by typing the payload in place. *) Error.labelled_argument_not_allowed ctx.diagnostics ~location:i.info; instruction ctx e | Char _ as desc -> return_expression i desc i32_cell | Int s as desc -> (* Pick the lattice type from the magnitude (the sign is a separate [Neg], so this is unsigned): a value over the 32-bit range cannot be i32, so it is [LargeInt] (which defaults to i64) rather than the i32-defaulting [Number]; one that does not even fit u64 cannot be any integer type, so it is [Float] (representable only by f32/f64) — using it as an integer is then a clean type error rather than an [Int64.of_string] crash in the encoder. *) let lattice = match if String.starts_with ~prefix:"0x" s then Int64.of_string_opt s else Int64.of_string_opt ("0u" ^ s) with | None -> Float | Some v when Int64.unsigned_compare v 0xFFFFFFFFL > 0 -> LargeInt | Some _ -> Number in return_expression i desc (Cell.make lattice) | Float _ as desc -> return_expression i desc (Cell.make Float) | Cast _ | CastDesc _ | Test _ -> type_cast ctx i | Struct _ | StructDefault _ | StructDesc _ | StructDefaultDesc _ | Array _ | ArrayDefault _ | ArrayFixed _ | ArraySegment _ | String _ -> let* i', _ = check_instruction ctx (Cell.make Unknown) i in return i' | StructGet _ | GetDescriptor _ | StructSet _ | ArrayGet _ | ArraySet _ -> type_aggregate_access ctx i | BinOp _ | UnOp _ -> type_arith ctx i | Let _ -> type_let ctx i | Br _ | Br_if _ | Br_table _ | Br_on_null _ | Br_on_non_null _ | Br_on_cast _ | Br_on_cast_fail _ | Br_on_cast_desc_eq _ | Br_on_cast_desc_eq_fail _ | Hinted _ -> type_branch ctx i | Throw _ | ThrowRef _ -> type_exception ctx i | ContNew _ | ContBind _ | Suspend _ | Resume _ | ResumeThrow _ | ResumeThrowRef _ | Switch _ | On _ -> type_stack_switching ctx i | NonNull i' -> ( let* i' = instruction ctx i' in match Cell.get (expression_type ctx i') with | Valtype { typ = Ref { nullable = _; typ; _ }; internal = Ref { nullable = _; typ = ityp; _ }; anon_comptype; } -> return_expression i (NonNull i') (Cell.make (Valtype { typ = Ref { nullable = false; typ }; internal = Ref { nullable = false; typ = ityp }; anon_comptype; })) | Unknown | UnknownRef | Null -> (* A reference recovered from a polymorphic value — dead/branch code, a value already known only as a reference, or a bare [null]: the non-null bottom reference [UnknownRef], a subtype of every reference type (so it satisfies any consumer). [ref.as_non_null] of a null is valid Wasm (it just always traps), so a bare [null] is accepted here too — like [br_on_null] and [ref.is_null] on a bottom reference. *) return_expression i (NonNull i') (Cell.make UnknownRef) | Error -> return_expression i (NonNull i') (expression_type ctx i') | _ -> Error.expected_ref ctx.diagnostics ~location:(snd i'.info); return_expression i (NonNull i') (Cell.make Error)) | Return i' -> let* i' = match i' with | Some i' -> let* i' = check_against ctx ctx.return_types i' in return (Some i') | None -> if ctx.return_types <> [||] then Error.value_count_mismatch ctx.diagnostics ~location:i.info ~expected:(Array.length ctx.return_types) ~provided:0; return None in return_statement i (Return i') [||] | Sequence l -> let* l' = instructions ctx l in return_statement i (Sequence l') (Array.map (expression_type ctx) (Array.of_list l')) | Select (i1, i2, i3) -> let* i2' = instruction ctx i2 in let* i3' = instruction ctx i3 in let* i1' = instruction ctx i1 in check_type ctx i1' i32_cell; let*! ty = let ty1 = expression_type ctx i2' in let ty2 = expression_type ctx i3' in (* A select's two branch values join exactly as the values reaching a block's exit do; reuse [join_value_types] and, on no common type, report it against the select. *) match join_value_types ctx ty1 ty2 with | Some _ as r -> r | None -> Error.select_type_mismatch ctx.diagnostics ~location:i.info ~loc1:i2.info ~loc2:i3.info ty1 ty2; None in return_expression i (Select (i1', i2', i3')) ty and descriptor_target ctx ~location ~nullable d = (* The custom-descriptors casts/branches write only the descriptor operand [d]; the target reference type is recovered from it. [d : (ref null? (exact_1 Y))] with [Y describes X], so the target is [(ref nullable (exact_1 X))]: the described type [X] and the exactness [exact_1] both come from [d], and only the result nullability is written (the leading [?]). Returns the typed operand and the recovered target reftype ([None] once an error is reported — [d] is not a reference to a descriptor type). *) let* d' = instruction ctx d in let target = match Cell.get (expression_type ctx d') with | Valtype { typ = Ref { typ = (Type y | Exact y) as yt; _ }; _ } -> ( match Tbl.find_opt ctx.type_context.types y with | Some (_, { describes = Some x; _ }) -> let exact = match yt with Exact _ -> true | _ -> false in Some { nullable; typ = (if exact then Exact x else Type x) } | _ -> None) | _ -> None in (match target with | Some _ -> () | None -> Error.type_without_descriptor ctx.diagnostics ~location); return (d', target) and type_branch ctx i = (* The branch instructions: [br], [br_if], [br_table] and the [br_on_*] family, each checking its operand(s) against the target label's parameter types. *) match i.desc with | Br (label, i') -> (* Sequence of instructions *) let params = branch_target ctx label in let* i' = match i' with | Some i' -> let* i' = check_against ctx params i' in return (Some i') | None -> if params <> [||] then Error.value_count_mismatch ctx.diagnostics ~location:i.info ~expected:(Array.length params) ~provided:0; return None in return_statement i (Br (label, i')) [||] | Br_if (label, i') -> let* i' = instruction ctx i' in let loc = snd i'.info in let ty, types = split_on_last_type ctx ~location:loc i' in check_subtype ctx ~location:loc ty i32_cell; let params = branch_target ctx label in let result = deliver_to_branch_target ctx ~loc ~types ~params in return_statement i (Br_if (label, i')) result (* Branch-hinting proposal: the hint is advisory; type the wrapped branch and carry its result through unchanged. *) | Hinted (h, inner) -> let* inner = instruction ctx inner in return_statement i (Hinted (h, inner)) (fst inner.info) | Br_table (labels, i') -> let* i' = instruction ctx i' in let loc = snd i'.info in let ty, types = split_on_last_type ctx ~location:loc i' in check_subtype ctx ~location:loc ty i32_cell; let len = Array.length (branch_target ctx (List.hd labels)) in List.iter (fun label -> let params = branch_target ctx label in if Array.length params <> len then Error.value_count_mismatch ctx.diagnostics ~location:i.info ~expected:len ~provided:(Array.length params); check_subtypes ctx ~location:loc types params) labels; return_statement i (Br_table (labels, i')) [||] | Br_on_null (idx, i') -> let* i' = instruction ctx i' in let typ, types = split_on_last_type ctx ~location:(snd i'.info) i' in let typ = Cell.get typ in let typ' = match typ with | Valtype { typ = Ref { nullable = _; typ; _ }; internal = Ref { nullable = _; typ = ityp; _ }; anon_comptype; } -> Cell.make (Valtype { typ = Ref { nullable = false; typ }; internal = Ref { nullable = false; typ = ityp }; anon_comptype; }) | Unknown | UnknownRef | Null -> (* A reference recovered from a polymorphic value, or a bare [null] (always null, so the branch is always taken): the non-null fall-through value is the bottom reference type [UnknownRef]. Unlike [null!], this is a well-defined branch, not a contradiction — so a bare null is accepted here. *) Cell.make UnknownRef | Error -> Cell.make Error | _ -> Error.expected_ref ctx.diagnostics ~location:(snd i'.info); Cell.make Error in let loc = snd i'.info in let params = branch_target ctx idx in (* Like [br_if]: the values below the reference are delivered to the target and continue on the non-null fall-through, and the recovered non-null reference is appended. *) let result = deliver_to_branch_target ctx ~loc ~types ~params in return_statement i (Br_on_null (idx, i')) (Array.append result [| typ' |]) | Br_on_non_null (idx, i') -> let* i' = instruction ctx i' in let params = branch_target ctx idx in let typ, types = split_on_last_type ctx ~location:(snd i'.info) i' in let typ = Cell.get typ in (match typ with | Unknown | Error | UnknownRef -> () | Valtype { typ = Ref { nullable = _; typ; _ }; internal = Ref { nullable = _; typ = ityp; _ }; anon_comptype; } -> check_subtypes ctx ~location:(snd i'.info) (Array.append types [| Cell.make (Valtype { typ = Ref { nullable = false; typ }; internal = Ref { nullable = false; typ = ityp }; anon_comptype; }); |]) params | Null -> (* A bare [null] is always null, so the branch is never taken; the popped value's non-null form is the [any]-hierarchy bottom [&none]. (A non-[any] null keeps its [as &?H] annotation in [type_cast], so only [any]-hierarchy bare nulls reach here.) *) check_subtypes ctx ~location:(snd i'.info) (Array.append types [| Cell.make (Valtype { typ = Ref { nullable = false; typ = None_ }; internal = Ref { nullable = false; typ = None_ }; anon_comptype = None; }); |]) params | _ -> Error.expected_ref ctx.diagnostics ~location:(snd i'.info)); return_statement i (Br_on_non_null (idx, i')) (* The branch delivers [types ++ [ref]] to the target and the fall-through keeps all but that trailing ref. A target with no params is malformed (already reported by [check_subtypes] above); [max 0] avoids [Array.sub _ 0 (-1)] and leaves an empty fall-through. *) (Array.sub params 0 (max 0 (Array.length params - 1))) | Br_on_cast (label, ty, i') -> let* i' = instruction ctx i' in if is_cont_heaptype ctx ty.typ then Error.invalid_cast_type ctx.diagnostics ~location:i.info; let typ', types = split_on_last_type ctx ~location:(snd i'.info) i' in let params = branch_target ctx label in (let>@ ityp = reftype ctx.diagnostics ctx.type_context ty in let typ = Cell.make (Valtype { typ = Ref ty; internal = Ref ityp; anon_comptype = None }) in check_subtypes ctx ~location:(snd i'.info) (Array.append types [| typ |]) params); (* On success the branch carries the cast target [ty] (via [params]); the fall-through keeps the value at its residual type [typ2] ([ty'] minus [ty]). [typ1] re-types the operand as the lub of its type and [ty]. *) let*! typ1, typ2 = match Cell.get typ' with | Valtype { typ = Ref ty'; _ } -> (* The fall-through residual must be [diff(source, ty)] for the source [to_wasm] emits — [lub(ty, operand)] — not the operand's own [ty']; see the matching note in [Br_on_cast_fail]. A no-op when [ty <: ty'] (a plain cast), where the lub is [ty']. A failed [val_lub] means [ty] and the operand are in different hierarchies — an invalid cast; report it and recover with the cast target. *) let ty1 = match val_lub ctx (Ref ty) (Ref ty') with | Some t -> t | None -> Error.invalid_cast ctx.diagnostics ~location:(snd i'.info) typ'; Ref ty in let*@ typ1 = internalize ctx ty1 in let+@ typ2 = internalize ctx (match ty1 with | Ref lub -> Ref (diff_ref_type lub ty) | _ -> Ref (diff_ref_type ty' ty)) in (typ1, typ2) (* A polymorphic operand (unreachable / branch code): [to_wasm] recovers the source type as the cast target [ty], so the fall-through is [ty \ ty] (as the [Valtype] case computes with the operand's own type) — a concrete reference matching the emitted instruction. Not [Unknown]: the residual is always a reference, and not the bottom [UnknownRef] either, or a chained [br_on_cast] would recover a source that mismatches this one. *) | Unknown | UnknownRef -> let+@ typ2 = internalize ctx (Ref (diff_ref_type ty ty)) in (typ', typ2) | Error -> Some (typ', Cell.make Error) | Null -> (* A bare [null] operand carries no type wider than the cast target, so [to_wasm] reconstructs the source as [ty] made nullable and emits [br_on_cast (ref null H) ty]; the residual must be [diff(source, ty)] to match what wasm validation derives from those immediates. A null always matches a nullable [ty] and falls through, so the residual is unreachable at runtime, but wasm types it from the immediates, not the operand's nullness — typing it as the [(ref none)] bottom instead would accept programs whose emitted wasm the validator rejects. *) let source = { ty with nullable = true } in let*@ typ1 = internalize ctx (Ref source) in let+@ typ2 = internalize ctx (Ref (diff_ref_type source ty)) in (typ1, typ2) | _ -> Error.expected_ref ctx.diagnostics ~location:(snd i'.info); None in return_statement i (Br_on_cast ( label, ty, { i' with info = (Array.append types [| typ1 |], snd i'.info) } )) (Array.append (Array.sub params 0 (max 0 (Array.length params - 1))) [| typ2 |]) | Br_on_cast_fail (label, ty, i') -> let* i' = instruction ctx i' in if is_cont_heaptype ctx ty.typ then Error.invalid_cast_type ctx.diagnostics ~location:i.info; let typ', types = split_on_last_type ctx ~location:(snd i'.info) i' in let*! ityp = reftype ctx.diagnostics ctx.type_context ty in (* [br_on_cast_fail] branches when the cast fails, carrying the residual type [typ2] ([ty'] minus [ty]) to the label; the fall-through (cast succeeded) carries the cast target [ty]. [typ1] re-types the operand as the lub of its type and [ty]. *) let*! typ1, typ2 = match Cell.get typ' with | Valtype { typ = Ref ty'; _ } -> (* [to_wasm] emits the source as [lub(ty, operand)] — widened so the target [ty] is a subtype of it — and wasm then derives the branch residual as [diff(source, ty)]. Type the residual from that same [lub] source, not the operand's own [ty']: otherwise, when the operand and target are unrelated (a chained cast whose source widens to their common supertype), the residual the typer feeds the label's join is narrower than the one the emitted instruction delivers, and the block infers too narrow to accept it. When [ty <: ty'] (a plain cast) the lub is [ty'] and this is unchanged. A failed [val_lub] means different hierarchies — an invalid cast; report it and recover with the cast target. *) let ty1 = match val_lub ctx (Ref ty) (Ref ty') with | Some t -> t | None -> Error.invalid_cast ctx.diagnostics ~location:(snd i'.info) typ'; Ref ty in let*@ typ1 = internalize ctx ty1 in let+@ typ2 = internalize ctx (match ty1 with | Ref lub -> Ref (diff_ref_type lub ty) | _ -> Ref (diff_ref_type ty' ty)) in (typ1, typ2) (* A polymorphic operand: as for [br_on_cast] above, [to_wasm] recovers the source as the cast target [ty], so the residual sent to the branch is [ty \ ty] — a concrete reference matching the emitted instruction, not [Unknown] (the residual is always a reference) nor the bottom [UnknownRef] (a chained cast would then recover a mismatching source). *) | Unknown | UnknownRef -> let+@ typ2 = internalize ctx (Ref (diff_ref_type ty ty)) in (typ', typ2) | Error -> Some (typ', Cell.make Error) | Null -> (* A bare [null] operand, as in [br_on_cast] above: [to_wasm] emits the source as [ty] made nullable, so the residual sent to the branch is [diff(source, ty)] — mirroring wasm validation rather than the narrower [(ref none)] bottom, which would let programs through whose emitted wasm the validator rejects. *) let source = { ty with nullable = true } in let*@ typ1 = internalize ctx (Ref source) in let+@ typ2 = internalize ctx (Ref (diff_ref_type source ty)) in (typ1, typ2) | _ -> Error.expected_ref ctx.diagnostics ~location:(snd i'.info); None in let params = branch_target ctx label in check_subtypes ctx ~location:(snd i'.info) (Array.append types [| typ2 |]) params; let typ = Cell.make (Valtype { typ = Ref ty; internal = Ref ityp; anon_comptype = None }) in return_statement i (Br_on_cast_fail ( label, ty, { i' with info = (Array.append types [| typ1 |], snd i'.info) } )) (Array.append (Array.sub params 0 (max 0 (Array.length params - 1))) [| typ |]) | Br_on_cast_desc_eq (label, nullable, i', d) -> (* As [br_on_cast]; the target [ty] is recovered from the descriptor operand [d] ([d : (ref null? (exact_1 Y))], [Y describes X] ⇒ target [(ref nullable (exact_1 X))]). *) let* d, target = descriptor_target ctx ~location:i.info ~nullable d in let* i' = instruction ctx i' in let*! ty = target in if is_cont_heaptype ctx ty.typ then Error.invalid_cast_type ctx.diagnostics ~location:i.info; let typ', types = split_on_last_type ctx ~location:(snd i'.info) i' in let params = branch_target ctx label in (let>@ ityp = reftype ctx.diagnostics ctx.type_context ty in let typ = Cell.make (Valtype { typ = Ref ty; internal = Ref ityp; anon_comptype = None }) in check_subtypes ctx ~location:(snd i'.info) (Array.append types [| typ |]) params); let*! typ1, typ2 = match Cell.get typ' with | Valtype { typ = Ref ty'; _ } -> (* The operand keeps its own type [typ'] (the descriptor already fixes the target's exactness); [ty] and the operand must share a supertype — a failed [val_lub] means different hierarchies. *) if Option.is_none (val_lub ctx (Ref ty) (Ref ty')) then Error.invalid_cast ctx.diagnostics ~location:(snd i'.info) typ'; let+@ typ2 = internalize ctx (Ref (diff_ref_type ty' ty)) in (typ', typ2) | Unknown | UnknownRef -> let+@ typ2 = internalize ctx (Ref (diff_ref_type ty ty)) in (typ', typ2) | Error -> Some (typ', Cell.make Error) | _ -> Error.expected_ref ctx.diagnostics ~location:(snd i'.info); None in return_statement i (Br_on_cast_desc_eq ( label, nullable, { i' with info = (Array.append types [| typ1 |], snd i'.info) }, d )) (Array.append (Array.sub params 0 (max 0 (Array.length params - 1))) [| typ2 |]) | Br_on_cast_desc_eq_fail (label, nullable, i', d) -> let* d, target = descriptor_target ctx ~location:i.info ~nullable d in let* i' = instruction ctx i' in let*! ty = target in if is_cont_heaptype ctx ty.typ then Error.invalid_cast_type ctx.diagnostics ~location:i.info; let typ', types = split_on_last_type ctx ~location:(snd i'.info) i' in let*! ityp = reftype ctx.diagnostics ctx.type_context ty in let*! typ1, typ2 = match Cell.get typ' with | Valtype { typ = Ref ty'; _ } -> (* See [Br_on_cast_desc_eq]. *) if Option.is_none (val_lub ctx (Ref ty) (Ref ty')) then Error.invalid_cast ctx.diagnostics ~location:(snd i'.info) typ'; let+@ typ2 = internalize ctx (Ref (diff_ref_type ty' ty)) in (typ', typ2) | Unknown | UnknownRef -> let+@ typ2 = internalize ctx (Ref (diff_ref_type ty ty)) in (typ', typ2) | Error -> Some (typ', Cell.make Error) | _ -> Error.expected_ref ctx.diagnostics ~location:(snd i'.info); None in let params = branch_target ctx label in check_subtypes ctx ~location:(snd i'.info) (Array.append types [| typ2 |]) params; let typ = Cell.make (Valtype { typ = Ref ty; internal = Ref ityp; anon_comptype = None }) in return_statement i (Br_on_cast_desc_eq_fail ( label, nullable, { i' with info = (Array.append types [| typ1 |], snd i'.info) }, d )) (Array.append (Array.sub params 0 (max 0 (Array.length params - 1))) [| typ |]) | _ -> assert false (* only invoked on a branch instruction *) and type_stack_switching ctx i = (* The typed-continuation / stack-switching instructions: cont.new, cont.bind, suspend, resume(.throw), and switch. Two surfaces reach here: the parsed method / constructor forms ([c.resume(x) on […]], [k::new(f)]) arrive as [Call]/[On] nodes routed from [call_instruction] / the dispatch and are resolved into the dedicated nodes below (their type immediates inferred from the receiver, on the call_ref model); the dedicated nodes themselves arrive when re-typing a decompiled module. The [finish_*] helpers hold the shared checks. *) match i.desc with | ContNew (ct, f) -> let* f' = instruction ctx f in finish_cont_new ctx i ct f' | ContBind (src, dst, l) -> let* l' = instructions ctx l in finish_cont_bind ctx i src dst l' | On (inner, handlers) -> type_on_clause ctx i inner handlers | _ -> type_stack_switching_ops ctx i and finish_cont_new ctx i ct f' = (let>@ ft = lookup_cont_inner ctx ct in let>@ fref = internalize ctx (Ref { nullable = true; typ = Type ft }) in check_type ctx f' fref); (* [cont.new] allocates a fresh continuation of exactly [ct], so its result is an exact reference. As for [struct.new]/[array.new], we type it exact only under custom-descriptors (exact reference types are part of that proposal); the Wasm validator always tracks it exact internally. *) let want_exact = Wax_utils.Feature.is_enabled ctx.type_context.features Wax_utils.Feature.Custom_descriptors in let*! cref = internalize ctx (Ref { nullable = false; typ = (if want_exact then Exact ct else Type ct) }) in return_expression i (ContNew (ct, f')) cref and finish_cont_bind ctx i src dst l' = let*! src_inner = lookup_cont_inner ctx src in let*! src_sig = lookup_func_type ctx src_inner in let*! dst_inner = lookup_cont_inner ctx dst in let*! dst_sig = lookup_func_type ctx dst_inner in let np = Array.length src_sig.params - Array.length dst_sig.params in (* The destination continuation must be [src] with its leading [np] parameters bound away: the unbound tail and the results must match. Mirrors [Validation]'s [ContBind] check. *) (if np < 0 then Error.stack_switching_type_mismatch ctx.diagnostics ~location:i.info ~descr: "the resulting continuation takes more parameters than the original \ one" else let>@ src_ft = internal_functype ctx src_sig in let>@ dst_ft = internal_functype ctx dst_sig in let ts12 = Array.sub src_ft.params np (Array.length dst_ft.params) in if not (functype_matches (subtyping_info ctx) { params = ts12; results = src_ft.results } dst_ft) then Error.stack_switching_type_mismatch ctx.diagnostics ~location:i.info ~descr: "the bound parameters and results do not match between the two \ continuation types"); (let n = max 0 np in let>@ bound = array_map_opt (fun p -> internalize ctx (snd p.desc)) (Array.sub src_sig.params 0 n) in let>@ srcref = internalize ctx (Ref { nullable = true; typ = Type src }) in check_operands ctx ~location:i.info l' (Array.append bound [| srcref |])); (* Like [cont.new], [cont.bind] yields a fresh continuation of exactly [dst], so an exact reference (gated on custom-descriptors as above). *) let want_exact = Wax_utils.Feature.is_enabled ctx.type_context.features Wax_utils.Feature.Custom_descriptors in let*! dstref = internalize ctx (Ref { nullable = false; typ = (if want_exact then Exact dst else Type dst); }) in return_expression i (ContBind (src, dst, l')) dstref and type_stack_switching_ops ctx i = match i.desc with | Suspend (tag, l) -> let* l' = instructions ctx l in let*! { params; results } = Tbl.find ctx.diagnostics ctx.tags tag in (let>@ ptypes = array_map_opt (fun p -> internalize ctx (snd p.desc)) params in check_operands ctx ~location:i.info l' ptypes); let*! rtypes = array_map_opt (internalize ctx) results in return_statement i (Suspend (tag, l')) rtypes | Resume (ct, handlers, l) -> let* l' = instructions ctx l in finish_resume ctx i ct handlers l' | ResumeThrow (ct, tag, handlers, l) -> let* l' = instructions ctx l in finish_resume_throw ctx i ct tag handlers l' | ResumeThrowRef (ct, handlers, l) -> let* l' = instructions ctx l in finish_resume_throw_ref ctx i ct handlers l' | Switch (ct, tag, l) -> let* l' = instructions ctx l in finish_switch ctx i ct tag l' | _ -> assert false (* only invoked on a stack-switching instruction *) and finish_resume ctx i ct handlers l' = let*! inner = lookup_cont_inner ctx ct in let*! sg = lookup_func_type ctx inner in (let>@ ptypes = array_map_opt (fun p -> internalize ctx (snd p.desc)) sg.params in let>@ cref = internalize ctx (Ref { nullable = true; typ = Type ct }) in check_operands ctx ~location:i.info l' (Array.append ptypes [| cref |])); check_resume_handlers ctx ~result_types:sg.results handlers; let*! rtypes = array_map_opt (internalize ctx) sg.results in return_statement i (Resume (ct, handlers, l')) rtypes and finish_resume_throw ctx i ct tag handlers l' = let*! inner = lookup_cont_inner ctx ct in let*! sg = lookup_func_type ctx inner in let*! { params = tparams; _ } = Tbl.find ctx.diagnostics ctx.tags tag in (let>@ ptypes = array_map_opt (fun p -> internalize ctx (snd p.desc)) tparams in let>@ cref = internalize ctx (Ref { nullable = true; typ = Type ct }) in check_operands ctx ~location:i.info l' (Array.append ptypes [| cref |])); check_resume_handlers ctx ~result_types:sg.results handlers; let*! rtypes = array_map_opt (internalize ctx) sg.results in return_statement i (ResumeThrow (ct, tag, handlers, l')) rtypes and finish_resume_throw_ref ctx i ct handlers l' = let*! inner = lookup_cont_inner ctx ct in let*! sg = lookup_func_type ctx inner in (let>@ exnref = internalize ctx (Ref { nullable = true; typ = Exn }) in let>@ cref = internalize ctx (Ref { nullable = true; typ = Type ct }) in check_operands ctx ~location:i.info l' [| exnref; cref |]); check_resume_handlers ctx ~result_types:sg.results handlers; let*! rtypes = array_map_opt (internalize ctx) sg.results in return_statement i (ResumeThrowRef (ct, handlers, l')) rtypes and finish_switch ctx i ct tag l' = let*! inner = lookup_cont_inner ctx ct in let*! sg = lookup_func_type ctx inner in let tag_sig = Tbl.find ctx.diagnostics ctx.tags tag in let np = Array.length sg.params in (if np >= 1 then let>@ lead = array_map_opt (fun p -> internalize ctx (snd p.desc)) (Array.sub sg.params 0 (np - 1)) in let>@ cref = internalize ctx (Ref { nullable = true; typ = Type ct }) in check_operands ctx ~location:i.info l' (Array.append lead [| cref |])); (* The last parameter of [ct]'s function type must itself be a continuation type; the result is that inner continuation's parameter types. *) let inner_sg = match if np = 0 then None else Some (snd sg.params.(np - 1).desc) with | Some (Ref { typ = Type ct2 | Exact ct2; _ }) -> let*@ inner2 = lookup_cont_inner ctx ct2 in lookup_func_type ctx inner2 | _ -> None in (* The 'switch' tag must take no parameters and its results must match both continuation types. Mirrors [Validation]'s [Switch] check. *) let to_internal arr = array_map_opt (fun typ -> let+@ iv = internalize_valtype ctx typ in iv.internal) arr in let result_subtype a b = match (to_internal a, to_internal b) with | Some a, Some b -> Array.length a = Array.length b && Array.for_all Fun.id (Array.mapi (fun i t -> Wax_wasm.Types.val_subtype (subtyping_info ctx) t b.(i)) a) | _ -> true in (match inner_sg with | None -> Error.stack_switching_type_mismatch ctx.diagnostics ~location:i.info ~descr: "the continuation's last parameter must itself be a continuation type" | Some inner_sg -> ( match tag_sig with | None -> () | Some { params = tparams; results = tresults } -> if Array.length tparams <> 0 || (not (result_subtype sg.results tresults)) || not (result_subtype tresults inner_sg.results) then Error.stack_switching_type_mismatch ctx.diagnostics ~location:i.info ~descr: "the 'switch' tag must take no parameters and its results must \ match the two continuation types")); let result_params = match inner_sg with Some s2 -> s2.params | None -> [||] in let*! rtypes = array_map_opt (fun p -> internalize ctx (snd p.desc)) result_params in return_statement i (Switch (ct, tag, l')) rtypes (* The declared continuation type of a stack-switching receiver (or of [bind]'s continuation operand): the type immediate, inferred from the operand's static type on the call_ref model. An abstract [&cont] cannot supply it and must be cast to a declared type first, as an abstract function reference must be at a call. [None] after reporting. *) and cont_operand_type ctx e' = match Cell.get (expression_type ctx e') with | Valtype { typ = Ref { typ = Type ct | Exact ct; _ }; _ } -> ( match Tbl.find_opt ctx.type_context.types ct with | Some (_, { typ = Cont _; _ }) -> Some ct | _ -> Error.expected_cont_type ctx.diagnostics ~location:(snd e'.info); None) | Valtype { typ = Ref { typ = Cont | NoCont; _ }; _ } -> Error.abstract_cont_receiver ctx.diagnostics ~location:(snd e'.info); None | Error -> None (* the operand already failed to type; recover silently *) | Unknown | UnknownRef -> Error.unknown_operand_type ctx.diagnostics ~location:(snd e'.info); None | _ -> Error.expected_cont_type ctx.diagnostics ~location:(snd e'.info); None (* A stack-switching method call [c.resume(x)], [c.resume_throw(exc(p))], [c.resume_throw_ref(e)], [c.switch(x, tag: t)], with [handlers] from a wrapping [on] clause. The receiver compiles last (Wasm stack order, as for call_ref), so the arguments are typed first and the receiver appended. *) and type_cont_method_call ctx i ~handlers recv meth args = (* [switch]'s enabling tag is a required labelled immediate, extracted before the arguments are typed (it names a tag, not a value); [resume_throw]'s tag is invoked with its payload, as in [throw exc(p)] — the callee is resolved in the tag namespace, so a function of the same name does not conflict. *) let tag, args = match meth.desc with | "switch" -> ( let , rest = List.partition_map (fun a -> match a.Ast.desc with | Ast.Labelled ({ desc = "tag"; _ }, { desc = Get t; _ }) -> Either.Left t | _ -> Either.Right a) args in match tags with | [ t ] -> (Some t, rest) | t :: dup :: _ -> Error.duplicate_argument_label ctx.diagnostics ~location:dup.info { dup with desc = "tag" }; (Some t, rest) | [] -> Error.switch_needs_tag ctx.diagnostics ~location:i.info; (None, rest)) | "resume_throw" -> ( match args with | [ { desc = Call ({ desc = Get t; _ }, payload); _ } ] -> (Some t, payload) | _ -> Error.resume_throw_needs_tag ctx.diagnostics ~location:i.info; (None, args)) | _ -> (None, args) in let* args' = instructions ctx args in let* recv' = instruction ctx recv in let l' = args' @ [ recv' ] in let*! ct = cont_operand_type ctx recv' in match meth.desc with | "resume" -> finish_resume ctx i ct handlers l' | "resume_throw" -> let*! tag = tag in finish_resume_throw ctx i ct tag handlers l' | "resume_throw_ref" -> finish_resume_throw_ref ctx i ct handlers l' | _ -> let*! tag = tag in finish_switch ctx i ct tag l' (* The postfix handler clause [e on [t -> 'l, …]]: fold the handlers into the resume-family call it wraps; any other wrapped expression is an error (the grammar attaches the clause to any expression). *) and type_on_clause ctx i inner handlers = match inner.desc with | Call ( { desc = StructGet ( recv, ({ desc = "resume" | "resume_throw" | "resume_throw_ref"; _ } as meth) ); _; }, args ) -> type_cont_method_call ctx i ~handlers recv meth args | _ -> Error.on_clause_context ctx.diagnostics ~location:i.info; (* Recover by typing the wrapped expression and carrying its result. *) let* inner' = instruction ctx inner in return_statement i (On (inner', handlers)) (fst inner'.info) (* The [T::new] / [T::bind] constructors of a declared continuation type: the [T::] namespace constructs a [&T]. [bind]'s source type — the type immediate — is inferred from its continuation operand (the last argument), as the method receivers' types are. *) and type_cont_construct_call ctx i func ns name args = let* args' = instructions ctx args in let recover () = return_statement i (Call ({ desc = Path (ns, name); info = ([||], func.info) }, args')) [| Cell.make Error |] in match name.desc with | "new" -> ( match args' with | [ f' ] -> finish_cont_new ctx i ns f' | _ -> Error.value_count_mismatch ctx.diagnostics ~location:i.info ~expected:1 ~provided:(List.length args'); recover ()) | "bind" -> ( match List.rev args' with | c' :: _ -> let*! src = cont_operand_type ctx c' in finish_cont_bind ctx i src ns args' | [] -> Error.value_count_mismatch ctx.diagnostics ~location:i.info ~expected:1 ~provided:0; recover ()) | _ -> Error.unknown_intrinsic ctx.diagnostics ~location:i.info ns.desc name.desc; recover () and type_arith ctx i = (* Arithmetic, comparison and conversion operators in binary ([a + b]) and unary ([-a], [a as i64]) form. *) match i.desc with | BinOp (op, i1, i2) -> let* i1' = instruction ctx i1 in let* i2' = instruction ctx i2 in let ty = let ty1 = expression_type ctx i1' in let ty2 = expression_type ctx i2' in let mismatch () = (* Point at the operator itself, not the whole expression. *) Error.binop_type_mismatch ctx.diagnostics ~location:op.info ty1 ty2 in (* Split on how many operands are still abstract ([Unknown]/[Error]). Both abstract: unify the two cells to the operator's default type so a result is still produced. One abstract: unify it onto the known operand's type and validate that. Both concrete (the arms below): just validate. The abstract arms unify operand cells in place. *) match (Cell.get ty1, Cell.get ty2) with | (Unknown | Error), (Unknown | Error) -> ( match op.desc with | Add | Sub | Mul -> Cell.merge ty1 ty2 Number; ty1 | Div (Some _) | Rem _ | And | Or | Xor | Shl | Shr _ -> Cell.merge ty1 ty2 Int; ty1 | Lt (Some _) | Gt (Some _) | Le (Some _) | Ge (Some _) | Eq | Ne -> Cell.merge ty1 ty2 (Valtype i32_valtype); i32_cell | Div None -> Cell.merge ty1 ty2 Float; ty1 | Lt None | Gt None | Le None | Ge None -> Cell.merge ty1 ty2 (Valtype f32_valtype); i32_cell) | typ, (Unknown | Error) | (Unknown | Error), typ -> ( Cell.merge ty1 ty2 typ; match op.desc with | Eq | Ne -> (* [==]/[!=] on references are both [ref.eq] (the latter negated in lowering), so they take the same operands: [eqref] or a number. *) (match typ with | Valtype { internal = Ref _ as ty; _ } -> if not (Wax_wasm.Types.val_subtype (subtyping_info ctx) ty (Ref { nullable = true; typ = Eq })) then mismatch () | Null -> Cell.set ty1 (Valtype { typ = Ref { nullable = true; typ = Eq }; internal = Ref { nullable = true; typ = Eq }; anon_comptype = None; }) | Valtype { internal = I32; _ } | Valtype { internal = I64; _ } | Valtype { internal = F32; _ } | Valtype { internal = F64; _ } | Number | Int | LargeInt | Float -> () (* The bottom reference is [eqref], so [ref.eq] accepts it. *) | UnknownRef -> () | _ -> mismatch ()); i32_cell | Add | Sub | Mul -> (match typ with | Valtype { internal = I32; _ } | Valtype { internal = I64; _ } | Valtype { internal = F32; _ } | Valtype { internal = F64; _ } | Number | Int | LargeInt | Float -> () | _ -> mismatch ()); ty1 | Div (Some _) | Rem _ | And | Or | Xor | Shl | Shr _ -> check_int_bin_op ctx ~location:op.info ty1 ty2 | Div None -> check_float_bin_op ctx ~location:op.info ty1 ty2 | Lt (Some _) | Gt (Some _) | Le (Some _) | Ge (Some _) -> (match typ with | Valtype { internal = I32; _ } | Valtype { internal = I64; _ } | Int -> () | Number -> Cell.set ty1 Int (* A signed integer comparison forces a [LargeInt] operand to i64 (it cannot be i32, and this is an integer op), pinning it rather than leaving it float-capable. *) | LargeInt -> Cell.set ty1 (Valtype i64_valtype) | _ -> mismatch ()); i32_cell | Lt None | Gt None | Le None | Ge None -> (match typ with | Valtype { internal = F32; _ } | Valtype { internal = F64; _ } | Float -> () (* A float comparison takes a [LargeInt] operand as a float (it is a numeric literal, so float-capable), like a [Number]. *) | Number | LargeInt -> Cell.set ty1 Float | _ -> mismatch ()); i32_cell) | _ -> ( match op.desc with | Eq | Ne -> (match (Cell.get ty1, Cell.get ty2) with | ( Valtype { internal = Ref _ as ty1; _ }, Valtype { internal = Ref _ as ty2; _ } ) -> if not (Wax_wasm.Types.val_subtype (subtyping_info ctx) ty1 (Ref { nullable = true; typ = Eq }) && Wax_wasm.Types.val_subtype (subtyping_info ctx) ty2 (Ref { nullable = true; typ = Eq })) then mismatch () | Valtype { internal = Ref _ as typ1; _ }, Null -> if not (Wax_wasm.Types.val_subtype (subtyping_info ctx) typ1 (Ref { nullable = true; typ = Eq })) then mismatch (); Cell.merge ty1 ty2 (Cell.get ty2) | Null, Valtype { internal = Ref _ as typ2; _ } -> if not (Wax_wasm.Types.val_subtype (subtyping_info ctx) typ2 (Ref { nullable = true; typ = Eq })) then mismatch (); Cell.merge ty1 ty2 (Cell.get ty2) (* [ref.eq] needs both operands [eqref]; the bottom reference [UnknownRef] always is, so only a concrete side is checked. *) | Valtype { internal = Ref _ as ty; _ }, UnknownRef | UnknownRef, Valtype { internal = Ref _ as ty; _ } -> if not (Wax_wasm.Types.val_subtype (subtyping_info ctx) ty (Ref { nullable = true; typ = Eq })) then mismatch () | UnknownRef, (UnknownRef | Null) | Null, UnknownRef -> () (* Any non-reference operands are the ordinary numeric comparison. [check_num_concrete] reports the same mismatch otherwise. *) | _ -> check_num_concrete ctx ~location:op.info ty1 ty2); i32_cell | Add | Sub | Mul -> check_num_concrete ctx ~location:op.info ty1 ty2; ty1 | Div (Some _) | Rem _ | And | Or | Xor | Shl | Shr _ -> check_int_bin_op ctx ~location:op.info ty1 ty2 | Div None -> check_float_bin_op ctx ~location:op.info ty1 ty2 | Lt (Some _) | Gt (Some _) | Le (Some _) | Ge (Some _) -> ignore (check_int_bin_op ctx ~location:op.info ty1 ty2); i32_cell | Lt None | Gt None | Le None | Ge None -> ignore (check_float_bin_op ctx ~location:op.info ty1 ty2); i32_cell) in if ctx.warn_unused then begin lint_shift ctx op ty i2'; lint_division ctx op i2'; lint_comparison ctx op i1' i2'; lint_redundant ctx op i1' i2' end; return_expression i (BinOp (op, i1', i2')) ty | UnOp (op, i') -> let* i' = instruction ctx i' in let typ = expression_type ctx i' in let ty = match Cell.get typ with | Unknown | Error -> ( match op.desc with Not -> i32_cell | Neg | Pos -> Cell.make Number) | _ -> ( match op.desc with | Not -> (match Cell.get typ with (* [!] is [i32.eqz] on an integer and [ref.is_null] on a reference; [UnknownRef] is a (bottom) reference, so it takes the [ref.is_null] reading like any other ref. *) | Valtype { internal = I32 | I64 | Ref _; _ } | Null | Int | UnknownRef -> () | Number -> Cell.set typ Int (* [!] on a [LargeInt] is [i64.eqz]; pin it to i64 so it cannot be left float-capable (there is no float [eqz]). *) | LargeInt -> Cell.set typ (Valtype i64_valtype) | _ -> Error.instruction_type_mismatch ctx.diagnostics ~location:op.info typ (Cell.make Int)); i32_cell | Neg | Pos -> (match Cell.get typ with | Valtype { internal = I32 | I64 | F32 | F64; _ } | Int | LargeInt | Float | Number -> () | _ -> Error.instruction_type_mismatch ctx.diagnostics ~location:op.info typ (Cell.make Number)); typ) in return_expression i (UnOp (op, i')) ty | _ -> assert false (* only invoked on BinOp/UnOp *) and type_cast ctx i = (* Type casts ([e as t]) and type tests ([e is t]). *) match i.desc with | Cast (i', typ) -> let* i' = instruction ctx i' in if ctx.warn_unused then lint_conversion ctx ~location:i.info typ i'; (* When converting from Wasm, fuse two casts whose inserted intermediate type is superfluous (only when [ctx.simplify]); [to_wasm] re-expands each single cast to the same instructions: - [(e as i32_X) as i64_X] -> [e as i64_X]: a narrow [i32]-producing read widened to [i64]. [e] is a packed [Int8]/[Int16] read (the [i32] is [i64.extend_i32_X]) or a reference (the [i32] is [i31.get], the [i64] [i64.extend_i32_X]). - [(e as &i31) as i32_X] -> [e as i32_X]: a [ref.cast] feeding [i31.get]. A reference already typed [&i31]/[&?i31] never reaches here (its [&i31] cast is dropped as redundant first); an [i31] built from an [i32] ([ref.i31]) is excluded by the [is_*_ref] guard. - [(e as i32) as &i31] -> [e as &i31]: an [i64] wrapped to [i32] before [ref.i31] (which takes an [i32]). - [(e as &any) as &T] -> [e as &T]: an [extern] converted to the [any] hierarchy ([any.convert_extern]) before a [ref.cast] to a concrete [any]-hierarchy type [T]. - [(e as &i31) as &extern] -> [e as &extern]: an [i32] boxed as an [i31] ([ref.i31]) before [extern.convert_any]. *) let is_packed_read e = match Cell.get (expression_type ctx e) with | Int8 | Int16 -> true | _ -> false in let is_ref e = match Cell.get (expression_type ctx e) with | Valtype { internal = Ref _; _ } -> true | _ -> false in (* A non-[i31] reference in the [any] hierarchy — the operand of a plain [ref.cast] to [&i31]. [extern]/[noextern] are excluded: [e as &i31] for an [extern] is not a [ref.cast] but a cross-hierarchy convert then cast ([any.convert_extern]; [ref.cast]), so fusing it with a trailing [i31.get] into [e as i32] would leave an untranslatable [&extern as i32]. *) let is_non_i31_ref e = match Cell.get (expression_type ctx e) with | Valtype { internal = Ref { typ = I31 | Extern | NoExtern; _ }; _ } -> false | Valtype { internal = Ref _; _ } -> true | _ -> false in let is_i64 e = match Cell.get (expression_type ctx e) with | Valtype { internal = I64; _ } -> true | _ -> false in let is_i32 e = match Cell.get (expression_type ctx e) with | Valtype { internal = I32; _ } -> true | _ -> false in let is_extern e = match Cell.get (expression_type ctx e) with | Valtype { internal = Ref { typ = Extern | NoExtern; _ }; _ } -> true | _ -> false in let i', typ = match (typ, i'.desc) with | ( Signedtype { typ = `I64; signage = s2; strict = false }, Cast (e, Signedtype { typ = `I32; signage = s1; strict = false }) ) when ctx.simplify && s1 = s2 && (is_packed_read e || is_ref e) -> (e, typ) | ( Signedtype { typ = `I32; _ }, Cast (e, Valtype (Ref { typ = I31; nullable = false })) ) when ctx.simplify && is_non_i31_ref e -> (e, typ) | Valtype (Ref { typ = I31; nullable = false }), Cast (e, Valtype I32) when ctx.simplify && is_i64 e -> (e, typ) | ( Valtype (Ref ({ typ = Extern; _ } as r)), Cast (e, Valtype (Ref { typ = I31; nullable = false })) ) when ctx.simplify && is_i32 e -> (* [ref.i31] is non-null and [extern.convert_any] preserves that, so the fused [i32 as &extern] is non-null. *) (e, Valtype (Ref { r with nullable = false })) | ( Valtype (Ref { typ = Any | Eq | I31 | Struct | Array | None_ | Type _; _ }), Cast (e, Valtype (Ref { typ = Any; _ })) ) when ctx.simplify && is_extern e -> (e, typ) | _ -> (i', typ) in let ty' = expression_type ctx i' in (* Snapshot the inner type *before* [cast]/[signed_cast] below concretize it to the cast target: this is the type the inner expression would settle on if the cast were removed (see [load_bearing_literal]). *) let ty'_natural = Cell.get ty' in (* [extern.convert_any]/[any.convert_extern] preserve non-nullness, so a cast to [&?extern]/[&?any] of a non-nullable argument actually yields [&extern]/[&any]; refine the target accordingly. Like the redundant-cast removal below, this only applies when converting from Wasm ([ctx.simplify]); otherwise the cast is kept as written. *) let arg_non_nullable = match Cell.get ty' with | Valtype { typ = Ref { nullable = false; _ }; _ } -> true | _ -> false in let typ = match typ with | Valtype (Ref ({ typ = Extern | Any; nullable = true } as r)) when ctx.simplify && arg_non_nullable -> Ast.Valtype (Ref { r with nullable = false }) | _ -> typ in (* The cast target as a valtype, resolving an inline function type [&fn(..)] to a minted anonymous function type. The AST node keeps the original [typ] (so an inline function-type cast prints and lowers faithfully); only [ty]/validation use the resolved type. *) let target_valtype = match typ with | Valtype t -> Some t | Functype { nullable; sign } -> Some (Ref { nullable; typ = Type (anon_function_type ctx sign) }) | Signedtype _ -> None in (* A continuation carries no RTT, so there is no [ref.cast] into a continuation type: [as &k] with a continuation target is a compile-time ascription, accepted (below) exactly when it lowers to no instruction. *) let cont_target = match target_valtype with | Some (Ref { typ; _ }) -> is_cont_heaptype ctx typ | _ -> false in (* An inline function-type cast target [&fn(..)] is lowered through a synthesized type (see [anon_function_type]); carry its signature so the result renders as [&fn(..)] rather than that synthetic name. *) let inline : comptype option = match typ with Functype { sign; _ } -> Some (Func sign) | _ -> None in let*! ty = internalize ?inline ctx (match target_valtype with | Some t -> t | None -> ( match typ with | Signedtype { typ = `I32; _ } -> I32 | Signedtype { typ = `I64; _ } -> I64 | Signedtype { typ = `F32; _ } -> F32 | Signedtype { typ = `F64; _ } -> F64 | Valtype _ | Functype _ -> assert false)) in let () = match target_valtype with | Some _ when cont_target -> (* Accepted exactly when it is a provable no-op — the cases [subtype] validates: the operand's static type is already a subtype of the target (identity or upcast, letting a [resume] go through a supertype signature), a [null] literal with a nullable target ([ref.null], no cast), or a stack-polymorphic operand (dead code, or an unconstrained inference cell the ascription pins). NOT the general [cast] castability check below, which admits runtime downcasts. *) if not (subtype ctx ty' ty) then Error.cont_cast_not_ascription ctx.diagnostics ~location:i.info | Some t -> if not (cast ctx ty' t) then Error.invalid_cast ctx.diagnostics ~location:(snd i'.info) ty' | None -> ( match typ with | Signedtype { typ = target; signage; _ } -> ( (* An atomic narrow load has no sign-extending form (only the zero-extending [_u] instructions exist), so reject [as iN_s] on one outright — with the [_u]-then-extend spelling to use — rather than quietly compiling a load + sign-extend pair. *) match (signage, target, atomic_narrow_load_width ctx i') with | Signed, ((`I32 | `I64) as t), Some w -> Error.atomic_signed_load ctx.diagnostics ~location:i.info ~cast: ("as " ^ (match t with `I32 -> "i32" | `I64 -> "i64") ^ "_u") ~extend: (match w with | `W8 -> ".extend8_s()" | `W16 -> ".extend16_s()") | _ -> if not (signed_cast ctx ty' target) then Error.invalid_cast ctx.diagnostics ~location:(snd i'.info) ty') | Valtype _ | Functype _ -> assert false) in (* Lint the cast against its operand's natural type (snapshotted before [cast] above concretised it to the target). Skipped for from-Wasm input ([simplify]), whose casts are compiler-inserted and whose redundant ones are dropped below — and for a continuation target, whose "redundant" upcast is the intended use (a compile-time ascription). *) if ctx.warn_unused && (not ctx.simplify) && not cont_target then lint_ref_cast ctx ~location:i.info ~is_test:false ty'_natural (Cell.get ty); (* A cast is load-bearing when its target differs from the type the inner expression would settle on if the cast were removed — its natural default, read from [ty'_natural] (the inner type *before* [cast] above concretized it to the target). A still-abstract numeric value re-parses at its default width (int -> i32, an out-of-i32-range int -> i64, float -> f64), so a cast to any other width must be kept or the value changes on the round-trip. This keeps e.g. [(nan as f32).to_bits()] / [(5 as i64).from_bits()] from losing the operand's type. Only an abstract numeric inner has such a default; a concrete inner (numeric or reference) is already pinned, so [subtype] below is the right redundancy test. *) let natural_typ = match ty'_natural with | Number | Int | Int8 | Int16 -> Some I32 | LargeInt -> Some I64 | Float -> Some F64 | Null | UnknownRef | Valtype _ | Unknown | Error | Collecting _ -> None in let load_bearing_literal = match (natural_typ, Cell.get ty) with | Some d, Valtype { typ; _ } -> d <> typ | _ -> false in (* A cast of a bare [null] to a non-[any]-hierarchy reference is also load bearing: dropping it leaves a bare [null], whose non-null / branch consumers ([null!], [br_on_*]) fall back to the [any]-hierarchy bottom [&none] — not a subtype of a func/extern/exn/cont type — so the reconstructed module no longer type-checks. (An [any]-hierarchy null is safe to drop: [&none] satisfies every [any]-hierarchy consumer.) *) let load_bearing_null = match (ty'_natural, Cell.get ty) with | Null, Valtype { typ = Ref { typ = ht; _ }; _ } -> top_heap_type ctx ht <> Some Any | _ -> false in (* Likewise a cast of a bottom reference (the residual of a polymorphic [br_on_cast] in dead code, or [ref.null nofunc]) to a type the bottom cannot stand in for. The bottom heap type carries no usable type, so dropping the cast leaves a value that no longer names one: a [(ref nofunc)] feeding [call_ref] has no function type to resolve (any non-[any]-hierarchy target), and — even in the [any] hierarchy — a bottom [&none] feeding a struct/array field access ([s.f], [a[i]]) names no concrete type for the field to resolve against (Wasm's [struct.get] carries the type index; Wax's [.f] recovers it from the receiver). An *abstract* [any]-hierarchy target ([any]/[eq]/[struct]/…) is still safe: [&none] satisfies those consumers. *) let load_bearing_bottom_ref = match (ty'_natural, Cell.get ty) with | ( Valtype { typ = Ref { typ = bot; _ }; _ }, Valtype { typ = Ref { typ = ht; _ }; _ } ) when is_bottom_heaptype bot && not (is_bottom_heaptype ht) -> ( top_heap_type ctx ht <> Some Any || match ht with Type _ -> true | _ -> false) | _ -> false in (* A continuation-target ascription is load-bearing unless it names the operand's own type: [From_wasm] wraps every resume/switch/bind continuation operand in one to pin the instruction's type immediate, and dropping a strict upcast would re-infer the operand's own (narrower) type and change the immediate on the round trip. *) let load_bearing_cont = cont_target && match (ty'_natural, Cell.get ty) with | ( Valtype { typ = Ref { typ = Type a | Exact a; _ }; _ }, Valtype { typ = Ref { typ = Type b | Exact b; _ }; _ } ) -> a.desc <> b.desc | _ -> true in (* Drop a cast the inferred types already make redundant. This is only desirable when converting from Wasm ([ctx.simplify]): there casts are inserted to pin types and precise inference makes some unnecessary. For hand-written Wax (formatting, or compiling to Wasm) we keep casts as written. ZZZ Handle select instruction better *) let unnecessary_cast = ctx.simplify && (not load_bearing_literal) && (not load_bearing_null) && (not load_bearing_bottom_ref) && (not load_bearing_cont) && (not (is_unknown_or_error ty')) && subtype ctx ty' ty in if unnecessary_cast then return { i' with info = ([| ty |], snd i'.info) } else return_expression i (Cast (i', typ)) ty | CastDesc (value, nullable, d) -> (* [value as [?]descriptor(d)]: a descriptor-equality cast. The target type is recovered from [d] ([d : (ref null? (exact_1 Y))], [Y describes X] ⇒ target [(ref nullable (exact_1 X))]). *) let* value' = instruction ctx value in let* d', target = descriptor_target ctx ~location:i.info ~nullable d in let*! t = target in let*! ty = internalize ctx (Ref t) in let ty' = expression_type ctx value' in if not (cast ctx ty' (Ref t)) then Error.invalid_cast ctx.diagnostics ~location:(snd value'.info) ty'; return_expression i (CastDesc (value', nullable, d')) ty | Test (i, ty) -> let* i' = instruction ctx i in if is_cont_heaptype ctx ty.typ then Error.invalid_cast_type ctx.diagnostics ~location:i.info; (* The operand's natural type, before [check_type] below concretises it. *) let op_natural = Cell.get (expression_type ctx i') in (let>@ typ = top_heap_type ctx ty.typ in let>@ typ = internalize ctx (Ref { nullable = true; typ }) in check_type ctx i' typ); (if ctx.warn_unused && not ctx.simplify then let>@ target = internalize ctx (Ref ty) in lint_ref_cast ctx ~location:i.info ~is_test:true op_natural (Cell.get target)); return_expression i (Test (i', ty)) i32_cell (* Construction literals carry an optional type name that can be inferred from an expected type. Their typing lives in [check_instruction]; in synthesis position there is no expectation, so [check_instruction] against the [Unknown] sentinel keeps a present name and reports [cannot_infer_*] when one is omitted. *) | _ -> assert false (* only invoked on Cast/Test *) and type_aggregate_access ctx i = (* Field and element access: struct field reads/writes ([s.f], [s.f = v]) and array or table indexing ([a[i]], [a[i] = v]). *) match i.desc with | StructGet (i', field) -> let* i' = instruction ctx i' in let*! ty = let ty = expression_type ctx i' in (* The receiver this access is on, for member completion: a memory / table name (that object's methods), else a numeric value (its methods). A reference receiver's struct fields / array [length] are recorded in the arms below. Only the receiver kind and type are recorded; the editor derives the candidate list on demand. *) (if ctx.member_completions <> None then match i'.desc with | Get name when memory_receiver ctx name -> let _, at = Option.get (Tbl.find_opt ctx.memories name) in record_members ctx.member_completions field.info (R_memory at) | Get name when table_receiver ctx name -> let at, rt = Option.get (Tbl.find_opt ctx.tables name) in record_members ctx.member_completions field.info (R_table (at, rt)) | _ -> ( match numeric_receiver_kind (Cell.get ty) with | Some r -> record_members ctx.member_completions field.info r | None -> ())); match (Cell.get ty, field.desc) with | Valtype { typ = Ref { typ = Type ty | Exact ty; _ }; _ }, _ -> ( let*@ _, def = Tbl.find_opt ctx.type_context.types ty in match def.typ with | Struct fields -> ( record_members ctx.member_completions field.info (R_struct fields); match Array.find_map (fun f -> let nm, typ = f.desc in if nm.desc = field.desc then Some typ else None) fields with | Some typ -> field_read_type ctx typ | None -> Error.missing_field ctx.diagnostics ~location:field.info field; None) | Func _ | Array _ | Cont _ -> (match def.typ with | Array elem -> record_members ctx.member_completions field.info (R_array elem) | Cont _ -> if ctx.member_completions <> None then record_members ctx.member_completions field.info (cont_receiver ctx ty) | _ -> ()); if is_unary_method field.desc then Error.method_needs_parentheses ctx.diagnostics ~location:field.info field.desc else Error.expected_struct_type ctx.diagnostics ~location:(snd i'.info); None) (* Leave a receiver that already failed to type alone (its error is reported elsewhere): keep the access with an error result type rather than giving up, which would drop a hole receiver and desync hole counting. *) | Error, _ -> Some (Cell.make Error) (* The receiver's type is unknown (unreachable / branch code) or only a reference (its struct type cannot be resolved), so the field cannot be read. *) | (Unknown | UnknownRef), _ -> Error.unknown_operand_type ctx.diagnostics ~location:(snd i'.info); Some (Cell.make Error) (* A name that is an instruction method was likely meant as the parenthesised call [x.sqrt()]; any other field access on a non-struct type has no fields to find. *) | _ when is_unary_method field.desc -> Error.method_needs_parentheses ctx.diagnostics ~location:field.info field.desc; None | _ -> Error.expected_struct_type ctx.diagnostics ~location:(snd i'.info); None in return_expression i (StructGet (i', field)) ty | GetDescriptor i' -> let* i' = instruction ctx i' in let*! ty = match Cell.get (expression_type ctx i') with | Valtype { typ = Ref { typ = (Type ty | Exact ty) as ht; _ }; _ } -> ( let exact = match ht with Exact _ -> true | _ -> false in let*@ _, def = Tbl.find_opt ctx.type_context.types ty in match def.descriptor with | None -> Error.type_without_descriptor ctx.diagnostics ~location:(snd i'.info); None | Some descname -> internalize ctx (Ref { nullable = false; typ = (if exact then Exact descname else Type descname); })) | Error -> Some (Cell.make Error) | Unknown | UnknownRef -> Error.unknown_operand_type ctx.diagnostics ~location:(snd i'.info); Some (Cell.make Error) | _ -> Error.expected_struct_type ctx.diagnostics ~location:(snd i'.info); None in return_expression i (GetDescriptor i') ty | StructSet (i1, field, i2) -> let* i1' = instruction ctx i1 in (* Resolve the field's declared type (pure, reporting any field error) before typing the value, so the value can be checked against it and a struct/array literal can drop its name. The value is then typed on every path, so its holes are always consumed. *) let expected = match Cell.get (expression_type ctx i1') with | Valtype { typ = Ref { typ = Type ty | Exact ty; _ }; _ } -> ( match lookup_struct_type ctx ty with | None -> None | Some fields -> ( record_members ctx.member_completions field.info (R_struct fields); match Array.find_map (fun f -> let nm, ftyp = f.desc in if nm.desc = field.desc then Some ftyp else None) fields with | None -> Error.missing_field ctx.diagnostics ~location:field.info field; None | Some ftyp -> if not ftyp.mut then Error.immutable ctx.diagnostics ~location:field.info "field"; internalize ctx (unpack_type ftyp))) | Error -> (* Receiver already failed to type; recover without a spurious "expected struct type". *) None | Unknown | UnknownRef -> (* The receiver's type is unknown (unreachable / branch code) or only a reference (its struct type cannot be resolved), so the field cannot be written. *) Error.unknown_operand_type ctx.diagnostics ~location:i1.info; None | _ -> Error.expected_struct_type ctx.diagnostics ~location:i1.info; None in let* i2' = match expected with | Some cell -> let* i2', _ = check_instruction ctx cell i2 in return i2' | None -> instruction ctx i2 in return_statement i (StructSet (i1', field, i2')) [||] (* [tab[i]] on a table name is [table.get]; the receiver is not a value. *) | ArrayGet (({ desc = Get tabname; _ } as recv), i2) when table_receiver ctx tabname -> let at, rt = Option.get (Tbl.find_opt ctx.tables tabname) in let* i2' = instruction ctx i2 in check_type ctx i2' (address_cell at); let*! typ = internalize ctx (Ref rt) in return_expression i (ArrayGet ({ desc = Get tabname; info = ([||], recv.info) }, i2')) typ | ArrayGet (i1, i2) -> ( let* i1' = instruction ctx i1 in let* i2' = instruction ctx i2 in check_type ctx i2' i32_cell; match Cell.get (expression_type ctx i1') with | Valtype { typ = Ref { typ = Type ty | Exact ty; _ }; _ } -> let*! typ = lookup_array_type ~location:i1.info ctx ty in let*! ty = field_read_type ctx typ in return_expression i (ArrayGet (i1', i2')) ty | Error -> (* Receiver already failed to type; recover silently. *) return_expression i (ArrayGet (i1', i2')) (Cell.make Error) | Unknown | UnknownRef -> (* The receiver's type is unknown (unreachable / branch code) or only a reference (its array type cannot be resolved), so the element cannot be read. *) Error.unknown_operand_type ctx.diagnostics ~location:i1.info; return_expression i (ArrayGet (i1', i2')) (Cell.make Error) | _ -> Error.expected_array_type ctx.diagnostics ~location:i1.info; return_expression i (ArrayGet (i1', i2')) (Cell.make Error)) (* [tab[i] = v] on a table name is [table.set]; the receiver is not a value. *) | ArraySet (({ desc = Get tabname; _ } as recv), i2, i3) when table_receiver ctx tabname -> let at, rt = Option.get (Tbl.find_opt ctx.tables tabname) in let* i2' = instruction ctx i2 in check_type ctx i2' (address_cell at); (* Check the stored value against the table's element type, so a struct/array literal can drop its name. *) let* i3' = match internalize ctx (Ref rt) with | Some cell -> let* i3', _ = check_instruction ctx cell i3 in return i3' | None -> instruction ctx i3 in return_statement i (ArraySet ({ desc = Get tabname; info = ([||], recv.info) }, i2', i3')) [||] | ArraySet (i1, i2, i3) -> ( let* i1' = instruction ctx i1 in let* i2' = instruction ctx i2 in check_type ctx i2' i32_cell; match Cell.get (expression_type ctx i1') with | Valtype { typ = Ref { typ = Type ty | Exact ty; _ }; _ } -> (* Resolve the element type (pure) before typing the value, so a struct/array literal value can drop its name. *) let expected = match lookup_array_type ~location:i1.info ctx ty with | None -> None | Some typ -> if not typ.mut then Error.immutable ctx.diagnostics ~location:i1.info "array"; internalize ctx (unpack_type typ) in let* i3' = match expected with | Some cell -> let* i3', _ = check_instruction ctx cell i3 in return i3' | None -> instruction ctx i3 in return_statement i (ArraySet (i1', i2', i3')) [||] | Error -> (* Receiver already failed to type; recover silently (still type the value so its holes are consumed). *) let* i3' = instruction ctx i3 in return_statement i (ArraySet (i1', i2', i3')) [||] | Unknown | UnknownRef -> (* The receiver's type is unknown (unreachable / branch code) or only a reference (its array type cannot be resolved), so the element cannot be written. Still type the value so its holes are consumed. *) let* i3' = instruction ctx i3 in Error.unknown_operand_type ctx.diagnostics ~location:i1.info; return_statement i (ArraySet (i1', i2', i3')) [||] | _ -> let* i3' = instruction ctx i3 in Error.expected_array_type ctx.diagnostics ~location:i1.info; return_statement i (ArraySet (i1', i2', i3')) [||]) | _ -> assert false (* only invoked on a struct/array access *) and type_variable_access ctx i = (* Reading and assigning a local or global: [x] ([Get]), [x = v] ([Set]) and the tee form [Tee] that also leaves the value on the stack. *) match i.desc with | Get idx as desc -> let ty = match resolve_variable ctx idx with | Local ty -> ctx.read_locals := StringSet.add idx.desc !(ctx.read_locals); if not (StringSet.mem idx.desc ctx.initialized_locals) then Error.uninitialized_local ctx.diagnostics ~location:idx.info idx; (* A poison local ([None]) reads as [Error] so its uses don't cascade. *) Cell.make (match ty with Some ity -> Valtype ity | None -> Error) | Global (_, ty) -> Cell.make (match ty with Some ity -> Valtype ity | None -> Error) | Func_ref (ty, ty', exact) -> let name = Ast.no_loc ty' in Cell.make (Valtype { typ = Ref { nullable = false; typ = (if exact then Exact name else Type name); }; internal = Ref { nullable = false; typ = (if exact then Exact ty else Type ty); }; anon_comptype = inline_comptype ctx name; }) | Unbound -> Error.unbound_name ctx.diagnostics ~location:idx.info ~suggestions:(get_suggestions ctx idx.desc) "variable" idx; Cell.make Error in return_expression i desc ty | Set (idx, op, i') -> (* Resolve the target first (a pure lookup) so the value can be checked against its type, letting a struct/array literal drop its name. The local is marked initialized only after the value is typed, so an assignment reading the same local (e.g. [x = x + 1]) still sees its pre-assignment state. *) let resolved = resolve_variable ctx idx in (* A compound assignment [x op= e] is type-checked as [x = x op e]: reading [x] requires it to be initialized already, and the operator is validated against its type by the ordinary [BinOp] path. The compound form is kept in the typed AST (so it round-trips and lowers back to a get/op/set); the typed right-hand side is the [BinOp]'s second operand. *) let to_check = match op with | None -> i' | Some op -> { i' with desc = BinOp (op, { idx with desc = Get idx }, i') } in let* checked = match resolved with | Local (Some ity) | Global (_, Some ity) -> let* c, _ = check_instruction ctx (valtype_cell ity) to_check in return c | Local None | Global (_, None) | Func_ref _ | Unbound -> instruction ctx to_check in let value = match (op, checked.desc) with | None, _ -> checked (* A numeric [BinOp] is never wrapped by [check_instruction], so its typed right operand is recoverable directly. *) | Some _, BinOp (_, _, rhs) -> rhs | Some _, _ -> assert false in (match resolved with | Local _ -> mark_initialized ctx idx.desc | Global (mut, _) -> if not mut then Error.immutable ctx.diagnostics ~location:idx.info "global" | Func_ref _ -> Error.not_assignable ctx.diagnostics ~location:idx.info idx | Unbound -> Error.unbound_name ctx.diagnostics ~location:idx.info ~suggestions:(set_suggestions ctx idx.desc) "variable" idx); return_statement i (Set (idx, op, value)) [||] | Tee (idx, i') -> ( (* Only a local is assignable. Resolve it first so the value can be checked against the local's type (letting a struct/array literal drop its name); anything else is an error, after which we recover with the operand's own type rather than [Unknown], which [check_type] cannot match against. *) match resolve_variable ctx idx with | Local (Some ity) -> let typ = valtype_cell ity in let* i', _ = check_instruction ctx typ i' in mark_initialized ctx idx.desc; return_expression i (Tee (idx, i')) typ | Local None -> (* Poison local: recover with the operand's own type, no check. *) let* i' = instruction ctx i' in mark_initialized ctx idx.desc; return_expression i (Tee (idx, i')) (expression_type ctx i') | Global _ | Func_ref _ -> let* i' = instruction ctx i' in Error.not_assignable ctx.diagnostics ~location:idx.info idx; return_expression i (Tee (idx, i')) (expression_type ctx i') | Unbound -> let* i' = instruction ctx i' in Error.unbound_name ctx.diagnostics ~location:idx.info ~suggestions:(local_suggestions ctx idx.desc) "variable" idx; return_expression i (Tee (idx, i')) (expression_type ctx i')) | _ -> assert false (* only invoked on Get/Set/Tee *) and type_let ctx i = (* Let bindings: a single annotated binding, a multi-value binding, and a bare declaration ([let x: t;]). *) match i.desc with | Let ([ (name_opt, Some annot) ], Some i') -> ( (* Bidirectional single annotated binding: type the initializer in checking mode against the annotation, so an omitted struct/array name is inferred from it; the keep-bool then says whether the annotation is load-bearing. Dropping a present annotation stays gated on [simplify] (Wasm->Wax), so hand-written Wax is never rewritten. A binding no later assignment writes is effectively immutable, so — like a [const] global — it also drops an annotation that is a mere supertype of the initializer's type ([drop_supertype]), narrowing to that subtype. *) match internalize_valtype ctx annot with | None -> let* i' = instruction ctx i' in return_statement i (Let ([ (name_opt, Some annot) ], Some i')) [||] | Some ity -> let drop_supertype = match name_opt with | Some name -> not (StringSet.mem name.desc ctx.assigned_locals) | None -> true in let* i', needed = check_instruction ~drop_supertype ctx (valtype_cell ity) i' in Option.iter (fun name -> ctx.locals <- StringMap.add name.desc (Some ity, name.info) ctx.locals; ctx.local_decls := name :: !(ctx.local_decls); mark_initialized ctx name.desc) name_opt; let drop = ctx.simplify && not needed in return_statement i (Let ([ (name_opt, if drop then None else Some annot) ], Some i')) [||]) | Let (bindings, Some i') -> let* i' = instruction ctx i' in let bindings = match bindings with | [ binding ] -> (* Single binding: the initializer must be a one-value expression; [expression_type] reports it if it is not. *) [ bind_let_value ctx ~location:(snd i'.info) (expression_type ctx i') binding; ] | _ -> (* Each name takes one value off a multi-value initializer, left to right (the names match the values in order). *) let result_types = fst i'.info in let n = List.length bindings in if Array.length result_types <> n then Error.value_count_mismatch ctx.diagnostics ~location:i.info ~expected:n ~provided:(Array.length result_types); List.mapi (fun idx binding -> let result_ty = if idx < Array.length result_types then result_types.(idx) else Cell.make Error in bind_let_value ctx ~location:i.info result_ty binding) bindings in return_statement i (Let (bindings, Some i')) [||] | Let (bindings, None) -> (* No initializer: each annotated name declares a local at its zero value; an unannotated name has no type to take and is left out. *) List.iter (fun (name, typ) -> match (name, typ) with | Some name, Some typ -> let>@ ity = internalize_valtype ctx typ in ctx.locals <- StringMap.add name.desc (Some ity, name.info) ctx.locals; ctx.local_decls := name :: !(ctx.local_decls); (* A defaultable local holds its zero value; a non-defaultable one stays uninitialized until assigned. *) if is_defaultable typ then mark_initialized ctx name.desc | _ -> ()) bindings; return_statement i (Let (bindings, None)) [||] | _ -> assert false (* only invoked on Let *) and type_exception ctx i = (* Raising exceptions: [throw tag(..)] ([Throw]) and re-raising a caught exnref ([ThrowRef]). *) match i.desc with | Throw (tag, l) -> let* l' = instructions ctx l in (let>@ { params; results } = Tbl.find ctx.diagnostics ctx.tags tag in if results <> [||] then Error.tag_with_results ctx.diagnostics ~location:tag.info; let>@ types = array_map_opt (fun p -> internalize ctx (snd p.desc)) params in (* An argument may itself produce several values (a multi-result call), so check the flattened values against the tag's parameters, each at its own argument's location. *) let provided = List.concat_map (fun a -> List.map (fun ty -> (ty, snd a.info)) (Array.to_list (fst a.info))) l' in if List.length provided <> Array.length types then Error.value_count_mismatch ctx.diagnostics ~location:i.info ~expected:(Array.length types) ~provided:(List.length provided) else List.iteri (fun k (ty', location) -> check_subtype ctx ~location ty' types.(k)) provided); return_statement i (Throw (tag, l')) [||] | ThrowRef i' -> let* i' = instruction ctx i' in (let>@ typ = internalize ctx (Ref { nullable = true; typ = Exn }) in check_type ctx i' typ); return_statement i (ThrowRef i') [||] | _ -> assert false (* only invoked on Throw/ThrowRef *) and type_block_construct ctx i = (* The block-like control constructs (block, loop, while, if, dispatch, match, try, try_table), which type their bodies and results through the block-inference helpers. *) match i.desc with | Block { label; typ; block = { desc = instrs; _ } as blkloc } -> ( (* An expression-position block draws nothing from a stack, so a parameter type has no source; report it, then recover by supplying the declared parameters anyway so the body does not underflow into spurious "stack empty" errors. (With no parameters this is the empty stack, unchanged.) *) if Array.length typ.params > 0 then Error.parameterized_block_expression ctx.diagnostics ~location:i.info; (* The block's value is consumed here, so it is value-producing: infer (and on [simplify] drop) its result type, admitting branches to its own label (unlike [if]). An omitted annotation is therefore always a dropped single result, never a void block. *) match block_inference ctx i label typ ~instrs:blkloc with | Some (desc, results) -> return_statement i desc results | None -> let*! params = array_map_opt (fun p -> internalize ctx (snd p.desc)) typ.params in let*! results = array_map_opt (internalize ctx) typ.results in let instrs' = block ctx i.info label params results results instrs in return_statement i (Block { label; typ; block = { blkloc with desc = instrs' } }) results) | Dispatch { index; cases; default; arms } -> (* The case (arm) labels become distinct block labels in the lowering and key the arm bodies, so they must be distinct. *) let rec check_dups seen = function | [] -> () | (l, _) :: r -> if List.exists (fun s -> s = l.desc) seen then Error.dispatch_duplicate_arm ctx.diagnostics ~location:l.info l; check_dups (l.desc :: seen) r in check_dups [] arms; (* Type-check against the equivalent blocks (see [Ast_utils.lower_dispatch]) as a void block body — the outermost case block followed by the first arm's trailing body. This validates the index is an [i32], every [br_table] target resolves to a 0-ary label, and each case body is well-typed. Then rebuild a typed [Dispatch], preserving the high-level form for the formatter and for the identical re-lowering in [To_wasm]. *) let lowered = Ast_utils.lower_dispatch ~block_info:i.info ~index ~cases ~default ~arms in (* In expression position the dispatch is checked in isolation (a void block body); a divergence in the trailing case body is propagated only in statement position — see [toplevel_instruction]. *) let typed = block ctx i.info None [||] [||] [||] lowered in let index', arms' = rebuild_dispatch typed arms in return_statement i (Dispatch { index = index'; cases; default; arms = arms' }) [||] | Match { scrutinee; arms; default } -> (* Type-check against the nested type-test ladder (see [Ast_utils.lower_match]): the scrutinee is threaded once through a [br_on_cast]/[br_on_null] chain whose tests branch out to the arm blocks. The arm bodies must diverge (a block's result is supplied only on the matching-branch path); the lowered block check enforces this. Rebuild a typed [Match] for the formatter and the identical re-lowering in [To_wasm]. *) let* scrut' = instruction ctx scrutinee in (* The chain's casts require a reference scrutinee; flag a non-reference here (the failed cast in the lowered form reports at the same spot). *) (match match_scrut_reftype ctx scrut' with | Some _ -> () | None -> Error.expected_ref ctx.diagnostics ~location:(snd scrut'.info)); let labels = match_labels i.info arms in let lowered = Ast_utils.lower_match ~block_info:i.info ~labels ~scrutinee ~arms ~default in let typed = block ctx i.info None [||] [||] [||] lowered in let arms', default' = rebuild_match typed arms in return_statement i (Match { scrutinee = scrut'; arms = arms'; default = { default with desc = default' }; }) [||] | Loop { label; typ; block = { desc = instrs; _ } as blkloc } -> ( if Array.length typ.params > 0 then Error.parameterized_block_expression ctx.diagnostics ~location:i.info; match loop_inference ctx i label typ ~instrs:blkloc with | Some (desc, results) -> return_statement i desc results | None -> let*! params = array_map_opt (fun p -> internalize ctx (snd p.desc)) typ.params in let*! results = array_map_opt (internalize ctx) typ.results in let instrs' = block ctx i.info label params results params instrs in return_statement i (Loop { label; typ; block = { blkloc with desc = instrs' } }) results) | While { label; cond; step; block = { desc = instrs; _ } as blkloc } -> (* Type-check the equivalent loop (see [Ast_utils.lower_while]): this validates that [cond] is an [i32], the continue-expression and body are well-typed, and — for a labelled step — that a [br] to the loop label (continue) runs the step. Then rebuild a typed [While], keeping the high-level form for the formatter and for the identical re-lowering in [To_wasm]. *) let lowered = Ast_utils.lower_while ~block_info:i.info ~fresh_loop:(Ast.no_loc Ast_utils.synthetic_loop_label) ~label ~cond ~step ~block:instrs in let typed = block ctx i.info None [||] [||] [||] lowered in let cond', step', instrs' = rebuild_while ~stepped:(step <> None) ~labelled:(label <> None) typed in return_statement i (While { label; cond = cond'; step = step'; block = { blkloc with desc = instrs' }; }) [||] | If { label; typ; cond; if_block; else_block } -> ( let* cond' = instruction ctx cond in check_type ctx cond' i32_cell; if Array.length typ.params > 0 then Error.parameterized_block_expression ctx.diagnostics ~location:i.info; match if_inference ctx i label typ ~cond:cond' ~if_block ~else_block with | Some (desc, results) -> return_statement i desc results | None -> let*! params = array_map_opt (fun p -> internalize ctx (snd p.desc)) typ.params in let*! results = array_map_opt (internalize ctx) typ.results in let if_block' = { if_block with desc = block ctx i.info label params results results if_block.desc; } in let else_block' = match else_block with | Some b -> Some { b with desc = block ctx i.info label params results results b.desc; } | None -> if not (missing_else_ok ctx params results) then Error.if_without_else ctx.diagnostics ~location:i.info; None in return_statement i (If { label; typ; cond = cond'; if_block = if_block'; else_block = else_block'; }) results) | If_annotation { cond; then_body; else_body } -> (* Type each branch as an isolated block, under the branch's assumption so names resolve per branch (a name may be declared only in, or with a different type in, the matching configuration). *) let then_body' = { then_body with desc = with_cond ctx ~location:i.info cond true (fun () -> block ctx i.info None [||] [||] [||] then_body.desc); } in let else_body' = Option.map (fun b -> { b with desc = with_cond ctx ~location:i.info cond false (fun () -> block ctx i.info None [||] [||] [||] b.desc); }) else_body in return_statement i (If_annotation { cond; then_body = then_body'; else_body = else_body' }) [||] | TryTable { label; typ; block = { desc = body; _ } as blkloc; catches } -> ( if Array.length typ.params > 0 then Error.parameterized_block_expression ctx.diagnostics ~location:i.info; match trytable_inference ctx i label typ ~body:blkloc ~catches with | Some (desc, results) -> return_statement i desc results | None -> let*! params = array_map_opt (fun p -> internalize ctx (snd p.desc)) typ.params in let*! results = array_map_opt (internalize ctx) typ.results in let body' = block ctx i.info label params results results body in check_trytable_catches ctx catches; return_statement i (TryTable { label; typ; block = { blkloc with desc = body' }; catches }) results) | TryCatch { label; typ; block = { desc = body; _ } as blkloc; arms } -> ( (* The structured try (see [Ast_utils.lower_trycatch] for the lowering): the body's normal completion escapes past all arms (one implicit branch to the join, carrying the try's value); the arms are honest trailing code in clause order — arm [k] enters on its tag's payload (plus the [&exn] for a [&] arm) and its completion must be arm [k+1]'s entry, the last arm's the try's result. The label is the join, a block-like exit carrying the result. *) if Array.length typ.params > 0 then Error.parameterized_block_expression ctx.diagnostics ~location:i.info; match trycatch_inference ctx i label typ ~body:blkloc ~arms with | Some (desc, results) -> return_statement i desc results | None -> let*! results = array_map_opt (internalize ctx) typ.results in let body' = block ctx i.info label [||] results results body in let arms' = type_trycatch_arms ctx i label ~results arms in return_statement i (TryCatch { label; typ; block = { blkloc with desc = body' }; arms = arms'; }) results) | Try { label; typ; block = { desc = body; _ } as blkloc; catches; catch_all } -> ( assert (typ.params = [||]); match try_inference ctx i label typ ~body:blkloc ~catches ~catch_all with | Some (desc, results) -> return_statement i desc results | None -> let*! results = array_map_opt (internalize ctx) typ.results in let body' = block ctx i.info label [||] results results body in let catches, catch_all = type_try_catches ctx i label ~results catches catch_all in return_statement i (Try { label; typ; block = { blkloc with desc = body' }; catches; catch_all; }) results) | _ -> assert false (* only invoked on a block-like construct *) and type_mem_method_call ctx i func recv memname meth args = let _, address_type = Option.get (Tbl.find_opt ctx.memories memname) in let addr_vt = address_cell address_type in let is_store = mem_store_method meth.desc in let nstack = if is_store then 2 else 1 in let* args' = mem_call_arguments ctx args in let positional, labelled = split_labelled_args ctx args' in let find = take_labels ctx ~allowed:[ "offset"; "align" ] labelled in let example = memname.desc ^ "." ^ meth.desc ^ "(..., offset: 16, align: 1)" in let _, align, offset = mem_immediates ctx ~location:i.info ~example ~nstack ~has_lane:false find positional in (match positional with | addr' :: rest -> ( check_type ctx addr' addr_vt; if is_store then match rest with | value' :: _ -> ( let vty = expression_type ctx value' in match meth.desc with | "store64" -> check_type ctx value' i64_cell | "storef32" -> check_type ctx value' f32_cell | "storef64" -> check_type ctx value' f64_cell | _ -> ( match Cell.get vty with | Valtype { internal = I32 | I64; _ } | Int | Number | LargeInt | Unknown | Error -> (* A narrowing store ([store8]/[store16]/[store32]) wraps, so it also accepts an i64-wide value, including a [LargeInt] literal too big for i32. *) () | _ -> Error.instruction_type_mismatch ctx.diagnostics ~location:(snd value'.info) vty (Cell.make Int))) | [] -> ()) | [] -> ()); check_memarg ctx ~address_type ~natural:(mem_natural_align meth.desc) ~align ~offset; let result = if is_store then [||] else match mem_load_result meth.desc with | Some t -> [| Cell.make t |] | None -> [||] in return_statement i (Call ( { desc = StructGet ({ desc = Get memname; info = ([||], recv.info) }, meth); info = ([||], func.info); }, args' )) result and type_atomic_method_call ctx i func recv memname meth family args = let module A = Wax_wasm.Atomics in let _, address_type = Option.get (Tbl.find_opt ctx.memories memname) in (* The address, then the value operands; then optional labelled immediates. *) let n_values = match family with | A.Load _ -> 0 | A.Store _ | A.Notify -> 1 | A.Rmw (Wax_wasm.Ast.AtomicCmpxchg, _) | A.Wait _ -> 2 | A.Rmw _ -> 1 in let nstack = 1 + n_values in let* args' = mem_call_arguments ctx args in let positional, labelled = split_labelled_args ctx args' in let find = take_labels ctx ~allowed:[ "offset"; "align" ] labelled in let example = memname.desc ^ "." ^ meth.desc ^ "(..., offset: 16)" in let _, align, offset = mem_immediates ctx ~location:i.info ~example ~nstack ~has_lane:false find positional in let rest = match positional with | addr' :: rest -> check_type ctx addr' (address_cell address_type); rest | [] -> [] in (* The value operand of a narrow (8/16/32-bit) store or RMW picks the i32/i64 family by its type, so it accepts either — pinned to the integer group, with a still-flexible literal defaulting to i32 as usual; the merged cell is the RMW's result (the returned old value). A 64-bit access is necessarily i64. [Unknown]/[Error] (dead code / recovery) pass through. *) let check_value v = let vty = expression_type ctx v in match Cell.get vty with | Unknown | Error -> vty | _ -> check_int_bin_op ctx ~location:(snd v.info) vty (Cell.make Int) in let result = match family with | A.Load `W8 -> [| Cell.make Int8 |] | A.Load `W16 -> [| Cell.make Int16 |] | A.Load `W32 -> [| i32_cell |] | A.Load `W64 -> [| i64_cell |] | A.Store `W64 -> List.iter (fun v -> check_type ctx v i64_cell) rest; [||] | A.Store _ -> List.iter (fun v -> ignore (check_value v)) rest; [||] | A.Rmw (op, w) -> ( match rest with | [] -> [| Cell.make Error |] | v :: more -> ( match w with | `W64 -> List.iter (fun v -> check_type ctx v i64_cell) rest; [| i64_cell |] | _ -> let vty = check_value v in (match (op, more) with | Wax_wasm.Ast.AtomicCmpxchg, r :: _ -> ( (* The expected and replacement values must agree on the family; merge their cells (as a binary operator does). *) let rty = expression_type ctx r in match (Cell.get vty, Cell.get rty) with | (Unknown | Error), _ | _, (Unknown | Error) -> () | _ -> ignore (check_int_bin_op ctx ~location:(snd r.info) vty rty)) | _ -> ()); [| vty |])) | A.Wait t -> (match rest with | e :: more -> check_type ctx e (match t with `I32 -> i32_cell | `I64 -> i64_cell); List.iter (fun v -> check_type ctx v i64_cell) more | [] -> ()); [| i32_cell |] | A.Notify -> List.iter (fun v -> check_type ctx v i32_cell) rest; [| i32_cell |] in let natural = A.family_bytes family in (* Only the offset immediate is range-checked here; an atomic access requires exactly its natural alignment (the access width from the name, independent of the i32/i64 family), not merely at most, so check that below. *) check_memarg ctx ~address_type ~natural ~align:None ~offset; (match align with | Some a -> ( match int_literal a with | Some v when Wax_utils.Uint64.compare v (Wax_utils.Uint64.of_int natural) = 0 -> () | _ -> Error.atomic_alignment ctx.diagnostics ~location:(snd a.info) natural) | None -> ()); return_statement i (Call ( { desc = StructGet ({ desc = Get memname; info = ([||], recv.info) }, meth); info = ([||], func.info); }, args' )) result and type_simd_mem_method_call ctx i func recv memname meth args = let mop = Option.get (Simd.mem_method meth.desc) in let _, address_type = Option.get (Tbl.find_opt ctx.memories memname) in let addr_vt = address_cell address_type in let nstack = List.length mop.m_operands in let* args' = mem_call_arguments ctx args in let positional, labelled = split_labelled_args ctx args' in let allowed = if mop.m_lane then [ "lane"; "offset"; "align" ] else [ "offset"; "align" ] in let find = take_labels ctx ~allowed labelled in let example = memname.desc ^ "." ^ meth.desc ^ if mop.m_lane then "(..., lane: 0, offset: 16)" else "(..., offset: 16)" in let lane, align, offset = mem_immediates ctx ~location:i.info ~example ~nstack ~has_lane:mop.m_lane find positional in List.iteri (fun k a -> if k = 0 then check_type ctx a addr_vt else if k < nstack then check_type ctx a (simd_cell (List.nth mop.m_operands k))) positional; (if mop.m_lane then match lane with | None -> (* Only when the stack operands are exactly accounted for and no (possibly ill-formed, already reported) [lane:] was written: too few or extra positional arguments were reported just above, a non-constant lane payload by [take_labels]. *) if List.length positional = nstack && not (List.exists (fun ((l : Ast.ident), _) -> l.desc = "lane") labelled) then Error.missing_lane_immediate ctx.diagnostics ~location:i.info | Some lane -> ( let max_lane = 16 / mop.m_nat_align in (* Compare unsigned, and reject an [Ast.Int] too large even for [u64] ([int_literal] = [None]): otherwise it slips past this check and crashes [to_wasm]'s [int_of_string] (as for the SIMD lane index in [type_simd_method_call]). A non-constant lane is reported by [take_labels]. *) match lane.desc with | Ast.Int _ -> ( match int_literal lane with | Some l when Wax_utils.Uint64.compare l (Wax_utils.Uint64.of_int max_lane) < 0 -> () | _ -> Error.invalid_lane_index ctx.diagnostics ~location:(snd lane.info) max_lane) | _ -> ())); check_memarg ctx ~address_type ~natural:mop.m_nat_align ~align ~offset; let result = match mop.m_result with Some t -> [| simd_cell t |] | None -> [||] in return_statement i (Call ( { desc = StructGet ({ desc = Get memname; info = ([||], recv.info) }, meth); info = ([||], func.info); }, args' )) result and type_mem_mgmt_call ctx i func recv name meth args = let _, at = Option.get (Tbl.find_opt ctx.memories name) in let addr () = address_cell at in let i32 () = i32_cell in let recv' = { desc = Get name; info = ([||], recv.info) } in let mk args' = Ast.Call ({ desc = StructGet (recv', meth); info = ([||], func.info) }, args') in let bad () = Error.invalid_management_call ctx.diagnostics ~location:i.info meth.desc; (* The (method, args) form matched nothing, so the result type is unknown; recover with an [Error] value rather than [||] — some of these methods ([size], [grow]) produce a value, and claiming none would cascade into a spurious value-count error where the call is used as an expression. *) return_statement i (mk []) [| Cell.make Error |] in match (meth.desc, args) with | "size", [] -> return_expression i (mk []) (addr ()) | "grow", [ d ] -> let* d' = instruction ctx d in check_type ctx d' (addr ()); return_expression i (mk [ d' ]) (addr ()) | "fill", [ d; v; n ] -> let* d' = instruction ctx d in let* v' = instruction ctx v in let* n' = instruction ctx n in check_type ctx d' (addr ()); check_type ctx v' (i32 ()); check_type ctx n' (addr ()); return_statement i (mk [ d'; v'; n' ]) [||] | "copy", [ d; s; n ] -> let* d' = instruction ctx d in let* s' = instruction ctx s in let* n' = instruction ctx n in check_type ctx d' (addr ()); check_type ctx s' (addr ()); check_type ctx n' (addr ()); return_statement i (mk [ d'; s'; n' ]) [||] | "copy", { desc = Get src; info = sinfo } :: ([ _; _; _ ] as rest) when memory_receiver ctx src -> let src_at = match Tbl.find_opt ctx.memories src with Some (_, a) -> a | None -> at in let addr_of a = address_cell a in (* The length [n] indexes both the source and destination, so it is typed at the narrower of the two address types ([I32] if either is 32-bit). *) let min_at = match (at, src_at) with `I32, _ | _, `I32 -> `I32 | `I64, `I64 -> `I64 in let src' = { desc = Get src; info = ([||], sinfo) } in let* rest' = instructions ctx rest in (match rest' with | [ d'; s'; n' ] -> check_type ctx d' (addr_of at); check_type ctx s' (addr_of src_at); check_type ctx n' (addr_of min_at) | _ -> ()); return_statement i (mk (src' :: rest')) [||] | "init", { desc = Get seg; info = sinfo } :: ([ _; _; _ ] as rest) -> ignore (Tbl.find ctx.diagnostics ctx.datas seg : unit option); let seg' = { desc = Get seg; info = ([||], sinfo) } in let* rest' = instructions ctx rest in (match rest' with | [ d'; s'; n' ] -> check_type ctx d' (addr ()); check_type ctx s' (i32 ()); check_type ctx n' (i32 ()) | _ -> ()); return_statement i (mk (seg' :: rest')) [||] | _ -> bad () and type_table_mgmt_call ctx i func recv name meth args = let at, rt = Option.get (Tbl.find_opt ctx.tables name) in let addr () = address_cell at in let i32 () = i32_cell in let check_elt e = let>@ t = internalize ctx (Ref rt) in check_type ctx e t in let recv' = { desc = Get name; info = ([||], recv.info) } in let mk args' = Ast.Call ({ desc = StructGet (recv', meth); info = ([||], func.info) }, args') in let bad () = Error.invalid_management_call ctx.diagnostics ~location:i.info meth.desc; (* The (method, args) form matched nothing, so the result type is unknown; recover with an [Error] value rather than [||] — some of these methods ([size], [grow]) produce a value, and claiming none would cascade into a spurious value-count error where the call is used as an expression. *) return_statement i (mk []) [| Cell.make Error |] in match (meth.desc, args) with | "size", [] -> return_expression i (mk []) (addr ()) | "grow", [ v; n ] -> let* v' = instruction ctx v in let* n' = instruction ctx n in check_elt v'; check_type ctx n' (addr ()); return_expression i (mk [ v'; n' ]) (addr ()) | "fill", [ d; v; n ] -> let* d' = instruction ctx d in let* v' = instruction ctx v in let* n' = instruction ctx n in check_type ctx d' (addr ()); check_elt v'; check_type ctx n' (addr ()); return_statement i (mk [ d'; v'; n' ]) [||] | "copy", [ d; s; n ] -> let* d' = instruction ctx d in let* s' = instruction ctx s in let* n' = instruction ctx n in check_type ctx d' (addr ()); check_type ctx s' (addr ()); check_type ctx n' (addr ()); return_statement i (mk [ d'; s'; n' ]) [||] | "copy", { desc = Get src; info = sinfo } :: ([ _; _; _ ] as rest) when table_receiver ctx src -> let src_at = match Tbl.find_opt ctx.tables src with | Some (a, src_rt) -> check_elem_subtype ctx ~location:i.info ~src:src_rt ~dst:rt; a | None -> at in let addr_of a = address_cell a in (* The length [n] indexes both the source and destination, so it is typed at the narrower of the two address types ([I32] if either is 32-bit). *) let min_at = match (at, src_at) with `I32, _ | _, `I32 -> `I32 | `I64, `I64 -> `I64 in let src' = { desc = Get src; info = ([||], sinfo) } in let* rest' = instructions ctx rest in (match rest' with | [ d'; s'; n' ] -> check_type ctx d' (addr_of at); check_type ctx s' (addr_of src_at); check_type ctx n' (addr_of min_at) | _ -> ()); return_statement i (mk (src' :: rest')) [||] | "init", { desc = Get seg; info = sinfo } :: ([ _; _; _ ] as rest) -> (let>@ src_rt = Tbl.find ctx.diagnostics ctx.elems seg in check_elem_subtype ctx ~location:i.info ~src:src_rt ~dst:rt); let seg' = { desc = Get seg; info = ([||], sinfo) } in let* rest' = instructions ctx rest in (match rest' with | [ d'; s'; n' ] -> check_type ctx d' (addr ()); check_type ctx s' (i32 ()); check_type ctx n' (i32 ()) | _ -> ()); return_statement i (mk (seg' :: rest')) [||] | _ -> bad () and type_array_fill_call ctx i func a meth j v n = let* a' = instruction ctx a in let* j' = instruction ctx j in let* v' = instruction ctx v in let* n' = instruction ctx n in check_type ctx n' i32_cell; check_type ctx j' i32_cell; (match Cell.get (expression_type ctx a') with | Valtype { typ = Ref { typ = Type ty | Exact ty; _ }; _ } -> let>@ typ = lookup_array_type ~location:a.info ctx ty in if not typ.mut then Error.immutable ctx.diagnostics ~location:a.info "array"; let>@ ty = internalize ctx (unpack_type typ) in let ty' = expression_type ctx v' in if not (subtype ctx ty' ty) then Error.instruction_type_mismatch ctx.diagnostics ~location:(snd v'.info) ty' ty | Error -> (* receiver already failed to type; recover silently *) () | Unknown | UnknownRef -> (* The receiver's type is unknown (unreachable / branch code) or only a reference (its array type cannot be resolved), so the operation cannot be compiled. *) Error.unknown_operand_type ctx.diagnostics ~location:a.info | _ -> Error.expected_array_type ctx.diagnostics ~location:a.info); return_statement i (Call ( { desc = StructGet (a', meth); info = ([||], func.info) }, [ j'; v'; n' ] )) [||] and type_array_copy_call ctx i func a1 meth i1 a2 i2 n = let* a1' = instruction ctx a1 in let* i1' = instruction ctx i1 in let* a2' = instruction ctx a2 in let* i2' = instruction ctx i2 in let* n' = instruction ctx n in check_type ctx n' i32_cell; check_type ctx i2' i32_cell; let ty' = expression_type ctx a2' in check_type ctx i1' i32_cell; let ty = expression_type ctx a1' in (match (Cell.get ty, Cell.get ty') with (* Either array already failed to type; recover silently. *) | Error, _ | _, Error -> () (* An array's type is unknown (unreachable / branch code): its element type cannot be resolved, so the copy cannot be compiled. Point at the offending array. *) | (Unknown | UnknownRef), _ -> Error.unknown_operand_type ctx.diagnostics ~location:a1.info | _, (Unknown | UnknownRef) -> Error.unknown_operand_type ctx.diagnostics ~location:a2.info | ( Valtype { typ = Ref { typ = Type ty | Exact ty; _ }; _ }, Valtype { typ = Ref { typ = Type ty' | Exact ty'; _ }; _ } ) -> let>@ typ = lookup_array_type ~location:a1.info ctx ty in let>@ typ' = lookup_array_type ~location:a2.info ctx ty' in if not typ.mut then Error.immutable ctx.diagnostics ~location:a1.info "array"; if not (storage_subtype ctx typ'.typ typ.typ) then Error.incompatible_array_elements ctx.diagnostics ~location:a2.info | _ -> Error.expected_array_type ctx.diagnostics ~location:a1.info); return_statement i (Call ( { desc = StructGet (a1', meth); info = ([||], func.info) }, [ i1'; a2'; i2'; n' ] )) [||] and type_array_init_call ctx i func a meth arg1 rest = let* a' = instruction ctx a in match arg1.desc with | Get seg -> let sinfo = arg1.info in let* rest' = instructions ctx rest in let i32 = i32_cell in (match rest' with | [ d'; s'; n' ] -> check_type ctx d' i32; check_type ctx s' i32; check_type ctx n' i32 | _ -> ()); (match Cell.get (expression_type ctx a') with | Valtype { typ = Ref { typ = Type ty | Exact ty; _ }; _ } -> ( let>@ field = lookup_array_type ~location:a.info ctx ty in if not field.mut then Error.immutable ctx.diagnostics ~location:a.info "array"; match field.typ with | Value (Ref dst) -> let>@ src = Tbl.find ctx.diagnostics ctx.elems seg in check_elem_subtype ctx ~location:a.info ~src ~dst | _ -> ignore (Tbl.find ctx.diagnostics ctx.datas seg : unit option)) | Error -> (* receiver already failed to type; recover silently *) () | Unknown | UnknownRef -> (* The receiver's type is unknown (unreachable / branch code) or only a reference (its array type cannot be resolved), so the operation cannot be compiled. *) Error.unknown_operand_type ctx.diagnostics ~location:a.info | _ -> Error.expected_array_type ctx.diagnostics ~location:a.info); let seg' = { desc = Get seg; info = ([||], sinfo) } in return_statement i (Call ( { desc = StructGet (a', meth); info = ([||], func.info) }, seg' :: rest' )) [||] | _ -> (* [array.init_data]/[array.init_elem] name a data or element segment as their first argument; the lowering requires that name, so anything else (a [null], a computed value) cannot be compiled. Type the arguments for recovery, then reject. *) let* args' = instructions ctx (arg1 :: rest) in Error.invalid_management_call ctx.diagnostics ~location:i.info meth.desc; return_statement i (Call ({ desc = StructGet (a', meth); info = ([||], func.info) }, args')) [||] (* An array bulk method ([fill]/[copy]/[init]) on an array receiver but with the wrong argument count — in practice the empty [a.fill()] an auto-closed call leaves while being typed. The exact-arity forms are handled above; this types the receiver and arguments and reports the arity, but keeps the method node so recovery and editor features (signature help) still see the call. Gated on an array receiver, so a struct field of the same name stays an indirect call. *) and type_array_method_recovery ctx i func recv meth args = let* recv' = instruction ctx recv in let* args' = instructions ctx args in let expected = match meth.desc with "fill" -> 3 | _ -> 4 in if List.length args' <> expected then Error.value_count_mismatch ctx.diagnostics ~location:i.info ~expected ~provided:(List.length args'); return_statement i (Call ({ desc = StructGet (recv', meth); info = ([||], func.info) }, args')) [||] and type_binary_intrinsic_call ctx i func i1 meth op args = let* i1' = instruction ctx i1 in let* args' = instructions ctx args in let is_int = match op with "rotl" | "rotr" -> true | _ -> false in let call args'' = Ast.Call ({ desc = StructGet (i1', meth); info = ([||], func.info) }, args'') in match args' with | [ i2' ] -> let ty1 = expression_type ctx i1' in let ty2 = expression_type ctx i2' in let check ty1 ty2 = if is_int then check_int_bin_op ctx ~location:meth.info ty1 ty2 else check_float_bin_op ctx ~location:meth.info ty1 ty2 in (* An abstract operand (a hole on the polymorphic stack of unreachable / branch code) is unified onto the other operand's type; two abstract operands take the operator's family default (int for [rotl]/[rotr], float for [copysign]/[min]/[max]). [check_int_bin_op]/ [check_float_bin_op] leave the [Unknown]/[Error] arms to their caller, as the [BinOp] arms of [type_arith] do. *) let ty = match (Cell.get ty1, Cell.get ty2) with | (Unknown | Error), (Unknown | Error) -> Cell.merge ty1 ty2 (if is_int then Int else Float); ty1 | (Unknown | Error), _ -> Cell.merge ty1 ty2 (Cell.get ty2); check ty1 ty2 | _, (Unknown | Error) -> Cell.merge ty1 ty2 (Cell.get ty1); check ty1 ty2 | _ -> check ty1 ty2 in return_expression i (call [ i2' ]) ty | _ -> (* Wrong arity (e.g. the empty [x.min()] an auto-closed call being typed leaves): report it, but still produce the method node with the receiver typed — its result is the receiver's type — so recovery keeps the call (editor features like signature help see it). *) Error.value_count_mismatch ctx.diagnostics ~location:i.info ~expected:1 ~provided:(List.length args'); return_expression i (call args') (expression_type ctx i1') and type_unary_intrinsic_call ctx i func recv meth = let* recv' = instruction ctx recv in let*! ty = let ty = expression_type ctx recv' in match (Cell.get ty, meth.desc) with | Valtype { typ = Ref { typ = Type t | Exact t; _ }; _ }, "length" -> ( let*@ _, def = Tbl.find_opt ctx.type_context.types t in match def.typ with | Array _ -> Some i32_cell | Struct _ | Func _ | Cont _ -> Error.expected_array_type ctx.diagnostics ~location:(snd recv'.info); None) (* [array.len] accepts any subtype of [(ref null array)]: the abstract array, a bare [null], and the bottom reference [&none] (which is below [array]). A concrete array is handled above. *) | (Null | Valtype { typ = Ref { typ = Array | None_; _ }; _ }), "length" -> Some i32_cell | Valtype { typ = I32; _ }, "from_bits" -> Some f32_cell | Valtype { typ = I64; _ }, "from_bits" -> Some f64_cell | Valtype { typ = F32; _ }, "to_bits" -> Some i32_cell | Valtype { typ = F64; _ }, "to_bits" -> Some i64_cell (* An abstract numeric receiver (e.g. a bare float literal whose redundant cast [simplify] dropped) defaults like any other operation: [to_bits] on a [Float] is f64->i64, [from_bits] on an integer is i32->f32 (or i64->f64 for a [LargeInt]). The non-default widths keep their cast (load-bearing), so they reach the concrete arms above. A fully-polymorphic [Unknown] receiver (a value taken off the polymorphic stack of unreachable code) is resolved the same way: the method alone fixes the int/float family, so it defaults to that family's natural width rather than failing to compile. [to_bits] needs a float receiver, so an integer-valued float constant decompiled to a bare integer literal ([Number]/[LargeInt]) coerces to [f64] too (like the [LargeInt] coercion in a float binop). A receiver already committed to the integer family ([Int], e.g. the result of [clz]/[extend8_s]) is *not* coerced: [to_bits] on an integer is meaningless, and coercing its shared cell to [f64] would make the integer-producing operation below it lower against an [f64] operand. It falls through to the receiver-type error, mirroring [from_bits] rejecting a [Float] receiver. *) | (Float | Number | LargeInt | Unknown), "to_bits" -> Cell.set ty (Valtype f64_valtype); Some i64_cell | (Number | Int | Unknown), "from_bits" -> Cell.set ty (Valtype i32_valtype); Some f32_cell | LargeInt, "from_bits" -> Cell.set ty (Valtype i64_valtype); Some f64_cell | ( ((Number | Int | LargeInt | Unknown | Valtype { typ = I32 | I64; _ }) as ty'), ("clz" | "ctz" | "popcnt" | "extend8_s" | "extend16_s") ) -> if ty' = Number || ty' = Unknown then Cell.set ty Int else if ty' = LargeInt then Cell.set ty (Valtype i64_valtype); Some ty | ( ((Number | Float | Unknown | LargeInt | Valtype { typ = F32 | F64; _ }) as ty'), ("abs" | "ceil" | "floor" | "trunc" | "nearest" | "sqrt") ) -> (* A [LargeInt] receiver is a float here (a float intrinsic), like a [Number]/[Unknown] one. *) if ty' = Number || ty' = Unknown || ty' = LargeInt then Cell.set ty Float; Some ty | Error, _ -> Some (Cell.make Error) | (Unknown | UnknownRef), _ -> (* The receiver is only a reference (its method cannot be resolved), or it is [Unknown] with a method that fixes no numeric family, so the call cannot be compiled. *) Error.unknown_operand_type ctx.diagnostics ~location:(snd recv'.info); Some (Cell.make Error) | _ -> Error.invalid_method_receiver ctx.diagnostics ~location:meth.info ty; None in return_expression i (Call ({ desc = StructGet (recv', meth); info = ([||], func.info) }, [])) ty and type_simd_vector_op_call ctx i func recv meth args = let op = Option.get (Simd.classify meth.desc) in let* recv' = instruction ctx recv in let* args' = instructions ctx args in let nimm = match op.imm with No_imm -> 0 | Lane _ -> 1 | Shuffle -> 16 in let nstack_extra = List.length op.operands - 1 in let nargs = List.length args' in if nargs <> nimm + nstack_extra then Error.value_count_mismatch ctx.diagnostics ~location:i.info ~expected:(nimm + nstack_extra) ~provided:nargs; check_type ctx recv' (simd_cell (List.hd op.operands)); let lane_bound = match op.imm with | No_imm -> None | Lane shape -> Some (Simd.lane_count shape) | Shuffle -> Some 32 in List.iteri (fun k a -> if k < nimm then (* A lane immediate must be a constant integer in range. Unsigned compare, and reject an [Ast.Int] too large even for [u64] ([int_literal] = [None]) — otherwise it reaches [to_wasm]'s [int_of_string] and crashes (as for the memory lane index in [type_simd_mem_method_call]). *) match a.desc with | Ast.Int _ -> ( let>@ bound = lane_bound in match int_literal a with | Some l when Wax_utils.Uint64.compare l (Wax_utils.Uint64.of_int bound) < 0 -> () | _ -> Error.invalid_lane_index ctx.diagnostics ~location:(snd a.info) bound) | _ -> Error.constant_expression_required ctx.diagnostics ~location:(snd a.info) else let operand = 1 + (k - nimm) in if operand < List.length op.operands then check_type ctx a (simd_cell (List.nth op.operands operand))) args'; let result = match op.result with Some t -> [| simd_cell t |] | None -> [||] in return_statement i (Call ({ desc = StructGet (recv', meth); info = ([||], func.info) }, args')) result and type_simd_free_intrinsic_call ctx i func ns name args = let full = Simd.free_full name.desc in let callee = { desc = Path (ns, name); info = ([||], func.info) } in let* args' = instructions ctx args in if not (Simd.is_free_intrinsic full) then ( Error.unknown_intrinsic ctx.diagnostics ~location:i.info ns.desc name.desc; return_expression i (Call (callee, args')) (Cell.make Error)) else ( (match Simd.const_shape_of_name full with | Some shape -> let arity = Simd.const_arity shape in if List.length args' <> arity then Error.value_count_mismatch ctx.diagnostics ~location:i.info ~expected:arity ~provided:(List.length args'); (* Each lane of an integer shape must fit its width, accepting both the signed and unsigned range [-2^(b-1), 2^b-1] (so an i8 lane is [-128, 255]). Beyond rejecting a malformed const, this stops an out-of-[int]-range literal from later crashing [V128.to_string]'s [int_of_string] in the binary encoder. *) let bits = match shape with | I8x16 -> Some 8 | I16x8 -> Some 16 | I32x4 -> Some 32 | I64x2 -> Some 64 | F32x4 | F64x2 -> None in List.iter (let lane_in_range b neg l = match int_literal l with | None -> false (* exceeds u64 *) | Some v -> let v = Wax_utils.Uint64.to_int64 v in if neg then (* magnitude <= 2^(b-1) *) Int64.unsigned_compare v (Int64.shift_left 1L (b - 1)) <= 0 else if b = 64 then true else Int64.unsigned_compare v (Int64.sub (Int64.shift_left 1L b) 1L) <= 0 in fun a -> match (bits, a.desc) with | Some b, Ast.Int _ -> if not (lane_in_range b false a) then Error.lane_value_out_of_range ctx.diagnostics ~location:(snd a.info) b | ( Some b, Ast.UnOp ({ desc = Neg; _ }, ({ desc = Ast.Int _; _ } as l)) ) -> if not (lane_in_range b true l) then Error.lane_value_out_of_range ctx.diagnostics ~location:(snd a.info) b | ( Some b, ( Ast.Float _ | Ast.UnOp ({ desc = Neg; _ }, { desc = Ast.Float _; _ }) ) ) -> (* a float literal is not a valid integer lane *) Error.lane_value_out_of_range ctx.diagnostics ~location:(snd a.info) b | ( None, ( Ast.Int _ | Ast.Float _ | Ast.UnOp ({ desc = Neg; _ }, { desc = Ast.Int _ | Ast.Float _; _ }) ) ) -> () (* a float shape accepts any numeric literal lane *) | _ -> Error.constant_expression_required ctx.diagnostics ~location:(snd a.info)) args' | None -> List.iter (fun a -> check_type ctx a (simd_cell TV128)) args'); return_expression i (Call (callee, args')) (simd_cell TV128)) (* Bidirectional checking mode: type [i] against an [expected] type and report whether the contextual annotation is load-bearing (the keep-bool). A construction literal can fill an omitted type name from [expected] and shed a redundant one; every other expression delegates to [instruction] and reports whether it determined its own type. [expected] is the [Unknown] sentinel when [check_instruction] is entered from [instruction] with no context (synthesis). *) and check_instruction ?(drop_supertype = false) ctx expected (i : location instr) = (* The construction's type name: explicit, or inferred from an exact expected type; [missing] reports a [cannot_infer_*] error and yields [None]. *) let resolve_name ty ~missing = match ty with | Some _ -> ty | None -> ( match exact_named_type expected with | Some name -> Some name | None -> missing (); None) in (* The name is redundant precisely when [expected] pins the identical heap type, so it can be dropped (and is, on output). *) let name_redundant name = match exact_named_type expected with | Some n -> n.desc = name.desc | None -> false in (* The type name to emit for a construction whose source name was [original] and whose resolved name is [typ]. A name omitted in the source stays omitted. A present name is dropped only when converting from Wasm ([simplify], so hand-written Wax is never rewritten) and the expected type makes it redundant (or the fields alone pin the type). *) let emitted_name original typ ~field_unique = match original with | None -> None | Some _ -> if ctx.simplify && (name_redundant typ || field_unique) then None else Some typ in (* The result reference type of a construction of [name]; validates it against [expected] when there is one. *) let construction_result name = (* A concrete allocator ([struct.new] / [array.new*]) yields an *exact* reference at the Wasm level. We type it exact only when custom-descriptors is enabled (exact reference types are part of that proposal); otherwise it is the plain inexact reference, as before the proposal. *) let want_exact = Wax_utils.Feature.is_enabled ctx.type_context.features Wax_utils.Feature.Custom_descriptors in let result = internalize ?inline:(inline_comptype ctx name) ctx (Ref { nullable = false; typ = (if want_exact then Exact name else Type name); }) in Option.iter (fun result -> if has_expectation expected then check_subtype ctx ~location:i.info result expected) result; result in (* A type carrying a [descriptor] clause must be allocated with a descriptor ([{descriptor(d) | …}]), not a plain [{T | …}]. *) let require_no_descriptor typ = match Tbl.find_opt ctx.type_context.types typ with | Some (_, def) when Option.is_some def.descriptor -> Error.descriptor_allocation_required ctx.diagnostics ~location:i.info | _ -> () in match i.desc with | Struct (ty, fields) -> (* The unique struct type these fields name, if any: used to resolve an omitted name and to drop a present one that the fields already pin. *) let field_match = infer_struct_by_fields ctx fields in let* node = match match ty with | Some _ -> ty | None -> ( (* Field inference takes precedence over the expected type: the fields name the exact struct constructed, whereas [expected] may be a supertype. Fall back to [expected] only when the fields are ambiguous. *) match field_match with | Some name -> Some name | None -> ( match exact_named_type expected with | Some name -> Some name | None -> Error.cannot_infer_struct_type ctx.diagnostics ~location:i.info; None)) with | None -> (* Unresolved: still type the field values for error recovery (and so they consume their stack slots / holes), then recover with an [Error] result. *) let* fields' = List.fold_left (fun prev (name, written) -> let* l = prev in if written = None then record_pun ctx.pun_spans name.info; let* fi' = instruction ctx (field_value name written) in return ((name, Option.map (fun _ -> fi') written) :: l)) (return []) fields in return_expression i (Struct (None, List.rev fields')) (Cell.make Error) | Some typ -> require_no_descriptor typ; let*! field_types = lookup_struct_type ctx typ in if List.length fields <> Array.length field_types then Error.field_count_mismatch ctx.diagnostics ~location:i.info ~expected:(Array.length field_types) ~provided:(List.length fields); let* fields' = Array.fold_left (fun prev field -> let name, (f : fieldtype) = field.desc in match List.find_opt (fun (idx, _) -> name.desc = idx.desc) fields with | None -> Error.missing_field ctx.diagnostics ~location:i.info name; prev | Some (name, written) -> let* l = prev in if written = None then record_pun ctx.pun_spans name.info; (* Check the field value against its declared type, so a nested struct/array literal can drop its own name. *) let* checked = let i' = field_value name written in match internalize ctx (unpack_type f) with | Some cell -> let* i', _ = check_instruction ctx cell i' in return i' | None -> instruction ctx i' in (* Preserve punning: a punned field ([written = None]) stays [None] so the printer re-emits [{x}]; the check above still validates it and gives it its stack effect. *) return ((name, Option.map (fun _ -> checked) written) :: l)) (return []) field_types in (* The fields alone pin this type (re-parse re-resolves to it via field inference, which takes precedence over the expected type), so a present name is redundant. *) let field_unique = match field_match with | Some n -> n.desc = typ.desc | None -> false in let emitted = emitted_name ty typ ~field_unique in let*! result = construction_result typ in return_expression i (Struct (emitted, List.rev fields')) result in (* The outer binding annotation is redundant when the fields alone re-infer this exact type — [field_match] names [node]'s own result heap type, so the bare [{..}] re-resolves to it — and the annotation names that identical type (so dropping it neither widens it nor changes its nullability). Read back from [node] rather than the branch-local [typ], so the keep-bool needs no mutable cell to escape the [let*!] arms. Mirrors the scalar keep-bool [annotation_needed]; the drop itself stays gated on [simplify] at the binding sites. *) let standalone = standalone_valtype ctx (expression_type ctx node) in let fields_pin_result = match (field_match, standalone) with | Some n, Some { typ = Ref { typ = Type t | Exact t; _ }; _ } -> t.desc = n.desc | _ -> false in return ( node, if fields_pin_result then annotation_needed ~drop_supertype ctx standalone expected else true ) | StructDefault ty -> let* node = match resolve_name ty ~missing:(fun () -> Error.cannot_infer_struct_type ctx.diagnostics ~location:i.info) with | None -> return_expression i (StructDefault None) (Cell.make Error) | Some typ -> let*! fields = lookup_struct_type ctx typ in if not (Array.for_all (fun field -> field_has_default (snd field.desc)) fields) then Error.not_defaultable ctx.diagnostics ~location:typ.info; require_no_descriptor typ; let emitted = emitted_name ty typ ~field_unique:false in let*! result = construction_result typ in return_expression i (StructDefault emitted) result in return (node, true) | StructDesc (d, fields) -> (* [{ descriptor(d) | fields }]: the struct type [X] is recovered from [d] ([d : (ref (exact Y))], [Y describes X]); the field values are then checked against [X]'s fields. *) let* d, target = descriptor_target ctx ~location:i.info ~nullable:false d in let* node = match Option.map (fun (t : reftype) -> named_heaptype t.typ) target with | None | Some None -> let* fields' = List.fold_left (fun prev (name, written) -> let* l = prev in if written = None then record_pun ctx.pun_spans name.info; let* fi' = instruction ctx (field_value name written) in return ((name, Option.map (fun _ -> fi') written) :: l)) (return []) fields in return_expression i (StructDesc (d, List.rev fields')) (Cell.make Error) | Some (Some typ) -> let*! field_types = lookup_struct_type ctx typ in if List.length fields <> Array.length field_types then Error.field_count_mismatch ctx.diagnostics ~location:i.info ~expected:(Array.length field_types) ~provided:(List.length fields); let* fields' = Array.fold_left (fun prev field -> let name, (f : fieldtype) = field.desc in match List.find_opt (fun (idx, _) -> name.desc = idx.desc) fields with | None -> Error.missing_field ctx.diagnostics ~location:i.info name; prev | Some (name, written) -> let* l = prev in let* checked = let i' = field_value name written in match internalize ctx (unpack_type f) with | Some cell -> let* i', _ = check_instruction ctx cell i' in return i' | None -> instruction ctx i' in return ((name, Option.map (fun _ -> checked) written) :: l)) (return []) field_types in let*! result = construction_result typ in return_expression i (StructDesc (d, List.rev fields')) result in return (node, true) | StructDefaultDesc d -> let* d, target = descriptor_target ctx ~location:i.info ~nullable:false d in let* node = match Option.map (fun (t : reftype) -> named_heaptype t.typ) target with | None | Some None -> return_expression i (StructDefaultDesc d) (Cell.make Error) | Some (Some typ) -> let*! fields = lookup_struct_type ctx typ in if not (Array.for_all (fun field -> field_has_default (snd field.desc)) fields) then Error.not_defaultable ctx.diagnostics ~location:i.info; let*! result = construction_result typ in return_expression i (StructDefaultDesc d) result in return (node, true) | Array (ty, i1, i2) -> let* node = match resolve_name ty ~missing:(fun () -> Error.cannot_infer_array_type ctx.diagnostics ~location:i.info) with | None -> let* i1' = instruction ctx i1 in let* i2' = instruction ctx i2 in check_type ctx i2' i32_cell; return_expression i (Array (None, i1', i2')) (Cell.make Error) | Some typ -> (* Resolve the element type (pure) before typing the element value, so a struct/array literal or null cast there can be inferred / drop its name. The value is still typed first (then the count), preserving the source order and hole consumption. *) let elt = match lookup_array_type ctx typ with | Some field' -> internalize ctx (unpack_type field') | None -> None in let* i1' = match elt with | Some cell -> let* i1', _ = check_instruction ctx cell i1 in return i1' | None -> instruction ctx i1 in let* i2' = instruction ctx i2 in check_type ctx i2' i32_cell; let emitted = emitted_name ty typ ~field_unique:false in let*! result = construction_result typ in return_expression i (Array (emitted, i1', i2')) result in return (node, true) | ArrayDefault (ty, n) -> let* node = match resolve_name ty ~missing:(fun () -> Error.cannot_infer_array_type ctx.diagnostics ~location:i.info) with | None -> let* n' = instruction ctx n in check_type ctx n' i32_cell; return_expression i (ArrayDefault (None, n')) (Cell.make Error) | Some typ -> let* n' = instruction ctx n in check_type ctx n' i32_cell; (let>@ field = lookup_array_type ctx typ in if not (field_has_default field) then Error.not_defaultable ctx.diagnostics ~location:typ.info); let emitted = emitted_name ty typ ~field_unique:false in let*! result = construction_result typ in return_expression i (ArrayDefault (emitted, n')) result in return (node, true) | ArrayFixed (ty, instrs) -> let* node = match resolve_name ty ~missing:(fun () -> Error.cannot_infer_array_type ctx.diagnostics ~location:i.info) with | None -> let* instrs' = List.fold_left (fun prev i' -> let* l = prev in let* i' = instruction ctx i' in return (i' :: l)) (return []) instrs in return_expression i (ArrayFixed (None, List.rev instrs')) (Cell.make Error) | Some typ -> let*! field' = lookup_array_type ctx typ in let elt = internalize ctx (unpack_type field') in let* instrs' = List.fold_left (fun prev i' -> let* l = prev in (* Check each element against the element type, so a nested struct/array literal can drop its own name. *) let* i' = match elt with | Some cell -> let* i', _ = check_instruction ctx cell i' in return i' | None -> instruction ctx i' in return (i' :: l)) (return []) instrs in let emitted = emitted_name ty typ ~field_unique:false in let*! result = construction_result typ in return_expression i (ArrayFixed (emitted, List.rev instrs')) result in return (node, true) | ArraySegment (ty, seg, off, len) -> let* node = match resolve_name ty ~missing:(fun () -> Error.cannot_infer_array_type ctx.diagnostics ~location:i.info) with | None -> let* off' = instruction ctx off in let* len' = instruction ctx len in check_type ctx off' i32_cell; check_type ctx len' i32_cell; return_expression i (ArraySegment (None, seg, off', len')) (Cell.make Error) | Some typ -> let* off' = instruction ctx off in let* len' = instruction ctx len in check_type ctx off' i32_cell; check_type ctx len' i32_cell; (* A reference element means [array.new_elem] (the segment is an element segment); a numeric/packed element means [array.new_data] (a data segment). *) (let>@ field = lookup_array_type ctx typ in match field.typ with | Value (Ref dst) -> let>@ src = Tbl.find ctx.diagnostics ctx.elems seg in check_elem_subtype ctx ~location:i.info ~src ~dst | _ -> ignore (Tbl.find ctx.diagnostics ctx.datas seg : unit option)); let emitted = emitted_name ty typ ~field_unique:false in let*! result = construction_result typ in return_expression i (ArraySegment (emitted, seg, off', len')) result in return (node, true) | String (ty, s) -> (* A string builds a byte array. Its natural type is the built-in [<string>] ([mut i8]); it adopts a different array type only when the context demands one — an explicit name, or one inferred from an exact expected type — that is not structurally that default (e.g. an immutable [chars]). As for the array literals a redundant name is dropped (on conversion from Wasm); the annotation is kept only when a bare string would not already take the expected type. *) let string_typ = { i with desc = "<string>" } in let string_valtype = internalize_valtype ctx (Ref { nullable = false; typ = Type string_typ }) in (* The natural type a bare string re-infers to: the default [<string>] array, allocated exactly as [construction_result] would (exact only when custom-descriptors is enabled). This — not the always-inexact [string_valtype], used only for the structural [is_default] check — is what decides whether a binding annotation is redundant. *) let string_valtype_natural = internalize_valtype ctx (Ref { nullable = false; typ = (if Wax_utils.Feature.is_enabled ctx.type_context.features Wax_utils.Feature.Custom_descriptors then Exact string_typ else Type string_typ); }) in let is_default name = match ( internalize_valtype ctx (Ref { nullable = false; typ = Type name }), string_valtype ) with | Some a, Some b -> valtype_equal ctx a b | _ -> false in let typ = match match ty with Some _ -> ty | None -> exact_named_type expected with | Some name when not (is_default name) -> name | _ -> string_typ in (let>@ field = lookup_array_type ctx typ in match field.typ with | Packed I8 -> () | Packed I16 -> if not (String.is_valid_utf_8 s) then Error.string_not_unicode ctx.diagnostics ~location:i.info | Value _ -> Error.invalid_string_element_type ctx.diagnostics ~location:i.info); let emitted = if typ.desc = string_typ.desc then None else emitted_name ty typ ~field_unique:false in let* node = let*! result = construction_result typ in return_expression i (String (emitted, s)) result in return ( node, annotation_needed ~drop_supertype ctx string_valtype_natural expected ) | Cast (e, typ) when is_null_initializer e -> let* i' = instruction ctx i in (* A cast of [null] is redundant when the checking context already provides the very type it pins: drop it to bare [null], which re-checks to the same type (the context re-supplies it) and lowers to the same [ref.null]. Gated on [simplify] so hand-written casts are kept; matched exactly so the lowered [ref.null] is unchanged. *) let i' = if ctx.simplify && match (typ, Cell.get expected) with | Ast.Valtype vt, Valtype b -> ( match internalize_valtype ctx vt with | Some a -> valtype_equal ctx a b | None -> false) | _ -> false then match i'.desc with (* Only drop down to a *bare* null: it re-checks to [expected], which the context re-supplies. A nested cast operand (e.g. [extern.convert_any] over a typed [ref.null], decompiled as [(null as &?t) as &?extern]) pins a different type, so dropping the outer cast would change the value's type — keep both casts. *) | Cast (({ desc = Null; _ } as inner), _) -> { inner with info = (fst i'.info, snd inner.info) } | _ -> i' else i' in if has_expectation expected then check_type ctx i' expected; return (i', true) | If { label; typ; cond; if_block; else_block } when has_expectation expected -> (* The checking context supplies a result type. Drop a redundant [=> T] (on [simplify]) when the context's [expected] is exactly the annotation — then re-parse recovers it from the same source (a function's [-> T], a typed binding, a call argument), so nothing is lost or loosened. On re-parse the annotation is absent, so fill the result type back in from [expected] for [to_wasm]. A [br] to the if's own label is fine: its value is checked against the result like the branch tails. *) let* cond' = instruction ctx cond in check_type ctx cond' i32_cell; if Array.length typ.params > 0 then Error.parameterized_block_expression ctx.diagnostics ~location:i.info; let omitted = typ.results = [||] in (* Type the branches against the if's own declared result when annotated, else against the context (a re-parsed, dropped annotation). *) let result_cell = if omitted then expected else match array_map_opt (internalize ctx) typ.results with | Some [| c |] -> c | _ -> expected in let results = [| result_cell |] in let if_block' = { if_block with desc = block ctx i.info label [||] results results if_block.desc; } in let else_block' = match else_block with | Some b -> Some { b with desc = block ctx i.info label [||] results results b.desc; } | None -> if not (missing_else_ok ctx [||] results) then Error.if_without_else ctx.diagnostics ~location:i.info; None in (* The if's result (its annotation, or [expected] when omitted) must fit the context — catches e.g. an [=> i64] if where [i32] is expected. *) check_subtype ctx ~location:i.info result_cell expected; let typ = if omitted then match standalone_valtype ctx expected with | Some iv -> { typ with results = [| iv.typ |] } | None -> typ else if ctx.simplify && match (standalone_valtype ctx expected, standalone_valtype ctx result_cell) with | Some a, Some b -> valtype_equal ctx a b | _ -> false then { typ with results = [||] } else typ in (* The caller's binding annotation (e.g. [let x: T = ..]) is redundant iff the branches alone infer exactly [expected] — i.e. an unannotated [let] would re-infer it. Read each branch's fall-through type (its lub) and compare; a branch that diverges contributes none. *) let branch_last b = match List.rev b with | last :: _ -> ( match fst last.info with [| c |] -> Some c | _ -> None) | [] -> None in let contents_lub = match ( branch_last if_block'.desc, match else_block' with Some b -> branch_last b.desc | None -> None ) with | Some a, Some b -> join_value_types ctx a b | (Some _ as r), None | None, (Some _ as r) -> r | None, None -> None in let needed = match contents_lub with | Some v -> ( match (standalone_valtype ctx v, standalone_valtype ctx expected) with | Some a, Some b -> not (valtype_equal ctx a b) | _ -> true) | None -> true in let* node = return_statement i (If { label; typ; cond = cond'; if_block = if_block'; else_block = else_block'; }) results in return (node, needed) (* A [do]/[loop]/[try]/[try_table] block in a checking context need not annotate its own result: thread [expected] in as the result type so a redundant annotation drops (on [simplify]) and re-parse recovers it from the same context ([context_result_cell] / [context_block_typ]). Branches to the block's own label, and (for [try]) the catch handlers, are checked against [expected] like the fall-through value. The keep-bool is conservatively [true]: unlike an [if], the value may arrive via a branch the cheap fall-through test would miss, so a surrounding binding annotation is kept — safe, at worst occasionally redundant. *) | Block { label; typ; block = { desc = instrs; _ } as blkloc } when has_expectation expected -> if Array.length typ.params > 0 then Error.parameterized_block_expression ctx.diagnostics ~location:i.info; let result_cell = context_result_cell ctx typ ~expected in let instrs', r = block_keep_bool ctx i.info label ~result:result_cell ~br_params:[| result_cell |] instrs in let needed = block_keep_needed ctx ~loc:i.info ~result:result_cell r in check_subtype ctx ~location:i.info result_cell expected; let typ = context_block_typ ctx typ ~expected ~result_cell in let* node = return_statement i (Block { label; typ; block = { blkloc with desc = instrs' } }) [| result_cell |] in return (node, needed) | Loop { label; typ; block = { desc = instrs; _ } as blkloc } when has_expectation expected -> if Array.length typ.params > 0 then Error.parameterized_block_expression ctx.diagnostics ~location:i.info; let result_cell = context_result_cell ctx typ ~expected in (* A [br] to a loop re-enters at its top with the loop's parameters, so it carries no result; the loop's value is its fall-through. Hence the branch-target type is the (empty) parameters, not the result, and a branch to the loop's label does not deliver the value. *) let instrs', r = block_keep_bool ctx i.info label ~result:result_cell ~br_params:[||] instrs in let needed = block_keep_needed ctx ~loc:i.info ~result:result_cell r in check_subtype ctx ~location:i.info result_cell expected; let typ = context_block_typ ctx typ ~expected ~result_cell in let* node = return_statement i (Loop { label; typ; block = { blkloc with desc = instrs' } }) [| result_cell |] in return (node, needed) | TryTable { label; typ; block = { desc = body; _ } as blkloc; catches } when has_expectation expected -> if Array.length typ.params > 0 then Error.parameterized_block_expression ctx.diagnostics ~location:i.info; let result_cell = context_result_cell ctx typ ~expected in (* A [try_table]'s catches branch to other targets, not its own label, so its value is the body's (the fall-through, or a [br] to its label). *) let body', r = block_keep_bool ctx i.info label ~result:result_cell ~br_params:[| result_cell |] body in check_trytable_catches ctx catches; let needed = block_keep_needed ctx ~loc:i.info ~result:result_cell r in check_subtype ctx ~location:i.info result_cell expected; let typ = context_block_typ ctx typ ~expected ~result_cell in let* node = return_statement i (TryTable { label; typ; block = { blkloc with desc = body' }; catches }) [| result_cell |] in return (node, needed) | Try { label; typ; block = { desc = body; _ } as blkloc; catches; catch_all } when has_expectation expected -> assert (typ.params = [||]); let result_cell = context_result_cell ctx typ ~expected in (* A catch handler also produces the try's value. Type the handlers against the same inferring cell [r] as the body, so their values are collected too (a [try] whose body diverges takes its value entirely from the handlers); the keep-bool then sees every exit. *) let body', r = block_keep_bool ctx i.info label ~result:result_cell ~br_params:[| result_cell |] body in let catches, catch_all = type_try_catches ctx i label ~results:[| r |] catches catch_all in let needed = block_keep_needed ctx ~loc:i.info ~result:result_cell r in check_subtype ctx ~location:i.info result_cell expected; let typ = context_block_typ ctx typ ~expected ~result_cell in let* node = return_statement i (Try { label; typ; block = { blkloc with desc = body' }; catches; catch_all; }) [| result_cell |] in return (node, needed) | Select (i1, i2, i3) when has_expectation expected -> (* The expression form of an annotated [if]: push the context's [expected] type into both value branches, so a construction there can drop its type name (re-parse re-pushes it through this same arm); the condition [i1] is an [i32]. The branches are evaluated before the condition, as in synthesis. The keep-bool is the disjunction of the branches' — the surrounding binding annotation is load-bearing iff a branch relied on it (e.g. to drop a name, or because its own type differs from [expected]). *) let* i2', needed2 = check_instruction ~drop_supertype ctx expected i2 in let* i3', needed3 = check_instruction ~drop_supertype ctx expected i3 in let* i1' = instruction ctx i1 in check_type ctx i1' i32_cell; (* The result is the branches' join, not [expected]: each branch is already [<: expected], so this keeps the select's precise type (e.g. [&bytes] rather than the [&eq] the context happened to ask for). *) let ty = match join_value_types ctx (expression_type ctx i2') (expression_type ctx i3') with | Some ty -> ty | None -> expected in let* node = return_expression i (Select (i1', i2', i3')) ty in return (node, needed2 || needed3) | Hinted (h, inner) -> (* The hint is advisory: check the wrapped branch against the same expectation — so a trailing hinted [if] still receives the context's result type and can drop a redundant annotation — and carry the result and keep-bool through unchanged. *) let* inner', needed = check_instruction ~drop_supertype ctx expected inner in let* node = return_statement i (Hinted (h, inner')) (fst inner'.info) in return (node, needed) | _ -> let* i' = instruction ctx i in (* Capture the value's own standalone-resolved type BEFORE [check_type] mutates the cell, then decide whether the annotation is load-bearing (see [annotation_needed]). *) let standalone = standalone_valtype ctx (expression_type ctx i') in let needed = annotation_needed ~drop_supertype ctx standalone expected in if has_expectation expected then check_type ctx i' expected; return (i', needed) (* Run [check_instruction] in statement (empty-stack) position, mirroring the expression bridge in [toplevel_instruction]'s default arm: pop the hole operands off the stack into the parameter list, run [check_instruction] on them, and surface its keep-bool. Used for an annotated global initializer (a constant expression). *) and check_toplevel ?(drop_supertype = false) ctx expected i = let count = count_holes i in let* args = pop_many ctx i count [] in let args, (i', needed) = check_instruction ~drop_supertype ctx expected i args in assert (args = []); (* A misplaced hole ([_] after a value) is reported by [check_hole_order]; it returns [false] only after reporting that error, so recover rather than asserting. *) ignore (check_hole_order ctx i' count : bool); return (i', needed) (* Peek the parameter types of a call's callee syntactically, when it is a name referring to a function or a funcref-typed variable. This reads no stack and reports nothing, so the evaluation order (arguments, then callee) and hole binding are unchanged; the callee is still typed normally afterwards. The result is used only to check each argument against its parameter. *) and peek_call_params ctx callee = (* The user heap-type name a hole-free callee resolves to, computed purely (no typing, no stack effect): a function name, a funcref-typed variable, or a chain of struct-field reads ending in a funcref field — e.g. [cont.cont_func]. [None] for anything else. *) let rec callee_heaptype c = match c.desc with | Get name -> ( match resolve_variable ctx name with | Func_ref (_, ty', _) -> Some (Ast.no_loc ty') | Local (Some { typ = Ref { typ = Type t | Exact t; _ }; _ }) | Global (_, Some { typ = Ref { typ = Type t | Exact t; _ }; _ }) -> Some t | Local _ | Global _ | Unbound -> None) (* A cast target names the value's type directly; [from_wasm] inserts these on a receiver before a field access (e.g. [(k as &cont_2).cont_func]). *) | Cast (_, Valtype (Ref { typ = Type t | Exact t; _ })) -> Some t | NonNull e -> callee_heaptype e | StructGet (recv, field) -> ( match callee_heaptype recv with | None -> None | Some struct_name -> ( match Tbl.find_opt ctx.type_context.types struct_name with | Some (_, { typ = Struct fields; _ }) -> Array.find_map (fun f -> let nm, (ftyp : fieldtype) = f.desc in if nm.desc = field.desc then match ftyp.typ with | Value (Ref { typ = Type t | Exact t; _ }) -> Some t | Value _ | Packed _ -> None else None) fields | _ -> None)) | _ -> None in match callee_heaptype callee with | None -> None | Some t -> ( match Tbl.find_opt ctx.type_context.types t with | Some (_, { typ = Func ft; _ }) -> array_map_opt (fun p -> internalize ctx (snd p.desc)) ft.params | _ -> None) (* Type call arguments. When the callee's parameter types are known and the arity matches, check each argument against its parameter (so a struct/array literal argument can be inferred and have its name dropped); otherwise synthesize them. Either way arguments are processed left-to-right, so hole consumption matches [instructions]. *) and typed_call_args ctx l param_types = match param_types with | Some params when Array.length params = List.length l -> let rec go k = function | [] -> return [] | a :: r -> let* a', _ = check_instruction ctx params.(k) a in let* r' = go (k + 1) r in return (a' :: r') in go 0 l | _ -> instructions ctx l (* Type a value carried to a known result/branch type (a [return], [br], …). When exactly one value is expected, check the operand against it so a struct/array literal can be inferred and drop its name; otherwise synthesize and check the whole tuple, as before. *) and check_against ctx expected i = match expected with | [| ty |] when is_inferring ty -> (* The block's result type is being inferred: synthesize the branched value and record it instead of checking it against the not-yet-known result (a plain [check_instruction] would discard it, as [has_expectation] is false for a [Collecting] cell). *) let* i' = instruction ctx i in ignore (subtype ~location:(snd i'.info) ctx (expression_type ctx i') ty : bool); return i' | [| ty |] -> let* i', _ = check_instruction ctx ty i in return i' | _ -> let* i' = instruction ctx i in check_subtypes ctx ~location:(snd i'.info) (fst i'.info) expected; return i' and type_indirect_call ctx i i' l = let param_types = peek_call_params ctx i' in let* l' = typed_call_args ctx l param_types in let* i' = instruction ctx i' in match Cell.get (expression_type ctx i') with | Valtype { typ = Ref { typ = Type ty | Exact ty; _ }; _ } -> let*! typ = lookup_func_type ctx ty in (let>@ param_types = array_map_opt (fun p -> internalize ctx (snd p.desc)) typ.params in if Array.length param_types <> List.length l' then Error.value_count_mismatch ctx.diagnostics ~location:i.info ~expected:(Array.length param_types) ~provided:(List.length l') else Array.iter2 (fun i ty -> check_type ctx i ty) (Array.of_list l') param_types); let*! returned_types = array_map_opt (internalize ctx) typ.results in return_statement i (Call (i', l')) returned_types | Error -> (* The callee already failed to type (e.g. an unbound name); recover silently rather than adding a spurious "expected function type". *) return_statement i (Call (i', l')) [| Cell.make Error |] | Unknown | UnknownRef -> (* The callee's type is unknown (unreachable / branch code) or only a reference (its function type cannot be resolved), so the call cannot be compiled. *) Error.unknown_operand_type ctx.diagnostics ~location:(snd i'.info); return_statement i (Call (i', l')) [| Cell.make Error |] | _ -> Error.expected_func_type ctx.diagnostics ~location:(snd i'.info); return_statement i (Call (i', l')) [| Cell.make Error |] and call_instruction ctx i = (* Dispatches a [Call]: first the intrinsic method/free-function forms (memory, table, segment, array, numeric, and SIMD operations written as [recv.meth(..)] or [name(..)]), then an ordinary call through a function reference. *) match i.desc with | Call ( ({ desc = StructGet (({ desc = Get memname; _ } as recv), meth); _ } as func), args ) when Wax_wasm.Atomics.of_method_name meth.desc <> None && memory_receiver ctx memname -> let family = Option.get (Wax_wasm.Atomics.of_method_name meth.desc) in type_atomic_method_call ctx i func recv memname meth family args | Call ( ({ desc = StructGet (({ desc = Get memname; _ } as recv), meth); _ } as func), args ) when is_mem_method meth.desc && memory_receiver ctx memname -> type_mem_method_call ctx i func recv memname meth args (* SIMD memory accesses: mem.loadv128(addr), mem.storev128(addr, v), mem.load8_lane(addr, v, lane), etc. Stack operands first, then the constant lane immediate (if any), then the usual align/offset literals. *) | Call ( ({ desc = StructGet (({ desc = Get memname; _ } as recv), meth); _ } as func), args ) when Simd.is_mem_method meth.desc && memory_receiver ctx memname -> type_simd_mem_method_call ctx i func recv memname meth args (* Memory management: mem.size/grow/fill/copy/init, on a memory name. *) | Call ( ({ desc = StructGet (({ desc = Get name; _ } as recv), meth); _ } as func), args ) when is_mgmt_method meth.desc && memory_receiver ctx name -> type_mem_mgmt_call ctx i func recv name meth args (* Table management: tab.size/grow/fill/copy/init, on a table name. *) | Call ( ({ desc = StructGet (({ desc = Get name; _ } as recv), meth); _ } as func), args ) when is_mgmt_method meth.desc && table_receiver ctx name -> type_table_mgmt_call ctx i func recv name meth args (* data.drop / elem.drop, on a segment name. *) | Call ( ({ desc = StructGet (({ desc = Get name; _ } as recv), ({ desc = "drop"; _ } as meth)); _; } as func), [] ) when segment_receiver ctx name -> let recv' = { desc = Get name; info = ([||], recv.info) } in return_statement i (Call ({ desc = StructGet (recv', meth); info = ([||], func.info) }, [])) [||] (* Stack-switching methods on a continuation receiver: [c.resume(x)], [c.resume_throw(exc(p))], [c.resume_throw_ref(e)], [c.switch(x, tag: t)]; an [on] handler clause arrives as a wrapping [On] node (see [type_on_clause]). These were keywords before, so no struct field can be shadowed by claiming the names. *) | Call ( { desc = StructGet ( recv, ({ desc = "resume" | "resume_throw" | "resume_throw_ref" | "switch"; _; } as meth) ); _; }, args ) -> type_cont_method_call ctx i ~handlers:[] recv meth args | Call ( ({ desc = StructGet (a, ({ desc = "fill"; _ } as meth)); _ } as func), [ j; v; n ] ) -> type_array_fill_call ctx i func a meth j v n | Call ( ({ desc = StructGet (a1, ({ desc = "copy"; _ } as meth)); _ } as func), [ i1; a2; i2; n ] ) -> type_array_copy_call ctx i func a1 meth i1 a2 i2 n (* array.init_data / array.init_elem: arr.init(seg, dest, src, len). The element type selects data vs elem (as for array.new). *) | Call ( ({ desc = StructGet (a, ({ desc = "init"; _ } as meth)); _ } as func), arg1 :: ([ _; _; _ ] as rest) ) -> type_array_init_call ctx i func a meth arg1 rest (* An array bulk method with the wrong argument count (the exact forms are above) — the empty [a.fill()] a call being typed leaves. Gated on an array receiver so a struct field of the same name stays an indirect call. *) | Call ( ({ desc = StructGet (recv, ({ desc = "fill" | "copy" | "init"; _ } as meth)); _; } as func), args ) when receiver_is_array_ref ctx recv -> type_array_method_recovery ctx i func recv meth args (* A scalar binary intrinsic method, [x.min(y)] — reached only when the receiver is numeric, not a reference: [s.min(a, b)] on a struct with a function-pointer field [min] is an indirect call (below), disambiguated by the receiver's type, not the argument count. Any argument count is accepted so the empty form an auto-closed call leaves ([x.min()]) still yields the method node (with an arity error) for recovery and editor features. *) | Call ( ({ desc = StructGet ( i1, ({ desc = ("rotl" | "rotr" | "copysign" | "min" | "max") as op; _; } as meth) ); _; } as func), args ) when not (receiver_is_ref ctx i1) -> type_binary_intrinsic_call ctx i func i1 meth op args (* No-argument instruction methods on a value: [x.sqrt()], [x.clz()], [x.to_bits()], [arr.length()]. Kept in call form so they print back with their parentheses; the result type is read from the receiver. *) | Call (({ desc = StructGet (recv, meth); _ } as func), []) when is_unary_method meth.desc -> type_unary_intrinsic_call ctx i func recv meth (* SIMD vector op written as a method intrinsic, [recv.add_i32x4(b)]. The lane shape is read from the method name (the receiver is always v128, or a scalar for splat); arguments are the lane immediates (if any) followed by the remaining stack operands. *) | Call (({ desc = StructGet (recv, meth); _ } as func), args) when Simd.classify meth.desc <> None -> type_simd_vector_op_call ctx i func recv meth args (* Built-in intrinsics written as a qualified path, [i64::add128(...)] or [v128::bitselect(...)]. *) | Call (({ desc = Path (ns, name); _ } as func), args) -> type_path_intrinsic_call ctx i func ns name args | Call (i', l) -> type_indirect_call ctx i i' l | _ -> assert false (* only invoked on [Call] *) (* A qualified-path intrinsic call [ns::name(args)]. The [v128] namespace holds the SIMD free-function intrinsics ([const_<shape>], [bitselect]); the [i64] namespace holds the wide-arithmetic instructions. *) and type_path_intrinsic_call ctx i func ns name args = match ns.desc with | "v128" -> type_simd_free_intrinsic_call ctx i func ns name args | "i64" -> type_wide_arith_call ctx i func ns name args | "atomic" when name.desc = "fence" -> let* args' = instructions ctx args in if args' <> [] then Error.value_count_mismatch ctx.diagnostics ~location:i.info ~expected:0 ~provided:(List.length args'); return_statement i (Call ({ desc = Path (ns, name); info = ([||], func.info) }, args')) [||] (* A declared continuation type is a namespace holding its constructors, [k::new] / [k::bind] (the [T::] namespace constructs a [&T]). *) | _ when match Tbl.find_opt ctx.type_context.types ns with | Some (_, { typ = Cont _; _ }) -> true | _ -> false -> type_cont_construct_call ctx i func ns name args | _ -> let* args' = instructions ctx args in Error.unknown_intrinsic ctx.diagnostics ~location:i.info ns.desc name.desc; return_expression i (Call ({ desc = Path (ns, name); info = ([||], func.info) }, args')) (Cell.make Error) (* The [i64::] wide-arithmetic intrinsics: [add128]/[sub128] take four i64 operands (each of the two 128-bit inputs as low/high) and [mul_wide_s]/[mul_wide_u] take two, all returning two i64 results (low, high). *) and type_wide_arith_call ctx i func ns name args = let* args' = instructions ctx args in let arity = match name.desc with | "add128" | "sub128" -> Some 4 | "mul_wide_s" | "mul_wide_u" -> Some 2 | _ -> None in match arity with | None -> Error.unknown_intrinsic ctx.diagnostics ~location:i.info ns.desc name.desc; (* Recover with two [Error] results (the arity every wide-arithmetic intrinsic has), so a typo does not cascade into a value-count error. *) return_statement i (Call ({ desc = Path (ns, name); info = ([||], func.info) }, args')) [| Cell.make Error; Cell.make Error |] | Some n -> if List.length args' <> n then Error.value_count_mismatch ctx.diagnostics ~location:i.info ~expected:n ~provided:(List.length args'); List.iter (fun a -> check_type ctx a i64_cell) args'; return_statement i (Call ({ desc = Path (ns, name); info = ([||], func.info) }, args')) [| valtype_cell i64_valtype; valtype_cell i64_valtype |] and instructions ctx l : _ -> _ * _ list = match l with | [] -> return [] | i :: r -> let* i' = instruction ctx i in let* r' = instructions ctx r in return (i' :: r') (* Type a memory-access call's argument list: a [Labelled] immediate has its payload typed and is re-wrapped — preserving the label for [check_memarg], printing and lowering — while the other arguments are typed as ordinary expressions. Only the memory-access typers accept labels; everywhere else [instructions] sends a [Labelled] node to the catch-all error. *) and mem_call_arguments ctx l : _ -> _ * _ list = match l with | [] -> return [] | i :: r -> ( match i.desc with | Ast.Labelled (lbl, e) -> let* e' = instruction ctx e in let* r' = mem_call_arguments ctx r in return ({ desc = Labelled (lbl, e'); info = (fst e'.info, i.info) } :: r') | _ -> let* i' = instruction ctx i in let* r' = mem_call_arguments ctx r in return (i' :: r')) and toplevel_instruction ctx i : stack -> stack * 'b = if debug then Format.eprintf "%a@." Output.instr i; match i.desc with | Block { label; typ; block = { desc = instrs; _ } as blkloc } -> let*! params = array_map_opt (fun p -> internalize ctx (snd p.desc)) typ.params in let*! results = array_map_opt (internalize ctx) typ.results in let* () = pop_args ctx ~location:i.info params in let instrs' = block ctx i.info label params results results instrs in return_statement i (Block { label; typ; block = { blkloc with desc = instrs' } }) results | Loop { label; typ; block = { desc = instrs; _ } as blkloc } -> let*! params = array_map_opt (fun p -> internalize ctx (snd p.desc)) typ.params in let*! results = array_map_opt (internalize ctx) typ.results in let* () = pop_args ctx ~location:i.info params in let instrs' = block ctx i.info label params results params instrs in return_statement i (Loop { label; typ; block = { blkloc with desc = instrs' } }) results | If { label; typ; cond; if_block; else_block } -> (* A statement-position [if] is void (a value-producing one is consumed by its context, so it is typed in expression position). Like a statement-position [block]/[loop] it is not inferred — only its expression-position form is ([if_inference], from [type_block_construct]). This also keeps a void [if] reached by a [br] to its own label working: the label's branch-target is then the void result, not an inferred single value. *) let* cond = toplevel_instruction ctx cond in check_type ctx cond i32_cell; let*! params = array_map_opt (fun p -> internalize ctx (snd p.desc)) typ.params in let*! results = array_map_opt (internalize ctx) typ.results in let* () = pop_args ctx ~location:i.info params in let if_block = { if_block with desc = block ctx i.info label params results results if_block.desc; } in let else_block = match else_block with | Some b -> Some { b with desc = block ctx i.info label params results results b.desc; } | None -> if not (missing_else_ok ctx params results) then Error.if_without_else ctx.diagnostics ~location:i.info; None in return_statement i (If { label; typ; cond; if_block; else_block }) results | Hinted (h, inner) -> (* The hint is advisory: type the wrapped branch in the same statement position — so a hinted statement [if] stays void rather than being inferred as an expression — and carry its result through unchanged (the expression-position counterpart is in [type_branch]). *) let* inner = toplevel_instruction ctx inner in return_statement i (Hinted (h, inner)) (fst inner.info) | TryTable { label; typ; block = { desc = body; _ } as blkloc; catches } -> let*! params = array_map_opt (fun p -> internalize ctx (snd p.desc)) typ.params in let*! results = array_map_opt (internalize ctx) typ.results in let* () = pop_args ctx ~location:i.info params in let body' = block ctx i.info label params results results body in check_trytable_catches ctx catches; return_statement i (TryTable { label; typ; block = { blkloc with desc = body' }; catches }) results | Try { label; typ; block = { desc = body; _ } as blkloc; catches; catch_all } -> let*! params = array_map_opt (fun p -> internalize ctx (snd p.desc)) typ.params in let*! results = array_map_opt (internalize ctx) typ.results in let* () = pop_args ctx ~location:i.info params in let body' = block ctx i.info label params results results body in let catches, catch_all = type_try_catches ctx i label ~results catches catch_all in return_statement i (Try { label; typ; block = { blkloc with desc = body' }; catches; catch_all; }) results | TryCatch { label; typ; block = { desc = body; _ } as blkloc; arms } -> (* A statement-position structured [try]; unlike the raw [TryTable] (a from-Wasm shape) it takes no parameters. *) if Array.length typ.params > 0 then Error.parameterized_block_expression ctx.diagnostics ~location:i.info; let*! results = array_map_opt (internalize ctx) typ.results in let body' = block ctx i.info label [||] results results body in let arms' = type_trycatch_arms ctx i label ~results arms in return_statement i (TryCatch { label; typ; block = { blkloc with desc = body' }; arms = arms' }) results | Nop -> return_statement i Nop [||] | Unreachable -> return_statement i Unreachable [||] |> unreachable | Dispatch { index; cases; default; arms } -> (* As a statement, type-check the lowering (see [Ast_utils.lower_dispatch]) as a sequence in the current stack — so a divergence in the trailing case body (e.g. every case ends in [return]) propagates, as it would for the equivalent blocks. *) let rec check_dups seen = function | [] -> () | (l, _) :: r -> if List.exists (fun s -> s = l.desc) seen then Error.dispatch_duplicate_arm ctx.diagnostics ~location:l.info l; check_dups (l.desc :: seen) r in check_dups [] arms; let lowered = Ast_utils.lower_dispatch ~block_info:i.info ~index ~cases ~default ~arms in let* typed = block_contents ctx [||] lowered in let index', arms' = rebuild_dispatch typed arms in return_statement i (Dispatch { index = index'; cases; default; arms = arms' }) [||] | Match { scrutinee; arms; default } -> (* As a statement, type-check the lowering (see [Ast_utils.lower_match]) in the current stack, so the void escape block's fall-through (the no-match path through the default) propagates. The scrutinee is block-like (no outer holes), so it is type-checked on its own to flag a non-reference. *) let _, scrut' = instruction ctx scrutinee [] in (match match_scrut_reftype ctx scrut' with | Some _ -> () | None -> Error.expected_ref ctx.diagnostics ~location:(snd scrut'.info)); let labels = match_labels i.info arms in let lowered = Ast_utils.lower_match ~block_info:i.info ~labels ~scrutinee ~arms ~default in let* typed = block_contents ctx [||] lowered in let arms', default' = rebuild_match typed arms in return_statement i (Match { scrutinee = scrut'; arms = arms'; default = { default with desc = default' }; }) [||] | TailCall _ | Br _ | Br_table _ | Throw _ | ThrowRef _ | Return _ -> let count = count_holes i in let* args = pop_many ctx i count [] in let args, res = instruction ctx i args in (* Should not fail *) assert (args = []); (* [check_hole_order] reports a misplaced hole and returns [false]; recover rather than asserting. *) ignore (check_hole_order ctx res count : bool); return res |> unreachable | _ -> let count = count_holes i in let* args = pop_many ctx i count [] in let args, res = instruction ctx i args in (* Should not fail *) assert (args = []); ignore (check_hole_order ctx res count : bool); return res (* Check that each [try_table] catch clause forwards the right value types to its branch target. The handler is a separate block (the target label), so unlike [try] the catch contributes nothing to the [try_table]'s own result. Reported at the target label, framed as a handler/target mismatch. Shared by the expression-, statement-, and checking-position [TryTable] cases. *) and check_trytable_catches ctx catches = let check_catch types label = let params = branch_target ctx label in if Array.length types <> Array.length params then Error.value_count_mismatch ctx.diagnostics ~location:label.info ~expected:(Array.length params) ~provided:(Array.length types) else Array.iter2 (fun provided expected -> if not (subtype ctx provided expected) then Error.catch_target_mismatch ctx.diagnostics ~location:label.info provided expected) types params in List.iter (fun catch -> match catch with | Catch (tag, label) -> let>@ { params; results = r } = Tbl.find ctx.diagnostics ctx.tags tag in if r <> [||] then Error.tag_with_results ctx.diagnostics ~location:tag.info; let>@ params = array_map_opt (fun p -> internalize ctx (snd p.desc)) params in check_catch params label | CatchRef (tag, label) -> let>@ { params; results = r } = Tbl.find ctx.diagnostics ctx.tags tag in if r <> [||] then Error.tag_with_results ctx.diagnostics ~location:tag.info; let>@ params = array_map_opt (fun p -> internalize ctx (snd p.desc)) params in let>@ ref_exn = internalize ctx (Ref { nullable = false; typ = Exn }) in check_catch (Array.append params [| ref_exn |]) label | CatchAll label -> check_catch [||] label | CatchAllRef label -> let>@ ref_exn = internalize ctx (Ref { nullable = false; typ = Exn }) in check_catch [| ref_exn |] label) catches (* Type a structured [try]'s arms with the fall-through rule: arm [k] is a block entered on its tag's payload (plus the [&exn] for a [&] arm) whose completion must be arm [k+1]'s entry stack — the last arm's the try's [results]. The try's [label] (the join) is in scope in every arm with the result as its branch type, so [br 'l] exits carrying the try's value. Diverging arms are exempt as any block body is. Each arm's entry types are recorded in the node ([arm_types]) for [To_wasm]'s re-lowering. *) and type_trycatch_arms ctx i label ~results arms = (* The arm's entry stack, as source types: the tag's payload, plus the non-null [&exn] for a [&] arm ([[]] for the catch-all). Mirrors [check_trytable_catches]' tag validation (a caught tag must have no results). *) let entry arm = let payload = match arm.arm_tag with | Some tag -> ( match Tbl.find ctx.diagnostics ctx.tags tag with | Some { params; results = r } -> if r <> [||] then Error.tag_with_results ctx.diagnostics ~location:tag.info; Array.map (fun p -> snd p.desc) params | None -> [||]) | None -> [||] in if arm.arm_ref then Array.append payload [| Ast.Ref { nullable = false; typ = Exn } |] else payload in let entries = List.map entry arms in let internalized e = array_map_opt (internalize ctx) e in let rec go arms entries = match (arms, entries) with | [], [] -> [] | arm :: arms', e :: entries' -> let exit_types = match entries' with e' :: _ -> internalized e' | [] -> Some results in let arm' = match (internalized e, exit_types) with | Some params, Some exits -> let body' = block ctx i.info label params exits results arm.arm_body.desc in { arm with arm_types = e; arm_body = { arm.arm_body with desc = body' }; } | _ -> (* A type in the chain failed to resolve (already reported); recover by typing the body as a plain result-producing block rather than cascading. *) let body' = block ctx i.info label [||] results results arm.arm_body.desc in { arm with arm_types = e; arm_body = { arm.arm_body with desc = body' }; } in arm' :: go arms' entries' | _ -> assert false in go arms entries and trycatch_inference ctx i label typ ~body ~arms = infer_synthesized ctx i typ ~type_body:(fun ~cs:_ ~r -> let results = [| r |] in let body' = block ctx i.info label [||] results results body.desc in let arms' = type_trycatch_arms ctx i label ~results arms in fun typ -> TryCatch { label; typ; block = { body with desc = body' }; arms = arms' }) (* Type a [try_legacy]'s catch handlers (and catch-all) against [results] — each handler is a block that produces the try's result, like the body. Shared by the expression-, statement-, and checking-position [Try] cases; the body is typed by the caller. *) and type_try_catches ctx i label ~results catches catch_all = let catches = List.filter_map (fun (tag, body) -> let*@ { params; results = r } = Tbl.find ctx.diagnostics ctx.tags tag in if r <> [||] then Error.tag_with_results ctx.diagnostics ~location:tag.info; let+@ params = array_map_opt (fun p -> internalize ctx (snd p.desc)) params in let body' = block ctx i.info label params results results body.desc in (tag, { body with desc = body' })) catches in let catch_all = Option.map (fun body -> { body with desc = block ctx i.info label [||] results results body.desc; }) catch_all in (catches, catch_all) and block_contents ctx results l = match l with | [] -> return [] (* A trailing instruction that produces the block's single value is routed through [check_instruction] (against the result type) rather than synthesized, so the result type flows into it: a nested block's own result annotation then drops, a construction drops its name, and a [?:] propagates the type into both its branches. [classify_trailing] decides which forms qualify (a parameterized block does not — it stays on the statement path, which pops its parameters off the stack, as expression position has no stack to take them from). *) | [ i ] when Array.length results = 1 && match classify_trailing ctx i.desc with | false, false -> false | _ -> true -> fun st -> (match st with | Empty when is_inferring results.(0) -> (* The block's own result type is being inferred (synthesis), so the result cell is a [Collecting] one: checking this trailing value against it would discard it ([has_expectation] is false). Instead synthesize the value — a nested block runs its own inference — and push its type, to be collected by the enclosing block. *) let count = count_holes i in let* args = pop_many ctx i count [] in let args, i' = instruction ctx i args in assert (args = []); ignore (check_hole_order ctx i' count : bool); let* () = push_results (Array.to_list (Array.map (fun ty -> (i.info, ty)) (fst i'.info))) in return [ i' ] | Empty -> (* The stack is empty, so this trailing instruction must produce the block's value: a construction literal (incl. a string) or null cast, or a nested [if]/[do] block. Check it against the single result type so it can be inferred / drop its name, redundant cast, or its own result annotation, just like a [return]. [check_instruction] has already validated the value against [results.(0)] (reporting any mismatch once), so push the result type itself rather than the value's own type — that keeps the block's [pop_args] from reporting the same mismatch a second time. *) let* i', _ = check_toplevel ctx results.(0) i in let* () = push_results (Array.to_list (Array.map (fun ty -> (i.info, ty)) results)) in return [ i' ] | Cons _ | Unreachable -> (* The block's value is already on the stack, produced by an earlier instruction (or the code is unreachable); this trailing one is a statement, not the result-producer, so type it as such rather than routing it through [check_instruction]. *) let* i' = toplevel_instruction ctx i in let* () = push_results (Array.to_list (Array.map (fun ty -> (i.info, ty)) (fst i'.info))) in return [ i' ]) st | i :: r -> fun st -> let st_after, i' = toplevel_instruction ctx i st in (* Dead code: the stack was reachable before [i], typing [i] left it polymorphic ([Unreachable] — [i] is a [br]/[return]/[unreachable] or the like), and a statement still follows. Report the first such statement, pointing back at the divergence. The following statements are then typed on the [Unreachable] stack, so this fires once, at the point control is lost. *) (match (st, st_after, r) with | (Empty | Cons _), Unreachable, dead :: _ when ctx.warn_unused -> Error.dead_code ctx.diagnostics ~location:dead.info ~related: [ { Wax_utils.Diagnostic.location = i.info; message = Wax_utils.Message.text "Control never returns from here."; }; ] | _ -> ()); let st_after, () = push_results (Array.to_list (Array.map (fun ty -> (i.info, ty)) (fst i'.info))) st_after in let st_after, r' = block_contents ctx results r st_after in (st_after, merge_let_tuple ctx i' r') and block ctx loc label params results br_params block = with_empty_stack ctx ~location:loc ~kind:Block (let* () = push_results (Array.to_list (Array.map (fun ty -> (loc, ty)) params)) in let* block' = block_contents { ctx with control_types = (label, br_params) :: ctx.control_types } results block in let* () = pop_args ctx ~location:loc results in return block') (* Like [block] for a paramless block checked against a single [result] type, but also report whether the surrounding binding annotation is needed — i.e. would [let x = <block>] (no annotation) re-infer a different type? It is *not* needed exactly when the value the block produces already has type [result] on its own, without the context forcing it. The block's value is the join of the values reaching its exit, all of which are checked to be subtypes of [result]; so when the fall-through's own natural type is already [result], that join is [result] regardless of any value branched to the block's label — and the annotation is redundant. Read the fall-through's natural type off the stack, unconstrained, before [pop_args] coerces it to [result], and compare ([annotation_needed], as the leaf [check_instruction] arm does). Stay conservative (needed) only when the trailing instruction is a construction — routed through [result] to resolve a context-pinned type name, which hides its natural type. A trailing nested block is instead synthesized (routed through the inferring cell) so its type joins like any other exit value. Returns the typed body and that keep-bool. *) and block_keep_bool ctx loc label ~result ~br_params body = (* The keep-bool is decided from every value reaching the exit: the fall-through plus values branched to the label, collected at their natural types into [cs] (the branch-target [r] is a [Collecting] cell), then joined. The trailing instruction needs care: one that resolves its own type joins like any other exit value (route it through [r] — it synthesizes), but one that needs the context to pin its type must be routed through the concrete [result], which hides its natural type, so keep the annotation for it. A nested block always resolves itself; a struct does iff its fields name a unique type ([infer_struct_by_fields]) — then it synthesizes the same with or without the context, so route it through [r]; a field-ambiguous struct needs the context to pin its type (a named one still relies on it to drop its redundant name), so keep the annotation. (Only structs are field-checked here; other constructions stay conservative.) *) let trailing_construction, trailing_nested_block = match List.rev body with | last :: _ -> classify_trailing ctx last.desc | [] -> (false, false) in (* A trailing construction is routed through [result], hiding its natural type, so its annotation is load-bearing — mark the cell needed up front. *) let cs, r = fresh_collecting ~needed:trailing_construction (Some result) in (* Branches deliver the result for every kind but [loop] (where they re-enter): mirror the caller's [br_params] arity with the [Collecting] cell so their values are recorded. *) let br = if Array.length br_params > 0 then [| r |] else [||] in (* Route a trailing nested block through the inferring cell so it synthesizes; a construction or leaf is checked against the concrete result. *) let result_routing = if trailing_nested_block then r else result in with_empty_stack ctx ~location:loc ~kind:Block (let* block' = block_contents { ctx with control_types = (label, br) :: ctx.control_types } [| result_routing |] body in fun st -> (* Snapshot the fall-through's natural type before [pop_args] resolves it to [result], so it joins with the branched values at its own type. *) (match st with | Cons (loc', tv, _) -> cs.collected <- (Some loc', Cell.make (Cell.get tv)) :: cs.collected | Empty | Unreachable -> ()); let st, () = pop_args ctx ~location:loc [| result |] st in (* Return the cell: the caller may deliver more values to it (a [try]'s catch handlers) before [block_keep_needed] reads the join. Every value reaching the exit is already validated against [result] — the fall-through by [pop_args], the branched/caught values per-delivery as they were collected — so the join only decides the keep-bool. *) (st, (block', r))) (* The keep-bool for a checked block typed by [block_keep_bool]: keep the annotation when a delivery relied on it ([cs.needed] — a trailing construction, or a [resume] handler that read the cell) or the join of the values reaching the exit differs from the context type [result]. Read after any extra deliveries (a [try]'s catch handlers) have been collected. *) and block_keep_needed ctx ~loc ~result r = match Cell.get r with | Collecting cs -> ( cs.needed || match join_collected ctx ~location:loc cs.collected with | Some j -> annotation_needed ctx (standalone_valtype ctx j) result | None -> true) | _ -> true (* From the [inferred] result of an inferring block (already joined across an [if]'s branches) and the source [typ], produce the result-type cells for the stack effect and the [typ] to store on the node. For an omitted annotation ([typ.results = [||]]) the inferred type fills it in; for an explicit single result the annotation is dropped (cleared) when [simplify] and the inferred type is a subtype of it, else kept. (When it is a strict subtype the block re-infers to that subtype — a more precise but still valid result type that the surrounding context, which accepted the declared supertype, still accepts; the round-trip is then more precise than the source rather than byte-identical, as elsewhere.) *) (* The concrete width an exact ([br_if]) exit value re-defaults to on re-parse ([resolve_omitted_valtype]: a flexible int/number/int8/int16 -> i32, large-int -> i64, float -> f64, a concrete value -> itself). A polymorphic ([Unknown]) exact is a [br_if] value on the polymorphic stack of dead code, snapshotted here before its own downstream context (an arithmetic op, a cast) could type it; with the annotation dropped that context re-defaults it to i32 (the dead-code default), so treat it as i32 rather than "no constraint" — otherwise a block whose result is wider (an i64 fall-through alongside such a [br_if]) would drop the load-bearing annotation and no longer re-infer. [None] only for [Error] (recovery) and a bottom reference, which impose no width constraint. Used for the drop decision: an annotation dropped here must be re-derivable. *) and exact_reparse_internal ctx ty = match Cell.get ty with | Int8 | Int16 | Unknown -> Some i32_valtype.internal | _ -> Option.map (fun v -> v.internal) (standalone_valtype ctx ty) (* Whether an exact exit's re-parse type equals a candidate result [internal]. *) and exact_reparse_matches ctx ~result ty = match exact_reparse_internal ctx ty with None -> true | Some e -> e = result (* The width a flexible numeric literal re-defaults to on re-parse (int/number -> i32, large-int -> i64, float -> f64); [None] for anything already concrete or non-numeric. *) and flexible_default_internal = function | Int | Number | Int8 | Int16 -> Some i32_valtype.internal | LargeInt -> Some i64_valtype.internal | Float -> Some f64_valtype.internal | _ -> None (* Whether keeping the result annotation is load-bearing because dropping it would change the width on re-parse. [natural] are the exit types snapshotted before [join_collected] pinned them. When the join settled to a concrete type only because the declared annotation pinned a flexible exit to it (e.g. a bare float literal reaching an [f32] block, which the annotation pins to f32 but which re-defaults to f64 without it), dropping the annotation lets that exit re-infer the block to a different width — so keep it. Gated on [inferred] being concrete: when the join stayed flexible (an [if] over a [LargeInt] and an [Int] branch joins to a [LargeInt]) it self-resolves the same way on re-parse and the annotation is redundant. *) and natural_width_forces_annotation ~natural ~inferred = match Option.map (fun c -> Cell.get c) inferred with | Some (Valtype rv) -> List.exists (fun ty -> match flexible_default_internal ty with | Some def -> def <> rv.internal | None -> false) natural | _ -> false (* Snapshot the natural types of a block's collected exit values before [join_collected] pins them (for [natural_width_forces_annotation]). *) and collected_natural collected = List.map (fun (_, ty) -> Cell.get ty) collected (* A [br_if] value stays on the stack typed as the block's result; when the result is fixed (a present annotation, a context type, or the inferred join, all of which pin a flexible exact), only a *concrete* exact of a different type is a genuine mismatch — a flexible one is coerced to the result. Report each such exact against [result] (a concrete width). *) and report_exact_mismatches ctx ~location ~result exacts = match standalone_valtype ctx result with | None -> () | Some t -> List.iter (fun (loc, ty) -> match Cell.get ty with | Valtype v when v.internal <> t.internal -> Error.br_if_result_mismatch ctx.diagnostics ~location ~loc:(Option.value loc ~default:location) ~result ty | _ -> ()) exacts and finalize_inferred ?(needed = false) ?(exacts = []) ?(natural = []) ?location ctx typ ~inferred = if typ.results = [||] then match Option.bind inferred (resolve_omitted_valtype ctx) with | Some iv -> (* The inferred result pins a flexible exact, so only a concrete exact of a different type is unsound; without an annotation there is nothing to make it match, so report it. *) (match location with | Some location -> report_exact_mismatches ctx ~location ~result:(valtype_cell iv) exacts | None -> ()); ([| valtype_cell iv |], { typ with results = [| iv.typ |] }) | None -> ([||], typ) else let result_cells = match array_map_opt (internalize ctx) typ.results with | Some a -> a | None -> [||] in let drop = ctx.simplify && (not needed) && Array.length result_cells = 1 (* Keep the annotation if any exit (a fall-through / [br_table] value, …) would re-default to a different width on re-parse. *) && (not (natural_width_forces_annotation ~natural ~inferred)) (* Only drop the annotation when every exact ([br_if]) exit re-defaults to exactly the result; otherwise re-parse would re-infer a different result and the pass-through value would no longer match it. *) && (match standalone_valtype ctx result_cells.(0) with | Some t -> List.for_all (fun (_, ty) -> exact_reparse_matches ctx ~result:t.internal ty) exacts | None -> exacts = []) && match ( Option.bind inferred (standalone_valtype ctx), standalone_valtype ctx result_cells.(0) ) with | Some v, Some t -> Wax_wasm.Types.val_subtype (subtyping_info ctx) v.internal t.internal | _ -> false in (result_cells, if drop then { typ with results = [||] } else typ) (* Shared scaffold for the five expression-position synthesis inferers ([if]/[block]/[loop]/[try_table]/[try]). They are identical apart from the guard, how the body is typed, and the node they rebuild: each types its body against a fresh [Collecting] result cell, then joins the collected exits and (on [simplify]) drops a redundant annotation the same way. [applies] is an extra guard on top of [infer_block_applies] ([if] also requires an [else]); [type_body ~cs ~r] types the body against the shared cell and returns whatever [rebuild ~typ] needs to reconstruct the node. *) and infer_synthesized ?(applies = true) ctx i typ ~type_body = if not (infer_block_applies ctx typ && applies) then None else let cs, r = fresh_collecting (declared_result ctx typ) in (* [type_body] types the body against the shared cell (its side effects on [cs] are what the join below reads) and returns a [rebuild] closure that reconstructs the node from the finalized result type. *) let rebuild = type_body ~cs ~r in let natural = collected_natural cs.collected in let inferred = join_collected ctx ~location:i.info cs.collected in let results, typ = finalize_inferred ~needed:cs.needed ~exacts:cs.exacts ~natural ~location:i.info ctx typ ~inferred in Some (rebuild typ, results) (* Try to infer (and, on [simplify], drop) an [if]'s result type from the values reaching its exit, returning the typed node when it applies and [None] to fall back to the annotated path. Called from the expression-position [If] case ([type_block_construct]); a statement-position [if] is void and not inferred, like a statement [block]/[loop]. [cond] is the already-typed condition. Applies with an [else] and under the same conditions as the other block forms ([infer_block_applies]). Like them, both branches are typed against one shared [Collecting] cell (via [collect_into]), so every value reaching the exit — each branch's fall-through and any value branched to the [if]'s own label — is recorded and then joined. A trailing construction still synthesizes its own type (its natural type is what is collected), so [finalize_inferred] only drops [=> T] when that synthesized type is a subtype of it (a tail that cannot synthesize on its own, e.g. a bare [null], keeps it). *) and if_inference ctx i label typ ~cond ~if_block ~else_block = infer_synthesized ~applies:(Option.is_some else_block) ctx i typ ~type_body:(fun ~cs ~r -> let if_block' = collect_into ctx i.info label ~cs ~r if_block.desc in let else_block' = collect_into ctx i.info label ~cs ~r (Option.get else_block).desc in fun typ -> If { label; typ; cond; if_block = { if_block with desc = if_block' }; else_block = Some { (Option.get else_block) with desc = else_block' }; }) (* The block's declared single result internalized to a cell, or [None] when the result is omitted. *) and declared_result ctx typ = match typ.results with [| t |] -> internalize ctx t | _ -> None (* A fresh [Collecting] result cell and its backing record: [declared] is the annotation under test (or [None]), [needed] preset when it is already known to be load-bearing. *) and fresh_collecting ?(needed = false) declared = let cs = { collected = []; exacts = []; declared; needed } in (cs, Cell.make (Collecting cs)) (* Type one block body against the shared [Collecting] result cell [r] (backed by [cs]), in synthesis, recording every value reaching its exit — the fall-through plus each value branched to [label] — into [cs.collected] (via [subtype]) rather than unifying. The label is bound to [r] so [br]/[br_on_*] record their value; [r] is also passed as the body's result so a trailing nested block is routed and synthesized (its value collected) rather than typed as a void statement and lost — the fall-through is still read off the stack below. Returns the typed body. Every inferring block routes through this; [if] calls it once per branch with a shared cell so both branches' exits join. *) and collect_into ctx loc label ~cs ~r instrs = with_empty_stack ctx ~location:loc ~kind:Block (let* body' = block_contents { ctx with control_types = (label, [| r |]) :: ctx.control_types } [| r |] instrs in fun st -> (* The fall-through value (if any) reaches the exit alongside the branched ones. A single leftover is consumed; anything else is left for [with_empty_stack] to report. A value sitting on an [Unreachable] base is a dead fall-through (e.g. after a [br]): consume it just as [pop_args] would in check position, leaving the unreachable base. *) match st with | Cons (loc, tv, Empty) -> cs.collected <- (Some loc, tv) :: cs.collected; (Empty, body') | Cons (loc, tv, Unreachable) -> cs.collected <- (Some loc, tv) :: cs.collected; (Unreachable, body') | Empty -> (Empty, body') | Unreachable -> (Unreachable, body') | Cons _ -> (st, body')) (* Join the values reaching a block's exit into its inferred result, or [None] when none do (a void or fully divergent body). Incompatible exit types are reported with a caret at each offending value (falling back to [location], the block, when a value carries none); this is unreachable for well-typed input, where every exit is a subtype of the declared result. One type is kept so a single result is still produced. *) and join_collected ctx ~location collected = (* [collected] is built in reverse (cons as each exit is met); fold in source order so a mismatch points at the values that way and recovers with the first. *) match List.rev collected with | [] -> None | (loc0, first) :: rest -> Some (snd (List.fold_left (fun (loc_acc, acc) (loc, ty) -> match join_value_types ctx acc ty with | Some r -> (loc_acc, r) | None -> Error.block_exit_type_mismatch ctx.diagnostics ~location ~loc1:(Option.value loc_acc ~default:location) ~loc2:(Option.value loc ~default:location) acc ty; (loc_acc, acc)) (loc0, first) rest)) (* Whether to infer a block's result in expression (synthesis) position: only for the single-result, parameterless forms, and only when the annotation is omitted (a re-parse of a dropped one, which must be re-inferred) or [simplify] is converting from Wasm (so a redundant annotation can be dropped). *) and infer_block_applies ctx typ = Array.length typ.params = 0 && (typ.results = [||] || (ctx.simplify && Array.length typ.results = 1)) (* Infer (and, on [simplify], drop) the result type of a [do]/labelled block from the values reaching its exit. The single-branch counterpart of [if_inference]: same [fresh_collecting] / [collect_into] / [join_collected] shape, with one body. *) and block_inference ctx i label typ ~instrs = infer_synthesized ctx i typ ~type_body:(fun ~cs ~r -> let body' = collect_into ctx i.info label ~cs ~r instrs.desc in fun typ -> Block { label; typ; block = { instrs with desc = body' } }) (* Expression-position synthesis inference for [loop]/[try]/[try_table], the analogue of [block_inference] for [do]. Type the body (and, for [try], the handlers) against a fresh [Collecting] result cell so every value reaching the exit — the fall-through, and values branched to the block's label — is recorded, then join them and (on [simplify]) drop a redundant annotation. A [br] to a loop re-enters at its top (branch-target = the empty params), so a loop's value is only its fall-through; the others deliver to their label. *) and loop_inference ctx i label typ ~instrs = infer_synthesized ctx i typ ~type_body:(fun ~cs:_ ~r -> let instrs' = block ctx i.info label [||] [| r |] [||] instrs.desc in fun typ -> Loop { label; typ; block = { instrs with desc = instrs' } }) and trytable_inference ctx i label typ ~body ~catches = infer_synthesized ctx i typ ~type_body:(fun ~cs:_ ~r -> let results = [| r |] in let body' = block ctx i.info label [||] results results body.desc in check_trytable_catches ctx catches; fun typ -> TryTable { label; typ; block = { body with desc = body' }; catches }) and try_inference ctx i label typ ~body ~catches ~catch_all = infer_synthesized ctx i typ ~type_body:(fun ~cs:_ ~r -> let results = [| r |] in let body' = block ctx i.info label [||] results results body.desc in let catches, catch_all = type_try_catches ctx i label ~results catches catch_all in fun typ -> Try { label; typ; block = { body with desc = body' }; catches; catch_all }) (*** Module type and constant checking ***) let check_type_definitions ctx = Tbl.iter ctx.types (fun _ (i, (st : subtype)) -> let ty = Wax_wasm.Types.get_subtype (subtyping_info ctx) (def_id i) in (* A continuation type must wrap a function type. Point at the wrapped type as the source wrote it. *) (match (ty.typ, st.typ) with | Cont ft, Cont src_ref -> ( match (Wax_wasm.Types.get_subtype (subtyping_info ctx) ft).typ with | Func _ -> () | Struct _ | Array _ | Cont _ -> Error.expected_func_type ctx.diagnostics ~location:src_ref.info) | _ -> ()); (* Every check below is about the type's relationship to its declared supertype, so the supertype reference [sup] is the place to point. *) match (ty.supertype, st.supertype) with | None, _ | _, None -> () | Some j, Some sup -> let location = sup.info in let ty' = Wax_wasm.Types.get_subtype (subtyping_info ctx) j in if ty'.final then Error.final_supertype ctx.diagnostics ~location sup else let valid_subtype = match (ty.typ, ty'.typ) with | ( Func { params; results }, Func { params = params'; results = results' } ) -> Array.length params = Array.length params' && Array.length results = Array.length results' && Array.for_all2 (fun p p' -> Wax_wasm.Types.val_subtype (subtyping_info ctx) p' p) params params' && Array.for_all2 (fun r r' -> Wax_wasm.Types.val_subtype (subtyping_info ctx) r r') results results' | Struct fields, Struct fields' -> Array.length fields' <= Array.length fields && let rec loop k = k >= Array.length fields' || (field_subtype ctx fields.(k) fields'.(k) && loop (k + 1)) in loop 0 | Array field, Array field' -> field_subtype ctx field field' | Cont ft, Cont ft' -> Wax_wasm.Types.heap_subtype (subtyping_info ctx) (Type ft) (Type ft') | Func _, (Struct _ | Array _ | Cont _) | Struct _, (Func _ | Array _ | Cont _) | Array _, (Func _ | Struct _ | Cont _) | Cont _, (Func _ | Struct _ | Array _) -> false in let descriptor_ok = (* If the supertype has a descriptor, the subtype must too, and its descriptor must be a subtype of the supertype's. (A subtype may add a descriptor that its supertype lacks.) *) match ty'.descriptor with | None -> true | Some dp -> ( match ty.descriptor with | Some ds -> Wax_wasm.Types.heap_subtype (subtyping_info ctx) (Type ds) (Type dp) | None -> false) in let describes_ok = (* A subtype has a described type iff its supertype does, and the subtype's described type must be a subtype of the supertype's. *) match (ty.describes, ty'.describes) with | None, None -> true | Some os, Some op -> Wax_wasm.Types.heap_subtype (subtyping_info ctx) (Type os) (Type op) | Some _, None | None, Some _ -> false in if not (valid_subtype && descriptor_ok && describes_ok) then Error.invalid_subtype ctx.diagnostics ~location sup) let rec check_constant_instruction ctx i = let location = snd i.info in match i.desc with | Get idx -> ( match Tbl.find_opt ctx.globals idx with | Some (mut, _) -> if mut then Error.constant_global_required ctx.diagnostics ~location | None -> (* ref.func *) ()) | Null | StructDefault _ | ArrayDefault _ | Int _ | Float _ | Char _ | String _ -> () (* A punned field ([None], written [{x}]) is a [Get] of the like-named global, so it must satisfy the same constant-global rule; check that implicit [Get]. The [storagetype] array of the fabricated node is unused by the [Get] arm. *) | Struct (_, l) -> List.iter (check_constant_field ctx) l | StructDesc (d, l) -> check_constant_instruction ctx d; List.iter (check_constant_field ctx) l | StructDefaultDesc d -> check_constant_instruction ctx d | ArrayFixed (_, l) -> List.iter (check_constant_instruction ctx) l | Array (_, i1, i2) -> check_constant_instruction ctx i1; check_constant_instruction ctx i2 (* [cont.new] allocates a fresh continuation from a (constant) function reference, so it is itself constant; its operand must be constant too. This tracks the open stack-switching spec PR (the spec does not list it yet). *) | ContNew (_, f) -> check_constant_instruction ctx f | BinOp ({ desc = Add | Sub | Mul; _ }, i1, i2) -> ( check_constant_instruction ctx i1; check_constant_instruction ctx i2; match Cell.get (expression_type ctx i) with | Int | Valtype { internal = I32 | I64; _ } -> () | _ -> Error.constant_expression_required ctx.diagnostics ~location) | Cast ({ desc = Null; _ }, Valtype (Ref { nullable = true; _ })) -> (* ref.null *) () | Cast (i', Valtype (Ref { typ = I31; _ })) -> ( (* ref.i31 *) check_constant_instruction ctx i'; match Cell.get (expression_type ctx i') with | Valtype { internal = I32; _ } -> () | _ -> Error.constant_expression_required ctx.diagnostics ~location) | Cast (i', Valtype (Ref { typ = Extern; nullable })) -> (* extern.convert_any *) check_constant_instruction ctx i'; if match (Cell.get (expression_type ctx i') : inferred_type) with | Valtype { internal; _ } -> not (Wax_wasm.Types.val_subtype (subtyping_info ctx) internal (Ref { nullable; typ = Any })) | _ -> true then Error.constant_expression_required ctx.diagnostics ~location | Cast (i', Valtype (Ref { typ = Any; nullable })) -> (* any.convert_extern *) check_constant_instruction ctx i'; if match (Cell.get (expression_type ctx i') : inferred_type) with | Valtype { internal; _ } -> not (Wax_wasm.Types.val_subtype (subtyping_info ctx) internal (Ref { nullable; typ = Extern })) | _ -> true then Error.constant_expression_required ctx.diagnostics ~location | UnOp ({ desc = Pos; _ }, i') -> check_constant_instruction ctx i' | UnOp ({ desc = Neg; _ }, { desc = Float _ | Int _; _ }) -> () (* [v128::<shape>(..)] is a constant expression; its lanes are literals. Other SIMD ops are not constant. *) | Call ({ desc = Path (ns, name); _ }, args) when ns.desc = Simd.free_namespace && Simd.const_shape_of_name (Simd.free_full name.desc) <> None -> List.iter (check_constant_instruction ctx) args | UnOp ({ desc = Neg | Not; _ }, _) | BinOp ( { desc = ( Div _ | Rem _ | And | Or | Xor | Shl | Shr _ | Eq | Ne | Lt _ | Gt _ | Le _ | Ge _ ); _; }, _, _ ) | Block _ | Loop _ | While _ | If _ | TryTable _ | Try _ | TryCatch _ | Dispatch _ | Match _ | Unreachable | Nop | Hole | Path _ | Set _ | Tee _ | Call _ | TailCall _ | Cast _ | CastDesc _ | Test _ | NonNull _ | StructGet _ | GetDescriptor _ | StructSet _ | ArraySegment _ | ArrayGet _ | ArraySet _ | Let _ | Br _ | Br_if _ | Br_table _ | Br_on_null _ | Br_on_non_null _ | Br_on_cast _ | Br_on_cast_fail _ | Br_on_cast_desc_eq _ | Br_on_cast_desc_eq_fail _ | Hinted _ | Throw _ | ThrowRef _ | ContBind _ | Suspend _ | Resume _ | ResumeThrow _ | ResumeThrowRef _ | Switch _ | On _ | Return _ | Sequence _ | Select _ | If_annotation _ | Labelled _ -> Error.constant_expression_required ctx.diagnostics ~location (* A struct-literal field in a constant expression. An explicit value is checked directly; a punned field ([None]) is the implicit [Get] of the like-named global, which must also be an immutable global. *) and check_constant_field ctx (name, i) = match i with | Some i -> check_constant_instruction ctx i | None -> check_constant_instruction ctx { desc = Get name; info = ([||], name.info) } (*** Globals, functions, and declarations ***) type ('before, 'after) phased = | Before of 'before | After of 'after | PhasedConditional of { before : 'before; then_ : ('before, 'after) phased list; else_ : ('before, 'after) phased list option; } (* Type a data-segment offset as a constant expression of the memory address type. *) let type_data_offset ctx address_type off = let off' = with_empty_stack ctx ~location:off.info ~kind:Expression (toplevel_instruction ctx off) in check_type ctx off' (address_cell address_type); check_constant_instruction ctx off'; off' (*** Data segment contents (WAT numeric-values proposal) ***) let storagetype_name : storagetype -> string = function | Packed I8 -> "i8" | Packed I16 -> "i16" | Value I32 -> "i32" | Value I64 -> "i64" | Value F32 -> "f32" | Value F64 -> "f64" | Value (V128 | Ref _) -> "?" (* Whether a raw literal string is a valid value of the run's element type. Reuse the same predicates the WAT numlist form validates with, so the two agree. *) let data_run_element_valid (st : storagetype) s = match st with | Packed I8 -> Wax_wasm.Misc.is_int8 s | Packed I16 -> Wax_wasm.Misc.is_int16 s | Value I32 -> Wax_wasm.Misc.is_int32 s | Value I64 -> Wax_wasm.Misc.is_int64 s | Value F32 -> Wax_wasm.Misc.is_float32 s | Value F64 -> Wax_wasm.Misc.is_float64 s | Value (V128 | Ref _) -> false (* The lane count and per-lane validity of a [v128] run element's shape. *) let vec_lane_count : Wax_utils.V128.shape -> int = function | I8x16 -> 16 | I16x8 -> 8 | I32x4 | F32x4 -> 4 | I64x2 | F64x2 -> 2 let vec_lane_name : Wax_utils.V128.shape -> string = function | I8x16 -> "i8" | I16x8 -> "i16" | I32x4 -> "i32" | I64x2 -> "i64" | F32x4 -> "f32" | F64x2 -> "f64" let vec_lane_valid (shape : Wax_utils.V128.shape) s = match shape with | I8x16 -> Wax_wasm.Misc.is_int8 s | I16x8 -> Wax_wasm.Misc.is_int16 s | I32x4 -> Wax_wasm.Misc.is_int32 s | I64x2 -> Wax_wasm.Misc.is_int64 s | F32x4 -> Wax_wasm.Misc.is_float32 s | F64x2 -> Wax_wasm.Misc.is_float64 s (* Validate one data-segment element: string (nothing to check), scalar run (each value in range for the element type), or [v128] run (each lane group has its shape's lane count, and every lane is in range). Values are raw literal strings — nothing is typed as an expression. *) let type_data_element ctx (e : Ast.data_elem) = match e with | Data_string _ -> () | Data_run (st, values) -> List.iter (fun (v : (string, location) Ast.annotated) -> if not (data_run_element_valid st v.desc) then Error.data_run_bad_element ctx.diagnostics ~location:v.info (storagetype_name st)) values | Data_v128 vs -> List.iter (fun (v : (Wax_utils.V128.t, location) Ast.annotated) -> let { Wax_utils.V128.shape; components } = v.desc in if List.length components <> vec_lane_count shape then Error.data_v128_arity ctx.diagnostics ~location:v.info (vec_lane_count shape); List.iter (fun c -> if not (vec_lane_valid shape c) then Error.data_run_bad_element ctx.diagnostics ~location:v.info (vec_lane_name shape)) components) vs let type_data_init ctx init = List.iter (type_data_element ctx) init let rec globals ctx fields = List.map (fun field -> match field.desc with | Memory ({ address_type; data; _ } as m) -> check_limits ctx ~location:field.info "memory" ~shared:m.shared address_type m.page_size_log2 m.limits max_memory_size; let data = List.map (fun (d : _ Ast.memdata) -> type_data_init ctx d.init; { d with offset = type_data_offset ctx address_type d.offset }) data in After { field with desc = Memory { m with data } } | Data ({ mode; _ } as d) -> let mode = match mode with | Passive -> Passive | Active (mem, off) -> let address_type = match Tbl.find_opt ctx.memories mem with | Some (_, at) -> at | None -> let suggestions = Wax_utils.Spell_check.f (fun f -> Tbl.iter ctx.memories (fun k _ -> f k)) mem.desc in Error.unbound_name ctx.diagnostics ~location:mem.info ~suggestions "memory" mem; `I32 in Active (mem, type_data_offset ctx address_type off) in type_data_init ctx d.init; After { field with desc = Data { d with mode } } | Elem ({ reftype = rt; mode; init; _ } as e) -> let mode = match mode with | EPassive -> EPassive | EActive (tab, off) -> (* The offset indexes [tab], whose address type may be i64. *) let address_type = match Tbl.find_opt ctx.tables tab with | Some (at, _) -> at | None -> let suggestions = Wax_utils.Spell_check.f (fun f -> Tbl.iter ctx.tables (fun k _ -> f k)) tab.desc in Error.unbound_name ctx.diagnostics ~location:tab.info ~suggestions "table" tab; `I32 in EActive (tab, type_data_offset ctx address_type off) in let elem_typ = internalize ctx (Ref rt) in let init = List.map (fun i -> let i' = with_empty_stack ctx ~location:i.info ~kind:Expression (toplevel_instruction ctx i) in (let>@ typ = elem_typ in check_type ctx i' typ); check_constant_instruction ctx i'; i') init in After { field with desc = Elem { e with mode; init } } | Table ({ reftype = rt; init; _ } as t) -> check_limits ctx ~location:field.info "table" ~shared:false t.address_type None t.limits max_table_size; (* Without an initializer the table is filled with the element type's default value, which a non-nullable reference does not have. *) if Option.is_none init && not rt.nullable then Error.non_nullable_table ctx.diagnostics ~location:field.info; (* A table initializer may reference only imported globals. *) let init_ctx = { ctx with globals = ctx.import_globals } in let init = Option.map (fun e -> let e' = with_empty_stack init_ctx ~location:e.info ~kind:Expression (toplevel_instruction init_ctx e) in (let>@ typ = internalize ctx (Ref rt) in check_type ctx e' typ); check_constant_instruction init_ctx e'; e') init in After { field with desc = Table { t with init } } | Global ({ name; mut; typ; def; _ } as g) -> let typ, def' = match typ with | Some annot -> ( (* Type the initializer in checking mode against the annotation, mirroring a [let] binding: an omitted struct/array name is inferred from it, and the keep-bool decides whether the annotation is redundant (dropped only when converting from Wasm, and never for a [null] whose bare form would re-infer a floating type — see [is_null_initializer]). An immutable ([const]) global additionally drops an annotation that is a mere supertype of the initializer's type ([drop_supertype]), narrowing the global to that subtype — sound since nothing reassigns it (see [annotation_needed]). *) match internalize_valtype ctx annot with | None -> let def' = with_empty_stack ctx ~location:def.info ~kind:Expression (toplevel_instruction ctx def) in (Some annot, def') | Some ity -> (* Type the initializer before registering the global, so a self-reference (an initializer mentioning this global) is still reported as an unknown name. *) let def', needed = with_empty_stack ctx ~location:def.info ~kind:Expression (check_toplevel ~drop_supertype:(not mut) ctx (valtype_cell ity) def) in Tbl.add ctx.diagnostics ctx.globals name (mut, Some ity); let drop = ctx.simplify && (not needed) && not (is_null_initializer def') in ((if drop then None else Some annot), def')) | None -> (* No annotation: the global takes the initializer's type, the way a [let] binding without an annotation does. An [Unknown]/[Error] initializer makes the global poison ([None]) rather than defaulting to [i32], so its uses do not cascade; an [Unknown] one is additionally reported (see [bound_value_type]). *) let def' = with_empty_stack ctx ~location:def.info ~kind:Expression (toplevel_instruction ctx def) in let ity = bound_value_type ctx ~location:def.info (expression_type ctx def') in Tbl.add ctx.diagnostics ctx.globals name (mut, ity); (None, def') in check_constant_instruction ctx def'; After { field with desc = Global { g with typ; def = def' } } | Conditional { cond; then_fields; else_fields } -> PhasedConditional { before = field; then_ = with_cond ctx ~location:field.info cond true (fun () -> globals ctx then_fields.desc); else_ = Option.map (fun e -> with_cond ctx ~location:field.info cond false (fun () -> globals ctx e.desc)) else_fields; } | _ -> Before field) fields let rec functions ctx fields = List.filter_map (fun field -> match field with | Before ({ desc = Func { name; sign; body = label, body; typ; attributes }; info = location; } as f) -> let*@ func_typ = let*@ ty = let*@ _, tname, _ = Tbl.find ctx.diagnostics ctx.functions name in Tbl.find ctx.diagnostics ctx.types { name with desc = tname } in match ty with | _, { typ = Func typ; _ } -> Some typ | _ -> Error.expected_func_type ctx.diagnostics ~location:name.info; None in (* A [#[start]] function must have no parameters and no results. *) if List.exists (fun (k, _, _) -> k = "start") attributes && not (Array.length func_typ.params = 0 && Array.length func_typ.results = 0) then Error.start_function_signature ctx.diagnostics ~location:name.info; let*@ return_types = array_map_opt (fun typ -> internalize ctx typ) func_typ.results in let locals = ref StringMap.empty in (match sign with | Some { params; _ } -> Array.iter (fun p -> let id, typ = p.desc in match id with | Some id -> let>@ typ = internalize_valtype ctx typ in locals := StringMap.add id.desc (Some typ, id.info) !locals | None -> ()) params | _ -> ()); if debug then Format.eprintf "=== %s@." name.desc; let ctx = { ctx with locals = !locals; (* Parameters are always initialized. *) initialized_locals = StringMap.fold (fun k _ s -> StringSet.add k s) !locals StringSet.empty; (* Fresh per-function tracking of declared and read locals. *) read_locals = ref StringSet.empty; local_decls = ref []; (* Fresh per-function tracking of branched-to labels, and the labels declared in the body (collected once, up front). *) used_labels = ref StringSet.empty; label_decls = List.fold_left collect_labels [] body; (* Locals a later assignment writes, collected up front so a fused [let]'s drop can spot a write-once binding (linear: one traversal per function, not per binding). *) assigned_locals = List.fold_left collect_assigned_locals StringSet.empty body; control_types = [ (label, return_types) ]; return_types; } in (* The syntactic lints (constant conditions, dropped pure values) read the source body, before typing shadows [body] with the typed one. *) if ctx.warn_unused then List.iter (lint_source ctx) body; let body = with_empty_stack ctx ~location ~kind:Function (let* body = block_contents ctx return_types body in let* () = pop_args ctx ~location return_types in return body) in (* A local or label whose name starts with [_] is intentionally unused. *) if ctx.warn_unused then begin List.iter (fun name -> let n = name.desc in if (not (StringSet.mem n !(ctx.read_locals))) && not (String.length n > 0 && n.[0] = '_') then Error.unused_local ctx.diagnostics ~location:name.info name) (List.rev !(ctx.local_decls)); List.iter (fun name -> let n = name.desc in if (not (StringSet.mem n !(ctx.used_labels))) && not (String.length n > 0 && n.[0] = '_') then Error.unused_label ctx.diagnostics ~location:name.info name) (List.rev ctx.label_decls) end; Some { f with desc = Func { name; sign; body = (label, body); typ; attributes }; } | PhasedConditional { before = { desc = Conditional { cond; then_fields = tf; else_fields = ef }; info; }; then_; else_; } -> Some { info; desc = Conditional { cond; then_fields = { tf with desc = with_cond ctx ~location:info cond true (fun () -> functions ctx then_); }; else_fields = (match (ef, else_) with | Some ef, Some e -> Some { ef with desc = with_cond ctx ~location:info cond false (fun () -> functions ctx e); } | None, None -> None | _ -> assert false); }; } | PhasedConditional _ | Before { desc = Global _ | Conditional _ | Memory _ | Data _ | Elem _ | Table _; _; } -> assert false | After f -> Some f | Before ({ desc = Type _ | Module_annotation _ | Import _ | Import_group _ | Tag _; _; } as f) -> Some f) fields let funsig ctx sign = check_unique_param_names ctx.diagnostics sign.params; sign (* A function or tag may give both a type reference and an inline signature (e.g. [fn f: T (i32) -> i32]); the inline signature must then match the referenced function type [referenced]. The two are compared in canonical [Internal] form. Mirrors [Validation.check_inline_type]. *) let check_inline_type ctx ~location referenced sign = match sign with | None -> () | Some sign -> ( match (internal_functype ctx referenced, internal_functype ctx sign) with | Some f, Some f' -> if f <> f' then Error.inline_function_type_mismatch ctx.diagnostics ~location | _ -> ()) let fundecl ctx name typ sign = if Tbl.exists ctx.diagnostics ctx.functions name then None else match typ with | Some typ -> ( let*@ info = Tbl.find ctx.diagnostics ctx.types typ in (* The referenced type must be a function type (as for tags below); if an inline signature is also given, it must match. *) match snd info with | { typ = Func ft; _ } -> check_inline_type ctx ~location:typ.info ft sign; Some (def_id (fst info), typ.desc) | _ -> Error.expected_func_type ctx.diagnostics ~location:typ.info; None) | None -> ( match sign with | Some sign -> let name = { name with desc = "<func:" ^ name.desc ^ ">" } in let+@ i = (* [add_type] runs the [functype] converter, which already checks parameter-name uniqueness, so [sign] needs no separate [funsig] pass here (that would report duplicates twice). *) add_type ctx.diagnostics ctx.type_context [| Ast.no_loc ( name, { supertype = None; typ = Func sign; final = true; descriptor = None; describes = None; } ); |] in (i, name.desc) | None -> assert false) let field_attributes (field : _ modulefield) = match field with | Func { attributes; _ } | Global { attributes; _ } | Tag { attributes; _ } | Memory { attributes; _ } | Data { attributes; _ } | Table { attributes; _ } | Elem { attributes; _ } | Module_annotation attributes -> attributes (* An import's attributes hang off each [import_decl]; they are validated while walking the import, not through [field_attributes]. *) | Type _ | Conditional _ | Import _ | Import_group _ -> [] (* Reject unknown attributes and validate the value shape of the ones that are allowed on the entity carrying them. [import_ok] is set for the declarations inside an [import "module" { ... }] block, where a name-only [#[import = "name"]] overrides the imported name. *) let check_attribute_list diagnostics ~export_ok ~start_ok ~module_ok ~import_ok ~default_location attributes = List.iter (fun (name, value, guard) -> let location = match value with Some v -> v.info | None -> default_location in (* A per-attribute [if <cond>] guard is only meaningful on [export] and [start]; blame its own [if] keyword. *) (match guard with | Some g when name <> "export" && name <> "start" -> Error.guard_not_allowed diagnostics ~location:g.info name | _ -> ()); match name with | "export" -> (* A bare [#[export]] (no value) reuses the entity's Wax name as the export name; an explicit name must be a string. *) (match value with | None | Some { desc = String _; _ } -> () | _ -> Error.annotation_value_mismatch diagnostics ~location "export" "a string"); if not export_ok then Error.annotation_not_allowed diagnostics ~location "export" | "start" -> (match value with | None -> () | Some _ -> Error.annotation_value_mismatch diagnostics ~location "start" "no value"); if not start_ok then Error.annotation_not_allowed diagnostics ~location "start" | "module" -> (match value with | Some { desc = String _; _ } -> () | _ -> Error.annotation_value_mismatch diagnostics ~location "module" "a string"); if not module_ok then Error.annotation_not_allowed diagnostics ~location "module" | "feature" -> (match value with | Some { desc = String _; _ } -> () | _ -> Error.annotation_value_mismatch diagnostics ~location "feature" "a string"); (* Allowed exactly where [module] is: as an inner attribute. *) if not module_ok then Error.annotation_not_allowed diagnostics ~location "feature" | "import" -> (match value with | Some { desc = String _; _ } -> () | _ -> Error.annotation_value_mismatch diagnostics ~location "import" "a string"); if not import_ok then Error.annotation_not_allowed diagnostics ~location "import" | _ -> Error.unknown_annotation diagnostics ~location name) attributes (* Validate the annotations on a module field: reject unknown ones, check the value shape of [export] / [start] / [module], and allow each only where it is meaningful. *) let check_attributes diagnostics field = let export_ok, start_ok, module_ok = match field.desc with | Func _ -> (true, true, false) | Global _ | Memory _ | Table _ | Tag _ -> (true, false, false) | Module_annotation _ -> (false, false, true) | Data _ | Elem _ | Type _ | Import _ | Import_group _ | Conditional _ -> (false, false, false) in check_attribute_list diagnostics ~export_ok ~start_ok ~module_ok ~import_ok:false ~default_location:field.info (field_attributes field.desc) (*** Type-checking a configuration ***) let type_configuration ?(warn_unused = false) ?(build = true) ?(resolve_links = None) ?(pun_spans = None) ?(member_completions = None) ?(features = Wax_utils.Feature.default ()) ~simplify diagnostics fields = let cond = ref Cond.true_ in let cond_env = Cond.create () in let links = resolve_links in let type_context = { internal_types = Wax_wasm.Types.create (); types = Tbl.make ~hover:hover_of_type (Namespace.make ~links cond) "type"; features; subtyping_info_cache = None; } in (* Walk module fields, recursing into groups and threading the branch assumption through conditionals so each [Type]/declaration is registered under the assumption of the branch it appears in. *) let rec walk_fields f fields = List.iter (fun (field : (_ modulefield, _) annotated) -> match field.desc with | Conditional { cond = c; then_fields; else_fields } -> with_cond_ref cond cond_env diagnostics ~location:field.info c true (fun () -> walk_fields f then_fields.desc); Option.iter (fun e -> with_cond_ref cond cond_env diagnostics ~location:field.info c false (fun () -> walk_fields f e.desc)) else_fields | _ -> f field) fields in walk_fields (fun (field : (_ modulefield, _) annotated) -> match field.desc with | Type rectype -> let _ : Wax_wasm.Types.Id.t option = add_type diagnostics type_context rectype in () | _ -> ()) fields; (* Index the struct types by their field set, so a literal whose name is omitted can be resolved from its fields. All types are registered above, so this is complete; a later distinct name for the same key marks it ambiguous ([None]), while a conditional variant of the same name does not. *) let structs_by_fields = Hashtbl.create 16 in Tbl.iter type_context.types (fun name (_, (st : subtype)) -> match st.typ with | Struct sfields -> ( let key = field_set_key (Array.to_list (Array.map (fun f -> (fst f.desc).desc) sfields)) in match Hashtbl.find_opt structs_by_fields key with | None -> Hashtbl.replace structs_by_fields key (Some (Ast.no_loc name)) | Some (Some n) when n.desc = name -> () | Some _ -> Hashtbl.replace structs_by_fields key None) | Func _ | Array _ | Cont _ -> ()); let ctx = let namespace = Namespace.make ~links cond in { diagnostics; type_context; types = type_context.types; structs_by_fields; functions = Tbl.make namespace "function"; globals = Tbl.make ~hover:hover_of_global namespace "global"; import_globals = Tbl.make ~hover:hover_of_global namespace "global"; memories = Tbl.make namespace "memory"; datas = Tbl.make (Namespace.make ~links cond) "data segment"; tables = Tbl.make namespace "table"; elems = Tbl.make (Namespace.make ~links cond) "element segment"; tags = Tbl.make (Namespace.make ~links cond) "tag"; locals = StringMap.empty; warn_unused; read_locals = ref StringSet.empty; local_decls = ref []; used_labels = ref StringSet.empty; label_decls = []; assigned_locals = StringSet.empty; initialized_locals = StringSet.empty; control_types = []; return_types = [||]; cond; cond_env; resolve_links = links; pun_spans; member_completions; simplify; } in check_type_definitions ctx; let memory_index = ref 0 in (* Register a tag's type from its [typ]/[sign], shared by imported and defined tags. *) let register_tag name typ sign = let>@ typ = match (typ, sign) with | Some typ, _ -> ( let*@ info = Tbl.find ctx.diagnostics ctx.types typ in match snd info with | { typ = Func ft; _ } -> check_inline_type ctx ~location:typ.info ft sign; Some ft | _ -> Error.expected_func_type ctx.diagnostics ~location:typ.info; None) | None, Some sign -> Some (funsig ctx sign) | None, None -> assert false in Tbl.add diagnostics ctx.tags name typ in (* Register an imported entity under its Wax name. *) let register_import (decl : Ast.import_decl) = match decl.kind with | Import_func { typ; sign; exact } -> let>@ i, n = fundecl ctx decl.id typ sign in Tbl.add diagnostics ctx.functions decl.id (i, n, exact) | Import_global { mut; typ } -> let>@ typ = internalize_valtype ctx typ in Tbl.add diagnostics ctx.globals decl.id (mut, Some typ) | Import_tag { typ; sign } -> register_tag decl.id typ sign | Import_memory { address_type; _ } -> let i = !memory_index in incr memory_index; Tbl.add diagnostics ctx.memories decl.id (i, address_type) | Import_table { address_type; reftype = rt; _ } -> Tbl.add diagnostics ctx.tables decl.id (address_type, rt) in walk_fields (fun field -> match field.desc with | Memory { name; address_type; data; _ } -> let i = !memory_index in incr memory_index; Tbl.add diagnostics ctx.memories name (i, address_type); List.iter (fun (d : _ Ast.memdata) -> Option.iter (fun n -> Tbl.add diagnostics ctx.datas n ()) d.data_name) data | Import { decl; _ } -> register_import decl.desc | Import_group { decls; _ } -> List.iter (fun d -> register_import d.desc) decls | Func { name; typ; sign; _ } -> (* A module-defined function has exactly its declared type, so a reference to it is exact — but exact reference types are part of custom-descriptors; without it, type it as the plain inexact reference, as before the proposal. *) let>@ i, n = fundecl ctx name typ sign in let exact = Wax_utils.Feature.is_enabled ctx.type_context.features Wax_utils.Feature.Custom_descriptors in Tbl.add diagnostics ctx.functions name (i, n, exact) | Tag { name; typ; sign; _ } -> register_tag name typ sign | Data { name; _ } -> Option.iter (fun n -> Tbl.add diagnostics ctx.datas n ()) name | Table { name; address_type; reftype = rt; _ } -> Tbl.add diagnostics ctx.tables name (address_type, rt) | Elem { name; reftype = rt; _ } -> Tbl.add diagnostics ctx.elems name rt | Conditional _ | Type _ | Global _ | Module_annotation _ -> ()) fields; (* A module may not export the same name twice. Each [#[export = "..."]] attribute is one export; [walk_fields] descends into groups and resolves conditionals per branch, so exports in mutually exclusive branches do not clash. *) let exports = Hashtbl.create 16 in (* The conditions under which a [#[start]] has been seen; like [exports], a second start clashes only when its condition can hold at the same time. *) let starts = ref [] in let module_seen = ref false in (* The Wax name a bare [#[export]] reuses as its export name. *) let field_name field = match field.desc with | Func { name; _ } | Global { name; _ } | Memory { name; _ } | Table { name; _ } | Tag { name; _ } -> Some name | Data _ | Elem _ | Import _ | Import_group _ | Conditional _ | Type _ | Module_annotation _ -> None in (* Process the [export]/[start]/[module] attributes carried by an entity whose Wax name is [default_name] (used as the export name of a bare [#[export]]). [location] blames the entity when an attribute carries no value. *) let process_attrs ~default_name ~location attributes = List.iter (fun (key, v, guard) -> (* The condition under which this attribute is actually present: the field's own branch assumption ([!cond]) narrowed by an optional per-attribute [if <cond>] guard (only [export]/[start] carry one). *) let cond = match guard with | None -> !cond | Some g -> Cond.and_ !cond (Cond.of_cond cond_env diagnostics ~location:g.info g.desc) in match (key, Option.map (fun (v : _ instr) -> v.desc) v) with | "export", ((Some (String _) | None) as value) -> (* The export name and the location to blame: the explicit string for [#[export = "nm"]], the entity's own name for a bare [#[export]]. *) let entry = match value with | Some (String (_, name)) -> Some (name, (Option.get v).info) | _ -> ( match default_name with | Some (id : ident) -> Some (id.desc, id.info) | None -> None) in Option.iter (fun (name, location) -> (* Two exports of the same name clash only when the conditions guarding them can hold at once; the same name in mutually exclusive branches is fine. Each remembered guard is the condition under which an export was seen. *) let guards = Option.value ~default:[] (Hashtbl.find_opt exports name) in if List.exists (fun g -> Cond.is_satisfiable (Cond.and_ g cond)) guards then Error.duplicated_export diagnostics ~location name; Hashtbl.replace exports name (cond :: guards)) entry | "start", _ -> (* A module may name at most one start function per configuration; starts in mutually exclusive branches are fine. *) if List.exists (fun g -> Cond.is_satisfiable (Cond.and_ g cond)) !starts then Error.multiple_start diagnostics ~location; starts := cond :: !starts | "module", _ -> (* A module may carry at most one name annotation. *) if !module_seen then Error.multiple_module diagnostics ~location else module_seen := true | _ -> ()) attributes in (* Validate and process the attributes on one imported declaration: a name-only [#[import = "name"]] override and [#[export]] (a re-export) are meaningful there. *) let check_import_decl (decl : (Ast.import_decl, location) annotated) = check_attribute_list diagnostics ~export_ok:true ~start_ok:false ~module_ok:false ~import_ok:true ~default_location:decl.info decl.desc.attributes; (match List.filter (fun (k, _, _) -> k = "import") decl.desc.attributes with | _ :: (_, value, _) :: _ -> let location = match value with Some v -> v.info | None -> decl.info in Error.multiple_import diagnostics ~location | _ -> ()); (* An imported memory/table still has size limits to validate, the same as a defined one. *) (match decl.desc.kind with | Import_memory { address_type; limits; page_size_log2; } -> check_limits ctx ~location:decl.info "memory" ~shared address_type page_size_log2 limits max_memory_size | Import_table { address_type; limits; _ } -> check_limits ctx ~location:decl.info "table" ~shared:false address_type None limits max_table_size | Import_func _ | Import_global _ | Import_tag _ -> ()); process_attrs ~default_name:(Some decl.desc.id) ~location:decl.info decl.desc.attributes in walk_fields (fun field -> check_attributes diagnostics field; match field.desc with | Import { decl; _ } -> check_import_decl decl | Import_group { decls; _ } -> List.iter check_import_decl decls | _ -> process_attrs ~default_name:(field_name field) ~location:field.info (field_attributes field.desc)) fields; let _ : _ option = let name = Ast.no_loc "<string>" in add_type ctx.diagnostics ctx.type_context [| Ast.no_loc ( name, { supertype = None; typ = Array { mut = true; typ = Packed I8 }; final = true; descriptor = None; describes = None; } ); |] in let ctx = { ctx with (* Only imports are registered at this point; snapshot them as the global scope visible to table initializers. *) import_globals = { ctx.globals with tbl = Hashtbl.copy ctx.globals.tbl }; } in let phased_fields = globals ctx fields in let typed_fields = functions ctx phased_fields in (* Report module fields — functions and globals — that are defined but never referenced (the module-level analog of an unused local). A field is exempt if its name starts with [_], if it is exported or is the start function (both externally reachable), or if it is an import (an external contract, not a definition; those are [Fundecl]/[GlobalDecl] and never reach the arms below). Uses are collected by [Tbl.resolve] as names are looked up while typing the globals and function bodies above. *) if warn_unused then begin let exempt field = List.exists (fun (k, _, _) -> k = "export" || k = "start") (field_attributes field) in let unused tbl (name : ident) = (not (String.length name.desc > 0 && name.desc.[0] = '_')) && not (Tbl.is_used tbl name.desc) in (* An imported function or global that is never referenced (and not re-exported) is reported, the same way an unused definition is. *) let check_unused_import (decl : (Ast.import_decl, location) annotated) = let exempt = List.exists (fun (k, _, _) -> k = "export") decl.desc.attributes in if not exempt then match decl.desc.kind with | Import_func _ when unused ctx.functions decl.desc.id -> Error.unused_import ctx.diagnostics ~location:decl.desc.id.info "function" decl.desc.id | Import_global _ when unused ctx.globals decl.desc.id -> Error.unused_import ctx.diagnostics ~location:decl.desc.id.info "global" decl.desc.id | _ -> () in walk_fields (fun field -> match field.desc with | Func { name; _ } when (not (exempt field.desc)) && unused ctx.functions name -> Error.unused_field ctx.diagnostics ~location:name.info "function" name | Global { name; _ } when (not (exempt field.desc)) && unused ctx.globals name -> Error.unused_field ctx.diagnostics ~location:name.info "global" name | Import { decl; _ } -> check_unused_import decl | Import_group { decls; _ } -> List.iter check_unused_import decls | _ -> ()) fields end; ( ctx.type_context.types, (* The cell-annotated tree ([inferred_module_annotation]); [f] resolves it to storage types for the deferred Wasm/WAT conversion, while the editor reads the cells directly. A validation-only pass ([~build:false]) runs the checking above for its diagnostics and discards it. *) if not build then [] else typed_fields ) (* Resolve the inference cells at each node to concrete storage types — the projection [f] applies before handing the typed tree to the Wasm conversion. [Unknown]/[Error]/[Collecting] have no concrete type ([None]); a flexible numeric literal takes its default width. *) let project_annotation (types, loc) = ( Array.map (fun ty -> match Cell.get ty with | Unknown | Error | Collecting _ -> None | Null -> Some (Value (Ref { nullable = true; typ = None_ })) | UnknownRef -> Some (Value (Ref { nullable = false; typ = None_ })) | Number -> Some (Value I32) | Int8 -> Some (Packed I8) | Int16 -> Some (Packed I16) | Int -> Some (Value I32) | LargeInt -> Some (Value I64) | Float -> Some (Value F64) | Valtype { typ; _ } -> Some (Value typ)) types, loc ) let project_module (m : inferred_module_annotation Ast.module_) : typed_module_annotation Ast.module_ = List.map (fun f -> { f with desc = Ast_utils.map_modulefield project_annotation f.desc }) m (* Conditional annotations denote mutually-exclusive branches, so they are type-checked by exploring every reachable configuration (as the WAT validator does), rather than checking both branches as if they coexisted. *) (*** Conditional compilation and entry points ***) let rec instr_has_conditional (i : (_ instr_desc, _) annotated) = let any = List.exists instr_has_conditional in let opt = Option.fold ~none:false ~some:instr_has_conditional in match i.desc with | If_annotation _ -> true | Block { block; _ } | Loop { block; _ } | TryTable { block; _ } -> any block.desc | While { cond; step; block; _ } -> instr_has_conditional cond || Option.fold ~none:false ~some:instr_has_conditional step || any block.desc | If { cond; if_block; else_block; _ } -> instr_has_conditional cond || any if_block.desc || Option.fold ~none:false ~some:(fun b -> any b.desc) else_block | Try { block; catches; catch_all; _ } -> any block.desc || List.exists (fun (_, l) -> any l.desc) catches || Option.fold ~none:false ~some:(fun b -> any b.desc) catch_all | TryCatch { block; arms; _ } -> any block.desc || List.exists (fun a -> any a.arm_body.desc) arms | Sequence l -> any l | ArrayFixed (_, l) -> any l | Dispatch { index; arms; _ } -> instr_has_conditional index || List.exists (fun (_, body) -> any body.desc) arms | Match { scrutinee; arms; default } -> instr_has_conditional scrutinee || List.exists (fun (_, body) -> any body.desc) arms || any default.desc | ContBind (_, _, l) | Suspend (_, l) | Resume (_, _, l) | ResumeThrow (_, _, _, l) | ResumeThrowRef (_, _, l) | Switch (_, _, l) | Throw (_, l) -> any l | Call (a, l) | TailCall (a, l) -> instr_has_conditional a || any l (* A punned field ([None]) is a [Get] and carries no conditional. *) | Struct (_, l) -> List.exists (fun (_, i) -> Option.fold ~none:false ~some:instr_has_conditional i) l | StructDesc (d, l) -> instr_has_conditional d || List.exists (fun (_, i) -> Option.fold ~none:false ~some:instr_has_conditional i) l | CastDesc (a, _, b) | Br_on_cast_desc_eq (_, _, a, b) | Br_on_cast_desc_eq_fail (_, _, a, b) | BinOp (_, a, b) | Array (_, a, b) | ArraySegment (_, _, a, b) | ArrayGet (a, b) | StructSet (a, _, b) -> instr_has_conditional a || instr_has_conditional b | ArraySet (a, b, c) | Select (a, b, c) -> instr_has_conditional a || instr_has_conditional b || instr_has_conditional c | Set (_, _, i) | Tee (_, i) | Labelled (_, i) | Cast (i, _) | Test (i, _) | NonNull i | UnOp (_, i) | StructGet (i, _) | GetDescriptor i | StructDefaultDesc i | ArrayDefault (_, i) | Br_if (_, i) | Hinted (_, i) | On (i, _) | Br_table (_, i) | Br_on_null (_, i) | Br_on_non_null (_, i) | Br_on_cast (_, _, i) | Br_on_cast_fail (_, _, i) | ThrowRef i | ContNew (_, i) -> instr_has_conditional i | Let (_, i) | Br (_, i) | Return i -> opt i | Unreachable | Nop | Hole | Null | Get _ | Path _ | Char _ | String _ | Int _ | Float _ | StructDefault _ -> false let field_has_conditional (f : (_ modulefield, _) annotated) = match f.desc with | Conditional _ -> true | Func { body = _, instrs; _ } -> List.exists instr_has_conditional instrs | Global { def; _ } -> instr_has_conditional def | _ -> false (* Resolve every conditional against the assumption [asm], inlining the selected branch to produce a conditional-free module (groups are kept and recursed into). For an undetermined conditional, select [then], [enqueue] the [else] configuration, and [record] the chosen literal. *) let specialize_fields env diagnostics ~enqueue ~record asm0 fields = let module S = Wax_wasm.Cond_solver in (* Resolve one conditional and return both the specialized branch and the assumption that holds afterwards. Each branch is taken only if it is reachable under [asm] (its conjunction with the branch condition is satisfiable); an unreachable branch is pruned, so we never explore an infeasible configuration. The surviving assumption is threaded into the following siblings, so e.g. once [cond1] forces [$wasi], a sibling [#[if(not wasi)]] has its [@then] pruned. *) let choose asm cond ~location ~then_branch ~else_branch = let c = S.of_cond env diagnostics ~location cond in let then_asm = S.and_ asm c and else_asm = S.and_ asm (S.not_ c) in if not (S.is_satisfiable then_asm) then ( record (S.not_ c); (else_branch else_asm, else_asm)) else if not (S.is_satisfiable else_asm) then ( record c; (then_branch then_asm, then_asm)) else ( enqueue else_asm; record c; (then_branch then_asm, then_asm)) in (* Instruction-level specializer: resolve each [If_annotation] by splicing the selected branch into the enclosing list; recurse into every sub-instruction and nested block body. [sone] is for single-instruction positions, where an [If_annotation] cannot appear (it is statement-only). *) let rec sinstrs asm l = match l with | [] -> [] | i :: rest -> let instrs, asm = sinstr asm i in instrs @ sinstrs asm rest and sinstr asm (i : (_ instr_desc, _) annotated) = match i.desc with | If_annotation { cond; then_body; else_body } -> choose asm cond ~location:i.info ~then_branch:(fun asm' -> sinstrs asm' then_body.desc) ~else_branch:(fun asm' -> match else_body with Some e -> sinstrs asm' e.desc | None -> []) | desc -> ([ { i with desc = sdesc asm desc } ], asm) and sone asm i = match sinstr asm i with [ x ], _ -> x | _ -> assert false and sdesc asm (desc : _ instr_desc) : _ instr_desc = match desc with | Block { label; typ; block } -> Block { label; typ; block = { block with desc = sinstrs asm block.desc } } | Loop { label; typ; block } -> Loop { label; typ; block = { block with desc = sinstrs asm block.desc } } | While { label; cond; step; block } -> While { label; cond = sone asm cond; step = Option.map (sone asm) step; block = { block with desc = sinstrs asm block.desc }; } | If { label; typ; cond; if_block; else_block } -> If { label; typ; cond = sone asm cond; if_block = { if_block with desc = sinstrs asm if_block.desc }; else_block = Option.map (fun b -> { b with desc = sinstrs asm b.desc }) else_block; } | TryTable { label; typ; catches; block } -> TryTable { label; typ; catches; block = { block with desc = sinstrs asm block.desc }; } | Try { label; typ; block; catches; catch_all } -> Try { label; typ; block = { block with desc = sinstrs asm block.desc }; catches = List.map (fun (t, l) -> (t, { l with desc = sinstrs asm l.desc })) catches; catch_all = Option.map (fun b -> { b with desc = sinstrs asm b.desc }) catch_all; } | TryCatch { label; typ; block; arms } -> TryCatch { label; typ; block = { block with desc = sinstrs asm block.desc }; arms = List.map (fun a -> { a with arm_body = { a.arm_body with desc = sinstrs asm a.arm_body.desc }; }) arms; } | Set (idx, op, v) -> Set (idx, op, sone asm v) | Tee (idx, v) -> Tee (idx, sone asm v) | Labelled (l, v) -> Labelled (l, sone asm v) | Call (t, args) -> Call (sone asm t, List.map (sone asm) args) | TailCall (t, args) -> TailCall (sone asm t, List.map (sone asm) args) | Cast (v, t) -> Cast (sone asm v, t) | CastDesc (v, t, d) -> CastDesc (sone asm v, t, sone asm d) | Test (v, t) -> Test (sone asm v, t) | NonNull v -> NonNull (sone asm v) | Struct (idx, fields) -> Struct (idx, List.map (fun (i, v) -> (i, Option.map (sone asm) v)) fields) | StructDesc (d, fields) -> StructDesc ( sone asm d, List.map (fun (i, v) -> (i, Option.map (sone asm) v)) fields ) | StructDefaultDesc d -> StructDefaultDesc (sone asm d) | StructGet (v, idx) -> StructGet (sone asm v, idx) | GetDescriptor v -> GetDescriptor (sone asm v) | StructSet (v, idx, w) -> StructSet (sone asm v, idx, sone asm w) | Array (idx, a, b) -> Array (idx, sone asm a, sone asm b) | ArrayDefault (idx, v) -> ArrayDefault (idx, sone asm v) | ArrayFixed (idx, l) -> ArrayFixed (idx, List.map (sone asm) l) | ArraySegment (idx, d, a, b) -> ArraySegment (idx, d, sone asm a, sone asm b) | ArrayGet (a, b) -> ArrayGet (sone asm a, sone asm b) | ArraySet (a, b, c) -> ArraySet (sone asm a, sone asm b, sone asm c) | BinOp (op, a, b) -> BinOp (op, sone asm a, sone asm b) | UnOp (op, v) -> UnOp (op, sone asm v) | Let (bs, body) -> Let (bs, Option.map (sone asm) body) | Br (l, v) -> Br (l, Option.map (sone asm) v) | Br_if (l, v) -> Br_if (l, sone asm v) | Hinted (h, v) -> Hinted (h, sone asm v) | On (v, h) -> On (sone asm v, h) | Br_table (ls, v) -> Br_table (ls, sone asm v) | Dispatch { index; cases; default; arms } -> Dispatch { index = sone asm index; cases; default; arms = List.map (fun (l, body) -> (l, { body with desc = sinstrs asm body.desc })) arms; } | Match { scrutinee; arms; default } -> Match { scrutinee = sone asm scrutinee; arms = List.map (fun (pat, body) -> (pat, { body with desc = sinstrs asm body.desc })) arms; default = { default with desc = sinstrs asm default.desc }; } | Br_on_null (l, v) -> Br_on_null (l, sone asm v) | Br_on_non_null (l, v) -> Br_on_non_null (l, sone asm v) | Br_on_cast (l, t, v) -> Br_on_cast (l, t, sone asm v) | Br_on_cast_fail (l, t, v) -> Br_on_cast_fail (l, t, sone asm v) | Br_on_cast_desc_eq (l, t, v, d) -> Br_on_cast_desc_eq (l, t, sone asm v, sone asm d) | Br_on_cast_desc_eq_fail (l, t, v, d) -> Br_on_cast_desc_eq_fail (l, t, sone asm v, sone asm d) | Throw (idx, v) -> Throw (idx, List.map (sone asm) v) | ThrowRef v -> ThrowRef (sone asm v) | ContNew (ct, v) -> ContNew (ct, sone asm v) | ContBind (src, dst, l) -> ContBind (src, dst, List.map (sone asm) l) | Suspend (tag, l) -> Suspend (tag, List.map (sone asm) l) | Resume (ct, h, l) -> Resume (ct, h, List.map (sone asm) l) | ResumeThrow (ct, tag, h, l) -> ResumeThrow (ct, tag, h, List.map (sone asm) l) | ResumeThrowRef (ct, h, l) -> ResumeThrowRef (ct, h, List.map (sone asm) l) | Switch (ct, tag, l) -> Switch (ct, tag, List.map (sone asm) l) | Return v -> Return (Option.map (sone asm) v) | Sequence l -> Sequence (sinstrs asm l) | Select (c, t, e) -> Select (sone asm c, sone asm t, sone asm e) | If_annotation _ -> assert false (* handled in [sinstr] *) | ( Unreachable | Nop | Hole | Null | Get _ | Path _ | Char _ | String _ | Int _ | Float _ | StructDefault _ ) as x -> x in (* Resolve each per-attribute [if <cond>] guard against the configuration. A guard gates the presence of just this export, so it partitions the space exactly like an [#[if]] block: [choose] prunes the export in configurations where the guard cannot hold and enqueues the complementary configuration where it does not, threading the surviving assumption into later fields. The guard itself is dropped -- in each explored configuration the export is unconditionally present or absent. *) let sattrs asm (attrs : attributes) : attributes * S.t = List.fold_left (fun (acc, asm) (k, v, guard) -> match guard with | None -> (acc @ [ (k, v, None) ], asm) | Some g -> let kept, asm = choose asm g.desc ~location:g.info ~then_branch:(fun _ -> [ (k, v, None) ]) ~else_branch:(fun _ -> []) in (acc @ kept, asm)) ([], asm) attrs in let sdecl asm (decl : (Ast.import_decl, location) annotated) = let attributes, asm = sattrs asm decl.desc.attributes in ({ decl with desc = { decl.desc with attributes } }, asm) in let rec sdecls asm = function | [] -> ([], asm) | d :: rest -> let d, asm = sdecl asm d in let ds, asm = sdecls asm rest in (d :: ds, asm) in let rec sfields asm fl = match fl with | [] -> [] | f :: rest -> let fields, asm = sfield asm f in fields @ sfields asm rest and sfield asm (f : (_ modulefield, _) annotated) = let sa attributes = sattrs asm attributes in match f.desc with | Conditional { cond; then_fields; else_fields } -> choose asm cond ~location:f.info ~then_branch:(fun asm' -> sfields asm' then_fields.desc) ~else_branch:(fun asm' -> match else_fields with Some e -> sfields asm' e.desc | None -> []) | Func ({ body = lbl, instrs; attributes; _ } as r) -> let attributes, asm = sa attributes in ( [ { f with desc = Func { r with body = (lbl, sinstrs asm instrs); attributes }; }; ], asm ) | Global ({ def; attributes; _ } as g) -> let attributes, asm = sa attributes in ( [ { f with desc = Global { g with def = sone asm def; attributes } } ], asm ) | Tag ({ attributes; _ } as r) -> let attributes, asm = sa attributes in ([ { f with desc = Tag { r with attributes } } ], asm) | Memory ({ attributes; _ } as r) -> let attributes, asm = sa attributes in ([ { f with desc = Memory { r with attributes } } ], asm) | Table ({ attributes; _ } as r) -> let attributes, asm = sa attributes in ([ { f with desc = Table { r with attributes } } ], asm) | Import { module_; decl } -> let decl, asm = sdecl asm decl in ([ { f with desc = Import { module_; decl } } ], asm) | Import_group { module_; decls } -> let decls, asm = sdecls asm decls in ([ { f with desc = Import_group { module_; decls } } ], asm) | Module_annotation attrs -> let attrs, asm = sa attrs in ([ { f with desc = Module_annotation attrs } ], asm) | Type _ | Data _ | Elem _ -> ([ f ], asm) in sfields asm0 fields (* [let] bindings are not allowed inside a conditional branch: branches are transparent and mutually exclusive, so a binding declared in one would leak past the conditional and clash with the other branch. *) let rec check_let_in_conditionals diagnostics (i : (_ instr_desc, _) annotated) = (match i.desc with | If_annotation { then_body; else_body; _ } -> let check_branch = List.iter (fun (s : (_ instr_desc, _) annotated) -> match s.desc with (* Only a binding that introduces a name would leak; an anonymous [Let] ([_ = e], a drop) binds nothing, so it is allowed. *) | Let (bindings, _) when List.exists (fun (name, _) -> Option.is_some name) bindings -> Error.let_in_conditional diagnostics ~location:s.info | _ -> ()) in check_branch then_body.desc; Option.iter (fun b -> check_branch b.desc) else_body | _ -> ()); List.iter (check_let_in_conditionals diagnostics) (Ast_utils.sub_instrs i) let check_let_bindings diagnostics fields = Ast_utils.iter_fields (fun (field : (_ modulefield, _) annotated) -> match field.desc with | Func { body = _, instrs; _ } -> List.iter (check_let_in_conditionals diagnostics) instrs | Global { def; _ } -> check_let_in_conditionals diagnostics def | _ -> ()) fields (* Apply the module's [#![feature = "…"]] declarations to [features]: each declared feature is enabled, in union with the command-line configuration — unless the command line explicitly disabled it, which is a conflict reported once, at the attribute. Runs at the entry points, before anything consults [is_enabled]. Only top-level attributes count: the attribute states a fact about the whole module, so it takes no guard and lives at the top of the file. An ill-shaped value (no string) is reported by [check_attribute_list] and ignored here. *) let apply_declared_features diagnostics features fields = List.iter (fun (field : (_ modulefield, _) annotated) -> match field.desc with | Module_annotation attrs -> List.iter (fun (key, value, _) -> match (key, value) with | "feature", Some { desc = String (_, name); info = location } -> ( match Wax_utils.Feature.of_name name with | None -> Error.unknown_feature diagnostics ~location name | Some feature -> if Wax_utils.Feature.explicitly_disabled features feature then Error.feature_conflict diagnostics ~location feature; (* Enable it even on a conflict: the error has been reported once, at the attribute; without this every gated construct below would error too. *) Wax_utils.Feature.declare features feature) | _ -> ()) attrs | _ -> ()) fields (* Check every reachable configuration of a conditional module: each is specialized to be conditional-free and typed independently, so a diagnostic is reported once with the assumption under which it is reachable. Only the diagnostics matter here, so the typed module is not built ([~build:false]). *) let check_configurations ~warn_unused ~features ~simplify diagnostics fields = Wax_wasm.Cond_explore.check_all diagnostics ?truncation_location: (match fields with hd :: _ -> Some hd.info | [] -> None) ~explain:(fun env c -> Wax_wasm.Cond_solver.explain env ~style:`Wax c) ~specialize:(fun env asm ~enqueue ~record -> specialize_fields env diagnostics ~enqueue ~record asm fields) ~check:(fun ctx m -> ignore (type_configuration ~build:false ~warn_unused ~features ~simplify ctx m : _ * _)) () let f_infer ?(simplify = false) ?(warn_unused = false) ?(resolve_links = None) ?(pun_spans = None) ?(member_completions = None) ?(features = Wax_utils.Feature.default ()) diagnostics fields = Wax_utils.Debug.timed "type-check" @@ fun () -> apply_declared_features diagnostics features fields; check_let_bindings diagnostics fields; if not (List.exists field_has_conditional fields) then type_configuration ~warn_unused ~resolve_links ~pun_spans ~member_completions ~features ~simplify diagnostics fields else begin check_configurations ~warn_unused ~features ~simplify diagnostics fields; (* Build the typed module (consumed only by the deferred WAT conversion and the editor; validation-only paths use [check] and never reach here) by typing the module with conditionals preserved. [type_configuration] resolves names per branch (condition-aware tables), so each branch is typed under its own assumption. Diagnostics are discarded — [check_configurations] above did the real checking; references are recorded here, off the single tree the editor consumes. *) type_configuration ~resolve_links ~pun_spans ~member_completions ~features ~simplify (Wax_utils.Diagnostic.collector ()) fields end let f ?(simplify = false) ?(warn_unused = false) ?(features = Wax_utils.Feature.default ()) diagnostics fields = let types, typed = f_infer ~simplify ~warn_unused ~features diagnostics fields in (types, project_module typed) let check ?(warn_unused = false) ?(features = Wax_utils.Feature.default ()) diagnostics fields = Wax_utils.Debug.timed "type-check" @@ fun () -> apply_declared_features diagnostics features fields; check_let_bindings diagnostics fields; if not (List.exists field_has_conditional fields) then ignore (type_configuration ~build:false ~warn_unused ~features ~simplify:false diagnostics fields : _ * _) else check_configurations ~warn_unused ~features ~simplify:false diagnostics fields let erase_types m = List.map (fun m -> { m with desc = Ast_utils.map_modulefield snd m.desc }) m
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