(** The checker: AST → typed IR. Two passes, because top-level names in a package are order-independent (plan.org, Modules): the first collects every type, signature and global, the second checks bodies against them. Mutually recursive functions need no forward declaration, and a struct may be used above where it is declared. Checking is *bidirectional*. An expression is checked against an expected type when there is one and inferred when there is not, which is what makes [None], a bare [0] and a struct literal work without any inference engine: the expected type flows in from the function's return type, the parameter it is being passed to, or the field it is being stored in. The rule from the two misparse bugs applies here too: *anything not yet implemented is rejected by name*, never approximated. Milestone 2 is calc-me.flan and nothing more (plan.org, Build sequence), so [Vec], [Map], [Result]/[try], user unions, closures, [dotimes], [defer], generics and cross-package imports are all errors with a message that says which milestone they belong to. *) let fail = Loc.fail (* [List.map]'s evaluation order is unspecified, and checking allocates frame slots as a side effect. Left-to-right is required, not a preference: a later let binding sees an earlier one, and slot numbering must be reproducible. *) let rec map_lr f = function | [] -> [] | x :: rest -> let y = f x in y :: map_lr f rest let rec map2_lr f xs ys = match xs, ys with | [], [] -> [] | x :: xs, y :: ys -> let z = f x y in z :: map2_lr f xs ys | _ -> invalid_arg "map2_lr" (* ── Environments ──────────────────────────────────────────────────── *) type binding = { slot : int; bty : Types.t; assignable : bool; (* locals are places; parameters are not — spec-memory *) } type env = { structs : (string, Tast.structure) Hashtbl.t; unions : (string, Tast.union) Hashtbl.t; aliases : (string, Ast.texpr) Hashtbl.t; consts : (string, int64) Hashtbl.t; (* compile-time array lengths *) locs : (string, Loc.t) Hashtbl.t; (* where each type was declared *) (* Enum name -> its members, in declaration order. A keyword at a call site resolves against this and nothing else. *) enums : (string, (string * int64) list) Hashtbl.t; (* Flan name -> the C symbol it is really called by. A foreign function is an ordinary entry in [fns] as well; this only records how to name it. *) externs : (string, string) Hashtbl.t; fns : (string, Types.t list * Types.t) Hashtbl.t; globals : (string, Types.t * bool) Hashtbl.t; (* type, is a constant *) (* Functions the checker made up: a handler-bind clause is lifted into one, because a handler is called from wherever the signal was and cannot be a branch in the function that established it. *) mutable lifted : Tast.fn list; } let new_env () = { structs = Hashtbl.create 16; unions = Hashtbl.create 16; aliases = Hashtbl.create 16; consts = Hashtbl.create 16; locs = Hashtbl.create 16; enums = Hashtbl.create 8; externs = Hashtbl.create 32; fns = Hashtbl.create 32; globals = Hashtbl.create 16; lifted = []; } (* Per-function state. Slots are never reused, so [slots] is also the frame size — the interpreter allocates one array of this length per call. *) type ctx = { env : env; ret : Types.t; mutable slots : int; (* The type of each slot, newest first. A backend needs it to size the frame — nothing else records it, since the IR refers to slots by index. *) mutable slot_tys : Types.t list; (* The source name of each slot, newest first, parallel to [slot_tys]. [None] for a slot the checker invented -- see [Tast.fn.snames]. Recorded here rather than recovered later because this scope list is the only place that ever knows it. *) mutable slot_names : string option list; mutable scope : (string * binding) list; (* innermost first *) (* Deferred forms, most recently registered first — which is also the order they run in. [defer] is function-scoped, so this list belongs to the function and not to a block — see [defer_ok] for where one may be written and [check_fn] for where the list is spliced onto the exit paths. *) mutable defers : Tast.expr list; (* Where a [defer] may be written, which is exactly: a form whose extent is the whole function body. Two things have that extent and only two — a top-level form of the body, and a form in the body of a [let] that itself has it, to any depth. A [let] always registers and its bindings outlive the block textually enclosing them, because a [let] is not a frame here: its bindings are function slots like any other, and nothing is released at scope exit (spec-memory.md, "When storage is released"). Everything else is refused, and the two that matter are refused for a reason rather than by omission. [defer] is a *compile-time* construct — the cleanup is copied into every exit path — so a branch would have to express "maybe registered", which it cannot, and a loop body would fire once at function exit rather than once per iteration. The flag is set immediately before each form that may carry one, never once around a body: [check] clears it on entry, so a body whose first form set it would otherwise refuse the second. [defer_block] names the innermost construct that cleared it, so the refusal says which. *) mutable defer_ok : bool; mutable defer_block : string; (* Only for the two things a handler clause cannot do. [outer] is the establishing function's scope, kept so that a reference to one of its locals can be refused for the reason it is really refused for rather than as an unknown name. *) outer : (string * binding) list; mutable in_handler : bool; (* True wherever handler or restart frames established by this function are on the stack. A [return] from there would leave them pointing into a frame that has gone, so it is refused — the same rule as [defer] inside a block. *) mutable in_frames : string option; (* True inside a [defer]'s forms. A defer is the cleanup a transfer runs on its way out (§5), so a transfer *starting* there has no answer: this function's defers are already half run and the first transfer's target is already in hand. Refused where it is written. *) mutable in_defer : bool; (* Move tracking, spec-memory.md's "(Vec T) and (Map K V) are move-only". [dead] is the slots whose value has been moved out, with where it went, so that a second use names the first rather than reporting a type error about nothing. It is flow-sensitive at an [if]: the two arms are checked from the same starting set and the *union* survives the join, so moving in one arm only is still a move afterwards — and moving in both arms, which is legal, is not two errors. [borrow] is set only while checking the *target* of an operation that reads a container without consuming it ([at], [len], [as-slice], [push], [reserve], [clone]). Without it every one of those would look like a move and no program could push twice. *) mutable dead : (int * Loc.t) list; mutable borrow : bool; (* The function being checked, so a clause lifted out of it can be named after it. The name has to be stable and has to say whose it is: a redefinition module emits the clauses belonging to the bodies it is replacing, and nothing else in the program can tell it which those are. *) owner : string; } (* [?name] is the source name, when there is one. It is optional so that the several places that allocate a hidden slot say nothing and get [None] -- a synthesized slot cannot accidentally acquire a name it was never given. *) let fresh_slot ?name ctx ty = let s = ctx.slots in ctx.slots <- s + 1; ctx.slot_tys <- ty :: ctx.slot_tys; ctx.slot_names <- name :: ctx.slot_names; s (* Shadowing is legal -- [(let [v 11] (let [v 22] ...))] is two slots, both named [v] -- and the debug info has nowhere to put the distinction. Every [!DILocalVariable] is scoped to the subprogram, because the typed IR has no block structure for a [!DILexicalBlock] to be built from, so two variables called [v] land in one flat scope and lldb answers [p v] with whichever it finds first. Measured, not assumed: it answers with the *outer* one, so it prints 11 while the body it is stopped in is computing with 22, and the inner binding is not listed at all. That is the one outcome worse than printing [s3]: a name the debugger is confident about and wrong about. So a repeat of a name already bound in this function gets a suffix, and both bindings are then visible and unambiguous. [~] is the reader's delimiter and cannot occur in a source symbol (the same reason [destructure~nth] is spelled that way), so [v~2] is visibly the compiler's doing and can never collide with something the programmer wrote. This is a way of not lying, not a way of being right: [v] is still the outer binding everywhere, including inside the inner one's extent. Scoping the variables properly means emitting a [!DILexicalBlock] per [Let] and moving the [llvm.dbg.declare]s out of the entry block to the binding sites, which needs block structure this IR does not carry. *) let bind ctx name bty ~assignable = let taken n = List.exists (fun s -> s = Some n) ctx.slot_names in let name' = if not (taken name) then name else let rec go k = let c = Printf.sprintf "%s~%d" name k in if taken c then go (k + 1) else c in go 2 in let slot = fresh_slot ~name:name' ctx bty in (* [ctx.scope] keeps the *source* name: the suffix is a debug-info artifact and resolving [v] must still find the innermost binding. *) ctx.scope <- (name, { slot; bty; assignable }) :: ctx.scope; slot let lookup ctx name = List.assoc_opt name ctx.scope (* A handler clause is lifted into a function of its own, so the establishing function's locals are simply not there. Capturing them is a closure with an explicit environment — spec-memory.md's case 2, a non-escaping [fn] capturing by value into a stack environment, since a handler frame does not outlive the function that pushed it — and until that exists a reference to one is refused for the reason it is really refused for, rather than as a name nobody has heard of. *) let captured ctx loc name = if ctx.in_handler && List.mem_assoc name ctx.outer then raise (Loc.Error (loc, Printf.sprintf "a handler cannot see %s: it is a local of the function that \ established the handler, and a handler runs from wherever the \ signal was. Use a global, or pass it on the condition." name)) let scoped ctx f = let saved = ctx.scope in let r = f () in ctx.scope <- saved; r (* A scope that is also a named blocker for [defer]. An arm of an [if] or a [match] runs only sometimes, and "maybe registered" is not something a compile-time construct can express — the cleanup is copied into every exit path or into none — so the refusal is about the branch and says so. Outside the [check] recursion on purpose: inside it the inferred type would be monomorphic, and the two callers pass functions returning different things. *) let branch ctx f = let blocker = ctx.defer_block in ctx.defer_block <- "a branch"; let r = scoped ctx f in ctx.defer_block <- blocker; r (* ── Type resolution ───────────────────────────────────────────────── *) let unimplemented loc what milestone = fail loc "%s is not implemented yet — milestone %d (see plan.org)" what milestone (* ── (Map K V), spec-memory.md ────────────────────────────────────────── Both halves are checked where the type is written, not where an operation is, so that a map nothing ever uses is still refused if it cannot work. [Check.key_pair] emits the hash and equality pair later, at the operation, and repeats these refusals rather than assuming: the two are reached by different paths and a silent disagreement between them would be worse than saying the same thing twice. *) let map_type loc (k : Types.t) (v : Types.t) = (* The value. The restriction is the one [(Vec (Vec T))] already carries, for the identical reason: the runtime copies and releases entries bytewise, so an owning value would have its header duplicated by clone and its buffer dropped on the floor by free. *) if Types.is_move_only v then fail loc "(Map %s %s) holds a move-only value, and the type-erased runtime \ copies entries bytewise — so clone would duplicate headers instead of \ copying, and free would leak what they own. Owned entries arrive with \ drop (step 5 in NEXT.md)" (Types.to_string k) (Types.to_string v); (* Unit has no bytes, so a slot for one is a slot of nothing: the cell geometry divides the cache line by the element size and there is nothing to divide by. It is also the natural spelling of a *set*, which is why someone will write it, so it is refused by name rather than by a crash. *) if Types.equal v Types.Unit then fail loc "a map value cannot be Unit — there is nothing to store. A set of keys \ is not built yet; use (Map %s bool) and ignore the value" (Types.to_string k); if Types.equal k Types.Unit then fail loc "a map key cannot be Unit — every key would be the same key"; (* The key, as far as the type alone can say. A struct passes here and is decided at the operation, by [key_pair], which walks its fields — the struct table is not necessarily complete while a type is being resolved, and every map that exists reaches an operation anyway, because a global of move-only type is refused and a local needs (map-new). *) if not (Types.keyable k) then fail loc "%s is not a map key. The first implementation takes integers, enums, \ bools, strings, fixed arrays of those, and value structs composed of \ those (spec-memory.md, \"Maps — first implementation\"). A float has \ no usable equality — NaN is not equal to itself — and a Ptr, a slice, \ a Vec or a Map would hash an address rather than what it points at" (Types.to_string k); Types.Map (k, v) let rec resolve env ?(seen = []) (t : Ast.texpr) : Types.t = let loc = t.Ast.tloc in match t.Ast.t with | Ast.Tname n -> resolve_name env ~seen loc n | Ast.Tslice e -> Types.Slice (resolve env ~seen e) | Ast.Tarray (l, e) -> Types.Array (array_len env loc l, resolve env ~seen e) (* {K V} is the type spelling. There is no map *literal*: a bare map form in expression position is a struct literal's field list, and giving the same braces two meanings is what the colon-to-dot change was for. A map is built with (map-new) and filled with (put). *) | Ast.Tmap (k, v) -> map_type loc (resolve env ~seen k) (resolve env ~seen v) (* The function *value* is refused where it is written; the annotation was not refused anywhere, so [(defn f [g (Fn [] i32)])] type checked and then died in emit with "no layout for". Refused here, beside the Map line above, which is the same shape of not-yet. *) | Ast.Tfn _ -> unimplemented loc "a function type" 5 | Ast.Tapp (name, args) -> (match name, args with | "Ptr", [ a ] -> Types.Ptr (resolve env ~seen a) | "Option", [ a ] -> Types.Option (resolve env ~seen a) | ("Ptr" | "Option"), _ -> fail loc "(%s T) takes exactly one type" name | "Vec", [ a ] -> let e = resolve env ~seen a in (* A Vec of a Vec is representable and would be wrong. spec-memory.md makes [clone] a deep copy and makes [free] recurse structurally into owning fields; the type-erased runtime does neither — it memcpys, so a clone would duplicate inner headers and a free would drop their buffers on the floor. Recursive teardown is what step 5's [drop] brings, and this is refused until it does rather than shipping the shallow answer under the deep name. *) if Types.is_move_only e then fail loc "(Vec %s) holds a move-only element, and the type-erased runtime \ copies and releases elements bytewise — so clone would duplicate \ headers instead of copying, and free would leak what they own. \ Recursive teardown arrives with drop (step 5 in NEXT.md)" (Types.to_string e); Types.Vec e | "Vec", _ -> fail loc "(Vec T) takes exactly one type" | "Map", [ k; v ] -> map_type loc (resolve env ~seen k) (resolve env ~seen v) | "Map", _ -> fail loc "(Map K V) takes exactly two types" | "Result", _ -> unimplemented loc "(Result T E)" 6 | "Handle", _ -> unimplemented loc "(Handle T)" 6 | _ -> fail loc "%s takes no type arguments — generics are milestone 5" name) (* One edit away from a type that exists — a substitution, an insertion, a deletion or a transposition of neighbours. Bounded at one, because two edits is no longer a typo, it is a guess. *) and near_miss env n = let one_edit a b = let la = String.length a and lb = String.length b in if abs (la - lb) > 1 then false else begin (* Walk both until they diverge, then require the tails to match with the single edit applied. *) let i = ref 0 in while !i < la && !i < lb && a.[!i] = b.[!i] do incr i done; let ta s k = String.sub s k (String.length s - k) in if la = lb then !i < la && (ta a (!i + 1) = ta b (!i + 1) (* stirng/string: two neighbours swapped. *) || (!i + 1 < la && a.[!i] = b.[!i + 1] && a.[!i + 1] = b.[!i] && ta a (!i + 2) = ta b (!i + 2))) else if la < lb then ta a !i = ta b (!i + 1) else ta a (!i + 1) = ta b !i end in let candidates = Types.primitive_names @ Hashtbl.fold (fun k _ acc -> k :: acc) env.aliases [] @ Hashtbl.fold (fun k _ acc -> k :: acc) env.structs [] @ Hashtbl.fold (fun k _ acc -> k :: acc) env.unions [] @ Hashtbl.fold (fun k _ acc -> k :: acc) env.enums [] in List.find_opt (fun c -> c <> n && one_edit n c) candidates and resolve_name env ~seen loc n = match Types.ikind_of_name n with | Some k -> Types.Int k | None -> match Types.fkind_of_name n with | Some k -> Types.Float k | None -> match n with | "bool" -> Types.Bool | "string" -> Types.String | "Unit" -> Types.Unit | "Never" -> Types.Never (* A builtin opaque type, the way [string] is a builtin ptr+len. There is no user-writable constructor and no way to name its procedure: see Types, and NEXT.md's "the escape is real". *) | "Allocator" -> Types.Alloc | _ when Hashtbl.mem env.aliases n -> if List.mem n seen then fail loc "the type alias %s is defined in terms of itself" n else resolve env ~seen:(n :: seen) (Hashtbl.find env.aliases n) | _ when Hashtbl.mem env.structs n -> Types.Named n (* A union has no layout in emit — nothing there mentions unions at all — so a union-typed global reached clang as a reference to an undefined %"U". Constructing one and reading a field of one are already refused, so there is nothing to lower: only a declaration that got through. *) | _ when Hashtbl.mem env.unions n -> unimplemented loc (Printf.sprintf "the union type %s" n) 6 | _ when Hashtbl.mem env.enums n -> Types.Enum n (* A typo in a primitive is lowercase too, and the type-variable rule below would otherwise report [f65] as unimplemented generics and send you to plan.org instead of to the character you mistyped. *) | _ when near_miss env n <> None -> fail loc "unknown type %s — did you mean %s?" n (Option.get (near_miss env n)) (* Lowercase is a type variable, Capitalized is concrete — no sigil (plan.org, Types). A variable parses, but nothing at milestone 2 can give a value one, so it is rejected here rather than later. *) | _ when n <> "" && n.[0] = Char.lowercase_ascii n.[0] -> unimplemented loc (Printf.sprintf "generic code over the type variable %s" n) 5 | _ -> fail loc "unknown type %s" n and array_len env loc = function | Ast.Lint n -> n | Ast.Lname n -> (match Hashtbl.find_opt env.consts n with | Some v -> v | None -> fail loc "%s is not a compile-time integer constant, so it cannot be \ an array length" n) (* ── Small helpers over the AST ────────────────────────────────────── *) (* Untyped literals: their machine type comes from context, so when one is an operand of a binary operator we look at the *other* operand first. *) let is_literal (e : Ast.expr) = match e.Ast.e with Ast.Int _ | Ast.Float _ | Ast.Byte _ -> true | _ -> false (* [addr] takes the address of a place, but the parser only builds places for [set]. Recover one from the expression it parsed instead. *) let place_of_expr (e : Ast.expr) : Ast.place option = match e.Ast.e with | Ast.Var s -> Some (Ast.Pvar s) | Ast.Field (t, f) -> Some (Ast.Pfield (t, f)) | Ast.Call ({ Ast.e = Ast.Var "at"; _ }, t :: idx) when idx <> [] -> Some (Ast.Pindex (t, idx)) | Ast.Call ({ Ast.e = Ast.Var "deref"; _ }, [ p ]) -> Some (Ast.Pderef p) | _ -> None let mk loc ty e : Tast.expr = { Tast.e; ty; loc } let unit_at loc = mk loc Types.Unit Tast.Unit (* A source location as a value, for a runtime trap that has to name the site rather than the runtime. The bounds and slice traps get theirs from [Emit], which renders the [Loc.t] it is already carrying; a trap reached through a plain runtime call has no such carrier, so the string is built here and crosses as ptr+len like any other. *) let here loc = mk loc Types.String (Tast.Str (Loc.to_string loc)) (* A runtime call, with the result type spelled at the site. *) let rt loc ty sym args = mk loc ty (Tast.Prim (Tast.Rt sym, args)) (* ── Reading a file at compile time, decision 1 ──────────────────────── The path is a *literal*, because the bytes have to be in hand before any value exists — this is Odin's rule too (check_load_directive rejects anything that is not Addressing_Constant) and it is what makes the result cost nothing at run time. It resolves relative to the directory of the file the form is written in, which is again Odin's rule (dir_from_path of the call's file). Relative to the compiler's working directory would make a package's assets depend on where flan was invoked from, which is the thing that cannot be right. An absolute path is taken as written. *) let embed_path loc (p : Ast.expr) = match p.Ast.e with | Ast.Str "" -> Loc.fail p.Ast.loc "an embedded path cannot be empty" | Ast.Str s when Filename.is_relative s -> let base = Filename.dirname loc.Loc.file in if String.equal base "" then s else Filename.concat base s | Ast.Str s -> s | _ -> Loc.fail p.Ast.loc "an embedded path must be a literal string — the bytes are read at \ compile time, so there is nothing here to compute it from" (* The whole read is guarded, not only the open. On Linux [open_in_bin] on a *directory* succeeds and [in_channel_length] answers a number; the read is where EISDIR arrives. Guarding only the open therefore turned (embed "dir") — someone who meant embed-dir — into an uncaught OCaml exception out of the checker, which is the one way a user can make the compiler crash rather than refuse. *) let read_embed_file path loc = match let ch = open_in_bin path in Fun.protect ~finally:(fun () -> close_in_noerr ch) (fun () -> really_input_string ch (in_channel_length ch)) with | s -> s | exception Sys_error msg -> if Sys.file_exists path && (try Sys.is_directory path with Sys_error _ -> false) then Loc.fail loc "cannot embed %s: it is a directory — (embed-dir \"...\") embeds one \ of those, as a [n EmbedFile]" path else Loc.fail loc "cannot embed %s: %s" path msg | exception End_of_file -> Loc.fail loc "cannot embed %s: it changed size while being read" path (* Non-recursive, files only, sorted by name — the three things Odin's #load_directory settles, and the sort is the one that matters most here: readdir order is filesystem-dependent, so an unsorted embed would make the emitted .ll differ between two builds of identical sources. *) let read_embed_dir path loc = let names = match Sys.readdir path with | exception Sys_error msg -> Loc.fail loc "cannot embed %s: %s" path msg | a -> Array.to_list a in (* [Sys.is_directory] *raises* on a path that does not resolve, so the existence test has to come first: a dangling symlink in an embedded directory would otherwise crash the compiler before it was ever asked about. Non-recursive and files only, which is Odin's rule too. *) let files = List.filter (fun n -> let full = Filename.concat path n in Sys.file_exists full && not (try Sys.is_directory full with Sys_error _ -> true)) names in List.map (fun n -> (n, read_embed_file (Filename.concat path n) loc)) (List.sort String.compare files) let i64_at loc n = mk loc (Types.Int Types.I64) (Tast.Int (n, Types.I64)) (* spec-memory.md, "Alignment": the number is produced where the concrete element type is known, which without generics is simply the call site. *) let size_of loc t = mk loc (Types.Int Types.I64) (Tast.Prim (Tast.SizeOf t, [])) let align_of loc t = mk loc (Types.Int Types.I64) (Tast.Prim (Tast.AlignOf t, [])) (* The address of an expression, place or not: the type-erased runtime takes the element [push] copies by pointer. *) let addr_of loc (e : Tast.expr) = mk loc (Types.Ptr e.Tast.ty) (Tast.Prim (Tast.AddrOf, [ e ])) (* Every integer index into an array or slice is i32 at milestone 2. *) let index_ty = Types.Int Types.I32 (* A condition's type at run time is a number, and it has to be the *same* number in a module compiled later against a program already running. So it is a hash of the name and not an index into anything: an index would shift the moment a struct were added, and every handler pushed by the old code would then match the wrong type. FNV-1a over the name, 32 bits. *) let type_id name = let h = ref 0x811c9dc5 in String.iter (fun c -> h := (!h lxor Char.code c) land 0xffffffff; h := (!h * 0x01000193) land 0xffffffff) name; !h (* How a restart's parameter list is spelled, and with it what the two ends of an [invoke-restart] compare — spec-conditions.md §3's run-time check. A restart is found by name on a dynamic stack, so neither end can see the other and nothing static can be checked: what is compared at run time is this string's hash, alongside the count, and the string itself is carried so that a mismatch can say what was wanted and what was given. Comparing a 32-bit hash means two different parameter lists could in principle collide. The count is checked separately, which rules out every practical case (a collision would have to be between two lists of the same length), and the types are parenthesised so that [(Option i32)] cannot read as two parameters. *) let restart_sig tys = "(" ^ String.concat " " (List.map Types.to_string tys) ^ ")" let expect loc ~want (got : Tast.expr) = match want with | None -> got | Some w -> if Types.fits ~expected:w ~actual:got.Tast.ty then got else fail loc "expected %s, found %s" (Types.to_string w) (Types.to_string got.Tast.ty) (* ── Expressions ───────────────────────────────────────────────────── *) (* ── (Map K V): the key's hash and equality pair ──────────────────────── spec-memory.md restricts the first implementation to built-in structural key types — integers, enums, strings, fixed arrays, and value structs composed recursively from those — and makes equality and hashing for them compiler-provided structural operations rather than type classes. So there is no dispatch to design: every key type resolves, here, to a pair of symbols, and the pair is passed to the type-erased runtime the way Odin hangs its two contextless procs off a Map_Info. Most key types need no emitted function at all. A key whose equality is bytewise and whose bytes are all present is served by one runtime pair over (pointer, size), which is what [bytewise_key] identifies. Two kinds are not: - a [string] is ptr+len and its bytes are elsewhere, so two equal strings at different addresses must still hash the same; - a struct may have padding, whose bytes are indeterminate, so two structs that are equal field by field can differ bytewise — and it may hold a string, which brings the first problem inside it. A struct therefore gets a pair emitted for it, walking its fields, and that is the only case that does. *) let rec bytewise_key = function | Types.Int _ | Types.Enum _ | Types.Bool -> true | Types.Array (_, t) -> bytewise_key t | _ -> false let hash_ty = Types.Int Types.U64 (* A context for a function the checker is about to invent. Nothing is reachable from it: no outer scope, no defers, and [defer_ok] false, because none of these is a body anyone wrote. *) let invented_ctx env ret = { env; ret; slots = 0; slot_tys = []; slot_names = []; scope = []; defers = []; outer = []; in_handler = false; in_frames = None; in_defer = false; defer_ok = false; defer_block = "a nested form"; dead = []; borrow = false; owner = "" } (* The address of field [i] of the struct the pointer in slot [p] points at. *) let field_addr_of loc sty fty p i = let target = mk loc sty (Tast.Deref (mk loc (Types.Ptr sty) (Tast.Local p))) in mk loc (Types.Ptr fty) (Tast.Addr (Tast.Pfield (target, i))) (* The pointer form is what a Map_Info holds; the direct form is what an emitted hasher calls. See flan_rt.c on why they are two symbols. *) let direct = function | "flan_hash_flat" -> "flan_key_hash_flat" | "flan_eq_flat" -> "flan_key_eq_flat" | "flan_hash_str" -> "flan_key_hash_str" | "flan_eq_str" -> "flan_key_eq_str" | s -> s (* The pair for [k]: (hash, equality), each a symbol to be taken the address of. Emits a function for a struct key the first time it sees one, and finds it in [env.lifted] every time after — the name is derived from the type, so two maps with the same key type share one pair. *) let rec key_pair env loc (k : Types.t) : Tast.fnref * Tast.fnref = match k with | Types.String -> Tast.Rtfn "flan_hash_str", Tast.Rtfn "flan_eq_str" | t when bytewise_key t -> Tast.Rtfn "flan_hash_flat", Tast.Rtfn "flan_eq_flat" | Types.Named n when Hashtbl.mem env.structs n -> struct_key_pair env loc n | Types.Array (_, e) -> (* A fixed array of a struct or of strings would need the same per-element walk a struct key gets, driven by a loop rather than by a field list. Nothing has wanted one, so it is refused by name rather than written untested — and refused with the shape that does work named beside it. *) fail loc "a fixed array is a map key only when its elements are compared \ bytewise, and %s is not — a struct or a string element needs a \ per-element walk that is not written. A struct key holding the array \ works, because a struct key is walked field by field" (Types.to_string e) | Types.Float _ -> (* Not a milestone question, which is why it is said separately: NaN is not equal to itself, and 0.0 and -0.0 are equal while differing bytewise. A float key therefore has no equality for a hash map to use, whatever the implementation does. *) fail loc "a float is not a map key: NaN is not equal to itself, and 0.0 and -0.0 \ are equal but differ bytewise, so there is no equality here for a map \ to hash. Key on an integer, or on a quantised integer of your choosing" | other -> fail loc "%s is not a map key. The first implementation takes integers, enums, \ bools, strings, fixed arrays of those, and value structs composed of \ those (spec-memory.md, \"Maps — first implementation\"). A Ptr, a \ slice, a Vec or a Map would hash an address rather than what it points \ at, which is a different operation" (Types.to_string other) and struct_key_pair env loc n = let hname = "map/hash/" ^ n and ename = "map/eq/" ^ n in let known name = List.exists (fun (f : Tast.fn) -> f.Tast.name = name) env.lifted in if known hname then Tast.Flanfn hname, Tast.Flanfn ename else begin let sty = Types.Named n in let fields = (Hashtbl.find env.structs n).Tast.fields in if fields = [] then fail loc "%s has no fields, so every value of it is equal to every other — a \ map keyed on it holds at most one entry, which is not a map" n; let hparams = [ Types.Ptr sty; hash_ty; Types.Int Types.I64 ] in let eparams = [ Types.Ptr sty; Types.Ptr sty; Types.Int Types.I64 ] in (* Registered before the fields are walked, so a struct reached twice through two different fields emits one pair and not two. A struct cannot contain itself by value, so there is no cycle to break — only sharing. The body is filled in below; nothing can call these in between. *) let placeholder name ret params = { Tast.name; params; slots = Array.of_list params; snames = Array.make (List.length params) None; ret; body = []; fdefers = []; fparent = None; floc = loc } in env.lifted <- placeholder hname hash_ty hparams :: placeholder ename (Types.Int Types.I8) eparams :: env.lifted; (* The hash: seed, then one combine per field, in declaration order. Each field is hashed by its own pair — the same recursion, so a string field hashes its bytes and a nested struct hashes field by field. Padding is never reached, because nothing here addresses anything but a field. *) let hctx = invented_ctx env hash_ty in let kp = fresh_slot ~name:"key" hctx (Types.Ptr sty) in let seed = fresh_slot ~name:"seed" hctx hash_ty in ignore (fresh_slot ~name:"size" hctx (Types.Int Types.I64)); let acc = fresh_slot ~name:"h" hctx hash_ty in let steps = List.mapi (fun i (fl : Tast.field) -> let fty = fl.Tast.fty in let h, _ = key_pair env loc fty in let args = [ field_addr_of loc sty fty kp i; mk loc hash_ty (Tast.Local seed); size_of loc fty ] in let one = match h with | Tast.Rtfn s -> rt loc hash_ty (direct s) args | Tast.Flanfn s -> mk loc hash_ty (Tast.Call (s, args)) in mk loc Types.Unit (Tast.Set (Tast.Plocal acc, rt loc hash_ty "flan_hash_combine" [ mk loc hash_ty (Tast.Local acc); one ]))) fields in let hbody = (mk loc Types.Unit (Tast.Set (Tast.Plocal acc, mk loc hash_ty (Tast.Local seed)))) :: steps @ [ mk loc hash_ty (Tast.Local acc) ] in (* The equality: one early return per field, then true. Written as returns rather than as a conjunction so that the comparison stops at the first field that differs, which for a struct with a string field is the difference between one memcmp and two. *) let ectx = invented_ctx env (Types.Int Types.I8) in let ap = fresh_slot ~name:"a" ectx (Types.Ptr sty) in let bp = fresh_slot ~name:"b" ectx (Types.Ptr sty) in ignore (fresh_slot ~name:"size" ectx (Types.Int Types.I64)); let i8 v = mk loc (Types.Int Types.I8) (Tast.Int (v, Types.I8)) in let checks = List.mapi (fun i (fl : Tast.field) -> let fty = fl.Tast.fty in let _, eq = key_pair env loc fty in let args = [ field_addr_of loc sty fty ap i; field_addr_of loc sty fty bp i; size_of loc fty ] in let call = match eq with | Tast.Rtfn s -> rt loc (Types.Int Types.I8) (direct s) args | Tast.Flanfn s -> mk loc (Types.Int Types.I8) (Tast.Call (s, args)) in let differs = mk loc Types.Bool (Tast.Prim (Tast.Eq, [ call; i8 0L ])) in mk loc Types.Unit (Tast.If (differs, mk loc Types.Never (Tast.Return (Some (i8 0L))), unit_at loc))) fields in let ebody = checks @ [ i8 1L ] in let finish name ret params ctx body = { Tast.name; params; slots = Array.of_list (List.rev ctx.slot_tys); snames = Array.of_list (List.rev ctx.slot_names); ret; body; fdefers = []; fparent = None; floc = loc } in env.lifted <- finish hname hash_ty hparams hctx hbody :: finish ename (Types.Int Types.I8) eparams ectx ebody :: List.filter (fun (f : Tast.fn) -> f.Tast.name <> hname && f.Tast.name <> ename) env.lifted; Tast.Flanfn hname, Tast.Flanfn ename end (* The pair as two expressions, ready to be passed. Their Flan type is [Alloc]: an opaque pointer-width value with no user-writable constructor, which is all the backend needs and all any Flan type ever says about it. *) let key_fns env loc k = let h, e = key_pair env loc k in mk loc Types.Alloc (Tast.FnAddr h), mk loc Types.Alloc (Tast.FnAddr e) let rec check ctx ?want (e : Ast.expr) : Tast.expr = let loc = e.Ast.loc in (* Read the permission this form was given and withdraw it in the same breath, so that nothing reached from here inherits it. The two callers that may grant it — [check_fn]'s body walk and [check_let]'s, below — grant it again before the *next* form rather than once around the body. *) let defer_ok = ctx.defer_ok in ctx.defer_ok <- false; match e.Ast.e with | Ast.Int n -> int_literal loc ~want n | Ast.Byte b -> int_literal loc ~want ~default:Types.U8 (Int64.of_int b) | Ast.Float x -> let k = match want with | Some (Types.Float k) -> k | Some other when other <> Types.Never -> fail loc "expected %s, found the float literal %g" (Types.to_string other) x | _ -> Types.F64 in mk loc (Types.Float k) (Tast.Float (x, k)) | Ast.Str s -> expect loc ~want (mk loc Types.String (Tast.Str s)) | Ast.Kw k -> (* A keyword resolves at compile time against the enum the site expects, and a typo is an error here rather than a wrong number at run time (plan.org, settled: keywords at typed call sites). It has no meaning without that expectation — there is no keyword type to fall back on. *) (match want with | Some (Types.Enum name) -> let members = Hashtbl.find ctx.env.enums name in (match List.assoc_opt k members with | Some v -> mk loc (Types.Enum name) (Tast.Int (v, Types.I32)) | None -> fail loc "%s has no member :%s — it has %s" name k (String.concat " " (List.map (fun (m, _) -> ":" ^ m) members))) | Some other -> fail loc ":%s is an enum member, but %s is expected here" k (Types.to_string other) | None -> fail loc ":%s only means something where an enum type is expected — there is \ no keyword type" k) | Ast.Quote _ -> unimplemented loc "a quoted symbol (restart names)" 6 | Ast.Var name -> var ctx loc ~want name | Ast.Do body -> block ctx ?want loc body (* [defer_ok] rides through: a [let] at the top level of a function body has exactly the function's extent, and so does a [let] nested inside one. *) | Ast.Let (bs, body) -> check_let ctx ?want ~defer_ok loc bs body | Ast.If (c, t, e') -> check_if ctx ?want loc c t e' | Ast.While (c, body) -> let c = check ctx ~want:Types.Bool c in let body = in_loop ctx (fun () -> scoped ctx (fun () -> map_lr (fun b -> check ctx b) body)) in expect loc ~want (mk loc Types.Unit (Tast.While (c, body))) | Ast.Return v when ctx.in_frames <> None -> ignore v; (* The frames are pushed and popped around the body, so an early exit would leave them on the handler or restart stack pointing into a frame that has gone. Rejected rather than left to corrupt it, the same rule as defer inside a block. *) fail loc "return is not allowed inside %s yet — the frames it established are \ popped on the way out and an early exit would leave them on the stack" (match ctx.in_frames with Some n -> n | None -> assert false) | Ast.Return v -> let v = match v with | None -> if not (Types.equal ctx.ret Types.Unit) then fail loc "this function returns %s, so return needs a value" (Types.to_string ctx.ret); None | Some v -> Some (check ctx ~want:ctx.ret v) in (* Whatever has been deferred *so far* runs first: a defer written below this return has not executed yet and must not fire. *) let r = mk loc Types.Never (Tast.Return v) in (match ctx.defers with | [] -> r | ds -> mk loc Types.Never (Tast.Do (ds @ [ r ]))) | Ast.Set (p, v) -> let p, pty = check_place ctx loc p in let v = check ctx ~want:pty v in expect loc ~want (mk loc Types.Unit (Tast.Set (p, v))) | Ast.Field (target, name) -> let target, sname = struct_target ctx target in let s = Hashtbl.find ctx.env.structs sname in (match Tast.field_index s name with | None -> fail loc "%s has no field %s" sname name | Some i -> let fty = (List.nth s.Tast.fields i).Tast.fty in expect loc ~want (mk loc fty (Tast.Field (target, i)))) | Ast.Struct (name, kvs) -> check_struct ctx ~want loc name kvs | Ast.Arr items -> check_arr ctx ~want loc items | Ast.Match (scrutinee, arms) -> check_match ctx ?want loc scrutinee arms | Ast.Call (head, args) -> check_call ctx ~want loc head args | Ast.Unwrap (Ast.Usome, v) -> (* Unwrap Some, else early-return None from the enclosing function, so the enclosing function must itself return an Option (plan.org). *) (match ctx.ret with | Types.Option _ -> let v = check ctx v in (match v.Tast.ty with | Types.Option t -> expect loc ~want (mk loc t (Tast.UnwrapSome v)) | other -> fail loc "some takes an (Option T), found %s" (Types.to_string other)) | other -> fail loc "some early-returns None, so the enclosing function must return an \ Option; this one returns %s" (Types.to_string other)) | Ast.Unwrap (Ast.Utry, _) -> unimplemented loc "try (Result)" 6 | Ast.Fn _ -> unimplemented loc "fn values" 5 | Ast.Dotimes (name, count, body) -> check_dotimes ctx ~want loc name count body (* (signal c) : Unit, always — spec-conditions.md §1. A handler that returns normally leaves the signalling function to carry on, and with nothing matching this is a no-op, so nothing about it alters control flow. That is what makes it checkable here rather than needing the transfer machinery restart-case will want. *) | Ast.Signal (kind, c) -> let c = check ctx c in let name = match c.Tast.ty with | Types.Named n -> n | t -> fail c.Tast.loc "a condition is a struct, not %s — matching is by type and there is \ no condition hierarchy" (Types.to_string t) in (* §1 and §2. [signal] is Unit whatever it finds; [error] is Never, because the only way past it is a handler that transfers — one that returns normally has not answered it, and the program stops. *) let ty, kind = match kind with | Ast.Ssignal -> (Types.Unit, Tast.Ssignal) | Ast.Serror -> (Types.Never, Tast.Serror) in expect loc ~want (mk loc ty (Tast.Signal (kind, type_id name, c))) | Ast.HandlerBind (clauses, body) -> check_handler_bind ctx ?want loc clauses body (* spec-conditions.md §3–§6: the transfer. Neither of these is a call — one establishes frames around a body, and the other leaves the function it is written in — so both are their own nodes all the way down. *) | Ast.RestartCase (body, clauses) -> check_restart_case ctx ?want loc body clauses | Ast.InvokeRestart (name, args) -> (* Never: control resumes at the restart-case, which yields the clause's value to *its* continuation, so nothing here has a value and nothing after it runs. The lookup is at run time because restarts are dynamically scoped and named — §4 — and so, for the same reason, is the check that these arguments are the ones the clause takes (§3). *) if ctx.in_defer then fail loc "invoke-restart is not allowed inside a defer — a defer is the cleanup \ a transfer runs on its way out, so starting one there would leave \ this function's defers half run with two targets and no way to \ choose"; let args = map_lr (fun a -> check ctx a) args in List.iter (fun (a : Tast.expr) -> match a.Tast.ty with | Types.Unit | Types.Never -> fail a.Tast.loc "a restart argument must be a value, and this one is %s" (Types.to_string a.Tast.ty) | _ -> ()) args; let sg = restart_sig (List.map (fun (a : Tast.expr) -> a.Tast.ty) args) in (* Evaluated into slots first, so that an argument which transfers on its own is guarded before this form aims the channel, and so that a call written in an argument is on the ordinary walk rather than hidden inside a node that [Reach] and [Load] treat as a leaf. *) let binds = List.map (fun (a : Tast.expr) -> (fresh_slot ctx a.Tast.ty, a)) args in let locals = List.map (fun (s, (a : Tast.expr)) -> mk a.Tast.loc a.Tast.ty (Tast.Local s)) binds in let invoke = mk loc Types.Never (Tast.InvokeRestart (type_id name, name, locals, sg, type_id sg, loc)) in expect loc ~want (if binds = [] then invoke else mk loc Types.Never (Tast.Let (binds, [ invoke ]))) | Ast.Defer forms -> (* Registering is the whole of it: the forms are checked here, where they can see the scope they are written in, and the node left behind is [unit]. [check_fn] splices the registered list onto both exit paths. [defer_ok] is true for a top-level form of the body and for a form in a [let] whose extent is the body — see the field's comment. Anywhere else the cleanup would run at function exit rather than at the exit of the construct it was written in, so it is refused, and named. *) if not defer_ok then fail loc "defer is not allowed inside %s — a defer is copied into every exit \ path of the function, so it always registers and always runs at \ function exit. Write it at the top level of the function body, or in \ a let that is (a let has the function's extent, because nothing is \ released at scope exit)" ctx.defer_block; register_defer ctx loc forms and int_literal loc ~want ?(default = Types.I32) n = match want with | Some (Types.Int k) -> mk loc (Types.Int k) (Tast.Int (in_range loc k n, k)) (* An untyped integer constant is usable where a float is wanted, as in Odin. A float literal is never usable where an integer is wanted. *) | Some (Types.Float k) -> mk loc (Types.Float k) (Tast.Float (Int64.to_float n, k)) | Some other when other <> Types.Never -> fail loc "expected %s, found the integer literal %Ld" (Types.to_string other) n | _ -> mk loc (Types.Int default) (Tast.Int (in_range loc default n, default)) (* Arithmetic wraps, but a literal that does not fit its type is a typo, not a wrap — 300 is never what someone meant by a u8. *) and in_range loc k n = let bits = Types.bits k in let ok = if Types.signed k then bits = 64 || (Int64.compare n (Int64.neg (Int64.shift_left 1L (bits - 1))) >= 0 && Int64.compare n (Int64.shift_left 1L (bits - 1)) < 0) else if bits = 64 then (* A u64 literal is its 64-bit pattern, so anything at or above 2^63 arrives here as a negative [int64] and is still in range — 0xcbf29ce484222325 is a real u64 and not an error. The cost is that a negative *decimal* literal is accepted as a u64 too, because the reader records only the value and not how it was written. Narrower unsigned types keep the strict check, which is where a typo like 300 for a u8 actually shows up. *) true else Int64.compare n 0L >= 0 && Int64.compare n (Int64.shift_left 1L bits) < 0 in if ok then n else fail loc "%Ld does not fit in %s" n (Types.ikind_name k) and var ctx loc ~want name = match name with | "true" | "false" -> expect loc ~want (mk loc Types.Bool (Tast.Bool (name = "true"))) | "None" -> (match want with | Some (Types.Option t) -> mk loc (Types.Option t) Tast.None_ | Some other when other <> Types.Never -> fail loc "expected %s, found None" (Types.to_string other) | _ -> fail loc "nothing here says what None is an Option of — annotate the \ function's return type or the binding") (* spec-memory.md puts the allocator in the calling convention as [context/allocator] and [context/temp]. They read as names rather than calls because that is how the spec writes them, and they are dynamic variables at run time rather than extra parameters — see BUILT.md for why the literal reading of "calling convention" is deferred. *) | "context/allocator" -> expect loc ~want (mk loc Types.Alloc (Tast.Prim (Tast.Rt "flan_context_allocator", []))) | "context/temp" -> expect loc ~want (mk loc Types.Alloc (Tast.Prim (Tast.Rt "flan_context_temp", []))) | _ -> match lookup ctx name with | Some b -> if Types.is_move_only b.bty then moved ~ty:b.bty ctx loc name b.slot; expect loc ~want (mk loc b.bty (Tast.Local b.slot)) | None -> match Hashtbl.find_opt ctx.env.globals name with | Some (ty, _) -> expect loc ~want (mk loc ty (Tast.Global name)) | None -> if Hashtbl.mem ctx.env.fns name then unimplemented loc (Printf.sprintf "the function value %s (a name used as a value)" name) 5 else begin captured ctx loc name; fail loc "unknown name %s" name end (* Reading a move-only local. Every read is a move unless the site said it was a borrow, which is the conservative direction: passing one to a function, binding it, returning it and [free]ing it are all moves and all reach here, and the handful of operations that only look at a container say so. *) and moved ?ty ctx loc name slot = (match List.assoc_opt slot ctx.dead with | Some where -> fail loc "%s was moved at %s and cannot be used again — %s is move-only, so \ binding, passing or returning one transfers ownership and the source \ binding is dead afterwards (spec-memory.md). That rule is what makes a \ double free unrepresentable; (clone %s) if you wanted a second one" name (Loc.to_string where) (match ty with Some t -> Types.to_string t | None -> "a Vec") name | None -> ()); if not ctx.borrow then ctx.dead <- (slot, loc) :: ctx.dead (* The target of an operation that reads a container without consuming it. Only a syntactically simple target is treated as a borrow: in [(len (f v))] the call still moves [v], and setting the flag over the whole subexpression would have hidden that. *) and borrowed ctx (a : Ast.expr) f = let simple = match a.Ast.e with | Ast.Var _ | Ast.Field _ -> true | Ast.Call ({ Ast.e = Ast.Var "at"; _ }, _) -> true | _ -> false in if not simple then f () else begin let saved = ctx.borrow in ctx.borrow <- true; let r = f () in ctx.borrow <- saved; r end (* [defer_ok] is granted again before *every* form, not once before the block: [check] withdraws it as it starts, so granting it once would let the first form carry a defer and refuse the second — and two resources acquired in one [let] is the case the relaxation exists for. *) and block ctx ?want ?(defer_ok = false) loc body = match body with | [] -> expect loc ~want (unit_at loc) | _ -> let rec go = function | [ last ] -> ctx.defer_ok <- defer_ok; let l = check ctx ?want last in [ l ], l.Tast.ty | x :: rest -> ctx.defer_ok <- defer_ok; let x = check ctx x in let rest, ty = go rest in x :: rest, ty | [] -> assert false in let body, ty = go body in mk loc ty (Tast.Do body) (* A handler runs where the *signal* was, not where it was established, so it cannot be a branch in the function that wrote it: it is lifted into a function of its own and reached through a pointer. Which means it cannot see the establishing function's locals. Capturing them is a closure with an explicit environment — the non-escaping kind, captured by value onto this frame — and until that exists a reference to one is rejected by name rather than silently resolving to something else. Globals and the condition itself are in scope, which is enough for the accumulation case §1 is about. The body may not [return] either. The frames are pushed and popped around it, and an early exit would leave them on the stack pointing into a function that has gone. *) and check_handler_bind ctx ?want loc clauses body = ignore want; let frames = List.map (fun (c : Ast.hclause) -> let ty = resolve ctx.env c.Ast.hty in let name = match ty with | Types.Named n -> n | t -> fail c.Ast.hloc "a handler matches a struct type, not %s" (Types.to_string t) in (* Its own context: a fresh frame, an empty scope, and no way to reach the enclosing one. *) let hctx = { env = ctx.env; ret = Types.Unit; slots = 0; slot_tys = []; slot_names = []; scope = []; defers = []; outer = ctx.scope; in_handler = true; in_frames = None; in_defer = false; defer_ok = false; defer_block = "a nested form"; dead = []; borrow = false; owner = "" } in (* The condition crosses as a pointer, because the handler runs while the signalling frame is still alive and there is nothing to copy. What the clause binds is the condition itself, though, so the pointer is a hidden parameter and the name is a slot loaded from it — a handler that passed [c] to something expecting the struct would otherwise be handed an address. *) let pslot = fresh_slot hctx (Types.Ptr ty) in let cslot = bind hctx c.Ast.hname ty ~assignable:false in let hbody = map_lr (fun e -> check hctx e) c.Ast.hbody in let hbody = [ mk c.Ast.hloc Types.Unit (Tast.Let ([ (cslot, mk c.Ast.hloc ty (Tast.Deref (mk c.Ast.hloc (Types.Ptr ty) (Tast.Local pslot)))) ], hbody)) ] in (* Named after the function it came out of, and numbered within it: stable against an unrelated handler-bind being added elsewhere, which an index into the whole program's lifted list would not be. *) let fname = Printf.sprintf "handler/%s/%d/%s" ctx.owner (List.length (List.filter (fun (l : Tast.fn) -> l.Tast.fparent = Some ctx.owner) ctx.env.lifted)) name in ctx.env.lifted <- { Tast.name = fname; params = [ Types.Ptr ty ]; slots = Array.of_list (List.rev hctx.slot_tys); snames = Array.of_list (List.rev hctx.slot_names); ret = Types.Unit; body = hbody; fdefers = []; fparent = Some ctx.owner; floc = c.Ast.hloc } :: ctx.env.lifted; { Tast.htype = type_id name; hfn = fname }) clauses in (* The flag is set on [ctx] itself and restored, not on a copy: [ctx.slots] and [ctx.slot_tys] are mutable, so a copy would allocate the body's slots into a record the function never sees again and the indices would collide. *) let saved = ctx.in_frames in ctx.in_frames <- Some "handler-bind"; let body = map_lr (fun e -> check ctx e) body in ctx.in_frames <- saved; mk loc Types.Unit (Tast.Handled (frames, body)) (* (restart-case BODY (name [] BODY-1) ...) — spec-conditions.md §3 and §6. Unlike a handler, a clause runs *at* the restart-case, which is where it was written, so it is a branch in this function and sees this function's scope. What arrives from elsewhere is only the answer to "which clause": a transfer names the frame it is aimed at, and this form compares that against the frames it itself pushed. Every clause body and the body have the same type, and that is the type of the whole form — which is what makes the fall-through path visible in the source (§1): a restart-case in value position has to produce its type when no restart is invoked too. *) and check_restart_case ctx ?want loc body clauses = let saved = ctx.in_frames in ctx.in_frames <- Some "restart-case"; let tbody = check ctx ?want body in ctx.in_frames <- saved; (* With no expectation from outside, the body's own type is the expectation the clauses are checked against — unless it produced no value at all, in which case the first clause that does decides. *) let want = match want with | Some _ -> want | None -> if tbody.Tast.ty = Types.Never then None else Some tbody.Tast.ty in let ty = ref (match want with Some t -> Some t | None -> None) in let seen = ref [] in let clauses = map_lr (fun (c : Ast.rclause) -> (* Two clauses of one name would make §4's "the first frame offering the name" pick between them by an order nothing in the source shows. *) if List.mem c.Ast.rname !seen then fail c.Ast.rloc "this restart-case offers %s twice" c.Ast.rname; seen := c.Ast.rname :: !seen; (* §3's parameters. They are slots in *this* function — a clause runs here, not where the invoke was — and the invoker stores into a buffer this frame owns, because its own frame is gone by the time the clause body starts (§5). Bound like a function's parameters: visible only in the clause, and not assignable. *) let params, b = scoped ctx (fun () -> let params = List.map (fun (p : Ast.field) -> let ty = resolve ctx.env p.Ast.fty in (match ty with | Types.Unit | Types.Never -> fail p.Ast.floc "%s would be a restart parameter of type %s, which is \ not a value" p.Ast.fname (Types.to_string ty) | _ -> ()); (bind ctx p.Ast.fname ty ~assignable:false, ty)) c.Ast.rparams in (* Each is checked against what the form has settled on so far, so a clause that disagrees fails where it is written. The first one to produce a value is what settles it when nothing outside did. *) (params, block ctx ?want:!ty c.Ast.rloc c.Ast.rbody)) in if !ty = None && b.Tast.ty <> Types.Never then ty := Some b.Tast.ty; let sg = restart_sig (List.map snd params) in { Tast.rname_id = type_id c.Ast.rname; rname = c.Ast.rname; rparams = params; rsig = sg; rsig_id = type_id sg; rbody = [ b ] }) clauses in let ty = match !ty with Some t -> t | None -> Types.Never in mk loc ty (Tast.RestartCase (clauses, tbody)) (* The forms of a [defer], checked in place and hung on the function. It emits nothing where it stands, so what is left behind is [unit]. *) and register_defer ctx loc forms = ctx.in_defer <- true; let forms = map_lr (fun d -> check ctx d) forms in ctx.in_defer <- false; ctx.defers <- mk loc Types.Unit (Tast.Do forms) :: ctx.defers; unit_at loc (* [defer_ok] says whether *this* let has the function's extent. If it does, so does every form in its body, including a nested let — which is why the flag is handed to the body rather than consumed here. *) and check_let ctx ?want ?(defer_ok = false) loc bs body = scoped ctx (fun () -> let bs = map_lr (fun (b : Ast.binding) -> let want = Option.map (resolve ctx.env) b.Ast.bty in let v = check ctx ?want b.Ast.bval in (match v.Tast.ty with | Types.Unit | Types.Never -> fail b.Ast.bloc "%s would be bound to %s, which is not a value" b.Ast.bname (Types.to_string v.Tast.ty) | _ -> ()); (* Locals are assignable places; parameters are not. *) let slot = bind ctx b.Ast.bname v.Tast.ty ~assignable:true in (slot, v)) bs in let body = block ctx ?want ~defer_ok loc body in mk loc body.Tast.ty (Tast.Let (bs, [ body ]))) (* (dotimes [i n] body...) is a counting loop, not a new IR node: bind [i] to 0 and the bound to a hidden slot — [n] is evaluated once, before the loop, so a body that changes it cannot change the trip count — then step [i] at the end of the body. [i] is not assignable, so the step below is the only writer. *) (* A loop body that moves a binding declared outside the loop is refused, and this is the one place the dead set cannot answer on its own: the second iteration would use what the first moved, and a set that is merged once at the end of the body sees one move, not two. So it is a rule rather than an inference, stated as one. *) and in_loop ctx f = let outer_slots = List.map (fun (_, b) -> b.slot) ctx.scope in let before = ctx.dead in (* Named so that a defer written in here is refused as "a loop body" rather than as a nested form: the reason is specific — it would fire once at function exit rather than once per iteration — and the message says it. *) let blocker = ctx.defer_block in ctx.defer_block <- "a loop body"; let r = f () in ctx.defer_block <- blocker; List.iter (fun (slot, where) -> if (not (List.mem_assoc slot before)) && List.mem slot outer_slots then fail where "this moves a value that was bound outside the loop, so the next \ iteration would use what this one gave away. Move it out of the \ loop, or bind a fresh value inside it") ctx.dead; r and check_dotimes ctx ~want loc name count body = let count = check ctx ~want:index_ty count in scoped ctx (fun () -> let i = bind ctx name index_ty ~assignable:false in let limit = fresh_slot ctx index_ty in let body = in_loop ctx (fun () -> map_lr (fun b -> check ctx b) body) in let iv = mk loc index_ty (Tast.Local i) in let one = mk loc index_ty (Tast.Int (1L, Types.I32)) in let cond = mk loc Types.Bool (Tast.Prim (Tast.Lt, [ iv; mk loc index_ty (Tast.Local limit) ])) in let step = mk loc Types.Unit (Tast.Set (Tast.Plocal i, mk loc index_ty (Tast.Prim (Tast.Add, [ iv; one ])))) in let zero = mk loc index_ty (Tast.Int (0L, Types.I32)) in let loop = mk loc Types.Unit (Tast.While (cond, body @ [ step ])) in expect loc ~want (mk loc Types.Unit (Tast.Let ([ (i, zero); (limit, count) ], [ loop ])))) and check_if ctx ?want loc c t e = let c = check ctx ~want:Types.Bool c in match e with | None -> (* A one-armed if produces Unit whatever the branch evaluates to: there is no value on the missing side. `when` desugars to this. *) let t = branch ctx (fun () -> check ctx t) in expect loc ~want (mk loc Types.Unit (Tast.If (c, t, unit_at loc))) | Some e -> (* Both arms start from the same dead set and the union survives: moving in one arm only still kills the binding afterwards, and moving in both — which is legal and common — is not reported twice. A flat set would have refused [(if c (free v) (free v))] and allowed the use after a one-armed move, which are the two ways to be wrong here. *) let before = ctx.dead in let t = branch ctx (fun () -> check ctx ?want t) in let after_then = ctx.dead in ctx.dead <- before; (* With no expectation the then-branch supplies one for the else-branch, unless it diverges, in which case the else-branch decides. *) let ewant = match want with | Some _ -> want | None -> if t.Tast.ty = Types.Never then None else Some t.Tast.ty in let e = branch ctx (fun () -> check ctx ?want:ewant e) in ctx.dead <- after_then @ List.filter (fun (k, _) -> not (List.mem_assoc k after_then)) ctx.dead; let ty = if t.Tast.ty = Types.Never then e.Tast.ty else if e.Tast.ty = Types.Never then t.Tast.ty else if Types.equal t.Tast.ty e.Tast.ty then t.Tast.ty else fail loc "the branches of this if have different types: %s and %s" (Types.to_string t.Tast.ty) (Types.to_string e.Tast.ty) in mk loc ty (Tast.If (c, t, e)) and check_struct ctx ~want loc name kvs = match Hashtbl.find_opt ctx.env.structs name with | None -> if Hashtbl.mem ctx.env.unions name then unimplemented loc "constructing a union value" 6 else fail loc "unknown struct %s" name | Some s -> let seen = Hashtbl.create 8 in List.iter (fun (k, (v : Ast.expr)) -> if Hashtbl.mem seen k then fail v.Ast.loc "field %s is given twice" k; if Tast.field_index s k = None then fail v.Ast.loc "%s has no field %s" name k; Hashtbl.add seen k v) kvs; (* Omitted fields are zeroed — ZII, the same rule as a declaration with no initialiser (plan.org, Data model). Every field is present from here on, in declaration order, so no backend has to know about omission. *) let fields = map_lr (fun (f : Tast.field) -> match Hashtbl.find_opt seen f.Tast.fname with | Some v -> check ctx ~want:f.Tast.fty v | None -> mk loc f.Tast.fty (Tast.Zero f.Tast.fty)) s.Tast.fields in expect loc ~want (mk loc (Types.Named name) (Tast.Make (name, fields))) and check_arr ctx ~want loc items = let elem_want = match want with | Some (Types.Array (_, t)) -> Some t | Some (Types.Slice t) -> Some t | _ -> None in let items = map_lr (fun i -> check ctx ?want:elem_want i) items in let n = Int64.of_int (List.length items) in let elem = match elem_want, items with | Some t, _ -> t | None, first :: _ -> first.Tast.ty | None, [] -> fail loc "an empty array literal needs a type — annotate the binding" in List.iter (fun (i : Tast.expr) -> if not (Types.fits ~expected:elem ~actual:i.Tast.ty) then fail i.Tast.loc "this array's elements are %s, but this one is %s" (Types.to_string elem) (Types.to_string i.Tast.ty)) items; (match want with | Some (Types.Array (m, _)) when not (Int64.equal m n) -> fail loc "expected %Ld elements, found %Ld" m n | _ -> ()); (* [n T] and [T] are distinct in type and in ownership (spec-memory.md), so an array literal does not satisfy a slice expectation. *) expect loc ~want (mk loc (Types.Array (n, elem)) (Tast.Arr items)) and check_match ctx ?want loc scrutinee arms = let s = check ctx scrutinee in let elem = match s.Tast.ty with | Types.Option t -> t (* An enum is the one scrutinee that is not a milestone away: it is an i32 at run time and its members are all known, so the arms would be a chain of [=] with an exhaustiveness check over [env.enums] — a desugaring, not a new IR node. What blocks it is upstream of here: a keyword has no case in [Ast.pattern], and [lib/load.ml] matches that type exhaustively, so the variant cannot be added. Said as itself rather than folded into the milestone answer below, because the milestone is not the reason. *) | Types.Enum n -> fail loc "match over the enum %s is not implemented — the lowering is a chain \ of (= k :member), but a keyword has no case in the pattern type yet. \ Use cond" n | other -> (* Union matching arrives with unions themselves, at milestone 6. *) fail loc "match works on an Option at milestone 2, not on %s" (Types.to_string other) in let want = ref want in let saw_some = ref false and saw_none = ref false and saw_wild = ref false in (* The same rule as [if], and for the same reason: the arms are alternatives, so each is checked from the state before the match and the union of what they moved survives the join. Checked in sequence against one mutating set they would report the second arm's (free v) as a use after the first arm's move, which is a legal program refused. *) let before = ctx.dead in let joined = ref [] in let arms = map_lr (fun (a : Ast.arm) -> let ctor, binds = match a.Ast.pat with | Ast.Pwild -> saw_wild := true; None, [] | Ast.Pctor ("Some", [ x ]) -> saw_some := true; Some "Some", [ x ] | Ast.Pctor ("Some", _) -> fail a.Ast.aloc "the Some pattern binds exactly one name" | Ast.Pctor ("None", []) -> saw_none := true; Some "None", [] | Ast.Pctor ("None", _) -> fail a.Ast.aloc "None binds no names" | Ast.Pctor (c, _) -> fail a.Ast.aloc "%s is not a case of Option — the cases are Some and None" c in ctx.dead <- before; let arm = branch ctx (fun () -> let binds = List.map (fun n -> bind ctx n elem ~assignable:false) binds in let body = block ctx ?want:!want a.Ast.aloc a.Ast.body in if !want = None && body.Tast.ty <> Types.Never then want := Some body.Tast.ty; { Tast.acase = ctor; binds; abody = [ body ] }) in joined := !joined @ List.filter (fun (k, _) -> not (List.mem_assoc k !joined)) ctx.dead; arm) arms in ctx.dead <- !joined; if not (!saw_wild || (!saw_some && !saw_none)) then fail loc "this match is not exhaustive — Option needs both Some and None, or a \ _ arm"; let ty = match !want with Some t -> t | None -> Types.Never in mk loc ty (Tast.Match (s, arms)) (* ── Places ────────────────────────────────────────────────────────── *) (* The target of [.field] is a struct, or one level of pointer to one. The auto-deref is inserted here as a real node, so no backend re-derives it. *) and struct_target ctx (target : Ast.expr) : Tast.expr * string = let t = check ctx target in match t.Tast.ty with | Types.Named n when Hashtbl.mem ctx.env.structs n -> t, n | Types.Ptr (Types.Named n) when Hashtbl.mem ctx.env.structs n -> mk t.Tast.loc (Types.Named n) (Tast.Deref t), n | other -> fail target.Ast.loc "%s is not a struct, so it has no fields" (Types.to_string other) and check_place ctx loc (p : Ast.place) : Tast.place * Types.t = match p with | Ast.Pvar name -> (match lookup ctx name with | Some b -> if not b.assignable then fail loc "%s is a parameter, and parameters are not assignable places \ (spec-memory.md) — bind a local with let" name; Tast.Plocal b.slot, b.bty | None -> match Hashtbl.find_opt ctx.env.globals name with | Some (_, true) -> fail loc "%s is a constant" name | Some (ty, false) -> Tast.Pglobal name, ty | None -> captured ctx loc name; fail loc "unknown name %s" name) | Ast.Pfield (target, name) -> let target, sname = struct_target ctx target in let s = Hashtbl.find ctx.env.structs sname in (match Tast.field_index s name with | None -> fail loc "%s has no field %s" sname name | Some i -> Tast.Pfield (target, i), (List.nth s.Tast.fields i).Tast.fty) | Ast.Pindex (target, idx) -> let target = borrowed ctx target (fun () -> check ctx target) in (match target.Tast.ty with (* The same bounds and epoch check the value form gets, through the same helper: an element of a Vec is a place because a Vec element is assignable, and a set that skipped the checks would be the asymmetry [nth] was removed for. *) | Types.Vec _ -> let p, ty = vec_at ctx loc target idx in Tast.Pderef p, ty | _ -> let idx, ty = indexed ctx target idx in Tast.Pindex (target, idx), ty) | Ast.Pderef target -> let target = check ctx target in (match target.Tast.ty with | Types.Ptr t -> Tast.Pderef target, t | other -> fail loc "deref takes a (Ptr T), found %s" (Types.to_string other)) (* An index or a slice bound that is a literal is known now, so it is an error now rather than a trap later. Only literals: a [defconst] is a global in the typed IR, not a folded constant, so [(at arr size)] still traps at runtime — which is what the emitted bounds check is for. A negative literal is wrong whatever the target, but a length is static only for [n T]. *) and static_index loc (ty : Types.t) ~past_end what k = if k < 0L then fail loc "%s %Ld is negative — indices count from 0" what k; match ty with (* [past_end] is the difference between an index and a slice bound: the last valid index is len - 1, but a slice may end at len. *) | Types.Array (n, _) when if past_end then k > n else k >= n -> fail loc "%s %Ld is out of bounds for length %Ld" what k n | _ -> () (* The literal value of a checked expression, if it has one. *) and literal (e : Tast.expr) = match e.Tast.e with Tast.Int (k, _) -> Some k | _ -> None (* An index is [i32] internally, but a *narrower* integer may be written as one: indexing is not arithmetic on the value, so there is nothing for a visible cast to warn about, and requiring (i32 c) at every subscript would be noise. A u32 is included because it cannot lose a value the bounds check would then miss — anything above 2^31 truncates to a negative i32, which the unsigned comparison rejects. i64 and u64 are not: 2^32 + 5 truncates to 5 and would read the wrong element with no trap at all, so those need the cast written out. *) and index_expr ctx (e : Ast.expr) = (* No [want]: an expectation of [i32] would reject a [u32] index outright, before there is anything here to convert. An untyped literal still defaults to [i32] on its own. *) let v = check ctx e in match v.Tast.ty with | Types.Int Types.I32 -> v | Types.Int k when Types.bits k <= 32 -> { v with Tast.ty = index_ty; Tast.e = Tast.Prim (Tast.Cast index_ty, [ v ]) } | Types.Int k -> fail e.Ast.loc "an index is an i32, and %s is wider — write (i32 …), because a value \ that does not fit truncates to one that does and would read the wrong \ element without tripping the bounds check" (Types.ikind_name k) | other -> fail e.Ast.loc "an index is an integer, found %s" (Types.to_string other) (* [(at a i)] and [(at grid row col)]: one index per dimension. *) and indexed ctx (target : Tast.expr) (idx : Ast.expr list) = let rec go ty = function | [] -> [], ty | i :: rest -> let elem = match ty with | Types.Array (_, t) | Types.Slice t -> t | other -> fail i.Ast.loc "%s cannot be indexed" (Types.to_string other) in let loc = i.Ast.loc in let i = index_expr ctx i in (match literal i with | Some k -> static_index loc ty ~past_end:false "index" k | None -> ()); let rest, ty = go elem rest in i :: rest, ty in go target.Tast.ty idx (* ── Calls ─────────────────────────────────────────────────────────── *) and check_call ctx ~want loc (head : Ast.expr) (args : Ast.expr list) = match head.Ast.e with | Ast.Var name -> named_call ctx ~want loc name args | _ -> unimplemented loc "calling something other than a named function" 5 and arity loc name n args = if List.length args <> n then fail loc "%s takes %d argument%s, given %d" name n (if n = 1 then "" else "s") (List.length args) (* The operators that fold: [+ - * /], [min]/[max] and the three bitwise combining operators all take two operands or more, and mean the same thing applied left to right. [%] and the shifts are not in that set — a chain of remainders or of shifts has no reading a reader would agree on in advance, so there the arity error is the useful answer. Two is the floor, and the two missing cases are refused rather than invented. Zero operands would have to mean an identity element, 0 for + and 1 for *, and a sum with no terms in it is a typo far more often than it is an intent. One operand would have to mean negation for [-] and reciprocal for [/], and this language has no unary minus anywhere: the prelude writes every negation as [(- 0 n)] or [(- 0.0 x)], and [(- x)] meaning something else than the [-] two lines above it is a rule a reader has to carry rather than see. *) and fold_arity loc name args = match args with | _ :: _ :: _ -> () | [ _ ] when String.equal name "-" -> fail loc "- takes two arguments or more, given 1 — there is no unary minus; \ write (- 0 x) to negate, which is what the prelude does" | [ _ ] when String.equal name "/" -> fail loc "/ takes two arguments or more, given 1 — there is no reciprocal; \ write (/ 1.0 x)" | _ -> fail loc "%s takes two arguments or more, given %d" name (List.length args) (* The first two operands decide the type — [binary] picks which of them is allowed to, and that decision is not re-made per pair — and every operand after them is checked against it. *) and fold_left_prim ctx ~want loc name p ok what args = let x, y, rest = match args with x :: y :: rest -> x, y, rest | _ -> assert false in let a, b = binary ctx name loc ~want:(numeric_want want) [ x; y ] in if not (ok a.Tast.ty) then fail loc "%s takes %s, found %s" name what (Types.to_string a.Tast.ty); let ty = a.Tast.ty in let acc = List.fold_left (fun acc arg -> mk loc ty (Tast.Prim (p, [ acc; check ctx ~want:ty arg ]))) (mk loc ty (Tast.Prim (p, [ a; b ]))) rest in expect loc ~want acc (* ── Allocation failure, spec-memory.md ──────────────────────────────── No allocating operation returns an error and none can fail silently. When the allocator cannot satisfy a request the operation signals (StorageExhausted {.bytes n .align a .allocator id}) with [error] — whose type is Never — inside a [restart-case] offering [retry]. That is one rule over every allocating operation, which is what keeps [push] and [reserve] at Unit, [clone] at the container, and no signature anywhere growing a Result. Odin's [append] returns an ignorable Allocator_Error and its type-erased path returns the old length on a failed reserve; an append that appends nothing and says nothing is the outcome this rule exists to make impossible. It is *compiler-emitted at the point of failure*, which spec-memory.md names as the exception to plan.org's "restarts go at the resync point, once": a restart established at a parser's top-level loop cannot re-attempt an allocation, and only the allocation site can. The shape is built out of nodes that already exist — a while, a restart-case and an error — so the backend learns nothing new about allocation: (let [ok false] (while (not ok) (restart-case (do (set ok ATTEMPT) (if (not ok) (error (StorageExhausted {...})))) (retry [])))) A handler that frees something, releases a scratch region or grows the arena and then invokes [retry] lands in the clause, the clause falls through, and the while re-tests and re-attempts the *same* request. With nothing handling it, [error] stops the program on the frame that erred, as §2 says. [attempt] must be a call that can be repeated: every argument to it is bound to a slot before the loop, so a retry does not re-evaluate the element expression a push was given. *) and alloc_guard ctx loc (attempt : Tast.expr) = let ok = fresh_slot ctx Types.Bool in let okv = mk loc Types.Bool (Tast.Local ok) in let notok () = mk loc Types.Bool (Tast.Prim (Tast.Not, [ okv ])) in let i8 n = mk loc (Types.Int Types.I8) (Tast.Int (n, Types.I8)) in (* The runtime answers 1 or 0 and never reports failure any other way. *) let attempt = mk loc Types.Bool (Tast.Prim (Tast.Ne, [ attempt; i8 0L ])) in (* A value struct on the signalling frame's stack, with fixed numeric fields and no rendered message: formatting would allocate, and this is the one path that must not. Rendering happens in the handler or the break loop, where a working allocator is known. *) let cond = mk loc (Types.Named "StorageExhausted") (Tast.Make ("StorageExhausted", [ rt loc (Types.Int Types.I64) "flan_alloc_fail_bytes" []; rt loc (Types.Int Types.I64) "flan_alloc_fail_align" []; rt loc (Types.Int Types.I64) "flan_alloc_fail_id" [] ])) in let signal = mk loc Types.Never (Tast.Signal (Tast.Serror, type_id "StorageExhausted", cond)) in let attempt_then_signal = mk loc Types.Unit (Tast.Do [ mk loc Types.Unit (Tast.Set (Tast.Plocal ok, attempt)); mk loc Types.Unit (Tast.If (notok (), signal, unit_at loc)) ]) in let clause = (* Compiler-emitted, so it takes no parameters: nothing outside can hand this one a value. [rsig] is therefore the empty signature, and its hash the same one a written [(retry [] ...)] gets — the two must agree, since an [invoke-restart] cannot tell them apart. *) let sg = restart_sig [] in { Tast.rname_id = type_id "retry"; rname = "retry"; rparams = []; rsig = sg; rsig_id = type_id sg; rbody = [ unit_at loc ] } in let body = mk loc Types.Unit (Tast.RestartCase ([ clause ], attempt_then_signal)) in mk loc Types.Unit (Tast.Let ([ (ok, mk loc Types.Bool (Tast.Bool false)) ], [ mk loc Types.Unit (Tast.While (notok (), [ body ])) ])) (* ── File failure, decisions 2 and 5 ─────────────────────────────────── The same shape [alloc_guard] has, for the same reason and out of the same nodes: the operation signals inside a [restart-case] it establishes itself, so nothing anywhere grows a Result and neither [slurp] nor [barf] can fail silently. Compiler-emitted at the point of failure, which spec-memory.md already names as the exception to plan.org's "restarts go at the resync point, once" — a restart at an outer loop cannot re-open a file. Two restarts, and they are the textbook pair Common Lisp establishes for a file-error: retry the file may be there now — the handler made a directory, mounted something, or waited. use-value [p string] try this other path instead. [use-value]'s parameter *is* the path slot, so the clause body is [unit]: emit.ml's [bind_params] stores the invoker's argument straight into the slot the attempt reads, the clause falls through, and the while re-tests and re-attempts against the new path. Typed restarts landed this session and this is the first thing the compiler itself emits one for. [attempt] must be repeatable, so the path is a slot read at each turn of the loop rather than an expression re-evaluated. *) and file_guard ctx loc ~path_slot ~op mk_steps = let ok = fresh_slot ctx Types.Bool in let okv = mk loc Types.Bool (Tast.Local ok) in let notok () = mk loc Types.Bool (Tast.Prim (Tast.Not, [ okv ])) in let i8 n = mk loc (Types.Int Types.I8) (Tast.Int (n, Types.I8)) in (* Fixed fields and no rendered message, exactly as StorageExhausted: the condition is built on the failing frame's stack and formatting is the handler's job. [path] is whatever the attempt last used, so a handler that supplied one through [use-value] sees the path that actually failed. *) let cond = mk loc (Types.Named "FileError") (Tast.Make ("FileError", [ mk loc Types.String (Tast.Local path_slot); mk loc (Types.Int Types.I32) (Tast.Int (Int64.of_int op, Types.I32)); mk loc (Types.Int Types.I32) (Tast.Prim (Tast.Cast (Types.Int Types.I32), [ rt loc (Types.Int Types.I64) "flan_file_fail_reason" [] ])) ])) in let signal () = mk loc Types.Never (Tast.Signal (Tast.Serror, type_id "FileError", cond)) in (* One step of the attempt: run the runtime call, record whether it worked, and signal if it did not. The last step a caller gives is what leaves [ok] true, which is what stops the loop. *) let try_ (attempt : Tast.expr) = mk loc Types.Unit (Tast.Do [ mk loc Types.Unit (Tast.Set (Tast.Plocal ok, mk loc Types.Bool (Tast.Prim (Tast.Ne, [ attempt; i8 0L ])))); mk loc Types.Unit (Tast.If (notok (), signal (), unit_at loc)) ]) in let clause name params = let sg = restart_sig (List.map snd params) in { Tast.rname_id = type_id name; rname = name; rparams = params; rsig = sg; rsig_id = type_id sg; rbody = [ unit_at loc ] } in let body = mk loc Types.Unit (Tast.RestartCase ([ clause "retry" []; clause "use-value" [ (path_slot, Types.String) ] ], mk loc Types.Unit (Tast.Do (mk_steps try_)))) in mk loc Types.Unit (Tast.Let ([ (ok, mk loc Types.Bool (Tast.Bool false)) ], [ mk loc Types.Unit (Tast.While (notok (), [ body ])) ])) (* The element type for [vec-new]: a leading bare symbol naming a type, or the expectation at the site. A bare symbol shadowed by a local or a global is that binding — an allocator, in practice — and not a type. *) and vec_new_elem ctx ~want loc args = let named = match args with | { Ast.e = Ast.Var n; _ } :: rest when lookup ctx n = None && (not (Hashtbl.mem ctx.env.globals n)) && (List.mem n Types.primitive_names || Hashtbl.mem ctx.env.structs n || Hashtbl.mem ctx.env.enums n || Hashtbl.mem ctx.env.aliases n) -> Some (resolve_name ctx.env ~seen:[] loc n, rest) | _ -> None in match named with | Some (t, rest) -> t, rest | None -> (match want with | Some (Types.Vec t) -> t, args | _ -> fail loc "nothing here says what (vec-new) is a Vec of — write the element \ type, as (vec-new i32), or give the binding a type") (* The key and value types, or the reason this is not a Map. *) and map_kv loc what (t : Types.t) = match t with | Types.Map (k, v) -> k, v | other -> fail loc "%s takes a (Map K V), found %s" what (Types.to_string other) (* The key and value for [map-new]: two leading bare symbols naming types, or the expectation at the site. The same rule [vec-new] uses, with the same escape for a symbol that is really a binding — an allocator, in practice — and the pair is written together or not at all, because (map-new string) says half of a type and half is not a type. *) and map_new_types ctx ~want loc args = let is_type n = lookup ctx n = None && (not (Hashtbl.mem ctx.env.globals n)) && (List.mem n Types.primitive_names || Hashtbl.mem ctx.env.structs n || Hashtbl.mem ctx.env.enums n || Hashtbl.mem ctx.env.aliases n) in match args with | { Ast.e = Ast.Var k; _ } :: { Ast.e = Ast.Var v; _ } :: rest when is_type k && is_type v -> resolve_name ctx.env ~seen:[] loc k, resolve_name ctx.env ~seen:[] loc v, rest | { Ast.e = Ast.Var k; _ } :: rest when is_type k && rest = [] -> fail loc "(map-new %s) names a key and no value — write both, as (map-new %s \ i32), or give the binding a type" k k | _ -> (match want with | Some (Types.Map (k, v)) -> k, v, args | _ -> fail loc "nothing here says what (map-new) maps — write the key and value \ types, as (map-new string i32), or give the binding a type") (* The element type, or the reason this is not a Vec. *) and vec_elem loc what (t : Types.t) = match t with | Types.Vec e -> e | other -> fail loc "%s takes a (Vec T), found %s" what (Types.to_string other) (* The allocator an operation uses: the one named at the site, or the current implicit one. spec-memory.md: an operation never falls back to a hidden global allocator, and an explicit allocator can override the context. *) and allocator_arg ctx loc = function | [] -> rt loc Types.Alloc "flan_context_allocator" [] | [ a ] -> check ctx ~want:Types.Alloc a | _ -> fail loc "at most one allocator may be named here" (* The address of an element, bounds-checked, with the allocator's epoch checked first. Both the value form [(at v i)] and the place form [(set (at v i) x)] come through here, so they cannot drift apart — which is the asymmetry [nth] was removed for. *) and vec_at ctx loc (target : Tast.expr) (idx : Ast.expr list) = let elem = vec_elem loc "at" target.Tast.ty in match idx with | [ i ] -> let i = index_expr ctx i in rt loc (Types.Ptr elem) "flan_vec_at" [ target; i; size_of loc elem; here loc ], elem | _ -> fail loc "a Vec takes exactly one index — (at v i) — and its element is indexed \ separately" and named_call ctx ~want loc name args = let prim p ty args = expect loc ~want (mk loc ty (Tast.Prim (p, args))) in match name with (* ── arithmetic and comparison ─────────────────────────────────── *) | "+" | "-" | "*" | "/" -> let p = match name with | "+" -> Tast.Add | "-" -> Tast.Sub | "*" -> Tast.Mul | _ -> Tast.Div in fold_arity loc name args; fold_left_prim ctx ~want loc name p Types.is_numeric "numbers" args (* Remainder stays at two: (% a b c) is (% (% a b) c), which is a thing nobody writes on purpose. *) | "%" -> arity loc name 2 args; let a, b = binary ctx name loc ~want:(numeric_want want) args in if not (Types.is_numeric a.Tast.ty) then fail loc "%s takes numbers, found %s" name (Types.to_string a.Tast.ty); prim Tast.Rem a.Tast.ty [ a; b ] | "=" | "!=" | "<" | "<=" | ">" | ">=" -> let p = match name with | "=" -> Tast.Eq | "!=" -> Tast.Ne | "<" -> Tast.Lt | "<=" -> Tast.Le | ">" -> Tast.Gt | _ -> Tast.Ge in arity loc name 2 args; let a, b = binary ctx name loc ~want:None args in if not (Types.is_comparable a.Tast.ty) then fail loc "%s compares machine numbers; %s has no built-in comparison \ (plan.org, Types)" name (Types.to_string a.Tast.ty); prim p Types.Bool [ a; b ] | "not" -> arity loc name 1 args; prim Tast.Not Types.Bool [ check ctx ~want:Types.Bool (List.hd args) ] (* Bitwise operators are integers-only, and the shift count has the same type as the value shifted — there is no implicit widening anywhere else either. *) | "bit-and" | "bit-or" | "bit-xor" -> let p = match name with | "bit-and" -> Tast.BitAnd | "bit-or" -> Tast.BitOr | _ -> Tast.BitXor in fold_arity loc name args; fold_left_prim ctx ~want loc name p (function Types.Int _ -> true | _ -> false) "integers" args (* The shifts stay at two, and not only because a shift chain reads badly: each count would be checked against the same width below, so (<< x 30 30) would pass two legal shifts and still shift the value away entirely. *) | "<<" | ">>" -> let p = if String.equal name "<<" then Tast.Shl else Tast.Shr in arity loc name 2 args; let a, b = binary ctx name loc ~want:(numeric_want want) args in (match a.Tast.ty with | Types.Int _ -> () | other -> fail loc "%s takes integers, found %s" name (Types.to_string other)); (* A shift by the operand's own width or more is poison in LLVM, which at -O2 turns the whole function into an undefined value rather than into a wrong number. A literal count is rejected here — that is the typo — and [emit] masks a computed one, so no shift can reach the hardware out of range. *) (match a.Tast.ty, b.Tast.e with | Types.Int k, Tast.Int (n, _) when p = Tast.Shl || p = Tast.Shr -> let w = Int64.of_int (Types.bits k) in if Int64.unsigned_compare n w >= 0 then fail loc "%s by %Ld is out of range for %s, which is %d bits wide" name n (Types.to_string a.Tast.ty) (Types.bits k) | _ -> ()); prim p a.Tast.ty [ a; b ] (* (min a b) and (max a b) evaluate each operand once — hence the slots — because a min over two calls must not call either of them twice. Which is also why this one does not go through [fold_left_prim]: there is no Prim to fold, and the pair it folds is a whole comparison. Each step puts *both* of its sides in slots, the accumulated pick included, so the three-operand form is two nested lets and still exactly one evaluation of each operand — where reusing the previous [If] as an operand of the next would have duplicated everything inside it. *) | "min" | "max" -> fold_arity loc name args; let x, y, rest = match args with x :: y :: rest -> x, y, rest | _ -> assert false in let a, b = binary ctx name loc ~want:(numeric_want want) [ x; y ] in if not (Types.is_numeric a.Tast.ty) then fail loc "%s takes numbers, found %s" name (Types.to_string a.Tast.ty); let ty = a.Tast.ty in let cmp = if String.equal name "min" then Tast.Lt else Tast.Gt in let pick a b = let sa = fresh_slot ctx ty and sb = fresh_slot ctx ty in let la = mk loc ty (Tast.Local sa) and lb = mk loc ty (Tast.Local sb) in let test = mk loc Types.Bool (Tast.Prim (cmp, [ la; lb ])) in mk loc ty (Tast.Let ([ (sa, a); (sb, b) ], [ mk loc ty (Tast.If (test, la, lb)) ])) in expect loc ~want (List.fold_left (fun acc arg -> pick acc (check ctx ~want:ty arg)) (pick a b) rest) (* (zeroed) is the all-bytes-zero value of whatever it is being stored into, so it only means anything where a type is expected of it. *) | "zeroed" -> arity loc name 0 args; (match want with | Some ty when ty <> Types.Never -> mk loc ty (Tast.Zero ty) | _ -> fail loc "zeroed needs to know the type it is zeroing — use it where one is \ expected, as in (set grid (zeroed))") (* The one half of a destructuring [let] that [Parse] cannot do on its own. Everything else about a pattern is bindings and field accesses it already wrote; the arity is a *type* question — how many elements the value has — and there are no types in the parser. So the pattern's shape travels here as arguments: which element this binding wants, how many names the pattern binds, and whether that count is exact or a minimum (it is a minimum when the pattern ends in [& rest]). No source symbol can contain a [~] — the reader makes it a delimiter — so this name is unspellable and nothing but [Parse] can reach it. *) | "destructure~nth" -> (match args with | [ target; { Ast.e = Ast.Int i; _ }; { Ast.e = Ast.Int n; _ }; { Ast.e = Ast.Int exact; _ } ] -> let plural k = if Int64.equal k 1L then "" else "s" in let target = check ctx target in (match target.Tast.ty with | Types.Array (m, elem) -> if Int64.equal exact 1L && not (Int64.equal m n) then fail loc "this pattern binds %Ld name%s, but %s has %Ld element%s — a \ pattern over a fixed array names every element, or ends in \ [& rest]" n (plural n) (Types.to_string target.Tast.ty) m (plural m); if Int64.equal exact 0L && Int64.compare m n < 0 then fail loc "this pattern binds %Ld name%s before the &, but %s has only %Ld \ element%s" n (plural n) (Types.to_string target.Tast.ty) m (plural m); prim Tast.At elem [ target; mk loc index_ty (Tast.Int (i, Types.I32)) ] (* The asymmetry is real and is the reason this is refused rather than lowered to a bounds-checked [at]: a fixed array's length is in its type, so [[a b]] over a [[2 f32]] is a claim the checker can settle, and over a [[T]] it is a claim about a number that does not exist until the program runs. Turning it into a runtime trap would be a pattern that type checks and then kills the program, which is the trade this language does not make. *) | Types.Slice _ -> fail loc "a pattern cannot destructure %s: a slice's length is a runtime \ value, so nothing here can check that it has %Ld element%s. Use \ (at s i) and test (len s) yourself" (Types.to_string target.Tast.ty) n (plural n) | other -> fail loc "%s is not a fixed array, so [a b ...] cannot destructure it" (Types.to_string other)) | _ -> fail loc "destructure~nth is written by the compiler and cannot be called") (* ── allocators, spec-memory.md ────────────────────────────────── *) (* Every one of these is an ordinary named call, which is the whole of the escape NEXT.md describes: [check_call] already routes a named call through here, so none of the four function-value refusals is anywhere near it. *) (* A *user-written* allocator is the one thing in this tier that does need milestone 5, and it is refused by name rather than left as an unknown one. "Here is my proc, make an Allocator from it" needs a defn's name in value position, which is the refusal a few hundred lines below this. The built-in set needs nothing from milestone 5 because its procedures are C symbols the emitter names and no Flan type mentions them. *) | "make-allocator" | "allocator-from" | "allocator" -> fail loc "a user-written allocator is not implemented yet — milestone 5. It needs \ a defn's name in value position, which is a function value; the \ built-in allocators (heap-allocator, arena-new) need none of that \ because their procedures are runtime symbols and no Flan type names \ them" | "heap-allocator" -> arity loc name 0 args; expect loc ~want (mk loc Types.Alloc (Tast.Prim (Tast.Rt "flan_heap_allocator", []))) (* The capacity is explicit and there is no growing backing store: an arena whose size is decided by the program is one a program can reason about, and it is the only shape under which "exhausted" is a state a test can reach on purpose. *) | "arena-new" -> arity loc name 1 args; let cap = check ctx ~want:(Types.Int Types.I64) (List.hd args) in expect loc ~want (mk loc Types.Alloc (Tast.Prim (Tast.Rt "flan_arena_new", [ cap ]))) (* Hands the pages back, which [free-all] deliberately does not — see BUILT.md, "free-all is retain-capacity". *) | "arena-destroy" -> arity loc name 1 args; let a = check ctx ~want:Types.Alloc (List.hd args) in expect loc ~want (mk loc Types.Unit (Tast.Prim (Tast.Rt "flan_arena_destroy", [ a ]))) (* One of spec-memory.md's two release points. It takes the source location as a string so that an allocator with no region to release names the site rather than the runtime. *) | "free-all" -> arity loc name 1 args; let a = check ctx ~want:Types.Alloc (List.hd args) in expect loc ~want (mk loc Types.Unit (Tast.Prim (Tast.Rt "flan_alloc_free_all", [ a; here loc ]))) (* The capability set, read off the allocator value. Odin asks its procedure (Query_Features returning an Allocator_Mode_Set); a field is the same answer without the round trip, which is NEXT.md's call. *) | "can-free?" -> arity loc name 1 args; let a = check ctx ~want:Types.Alloc (List.hd args) in expect loc ~want (mk loc Types.Bool (Tast.Prim (Tast.Ne, [ mk loc (Types.Int Types.I8) (Tast.Prim (Tast.Rt "flan_alloc_can_free", [ a ])); mk loc (Types.Int Types.I8) (Tast.Int (0L, Types.I8)) ]))) | "can-free-all?" -> arity loc name 1 args; let a = check ctx ~want:Types.Alloc (List.hd args) in expect loc ~want (mk loc Types.Bool (Tast.Prim (Tast.Ne, [ mk loc (Types.Int Types.I8) (Tast.Prim (Tast.Rt "flan_alloc_can_free_all", [ a ])); mk loc (Types.Int Types.I8) (Tast.Int (0L, Types.I8)) ]))) (* The counter [free-all] bumps. A container records it and traps if it moved; this is the same number, readable, so a program can say what it saw. *) | "alloc-epoch" -> arity loc name 1 args; let a = check ctx ~want:Types.Alloc (List.hd args) in expect loc ~want (mk loc (Types.Int Types.I64) (Tast.Prim (Tast.Rt "flan_alloc_epoch", [ a ]))) (* The allocator's identity — its address — which is what the condition's :allocator field carries, so a handler holding several regions can tell which one ran out. *) | "alloc-id" -> arity loc name 1 args; let a = check ctx ~want:Types.Alloc (List.hd args) in expect loc ~want (mk loc (Types.Int Types.I64) (Tast.Prim (Tast.Rt "flan_alloc_id", [ a ]))) (* A ceiling on live bytes, 0 for none. spec-memory.md's retry restart is answerable only by a handler that can make the *same* request succeed, and for a fixed backing store the handler that works is the one that grows it: releasing the region a container lives in invalidates the container, which is what the epoch check catches. So the spec's "grows the arena and then invokes retry" needs a ceiling to raise, and this is it. It is also how a program exhausts an allocator on purpose. *) | "alloc-budget" -> arity loc name 1 args; let a = check ctx ~want:Types.Alloc (List.hd args) in expect loc ~want (mk loc (Types.Int Types.I64) (Tast.Prim (Tast.Rt "flan_alloc_budget", [ a ]))) | "set-alloc-budget" -> arity loc name 2 args; (match args with | [ a; n ] -> let a = check ctx ~want:Types.Alloc a in let n = check ctx ~want:(Types.Int Types.I64) n in expect loc ~want (mk loc Types.Unit (Tast.Prim (Tast.Rt "flan_alloc_set_budget", [ a; n ]))) | _ -> assert false) (* "Did you forget to free" is an allocator-tier question and this is the tier answering it — spec-memory.md, "Leaking is defined behaviour". *) | "alloc-live-blocks" -> arity loc name 1 args; let a = check ctx ~want:Types.Alloc (List.hd args) in expect loc ~want (mk loc (Types.Int Types.I64) (Tast.Prim (Tast.Rt "flan_alloc_live_blocks", [ a ]))) (* (with-allocator A BODY...). It rebinds and releases nothing: not at the end of the body, not anywhere. spec-memory.md is explicit that this is not a scope-end release point and that it is the point on which Odin's [defer delete] and Carp's scope-end frees were both rejected. *) | "with-allocator" -> (match args with | [] -> fail loc "with-allocator is (with-allocator allocator body ...)" | a :: body -> let a = check ctx ~want:Types.Alloc a in let body, ty = scoped ctx (fun () -> match body with | [] -> [ unit_at loc ], Types.Unit | _ -> let rec go = function | [ last ] -> let l = check ctx ?want last in [ l ], l.Tast.ty | e :: rest -> let e = check ctx e in let rest, ty = go rest in e :: rest, ty | [] -> assert false in go body) in expect loc ~want (mk loc ty (Tast.WithAlloc (a, body)))) (* ── (Vec T), spec-memory.md ───────────────────────────────────── *) (* Every one of these is a named call over a type-erased runtime, with size_of and align_of produced here because here is where the concrete element type is known. No generics are involved and none are needed. *) (* (vec-new), (vec-new T), (vec-new a), (vec-new T a). [let] has no type annotation — parse.ml settles that a triple binding is ambiguous and types are inferred — so a local Vec has nowhere to say what it holds, and the element type is written at the call instead. This is not the explicit instantiation syntax the generics section rules out: nothing here is generic, and the name is resolved as an ordinary type, not bound to a type variable. Where the context does say — a defvar's type, a function's return type, an argument — it is not needed and may be left out. *) | "vec-new" -> let elem, args = vec_new_elem ctx ~want loc args in let a = allocator_arg ctx loc args in let v = fresh_slot ctx (Types.Vec elem) in let attempt = rt loc (Types.Int Types.I8) "flan_vec_init" [ mk loc (Types.Vec elem) (Tast.Local v); a; i64_at loc 0L; size_of loc elem; align_of loc elem; here loc ] in expect loc ~want (mk loc (Types.Vec elem) (Tast.Let ([ (v, mk loc (Types.Vec elem) (Tast.Zero (Types.Vec elem))) ], [ alloc_guard ctx loc attempt; mk loc (Types.Vec elem) (Tast.Local v) ]))) (* Unit, not a Result and not an ignorable error code: see [alloc_guard]. *) | "push" -> arity loc name 2 args; (match args with | [ target; x ] -> let target = borrowed ctx target (fun () -> check ctx target) in let elem = vec_elem loc "push" target.Tast.ty in let x = check ctx ~want:elem x in (* The element is bound before the loop so that a [retry] re-attempts the allocation and not the expression that produced the value. *) let e = fresh_slot ctx elem in let attempt = rt loc (Types.Int Types.I8) "flan_vec_push" [ target; addr_of loc (mk loc elem (Tast.Local e)); size_of loc elem; align_of loc elem; here loc ] in expect loc ~want (mk loc Types.Unit (Tast.Let ([ (e, x) ], [ alloc_guard ctx loc attempt ]))) | _ -> assert false) | "reserve" -> arity loc name 2 args; (match args with | [ target; n ] -> let target = borrowed ctx target (fun () -> check ctx target) in let n = check ctx ~want:index_ty n in let n64 = mk loc (Types.Int Types.I64) (Tast.Prim (Tast.Cast (Types.Int Types.I64), [ n ])) in let attempt = match target.Tast.ty with (* For a map the number is entries, not slots: the runtime sizes the block so that [n] still sits under the 75% load factor, which is the only reading of "room for n" that does not reallocate on the nth put. *) | Types.Map (k, v) -> let hash, _ = key_fns ctx.env loc k in rt loc (Types.Int Types.I8) "flan_map_reserve" [ target; n64; size_of loc k; size_of loc v; hash; here loc ] | _ -> let elem = vec_elem loc "reserve" target.Tast.ty in rt loc (Types.Int Types.I8) "flan_vec_reserve" [ target; n64; size_of loc elem; align_of loc elem; here loc ] in expect loc ~want (alloc_guard ctx loc attempt) | _ -> assert false) (* (as-slice v) and (as-slice v lo hi) — spec-memory.md, "Borrowing". The result is a non-owning view: copying it copies ptr+len and never the elements, and it carries no allocator, so freeing through one is not expressible. A push, a put or a reserve may invalidate it; that is the explicit Zig/Odin contract the spec chose over a borrow checker. *) | "as-slice" -> (match args with | target :: rest when List.length rest = 0 || List.length rest = 2 -> let target = borrowed ctx target (fun () -> check ctx target) in let elem = vec_elem loc "as-slice" target.Tast.ty in let lo, hi = match rest with | [] -> mk loc index_ty (Tast.Int (0L, Types.I32)), (* -1 is "to the end": (as-slice v) has no static length to pass. *) mk loc index_ty (Tast.Int (-1L, Types.I32)) | [ lo; hi ] -> index_expr ctx lo, index_expr ctx hi | _ -> assert false in let out = fresh_slot ctx (Types.Slice elem) in let fill = rt loc Types.Unit "flan_vec_as_slice" [ target; addr_of loc (mk loc (Types.Slice elem) (Tast.Local out)); lo; hi; size_of loc elem; here loc ] in expect loc ~want (mk loc (Types.Slice elem) (Tast.Let ([ (out, mk loc (Types.Slice elem) (Tast.Zero (Types.Slice elem))) ], [ fill; mk loc (Types.Slice elem) (Tast.Local out) ]))) | _ -> fail loc "as-slice is (as-slice v) or (as-slice v lo hi)") (* spec-memory.md's first release point. It consumes its argument exactly as any other move does — the source binding is dead afterwards and using it is a compile error — which is the rule that already makes a double free unrepresentable, so [free] needs no analysis of its own. *) | "free" -> arity loc name 1 args; let target = check ctx (List.hd args) in (match target.Tast.ty with | Types.Vec elem -> expect loc ~want (rt loc Types.Unit "flan_vec_free" [ target; size_of loc elem; align_of loc elem; here loc ]) | Types.Map (k, v) -> expect loc ~want (rt loc Types.Unit "flan_map_free" [ target; size_of loc k; size_of loc v; here loc ]) | other -> (* A field is never freed on its own: it would leave its owner partly dead with no way to say so. *) fail loc "free takes a move-only value — a Vec, a Map, or a struct that owns \ one — found %s. A resource type with a drop hook is step 5 and does \ not exist yet" (Types.to_string other)) (* (clone v) uses the current allocator, (clone v a) names one. A deep, independent copy: spec-memory.md's "copying is always explicit". *) | "clone" -> (match args with | target :: rest when List.length rest <= 1 -> (* Checked once, then dispatched on what it turned out to be: checking it inside a guard as well would allocate the target's slots twice and evaluate whatever it was written as twice. *) let target = borrowed ctx target (fun () -> check ctx target) in let a = allocator_arg ctx loc rest in (match target.Tast.ty with (* A map's clone reinserts rather than copying the block, because the seed is derived from the block's address — see flan_rt.c. That is the runtime's business; from here it is one more allocating call under the same guard. *) | Types.Map (k, v) -> let mty = Types.Map (k, v) in let hash, _ = key_fns ctx.env loc k in let d = fresh_slot ctx mty in let attempt = rt loc (Types.Int Types.I8) "flan_map_clone" [ mk loc mty (Tast.Local d); target; a; size_of loc k; size_of loc v; hash; here loc ] in expect loc ~want (mk loc mty (Tast.Let ([ (d, mk loc mty (Tast.Zero mty)) ], [ alloc_guard ctx loc attempt; mk loc mty (Tast.Local d) ]))) | _ -> let elem = vec_elem loc "clone" target.Tast.ty in let d = fresh_slot ctx (Types.Vec elem) in let attempt = rt loc (Types.Int Types.I8) "flan_vec_clone" [ mk loc (Types.Vec elem) (Tast.Local d); target; a; size_of loc elem; align_of loc elem; here loc ] in expect loc ~want (mk loc (Types.Vec elem) (Tast.Let ([ (d, mk loc (Types.Vec elem) (Tast.Zero (Types.Vec elem))) ], [ alloc_guard ctx loc attempt; mk loc (Types.Vec elem) (Tast.Local d) ])))) | _ -> fail loc "clone is (clone v) or (clone v allocator)") (* ── (Map K V), spec-memory.md ─────────────────────────────────── *) (* Every one of these is a named call over the same type-erased runtime the Vec uses, with the two sizes and the key's hash and equality pair produced here because here is where the concrete types are known. No generics are involved and none are needed — which is exactly what Odin's Map_Info says too, being two sizes and two contextless procs. *) (* (map-new), (map-new K V), (map-new a), (map-new K V a). The same shape [vec-new] has and for the same reason: a [let] has no type annotation, so a local map has nowhere else to say what it holds. Where the context does say — a defvar's type, a parameter, a return type — the pair may be left out. *) | "map-new" -> let k, v, args = map_new_types ctx ~want loc args in let a = allocator_arg ctx loc args in let mty = map_type loc k v in let m = fresh_slot ctx mty in let attempt = rt loc (Types.Int Types.I8) "flan_map_init" [ mk loc mty (Tast.Local m); a; size_of loc k; size_of loc v; here loc ] in expect loc ~want (mk loc mty (Tast.Let ([ (m, mk loc mty (Tast.Zero mty)) ], [ alloc_guard ctx loc attempt; mk loc mty (Tast.Local m) ]))) (* (put m k v) — the upsert. Unit, not a Result and not an ignorable error code: see [alloc_guard]. spec-memory.md is explicit that it either inserts or replaces, and that (set (get m k) v) is not map syntax. *) | "put" -> arity loc name 3 args; (match args with | [ target; k; v ] -> let target = borrowed ctx target (fun () -> check ctx target) in let kt, vt = map_kv loc "put" target.Tast.ty in let k = check ctx ~want:kt k in let v = check ctx ~want:vt v in (* Both are bound before the loop, so that a [retry] re-attempts the allocation and not the expressions that produced the key and the value. The same rule [push] follows for its element. *) let ks = fresh_slot ctx kt and vs = fresh_slot ctx vt in let hash, eq = key_fns ctx.env loc kt in let attempt = rt loc (Types.Int Types.I8) "flan_map_put" [ target; addr_of loc (mk loc kt (Tast.Local ks)); addr_of loc (mk loc vt (Tast.Local vs)); size_of loc kt; size_of loc vt; hash; eq; here loc ] in expect loc ~want (mk loc Types.Unit (Tast.Let ([ (ks, k); (vs, v) ], [ alloc_guard ctx loc attempt ]))) | _ -> assert false) (* (get m k) -> (Option V). Absence is None, not an untyped nil, and the first implementation admits copyable values only, so this is a copy. There is no allocation here and therefore no guard: a lookup that finds nothing is an answer, not a failure. *) | "get" -> arity loc name 2 args; (match args with | [ target; k ] -> let target = borrowed ctx target (fun () -> check ctx target) in let kt, vt = map_kv loc "get" target.Tast.ty in let k = check ctx ~want:kt k in let hash, eq = key_fns ctx.env loc kt in let ks = fresh_slot ctx kt in let out = fresh_slot ctx vt in let found = rt loc (Types.Int Types.I8) "flan_map_get" [ target; addr_of loc (mk loc kt (Tast.Local ks)); addr_of loc (mk loc vt (Tast.Local out)); size_of loc kt; size_of loc vt; hash; eq; here loc ] in let oty = Types.Option vt in (* The runtime answers 1/0 and fills [out] only when it answers 1, so the Option is built here rather than there: the runtime has no idea what an Option's layout is, and keeping it that way is what lets one entry point serve every value type. *) let some = mk loc oty (Tast.Some_ (mk loc vt (Tast.Local out))) in let none = mk loc oty Tast.None_ in let cond = mk loc Types.Bool (Tast.Prim (Tast.Ne, [ found; mk loc (Types.Int Types.I8) (Tast.Int (0L, Types.I8)) ])) in expect loc ~want (mk loc oty (Tast.Let ([ (ks, k); (out, mk loc vt (Tast.Zero vt)) ], [ mk loc oty (Tast.If (cond, some, none)) ]))) | _ -> assert false) (* (has-key? m k). (get m k) answers the same question, but through an Option the caller then has to match; this is the form a condition wants, and it copies no value. *) | "has-key?" -> arity loc name 2 args; (match args with | [ target; k ] -> let target = borrowed ctx target (fun () -> check ctx target) in let kt, vt = map_kv loc "has-key?" target.Tast.ty in let k = check ctx ~want:kt k in let hash, eq = key_fns ctx.env loc kt in let ks = fresh_slot ctx kt in let found = rt loc (Types.Int Types.I8) "flan_map_has" [ target; addr_of loc (mk loc kt (Tast.Local ks)); size_of loc kt; size_of loc vt; hash; eq; here loc ] in expect loc ~want (mk loc Types.Bool (Tast.Let ([ (ks, k) ], [ mk loc Types.Bool (Tast.Prim (Tast.Ne, [ found; mk loc (Types.Int Types.I8) (Tast.Int (0L, Types.I8)) ])) ]))) | _ -> assert false) (* ── Assets, decision 1: embedded at compile time ────────────── Odin's #load and #load_directory are the model (src/parser.cpp, src/check_builtin.cpp's check_load_directive), and the reason it is the right answer here is the one NEXT.md gives: it is a *compiler* feature, so it needs no build flags, no linker arguments and no per-target packaging, and it works identically on desktop and web. That matters more here than it does for Odin, because [Load] gives link flags only to a directory package — the single file doing (rl/load-texture "brush.png") is structurally the one file with no link channel. Embedding has no such hole. Odin's `#` is not imported. An s-expression language already has a head position for a name, so these are ordinary named calls spelled [embed] and [embed-dir], resolved here exactly as [vec-new] and [heap-allocator] are. The result costs nothing at run time: the bytes become a `private unnamed_addr constant` string, the same one every string literal already becomes, and emit.ml's [escape] is byte-exact, so a PNG survives the round trip through the .ll. Bound with [defconst], an [embed-dir] becomes an LLVM constant outright (emit.ml's [const]). The one sharp edge, and it is not new: the slice this hands back points into .rodata, so a store through it either segfaults at -O0 or is deleted at -O2 — the same measured trap the prelude's ASCII-case note describes for (bytes "Hi"). Clone the bytes into a Vec for a mutable copy. Nothing here widens that hole; it inherits it, and provenance is what would close it. *) | "embed" -> (match args with | [ p ] | [ p; _ ] -> (* The spelling is settled before the file is opened, so a program that asks for a type embed cannot read a file as is told that, rather than being told the file is missing and left to discover the other half after fixing it. *) (match args with | [ _; { Ast.e = Ast.Var "string"; _ } ] | [ _ ] -> () | [ _; t ] -> fail t.Ast.loc "embed's second argument is the type to read the file as, and \ `string` is the only one — (embed \"p\") is the [u8]" | _ -> ()); let data = read_embed_file (embed_path loc p) p.Ast.loc in let as_string () = mk loc Types.String (Tast.Str data) in (* A [Str] node typed [u8] rather than a [Bytes] prim over one. [Bytes] is identity — emit.ml lowers String and Slice _ to the same %slice — and the prim would make the node non-constant, so an (embed-dir) in a defconst could not be an LLVM constant. Both of emit.ml's string emitters take the bytes and ignore the node's type, so this is the same constant either way, and it is one a global can hold. *) let as_bytes () = mk loc (Types.Slice (Types.Int Types.U8)) (Tast.Str data) in (* Two spellings rather than one that changes type with its context. Odin threads a type_hint everywhere and can afford (embed "p") to mean a string here and a []u8 there; with structural equality and no implicit widening anywhere, the same text meaning two types would be a wart. [want] is a fallback only, and nothing depends on it. *) (match args with | [ _; { Ast.e = Ast.Var "string"; _ } ] -> expect loc ~want (as_string ()) | _ -> (match want with | Some Types.String -> as_string () | _ -> expect loc ~want (as_bytes ()))) | _ -> fail loc "embed is (embed \"path\") for a [u8], or (embed \"path\" string)") | "embed-dir" -> arity loc name 1 args; let arg = List.hd args in let entries = read_embed_dir (embed_path loc arg) arg.Ast.loc in if not (Hashtbl.mem ctx.env.structs "EmbedFile") then fail loc "embed-dir answers a [n EmbedFile] and EmbedFile is not in scope — it \ is a prelude type and something has replaced the prelude"; let ety = Types.Named "EmbedFile" in let elems = List.map (fun (nm, data) -> mk loc ety (Tast.Make ("EmbedFile", [ mk loc Types.String (Tast.Str nm); mk loc (Types.Slice (Types.Int Types.U8)) (Tast.Str data) ]))) entries in expect loc ~want (mk loc (Types.Array (Int64.of_int (List.length entries), ety)) (Tast.Arr elems)) (* ── slurp and barf, decisions 2 and 5 ───────────────────────── [slurp] reads a whole file and answers a (Vec u8). It allocates, which is why it waited for Vec, and it follows spec-memory.md's rule to the letter: no allocating operation returns an error, so there is no Result here and no out-parameter — a failure to allocate is StorageExhausted under [retry] and a failure to read is FileError under [retry] and [use-value]. The two guards nest rather than merge, and that is the point: they are two different failures with two different answerable questions, and a handler that grows an arena is not the handler that supplies another path. Everything is inside the file loop, so a [use-value] that names a different file re-measures it and re-allocates for its size. The Vec is freed at the top of each turn, which is why a retry does not leak; freeing a Vec that never allocated is a no-op (flan_rt.c, flan_vec_free). *) | "slurp" -> (match args with | path :: rest when List.length rest <= 1 -> let path = check ctx ~want:Types.String path in let a = allocator_arg ctx loc rest in let ps = fresh_slot ctx Types.String in let psv () = mk loc Types.String (Tast.Local ps) in let u8 = Types.Int Types.U8 in let vt = Types.Vec u8 in let v = fresh_slot ctx vt in let vv () = mk loc vt (Tast.Local v) in let n = fresh_slot ctx (Types.Int Types.I64) in let nv () = mk loc (Types.Int Types.I64) (Tast.Local n) in let steps try_ = [ (* The size first, because it is the step that does not allocate: a missing file is found before any storage is committed to it. *) try_ (rt loc (Types.Int Types.I8) "flan_file_size" [ psv (); addr_of loc (nv ()) ]); (* Previous turn's storage, if a retry brought us back here. *) rt loc Types.Unit "flan_vec_free" [ vv (); size_of loc u8; align_of loc u8; here loc ]; alloc_guard ctx loc (rt loc (Types.Int Types.I8) "flan_vec_init" [ vv (); a; nv (); size_of loc u8; align_of loc u8; here loc ]); (* Fills the Vec the line above sized. A file that grew since the measurement is truncated to the buffer; one that shrank leaves a shorter Vec. Both are successful reads of what was there. *) try_ (rt loc (Types.Int Types.I8) "flan_slurp_into" [ vv (); psv () ]) ] in expect loc ~want (mk loc vt (Tast.Let ([ (ps, path); (n, i64_at loc 0L); (v, mk loc vt (Tast.Zero vt)) ], [ file_guard ctx loc ~path_slot:ps ~op:0 steps; vv () ]))) | _ -> fail loc "slurp is (slurp path) or (slurp path allocator)") (* [barf] writes a whole file, and on the web target it signals — every time, with the path in the condition. Decision 2, and the reason is worth having at the call site: Flan has NO conditional compilation, so "isolate this to desktop" is not expressible in source and a build-time refusal would be unusable; a silent no-op is worse than either, because that is how a save file disappears with nothing said. So the program gets a condition and decides. Nothing here reads the target — the refusal is flan_rt.c's, one #ifdef in the host layer, which is exactly where the two targets are already implemented twice. *) | "barf" -> arity loc name 2 args; (match args with | [ path; data ] -> let path = check ctx ~want:Types.String path in let data = byte_slice ctx data in let ps = fresh_slot ctx Types.String in let ds = fresh_slot ctx (Types.Slice (Types.Int Types.U8)) in let steps try_ = [ try_ (rt loc (Types.Int Types.I8) "flan_file_write" [ mk loc Types.String (Tast.Local ps); mk loc (Types.Slice (Types.Int Types.U8)) (Tast.Local ds) ]) ] in (* Both operands are bound before the loop so that a retry re-attempts the write and not the expressions that produced it — the same rule alloc_guard states for push. *) expect loc ~want (mk loc Types.Unit (Tast.Let ([ (ps, path); (ds, data) ], [ file_guard ctx loc ~path_slot:ps ~op:1 steps ]))) | _ -> assert false) (* ── containers ────────────────────────────────────────────────── *) (* [at] and [len] were already the names for a fixed array and a slice, so a Vec extends them rather than adding a parallel pair — which is the asymmetry [nth] was removed for. A Vec's length is i32 like every other length here (index_ty): widening indices is one change across all of them and not a Vec question. *) | "len" -> arity loc name 1 args; let target = List.hd args in let a = borrowed ctx target (fun () -> check ctx target) in (match a.Tast.ty with | Types.Array _ | Types.Slice _ | Types.String -> prim Tast.Len index_ty [ a ] | Types.Vec _ -> let n = rt loc (Types.Int Types.I64) "flan_vec_len" [ a; here loc ] in expect loc ~want (mk loc index_ty (Tast.Prim (Tast.Cast index_ty, [ n ]))) (* Extended rather than given a name of its own, for the reason [at] and [len] were extended over Vec: one question, one word. *) | Types.Map _ -> let n = rt loc (Types.Int Types.I64) "flan_map_len" [ a; here loc ] in expect loc ~want (mk loc index_ty (Tast.Prim (Tast.Cast index_ty, [ n ]))) | other -> fail loc "len takes an array, a slice, a string, a Vec or a Map, found %s" (Types.to_string other)) | "at" -> (match args with | target :: idx when idx <> [] -> let target = borrowed ctx target (fun () -> check ctx target) in (match target.Tast.ty with | Types.Vec _ -> let p, elem = vec_at ctx loc target idx in expect loc ~want (mk loc elem (Tast.Deref p)) | _ -> let idx, ty = indexed ctx target idx in prim Tast.At ty (target :: idx)) | _ -> fail loc "%s is (%s collection index ...)" name name) | "slice" -> arity loc name 3 args; (match args with | [ target; lo; hi ] -> let target = check ctx target in let elem = match target.Tast.ty with | Types.Array (_, t) | Types.Slice t -> t | other -> fail loc "slice takes an array or a slice, found %s" (Types.to_string other) in prim Tast.Slice (Types.Slice elem) (let lo_loc = lo.Ast.loc and hi_loc = hi.Ast.loc in let lo = check ctx ~want:index_ty lo in let hi = check ctx ~want:index_ty hi in let ty = target.Tast.ty in (* A bound may sit one past the end, so the length is checked against lo and hi both, not against the last valid index. *) (match literal lo with | Some k -> static_index lo_loc ty ~past_end:true "slice bound" k | None -> ()); (match literal hi with | Some k -> static_index hi_loc ty ~past_end:true "slice bound" k | None -> ()); (match literal lo, literal hi with | Some a, Some b when a > b -> fail loc "slice [%Ld %Ld) runs backwards — lo must not exceed hi" a b | _ -> ()); [ target; lo; hi ]) | _ -> assert false) (* ── pointers ──────────────────────────────────────────────────── *) | "addr" -> arity loc name 1 args; let a = List.hd args in (match place_of_expr a with | None -> fail a.Ast.loc "addr takes the address of a place — a name, (.field x), (at a i) \ or (deref p)" | Some p -> let p, ty = check_place ctx a.Ast.loc p in expect loc ~want (mk loc (Types.Ptr ty) (Tast.Addr p))) | "deref" -> arity loc name 1 args; let a = check ctx (List.hd args) in (match a.Tast.ty with | Types.Ptr t -> expect loc ~want (mk loc t (Tast.Deref a)) | other -> fail loc "deref takes a (Ptr T), found %s" (Types.to_string other)) (* ── Option ────────────────────────────────────────────────────── *) | "Some" -> arity loc name 1 args; let inner = match want with Some (Types.Option t) -> Some t | _ -> None in let a = check ctx ?want:inner (List.hd args) in expect loc ~want (mk loc (Types.Option a.Tast.ty) (Tast.Some_ a)) (* ── the milestone-2 host primitives (plan.org) ────────────────── *) | "bytes" -> arity loc name 1 args; prim Tast.Bytes (Types.Slice (Types.Int Types.U8)) [ check ctx ~want:Types.String (List.hd args) ] (* (string b): a [u8] seen as a string. The mirror of (bytes s), spelled the same way — a type name in head position, like (bytes s) and unlike the numeric casts, which go through [is_cast] and really do convert. It costs nothing. emit.ml lowers Types.String and Types.Slice _ to the same %slice, 16 bytes at align 8, so a string and a [u8] are already the identical value at run time; both this and [Bytes] emit as the argument itself. What changes is only what the checker will let the value be passed to — which is the whole gap: i64->bytes answers a [u8] and every declare-c text parameter wants a string, and nothing joined them. Two decisions are baked in here. 1. It does NOT check UTF-8, because `string` does not claim UTF-8. The prelude settles this: valid-utf8? is an ordinary function you call when you care, decode-rune/rune-at/rune-count all take [u8] rather than string, and decode-rune answers {.ok false .width 1} on a malformed byte rather than assuming its input is well-formed. The one place the runtime treats a string differently from a byte slice is flan_escape_bytes, for a string nested in a printed structure, and that is a byte-wise escape table with no decoding in it. So there is no code that would be wrong about a string of arbitrary bytes, and a check here would be the only enforcement point in the language — a claim the rest of it does not make. 2. It does not widen the literal-write hole (NEXT.md, "Writing through a string literal"). That hole is the other direction: (bytes "Hi") hands you a writable-looking slice over constant data. This direction only loses the ability to write — a string is read-only everywhere — so the result of (string b) can reach strictly fewer stores than b could. Provenance is still what the other direction needs; nothing here depends on having it. The one sharp edge is not new but is easier to trip over now: the slice that i64->bytes / f64->bytes / u64->bytes answer is a view into one shared static buffer in the runtime, overwritten by the next such call. Calling it a string does not copy it. Use it before formatting the next number; you cannot hold two at once. *) | "string" -> arity loc name 1 args; prim Tast.StrOfBytes Types.String [ byte_slice ctx (List.hd args) ] | "bytes->f64" -> arity loc name 1 args; prim Tast.BytesToF64 (Types.Float Types.F64) [ byte_slice ctx (List.hd args) ] | "bytes->i64" -> arity loc name 1 args; prim Tast.BytesToI64 (Types.Int Types.I64) [ byte_slice ctx (List.hd args) ] | "f64->bytes" -> arity loc name 1 args; prim Tast.F64ToBytes (Types.Slice (Types.Int Types.U8)) [ check ctx ~want:(Types.Float Types.F64) (List.hd args) ] | "i64->bytes" -> arity loc name 1 args; prim Tast.I64ToBytes (Types.Slice (Types.Int Types.U8)) [ check ctx ~want:(Types.Int Types.I64) (List.hd args) ] | "write-stdout" -> arity loc name 1 args; prim Tast.WriteStdout Types.Unit [ byte_slice ctx (List.hd args) ] (* (println x) and (print x): the structural printer, selected on the type the argument checked to. plan.org, Milestone 5 — "compiler-provided, per concrete type". That is not overloading and needs no type variables: there is no dispatch at run time and no user-supplied printer to pick between. The walk itself is render.ml, shared with the REPL, which is what stops the two from drifting apart. [min]/[max]/[zeroed] above dispatch on the resolved argument type the same way. The slots the slice arm needs come out of the frame of whatever function this call is written in, via [fresh_slot] — allocated once per call site, at check time, not once per iteration of a loop around it. A string prints raw here and quoted inside a structure. Those are not in conflict: (println "hello") has to print hello or it is useless, and (println b) where b has a string field has to quote it or the field cannot be told from the punctuation. The split is exactly top level vs nested, which is why it lives here and not in the walk. *) | "print" | "println" -> arity loc name 1 args; (* Printing is a read, not a move: the walk goes over the value and keeps nothing. Without this, (println v) would consume a Vec and every printing of one would be its last. *) let target = List.hd args in let a = borrowed ctx target (fun () -> check ctx target) in let bslice = Types.Slice (Types.Int Types.U8) in let write x = mk loc Types.Unit (Tast.Prim (Tast.WriteStdout, [ x ])) in let conv pr x = mk loc bslice (Tast.Prim (pr, [ x ])) in let emitter : Render.emitter = { Render.ebytes = write; estr = (fun x -> write (conv Tast.EscapeBytes x)); ei64 = (fun x -> write (conv Tast.I64ToBytes x)); eu64 = (fun x -> write (conv Tast.U64ToBytes x)); ef64 = (fun x -> write (conv Tast.F64ToBytes x)) } in let rc = { Render.structs = Hashtbl.fold (fun _ v acc -> v :: acc) ctx.env.structs []; enums = Hashtbl.fold (fun k v acc -> (k, v) :: acc) ctx.env.enums []; emit = emitter; alloc = (fun ty -> fresh_slot ctx ty) } in let parts = match a.Tast.ty with | Types.String | Types.Slice (Types.Int Types.U8) -> [ write (mk loc bslice (Tast.Prim (Tast.Bytes, [ a ]))) ] | _ -> Render.render rc 0 a in let nl = if String.equal name "println" then [ write (mk loc bslice (Tast.Prim (Tast.Bytes, [ mk loc Types.String (Tast.Str "\n") ]))) ] else [] in expect loc ~want (mk loc Types.Unit (Tast.Do (parts @ nl))) | "exit" -> arity loc name 1 args; prim Tast.Exit Types.Never [ check ctx ~want:index_ty (List.hd args) ] | "argv" -> arity loc name 0 args; prim Tast.Argv (Types.Slice Types.String) [] (* ── casts: (i32 x), (f64 x), and an enum both ways ──────────────── (i32 e) and (GamepadAxis n) are written here rather than in an arm of their own because they are the same operation: an enum is an i32 at run time — Types.Enum says so — and emit.ml's [cast] already reduces one to its i32 before choosing an instruction. So both directions cost nothing: src and target are equal after that reduction and [cast] answers the value unchanged. Why this does not give the typo back. The property worth keeping is that :spcae at a call site is an error at that site, and it still is: a keyword resolves against the parameter's enum and a bare integer does not fit one. What changes is only that a program can *say* it means the conversion, by name, at the site. The rule was never "an integer is dangerous", it was "an integer must not arrive silently", and a written (GamepadAxis i) is not silent. Three sub-decisions: 1. enum → any numeric is always allowed and never checked. It is lossless to i32 by construction, and a narrower target truncates by the same rule every int→int cast already follows — no special case, and (f32 e) means (f32 (i32 e)) rather than an arbitrary refusal. 2. integer → enum accepts a value that is not a declared member. raylib's gesture is a bitfield and an OR of flags is a legal Gesture that is no single member, so refusing it would refuse correct programs; and session.ml's printer already falls through to the number for an out-of-range enum, on purpose, so refusing to *construct* one while blessing its display would be incoherent. An Option would make every site unwrap for no safety bought, and a literal-only refusal would catch nothing — the bitfield case is a run-time value. 3. Only an integer converts *to* an enum. Not a float, which has no meaning here, and not another enum: an enum-to-enum hop goes through (i32 x) so that both ends are written down. *) | _ when Hashtbl.mem ctx.env.enums name -> arity loc name 1 args; let target = resolve_name ctx.env ~seen:[] loc name in let a = check ctx (List.hd args) in (match a.Tast.ty with | Types.Int _ -> () | other -> fail loc "%s converts an integer to an enum, found %s — an enum or a \ float goes through (i32 x) first" name (Types.to_string other)); prim (Tast.Cast target) target [ a ] | _ when is_cast name && List.length args = 1 -> let target = resolve_name ctx.env ~seen:[] loc name in let a = check ctx (List.hd args) in (match a.Tast.ty with | Types.Enum _ -> () | t when Types.is_numeric t -> () | t -> fail loc "%s converts a number, found %s" name (Types.to_string t)); prim (Tast.Cast target) target [ a ] (* ── ordinary calls ────────────────────────────────────────────── *) | _ -> match Hashtbl.find_opt ctx.env.fns name with | Some (params, ret) -> if List.length args <> List.length params then fail loc "%s takes %d argument%s, given %d" name (List.length params) (if List.length params = 1 then "" else "s") (List.length args); let args = map2_lr (fun p a -> check ctx ~want:p a) params args in expect loc ~want (mk loc ret (Tast.Call (name, args))) | None -> if Hashtbl.mem ctx.env.structs name || Hashtbl.mem ctx.env.unions name then fail loc "%s is a type — a struct value is written (%s {.field value ...})" name name else if String.contains name '/' then unimplemented loc (Printf.sprintf "the call %s into an imported package" name) 4 else fail loc "unknown function %s" name and is_cast name = Types.ikind_of_name name <> None || Types.fkind_of_name name <> None and byte_slice ctx (a : Ast.expr) = check ctx ~want:(Types.Slice (Types.Int Types.U8)) a and numeric_want want = match want with Some (Types.Int _ | Types.Float _) -> want | _ -> None (* Both operands of a binary operator have one type, and there is no implicit widening, so one side has to decide it. Check the side that carries the most information first: a non-literal over a literal, and a float literal over an integer one, since an integer constant converts to a float and not back. *) and binary ctx name loc ~want args = match args with | [ x; y ] -> let y_decides = (is_literal x && not (is_literal y)) || (match x.Ast.e, y.Ast.e with | (Ast.Int _ | Ast.Byte _), Ast.Float _ -> true | _ -> false) in if y_decides then begin let b = check ctx ?want y in let a = check ctx ~want:b.Tast.ty x in a, b end else begin let a = check ctx ?want x in let b = check ctx ~want:a.Tast.ty y in a, b end | _ -> fail loc "%s takes two arguments" name (* ── Declarations: pass 1, collect ─────────────────────────────────── *) (* Constant folding, only over integers and only for defconst — enough for an array length like (/ screen-height cell-size). *) let rec const_int env (e : Ast.expr) : int64 option = match e.Ast.e with | Ast.Int n -> Some n | Ast.Byte b -> Some (Int64.of_int b) | Ast.Var n -> Hashtbl.find_opt env.consts n (* Left to right over any number of operands, because that is how the checker reads the same form: an array length that type-checks as a product of three literals and is then not a constant would be a distinction with nothing behind it. [%] is still two, as it is there. *) | Ast.Call ({ Ast.e = Ast.Var op; _ }, x :: y :: rest) -> let step a b = match op with | "+" -> Some (Int64.add a b) | "-" -> Some (Int64.sub a b) | "*" -> Some (Int64.mul a b) | "/" when b <> 0L -> Some (Int64.div a b) | "%" when b <> 0L && rest = [] -> Some (Int64.rem a b) | _ -> None in List.fold_left (fun acc e -> match acc, const_int env e with | Some a, Some b -> step a b | _ -> None) (const_int env x) (y :: rest) | _ -> None let collect env (decls : Ast.decl list) = (* One pass over every declaration kind before any of the others, because the tables below are per-kind — structs, unions, aliases, enums, functions and globals each have their own — and a collision between two of them would otherwise be found by LLVM, as [redefinition of function '@flan.item'], or not at all. A [defn item] and a [defvar item] are two declarations of one name and are rejected here. *) let claimed = Hashtbl.create 64 in List.iter (fun (d : Ast.decl) -> match Ast.declared_name d with | None -> () | Some n -> if Hashtbl.mem claimed n then fail d.Ast.dloc "%s is defined twice" n; Hashtbl.add claimed n ()) decls; (* Names first, so a struct may mention one declared below it. *) List.iter (fun (d : Ast.decl) -> match d.Ast.d with | Ast.Defstruct (n, _) -> Hashtbl.replace env.locs n d.Ast.dloc; Hashtbl.replace env.structs n { Tast.sname = n; fields = [] } | Ast.Defunion (n, _) -> Hashtbl.replace env.locs n d.Ast.dloc; Hashtbl.replace env.unions n { Tast.uname = n; cases = [] } | Ast.Defalias (n, t) -> Hashtbl.replace env.aliases n t | _ -> ()) decls; (* Compile-time integer constants next, to a fixpoint, because an array length may name a constant declared below it — top-level names in a package are order-independent (plan.org, Modules). *) let fold_consts () = let progress = ref false in List.iter (fun (d : Ast.decl) -> match d.Ast.d with | Ast.Defconst (n, _, v) when not (Hashtbl.mem env.consts n) -> (match const_int env v with | Some i -> Hashtbl.replace env.consts n i; progress := true | None -> ()) | _ -> ()) decls; !progress in while fold_consts () do () done; let field (f : Ast.field) : Tast.field = { Tast.fname = f.Ast.fname; fty = resolve env f.Ast.fty } in (* Constants with no declared type are inferred from their value, which needs every other signature in hand — so they are deferred to a pass of their own below. *) let untyped = ref [] in (* Enums come first, in a pass of their own: a signature below may name one, and [resolve] has to find it before it resolves that signature. *) List.iter (fun (d : Ast.decl) -> match d.Ast.d with | Ast.Defenum (n, members) -> let names = List.map fst members in if List.length (List.sort_uniq compare names) <> List.length names then fail d.Ast.dloc "%s declares the same member twice" n; Hashtbl.replace env.enums n members; Hashtbl.replace env.locs n d.Ast.dloc | _ -> ()) decls; List.iter (fun (d : Ast.decl) -> let loc = d.Ast.dloc in match d.Ast.d with | Ast.Package _ -> () | Ast.Defenum _ -> () (* Imports are gone by now: [Load] resolved them into these very decls, so one reaching the checker is a driver that skipped that step. *) | Ast.Import (alias, _) -> fail loc "internal: the import of %s was not resolved before checking" alias (* [Shim.expand] rewrote every one of these into a [Declare] and a [Defn] before [collect] ran, so one arriving here is a driver that skipped that step. *) | Ast.DeclareC (fn, _) -> fail loc "internal: the declare-c of %s was not expanded before checking" fn.Ast.name | Ast.Declare (fn, csym) -> if Hashtbl.mem env.fns fn.Ast.name then fail loc "%s is declared twice" fn.Ast.name; let params = List.map (fun (p : Ast.field) -> resolve env p.Ast.fty) fn.Ast.params in let ret = match fn.Ast.ret with None -> Types.Unit | Some t -> resolve env t in (* What may cross the boundary. A slice or a string goes as ptr+len, a scalar as itself; an aggregate does not go at all, because how one is passed differs per target and reproducing that here would be three calling conventions to maintain. Pass (Ptr T) instead and let the C shim dereference it — that is what the shim is for. *) let crossable what (t : Types.t) = match t with | Types.Int _ | Types.Float _ | Types.Bool | Types.Ptr _ | Types.Enum _ | Types.Unit -> () | Types.String | Types.Slice _ when what = "a parameter" -> () | _ -> fail loc "%s of %s is %s, which cannot cross to C directly — pass \ (Ptr %s) and let the shim read it" what fn.Ast.name (Types.to_string t) (Types.to_string t) in List.iter (crossable "a parameter") params; crossable "the return type" ret; Hashtbl.replace env.fns fn.Ast.name (params, ret); Hashtbl.replace env.externs fn.Ast.name csym | Ast.Defalias _ -> () | Ast.Defstruct (n, fs) -> let names = List.map (fun (f : Ast.field) -> f.Ast.fname) fs in if List.length (List.sort_uniq compare names) <> List.length names then fail loc "%s declares the same field twice" n; let fields = List.map field fs in (* spec-memory.md: "Ownership is structural, not declared" — a struct containing a Vec is itself move-only, and freeing one recurses into its owning fields while (free (.items b)) is refused because it would leave the owner partly dead. None of that transitive machinery exists yet: it is the same recursive teardown [drop] brings, and it lands with it. Until then the field is refused at the declaration, where the message can say so, rather than accepted into a struct that copies its header on assignment and gives two owners one buffer. *) List.iter (fun (f : Tast.field) -> if Types.is_move_only f.Tast.fty then fail loc "%s's field %s is %s, which is move-only, and a struct that \ owns one is move-only too — transitively, with recursive \ teardown and with a field that cannot be freed on its own. \ That rule arrives with drop (step 5 in NEXT.md); until then \ hold the %s in a local and pass it" n f.Tast.fname (Types.to_string f.Tast.fty) (Types.to_string f.Tast.fty)) fields; Hashtbl.replace env.structs n { Tast.sname = n; fields } | Ast.Defunion (n, vs) -> Hashtbl.replace env.unions n { Tast.uname = n; cases = List.map (fun (v : Ast.variant) -> { Tast.vname = v.Ast.vname; vfields = List.map field v.Ast.vfields }) vs } | Ast.Defn fn -> let params = List.map (fun (p : Ast.field) -> resolve env p.Ast.fty) fn.Ast.params in let ret = match fn.Ast.ret with None -> Types.Unit | Some t -> resolve env t in Hashtbl.replace env.fns fn.Ast.name (params, ret) | Ast.Defvar (n, t, _) -> let ty = match t with | Some t -> resolve env t | None -> fail loc "defvar %s needs a type" n in Hashtbl.replace env.globals n (ty, false) | Ast.Defconst (n, Some t, _) -> Hashtbl.replace env.globals n (resolve env t, true) | Ast.Defconst (n, None, v) -> untyped := (n, v) :: !untyped) decls; (* Also to a fixpoint, and for the same reason: one untyped constant may be defined in terms of another declared after it. A constant that still does not check once no progress is left has a real error, so the last round is run without swallowing it. *) let infer (_, v) = (check { env; ret = Types.Unit; slots = 0; slot_tys = []; slot_names = []; scope = []; defers = []; outer = []; in_handler = false; in_frames = None; in_defer = false; defer_ok = false; defer_block = "a nested form"; dead = []; borrow = false; owner = "" } v).Tast.ty in let pending = ref (List.rev !untyped) in let rec settle () = let left = List.filter (fun ((n, _) as c) -> match infer c with | ty -> Hashtbl.replace env.globals n (ty, true); false | exception Loc.Error _ -> true) !pending in let progressed = List.length left < List.length !pending in pending := left; if progressed && left <> [] then settle () in settle (); List.iter (fun c -> ignore (infer c)) !pending (* A type that contains itself by value has no finite size. [(Ptr T)] and a slice are indirections and break the cycle; a fixed array does not, because it is inline. Caught here rather than when a backend tries to lay the type out or a zero value is built for it — which would not fail, it would hang. *) let check_finite env = let rec walk seen name = if List.mem name seen then fail (Option.value (Hashtbl.find_opt env.locs name) ~default:Loc.unknown) "%s contains itself by value, so it has no size — go through (Ptr %s)" name name; let seen = name :: seen in match Hashtbl.find_opt env.structs name with | Some s -> List.iter (fun (f : Tast.field) -> ty seen f.Tast.fty) s.Tast.fields | None -> match Hashtbl.find_opt env.unions name with | None -> () | Some u -> List.iter (fun (c : Tast.variant) -> List.iter (fun (f : Tast.field) -> ty seen f.Tast.fty) c.Tast.vfields) u.Tast.cases and ty seen = function | Types.Named n -> walk seen n | Types.Array (_, e) | Types.Option e -> ty seen e | _ -> () in Hashtbl.iter (fun n _ -> walk [] n) env.structs; Hashtbl.iter (fun n _ -> walk [] n) env.unions (* ── Declarations: pass 2, check bodies ────────────────────────────── *) let check_fn env (fn : Ast.fn) : Tast.fn = let params, ret = Hashtbl.find env.fns fn.Ast.name in let ctx = { env; ret; slots = 0; slot_tys = []; slot_names = []; scope = []; defers = []; outer = []; in_handler = false; in_frames = None; in_defer = false; defer_ok = false; defer_block = "a nested form"; dead = []; borrow = false; owner = fn.Ast.name } in List.iter2 (fun (p : Ast.field) ty -> if List.mem_assoc p.Ast.fname ctx.scope then fail p.Ast.floc "%s has two parameters named %s" fn.Ast.name p.Ast.fname; ignore (bind ctx p.Ast.fname ty ~assignable:false)) fn.Ast.params params; let body = match fn.Ast.fbody with | [] -> if Types.equal ret Types.Unit then [] else fail fn.Ast.nloc "%s returns %s but has no body" fn.Ast.name (Types.to_string ret) | body -> (* The last form is the return value, unless the function returns Unit, in which case whatever it evaluates to is discarded. *) let want = if Types.equal ret Types.Unit then None else Some ret in (* Every form here is at the top level of the function body, so every one of them may carry a [defer] — and so may a form inside a [let] written here, which is what [ctx.defer_ok] carries down. [check] registers it and yields [unit]; the permission is granted again before each form because [check] withdraws it as it starts. A trailing [defer] is still a [defer] and not the return value, so the expectation is not put to it: it would only ever report [Unit] against the declared return type, which names the wrong problem. *) let is_defer (e : Ast.expr) = match e.Ast.e with Ast.Defer _ -> true | _ -> false in let rec go = function | [ last ] -> ctx.defer_ok <- true; [ (if is_defer last then check ctx last else check ctx ?want last) ] | x :: rest -> ctx.defer_ok <- true; let x = check ctx x in x :: go rest | [] -> assert false in go body in (* Function exit runs the defers, innermost first. An explicit [return] ran its own (see [check]); this is the fall-off-the-end path. A trap does not run them — it is [noreturn] and then [unreachable] — and that is the same rule the bounds checks already follow. *) let body = match ctx.defers with | [] -> body | ds when Types.equal ret Types.Unit -> body @ ds | ds -> (* The result is computed before the defers run and returned after, so it goes through a slot rather than staying the last form. *) let rec split = function | [ last ] -> ([], last) | x :: rest -> let (init, last) = split rest in (x :: init, last) | [] -> assert false in let init, last = split body in let s = fresh_slot ctx ret in let loc = last.Tast.loc in init @ [ mk loc ret (Tast.Let ([ (s, last) ], ds @ [ mk loc ret (Tast.Local s) ])) ] in { Tast.name = fn.Ast.name; params; slots = Array.of_list (List.rev ctx.slot_tys); snames = Array.of_list (List.rev ctx.slot_names); (* The same defers again, for the transfer exit path §5 describes. The normal path has them spliced into [body] above. *) ret; body; fdefers = ctx.defers; fparent = None; floc = fn.Ast.nloc } (* A global of move-only type is refused. The dead set is per function, so two functions each freeing the same global is a double free nothing here could see; and within one function a global read does not go through [var]'s move path at all, so even the local case would be accepted. Rather than half a rule, the type is refused where it is declared. A global *Allocator* is not this — an allocator is a copyable opaque handle — which is what makes the handler-owns-the-arena shape in exhausted.flan expressible. *) let no_move_only_global loc n (ty : Types.t) = if Types.is_move_only ty then fail loc "the global %s is %s, which is move-only, and ownership of a global \ cannot be tracked: the dead set is per function, so two functions each \ freeing it is a double free nothing would catch. Hold it in a local and \ pass it, or hold the allocator globally instead" n (Types.to_string ty) let check_global env (d : Ast.decl) : Tast.global option = let ctx () = { env; ret = Types.Unit; slots = 0; slot_tys = []; slot_names = []; scope = []; defers = []; outer = []; in_handler = false; in_frames = None; in_defer = false; defer_ok = false; defer_block = "a nested form"; dead = []; borrow = false; owner = "" } in match d.Ast.d with | Ast.Defvar (n, _, init) -> let ty, _ = Hashtbl.find env.globals n in no_move_only_global d.Ast.dloc n ty; let ginit = match init with | Ast.Zeroed -> { Tast.e = Tast.Zero ty; ty; loc = d.Ast.dloc } | Ast.Uninit -> { Tast.e = Tast.Uninit ty; ty; loc = d.Ast.dloc } | Ast.Init v -> check (ctx ()) ~want:ty v in Some { Tast.gname = n; gty = ty; ginit; gconst = false; gfolded = false } | Ast.Defconst (n, _, v) -> let ty, _ = Hashtbl.find env.globals n in no_move_only_global d.Ast.dloc n ty; (* [collect] already folded the integer constants, because an array length has to be known before any type resolves. Use that value here rather than the expression it came from: a global's initialiser has to be a compile-time constant, and [(/ screen-height cell-size)] is one — the folding pass is the only thing that knows it. *) let ginit = match Hashtbl.find_opt env.consts n, ty with | Some k, Types.Int kind -> (* Still range-checked: this path skips [check], and [in_range] is the only thing that rejects 300 as a u8. *) { Tast.e = Tast.Int (in_range d.Ast.dloc kind k, kind); ty; loc = d.Ast.dloc } | _ -> check (ctx ()) ~want:ty v in (* [env.consts] holds exactly the constants the folding pass consumed, so membership is the question "is this value in the program's shape?" *) Some { Tast.gname = n; gty = ty; ginit; gconst = true; gfolded = Hashtbl.mem env.consts n } | _ -> None (* The entry point, plan.org: (defn main [args [string]] i32), with both the parameter and the return type optional. *) let check_main env = match Hashtbl.find_opt env.fns "main" with | None -> () (* a library, or a file being checked on its own *) | Some (params, ret) -> let ok_params = match params with | [] -> true | [ Types.Slice Types.String ] -> true | _ -> false in if not ok_params then fail Loc.unknown "main takes no parameters or one [string], not (%s)" (String.concat " " (List.map Types.to_string params)); if not (Types.equal ret Types.Unit || Types.equal ret (Types.Int Types.I32)) then fail Loc.unknown "main returns i32 or nothing, not %s" (Types.to_string ret) (* The environment as well as the program. A session needs it to check an expression typed at a REPL against the program the process is running — and it has to be this one rather than anything rebuilt from declarations, because [program] prepends the prelude and no accumulated AST contains it. *) let program_with_env (decls : Ast.decl list) : Tast.program * env = let env = new_env () in let decls = Parse.program (Prelude.forms ()) @ decls in (* Before anything is collected: every (declare-c ...) becomes an ordinary flattened [declare] with a Flan [defn] over it, and the C that does the flattening comes back to be compiled into the build. Nothing below this line knows the form exists. *) let decls, cshim = Shim.expand decls in collect env decls; check_finite env; check_main env; let globals = List.filter_map (check_global env) decls in let fns = List.filter_map (fun (d : Ast.decl) -> match d.Ast.d with | Ast.Defn fn -> Some (check_fn env fn) | _ -> None) decls in (* The handler clauses lifted out along the way. They are ordinary functions from here down; nothing in the backend knows they were written inside something else. *) let fns = fns @ List.rev env.lifted in (* Sorted, so the emitted IR is reproducible build to build: a Hashtbl's fold order is not. *) let values name tbl = Hashtbl.fold (fun _ v acc -> v :: acc) tbl [] |> List.sort (fun a b -> String.compare (name a) (name b)) in let externs = Hashtbl.fold (fun name esym acc -> let eparams, eret = Hashtbl.find env.fns name in { Tast.ename = name; esym; eparams; eret } :: acc) env.externs [] |> List.sort (fun (a : Tast.extern) b -> String.compare a.Tast.esym b.Tast.esym) in ({ Tast.structs = values (fun (s : Tast.structure) -> s.Tast.sname) env.structs; unions = values (fun (u : Tast.union) -> u.Tast.uname) env.unions; globals; externs; fns; cshim }, env) let program (decls : Ast.decl list) : Tast.program = fst (program_with_env decls) (* One expression, checked against a program that is already running. The frame is empty — a REPL expression has no parameters and no enclosing function — so the slots it needs are whatever its own [let]s allocate. *) let expression env (e : Ast.expr) : Tast.expr * Types.t array * string option array = let ctx = { env; ret = Types.Unit; slots = 0; slot_tys = []; slot_names = []; scope = []; defers = []; outer = []; in_handler = false; in_frames = None; in_defer = false; defer_ok = false; defer_block = "a nested form"; dead = []; borrow = false; owner = "" } in let t = check ctx e in (t, Array.of_list (List.rev ctx.slot_tys), Array.of_list (List.rev ctx.slot_names))