writeonce/compiler/test/runner.ml
shoney.arickathil 2de724df11 feat(compiler): MVS ownership pass + woc driver; drop Money/SKU/Float, reject abstract
Completes plan 2 Tasks 7-8. owner.ml: mutable-value-semantics flow analysis
producing the four plan-3 emitter tables (moves, drops incl. LIVE-MASK for trap
unwinding, rc with elision, residual borrow sites) plus WO-E301-304 two-site
diagnostics. Alias questions run over canonicalized places, so a double-mut
reached through let-bound aliases lands in the residual table like the direct
form; dump.ml's contract notes the emitter must coalesce guards per operand.
main.ml: directory discovery, cross-file programs (symbols merge before bodies
check), diagnostics ordered by (file,line,col), new WO-E214 for a name declared
in two files. New docs/plan/oop-vm/01-error-catalog.md (14 emitted + 10 reserved
codes), un-ignored so both plan tracks can cite it; justfile regains woc-*.

builtin_scalars is now the five that work: Int, Bool, Text, Timestamp, Id.
Money/SKU/Float and the abstract_types allowlist are gone — `abstract` never
lexed, and Float had no literal syntax and no wob kind, so no value could exist.
Fixtures and samples retype Money->Int, SKU->Text. The abstract newtype feature
is rejected outright (verdict row adopt->reject); haxe-parity Task 7 keeps `is`.

nullable-types-implementation.md corrected: ?T is plumbed but UNENFORCED
(E211-213 declared, never emitted; probe exits 0), handed to haxe-parity Task 6
as next work item. Records all 10 dead codes incl. E205 — interface satisfaction
is unchecked. crates/rt keeps its Money/SKU fixtures (opaque strings, Stage 2).

Gate: build warning-clean, 14 + 264 checks 0 failures, pricing golden exit 0,
docs/examples histograms unchanged (13/70, zero WO-E225).
2026-08-10 21:24:50 +02:00

1582 lines
73 KiB
OCaml

(* runner.ml — golden-file test runner (Task 3 onward).
Contract (compiler/plan/2026-08-01-woc-compiler-front.md Task 3):
walks compiler/test/golden/<stage>/ directories; for every
<name>.wo file in a stage directory, runs the pipeline stage that
directory's dump flag names and diffs the produced text against
<name>.expected. A mismatch prints a line-based diff; the run exits
nonzero if anything mismatched. WOC_BLESS=1 rewrites <name>.expected
to the freshly produced text instead of comparing — used once, by
hand, to seed or intentionally update a fixture; every commit ships
with the runner GREEN against whatever it last wrote.
Wired into `dune runtest` alongside test_diag.ml (see test/dune).
-- Why this file resolves two different "golden root" paths --
`dune runtest` runs this executable with its current directory set
to the *build* copy of test/ (e.g. ".../compiler/_build/default/test"),
not the real source directory — verified empirically: a file written
via a bare relative path while running under `dune runtest` lands
under _build/default and is silently discarded (or stale-overwritten)
on the next build. Reading fixtures from the plain relative "golden"
path is fine — test/dune declares `(deps (source_tree golden))`,
which both (a) keeps that build-directory copy fresh from the real
source on every run, since dune must digest that dependency to
decide whether to re-run this test's action at all, and (b) is
itself the reason editing a fixture actually invalidates a
previously-cached PASS. But WOC_BLESS=1 rewriting *that* copy would
vanish — the whole point of bless mode is to update the fixture git
tracks. So bless-mode writes instead go through [source_golden_dir],
which walks back out of "_build/default" to the real
compiler/test/golden on disk. *)
module Diag = Woc_lib.Diag
module Token = Woc_lib.Token
module Lexer = Woc_lib.Lexer
module Ast = Woc_lib.Ast
module Parser = Woc_lib.Parser
module Dump = Woc_lib.Dump
module Types = Woc_lib.Types
module Owner = Woc_lib.Owner
let read_file path =
let ic = open_in_bin path in
let n = in_channel_length ic in
let s = really_input_string ic n in
close_in ic;
s
let write_file path contents =
let oc = open_out_bin path in
output_string oc contents;
close_out oc
(* Manual substring search: no Str/Re library (this project is
stdlib-only), and this is the only place a substring search is
needed. Fine for the short, one-shot haystack (a cwd path) this is
used on. *)
let find_substring ~needle haystack =
let hlen = String.length haystack and nlen = String.length needle in
let rec go i =
if i + nlen > hlen then None
else if String.sub haystack i nlen = needle then Some i
else go (i + 1)
in
go 0
(* The real, on-disk compiler/test/golden — see module doc above. Falls
back to a short list of plausible relative paths for a manual
(non-dune) invocation, where cwd is wherever the caller's shell
already is. *)
let source_golden_dir () =
match Sys.getenv_opt "WOC_GOLDEN_DIR" with
| Some dir -> dir
| None -> (
let cwd = Sys.getcwd () in
let marker = "_build/default/" in
match find_substring ~needle:marker cwd with
| Some idx -> String.sub cwd 0 idx ^ "test/golden"
| None -> (
let candidates = [ "golden"; "test/golden"; "compiler/test/golden" ] in
match List.find_opt Sys.file_exists candidates with
| Some dir -> dir
| None ->
failwith
"runner: cannot locate compiler/test/golden (set WOC_GOLDEN_DIR)"))
let bless = Sys.getenv_opt "WOC_BLESS" = Some "1"
let checks = ref 0
let failures = ref 0
let check name cond =
incr checks;
if not cond then begin
incr failures;
Printf.printf "FAIL: %s\n" name
end
let check_eq name ~expected ~actual to_string =
incr checks;
if expected <> actual then begin
incr failures;
Printf.printf "FAIL: %s\n expected: %s\n actual: %s\n" name
(to_string expected) (to_string actual)
end
(* ---- direct lexer assertions (not golden-diffed) -------------------
golden/tokens/gotcha.wo and unknown-char.wo already pin the token
*stream* for these cases, but a token dump alone can't distinguish
"no diagnostic was raised" from "one was raised and silently
dropped" — both look identical in the dump (the bad character is
just absent either way). These assertions pin the diagnostic side
of the WO-E001 contract directly against the Collector. *)
let () =
let collector = Diag.Collector.create () in
let toks =
Lexer.tokenize collector ~file:"gotcha.wo"
"self me subscribe receive insert select"
in
let kinds = List.map (fun (t : Token.t) -> t.kind) toks in
check
"gotcha: self/me/subscribe/receive/insert/select all lex as Ident"
(kinds
= [
Token.Ident "self";
Token.Ident "me";
Token.Ident "subscribe";
Token.Ident "receive";
Token.Ident "insert";
Token.Ident "select";
Token.Eof;
])
let () =
let collector = Diag.Collector.create () in
let toks =
Lexer.tokenize collector ~file:"gotcha.wo" "INSERT SELECT type class"
in
let kinds = List.map (fun (t : Token.t) -> t.kind) toks in
check "gotcha: uppercase INSERT/SELECT and type/class lex as keywords"
(kinds = [ Token.KwInsert; Token.KwSelect; Token.KwType; Token.KwClass; Token.Eof ])
let () =
let collector = Diag.Collector.create () in
let toks = Lexer.tokenize collector ~file:"bad.wo" "let x = 1 ~ 2" in
let kinds = List.map (fun (t : Token.t) -> t.kind) toks in
check "unknown char: skipped, never appears as a token"
(kinds
= [ Token.KwLet; Token.Ident "x"; Token.Eq; Token.Int 1; Token.Int 2; Token.Eof ]);
let diags = Diag.Collector.diagnostics collector in
check_eq "unknown char: exactly one diagnostic reported" ~expected:1
~actual:(List.length diags) string_of_int;
match diags with
| [ d ] ->
check "unknown char: WO-E001 at the '~' position (line 1, col 11)"
(d.code = "WO-E001" && d.site.line = 1 && d.site.col = 11)
| _ -> check "unknown char: diagnostic shape" false
let () =
(* golden/tokens/dangling-escape.wo opens a string and ends the file
on a lone backslash, with no character left to escape it. Read
from disk rather than duplicated as a literal so this assertion
and the golden dump can never silently drift apart from the
actual fixture bytes (the file has no trailing newline on purpose
-- its very last byte must be the backslash). *)
let path = "golden/tokens/dangling-escape.wo" in
let src = read_file path in
let collector = Diag.Collector.create () in
let toks = Lexer.tokenize collector ~file:path src in
let kinds = List.map (fun (t : Token.t) -> t.kind) toks in
check
"dangling escape: string closes with whatever was collected before \
the backslash"
(kinds
= [ Token.KwLet; Token.Ident "bad"; Token.Eq; Token.Str "abc"; Token.Eof ]);
let diags = Diag.Collector.diagnostics collector in
check_eq "dangling escape: exactly one diagnostic reported" ~expected:1
~actual:(List.length diags) string_of_int;
match diags with
| [ d ] ->
check "dangling escape: WO-E002 at the backslash's position (line 1, col 15)"
(d.code = "WO-E002" && d.site.line = 1 && d.site.col = 15)
| _ -> check "dangling escape: diagnostic shape" false
let () =
(* Deliberate asymmetry with the case above (see
unterminated_escape_code's doc comment in lexer.ml): a plain
unterminated string -- no dangling backslash, it simply runs off
the end of the source with no closing quote at all -- is rt-parity
silent. Pinned inline (no fixture file needed for this half) so
nothing starts reporting a diagnostic here without this test
noticing. *)
let collector = Diag.Collector.create () in
let toks =
Lexer.tokenize collector ~file:"plain.wo" "let plain = \"never closed"
in
let kinds = List.map (fun (t : Token.t) -> t.kind) toks in
check
"plain unterminated string: closes with all collected content, no \
diagnostic"
(kinds
= [
Token.KwLet;
Token.Ident "plain";
Token.Eq;
Token.Str "never closed";
Token.Eof;
]);
check_eq "plain unterminated string: reports nothing" ~expected:0
~actual:(List.length (Diag.Collector.diagnostics collector))
string_of_int
let () =
(* Faithful rt port (crates/rt/src/lexer.rs read_ident_chars): an
identifier's continuation characters include '-', so `a-b` lexes
as one Ident, not Ident/Dash/Ident. Pinned here so nothing "fixes"
this away before Task 5 decides how its expression grammar wants
binary minus to interact with it (see lexer.ml's module doc for
the forward-looking concern this raises). golden/tokens/
dash-continuation.wo pins the same two shapes as a dump diff. *)
let collector = Diag.Collector.create () in
let toks = Lexer.tokenize collector ~file:"dash.wo" "a-b" in
let kinds = List.map (fun (t : Token.t) -> t.kind) toks in
check "dash-continuation: a-b (no spaces) lexes as one Ident"
(kinds = [ Token.Ident "a-b"; Token.Eof ])
let () =
let collector = Diag.Collector.create () in
let toks = Lexer.tokenize collector ~file:"dash.wo" "a - b" in
let kinds = List.map (fun (t : Token.t) -> t.kind) toks in
check "dash-continuation: a - b (spaced) lexes as Ident, Dash, Ident"
(kinds = [ Token.Ident "a"; Token.Dash; Token.Ident "b"; Token.Eof ])
(* ---- direct parser/AST assertions (Task 4, not golden-diffed) ------------
golden/ast/*.wo fixtures already pin the AST *shape* via --dump-ast,
but a dump alone can't distinguish "no diagnostic was raised" from
"one was raised and silently dropped" (dump.ml's spec: node ids are
deliberately never printed), and it can't see the AST's `id`/`conv`/
`default` fields directly. These assertions pin the parts of the
Task 4 contract a text dump structurally cannot show. *)
let parse_str ~file src =
let collector = Diag.Collector.create () in
let toks = Lexer.tokenize collector ~file src in
let prog = Parser.parse collector ~file toks in
(prog, collector)
let () =
(* golden/ast/two-error-recovery.wo: `class Broken1` has a malformed
field (`bad_field Text`, missing ':'), `class Good` in between is
well-formed, `interface Broken2` has a malformed signature
(`x Text` instead of `x: Text`). The dump golden already shows only
`Good` survives; this assertion is the load-bearing half: exactly
two diagnostics (not a cascade from either broken declaration),
both WO-E101 syntax errors, each at the actual offending token. *)
let path = "golden/ast/two-error-recovery.wo" in
let src = read_file path in
let prog, collector = parse_str ~file:path src in
check "recovery: exactly one surviving declaration (`Good`)"
(match prog.Ast.decls with
| [ Ast.Class c ] -> c.name = "Good"
| _ -> false);
let diags = Diag.Collector.diagnostics collector in
check_eq "recovery: exactly two diagnostics reported (one per broken decl)"
~expected:2 ~actual:(List.length diags) string_of_int;
match diags with
| [ d1; d2 ] ->
check "recovery: first diagnostic is WO-E101 at `bad_field` (line 3, col 3)"
(d1.code = "WO-E101" && d1.site.line = 3 && d1.site.col = 3);
check "recovery: second diagnostic is WO-E101 at the bad param type (line 11, col 13)"
(d2.code = "WO-E101" && d2.site.line = 11 && d2.site.col = 13)
| _ -> check "recovery: diagnostic shape" false
let () =
(* golden/ast/body-recovery.wo (Task 5): `fn oops` has two malformed
statement bodies (`let bad1 = ;` — missing expression before the
terminator — and `return bad2 +` — missing the `+`'s right-hand
operand), each surrounded by well-formed `let` statements. The
dump golden already shows only `ok1`/`ok2` surviving; this is the
load-bearing half proving that's *recovery* (one diagnostic per
broken statement, syncing at the next newline/semicolon per the
brief) and not a silent drop or a cascade. *)
let path = "golden/ast/body-recovery.wo" in
let src = read_file path in
let prog, collector = parse_str ~file:path src in
check "body-recovery: exactly one surviving fn (`oops`)"
(match prog.Ast.decls with
| [ Ast.Fn m ] -> m.name = "oops"
| _ -> false);
let diags = Diag.Collector.diagnostics collector in
check_eq "body-recovery: exactly two diagnostics reported (one per broken statement)"
~expected:2 ~actual:(List.length diags) string_of_int;
(match prog.Ast.decls with
| [ Ast.Fn m ] ->
check "body-recovery: both `let` statements survive, in order"
(List.map
(fun (s : Ast.stmt) ->
match s.Ast.s_kind with Ast.Let { name; _ } -> name | _ -> "?")
m.body
= [ "ok1"; "ok2" ])
| _ -> check "body-recovery: exactly one surviving fn" false);
match diags with
| [ d1; d2 ] ->
check "body-recovery: first diagnostic is WO-E101 at the missing `let` value (line 3, col 14)"
(d1.code = "WO-E101" && d1.site.line = 3 && d1.site.col = 14);
check "body-recovery: second diagnostic is WO-E101 after the dangling `+` (line 5, col 16)"
(d2.code = "WO-E101" && d2.site.line = 5 && d2.site.col = 16)
| _ -> check "body-recovery: diagnostic shape" false
let () =
(* golden/ast/skip-on-block.wo: a policy/service/on-block-laden class
body. The dump golden shows exactly 3 fields and 0 methods survive
(the load-bearing brace-depth counter finding the object literal's
own close, not the type's); this assertion pins the other half —
zero diagnostics (the skip is a deliberate, silent no-op, not a
recovered error) and re-confirms shape at the AST level directly. *)
let path = "golden/ast/skip-on-block.wo" in
let src = read_file path in
let prog, collector = parse_str ~file:path src in
check_eq "skip-on-block: reports nothing (silent skip, not recovery)"
~expected:0
~actual:(List.length (Diag.Collector.diagnostics collector))
string_of_int;
(match prog.Ast.decls with
| [ Ast.Class c ] ->
check "skip-on-block: field names/order survive policy/service/on"
(List.map (fun (f : Ast.field) -> f.name) c.fields = [ "id"; "title"; "published" ]);
check "skip-on-block: no methods (none were declared)" (c.methods = [])
| _ -> check "skip-on-block: exactly one class declaration" false)
let () =
(* Coordinator-review finding: `on`/`service`/`policy` are plain Idents
(Task 3 deliberately keeps them usable as identifiers), so a FIELD
literally named one of them (`on: Bool`) must not be swallowed by
the skip-on-block interpretation just because its name matches —
only its *shape* (no Colon right after) means "this is a
service/policy/on block". golden/ast/field-named-sync-keyword.wo
puts fields named on/service/policy in the SAME class body as real
`policy ...`, `on ... do ...`, and `service rest ...` blocks, so
this one fixture proves both halves at once: the fields all survive
(this assertion), and the genuine blocks still correctly disappear
(the golden dump for this fixture shows only 5 fields, 0 methods,
nothing leaking from the skipped blocks) — while
golden/ast/skip-on-block.wo above continues to prove the reverse
case (genuine blocks, no fields sharing their names) stays green. *)
let path = "golden/ast/field-named-sync-keyword.wo" in
let src = read_file path in
let prog, collector = parse_str ~file:path src in
check_eq "field-named-sync-keyword: reports nothing" ~expected:0
~actual:(List.length (Diag.Collector.diagnostics collector))
string_of_int;
match prog.Ast.decls with
| [ Ast.Class c ] ->
check
"field-named-sync-keyword: fields named on/service/policy all survive, in order"
(List.map (fun (f : Ast.field) -> f.name) c.fields
= [ "id"; "on"; "service"; "policy"; "name" ]);
check "field-named-sync-keyword: no methods (none were declared)" (c.methods = [])
| _ -> check "field-named-sync-keyword: exactly one class declaration" false
let () =
(* Param conventions (Task 4 brief: bare = borrow, `mut`, `take`) —
pinned directly against Ast.param.conv, not just the dump's text
rendering of it. *)
let prog, _ =
parse_str ~file:"conv.wo" "fn f(a: Int, mut b: Int, take c: Int) -> Int {\n return a;\n}\n"
in
match prog.Ast.decls with
| [ Ast.Fn m ] ->
check "param conventions: bare/mut/take parsed in order"
(List.map (fun (p : Ast.param) -> p.conv) m.params = [ Ast.Borrow; Ast.Mut; Ast.Take ])
| _ -> check "param conventions: exactly one free fn" false
let () =
(* `= now()` is DefaultNow; anything else is DefaultOpaque carrying
the raw token span (Task 4 brief, ported from rt's DefaultExpr::Now
vs ::Opaque). Pinned at the AST level, not just via dump text. *)
let prog, _ =
parse_str ~file:"defaults.wo"
"type T {\n created: Timestamp = now()\n active: Bool = true\n}\n"
in
match prog.Ast.decls with
| [ Ast.Class c ] -> (
match c.fields with
| [ f1; f2 ] ->
check "default now(): recognized as DefaultNow" (f1.default = Some Ast.DefaultNow);
check "default true: opaque token span, not DefaultNow"
(match f2.default with
| Some (Ast.DefaultOpaque [ { Token.kind = Token.KwTrue; _ } ]) -> true
| _ -> false)
| _ -> check "defaults: exactly two fields" false)
| _ -> check "defaults: exactly one type declaration" false
let () =
(* @table's known keys (name/index) round-trip; an unknown key is a
parse error under its own code (WO-E102), distinct from the
generic WO-E101 syntax-error code — mirrors Task 3's WO-E001/002
split (one code per distinct situation, not one catch-all). *)
let prog, collector =
parse_str ~file:"table.wo"
"@table(name: \"prices\", index: [sku, at])\nclass Price {\n id: Id\n}\n"
in
check_eq "@table: no diagnostics on a well-formed configuration" ~expected:0
~actual:(List.length (Diag.Collector.diagnostics collector))
string_of_int;
(match prog.Ast.decls with
| [ Ast.Class c ] ->
check "@table: name and index captured"
(match c.table with
| Some { Ast.table_name = Some "prices"; indexes = [ [ "sku"; "at" ] ] } -> true
| _ -> false)
| _ -> check "@table: exactly one class" false);
let _, bad_collector = parse_str ~file:"bad-table.wo" "@table(shard_key: sku)\ntype T {\n id: Id\n}\n" in
let bad_diags = Diag.Collector.diagnostics bad_collector in
check_eq "@table: unknown key reports exactly one diagnostic" ~expected:1
~actual:(List.length bad_diags) string_of_int;
match bad_diags with
| [ d ] -> check "@table: unknown key is WO-E102, not the generic WO-E101" (d.code = "WO-E102")
| _ -> check "@table: unknown-key diagnostic shape" false
let () =
(* Node ids: unique across a parse and, for every container relative
to its own children, strictly smaller (Task 4 decision: a
container's id is minted once its head is confirmed and before its
body is parsed, uniformly for class/interface/method/fn — see
parser.ml's parse_sig_head comment). Collected by hand here rather
than depending on any future Ast-walking helper, since Task 4
doesn't ship one. *)
let prog, _ = parse_str ~file:"ids.wo" (read_file "golden/ast/pricing-demo.wo") in
let ids = ref [] in
let add id = ids := id :: !ids in
let visit_param (p : Ast.param) = add p.id in
let visit_field (f : Ast.field) = add f.id in
let visit_method (m : Ast.method_decl) =
check
(Printf.sprintf "node ids: method `%s` id < all its param ids" m.name)
(List.for_all (fun (p : Ast.param) -> m.id < p.id) m.params);
add m.id;
List.iter visit_param m.params
in
let visit_sig (s : Ast.method_sig) =
check
(Printf.sprintf "node ids: interface method `%s` id < all its param ids" s.name)
(List.for_all (fun (p : Ast.param) -> s.id < p.id) s.params);
add s.id;
List.iter visit_param s.params
in
List.iter
(fun (d : Ast.decl) ->
match d with
| Ast.Class c ->
check
(Printf.sprintf "node ids: class/type `%s` id < all its field/method ids" c.name)
(List.for_all (fun (f : Ast.field) -> c.id < f.id) c.fields
&& List.for_all (fun (m : Ast.method_decl) -> c.id < m.id) c.methods);
add c.id;
List.iter visit_field c.fields;
List.iter visit_method c.methods
| Ast.Interface i ->
check
(Printf.sprintf "node ids: interface `%s` id < all its method ids" i.name)
(List.for_all (fun (s : Ast.method_sig) -> i.id < s.id) i.methods);
add i.id;
List.iter visit_sig i.methods
| Ast.Fn m -> visit_method m)
prog.Ast.decls;
let sorted = List.sort compare !ids in
let deduped = List.sort_uniq compare !ids in
check "node ids: every id in the tree is unique" (List.length sorted = List.length deduped)
(* ---- statement/expression parser (Task 5, not golden-diffed) ------------
golden/ast/{body-statements,ctor-literal,db-stub,body-recovery}.wo
already pin the dump-text shape; these assertions pin the parts a
text dump structurally cannot show — the precedence ladder's actual
tree shape, and the insert/select asymmetry (statement-only vs.
statement-and-expression), same rationale as Task 4's own direct
assertions above. *)
let () =
(* Precedence ladder (parser.ml's parse_expr chain): comparison is
loosest, then concat, then additive, then multiplicative, then
unary — so `1 + 2 * 3 == 4 .. "x"` must parse as
`Eq(Add(1, Mul(2,3)), Concat(4, "x"))`, not e.g. `Mul` grabbing
`2 * (3 == 4)` or concat binding tighter than `+`. *)
let prog, _ = parse_str ~file:"prec.wo" "fn f() {\n return 1 + 2 * 3 == 4 .. \"x\"\n}\n" in
match prog.Ast.decls with
| [ Ast.Fn m ] -> (
match m.body with
| [ { Ast.s_kind = Ast.Return (Some e); _ } ] -> (
match e.Ast.kind with
| Ast.Binary
( Ast.Eq,
{ Ast.kind = Ast.Binary (Ast.Add, { Ast.kind = Ast.IntLit 1; _ }, add_rhs); _ },
{ Ast.kind = Ast.Binary (Ast.Concat, { Ast.kind = Ast.IntLit 4; _ }, concat_rhs); _ }
) ->
check "precedence: `2 * 3` is the addition's right operand, not split by `==`"
(match add_rhs.Ast.kind with
| Ast.Binary (Ast.Mul, { Ast.kind = Ast.IntLit 2; _ }, { Ast.kind = Ast.IntLit 3; _ }) ->
true
| _ -> false);
check "precedence: concat's right operand is the string literal"
(match concat_rhs.Ast.kind with Ast.StrLit "x" -> true | _ -> false)
| _ -> check "precedence: top-level operator is `==` over an `Add` and a `Concat`" false)
| _ -> check "precedence: exactly one `return` statement" false)
| _ -> check "precedence: exactly one free fn" false
let () =
(* Constructor literal: `ClassName { field: expr, ... }`, recognized
by the identifier-then-brace shape in expression position (Task 5
brief). Pinned directly against Ast.Ctor, not just dump text. *)
let prog, _ = parse_str ~file:"ctor.wo" "fn f() {\n let w = Widget { a: 1, b: 2 }\n}\n" in
match prog.Ast.decls with
| [ Ast.Fn m ] -> (
match m.body with
| [ { Ast.s_kind = Ast.Let { value = { Ast.kind = Ast.Ctor (name, fields); _ }; _ }; _ } ] ->
check "ctor literal: class name captured" (name = "Widget");
check "ctor literal: field names/order captured"
(List.map fst fields = [ "a"; "b" ])
| _ -> check "ctor literal: exactly one `let` binding a Ctor" false)
| _ -> check "ctor literal: exactly one free fn" false
let () =
(* The brief's stated asymmetry: `insert` is a statement-only trigger
(parser.ml's is_insert_trigger, checked only in parse_stmt) — a
bare `insert` reached from parse_primary is just an ordinary
identifier reference, exactly like self/me/on/service/policy's own
"recognized positionally, not a reserved word" rule (this task's
own keyword-discipline note). `select` (is_select_trigger) is
checked unconditionally *inside* parse_primary, so the same
position always builds a DbStub instead. Neither is an error on
its own — the difference shows up in which Ast.expr_kind comes
back. *)
let prog, collector =
parse_str ~file:"insert-vs-select.wo" "fn f() {\n let a = insert\n let b = select\n}\n"
in
check_eq "insert vs. select as bare expressions: no diagnostics" ~expected:0
~actual:(List.length (Diag.Collector.diagnostics collector))
string_of_int;
match prog.Ast.decls with
| [ Ast.Fn m ] -> (
match m.body with
| [
{ Ast.s_kind = Ast.Let { name = "a"; value = a_val; _ }; _ };
{ Ast.s_kind = Ast.Let { name = "b"; value = b_val; _ }; _ };
] ->
check "bare `insert` in expression position is a plain Ident"
(match a_val.Ast.kind with Ast.Ident "insert" -> true | _ -> false);
check "bare `select` in expression position always becomes a DbStub"
(match b_val.Ast.kind with Ast.DbStub _ -> true | _ -> false)
| _ -> check "insert vs. select: exactly two `let` statements" false)
| _ -> check "insert vs. select: exactly one free fn" false
let () =
(* The no_brace guard (parser.ml's state.no_brace / looks_like_ctor):
a bare identifier condition immediately followed by `{` is the
if-statement's own block, never a constructor literal — pinned
directly against the AST shape (Ast.Ident, not Ast.Ctor),
complementing golden/ast/ctor-literal.wo's dump-level coverage. *)
let prog, collector = parse_str ~file:"no-brace.wo" "fn f(active: Bool) {\n if active {\n return\n }\n}\n" in
check_eq "no_brace guard: reports nothing" ~expected:0
~actual:(List.length (Diag.Collector.diagnostics collector))
string_of_int;
match prog.Ast.decls with
| [ Ast.Fn m ] -> (
match m.body with
| [ { Ast.s_kind = Ast.If { cond; _ }; _ } ] ->
check "no_brace guard: if-condition is the bare ident, not a Ctor"
(match cond.Ast.kind with Ast.Ident "active" -> true | _ -> false)
| _ -> check "no_brace guard: exactly one `if` statement" false)
| _ -> check "no_brace guard: exactly one free fn" false
(* ---- fix round 1 regressions (post-review CRITICAL 1/2/3) ---------------
golden/ast/{condition-recovery,db-stub-nested}.wo and the extra
if-conditions added to golden/ast/ctor-literal.wo already pin the
dump-text shape; these assertions pin the parts a dump alone can't
show — diagnostic counts, and (for CRITICAL 1) the concrete AST node
kind that proves state.no_brace was actually restored rather than
merely "looking right" in rendered text. *)
let () =
(* CRITICAL 1: state.no_brace's save/restore was not exception-safe —
a failed if/while/for condition left it stuck at `true`, so every
constructor literal for the rest of the file silently stopped
parsing as one (it fell back to a bare Ident, desyncing the parse
of whatever followed). golden/ast/condition-recovery.wo's `if 1 +
{` fails inside its own condition; the fix (parser.ml's
with_no_brace, using Fun.protect) must restore no_brace before the
Parse_error reaches parse_block's recovery, so the very next
statement's constructor literal still parses as one. *)
let path = "golden/ast/condition-recovery.wo" in
let src = read_file path in
let prog, collector = parse_str ~file:path src in
let diags = Diag.Collector.diagnostics collector in
check_eq "condition-recovery: exactly one diagnostic (the broken condition, not a cascade)"
~expected:1 ~actual:(List.length diags) string_of_int;
(match diags with
| [ d ] -> check "condition-recovery: WO-E101" (d.code = "WO-E101")
| _ -> check "condition-recovery: diagnostic shape" false);
match prog.Ast.decls with
| [ Ast.Fn m ] -> (
match m.body with
| [ { Ast.s_kind = Ast.Let { name = "w"; value; _ }; _ } ] ->
check "condition-recovery: no_brace was restored — `Widget {...}` after the \
broken condition is still a real Ctor, not a bare Ident"
(match value.Ast.kind with Ast.Ctor ("Widget", [ ("a", _) ]) -> true | _ -> false)
| _ -> check "condition-recovery: exactly one surviving `let w = ...`" false)
| _ -> check "condition-recovery: exactly one surviving fn" false
let () =
(* CRITICAL 2: collect_dbstub_tokens only had a depth-0 stop guard on
RBrace, so a `select`/`insert` nested inside an enclosing call or
index expression had no way to stop at that call/index's own `)`/
`]` — it swallowed everything to Eof. golden/ast/db-stub-nested.wo
nests `select` inside both a call argument and an index
expression, followed by an unrelated `let done_marker = 1`; if the
scan ran away, done_marker would never be parsed (or the file
would end on a misleading "expected ')'/'], got EOF" diagnostic
instead of the three clean statements below). *)
let path = "golden/ast/db-stub-nested.wo" in
let src = read_file path in
let prog, collector = parse_str ~file:path src in
check_eq "db-stub-nested: reports nothing (both selects terminate at their own delimiter)"
~expected:0
~actual:(List.length (Diag.Collector.diagnostics collector))
string_of_int;
match prog.Ast.decls with
| [ Ast.Fn m ] -> (
match m.body with
| [
{ Ast.s_kind = Ast.Let { name = "wrapped"; value = wrapped_val; _ }; _ };
{ Ast.s_kind = Ast.Let { name = "arr"; value = arr_val; _ }; _ };
{ Ast.s_kind = Ast.Let { name = "done_marker"; value = done_val; _ }; _ };
] ->
check "db-stub-nested: `select` inside a call argument is a DbStub, and the \
call's own `)` still closed the call"
(match wrapped_val.Ast.kind with
| Ast.Call ({ Ast.kind = Ast.Ident "wrap"; _ }, [ { Ast.kind = Ast.DbStub _; _ } ]) ->
true
| _ -> false);
check "db-stub-nested: `select` inside an index expression is a DbStub, and the \
index's own `]` still closed it"
(match arr_val.Ast.kind with
| Ast.Index ({ Ast.kind = Ast.Ident "data"; _ }, { Ast.kind = Ast.DbStub _; _ }) -> true
| _ -> false);
check "db-stub-nested: parsing continued past both closing delimiters — \
`done_marker` is a normal IntLit, not swallowed or corrupted"
(match done_val.Ast.kind with Ast.IntLit 1 -> true | _ -> false)
| _ -> check "db-stub-nested: exactly three surviving `let` statements" false)
| _ -> check "db-stub-nested: exactly one surviving fn" false
let () =
(* CRITICAL 3: no_brace was only ever reset to `false` in
parse_primary's own LParen branch — never in parse_call_args or
parse_postfix's LBracket branch — so a constructor literal used as
a call argument or index expression *inside* an if/while/for
condition was never recognized as one (it hit looks_like_ctor's
`not st.no_brace` guard, which was still `true`), corrupting the
rest of the condition's parse. golden/ast/ctor-literal.wo already
pins the dump-text shape for both; these assertions pin the
concrete Ctor nodes directly. *)
let prog, collector =
parse_str ~file:"ctor-in-call-and-index.wo"
"fn f(mut active: Bool) {\n\
\ if make(Widget { x: 1 }) {\n\
\ return\n\
\ }\n\
\ if items[Widget { x: 1 }] {\n\
\ return\n\
\ }\n\
}\n"
in
check_eq "ctor in call/index inside a condition: reports nothing" ~expected:0
~actual:(List.length (Diag.Collector.diagnostics collector))
string_of_int;
match prog.Ast.decls with
| [ Ast.Fn m ] -> (
match m.body with
| [ { Ast.s_kind = Ast.If { cond = call_cond; _ }; _ }; { Ast.s_kind = Ast.If { cond = idx_cond; _ }; _ } ]
->
check "ctor as a call argument inside a condition is a real Ctor node"
(match call_cond.Ast.kind with
| Ast.Call (_, [ { Ast.kind = Ast.Ctor ("Widget", _); _ } ]) -> true
| _ -> false);
check "ctor as an index expression inside a condition is a real Ctor node"
(match idx_cond.Ast.kind with
| Ast.Index (_, { Ast.kind = Ast.Ctor ("Widget", _); _ }) -> true
| _ -> false)
| _ -> check "ctor in call/index inside a condition: exactly two `if` statements" false)
| _ -> check "ctor in call/index inside a condition: exactly one free fn" false
(* ---- CLI smoke -------------------------------------------------------
Everything above calls Lexer.tokenize/Dump.dump_tokens in-process --
real coverage of the lexer, zero coverage of bin/main.ml's own
plumbing (argv parsing, which stream a diagnostic lands on, the
0/1/2 exit contract). This section runs the actual built woc binary
as a subprocess. Sys.command (stdlib) shells out via /bin/sh; it
only returns an exit code, so stdout/stderr are captured via
redirection to temp files rather than a pipe API -- deliberately
avoids pulling in the unix library for this one need. *)
let woc_binary () =
match Sys.getenv_opt "WOC_BIN" with
| Some path -> path
| None -> (
(* Under `dune runtest`, cwd is ".../_build/default/test" and the
built binary sits at the sibling ".../_build/default/bin/woc" --
test/dune depends on ../bin/woc precisely so that's guaranteed
built before this test runs, making "../bin/woc" (relative to
cwd) the right path. Manual invocation falls back through a
couple of other plausible locations. *)
let candidates = [ "../bin/woc"; "_build/default/bin/woc"; "bin/woc" ] in
match List.find_opt Sys.file_exists candidates with
| Some path -> path
| None ->
failwith "runner: cannot locate the built woc binary (set WOC_BIN)")
(* Runs the woc binary with [args]; returns (exit_code, stdout, stderr). *)
let run_cli (args : string list) : int * string * string =
let bin = woc_binary () in
let out_file = Filename.temp_file "woc_stdout" ".txt" in
let err_file = Filename.temp_file "woc_stderr" ".txt" in
let cmd =
String.concat " " (List.map Filename.quote (bin :: args))
^ " >" ^ Filename.quote out_file ^ " 2>" ^ Filename.quote err_file
in
let exit_code = Sys.command cmd in
let stdout = read_file out_file in
let stderr = read_file err_file in
(try Sys.remove out_file with Sys_error _ -> ());
(try Sys.remove err_file with Sys_error _ -> ());
(exit_code, stdout, stderr)
let () =
let path = "golden/tokens/gotcha.wo" in
let exit_code, stdout, stderr = run_cli [ "--dump-tokens"; path ] in
check "cli smoke: --dump-tokens on a clean file exits 0" (exit_code = 0);
check "cli smoke: clean-file run writes nothing to stderr" (stderr = "");
let collector = Diag.Collector.create () in
let toks = Lexer.tokenize collector ~file:path (read_file path) in
check "cli smoke: stdout matches the in-process token dump exactly"
(stdout = Dump.dump_tokens toks)
let () =
let path = "golden/tokens/unknown-char.wo" in
let exit_code, stdout, stderr = run_cli [ "--dump-tokens"; path ] in
check "cli smoke: a diagnostic-producing file exits 1, not 0" (exit_code = 1);
check "cli smoke: the WO-E001 diagnostic goes to stderr" (stderr <> "");
let collector = Diag.Collector.create () in
let toks = Lexer.tokenize collector ~file:path (read_file path) in
check "cli smoke: stdout still carries the full token dump on exit 1"
(stdout = Dump.dump_tokens toks)
let () =
let exit_code, _stdout, stderr = run_cli [ "does-not-exist.wo" ] in
check "cli smoke: missing file (bare-path form) exits 2" (exit_code = 2);
check "cli smoke: missing-file message goes to stderr" (stderr <> "")
let () =
let path = "golden/ast/pricing-demo.wo" in
let exit_code, stdout, stderr = run_cli [ "--dump-ast"; path ] in
check "cli smoke: --dump-ast on a clean file exits 0" (exit_code = 0);
check "cli smoke: clean-file --dump-ast writes nothing to stderr" (stderr = "");
let prog, _ = parse_str ~file:path (read_file path) in
check "cli smoke: --dump-ast stdout matches the in-process AST dump exactly"
(stdout = Dump.dump_ast prog)
let () =
let path = "golden/ast/two-error-recovery.wo" in
let exit_code, stdout, stderr = run_cli [ "--dump-ast"; path ] in
check "cli smoke: a decl-recovery file exits 1, not 0" (exit_code = 1);
check "cli smoke: recovered parse diagnostics go to stderr" (stderr <> "");
let prog, _ = parse_str ~file:path (read_file path) in
check "cli smoke: --dump-ast stdout still carries the surviving decls on exit 1"
(stdout = Dump.dump_ast prog)
(* ---- CLI smoke: multi-file driver (Task 8) ----------------------------
Everything above runs the CLI against a single file. These pin the
two new driver behaviors end to end, through the actual woc binary,
against fixtures under test/fixtures/driver/ rather than
test/golden/ -- see test/dune's comment on why: run_golden_dir's
one-.wo-file-per-fixture contract doesn't fit a fixture that *is*
several files compiling as one program. *)
let () =
(* Cross-file symbol resolution: a_uses.wo (discovered first,
alphabetically) types a field as `Box`, a class declared only in
b_declares.wo (discovered second). Compiled alone, a_uses.wo must
fail WO-E225 unknown-type -- the control proving this is a real
check, not one that would pass vacuously. Compiled as the
directory (both files, one program), it must be clean: every
file's declare-pass runs before any file's body-check, so
discovery order can't matter for whether the symbol resolves. *)
let alone = "fixtures/driver/crossfile/a_uses.wo" in
let exit_code, _, stderr = run_cli [ alone ] in
check "crossfile control: a_uses.wo alone fails (Box isn't declared here)"
(exit_code = 1);
check "crossfile control: it's WO-E225 unknown-type, not something else"
(find_substring ~needle:"WO-E225" stderr <> None
&& find_substring ~needle:"unknown type `Box`" stderr <> None);
let dir = "fixtures/driver/crossfile" in
let exit_code, _, stderr = run_cli [ dir ] in
check "crossfile: the directory (both files, merged symbols) compiles clean"
(exit_code = 0 && stderr = "")
let () =
(* Same directory, --dump-ast: proves both files were actually
discovered and parsed (not e.g. an empty file list "compiling
clean" vacuously), each under its own file_header. *)
let dir = "fixtures/driver/crossfile" in
let _, stdout, _ = run_cli [ "--dump-ast"; dir ] in
check "crossfile --dump-ast: both files' headers appear"
(find_substring ~needle:"=== fixtures/driver/crossfile/a_uses.wo ===" stdout <> None
&& find_substring ~needle:"=== fixtures/driver/crossfile/b_declares.wo ===" stdout <> None);
check "crossfile --dump-ast: both classes actually got dumped"
(find_substring ~needle:"CLASS Holder" stdout <> None
&& find_substring ~needle:"CLASS Box" stdout <> None)
let () =
(* Diagnostic ordering, discriminating (review follow-up, Important
3): the old version of this fixture had both files erroring at
the *same* pipeline stage (lexing), with the driver already
visiting files in sorted order for that stage -- insertion order
and (file, line, col) order coincided, so a broken sort could have
passed unnoticed. Here aaa_ownership.wo (sorts FIRST) has only a
*late*-stage error (WO-E301, found during the owner-analysis pass,
which runs over every file only after parse_all and typecheck_all
have both finished for every file) and zzz_lex.wo (sorts SECOND)
has only an *early*-stage error (WO-E001, found during parse_all,
the very first per-file pass). That means zzz_lex.wo's diagnostic
is *inserted into the collector first*, chronologically -- raw
insertion order is [zzz, aaa], the exact reverse of the required
[aaa, zzz] output order. Only a real (file, line, col) sort, not
insertion order, can produce the required order here. *)
let dir = "fixtures/driver/order" in
let exit_code, _, stderr = run_cli [ dir ] in
check "diagnostic order: exits 1 (one ownership error, one lex error)"
(exit_code = 1);
let aaa_idx = find_substring ~needle:"aaa_ownership.wo:11:19: error WO-E301" stderr in
let zzz_idx = find_substring ~needle:"zzz_lex.wo:1:1: error WO-E001" stderr in
check "diagnostic order: both files' diagnostics are present"
(aaa_idx <> None && zzz_idx <> None);
check
"diagnostic order: aaa_ownership.wo's *later-inserted* ownership error still prints \
first (file-sorts-first wins over insertion order)"
(match (aaa_idx, zzz_idx) with Some a, Some z -> a < z | _ -> false)
let () =
(* Cross-file symbol collision (review follow-up, Important 2):
a_first.wo and b_second.wo both declare `class Dup`, with
different fields, so a silent first-wins merge would let
b_second.wo's own field (`s: Text`) typecheck against
a_first.wo's shape without anyone being told the two `Dup`s were
never the same class. b_second.wo sorts *after* a_first.wo, so it
is the one reported (declaring second is what makes it the
collision), with a_first.wo as the related "first declared here"
site -- deterministic, not order-of-Hashtbl-iteration dependent,
since the outer walk is over the same sorted-by-discovery file
list every other multi-file check relies on. *)
let dir = "fixtures/driver/collision" in
let exit_code, _, stderr = run_cli [ dir ] in
check "collision: exits 1" (exit_code = 1);
check "collision: WO-E214 reported at the second (later-declaring) file"
(find_substring ~needle:"b_second.wo:1:1: error WO-E214: class `Dup` already declared in"
stderr
<> None);
check "collision: names the first-declaring file by path"
(find_substring ~needle:"already declared in `fixtures/driver/collision/a_first.wo`" stderr
<> None);
check "collision: related site points back at a_first.wo's own declaration"
(find_substring ~needle:"fixtures/driver/collision/a_first.wo:1:1: `Dup` first declared here"
stderr
<> None)
(* ---- direct typechecker assertions (Task 6b) --------------------------
No golden "types" stage exists yet: that would need `--dump-types`
wired into bin/main.ml and a diagnostics-aware dump_symbols in
dump.ml, neither of which the nullable-types-implementation plan's
New Requirements section asks for (it only names WO-W201/WO-E225 and
the scalar-list correction) -- building that CLI/dump plumbing now
would be scope creep beyond this task. These assertions instead pin
the Types.typecheck contract directly against the Collector, the
same way the lexer/parser sections above do. *)
let typecheck_str ~file src =
let collector = Diag.Collector.create () in
let toks = Lexer.tokenize collector ~file src in
let prog = Parser.parse collector ~file toks in
let syms, () = Types.typecheck ~file prog collector in
(syms, collector)
let () =
(* Money/SKU/Float carry no special status -- all three are ordinary
unknown types now (WO-E225 fires on them as fields). Float went for
the same phantom-scalar reason Money/SKU did: no float-literal syntax
in the lexer and no float kind in wob, so no Float value could ever
be written or represented. Timestamp stays a real builtin. *)
check "Money is no longer a builtin scalar" (not (Types.is_builtin_scalar "Money"));
check "SKU is no longer a builtin scalar" (not (Types.is_builtin_scalar "SKU"));
check "Float is not a builtin scalar" (not (Types.is_builtin_scalar "Float"));
check "Timestamp is a builtin scalar" (Types.is_builtin_scalar "Timestamp")
let () =
(* class Node { next: Node } -- direct self-reference, no @gc, no
@table, no @unique field: WO-W201 must fire, at the class's own
(real) file/line/col, and a warning-only run must still exit 0
(Diag.Collector's severity-keyed exit-code contract). *)
let path = "node.wo" in
let _, collector = typecheck_str ~file:path "class Node {\n next: Node\n}\n" in
let diags = Diag.Collector.diagnostics collector in
check_eq "gc-suggestion: exactly one diagnostic (WO-W201)" ~expected:1
~actual:(List.length diags) string_of_int;
(match diags with
| [ d ] ->
check "gc-suggestion: code is WO-W201" (d.Diag.code = "WO-W201");
check "gc-suggestion: severity is Warning" (d.Diag.severity = Diag.Warning);
check "gc-suggestion: real file/line/col (node.wo:1:1, the `class` token)"
(d.Diag.site.Diag.file = path && d.Diag.site.Diag.line = 1 && d.Diag.site.Diag.col = 1)
| _ -> check "gc-suggestion: exactly one diagnostic" false);
check_eq "gc-suggestion: a warning-only run exits 0, not 1" ~expected:0
~actual:(Diag.Collector.exit_code collector) string_of_int
let () =
(* @gc class Cache { next: Cache } -- same recursive shape as above,
but already @gc: WO-W201 must NOT fire. *)
let _, collector = typecheck_str ~file:"cache.wo" "@gc\nclass Cache {\n next: Cache\n}\n" in
check_eq "gc-suggestion: @gc class reports nothing" ~expected:0
~actual:(List.length (Diag.Collector.diagnostics collector)) string_of_int
let () =
(* @table(...) class Node2 { next: Node2 } -- recursive, but DB-backed
via @table: WO-W201 must NOT fire (plan: "@table -> must be owned"). *)
let _, collector =
typecheck_str ~file:"node2.wo"
"@table(name: \"nodes\")\nclass Node2 {\n next: Node2\n}\n"
in
check_eq "gc-suggestion: @table class reports nothing" ~expected:0
~actual:(List.length (Diag.Collector.diagnostics collector)) string_of_int
let () =
(* class Node3 { id: Id @unique; next: Node3 } -- recursive, but has a
@unique field (persistent identity): WO-W201 must NOT fire (plan's
"When NOT to emit" list, second bullet). *)
let _, collector =
typecheck_str ~file:"node3.wo"
"class Node3 {\n id: Id @unique\n next: Node3\n}\n"
in
check_eq "gc-suggestion: class with a @unique field reports nothing" ~expected:0
~actual:(List.length (Diag.Collector.diagnostics collector)) string_of_int
let () =
(* class Point { x: Int; y: Int } -- a plain data struct, no
recursive/shared fields: WO-W201 must NOT fire either. *)
let _, collector =
typecheck_str ~file:"point.wo" "class Point {\n x: Int\n y: Int\n}\n"
in
check_eq "gc-suggestion: simple data struct reports nothing" ~expected:0
~actual:(List.length (Diag.Collector.diagnostics collector)) string_of_int
let () =
(* class Calc { items: multi Item } (golden/ast/body-statements.wo's own
shape) -- a `multi` field of an UNRELATED type, not `multi Self`.
has_recursive_structure must key off self-reference, not "any multi
field": a bare `Ast.Multi _ -> true` would spuriously fire WO-W201
on every plain data class that merely holds a collection. *)
let _, collector =
typecheck_str ~file:"calc.wo" "class Calc {\n items: multi Item\n}\n"
in
check_eq "gc-suggestion: unrelated `multi Item` field reports nothing" ~expected:0
~actual:(List.length (Diag.Collector.diagnostics collector)) string_of_int
let () =
(* class Bucket { entries: map<Text, Item> } -- same over-trigger risk
for `map`, neither side self-referential. *)
let _, collector =
typecheck_str ~file:"bucket.wo" "class Bucket {\n entries: map<Text, Item>\n}\n"
in
check_eq "gc-suggestion: unrelated `map<Text, Item>` field reports nothing" ~expected:0
~actual:(List.length (Diag.Collector.diagnostics collector)) string_of_int
let () =
(* class Tree { children: multi Tree } -- `multi Self` must still fire
(the plan's own literal example of the heuristic). *)
let path = "tree.wo" in
let _, collector =
typecheck_str ~file:path "class Tree {\n children: multi Tree\n}\n"
in
let diags = Diag.Collector.diagnostics collector in
check_eq "gc-suggestion: `multi Self` still fires WO-W201" ~expected:1
~actual:(List.length diags) string_of_int;
match diags with
| [ d ] -> check "gc-suggestion: `multi Self` diagnostic is WO-W201" (d.Diag.code = "WO-W201")
| _ -> check "gc-suggestion: `multi Self` exactly one diagnostic" false
let () =
(* class BadExample { code: INVALID_TYPE } -- INVALID_TYPE is not a
builtin, class, or interface: WO-E225 must fire, at
the field's own real file/line/col, and this (an actual Error) must
exit 1. *)
let path = "bad-example.wo" in
let _, collector =
typecheck_str ~file:path "class BadExample {\n code: INVALID_TYPE\n}\n"
in
let diags = Diag.Collector.diagnostics collector in
check_eq "unknown-type: exactly one diagnostic (WO-E225)" ~expected:1
~actual:(List.length diags) string_of_int;
(match diags with
| [ d ] ->
check "unknown-type: code is WO-E225" (d.Diag.code = "WO-E225");
check "unknown-type: severity is Error" (d.Diag.severity = Diag.Error);
check "unknown-type: real file/line/col (bad-example.wo:2:3, the `code` field)"
(d.Diag.site.Diag.file = path && d.Diag.site.Diag.line = 2 && d.Diag.site.Diag.col = 3)
| _ -> check "unknown-type: exactly one diagnostic" false);
check_eq "unknown-type: an error run exits 1" ~expected:1
~actual:(Diag.Collector.exit_code collector) string_of_int
let () =
(* class Product { id: Id; sku: SKU; price: Money } -- SKU/Money are
ordinary unknown types (not a builtin, class, or interface), so both
fields must trip WO-E225. *)
let _, collector =
typecheck_str ~file:"product.wo"
"class Product {\n id: Id\n sku: SKU\n price: Money\n}\n"
in
let diags = Diag.Collector.diagnostics collector in
check_eq "unknown-type fields (SKU, Money): exactly two diagnostics" ~expected:2
~actual:(List.length diags) string_of_int;
check "unknown-type fields (SKU, Money): both are WO-E225"
(List.for_all (fun d -> d.Diag.code = "WO-E225") diags)
let () =
(* class Ring { next: ?Ring } -- INVALID_TYPE's sibling case through the
?T nullable wrapper this plan is named after: an unknown type inside
`?T` must still be caught, and a *known* one (here, Ring itself)
must not be a false positive. Also exercises forward references: B
is declared after A and must resolve since Pass 2 runs after all of
Pass 1 has completed. *)
let _, collector =
typecheck_str ~file:"ring.wo"
"class A {\n b: B\n}\nclass B {\n x: Int\n}\n"
in
check_eq "forward reference (A.b: B, B declared later): reports nothing" ~expected:0
~actual:(List.length (Diag.Collector.diagnostics collector)) string_of_int;
let _, collector2 =
typecheck_str ~file:"nullable-unknown.wo" "class Ring {\n next: ?GHOST\n}\n"
in
let diags2 = Diag.Collector.diagnostics collector2 in
check_eq "unknown type inside ?T: exactly one WO-E225" ~expected:1
~actual:(List.length diags2) string_of_int;
match diags2 with
| [ d ] -> check "unknown type inside ?T: code is WO-E225" (d.Diag.code = "WO-E225")
| _ -> check "unknown type inside ?T: exactly one diagnostic" false
(* ---- direct ownership-pass assertions (Task 7) ------------------------
golden/owner-err/ already pins the *rendered* text of every must-fail
fixture (code, message, both sites, source excerpts). These assertions
pin the parts a rendered blob cannot state as a contract: that exactly
the intended WO-E3xx code fires, that the second site is really a
`related` entry on the same diagnostic rather than a separate one, that
the exemptions (@gc, scalars) produce nothing at all, and that the four
emitter tables carry real AST node ids (positions are what goldens
pin, ids are what plan 3 keys on). *)
let owner_str ~file src =
let collector = Diag.Collector.create () in
let toks = Lexer.tokenize collector ~file src in
let prog = Parser.parse collector ~file toks in
let syms, () = Types.typecheck ~file prog collector in
let tables = Owner.analyze ~file prog syms collector in
(tables, collector)
let is_ownership_code (code : string) =
String.length code >= 5 && String.sub code 0 5 = Diag.ownership_prefix
let ownership_diags collector =
Diag.Collector.diagnostics collector
|> List.filter (fun (d : Diag.t) -> is_ownership_code d.Diag.code)
let all_diags collector = Diag.Collector.diagnostics collector
(* Analyzes a fixture from golden/owner-err/ and returns its ownership
diagnostics; also asserts no *other* stage complained, so a fixture can
never pass its ownership assertions while quietly tripping a WO-E2xx. *)
let owner_err_fixture name =
let path = "golden/owner-err/" ^ name ^ ".wo" in
let _, collector = owner_str ~file:path (read_file path) in
let all = Diag.Collector.diagnostics collector in
let own = List.filter (fun (d : Diag.t) -> is_ownership_code d.Diag.code) all in
check_eq (name ^ ": every diagnostic is an ownership diagnostic")
~expected:(List.length all) ~actual:(List.length own) string_of_int;
own
(* A two-site ownership error: the code, the primary site's line/col, and
the single related site's line/col. *)
let check_site tag ~code ~line ~col ~rel_line ~rel_col (d : Diag.t) =
check (tag ^ ": code is " ^ code) (d.Diag.code = code);
check (tag ^ ": severity is Error") (d.Diag.severity = Diag.Error);
check_eq (tag ^ ": primary line") ~expected:line ~actual:d.Diag.site.Diag.line string_of_int;
check_eq (tag ^ ": primary col") ~expected:col ~actual:d.Diag.site.Diag.col string_of_int;
match d.Diag.related with
| [ r ] ->
check_eq (tag ^ ": related line") ~expected:rel_line ~actual:r.Diag.site.Diag.line
string_of_int;
check_eq (tag ^ ": related col") ~expected:rel_col ~actual:r.Diag.site.Diag.col string_of_int;
check (tag ^ ": related site carries a label") (r.Diag.label <> "")
| rs ->
check_eq (tag ^ ": exactly one related site") ~expected:1 ~actual:(List.length rs)
string_of_int
let single tag (ds : Diag.t list) (f : Diag.t -> unit) =
match ds with
| [ d ] -> f d
| _ ->
check_eq (tag ^ ": exactly one ownership error") ~expected:1 ~actual:(List.length ds)
string_of_int
(* Same shape for table entries: assert there is exactly one, then assert
things about it. *)
let single_site tag (xs : 'a list) (f : 'a -> unit) =
match xs with
| [ x ] -> f x
| _ -> check_eq (tag ^ ": exactly one") ~expected:1 ~actual:(List.length xs) string_of_int
let () =
(* `consume(b)` twice: the second one uses a moved value. Sites are the
two `b` argument tokens, 11:24 and 10:23. *)
single "use-after-move" (owner_err_fixture "use-after-move") (fun d ->
check_site "use-after-move" ~code:"WO-E301" ~line:11 ~col:24 ~rel_line:10 ~rel_col:23 d)
let () =
(* `let alias = b.inner` borrows into b; `consume(b)` then moves b out
from under that borrow. Primary at the moved argument (15:18),
related at the borrowing `let` (14:3). *)
single "move-while-borrowed" (owner_err_fixture "move-while-borrowed") (fun d ->
check_site "move-while-borrowed" ~code:"WO-E302" ~line:15 ~col:18 ~rel_line:14 ~rel_col:3 d)
let () =
(* Two provable aliases: `swap(it, it)` (same root) and
`swap(bag.items[i], bag.items[i])` (same root *and* the same runtime
index expression, so the analysis proves the alias rather than
deferring to a runtime check — contrast golden/owner/residual.wo). *)
match owner_err_fixture "double-mut" with
| [ a; b ] ->
check_site "double-mut (same local)" ~code:"WO-E303" ~line:14 ~col:19 ~rel_line:14 ~rel_col:15 a;
check_site "double-mut (same runtime index)" ~code:"WO-E303" ~line:18 ~col:29 ~rel_line:18
~rel_col:15 b
| ds ->
check_eq "double-mut: exactly two ownership errors" ~expected:2 ~actual:(List.length ds)
string_of_int
let () =
(* The same rule across statements rather than inside one call: a
let-bound alias keeps its borrow alive, so the borrowed place may be
neither exclusively re-borrowed (`touch(h.box)`) nor assigned to
(`h.box = fresh`) while the alias is in scope. *)
match owner_err_fixture "borrowed-place-mutated" with
| [ arg; assign ] ->
check_site "borrowed-place-mutated (`mut` argument)" ~code:"WO-E303" ~line:15 ~col:16
~rel_line:14 ~rel_col:3 arg;
check_site "borrowed-place-mutated (assignment)" ~code:"WO-E303" ~line:20 ~col:3 ~rel_line:19
~rel_col:3 assign
| ds ->
check_eq "borrowed-place-mutated: exactly two ownership errors" ~expected:2
~actual:(List.length ds) string_of_int
let () =
(* The three ways a borrow can escape (spec rule 3): stored into a
field, returned, moved out to a `take` parameter. *)
match owner_err_fixture "borrow-escape" with
| [ store; ret; take ] ->
check_site "borrow-escape (stored in a field)" ~code:"WO-E304" ~line:9 ~col:16 ~rel_line:8
~rel_col:12 store;
check_site "borrow-escape (returned)" ~code:"WO-E304" ~line:18 ~col:10 ~rel_line:17 ~rel_col:9
ret;
check_site "borrow-escape (moved to a `take` parameter)" ~code:"WO-E304" ~line:22 ~col:15
~rel_line:21 ~rel_col:10 take;
(* spec section 6's own wording for this diagnostic *)
check "borrow-escape: names the place and the function it escapes"
(Option.is_some (find_substring ~needle:"borrow of `h.box` escapes `leak`" ret.Diag.message))
| ds ->
check_eq "borrow-escape: exactly three ownership errors" ~expected:3 ~actual:(List.length ds)
string_of_int
let () =
(* The loop fixpoint's reason for existing: the move is legal on the
first iteration and a use-after-move on every later one, so both
sites land on the same token — the message says so. *)
single "loop-move" (owner_err_fixture "loop-move") (fun d ->
check_site "loop-move" ~code:"WO-E301" ~line:12 ~col:29 ~rel_line:12 ~rel_col:29 d;
check "loop-move: message names the previous iteration"
(Option.is_some (find_substring ~needle:"previous loop iteration" d.Diag.message)))
let () =
(* @gc is exempt from all of it (spec rule 5): the exact shape that is
WO-E301 above is silent here, and produces no move-table entries
either — a @gc transfer is an rc site, not a move. *)
let src =
"@gc\n\
class Cache {\n\
\ n: Int\n\
}\n\
\n\
fn keep(take c: Cache) -> Int {\n\
\ return 0\n\
}\n\
\n\
fn twice(take c: Cache) -> Int {\n\
\ let a = keep(c)\n\
\ let b = keep(c)\n\
\ return a + b\n\
}\n"
in
let tables, coll = owner_str ~file:"gc-exempt.wo" src in
check_eq "@gc exemption: no ownership diagnostics" ~expected:0
~actual:(List.length (ownership_diags coll)) string_of_int;
check_eq "@gc exemption: no move-table entries" ~expected:0
~actual:(List.length tables.Owner.moves) string_of_int
let () =
(* Scalars are copied, never moved: same shape, nothing reported and
nothing in any table. *)
let src =
"fn add(take n: Int) -> Int {\n\
\ return n\n\
}\n\
\n\
fn twice(take n: Int) -> Int {\n\
\ let a = add(n)\n\
\ let b = add(n)\n\
\ return a + b\n\
}\n"
in
let tables, coll = owner_str ~file:"scalar-exempt.wo" src in
check_eq "scalar exemption: no ownership diagnostics" ~expected:0
~actual:(List.length (ownership_diags coll)) string_of_int;
check_eq "scalar exemption: no move-table entries" ~expected:0
~actual:(List.length tables.Owner.moves) string_of_int;
check_eq "scalar exemption: no drop-table entries" ~expected:0
~actual:(List.length tables.Owner.drops) string_of_int
let () =
(* `?T` carries T's ownership exactly — nil is just a value, so the
use-after-move fires through the nullable wrapper too. *)
let src =
"class Box {\n\
\ n: Int\n\
}\n\
\n\
fn consume(take b: ?Box) -> Int {\n\
\ return 0\n\
}\n\
\n\
fn run(take b: ?Box) -> Int {\n\
\ let x = consume(b)\n\
\ let y = consume(b)\n\
\ return x + y\n\
}\n"
in
let tables, coll = owner_str ~file:"nullable.wo" src in
single "?T ownership" (ownership_diags coll) (fun d ->
check "?T ownership: `?Box` is moved and use-after-move fires"
(d.Diag.code = "WO-E301" && d.Diag.site.Diag.line = 11));
check_eq "?T ownership: the first `?Box` pass is a real transfer" ~expected:1
~actual:(List.length tables.Owner.moves) string_of_int
let () =
(* Every decision golden must be completely clean — no ownership error,
and no WO-E2xx/WO-W2xx either, so a table golden can never drift into
documenting the output of a broken program. *)
List.iter
(fun name ->
let path = "golden/owner/" ^ name ^ ".wo" in
let _, coll = owner_str ~file:path (read_file path) in
check_eq ("decision golden " ^ name ^ ": reports nothing") ~expected:0
~actual:(List.length (all_diags coll)) string_of_int)
[ "moves"; "drops"; "rc"; "residual"; "pricing-demo" ]
let () =
(* The tables are keyed by AST node id for plan 3 (goldens can only pin
positions — ids churn), so assert the ids are actually populated. *)
let path = "golden/owner/moves.wo" in
let tables, _ = owner_str ~file:path (read_file path) in
check_eq "moves table: four transfers (LET, CTOR field, `take` arg, RETURN)" ~expected:4
~actual:(List.length tables.Owner.moves) string_of_int;
check "moves table: every entry carries a real AST node id"
(List.for_all (fun (m : Owner.move_site) -> m.Owner.mv_node > 0) tables.Owner.moves);
check "drops table: every entry carries a real AST node id"
(List.for_all (fun (d : Owner.drop_site) -> d.Owner.dr_node > 0) tables.Owner.drops);
check "drops table: every listed local names its declaring node (names alone shadow)"
(List.for_all
(fun (d : Owner.drop_site) ->
List.for_all (fun (i : Owner.drop_item) -> i.Owner.di_node > 0) d.Owner.dr_items)
tables.Owner.drops);
let rc_path = "golden/owner/rc.wo" in
let rc_tables, _ = owner_str ~file:rc_path (read_file rc_path) in
check "rc table: every entry carries a real AST node id"
(List.for_all (fun (r : Owner.rc_site) -> r.Owner.rc_node > 0) rc_tables.Owner.rcs);
check "rc table: the balanced pair is elided, the escaping one kept"
(List.exists (fun (r : Owner.rc_site) -> r.Owner.rc_elided) rc_tables.Owner.rcs
&& List.exists (fun (r : Owner.rc_site) -> not r.Owner.rc_elided) rc_tables.Owner.rcs);
let res_path = "golden/owner/residual.wo" in
let res_tables, _ = owner_str ~file:res_path (read_file res_path) in
check_eq "residual table: only the runtime-index pairs are residual" ~expected:3
~actual:(List.length res_tables.Owner.residuals) string_of_int;
check "residual table: every entry names its region and both operand nodes"
(List.for_all
(fun (r : Owner.residual_site) ->
r.Owner.rs_node > 0 && r.Owner.rs_a_node > 0 && r.Owner.rs_b_node > 0
&& r.Owner.rs_a_node <> r.Owner.rs_b_node)
res_tables.Owner.residuals)
(* ---- review follow-ups (Task 7 review, 1 critical + 5 important) ------
Each block below pins one reviewed defect at the level the golden text
cannot state: an *absent* table entry, or a verdict (ELIDED vs KEPT)
that would still render as a plausible-looking line if it flipped. *)
let drop_sites_of tables kind_matches =
List.filter (fun (d : Owner.drop_site) -> kind_matches d.Owner.dr_kind) tables.Owner.drops
let names_of (d : Owner.drop_site) =
List.map (fun (i : Owner.drop_item) -> i.Owner.di_name) d.Owner.dr_items
let () =
(* CRITICAL: a double-`mut` reached through two `let`-bound aliases used to
compare the syntactic roots `r` and `s`, conclude Disjoint, and emit
neither a diagnostic nor a residual site — so nobody, compiler or VM,
enforced the rule. Canonicalized places make it identical to the direct
`swap(bag.items[i], bag.items[k])` form. *)
let path = "golden/owner/residual.wo" in
let tables, coll = owner_str ~file:path (read_file path) in
check_eq "aliased double-mut: no diagnostic (unprovable, so the VM decides)" ~expected:0
~actual:(List.length (ownership_diags coll)) string_of_int;
let via_alias =
List.filter (fun (r : Owner.residual_site) -> r.Owner.rs_pos.Ast.line = 32)
tables.Owner.residuals
in
single_site "aliased double-mut: exactly one residual site" via_alias (fun r ->
check "aliased double-mut: both sides exclusive"
(r.Owner.rs_a_kind = Owner.AExcl && r.Owner.rs_b_kind = Owner.AExcl);
check "aliased double-mut: rendered canonically, not as the alias names"
(r.Owner.rs_a = "bag.items[i]" && r.Owner.rs_b = "bag.items[k]"));
check "residual table: a move is never a residual side (a whole local always decides)"
(List.for_all
(fun (r : Owner.residual_site) ->
r.Owner.rs_a_kind <> Owner.AMove && r.Owner.rs_b_kind <> Owner.AMove)
tables.Owner.residuals);
check "residual table: at least one side of every pair is exclusive"
(List.for_all
(fun (r : Owner.residual_site) ->
r.Owner.rs_a_kind = Owner.AExcl || r.Owner.rs_b_kind = Owner.AExcl)
tables.Owner.residuals)
let () =
(* Using a borrow alongside the container it borrows from is what the
binding is for, so it must stay silent — the guard that keeps the
critical fix above from turning every `for` cursor into a conflict. *)
let src =
"class Item {\n\
\ n: Int\n\
}\n\
\n\
class Bag {\n\
\ items: multi Item\n\
\n\
\ fn eat(mut e: Item) -> Int {\n\
\ self.items = self.items\n\
\ return 0\n\
\ }\n\
}\n\
\n\
fn cursor_reuse(mut bag: Bag) -> Int {\n\
\ let total = 0\n\
\ for it in bag.items {\n\
\ total = total + bag.eat(it)\n\
\ }\n\
\ return total\n\
}\n"
in
let tables, coll = owner_str ~file:"cursor.wo" src in
let in_loop =
List.filter (fun (d : Diag.t) -> d.Diag.site.Diag.line = 17) (ownership_diags coll)
in
check_eq "cursor reuse: passing the cursor to a method on its own container is silent"
~expected:0 ~actual:(List.length in_loop) string_of_int;
check_eq "cursor reuse: and needs no runtime borrow either" ~expected:0
~actual:(List.length tables.Owner.residuals) string_of_int
let () =
let path = "golden/owner/drops.wo" in
let tables, _ = owner_str ~file:path (read_file path) in
(* IMPORTANT: conditionally moved value. The join records Moved, so the
path that did *not* move it must drop it at that branch's end or the
value leaks. `conditional_move` has no `else`, so the drop is anchored
at the `if` itself (line 50). *)
let joins = drop_sites_of tables (function Owner.DBranchJoin _ -> true | _ -> false) in
single_site "join normalization: exactly one JOIN-DROP in this fixture" joins (fun d ->
check "join normalization: on the implicit else branch"
(d.Owner.dr_kind = Owner.DBranchJoin "ELSE");
check_eq "join normalization: anchored at the `if`" ~expected:50
~actual:d.Owner.dr_pos.Ast.line string_of_int;
check "join normalization: drops the value the then-branch moved" (names_of d = [ "a" ]));
check "join normalization: and the value is not dropped again on the moving path"
(not
(List.exists
(fun (d : Owner.drop_site) ->
d.Owner.dr_kind = Owner.DReturn && d.Owner.dr_pos.Ast.line = 53)
tables.Owner.drops));
(* IMPORTANT: `a = a` used to record OVERWRITE for the value it replaces
*and* keep `a` live — two drops of one value. *)
let overwrites = drop_sites_of tables (fun k -> k = Owner.DOverwrite) in
check "self-assignment: records no OVERWRITE (target and value are one storage)"
(not (List.exists (fun (d : Owner.drop_site) -> d.Owner.dr_pos.Ast.line = 57) overwrites));
check "self-assignment: the value is still dropped exactly once, at the return"
(List.exists
(fun (d : Owner.drop_site) ->
d.Owner.dr_kind = Owner.DReturn && d.Owner.dr_pos.Ast.line = 58 && names_of d = [ "a" ])
tables.Owner.drops);
(* IMPORTANT: re-initialising a moved-out local makes it live again, so it
must reappear in a later drop set (self-found bug 1, now pinned). *)
check "re-init after move: the reassigned local is dropped at the return"
(List.exists
(fun (d : Owner.drop_site) ->
d.Owner.dr_kind = Owner.DReturn && d.Owner.dr_pos.Ast.line = 64 && names_of d = [ "a" ])
tables.Owner.drops);
check "re-init after move: no OVERWRITE, since the moved-out local held nothing"
(not (List.exists (fun (d : Owner.drop_site) -> d.Owner.dr_pos.Ast.line = 63) overwrites))
let () =
(* IMPORTANT: a `mut` argument means the callee may replace what the place
holds. For a @gc place that invalidates rc elision — the elided
increment would leave the alias as the last reference to a freed
object. The clobber therefore has to happen before the ownership class
is consulted, since @gc arguments create no access entry at all. *)
let path = "golden/owner/rc.wo" in
let tables, _ = owner_str ~file:path (read_file path) in
let at line =
List.filter (fun (r : Owner.rc_site) -> r.Owner.rc_pos.Ast.line = line) tables.Owner.rcs
in
single_site "rc: `balanced` has one ACQUIRE" (at 15) (fun r ->
check "rc: an alias whose source is never clobbered is ELIDED" r.Owner.rc_elided);
single_site "rc: `clobbered` has one ACQUIRE" (at 34) (fun r ->
check "rc: an alias whose source root is passed `mut` is KEPT"
(not r.Owner.rc_elided))
let () =
let path = "golden/owner/moves.wo" in
let exit_code, stdout, stderr = run_cli [ "--dump-owner"; path ] in
check "cli smoke: --dump-owner on a clean file exits 0" (exit_code = 0);
check "cli smoke: clean-file --dump-owner writes nothing to stderr" (stderr = "");
let tables, _ = owner_str ~file:path (read_file path) in
check "cli smoke: --dump-owner stdout matches the in-process table dump exactly"
(stdout = Dump.dump_owner tables)
let () =
let path = "golden/owner-err/use-after-move.wo" in
let exit_code, stdout, stderr = run_cli [ "--dump-owner"; path ] in
check "cli smoke: an ownership-error file exits 1, not 0" (exit_code = 1);
check "cli smoke: the WO-E301 diagnostic goes to stderr"
(Option.is_some (find_substring ~needle:"WO-E301" stderr));
check "cli smoke: stdout still carries the tables on exit 1"
(Option.is_some (find_substring ~needle:"== RESIDUAL ==" stdout))
(* ---- golden-directory walk ------------------------------------------ *)
(* Each stage directory under golden/ names one `woc --dump-*` flag.
"tokens" (Task 3), "ast" (Task 4) and "owner" (Task 7) exist today; a
later task may add "types" alongside its own dump function in dump.ml.
"owner-err" is the one stage whose produced text is *not* a dump: it is
the fully rendered diagnostic report (the same text --dump-owner writes
to stderr, source excerpts and related sites included). The ownership
must-fail suite's whole contract is the message — both sites, the right
code, no unrelated noise from earlier stages — so the golden has to pin
the rendering, not a table. *)
let run_stage ~stage ~file ~src : string =
match stage with
| "tokens" ->
let collector = Diag.Collector.create () in
let toks = Lexer.tokenize collector ~file src in
Dump.dump_tokens toks
| "ast" ->
let collector = Diag.Collector.create () in
let toks = Lexer.tokenize collector ~file src in
let prog = Parser.parse collector ~file toks in
Dump.dump_ast prog
| "owner" ->
let tables, _ = owner_str ~file src in
Dump.dump_owner tables
| "owner-err" ->
let _, collector = owner_str ~file src in
let lookup f = if f = file then Some src else None in
Diag.Collector.render_all collector lookup ^ "\n"
| other ->
failwith (Printf.sprintf "runner: unknown golden stage directory %S" other)
(* Line-based diff, unified-diff-flavored (common leading lines shown
as context, then removed/added) but not a full LCS — goldens are
sized for a human to read at a glance, not for minimal-diff output. *)
let print_diff ~expected ~actual =
let exp_lines = Array.of_list (String.split_on_char '\n' expected) in
let act_lines = Array.of_list (String.split_on_char '\n' actual) in
let n = min (Array.length exp_lines) (Array.length act_lines) in
let rec prefix_len i =
if i < n && exp_lines.(i) = act_lines.(i) then prefix_len (i + 1) else i
in
let start = prefix_len 0 in
Printf.printf " --- expected\n +++ actual\n";
for i = 0 to start - 1 do
Printf.printf " %s\n" exp_lines.(i)
done;
for i = start to Array.length exp_lines - 1 do
Printf.printf " - %s\n" exp_lines.(i)
done;
for i = start to Array.length act_lines - 1 do
Printf.printf " + %s\n" act_lines.(i)
done
let is_visible name = String.length name > 0 && name.[0] <> '.'
let run_golden_dir () =
let root = "golden" in
if not (Sys.file_exists root && Sys.is_directory root) then
failwith (Printf.sprintf "runner: golden directory not found at %S" root)
else begin
let src_root = if bless then Some (source_golden_dir ()) else None in
let stages =
Sys.readdir root |> Array.to_list |> List.filter is_visible
|> List.filter (fun name -> Sys.is_directory (Filename.concat root name))
|> List.sort compare
in
List.iter
(fun stage ->
let dir = Filename.concat root stage in
let entries = Sys.readdir dir |> Array.to_list |> List.sort compare in
let wo_files = List.filter (fun n -> Filename.check_suffix n ".wo") entries in
List.iter
(fun wo_name ->
incr checks;
let name = Filename.chop_suffix wo_name ".wo" in
let wo_path = Filename.concat dir wo_name in
let expected_path = Filename.concat dir (name ^ ".expected") in
let src = read_file wo_path in
let file_label = stage ^ "/" ^ wo_name in
let actual = run_stage ~stage ~file:file_label ~src in
if bless then begin
let src_expected_path =
Filename.concat
(Filename.concat (Option.get src_root) stage)
(name ^ ".expected")
in
write_file src_expected_path actual;
Printf.printf "BLESSED: %s\n" src_expected_path
end
else begin
let expected =
if Sys.file_exists expected_path then read_file expected_path
else ""
in
if expected <> actual then begin
incr failures;
Printf.printf "FAIL: %s\n" (Filename.concat stage wo_name);
print_diff ~expected ~actual
end
end)
wo_files)
stages
end
let () = run_golden_dir ()
let () =
Printf.printf "runner: %d checks, %d failures\n" !checks !failures;
if !failures > 0 then exit 1 else exit 0