flan/test/test_dev.ml
Joseph Ferano 8a94f16acd The program's output goes where someone is looking at it
Its stdout is a pipe into the daemon now, and whatever it printed since the
last reply rides along with the next one into *flan-output*. Arriving with a
reply rather than by a separate request is the point: the output an evaluation
itself caused is the output anyone wants to see.

Draining that pipe is a liveness requirement, not a nicety. A pipe nobody reads
fills at 64K and the next write blocks the program forever, so it is read from
the accept loop's select whether or not an editor is asking, and the buffer is
capped - a program printing every frame must not grow the daemon without limit,
and the newest text is the useful end.

test_dev read the program's transcript off the daemon's stdout, which is no
longer where it goes; it collects :output from replies instead, which is also
what the editor does. The emacs test moved to a fixture that keeps running,
since it now evaluates more times than the old one had reloads to give.
2026-09-11 07:05:50 +07:00

157 lines
6.9 KiB
OCaml

(* [flan dev]: the daemon an editor talks to (NEXT.md, the dev loop).
What it adds over [flan reload] is that the session persists between
evaluations and that the daemon owns the build, so its idea of the running
process is not a guess. Both are tested here by sending a sequence: a name
the program was never built with, then a second evaluation that uses it. If
the session were rebuilt per request the second one would not even check. *)
open Flan
let failures = ref 0
let fail fmt = Printf.ksprintf (fun s -> incr failures; print_endline ("FAIL " ^ s)) fmt
let scratch = Filename.get_temp_dir_name ()
let tmp n = Filename.concat scratch ("flan-devtest-" ^ n)
let rec await ?(ms = 5000) f =
if f () then true
else if ms <= 0 then false
else begin ignore (Unix.select [] [] [] 0.005); await ~ms:(ms - 5) f end
let rec connect ?(ms = 5000) path =
let s = Unix.socket Unix.PF_UNIX Unix.SOCK_STREAM 0 in
match Unix.connect s (Unix.ADDR_UNIX path) with
| () -> s
| exception Unix.Unix_error (_, _, _) when ms > 0 ->
Unix.close s;
ignore (Unix.select [] [] [] 0.005);
connect ~ms:(ms - 5) path
(* The program's own output arrives on the replies, not on a file: the daemon
reads its stdout through a pipe so an editor can see it. Every reply is
drained into here, which is also what an editor does. *)
let output = Buffer.create 256
let request fd sexp =
let r = Wire.parse (Wire.send fd sexp; Wire.recv fd) in
(match Wire.string_field r "output" with
| Some t -> Buffer.add_string output t
| None -> ());
r
let status r =
match Wire.string_field r "status" with Some s -> s | None -> "<none>"
let () =
match Sys.command "command -v clang > /dev/null 2>&1 && command -v llc > /dev/null 2>&1" with
| 0 ->
let sock = tmp "dev.sock" in
let out = tmp "prog.out" in
(try Sys.remove sock with Sys_error _ -> ());
let fd = Unix.openfile out [ Unix.O_WRONLY; Unix.O_CREAT; Unix.O_TRUNC ] 0o600 in
(* The daemon is run as a subprocess rather than in-process because that is
how an editor meets it, and because it launches and owns a program of
its own. Its child's stdout is what we read the result off. *)
let flan = "../bin/main.exe" in
let pid =
Unix.create_process flan
[| flan; "dev"; "programs/dev-loop.flan"; "-s"; sock |]
Unix.stdin fd Unix.stderr
in
Unix.close fd;
if not (await (fun () -> Sys.file_exists sock)) then
fail "the daemon never listened"
else begin
(* The daemon owns the program's lifetime and kills it on [close], so
every step waits for the program to have got there. "ok" from an eval
means the module was queued, not that it has been installed. *)
let c = connect sock in
(* The daemon owns the program's lifetime and kills it on [close], so
every step waits for the program to have got there. "ok" from an eval
means the module was queued, not that it has been installed. Output
only rides along with a reply, so asking is how it is collected, and
[describe] is the cheapest question there is. *)
let lines () =
List.length (String.split_on_char '\n' (Buffer.contents output)) - 1
in
let settle n =
await (fun () ->
ignore (request c "(:op \"describe\")");
lines () >= n)
in
(* describe: what the daemon believes about the program it launched. *)
let r = request c "(:op \"describe\")" in
if status r <> "ok" then fail "describe: %s" (status r);
(* A form that does not check comes back as an error with a location,
and must not disturb the session. *)
let r = request c "(:op \"eval\" :code \"(defn step [] i64 nonsense)\" :file \"/tmp/buf.flan\")" in
if status r <> "error" then fail "a bad form was accepted";
(match Wire.string_field r "loc" with
| Some l when String.length l > 0 -> ()
| _ -> fail "an error carried no location");
(* A name the program was never built with, then a second evaluation
that uses it. The second one only checks at all because the session
kept the first. *)
let r =
request c
"(:op \"eval\" :code \"(defvar extra i64) (defn step [] i64 (set extra (+ extra 5)) extra)\" :file \"/tmp/buf.flan\")"
in
if status r <> "ok" then
fail "adding a var: %s"
(Option.value ~default:"" (Wire.string_field r "message"));
(* Wait for the program to have installed it before sending the next.
Both queued at once is a legitimate thing for the agent to do — one
poll installs everything pending — but then only the last is observed
and the sequencing is not what was tested. *)
if not (settle 2) then fail "the first reload was never installed";
let r =
request c
"(:op \"eval\" :code \"(defn step [] i64 (set extra (+ extra 100)) extra)\" :file \"/tmp/buf.flan\")"
in
if status r <> "ok" then
fail "reusing a var added earlier: %s"
(Option.value ~default:"" (Wire.string_field r "message"));
(* A change the running process cannot be told, refused with the reason
rather than delivered. *)
let r = request c "(:op \"eval\" :code \"(defvar ticks i32)\" :file \"/tmp/buf.flan\")" in
if status r <> "error"
|| not
(match Wire.string_field r "message" with
| Some m -> String.length m > 0
| None -> false)
then fail "retyping a global was not refused";
if not (settle 3) then fail "the second reload was never installed";
(* Expression evaluation, which is a different primitive: no name to
install a body into, so a thunk runs at a frame boundary and the value
comes back rendered. The program has stopped reaching frame boundaries
by now, so this only checks that the types that have no printer say so
rather than guessing — the live path is test_repl. *)
let r = request c "(:op \"eval-expr\" :code \"(defvar x i64)\" :file \"/tmp/buf.flan\")" in
if status r <> "error" then fail "a declaration was accepted as an expression";
ignore (request c "(:op \"close\")");
Unix.close c;
(* Closing the connection ends the program, and its transcript is the
proof: 1 before any reload, 5 from a body over a var that did not
exist when it started, 105 from a second body reading the same one. *)
ignore (Unix.waitpid [] pid);
let text = Buffer.contents output in
if text <> "1\n5\n105\n" then
fail "program transcript\n got: %S\n wanted: %S" text "1\n5\n105\n"
end;
List.iter (fun f -> try Sys.remove f with Sys_error _ -> ()) [ sock; out ];
if !failures = 0 then print_endline "dev: all tests passed"
else begin
Printf.printf "\n%d failure(s)\n" !failures;
exit 1
end
| _ -> print_endline "dev: skipped (no clang or llc on PATH)"