Adds the Audio.* namespace and its platform backend, the audio subsystem #22 was
blocked on.
- runtime/native/audio.ll: the macOS backend, AVAudioPlayer driven through the
objc runtime C ABI (no ObjC/C source), same style as cocoa.ll — snd_load /
play / stop / playing / set_volume / set_rate. Spliced and linked with
AVFoundation only when a windowed build actually uses Audio.* (needed_framework,
since AVAudioPlayer is reached by name).
- runtime/native/audio.ludic: the Audio.* runtime — a handle table, master
volume/pitch, a single music channel. load/play/play_sound/play_music/stop/
stop_music/stop_all/volume/pitch/is_playing. Every native call is
is_windowed()-guarded, so a headless build carries the API as no-ops (load
returns 0, is_playing false) and needs no audio device.
- compiler: Audio.* namespace dispatch, g_uses_audio splice, snd_* intrinsics +
declarations, and the conditional AVFoundation link in both the canonical
(main.ludic) and dev-runner (x app) paths.
- docs: a full docs/language/audio section (10 method pages); check-impl green.
- test: examples/library/audio.ludic self-asserts the headless no-op path.
Playback is out-of-band and never feeds the deterministic sim, but triggers are
frame-driven so replays fire the same sounds. Reseeded; suites green (80 + 29).
Co-Authored-By: Claude Opus 4.8 <noreply@anthropic.com>
The raw device layer the input proposal sketched, over the action maps +
record/replay of #7. Beyond one key per frame, gameplay can read:
- Multiple simultaneous held keys: Input.key_down / key_pressed / key_released,
with clean rising/falling edges (hold left AND jump).
- Analog from keys: Input.axis(neg, pos) and a normalized Input.vector(l,r,u,d)
(diagonals scaled by 1/sqrt(2)), plus Input.strength(action).
- Mouse: Input.mouse_x/y, mouse_dx/dy (per-frame delta), mouse_down(btn), wheel.
- Gamepads: Input.pad_connected/pad_button/pad_axis (SDL-order buttons, -1..1
sticks); touch: Input.touch_count/touch_x/touch_y.
The held set is fed by the platform when windowed — cocoa.ll now tracks
keyDown/keyUp into a 256-bit held-key bitset (win_held) and the mouse
buttons/wheel (win_mouse), gated so headless builds DCE the native calls — and
by the Input.press / Input.set_mouse / Input.set_pad / Input.set_touch injection
on every target (Godot-style action injection: replays, AI, network-fed input).
Input.record / replay now snapshot the full per-frame device state (held set +
mouse), extending #7's single-key tape.
Everything is integer and deterministic, so the same inputs reproduce the same
frame on every run and headless. The gamepad/touch native hardware bindings
(GameController.framework / NSTouch) feed the same injected state and are the one
remaining platform-glue follow-up; the software layer, semantics and replay are
complete and driven deterministically today.
Worked example + regression: examples/library/input_device.ludic
(1 1 0 1 0 1 71 -71 5 1 3 1 2 1 0 0 1, injection-driven headless). 23 new
docs/language/input pages. Full suite 78 passed, self-host C-free fixpoint
intact, no golden drift; cocoa.ll assembles and a windowed build links.
Co-Authored-By: Claude Opus 4.8 <noreply@anthropic.com>
The ergonomic layer over the engine-owned SpriteAnim/Motion systems (#43):
- Named clips: Anim.clip("run", frames, fps, mode) registers a clip by name and
Anim.play(entity, "run") plays it; Anim.play(entity, fps, frames, mode) sets
the clip directly. A name-keyed registry in systems.ludic.
- Frame events: Anim.on_frame(entity, frame) arms optional SpriteAnim
event_frame/event_fired fields; the engine flags the tick the clip first lands
on that frame, and Anim.fired(entity) reads it — the game reacts, so it stays
inside the no-runtime-dispatch event model.
- Motion.to(entity, from, to, dur, ease) starts a value tween over the Motion
component in one call (reflection-ABI writes, resetting the timer).
- Fluent Tween handles (runtime/native/tween.ludic): Tween.to / Tween.chain /
Tween.delay build a sequenced, disposable handle advanced by a new engine-owned
system (esys_tween, run each Update tick); Tween.value / Tween.done /
Tween.parallel / Tween.stop read and control it. The 1-arg Tween.done(handle)
is disambiguated from the 2-arg pure Tween.done(timer, dur).
Splicing: g_uses_anim_rt pulls in systems.ludic; g_uses_tween_rt pulls in
tween.ludic and inserts esys_tween into the Update phase. All integer and
deterministic, so animation and motion reproduce exactly under replay/lockstep.
Worked example + regression: examples/library/anim_sugar.ludic
(4 8 2 1 0 100 100 0 0 1 20 20 30 0 1). Twelve new docs pages (Anim, the new
Motion namespace, Tween handles). Full suite 77 passed, self-host C-free fixpoint
intact, no golden drift.
Co-Authored-By: Claude Opus 4.8 <noreply@anthropic.com>
The two ideas the input revamp leads with, built in Ludic over the
single-key poll every target already provides:
- Action maps: gameplay reads named actions, not physical keys, so keys
are rebindable and a scheme is data. Input.bind(action, key),
Input.down/pressed(action), Input.rebind(action, from, to).
- Deterministic record/replay: Input.poll() is the one per-frame input
read; Input.record() captures the key each frame and Input.replay()
feeds the tape back, so a run reproduces exactly — the seed of lockstep
netcode. "Read input" and "read a recorded snapshot" are the same call.
runtime/native/input.ludic (spliced when the new Input.* methods are used;
pulls in core.ludic for rt_poll). emit_ns_call routes the methods to the
@fn_input_* runtime; parse.ludic gates the splice. Seven docs/language
pages; worked example + regression examples/library/input_actions.ludic
(1 0 1 1 0 1 0). Full suite 75 passed, self-host fixpoint intact, no golden
drift. The device layer (multi-key held, gamepads, touch, analog) needs a
platform key-state backend and is tracked separately.
Co-Authored-By: Claude Opus 4.8 <noreply@anthropic.com>
The ECS-native shape the 2D lighting follow-up asked for, built on the
engine-owned-system hook from #43. A torch is just an entity carrying
Light2D, a wall an entity carrying Occluder, and one Ambient entity sets
the night tint — the engine runs the whole deterministic light pass at the
end of the Render phase (ambient modulate -> carve occluder shadows ->
accumulate additive radial lights) and presents. No Light.* calls wired.
- runtime/native/systems_light.ludic: esys_light2d, consuming the components
through the by-name reflection ABI and reusing the #4 accumulation core
(light_ambient / light_occlude / light_point). Reads position from a
Position component when present, else the light's own x/y.
- Split from systems.ludic so a SpriteAnim/Motion-only game never links the
light pass; spliced (with light.ludic) only when Light2D/Occluder declared.
- emit_main now boots rt_init like the auto-loop/test runner, so an
entry-driven game that renders has its framebuffer allocated (headless:
allocate only, no window, byte-identical stdout for non-rendering games).
Worked example + regression: examples/library/light_ecs.ludic (32 1 32 1).
Full suite 74 passed, self-host C-free fixpoint intact, no golden drift.
Co-Authored-By: Claude Opus 4.8 <noreply@anthropic.com>
Adds the ECS hook issues #43 and #47 named as their real dependency: a
system the *engine* owns, inserted into the frame loop over a component a
game merely declares and carries — no `handler` wired.
- runtime/native/systems.ludic: esys_spriteanim (SpriteAnim frame advance:
loop/once/pingpong) and esys_motion (Motion value tween: linear/in/out/
in-out), both on the by-name reflection ABI, integer + deterministic.
- backend: emit_engine_systems_for_phase inserts the calls after every user
handler in a phase (auto-loop and the drivable tick helpers alike);
uses_engine_systems() drives the systems.ludic splice, the world-table
force-emit, and makes a component-only game count as a systems game.
- A game that declares neither component is byte-for-byte unchanged.
Worked example + regression: examples/library/anim_ecs.ludic. Full suite
73 passed, self-host C-free bootstrap fixpoint intact.
Co-Authored-By: Claude Opus 4.8 <noreply@anthropic.com>
A self-describing Value node (null/int/fixed/bool/str/list/object) with
constructors, builders (Value.add/put) and accessors (get/at/count/kind/
as_int/as_str/…). Reflect.serialize(entity) walks an entity's whole component
set into a value tree — one member per component, each a sub-object of its
fields — and Reflect.apply(entity, value) writes one back; a fixed field
becomes a fixed node, everything else an int node, so the round-trip is
bit-exact, with the model id under "@kind". Json.encode/parse bridge the tree
to and from compact, stable, diffable text, with fixed written as an exact
terminating decimal that parses back bit-for-bit (verified across the raw
Q16.16 range). Together: a one-call, bit-exact save/load for entities.
Written in Ludic and spliced on demand (runtime/native/value.ludic +
reflect_io.ludic, like Query/Light), so a program that doesn't touch
Value.*/Json.*/Reflect.serialize compiles byte-identically and the C-free
bootstrap fixpoint holds (verified). The general tagged-union/any language type
stays tracked in #1; this ships the concrete value tree the serializer needs.
Adds 21 namespace-method docs pages + Value/Json sections,
examples/library/serialize.ludic, and a regression case. Whole CI set green:
x test 72/72, x test-tools 30/30, check-impl/vocabulary/docs.
Co-Authored-By: Claude Opus 4.8 <noreply@anthropic.com>
A fallible function returns a `result` value, built with ok(payload) on success
or err(message) on failure. The caller recovers a value with `try EXPR else {
… }`: on ok the whole expression is the payload; on err the else block runs —
with the failure message bound to `error` — and its trailing expression supplies
the fallback. It is a plain branch on the result's tag: no exceptions, no hidden
control flow, nothing unwinds. is_ok(r) / is_err(r) classify without unwrapping.
Payloads are any i32-width scalar (int/fixed/bool/entity). The feature is
additive and only kicks in when ok/err/try are used, so untouched programs
compile byte-identically (verified) and the C-free bootstrap fixpoint holds.
Complements panic/assert from #8 (the unrecoverable half). The optional
top-level frame `recover` stays deferred (needs a frame-abort mechanism); the
full tagged-union/any generalization is tracked in #1.
Adds the `try` keyword and ok/err/is_ok/is_err builtins across the compiler,
the vocabulary header, JetBrains + TextMate/VSCode grammars, the docs inventory
and pages, examples/library/recover.ludic, and a regression case.
Co-Authored-By: Claude Opus 4.8 <noreply@anthropic.com>
Instrument each emitted statement with a per-source-line hit counter, gated
behind a new --coverage flag (default off) so ordinary builds — and the
compiler's own self-compile — stay byte-identical and the C-free bootstrap
fixpoint is untouched. A static line table plus a parallel hit-counter array
are dumped at exit through an atexit hook to $LUDIC_COVERAGE (default
ludic.cov) as a `FILE <name>` header and `<line> <hits>` rows.
bin/x test --coverage compiles the test specs with instrumentation, runs them
into per-file dumps, and aggregates a clean per-file line-coverage report that
names the unreached lines. Adds examples/library/coverage.ludic (a spec whose
tests deliberately miss one branch) and docs. Closes the last open acceptance
item of the testing framework (#12).
Co-Authored-By: Claude Opus 4.8 <noreply@anthropic.com>
A `test "name" { ... }` top-level block is discovered automatically and run by a
synthetic runner @main — no `entry` to write, nothing to register. Inside a test,
expect(cond) / expect_eq(a, b) / expect_near(a, b, tol) assert; on failure they
print `file:line: <what> failed (got G, want W)` and set a per-test fail flag but
keep going, so one run reports every failure. The runner prints `ok - name` /
`FAIL - name` per test, a `== N passed, M failed ==` summary, and exits non-zero
if any test failed — so `ludic spec_test.ludic` drops straight into bin/x and CI.
expect_near carries the tolerance fixed-point / accumulated-integer game math need.
Frontend: new `test` keyword (parse_test -> N_TEST, collected in g_tests) and the
call node now carries its source line for the file:line messages. Backend:
emit_test_runner synthesises @fn__test_i bodies + the runner @main; the expect*
builtins lower to a branch-print-flag tail (emit_expect_fail). g_src_name (set in
main from the input path) supplies the filename. The compiler's own source has no
`test` blocks, so its self-compiled IR is unchanged and the C-free fixpoint holds.
- `test` wired into the vocabulary (ludic_syntax.h, JetBrains lexer, TextMate
grammar) and documented (docs/language/testing/)
- examples/library/testing.ludic: a passing spec, guarded by a new spec_case in
the regression suite (build, run, require exit 0 + the expected summary)
Coverage instrumentation (the biggest lift in #12) is left as a follow-up.
Co-Authored-By: Claude Opus 4.8 <noreply@anthropic.com>
A software light pass over the framebuffer, run in a render phase after drawing
the scene: Light.ambient multiplies the scene toward a tint (night/cave mood),
Light.point additively accumulates a radial glow with linear falloff clamped per
channel, and Light.occlude / Light.clear_occluders cast hard shadows by blocking
a light's rays against rectangular occluders. Integer + Q16.16 fixed throughout,
so a scene lights identically every run and in a headless render (diffable).
Engine in runtime/native/light.ludic, spliced on demand (g_uses_light) like the
regex/query runtimes; namespace wired in emit_call.ludic. Ships issue #4 tiers 1
(ambient + additive radial lights) and 2 (hard shadows). Normal-mapped sprites,
soft shadows, a day/night directional light, and auto-consuming Light2D/Occluder
components are follow-ups (the auto-system hook is tracked by #43).
- runtime/native/light.ludic: the light-accumulation engine (isqrt falloff,
segment/occluder shadow test, ambient modulate)
- examples/library/lighting.ludic: 14 pixel-readback assertions
- docs/language/light/: Light.ambient/point/occlude/clear_occluders
- tools/x/test.ludic: lighting.ludic in the regression suite
Co-Authored-By: Claude Opus 4.8 <noreply@anthropic.com>
Runtime type reflection: enumerate properties and fields by index, resolve ids
by name, read a field's type, and get/set/has an entity's fields generically —
the foundation the issue calls out for auto-serialization, data-driven tools,
and debug/inspector overlays. Built on the existing EV2 reflection ABI plus a
new EV8 metadata-enumeration layer, all generated at compile time (a table walk,
no heavy runtime introspection), so a binary that never reflects pays nothing.
Surface (Reflect.*, aliased in emit_call.ludic over the world_* reflection ABI):
- Reflect.prop(name) / field(prop,name) resolve ids by name (-1 = none)
- Reflect.prop_count() / prop_name(i) enumerate properties
- Reflect.field_count(prop) / field_name(prop,i) / field_type(prop,i)
enumerate a component's fields
- Reflect.get / set / has (entity, prop, ...) read/write/test a field by id
- Reflect.kind(entity) / model(name) an entity's model, by id/name
New codegen (emit_world.ludic, EV8): ludic_prop_count / prop_name /
field_count / field_name / field_type, generated the same way as ludic_prop_id
— a switch over the compile-time property/field metadata, falling through to the
mod-registered (dynamic) registries. Field names/types come straight from the
AST, so field_type reports the declared type ("int"/"fixed"/…). A program that
uses Reflect.* force-emits the reflection ABI (g_uses_reflect) so it needs no
@events of its own, exactly like Query.* (#42).
examples/library/reflect.ludic asserts 20 cases including a generic inspector
that sums every field of every component an entity has while naming none of them
— the auto-save / debug-overlay pattern end to end. Wired into x test (now 64
passed). Docs: a Reflect section + 12 per-symbol pages (positioned as an
advanced/tooling surface), inventory/coverage green. Seed reseeded; the C-free
bootstrap fixpoint holds.
Scope: this lands the reflection core and a real consumer (the generic
inspector). The generic value-tree `serialize` the proposal also sketches wants
a tagged-union/any value type from the #1 type-system work, so it is tracked as
a follow-up rather than forced in here.
Co-Authored-By: Claude Opus 4.8 <noreply@anthropic.com>
Completes the half of #24 that was explicitly deferred as blocked: entity-space
queries to sit alongside the grid-space Grid.*/pathfinding that shipped in
07e5a20. Query.* answers questions about the live entities that carry a
property, built directly on the EV2 reflection ABI (world_query_next/world_get):
- Query.count(prop) -> int how many live entities carry prop
- Query.first(prop) -> int the lowest-id bearer, or -1
- Query.nearest(prop, pos, xf, yf, x, y) the bearer closest to (x,y), or -1
- Query.within(prop, pos, x, y, r, xf, yf) -> []int every bearer within r
prop is a property id (World.prop_id); the spatial forms read a position from a
coordinate property `pos` at two int field ids (World.field_id), so `prop` can be
a discriminating tag distinct from the position component ("nearest Enemy"), or
the same id to query the coordinate component itself. Distances are exact squared
integers (no sqrt), ties break to the lower entity id, and `within` returns
entities in ascending id order — so every answer is deterministic and replay-safe.
The engine (runtime/native/query.ludic, ~55 lines of Ludic, C-free) is a linear
scan over the entity table — ample for the entity counts Ludic targets, the same
reasoning as the grid pathfinder's open set; a bucketed/quadtree index is a
future optimisation, not a correctness need. It is spliced on demand when the
parser sees Query.* (g_uses_query), which also force-emits the reflection ABI so
a Query program needs no @events of its own (previously the ABI required them).
examples/library/query.ludic asserts 18 cases over five entities at known
positions (count/first with a component filter, nearest with a separate tag vs
position property, within radii incl. r=0 and the empty-property case), wired
into x test (now 63 passed). Docs: a Query section + 4 per-symbol pages,
inventory/coverage green. Seed reseeded; the C-free bootstrap fixpoint holds.
Co-Authored-By: Claude Opus 4.8 <noreply@anthropic.com>
A regular-expression library with PCRE/PECL-compatible syntax, implemented as a
Thompson NFA / Pike VM so a bad pattern from a modder can NEVER cause
catastrophic backtracking — matching is O(n·m), never exponential. `(a+)+$` on
40 non-matching chars, `(a*)*b`, `(.*a){20}b` all run in microseconds; a 50 KB
input scans in ~7 ms.
The engine (runtime/native/regex.ludic + regex_vm.ludic, ~700 lines of Ludic, no
C) parses a pattern to a small bytecode program — an unanchored lazy `.*?` prefix
makes a plain search match anywhere — and the VM runs every alive thread in
lockstep per input byte, deduped by program counter and carrying capture slots
(save/restore, leftmost-greedy priority). Supported: literals, `.`, classes
`[...]` (ranges, negation, `\d \w \s` and their negations), anchors `^ $`,
alternation `|`, capturing and `(?:…)` groups, and `* + ? {n} {n,} {n,m}` in
greedy or lazy form, plus the common escapes; numbered capture groups. Errors are
values — an invalid pattern compiles to null, never a crash. Backreferences and
look-around are out of scope for a linear engine, and on the degenerate case of a
nullable subpattern under an unbounded quantifier positions may differ from a
backtracking engine (the price of the linear-time guarantee) — documented.
Surface (Regex.*, aliased in emit_call.ludic to the regex_* functions):
compile / valid / matches / test / find / exec / next / replace / group /
group_count / start / end / ok.
The runtime is spliced on demand: the parser sets a flag when it sees `Regex.`
and maybe_splice_runtime imports the engine — so it costs nothing in a program
that doesn't use it and works in a plain tool (not just an ECS game).
Verified against Python's `re` as an oracle: a 20k-case grammar fuzzer agrees
100% on realistic patterns (0 / 15000 with capture groups) and 99.8% on group-0
spans across the full pathological grammar, the residual being the documented
nullable-quantifier case. examples/library/regex.ludic asserts the behaviour
(wired into `x test`, now 60 passed); docs: a Regex section + 13 per-symbol
pages, inventory + coverage green. Seed reseeded; the C-free bootstrap fixpoint
holds.
Co-Authored-By: Claude Opus 4.8 <noreply@anthropic.com>
`new` accepted only a bare `new T` (every field its declared default) or
`new []T`, but the docs (kw-new) document `new Record { field: value, … }`
as the way to construct a record with non-default fields — a documented,
intended form the parser never accepted (`let o = new Point { x: 3 }` failed
with "expected newline or ';'").
Parse an optional `{ … }` override record after the type in a `new`
expression (reusing the existing `record()` parser that `spawn` uses), and
seed each field in emit_new_struct from that record when present, else from
the field's declared default. `new []T` and bare `new T` are unchanged.
Also mark the illustrative kw-import fence `# doc-check: skip` (its imports
are example paths that can't resolve in isolation), which makes `x check-docs`
fully green (398 fences, 0 drifted) — so it is now wired as a gate in
`x test-tools` and CI, guarding against future doc/compiler drift.
Reseed is a clean fixpoint (x bootstrap-cfree holds); x test (56),
x selfhost-test (29, golden renders unchanged) and x test-tools (30) green.
Co-Authored-By: Claude Opus 4.8 <noreply@anthropic.com>
Split the flat 38-file selfhost/ into concern-based subdirectories:
frontend/ lex, parse, parse_game, ast
support/ str, buf, io
backend/ core IR + expression/statement lowering
backend/game/ ECS/scene/event/world lowering
backend/stdlib/ the namespaced Math.*/Text.*/Crypto.*/… intrinsics
and split the three oversized emitters at responsibility boundaries so
no file mixes concerns:
emit_game.ludic -> + emit_world.ludic (reflection world table,
tick helpers, @main synthesis)
emit_expr.ludic -> + emit_call.ludic (namespaced builtins, call
lowering, expr dispatch)
emit_text.ludic -> + emit_text_prelude.ludic (emitted string-builder runtime)
FRAGS in tools/x/selfhost.ludic is updated to the new paths with the link
order preserved, and the Python doc/vocabulary tooling is updated to walk
the new layout. Because the build is a plain in-order concatenation and
every split lands on a blank-line boundary, the regenerated seed is
byte-identical: `x reseed` leaves selfhost/ludicc.seed.ll unchanged,
`x bootstrap-cfree` still reaches its fixed point, and both `x test` (56)
and `x selfhost-test` (29, incl. golden renders) stay green.
Closes#29
Co-Authored-By: Claude Opus 4.8 <noreply@anthropic.com>