7c0313a7cbbdb3b42265a89c6ec003b1b5744dd2
15 Commits
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c6caeca5bc |
feat(encode): RGB-direct (EFC) is now the DEFAULT on capable hosts — gated by a session cursor-blend hint
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B2 default-on (design/vulkan-rgb-direct-encode.md): wherever the probe
passes, Vulkan Video sessions now take the EFC RGB source by default —
direct import on aligned modes, padded-copy staging on unaligned ones
(1080p). PUNKTFUNK_VULKAN_RGB_DIRECT becomes the override: =0 disables,
=1 forces, unset = the default below.
The one session class that must NOT default on: cursor-as-metadata
captures (every non-gamescope compositor), where the CSC shader's blend
IS the visible pointer — the EFC cannot composite, and defaulting there
would silently drop the cursor from the stream. The hint rides the
existing plumbing:
- SessionPlan gains cursor_blend, resolved once where the compositor is
known (gamescope embeds the pointer itself → false; kwin/mutter/
wlroots/hyprland → true), and shows up in the logged plan line.
- open_video/open_video_backend thread it through (native pump: all
three encoder-open sites read plan.cursor_blend; GameStream monitor
capture: true — it negotiates metadata cursor; spike: false).
- VulkanVideoEncoder::open resolves: env override, else ON iff the
session never hands us cursor bitmaps. The warn-once for a cursor on
an RGB session (forced via =1) stays.
Verified on-hw box (Linux): pf-encode + punktfunk-host compile, clippy
clean, unit suite green. The GPU paths themselves are unchanged from the
smoke-validated
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c5402cb1f7 |
feat(core+host): LN1 phase-2 — VIDEO_CAP_STREAMED_AU streamed access units
The wire half of sub-frame slice output (latency §7 LN1, planning
design/nvenc-subframe-slice-output.md Phase 2): toward a client that
advertises the new cap bit (0x20), a chunked-poll encoder session ships each
AU's completed FEC blocks while the tail of the frame is still encoding —
the AU's last packet leaves the host as the encode finishes instead of
after it.
Wire semantics (negotiated; zero change for anyone else):
- Non-final blocks ride SENTINEL headers: block_count = 0 (a value no legacy
sender emits) + frame_bytes = 0 + exactly max_data_per_block data shards,
so the receiver's shard-offset formula needs no total.
- The final block's headers carry the real frame_bytes/block_count (+
FLAG_EOF) and RETRO-VALIDATE the whole frame: totals under which a
received sentinel block is out of range or not full-K kill the frame
wholesale (no spliced delivery) and the index can't be resurrected.
- Firewall: sentinels are bounded by the negotiated limits (full-K exactly,
never the last block the limits allow, no total to lie about); the exact
derived-geometry check runs unchanged on every non-sentinel packet and
retroactively at pinning. Sentinel opens commit a max_frame_bytes buffer,
bounded by the existing IN_FLIGHT_BUF_FACTOR budget (amplification test).
- Order-agnostic like legacy: a reversed frame (final block first) opens
legacy-shaped and still accepts its sentinels against the pinned totals.
- Small/empty streamed AUs degenerate to byte-identical legacy headers.
Host: Packetizer::{begin,push,finish}_streamed seal full-K blocks (data +
parity per block) as chunks arrive; Session::seal_streamed_* share the
pooled-wire + two-lane seal machinery via the new seal_run; the send thread
paces each flush under the frame's existing deadline (pace_sealed split out
of paced_submit) and runs the whole-AU accounting at the last chunk; the
encode pump forwards poll_chunk output as ChunkMsg when the client has the
cap AND the encoder chunks (re-queried per AU — an escalation falls back
seamlessly). Probes never run mid-AU. PUNKTFUNK_STREAMED_AU=0 = host escape
hatch. Client core ORs the cap into Hello (the shared reassembler carries
the support). Sampled first_slice_us vs encode_us PERF log measures the
overlap; the 0xCF stage-field extension stays a follow-up.
Core tests: streamed round-trip (clean/loss/reorder/duplicate, both orders),
sentinel firewall bounds, lying-final wholesale kill + no-resurrect,
open-amplification budget, header-shape pins. Gates still owed before
default-on: security review pass, loss-harness curve, GameStream smoke
(plane untouched structurally), bitrate A/B.
Co-Authored-By: Claude Fable 5 <noreply@anthropic.com>
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ae67315804 |
perf(encode/nvenc-linux): LN3 — pipelined-retrieve escalation replaces the depth-1 async foot-gun
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PUNKTFUNK_NVENC_ASYNC gains a real tri-state: 1 = always (as before, now documented as ~+1 tick at depth-1), 0 = never (vetoes escalation), unset = ADAPTIVE — off until the session loop's cadence-overrun detector escalates. The host loop's adaptive-depth leaky bucket grows a second stage: once the capturer's depth is maxed (Linux portal is permanently depth-1), it asks the encoder for pipelined retrieve via the new Encoder::set_pipelined hook (asked exactly once; default impl declines, Windows untouched). nvenc_cuda engages at a safe point via a clean session rebuild WITHOUT the IO-stream binding: with input==output stream bound, later stream work waits on prior encode completions and would serialize a pipelined session — stream-ordered submit and two-thread retrieve are mutually exclusive. The ordered gate now also requires async_rt absence (belt-and-braces for the runtime switch). Re-open's first frame is the standard session IDR. On-hardware test: escalate mid-session → retrieve thread live, binding gone, all AUs deliver, first post-escalation AU is the IDR. Co-Authored-By: Claude Fable 5 <noreply@anthropic.com> |
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6f52397342 |
fix(encode): bound NVENC async pipelining by the capturer's texture ring
The Windows direct-NVENC backend registers and encodes the capturer's textures IN PLACE (no CopyResource), so how deep it may pipeline is a property of the CAPTURER, not of the encoder. It was bounded only by `async_inflight_cap()` — `PUNKTFUNK_NVENC_ASYNC_DEPTH`, default 4, clamped to the output-bitstream pool — which consults nothing about the capturer, while the comment at the backpressure loop claimed it "keep[s] in-flight depth within the capturer's texture ring". It never did. The IDD-push capturer rotates `OUT_RING = 3` per delivered frame with no regard for encode completion (its own invariant note says OUT_RING(3) > max pipeline_depth(2)). With the default async depth of 4 the encoder can therefore still be reading a texture the capturer has already handed out again and overwritten: torn or mixed frames. It is visual corruption rather than UB, so it fails silently and intermittently — the worst shape to diagnose from a field report. Adds `Encoder::set_input_ring_depth`, reported from `Capturer::pipeline_depth`, and bounds the async backpressure loop by `min(async_inflight_cap(), depth)`. For IDD-push that yields 2, matching the capturer's stated contract; backends that copy their input, or are synchronous, ignore it. Wired at ALL THREE encoder-creation sites (initial open, stall/resize rebuild, ABR rebuild) and forwarded through `TrackedEncoder` — this crate has a documented trap where an unforwarded defaulted trait method silently no-ops through that wrapper, which has already bitten the direct-NVENC work once and the wire-chunking probe once. Co-Authored-By: Claude Opus 4.8 <noreply@anthropic.com> |
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fecbec2daf |
fix(encode): make LTR-RFI loss recovery sound under sustained loss
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Field report (lid-closed Intel laptop, ~6-19% sustained loss): the stream never healed — permanent macroblock soup. Three stacked bugs: - QSV answered RFI with PreferredRefList only, a reorder HINT per the VPL spec — the recovery frame could keep predicting from tainted short-term refs. Now rejects every other DPB candidate (RejectedRefList) and caps L0 at one active entry (AVC/HEVC), matching AMF's hard ForceLTRReferenceBitfield / NVENC invalidation semantics. - Neither QSV nor AMF taint-swept LTR slots across losses: a slot marked inside the client's corrupt window became the "known-good" anchor of the NEXT loss, propagating corruption through every recovery. Both now drop slots at-or-after the loss start before picking an anchor, and guard a queued force whose slot the sweep emptied (no false recovery_anchor tag). - The native plane re-anchored the FULL IDR cooldown on every successful RFI, so under sustained loss the client's escalating keyframe requests were coalesced away indefinitely (field log: dozens swallowed, one IDR per ~8 s). RFI now anchors a 300 ms echo window with a 2-swallow budget per loss episode; a client still asking past that gets its IDR. Live-validated on Arc (qsv feature): 6/6 including the new qsv_live_ltr_rfi_taint_sweep_declines (a loss covering every live mark declines the RFI and falls back to IDR recovery). Co-Authored-By: Claude Opus 4.8 <noreply@anthropic.com> |
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dc20e4452e |
fix(pyrowave): anchor frame-driven pacing to arrival, hold full framerate
The frame-driven capture loop set its rate-limit floor (`earliest`) relative to `next`, which is re-based to the instant AFTER submit(). For an async encoder (NVENC) submit() returns in ~0, so that anchor is ~frame-arrival and the loop correctly waits for the next vsync — full framerate. But PyroWave's encode is SYNCHRONOUS (~2 ms inline in submit()), so the anchor lands ~2 ms late every frame: the loop misses the next arrival and samples one interval behind, making the period `interval + encode`. That capped a 240 Hz source at ~158 fps (and a 360 Hz request at ~200) with the link and the encoder both idle — no drops. Anchor the floor to this frame's arrival (`t_cap`) instead. The synchronous encode now overlaps the interval rather than stacking onto it; the ≥0.9×interval spacing from the last grab still caps the rate at ~1.11× target. No-op for async NVENC (t_cap ≈ post-submit there), which is why H.26x already held full rate. Measured on-glass (5120x1440@240, RTX 4090 host, macOS client): desktop now holds 240 fps. Also reduces latency (samples fresher frames). Co-Authored-By: Claude Fable 5 <noreply@anthropic.com> |
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b89dbfa979 |
feat(gamescope): end dedicated stream on Steam game exit + auto --steam
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Dedicated single-game sessions now end cleanly when the launched game quits, and Steam launches get gamescope's Steam integration without an operator env knob. End-on-exit: the existing APP_EXITED close only fired when gamescope's PipeWire node vanished, which never happens for Steam — the nested `steam` is the resident singleton client and stays up after a game quits, so gamescope (and its node) never die and the stream sat on a hidden Steam session forever. Add a Steam AppId reaper watcher (pf-vdisplay .../gamescope/discovery.rs): steam_appid_from_launch() parses steam://rungameid/<id>; wait_for_steam_game_exit() waits for the game to start (<=300s grace) then exit (3s confirm); steam_game_running() scans same-uid /proc for Steam's launch reaper matching both the `SteamLaunch` and `AppId=<id>` argv tokens (exact-match; reaper lifetime == game lifetime, so shader precompile can't false-trigger). The host spawns a pf1-gamewatch thread for nested Steam launches that closes the connection with APP_EXITED (launcher clients return to their library) and sets quit/stop; cancelled via stop if the session ends first. Non-Steam nested launches keep the node-death path (gamescope's child IS the game). Flags: auto-enable `--steam` whenever the launch is a Steam launch (was only the global PUNKTFUNK_GAMESCOPE_STEAM knob, default-off) — in-game overlay / Steam+X / gamepad-UI nav for Steam titles with no operator config. New opt-in PUNKTFUNK_GAMESCOPE_GRAB_CURSOR adds `--force-grab-cursor` for a real game launch (FPS mouselook); default OFF because it forces relative mode, which breaks absolute-pointer games/menus. Verified: fmt clean; clippy -D warnings clean on the three crates; pf-vdisplay 64/0 (incl. new steam-appid parse test); punktfunk-host builds + 186/0; reaper /proc detection smoke-tested (detect, exact non-match, gone-after-exit). Co-Authored-By: Claude Opus 4.8 (1M context) <noreply@anthropic.com> |
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5eb930e71d |
feat(pyrowave): negotiation plumbing for 4:4:4 + HDR — thread chroma/depth/ColorInfo end to end
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Phase 1 of design/pyrowave-444-hdr.md. No behavior change yet: the handshake's
4:4:4 gate now admits PyroWave (probe = can_encode_444(codec), capture gate
inherently satisfied — the wavelet path always ingests an RGB source and does
its own CSC), but can_encode_444 stays false for PyroWave until the per-OS
full-res-chroma CSC variants land (Phase 2 Linux, Phase 3 Windows), so every
session still resolves 4:2:0/8-bit.
- Both host encoders take the negotiated ChromaFormat (bail on 444 for now);
the PUNKTFUNK_ENCODER=pyrowave lab override pins 4:2:0.
- Bitrate: the automatic ~1.6 bpp pin resolves AFTER depth+chroma and scales
x1.625 for 4:4:4 / x1.15 for 10-bit (factors from the Phase-0 fixture
matrix); the mid-stream mode-switch re-resolve threads the session's values.
- Client: PyroWaveDecoder builds its plane ring (full-res chroma when 444) and
creates the upstream decoder from the negotiated chroma, keeps chroma fixed
across mid-stream resizes, drops the even-dims requirement for 444, and
returns the negotiated Welcome ColorInfo as the frame colour contract
instead of hardcoded BT.709 (the wavelet bitstream has no VUI).
Verified on .21 (RTX 5070 Ti): clippy -D warnings (host+client+encode), host
186 tests, client + pf-encode tests, fmt, and the pyrowave_smoke GPU
round-trip through the patched vendored lib (
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8e75f3d8bf |
perf(latency): adaptive IDD pipeline depth — depth-1 default, escalate on contention
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From the 2026-07-17 on-glass finding (.173 RTX 4090): the IDD-push capturer's
depth-2 pipeline measured ~13ms of glass-to-glass latency over depth-1 at
60fps (17ms → 4ms) — the AU is ready in µs but depth-2 holds it a whole frame
interval unpolled while N+1 is submitted. Depth-2 only earns its keep under
GPU contention (it overlaps the convert of N+1 with the encode of N, avoiding
the depth-1 ~50fps collapse). So the native encode loop now runs depth-1 by
default and escalates to the capturer's max ONLY when it can't hold cadence at
depth-1 (a leaky-bucket over 'the frame's work overran its pacing deadline',
with a startup warmup skip), then holds there for the session (no oscillation;
de-escalation is a v2 item). PUNKTFUNK_IDD_ADAPTIVE=0 pins the capturer's full
depth (pre-adaptive behaviour); no effect where the capturer's max is already
1 (every non-IDD backend). GameStream plane untouched.
Pairs with the shipped REALTIME auto-gate (
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bbe4380b41 |
perf(latency): T1.1 frame-driven encode trigger + T1.4 time-based flush thresholds
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design/latency-reduction-2026-07.md tier 1, remaining halves: - T1.1: the native encode loop wakes on the capture's ACTUAL arrival instead of sampling at a free-running tick — deletes the sample-and-hold (~half a frame interval on average, a full one worst-case: ~8ms avg @60fps). New Capturer::supports_arrival_wait/wait_arrival pair (IDD-push waits its frame-ready event against the shared-header token; the PipeWire portal blocks its channel with a pending stash); backends without an arrival signal — and PUNKTFUNK_FRAME_DRIVEN=0 — keep the legacy tick bit-identically. A 0.9x-interval rate floor caps encode at ~1.11x target when the compositor outruns the session; a +0.5x-interval keepalive keeps static desktops re-encoding at 1.5x-interval cadence. Pacing deadlines re-anchor to the actual submit so they can't drift against the arrival clock. GameStream plane untouched. - T1.4: the jump-to-live detectors run on WALL-CLOCK now (STANDING_TIME / FLUSH_AFTER = 250ms) instead of 30-frame counts whose meaning scaled with fps (500ms @60 but 125ms @240 — and stretching further under T1.1's slower static-scene repeats). The queue trip also requires depth still >= high, so a hysteresis-band hover can't fire on elapsed time alone. Validated: .21 Linux 185 core + 177 host + pf-capture tests, clippy -D warnings; .133 Windows cargo check of pf-capture + punktfunk-host green. Co-Authored-By: Claude Fable 5 <noreply@anthropic.com> |
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aedee2a4e3 |
perf(latency): tier-0 attribution + tier-1 send-path levers from the latency plan
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design/latency-reduction-2026-07.md T0.1/T0.2/T1.2/T1.3:
- T1.2 rate-capped front-loaded pacing: the paced overflow's budget is now
min(0.9x slack, overflow wire time at ~3x the live encoder bitrate)
(PUNKTFUNK_PACE_FACTOR, 0 = legacy deadline-only spread). A 300 KB-1 MB
frame's tail leaves in ~2-5 ms instead of smearing across ~15 ms at 60 fps;
GameStream schedule byte-identical (pins unchanged).
- T1.3 data-first wire order: packetize emits every block's data shards before
any parity (per-block parity pools keep all blocks' parity alive for the
second pass), so lossless completion stops waiting behind the parity tail.
EOF = last emitted packet; receiver already order-agnostic.
- T0.1 staged 0xCF: HostTiming gains an append-extensible per-stage tail
(queue/encode/pace us; seal+channel-wait derived as residual) - no cap bit
needed, old peers read the 13-byte prefix. Joined client-side into
Stats::host_{queue,encode,xfer,pace}_ms, the OSD detailed tier, and the
probe's report.
- T0.2 true on-glass present timing: VK_KHR_present_id/present_wait enabled
when supported; a PresentTimer waiter thread resolves each present id to
real visibility, replacing the submit-time display stamp (which undercounts
by up to a refresh and hides a silent-FIFO standing queue).
Validated on .21: core 185 + host 185 tests, pf-presenter 19, clippy
-D warnings across all five touched crates; loss-harness recovery curve
unchanged; C ABI harness round-trips.
Co-Authored-By: Claude Fable 5 <noreply@anthropic.com>
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09849906e9 |
Merge perf/first-frame-latency: driver proto v4 + first-frame/resize latency (P0-P2)
Brings the first-frame-latency branch (P0.1 transition tracing, P1.1/P1.2 Welcome-time display prep, P2 in-place resize; pf-driver-proto v3 -> v4 with IOCTL_UPDATE_MODES) onto current main. The branch predates the W6.2/W7 splits, so git's rename detection carried most of it into the moved crates (pf-capture idd_push, pf-vdisplay manager/pf_vdisplay, pf-win-display, pf-driver-proto, the driver workspace) and the punktfunk1.rs remainder was re-homed by hand: - native/handshake.rs: welcome/start trace marks + the Welcome-time display prep spawn (the prep thread BECOMES the stream thread; hand-off via a SyncSender<SessionContext>). negotiate() gains bringup/quit/stop and returns the PrepHandle. - native.rs: bringup/resize_ms creation + the stop/quit flags hoisted BEFORE the handshake (the close watcher splits: flags pre-handshake, lifecycle events post-handshake where `hello` exists); punch_done stamp; the data plane adopts the prep thread's result or builds inline. - native/stream.rs: SessionContext/SendStats carry the trace; send_loop finishes it on the first video packet; the resize path gains the in-place fast path (try_inplace_resize) with the full rebuild as fallback, restructured so both share the post-rebuild bookkeeping; prepare_display/PreparedDisplay/ PrepHandle; build_pipeline(+retry) thread the stage marks. - session_status/mgmt: ttff_ms + last_resize_ms per session (union with the lifecycle-events fields main added to the same spots). - pf-capture: Capturer gains capture_target_id() + resize_output() defaults. - pf-vdisplay manager: perf's faster activation poll (60x50ms) + the settle floor before the PnP sweep, on main's knobs/no-trait shape. Also: packaging/windows/build-gamepad-drivers.ps1 is ASCII again (an em-dash from the pf-mouse work tripped windows-host.yml's locale-safety gate on main). Co-Authored-By: Claude Opus 4.8 (1M context) <noreply@anthropic.com> |
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b168790e0a |
refactor(host/W6.2): extract the shared frame/format vocabulary into the pf-frame leaf crate
The captured-frame types both capture (producer) and encode (consumer) speak —
PixelFormat, OutputFormat, CursorOverlay, CapturedFrame, FramePayload,
DmabufFrame, drm_fourcc — move into crates/pf-frame, alongside the small pure
helpers that ride the same seam: hdr (HDR static metadata / in-band SEI),
metronome (the metronomic-stall detector), thread_qos (per-thread scheduling
QoS), session_tuning (Windows process tuning), and the Windows DXGI capture
IDENTITY (WinCaptureTarget, D3d11Frame, pack_luid, make_device + the GPU
scheduling-priority hardening it applies) (plan §W6).
This is the crate that breaks the capture<->encode cycle: FramePayload's GPU
variants own their backends from BELOW (Cuda -> pf_zerocopy::DeviceBuffer,
D3d11 -> dxgi::D3d11Frame), so encode can speak the vocabulary without a path to
capture, and vice versa. The Windows DXGI identity moving here lets capture,
encode, and pf-vdisplay share ONE WinCaptureTarget/device factory instead of the
old capture<->encode<->vdisplay reach-in.
The host keeps thin facades: capture.rs re-exports the vocabulary
(crate::capture::{PixelFormat,…} unchanged); capture/windows/dxgi.rs keeps the
win32u GPU-preference hook + HDR/video-engine converters + self-test and
re-exports the identity; native.rs re-exports boost_thread_priority from
pf_frame. crate::hdr/metronome/session_tuning callers rewired to pf_frame::*.
metronome's Metronome::new gained a Default impl (new_without_default fires once
the type is public across the crate boundary).
Verified: Linux clippy -D warnings (pf-frame --all-targets + host
nvenc,vulkan-encode,pyrowave --all-targets) + 9/9 pf-frame tests; Windows clippy
nvenc,amf-qsv --all-targets Finished exit 0.
Co-Authored-By: Claude Opus 4.8 (1M context) <noreply@anthropic.com>
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3495d189e1 |
refactor(host/W6.1): extract the config() global into the pf-host-config leaf crate
Third de-coupling for the host crate carve (plan §W6.1 leaf). HostConfig + the config() OnceLock (config.rs, pure std, zero deps) move to a new pf-host-config leaf so every subsystem crate (pf-encode/pf-capture/pf-vdisplay/pf-gpu) can read process config WITHOUT depending on the orchestrator. 34 crate::config::config() call sites across 19 files repoint to pf_host_config::config(). thread_qos stays in the host for now (it calls session_tuning::on_hot_thread — its own leaf-ification rides the encode carve). Granular-crate decision (supersedes the plan's single pf-media): split capture/encode/ vdisplay into separate crates rather than one broad crate — the capture↔encode cycle is broken by a shared frame-types leaf, and vdisplay→encode (can_open_another_session) is a legal one-way edge since encode never references vdisplay. Verified: Linux (home-worker-5) clippy -p pf-host-config -p punktfunk-host --all-targets -D warnings; Windows (192.168.1.158) clippy --features nvenc,amf-qsv --all-targets green. Co-Authored-By: Claude Opus 4.8 (1M context) <noreply@anthropic.com> |
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68bcfdac3e |
refactor(host/W1): split native.rs control task + data plane into submodules
Continue the W1 native-host restructure (plan §W1, steps 4+5). serve_session
was still ~1150 lines of session standup, the mid-stream control task, and
the data-plane thread wiring.
- native/control.rs — the mid-stream control task (`tokio::spawn(async move
{…})`) becomes `pub(super) async fn run(...)`: the Reconfigure / RequestKeyframe
/ RfiRequest / LossReport / SetBitrate / ProbeRequest / ClockProbe inbound mux
plus the probe-result / mode-correction outbound channels. Call site is now
`tokio::spawn(control::run(...))`.
- native/stream.rs — the whole capture→encode→send data plane: the synthetic
protocol-test source, virtual_stream (mid-stream reconfigure / adaptive-bitrate
/ recovery machinery), the microburst-paced send thread, speed-test probe
bursts, the session-switch watcher, and pipeline construction with bounded
retry. Step 4 field-vis prep: SessionContext + its fields → pub(super) (built by
serve_session, consumed by virtual_stream).
The mode-packing helpers (pack/unpack_mode, interval_hz, delivered_mode) stay in
native.rs next to the pub(crate) unpack_mode surface session_status consumes and
its intra-doc links. native.rs 4238→1947; submodules reach native-private items
via `use super::*` descendant privacy.
Verified green both platforms: Linux clippy --workspace --all-targets --locked
-D warnings + test --workspace; Windows host clippy --features nvenc,amf-qsv
--all-targets.
Co-Authored-By: Claude Opus 4.8 (1M context) <noreply@anthropic.com>
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