2079411f4fcd0ec3e7dbc52f0a9cba4e8560dc3b
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Commits
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564797a12a |
test(encode): a QSV construct/drop smoke test, and AvFilterGraph goes Linux-only
Two loose ends ahead of running this on real Intel silicon. `zerocopy_qsv_alloc_drop_cycles` covers the one ownership question in the crate that was genuinely ambiguous. `ZeroCopyInner::open` builds a `D3d11Hw` and then DERIVES a QSV device + frames ctx from it, and the tuple it used to return handed those two derived pointers out twice — once as the encoder's args, once as the pair moved into `Self`. Free for raw pointers, two owners for `AvBuffer`. Looping construct/drop is what separates the outcomes: a double-unref aborts in the CRT, a missed one leaks an Intel device per session. Nothing else reaches this code — `zerocopy_enabled` defaults QSV OFF, and the native VPL backend supersedes this whole file unless `PUNKTFUNK_QSV_FFMPEG=1` — so the test calls `open` directly and sidesteps both gates, the same shape as `cuda_hw_alloc_drop_cycles`. `AvFilterGraph` is now `#[cfg(target_os = "linux")]`. The Windows gate had been reporting `struct AvFilterGraph is never constructed` since a960dff8 and I had been filtering it out of my own log greps (searching for "never read", which does not match "never constructed"). It is true: the VAAPI dmabuf path is the only filter-graph user, and the AMF/QSV backends build no graph. Cfg'd out rather than `allow`ed, so it cannot outlive its last caller unnoticed. Verified. Windows .133: `cargo test -p pf-encode --features amf-qsv --no-run` at EXITCODE=0 with the AvFilterGraph warnings gone (107 -> 105), and the test binary lists `ffmpeg_win::tests::zerocopy_qsv_alloc_drop_cycles`. Linux .21: workspace check exit 0 / zero errors, pf-encode 33 passed / 0 failed, pf-client-core 34 passed / 0 failed, and zero dead-code warnings there (AvFilterGraph is live on Linux). NOTE for running it: the test binary needs `C:\Users\Public\ffmpeg\bin` on PATH at RUNTIME. `FFMPEG_DIR` is build-time only, and without the DLLs the harness exits silently with no output at all — which reads exactly like a test that does not exist. |
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eb9c5be20d |
refactor(encode): the VAAPI dmabuf path stops unwinding by hand
`DmabufInner::open` builds four owned objects — a DRM device, a VAAPI device derived from it, a DRM-PRIME frames context, and a filter graph — and every one of its eight failure branches unwound them by hand. The same four-line block (`avfilter_graph_free` + three `av_buffer_unref`s) appeared eight times, once *inside a macro*, plus a ninth copy in `Drop`. Adding a step to that function meant remembering to extend the unwind at exactly the right depth; getting it wrong leaks a device per failed session (the persistent listener accumulates them) or frees one twice. All eight are gone. `AvBuffer` already owned the buffer refs; `AvFilterGraph` now does the same for the graph, so each handle is owned the moment it exists and an early `bail!` releases whatever was built so far. `open` lost ~40 lines of cleanup and gained none. Field order in `DmabufInner` is load-bearing and says so: graph, frames, VAAPI device, DRM device, then `enc` LAST. Fields drop in declaration order, and that sequence reproduces the old hand-written `Drop` exactly — including that it ran ahead of every field, so all four were released before ffmpeg-next dropped the encoder. Everything here holds its own reference, so refcounting makes any order sound; the ordering is pinned so a future reorder cannot quietly change what ships. One subtlety preserved deliberately: the buffersrc parameters take `drm_frames` BORROWED, not ref'd (`av_buffersrc_parameters_set` takes its own ref). That is now `drm_frames.as_ptr()` — same borrow, same single owned ref, no new leak. Verified on .21 (CachyOS, RTX 5070 Ti, FFmpeg 62): `cargo check -p pf-encode --all-targets` clean at exit 0, `cargo test -p pf-encode` 33 passed / 0 failed, and `cuda_hw_alloc_drop_cycles` still passes against real CUDA. vaapi.rs now contains zero `av_buffer_unref` and zero `avfilter_graph_free` calls, down from 40 and 8. The dmabuf path itself still needs AMD/Intel silicon to exercise end to end. |
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7adc1db672 |
refactor(encode): AVBufferRef ownership moves into an RAII handle
`CudaHw::new` and `VaapiHw::new` are the same shape — alloc a hwdevice, deref it to fill fields, init, alloc a frames ctx, deref, init — and both unwound by hand: `av_buffer_unref` on every failure branch (three in CUDA, two in VAAPI) plus a hand-written `Drop` repeating the pair. That shape has two failure modes and the compiler can see neither: add a branch and forget the cleanup (leak), or let two cleanup paths run (double-unref, an abort inside glibc). `libav::AvBuffer` owns the ref instead. It null-checks on the way in — the check each caller open-coded — and unrefs exactly once on drop, so an early `?` releases whatever was built so far and the failure branches carry no cleanup at all. Both hand-written `Drop` impls are gone, and `linux/mod.rs` goes from seven `av_buffer_unref` calls to zero. The one subtlety, called out at both structs: these two fields must stay declared frames-BEFORE-device. Fields drop in declaration order, and the code being replaced deliberately unref'd frames first (a frames ctx holds its own reference on its device). Refcounting makes either order sound, but a field reorder should not silently change what ships, so the ordering is load-bearing and commented as such. Also adds `cuda_hw_alloc_drop_cycles` — the RAII path had NO test coverage: the NVENC smoke tests take the CPU path and never construct a `CudaHw`, and the VAAPI twin's tests need AMD/Intel silicon. Looping construct/drop is what catches the double-unref (abort) and the leak (allocator growth) this refactor is about. Verified on Nobara (RTX 5070 Ti): `cargo check -p pf-encode --all-targets` clean at exit 0, `cargo test -p pf-encode` 33 passed / 0 failed, and `cuda_hw_alloc_drop_cycles` passes against a real CUDA device — eight construct/drop cycles, no abort. `VaapiHw` is compile-verified only; it is the identical shape but no AMD/Intel box was reachable to run its two ignored tests. |
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9a36ea2132 |
refactor(host/W6.2): extract the video encode backends into the pf-encode crate
encode.rs + encode/* (NVENC, VAAPI, native AMF, AMF/QSV ffmpeg, direct-SDK NVENC/CUDA, raw Vulkan-Video, PyroWave, openh264) move into crates/pf-encode behind one Encoder trait + open_video selector (plan §W6). The crate speaks the shared frame vocabulary (pf-frame: CapturedFrame/PixelFormat + the DXGI identity D3d11Frame/make_device) and pf-zerocopy (CUDA context/buffers), and NEVER pf-capture — the capture→encode edge is one-way (ZeroCopyPolicy, prior commit). Dep moves: the heavy encoder deps (ffmpeg-next, the NVENC SDK, openh264, pyrowave-sys) move from the host to pf-encode; the host's nvenc/amf-qsv/vulkan-encode/pyrowave features now FORWARD to pf-encode/*. The host keeps a mod-encode shim (pub use pf_encode) so every crate::encode::* path (negotiator + GameStream/native/mgmt planes) is unchanged. resolve_render_adapter_luid moves from the host's windows/win_adapter.rs into pf-gpu (both pf-encode and pf-capture need it as a peer of GPU selection); its 5 call sites (encode amf/nvenc, capture idd_push/synthetic_nv12, vdisplay manager) rewire to pf_gpu::resolve_render_adapter_luid and win_adapter.rs is deleted. pf-frame's make_device gains a # Safety section (public-unsafe-fn lint, latent since the pf-frame carve — a full-workspace -D warnings clippy catches it). Verified: Linux clippy -D warnings (pf-encode + host nvenc,vulkan-encode,pyrowave --all-targets) + 13/13 pf-encode + 299/299 host tests; Windows clippy -D warnings (pf-encode nvenc,amf-qsv --all-targets + host nvenc,amf-qsv --all-targets) Finished exit 0. Co-Authored-By: Claude Opus 4.8 (1M context) <noreply@anthropic.com> |