The root --service must never load libEGL/libGLESv2: the point of the split is
that it exports the scanout dma-buf and the unprivileged --server converts. Two
paths could still break that, both because the loader accepted a library too
old to export.
drm_prewarm() called grab() when the loaded .so had no drmtap_grab_desc, and
grab() maps and detiles, so the privileged process pulled in the vendor GL stack
at startup, before any consumer had asked for a frame. The per-connection
capture loop then did the same for every frame, through the CPU fallback.
The version guard could not prevent it: it compared the ABI major only, and this
library is still 0.x, so every release it has ever made passed. Add a floor at
0.4.9, where the split entry points landed, and require the three split symbols,
which also rejects a build that reports a new enough version without carrying
them. That is not hypothetical: a pre-release stamped 0.4.15 shipped without the
multi-GPU accessors. Both refusals fall back to PipeWire/portal and say which
file and which symbols, at warn level.
The split symbols are no longer Options, so the type system carries the
guarantee instead of a convention. What is left of the CPU path is only what it
was meant to be: the consumer has no render node of its own, or the seat exports
no transferable dma-buf. Both are facts about the hardware, with no alternative
that keeps the stream, and neither is a property of which file was on the load
path.
Verified against the real library on i915. With 0.4.15 the export path captures
a tiled XR30 scanout and libEGL stays out of /proc/self/maps, while the old
grab() branch maps it, so the finding reproduces. A stub reporting 0.4.8 and a
stub reporting 0.4.15 without the split symbols are both refused, each with its
own diagnostic. The mirrored repr(C) layouts are unchanged across 0.4.9 to
0.4.15, checked field by field against include/drmtap.h at both ends, so the
floor costs no compatibility that was real.
The service binds a stream to (device, crtc_id), which survives a topology change.
Everything on the consumer side addressed it by list index, which does not:
drm_enumerate_all_displays concatenates per-card lists, so plugging or unplugging a
monitor renumbers every display after it. Two consequences, one live and one
remembered.
Live: a running stream kept sending monitor A while the advertised list, and so the
client layout and the injected-input rect, had come to mean monitor B. It only
resolved if the stream happened to fail on its own. The stream now records what it
was bound to and ends itself when its index stops meaning that, which routes the
change through the rebuild the video service already does.
Remembered: the zero-frame failure counts and the prefer-cpu verdicts were keyed by
index too, so after a renumbering one monitor could inherit another's demotion or be
forced onto the CPU convert path for a mismatch that was never its own. Both are now
keyed by device plus connector name. The reasoning was already written down for one
of these, in the comment above the prefer-cpu clear, and applied only there.
That bulk clear is gone with it. It existed to limit the damage of index aliasing;
with identity keys it would instead throw away a correct verdict, which costs a real
convert failure to relearn, on every unrelated hotplug.
Also fixes the drm workflow to skip the two tests the stock CI already skips. Both
need a display server and fail on any headless runner, so the job would have gone
red for a reason that has nothing to do with this feature. Verified by running the
exact command: 88 tests, including the size_of::<Data>() assertion that the old
name filter was hiding.
flutter-build.yml goes back to upstream byte for byte. Three separate changes to
the stock release path disappear with it: the drm variant built inside the release
container, the snapshot and restore of the stock flutter bundle that existed only
to keep the drm relink out of the archlinux package, and the narrowing of the
publish glob to keep the consent-free deb off the public release.
The deb now builds in the drm workflow instead, which also removes the failure
mode the old placement forced: the whole block had to run in a subshell ending in
`|| echo WARN` so a drm-only breakage could not abort the stock publish steps,
which meant every failure in it, from the fetch to meson to packaging, kept the
job green and silently stopped producing the deb. A separate job can just fail.
The bridge generator is a reusable workflow, so this calls the stock one rather
than duplicating the codegen.
The deb is asserted rather than trusted: build.py can exit 0 without producing a
package, so the job checks the file exists and that it carries both the real
libdrmtap object and its soname symlink. It stays an artifact and never a release
deliverable, and it is built on the runner rather than in the old container the
stock debs use, so its glibc floor is higher than a released package.
The instruction was that nothing outside the feature should change while the
feature is off, and the runtime code honors that, but the build plumbing did not.
Start undoing that.
ci.yml goes back to upstream byte for byte. The drm test step it carried now lives
in a new workflow that only fires when a drm path changes, so a PR that does not
touch this backend pays nothing for it.
That new workflow also runs the whole rustdesk-crate test set with the feature on
rather than filtering by the `_drm` test names, because the name filter skipped
the sibling assertion that bounds `size_of::<Data>()`, which the new DmabufDesc
variant grows.
It gains a second job that fetches libdrmtap at the pinned commit, builds the .so
and then asserts the contract the runtime depends on: every symbol the loader
resolves, derived from the loader source so the two cannot drift, plus evidence
that the EGL detile path is really compiled in. libdrmtap degrades to a CPU-only
stub when the egl/glesv2 pkg-config files are absent on a build host, and nothing
downstream noticed. Note the check looks for the dlopen target name and the import
call, not for DT_NEEDED: EGL is loaded lazily on purpose so the privileged process
never links the vendor GL stack, so an ELF-level check reports a false negative on
a correct library.
libs/scrap/Cargo.toml keeps only the added feature: the unrelated blank line before
[dependencies.hwcodec] is restored, and the comment no longer describes DRMTAP_REF,
which no longer exists. The feature is now drm = ["wayland"] because all three drm
modules live inside the wayland arm of common/mod.rs, so scrap/drm alone compiled
nothing; it worked only because the root crate always enables scrap/wayland.