Wave-2 PW1, second half. The companion commit wires `PYROWAVE_QUEUE_PRIORITY` into the Linux PyroWave device; this is what makes it work on a packaged host. Measured on .21 (RTX 5070 Ti, NVIDIA 610.43.02), same binary in both arms: as packaged (no capability) every class refused, REALTIME *and* HIGH -> default priority same binary, cap_sys_nice+ep granted REALTIME on the FIRST attempt, no downgrade RADV behaves the same way. So this is not the RADV-specific "expect one downgrade to HIGH" the plan predicted — without the capability there is no elevated priority at all, on any vendor, and the knob is decoration. Worth being precise about what is being granted, because it is a network-facing daemon. CAP_SYS_NICE permits raising scheduling priority (nice, ioprio, affinity, RT class) and nothing else: no filesystem access, no network privilege, no user switching, and it is NOT setuid. The repo already ships exactly this capability on its gamescope binary for the same reason. Two side effects that will otherwise confuse someone debugging: a capability-carrying binary is AT_SECURE, so the loader ignores LD_LIBRARY_PATH/LD_PRELOAD for it (note this box was propped up by exactly such a shim during the ffmpeg-9 soname break — that workaround would now be silently ignored), and core dumps are suppressed by default. Per packaging path, because none of them are the same: - Arch: a `_grant_sched_capability` in the scriptlet, called from post_install AND post_upgrade — a replaced binary is a new inode, so the capability does not survive an upgrade by itself. - Debian: the same setcap in the postinst `configure` branch. - RPM: `%caps(cap_sys_nice=ep)` on the binary in `%files`, which is the rpm-native form — rpm then applies it on install, restores it on upgrade, and verifies it. A `%post setcap` does none of those. - NixOS: `security.wrappers`, because a store path is read-only and shared and cannot be setcap'd. The unit's ExecStart moves to `config.security.wrapperDir` — without that the wrapper exists and the service still runs the uncapped store path, which is the whole failure this fixes. - Steam Deck: setcap in the installer's sudo block. That box needs it most (one small Van Gogh GPU shared between the game and the encode). The binary lives under $HOME, so unlike the /etc drop-ins it survives a SteamOS A/B update on its own and needs no atomic-keep entry — but it does need re-applying after each rebuild, which re-running the installer does. - Bazzite sysext: at IMAGE BUILD time, before mksquashfs. It cannot be done in the merge hook (a merged sysext's /usr is read-only squashfs) and it cannot ride in from the RPM either — rpm keeps capabilities in its own header and `rpm2cpio | cpio` carries only the payload, so the staged file arrives with none. mksquashfs does record security.capability (only security.selinux is excluded), so a setcap on the staging tree is what lands in the image. Needs root/CAP_SETFCAP; a plain-user CI build warns and ships without it rather than failing a release over a performance lever. Every one of them is best-effort and cannot fail an install: a box without libcap, or a filesystem that cannot store capabilities, simply runs at default priority exactly as it does today. Documented in the same PR — the configuration row now says the packages grant it, and running-as-a-service gets a section explaining what it is, how to check it (`getcap`), and how to remove it (`setcap -r`, or just `PYROWAVE_QUEUE_PRIORITY=off`), including the two debugging side effects. Verified: the Arch scriptlet grants the capability from a fake package root exactly as pacman would invoke it, and the resulting binary reaches REALTIME end to end on the RTX 5070 Ti; the RPM spec's %caps line parses under rpmspec in a Fedora 41 container; the NixOS module parses under nix-instantiate; all five edited shell scripts pass `bash -n`. No Rust file changed in this commit, so the CI-parity Rust gates from the companion commit still stand.
punktfunk-host — RPM (Bazzite / Fedora Atomic) via the Gitea registry
punktfunk-host is published as an RPM to Gitea's RPM package registry in the public unom
org (stable groups bazzite/fedora-44, canary groups bazzite-canary/fedora-44-canary), so
Bazzite / Fedora Atomic hosts layer and update it with rpm-ostree. CI (.gitea/workflows/rpm.yml)
builds and publishes on every push to main (a rolling <next-minor>-0.ciN.g<sha> build — the base
is derived from the latest stable tag by scripts/ci/pf-version.sh — to the *-canary
groups) and on vX.Y.Z tags (a clean X.Y.Z-1 to the base groups, plus attached to the unified
Gitea Release) — separate repos, so a stable box never jumps to a canary build (see
Release Channels). The baseurl below subscribes to the
bazzite stable group; use bazzite-canary for the latest main builds. The RPM is built in the
Fedora 43 image (ci/fedora-rpm.Dockerfile) so its auto-generated library Requires
(libavcodec.so.NN, …) match Bazzite's sonames; the NVIDIA driver lib (libcuda.so.1) is
excluded — NVENC/EGL come from whatever NVIDIA stack the host runs (a weak Recommends).
This is the same package as the COPR / bootc
paths — same spec (punktfunk.spec) — just self-hosted in Gitea instead of COPR, mirroring the
Debian/apt setup.
Install on a Bazzite host (one-time)
# Add the repo. Packages are GPG-signed (gpgcheck=1, the packages@unom.io key) AND the repo
# metadata is Gitea-signed (repo_gpgcheck=1); gpgkey lists both so dnf/rpm-ostree imports each.
sudo tee /etc/yum.repos.d/punktfunk.repo >/dev/null <<'REPO'
[gitea-unom-bazzite]
name=punktfunk (unom, Bazzite)
baseurl=https://git.unom.io/api/packages/unom/rpm/bazzite
enabled=1
gpgcheck=1
repo_gpgcheck=1
gpgkey=https://git.unom.io/api/packages/unom/rpm/repository.key
https://git.unom.io/api/packages/unom/generic/punktfunk-keys/1/RPM-GPG-KEY-punktfunk
REPO
# Layer the host + the web console (pairing/status), then reboot into the new deployment.
# (punktfunk Recommends punktfunk-web; list it explicitly so it's pulled regardless of weak-dep
# settings. The registry carries punktfunk-web because CI builds the spec --with web; COPR can't.)
rpm-ostree install punktfunk punktfunk-web
systemctl reboot
If
rpm-ostreecan't complete the metadata GPG check non-interactively, setrepo_gpgcheck=0(TLS-only trust to the self-hosted registry).
Per-package signing (gpgcheck=1, active)
CI GPG-signs every RPM: packaging/rpm/sign-rpms.sh (run from rpm.yml between build and publish)
signs with the dedicated EdDSA key packages@unom.io (AF245C506F4E4763) and self-verifies
with rpmkeys --checksig before publishing, so an unsigned/bad build never reaches the registry.
The public key is served from the registry (the gpgkey= URL above) and committed at
packaging/rpm/RPM-GPG-KEY-punktfunk. (This is a GPG/OpenPGP key — a step-ca/X.509 cert can't
sign RPMs; step-ca is only for registry/console TLS.)
RPM_GPG_PRIVATE_KEYis an org-level secret onunom, not a repo secret — it will not show up under this repository's Actions secrets. Verify it end to end instead of by its absence there:curl -O <repo-url>/package/punktfunk-web/<ver>/x86_64/…rpm && rpm -qp --qf '%{RSAHEADER:pgpsig}\n'(orrpmkeys --checksig, which reportsNOKEYuntil you import the public key —NOKEYstill means signed, just by a key that box doesn't have yet).
On a v* tag build, a missing key fails the build: sign-rpms.sh will not publish unsigned
RPMs into a repo whose own instructions say gpgcheck=1, because every user's dnf upgrade would
then break on them. Non-release builds still fall through unsigned so forks and local builds work.
How it was set up (and how to rotate the key):
# 1. Generate a DEDICATED, passphrase-less signing key (separate from the Gitea metadata key).
gpg --batch --gen-key <<EOF
%no-protection
Key-Type: eddsa
Key-Curve: ed25519
Name-Real: punktfunk packages
Name-Email: packages@unom.io
Expire-Date: 0
%commit
EOF
gpg --armor --export-secret-keys packages@unom.io # -> the RPM_GPG_PRIVATE_KEY CI secret
gpg --armor --export packages@unom.io > packaging/rpm/RPM-GPG-KEY-punktfunk # public half
# 2. Add the armored PRIVATE key as the RPM_GPG_PRIVATE_KEY Gitea Actions secret, at the ORG level
# (git.unom.io/org/unom/settings/actions/secrets) so every repo's workflows inherit it. Commit
# the public half and publish it to the registry so the gpgkey= URL resolves:
curl --user "<user>:<write:package-PAT>" --upload-file packaging/rpm/RPM-GPG-KEY-punktfunk \
https://git.unom.io/api/packages/unom/generic/punktfunk-keys/1/RPM-GPG-KEY-punktfunk
Rotating the key means a new generic-registry version (bump punktfunk-keys/1 → /2 and the
gpgkey= URL), since the registry rejects re-uploading an existing file.
This key also signs the Bazzite sysext feed, and a third copy of its public half is baked into
packaging/bazzite/punktfunk-sysext.sh (FEED_KEY=) — that script is bootstrapped by curl on
machines that have nothing installed yet, so it can't fetch the key from the thing it's
authenticating. A rotation must update all three: the CI secret, this directory's
RPM-GPG-KEY-punktfunk (+ its registry upload), and FEED_KEY. publish-sysext-feed.sh compares
its signing key's fingerprint against FEED_KEY and refuses to sign on a mismatch, so forgetting
the third one fails the publish instead of stranding every Bazzite box in front of a feed it
can't verify.
After reboot, as the desktop user:
ujust add-user-to-input-group # virtual gamepads need /dev/uinput (re-login).
# Bazzite is atomic — use ujust, NOT `usermod -aG input`.
mkdir -p ~/.config/punktfunk
cp /usr/share/punktfunk/host.env.bazzite ~/.config/punktfunk/host.env # gamescope defaults
systemctl --user enable --now punktfunk-host
# Web console — enable it and read the auto-generated login password (then open https://<host-ip>:47992):
systemctl --user enable --now punktfunk-web
journalctl --user -u punktfunk-web-init | sed -n 's/.*password generated: //p'
(See ../bazzite/README.md for the full appliance walkthrough —
udev/group, host.env, the Steam session unit, firewall, verify.)
Updates
rpm-ostree upgrade # pulls the newest punktfunk with the system update
systemctl reboot # rpm-ostree changes apply on reboot
Layered packages are re-resolved against their repos on every rpm-ostree upgrade, so the box
tracks new builds automatically (Bazzite's auto-update timer does this for you). To pin or stop
tracking: rpm-ostree override / rpm-ostree uninstall punktfunk.
Build an RPM locally
PF_VERSION=0.0.1 bash packaging/rpm/build-rpm.sh # host + client
PF_VERSION=0.0.1 PF_WITH_WEB=1 bash packaging/rpm/build-rpm.sh # + punktfunk-web (needs bun on PATH)
# -> dist/punktfunk-0.0.1-1.fcNN.x86_64.rpm (+ punktfunk-web-0.0.1-1.fcNN.x86_64.rpm with PF_WITH_WEB=1;
# the web subpackage vendors a bun binary, so it's arch-specific, not noarch)
Run it inside the Fedora 43 builder image so the deps resolve and match Bazzite:
docker build -f ci/fedora-rpm.Dockerfile -t punktfunk-fedora-rpm ci
docker run --rm -v "$PWD:/src" -w /src punktfunk-fedora-rpm \
bash -lc 'git config --global --add safe.directory /src && PF_VERSION=0.0.1 bash packaging/rpm/build-rpm.sh'
A plain rpmbuild/COPR build with no pf_version/pf_release defines produces 0.3.0-1 (the
spec defaults).
aarch64 — the client RPM
The client builds for aarch64; the host does not (its encode stack is NVENC/QSV/AMF, all
x86). PF_WITHOUT_HOST=1 drops the host binary, the tray, the headless-session data, the
firewalld services and the main package's %files, leaving exactly one RPM: punktfunk-client.
Omitting the main %files is what keeps rpm from emitting an empty punktfunk next to it.
This is not a cross-compile — %build runs cargo for the host architecture, so run it on an
arm64 machine (or an emulated arm64 container, which is very slow):
docker build --platform linux/arm64 -f ci/fedora-rpm.Dockerfile -t punktfunk-fedora-rpm-arm64 ci
docker run --rm --platform linux/arm64 -v "$PWD:/src" -w /src punktfunk-fedora-rpm-arm64 \
bash -lc 'git config --global --add safe.directory /src && \
PF_VERSION=0.0.1 PF_WITHOUT_HOST=1 bash packaging/rpm/build-rpm.sh'
# -> dist/punktfunk-client-0.0.1-1.fcNN.aarch64.rpm
PF_WITHOUT_HOST=1 works on x86_64 too, if you only want the client RPM. The flag is orthogonal
to the architecture; it is just that aarch64 has no other option.