Files
punktfunk/packaging/nix
enricobuehler 5c05246098 feat: M10 — FFmpeg is gone from the client
cargo tree -p punktfunk-client-session finds no ffmpeg. The host still does,
which is the whole point: pf-encode keeps libavcodec unconditionally and no
host workflow, packaging script or licence file was touched.

Deleted: crates/pf-ffvk, video_vulkan.rs, video_vaapi.rs, video_libav.rs, the
libavcodec half of video_d3d11.rs, the av_log machinery, ffmpeg::codec::Id as
the decoder's vocabulary (the quic CODEC_* wire constants now serve, which is
why the evidence table was keyed on them), DecodedImage::VkFrame and ::Dmabuf,
the presenter's AVVkFrame lane, and the ffmpeg-fallback feature with
everything behind it. DrmFrameGuard collapses from an enum to a newtype, which
removes an unsafe impl Send. Roughly 25,000 lines.

Then the CI, packaging, licensing and docs work the plan's §6 lists: the
Windows workflows lose FFMPEG_DIR, PF_FFVK_VULKAN_INCLUDE and their PATH
prepend; the MSIX loses its DLL wildcard; the client .deb stops emitting libav
sonames on its own because depends come from dpkg-shlibdeps; arch, flatpak and
nix drop the dependency; and the README's "FFmpeg 7 or 8" contract narrows to
the host.

Three defects reached users' machines in the first cut, and none was in the
deletion itself.

All three desktop Settings UIs offer vulkan, vaapi and d3d11va as stored
decoder values, so those strings sit in shipped settings files today. Refusing
them by name — which is the correct rule for a stale pin — would have bricked
every upgraded client whose owner ever touched that dropdown. They now migrate
onto the native rung for the same hardware family, at decoder construction AND
at each dialog's lookup, because a legacy value that matches no preset
displays as "Automatic" and silently rewrites the user's preference on the
next save.

M9's evidence filter was deleted on the argument that with no libavcodec twin
below, barring an unproven rung removes hardware decode rather than moving
down one rung. That is true on Windows and false on Linux for Intel and every
unknown vendor id, where prefer_vulkan_first is false and the order is
native-vaapi → native-vk: a rung that has decoded nothing anywhere sitting
above one that is 250/250 on three drivers. Every Intel Linux desktop would
have moved from libavcodec VAAPI, shipping for years, onto pf-vaadec by
default — and a rung that constructs and then produces wrong pixels leaves
only by the error-streak demotion, which this codebase already documents as
not tripping on the B580's strobing. The filter is restored as a narrow, pure,
testable rule: an unproven rung yields to a proven one, and to nothing else.
Windows deliberately passes no rung below, because that vendor family is the
one with a measured wrong-pixel report against Vulkan decode, and trading no
evidence for evidence of corruption is the wrong direction.

And the notices still said FFmpeg was bundled. The root file is what both
desktop clients include_str! and what the MSIX ships, three lines under the
new card saying no FFmpeg is bundled; Apple's Acknowledgements said it too, on
iOS, tvOS and macOS. The generator now emits four per-client files scoped by
transitive closure — 0 FFmpeg mentions in each, verified — while the root file
keeps it for the host. That also ends the standing false attribution of
ffmpeg-next, GTK4, windows-rs and the NVENC SDK to an iPhone.

Windows has no reachable box, so it was compiled instead: a cross clippy at
-D warnings on x86_64 and aarch64-pc-windows-msvc with the C toolchain stubbed
so build scripts run without linking. That gate immediately caught an
include_str! path one directory too deep, which nothing else could have.

Gates: container clippy -D warnings, 160 tests, workspace check, both Windows
targets clean, client ffmpeg count 0 and host 2. The four decode crates are
untouched, so the hardware rungs' 250/250 stands.

⚠ Owed and unrun: no GPU has executed any of this milestone. M8's on-glass
software check, M7's D3D11 and VAAPI AV1 hardware legs, and M9's field bake
all still want hardware, and the bake window and criteria remain the user's.
2026-08-07 08:58:47 +02:00
..

punktfunk on NixOS / Nix

First-class Nix support via the repo's flake.nix: reproducible builds of the streaming host and the native Linux client, a NixOS module that wires up everything the RPM/deb do (systemd user service, udev rules, kernel modules, sysctl tuning, firewall, input group), and a dev shell with the pinned toolchain and every system library.

Platform: x86_64-linux only (the host encodes with desktop NVENC; matches the RPM's ExclusiveArch: x86_64). NixOS 24.11 or newer for the hardware.graphics option.


What the flake provides

Output Contents
packages.x86_64-linux.punktfunk-host punktfunk-host + punktfunk-tray (built with nvenc + vulkan-encode, like CI)
packages.x86_64-linux.punktfunk-client punktfunk-client (GTK4 shell) + punktfunk-session (Vulkan streamer, without the Skia OSD — see caveats)
packages.x86_64-linux.punktfunk-web the management web console (bun-built Nitro SSR bundle; SPAKE2 pairing + host status)
packages.x86_64-linux.punktfunk-scripting the plugin/script runner (bun-bundled Effect SDK; supervises host automation)
packages.x86_64-linux.default = punktfunk-host
nixosModules.default services.punktfunk.host / .client / .web / .scripting
devShells.x86_64-linux.default pinned Rust (from rust-toolchain.toml) + all build deps
apps / checks / formatter nix run, nix flake check, nix fmt

One binary per GPU vendor: NVENC/CUDA entry points are dlopen'd at runtime, so the host runs on NVIDIA (zero-copy dmabuf → CUDA → NVENC), AMD/Intel (raw Vulkan-Video HEVC / VAAPI), or software.


Quick start (no NixOS required)

# Build
nix build git+https://git.unom.io/unom/punktfunk#punktfunk-host
nix build git+https://git.unom.io/unom/punktfunk#punktfunk-client

# Run
nix run git+https://git.unom.io/unom/punktfunk#punktfunk-host -- serve --gamestream
nix run git+https://git.unom.io/unom/punktfunk#punktfunk-client

GPU drivers are resolved at runtime from /run/opengl-driver/lib. On non-NixOS distros use nixGL so that path is populated (nixGL nix run …); on NixOS the module (below) sets hardware.graphics.enable = true for you.


NixOS module

Add the flake and enable the host and/or client:

{
  inputs.punktfunk.url = "git+https://git.unom.io/unom/punktfunk";
  # (optional) share your nixpkgs: inputs.punktfunk.inputs.nixpkgs.follows = "nixpkgs";

  outputs = { self, nixpkgs, punktfunk, ... }: {
    nixosConfigurations.myhost = nixpkgs.lib.nixosSystem {
      system = "x86_64-linux";
      modules = [
        punktfunk.nixosModules.default
        ({ ... }: {
          services.punktfunk.host = {
            enable = true;
            users = [ "alice" ];        # → added to the `input` group for virtual gamepads
            openFirewall = true;        # native + GameStream ports
            settings = {
              PUNKTFUNK_VIDEO_SOURCE = "virtual";
              RUST_LOG = "info";
              # PUNKTFUNK_444 = true;   # booleans render as 1/0
            };
          };

          # …and/or the client on the same or another box:
          services.punktfunk.client = {
            enable = true;
            openFirewall = true;        # UDP 5353 for mDNS discovery
          };
        })
      ];
    };
  };
}

Then, in your graphical session:

systemctl --user enable --now punktfunk-host

Options

services.punktfunk.host:

Option Default Meaning
enable false Install the host + wire udev/sysctl/kernel-modules/firewall and the user service.
gamestream true serve --gamestream (Moonlight-compatible). false = native-only, more secure.
autoStart false Add the user service to default.target (appliance mode — pair with lingering).
users [ ] Users added to the input group (virtual gamepads).
settings { } host.env key/values (see ${package}/share/punktfunk-host/host.env.example).
environmentFile null Extra EnvironmentFile for secrets (e.g. PUNKTFUNK_MGMT_TOKEN); loaded optionally.
openFirewall false Open the inbound ports (see below).
package flake's Override the package.

services.punktfunk.client: enable, openFirewall (UDP 5353), package.

services.punktfunk.web (the management console — on by default whenever the host is enabled, mirroring the RPM's Recommends: punktfunk-web):

Option Default Meaning
enable host.enable Run the console as a systemd --user service on TCP 47992 (HTTPS). Set false for a console-less host.
openFirewall host.openFirewall Open TCP 47992 so other devices on the LAN can reach it.
autoStart host.autoStart Add the console user service to default.target (appliance mode).
package flake's Override the package.

The console is auto-wired to the host on the same box: it reads the host's per-user ~/.config/punktfunk/{mgmt-token,cert.pem,key.pem} (written by serve), serves HTTPS with the host's own identity cert, and proxies the loopback mgmt API with the bearer token injected server-side (never sent to the browser). A login password is generated on first start — read it with journalctl --user -u punktfunk-web-init (or ~/.config/punktfunk/web-password). Then open https://<host-ip>:47992 and trust the self-signed host cert once. Enable it (with the host) via systemctl --user enable --now punktfunk-web.

services.punktfunk.scripting (the plugin/script runner — installed with the host, but opt-in to run):

Option Default Meaning
enable host.enable Install the runner + define its systemd --user unit punktfunk-scripting.
autoStart false Add the unit to default.target. Off even on an auto-start host — running operator scripts/plugins is a deliberate opt-in.
package flake's Override the package.

The runner discovers loose scripts under ~/.config/punktfunk/scripts and installed punktfunk-plugin-* packages under ~/.config/punktfunk/plugins, and supervises each as an Effect fiber (SIGTERM shuts the tree down structurally so plugin finalizers run). A plugin auto-wires to the host's mgmt token + identity cert. It's inert until you add automation, so the unit ships un-started; turn it on with systemctl --user enable --now punktfunk-scripting.

What the host module configures for you

Everything the RPM's %install + %post do, declaratively:

  • systemd --user service punktfunk-hostserve [--gamestream], EnvironmentFile from settings (+ optional secret file), Restart=on-failure.
  • udev rules (60-punktfunk.rules): /dev/uinput + /dev/uhid group access and the vhci sysfs perms for the virtual Steam Deck.
  • kernel modules: uinput, uhid, vhci-hcd (usbip transport so Steam Input adopts the virtual Deck).
  • sysctl: net.core.{r,w}mem_max = 32 MB (high-bitrate UDP headroom; mkDefault).
  • input group membership for users.
  • hardware.graphics.enable = true (mkDefault) so /run/opengl-driver/lib has the driver libs the binaries dlopen.
  • firewall (when openFirewall): native UDP 9777/5353 + TCP 47990; with gamestream also TCP 47984/47989/48010 + UDP 47998/47999/48000. The media data plane is an ephemeral, hole-punched UDP port — nothing fixed to open.
  • tray autostart entry (--autostart; self-gates to users who actually run a host).

GPU drivers (out of scope of the module — set these yourself)

  • NVIDIA: hardware.nvidia + hardware.graphics.enable = true. NVENC/CUDA come from the driver at runtime (nothing pinned in the closure).
  • AMD/Intel: hardware.graphics.enable = true with extraPackages = [ vaapiVdpau … ] / intel-media-driver for VAAPI encode; the host's raw Vulkan-Video HEVC path needs only Mesa.

Headless / appliance

Set autoStart = true, enable lingering, and — for a dedicated single-session appliance — pin a backend in settings (pinning PUNKTFUNK_COMPOSITOR disables live-session auto-detection, so leave it out on any box that switches between a desktop and Game Mode):

services.punktfunk.host = {
  enable = true;
  autoStart = true;
  users = [ "streamer" ];
  settings = { PUNKTFUNK_COMPOSITOR = "gamescope"; };  # appliance-only; omit to auto-detect
};
users.users.streamer.linger = true;
# For the gamescope/KWin backends extend the service PATH, e.g.:
# systemd.user.services.punktfunk-host.path = [ pkgs.gamescope ];

The ${package}/share/punktfunk-host/headless/ helpers (KDE/Sway session scripts, example host.env files, the OpenAPI doc) are installed for reference.


Development

nix develop        # pinned toolchain (rust-toolchain.toml) + all system libs
cargo build --release -p punktfunk-host -p punktfunk-client-linux -p punktfunk-client-session
# The tray gets its OWN invocation — co-building it with the host unifies the host's
# ashpd -> zbus/tokio onto the tray's zbus (which runs ksni's async-io executor, no tokio runtime),
# and the resulting binary panics at launch: "there is no reactor running, must be called from the
# context of a Tokio 1.x runtime". Same split the .deb / RPM / Arch packaging does.
cargo build --release -p punktfunk-tray

The shell exports an LD_LIBRARY_PATH that includes /run/opengl-driver/lib so cargo run finds the GPU driver. nix fmt formats the .nix files.


Notes & caveats

  • Build tool: crane. The lockfile carries windows 0.62.2 from both crates.io and a pinned microsoft/windows-rs git rev (the Windows client), which rustPlatform.importCargoLock can't vendor (colliding name-version); crane vendors per-source and fetches the git rev via builtins.fetchGit (no output hash to maintain). Those crates are cfg(windows)-gated — vendored, never compiled on Linux.

  • First build compiles from scratch (no split dep cache — pyrowave-sys builds a CMake tree in its build.rs that a crane "dummy" source would drop) and has no public binary cache, so expect a long initial build. nix develop gives incremental rebuilds.

  • The status tray is built in its own derivation, on purpose. punktfunk-tray uses ksni's async-io zbus executor with no tokio runtime (by design — see crates/punktfunk-tray/Cargo.toml). Cargo unifies features across everything in one cargo build, so co-building the tray with the host would pull the host's ashpd → zbus/tokio onto the tray's shared zbus, and the tray then panics at startup (there is no reactor running, must be called from the context of a Tokio 1.x runtime). Building it as a separate -p punktfunk-tray invocation keeps its zbus on async-io; the host package copies the resulting binary into its $out. (The rpm/arch builds split it the same way. The .deb did not, despite its sibling comments claiming otherwise: deb.yml co-built -p punktfunk-host -p punktfunk-tray, and build-deb.sh's own standalone build was skipped because the poisoned artifact already existed — so this shipped as a real crash-at-launch on Debian/Ubuntu, not a latent one. Fixed 2026-07-27: the workflow no longer co-builds it and build-deb.sh now rebuilds it unconditionally.)

  • The bun packages (punktfunk-web, punktfunk-scripting) use bun2nix. Their node_modules is fetched one fetchurl per package, straight from the integrity hashes already in the lockfile, via a generated-and-committed bun.nix (web/bun.nix, sdk/bun.nix). There is no aggregate deps hash to bump — the previous design put bun install in a fixed-output derivation whose single outputHash silently went stale on every lockfile change and broke the build. bun.nix regenerates itself: bun2nix is a devDependency of both packages and runs on every bun install (web's postinstall; the SDK's prepare, since sdk/ is the published @punktfunk/host package and a postinstall would then fire on consumers' installs). Regenerate by hand with cd web && bunx bun2nix -o bun.nix if a lockfile is ever edited directly. The @unom scope needs no special handling: web/bun.lock records those tarballs' full https://git.unom.io/api/packages/unom/npm/… URLs and the registry is read-public (the same anonymous pull CI's rpm/deb builds do).

    bun.nix has no schema stability across bun2nix versions. The flake input is pinned (github:nix-community/bun2nix?ref=2.1.2) and the npm devDependency is pinned to the same exact version in web/package.json + sdk/package.json. Move both together, then rerun bun install in web/ and sdk/ to regenerate.

    Everything past the deps fetch is offline (the console's codegen + vite build; the runner's bun build --target=bun bundle). Both launchers exec pkgs.bun from the store — unlike the deb/rpm, which vendor a bun binary because apt/dnf have none.

  • Commit flake.lock: it pins the input revisions (nixpkgs / crane / rust-overlay / bun2nix). It is generated on first eval and checked in.

  • Session Skia OSD is off under Nix. punktfunk-session's default ui feature draws its on-screen stats/console overlay with skia-safe, whose build downloads a prebuilt Skia from the rust-skia releases — which Nix's network-less build sandbox forbids, and a from-source Skia build pulls the whole gn/ninja/python toolchain plus network-fetched third-party. The feature is explicitly droppable ("same streaming, stats on stdout only"), so the Nix build compiles the session with --no-default-features --features pyrowave. Everything streams; only the session binary's optional on-glass stats overlay is absent, and the GTK shell (punktfunk-client) is skia-free and fully featured. Re-adding it means teaching skia-bindings to consume a prebuilt Skia offline (a fixed-output derivation of the rust-skia tarball) or a vendored from-source Skia build — a tracked follow-up.

Verified

Both packages build, install, and run on real Nix hardware (NixOS-equivalent: CachyOS + Nix, RTX 5070 Ti, driver 610). punktfunk-host --version and punktfunk-session run; the driver RUNPATH (/run/opengl-driver/lib) and the GTK GApps wrapper (GSettings schemas + pixbuf loaders) are present. Fixes discovered during that bring-up: CMAKE_POLICY_VERSION_MINIMUM=3.5 (CMake ≥ 4), system libopus (audiopus_sys), and the session Skia note above.