Files
punktfunk/crates/punktfunk-core
enricobuehler 77797a9e20 feat(client/pads): stop streaming gyro into a session that cannot receive it
G8 of the gyro program, SDL-client half.

The `Welcome` has always carried the backend the host actually RESOLVED, which
is not necessarily the one the client asked for — Auto lands on Xbox 360 for
anything not Sony/Valve/Xbox, and a Switch Pro on a Windows host folds to X360
too. No client read the field. So a player with an 8BitDo, or a Switch Pro on
Windows, got a controller whose gyro did nothing, with nothing anywhere saying
why: the client shipped ~250 Hz of Motion datagrams and the host parsed and
discarded every one.

`GamepadPref::has_motion()` answers whether a backend has a motion plane at all.
The SDL client checks it on the first gyro sample: it logs one line naming the
resolved backend and pointing at the fix (pick a DualSense-class controller
type), then stops sending. Once per slot, not per sample — this path runs at the
pad's sensor rate.

`Auto` deliberately answers true. It means "unknown" — an old host that omitted
the echo, which may well have resolved a DualSense — and suppressing motion on
unknown would silently break working gyro, a worse failure than sending
datagrams nobody reads. The predicate is an exhaustive match so a new backend
has to state its answer rather than inherit one, and a table test pins both
halves: a false negative kills working motion, a false positive keeps the void
open, and both are silent.

Owed: the plan wants this surfaced as a one-line UI hint, not just a log line.
Apple already stores `resolvedGamepad` and Android needs the plumb; neither is
done here, and both want their own gate.

Gate (Linux CI image): fmt, build, clippy --all-targets -D warnings, and the
test suites — green, with the new capability test observed running.
2026-08-07 13:52:27 +02:00
..

punktfunk-core

The shared protocol core — the one place where punktfunk's transport, forward error correction, and crypto live. It's linked into the host and every native client, so there's exactly one implementation of the wire format everywhere.

Written in Rust with no async on the per-frame path (native threads only). It exposes both a normal Rust API and a stable, versioned C ABI, so the Swift and Kotlin clients — and any C embedder — link the same code as the Rust ones.

What's in here

  • Transport & session (session.rs, transport/, packet.rs) — the punktfunk/1 data plane over raw UDP: packetization, reassembly (with attacker-bounded limits), pacing, and socket tuning.
  • FEC (fec/) — the wall-breaker. Two codes:
    • GF(2⁸) classic ReedSolomon with the Cauchy generator matrix — byte-identical to the nanors library Moonlight uses, so our parity is decodable by a stock Moonlight client.
    • GF(2¹⁶) Leopard-RS (SIMD, O(n log n)) — up to 65535 shards/block, which removes the ~1 Gbps FEC ceiling. punktfunk/1 negotiates this one.
  • Crypto (crypto.rs) — AES-128-GCM session encryption with per-direction nonce salts and sequence-as-AAD; SPAKE2 PIN pairing lives behind the quic feature.
  • QUIC control plane (quic.rs, client.rs, feature quic) — the Hello/Welcome/Start handshake, cert pinning/TOFU, reverse audio, and the embeddable NativeClient connector. This is the only place tokio/quinn are allowed; the feature is off by default so the core stays runtime-free.
  • C ABI (abi.rs) — the versioned surface (punktfunk_abi_version(), PunktfunkConfig carrying its own struct_size) that generates include/punktfunk_core.h via cbindgen at build time.

Build outputs

The crate builds three ways at once (crate-type = ["lib", "cdylib", "staticlib"]):

Output Used by
lib (rlib) the host, probe, and tools link it as a normal Rust crate
cdylib (.so/.dylib) the Swift / Kotlin clients via the C ABI
staticlib (.a) the C test harness and static embedding

Test

cargo test -p punktfunk-core                 # unit + proptest + loopback
cargo run  -p loss-harness                   # FEC loss-resilience sweep (no network needed)
bash crates/punktfunk-core/tests/c/run.sh    # standalone C-ABI link + round-trip proof

Design invariants (do not regress)

  • One core, linked everywhere — protocol/FEC/crypto live only here, behind the stable C ABI.
  • No async on the hot path — the per-frame pipeline is native threads only; quic (tokio/quinn) is control-plane only, feature-gated, off by default.
  • Security hardening stays intact — the reassembler bounds attacker-controlled fields before allocating; AES-GCM keeps per-direction nonce salts + seq-as-AAD; the ABI checks struct_size. Regression tests exist — keep them green.
  • punktfunk-host — the streaming host built on this core
  • Clients — the apps that link this core over the C ABI (or directly, in Rust)
  • punktfunk-planning: implementation-plan.md (internal planning repo) — why GF(2¹⁶) FEC, the latency budget, and the architecture thesis