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tsunagi/docs/protocol.md
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tsunagiandClaude Opus 5 21be7e9b44 Separate control and data logically, move WireGuard into userspace, add a CLI
Corrects the architecture on two points raised in review, while the project
is still small enough to change cheaply.

1. Control and data are separated *logically*, not physically.

The old reading — "nothing but control may ride on iroh" — threw away iroh's
whole value and would have forced the data plane to reimplement STUN, ICE and
a relay. Now both planes ride on iroh with different ALPNs and different
connections, so the data plane inherits hole punching and relay fallback,
while proto/ still knows nothing about packets and dataplane/ knows nothing
about the control protocol.

New boundary: PacketTransport / PacketLink, an authenticated unreliable
datagram channel per (network, peer, protocol). tsunagi/data/1 runs the same
membership handshake, then DataOpen/DataOpenAck, then QUIC datagrams. Only
the smaller endpoint id dials, so exactly one link exists per pair.

A plugin is handed links and never learns reachability, so the WireGuard
announcement shrank to a public key: there is no address left to lie about.

2. WireGuard now runs in userspace, on boringtun's protocol state machine.

No kernel module, no wg tool, no ip shell-out, no loopback proxy: the wgtool,
backend and bridge modules are gone. Only creating a TUN device needs
privileges, and that sits behind TunFactory, so the entire data plane —
handshake, encryption, routing, address ownership — is tested with none.

Address ownership is enforced rather than believed: outbound packets go to
the owner of the destination address, inbound packets are dropped unless
their source is the address derived for the peer that sent them.

3. A `tsunagi` binary: secret, doctor, id, up. It owns the runtime, the
logging subscriber and Ctrl-C, which the library still refuses to.

Also fixes a reference cycle where IrohTransport held Arc<Inner>, which kept
the databases open and the directory lock held after shutdown; two storage
tests caught it once the cycle existed.

81 tests pass offline with no privileges, including real IPv6 packets
crossing a real WireGuard tunnel over real iroh connections. Verified by
hand: two CLI processes forming a mesh both on loopback and via n0 discovery
using only an endpoint id.

Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com>
2026-09-21 11:55:20 +01:00

8.3 KiB

Protocol

Module boundaries are in architecture.md; the threat model is in threat-model.md.

Versioning

Two versions exist and are independent:

  • Identity scheme, tsunagi-network-id-v1. Frozen. Changing it creates a different network space for the same name and secret.
  • Control protocol, ALPN tsunagi/ctrl/1, PROTOCOL_VERSION = 1.

Upgrading the crate or bumping the control protocol must never change an existing NetworkId.

Canonical encoding

Everything that is hashed or MAC'd uses length-prefixed fields, written here as LP(x) = u32_be(len(x)) || x. String concatenation is never used, so no two different field splits can produce the same bytes.

Network space identity

salt = SHA-256( LP("tsunagi-network-id-v1") || LP(name_utf8) )
prk  = HKDF-SHA256-Extract(salt, ikm = secret_bytes)

info(label)   = LP("tsunagi-network-id-v1") || LP(label)
network_id    = HKDF-Expand(prk, info("network-id"),     32)
discovery_key = HKDF-Expand(prk, info("discovery-key"),  32)
auth_key      = HKDF-Expand(prk, info("handshake-auth"), 32)

HKDF's info parameter is what separates the three outputs (RFC 5869 §3.2). The labels and this encoding are frozen.

Name rules. 1..=64 bytes of UTF-8, no control characters, no leading or trailing ASCII whitespace — such a name is rejected, not trimmed. The name is used verbatim: no case folding, no Unicode normalisation. Home and home are different network spaces.

Secret rules. Used verbatim: never trimmed, case-folded, normalised or truncated. At least 16 bytes; NetworkSecret::generate() produces 32 random bytes. The canonical text form is tsn1 followed by lowercase unpadded base32.

Key separation. network_id is public. discovery_key is what a discovery backend is told; it is secret-derived but is not a credential — learning it does not help pass the handshake, and it must never be used as a password or bearer token. auth_key never leaves the process.

No competing genesis

A network's description is NetworkDescriptor { scheme, name, network_id }. It contains no creator identity, no creation time and no owner signature, so two agents started independently with the same parameters produce byte-identical descriptors. No minimum-hash rule, no vote, no leader. The secret is not part of it.

A network's name does not change inside an existing space. A different name or secret is a different space.

Framing

One QUIC bidirectional stream per session. A frame is u32_be(len) || payload. The announced length is checked against Limits::max_frame_len (64 KiB by default) before any buffer of that size is allocated. Payloads are postcard, a compact deterministic serde format — not a general RPC framework.

No encryption is layered on top of iroh: QUIC/TLS already provides confidentiality, integrity and endpoint authentication.

Handshake

A successful iroh connection proves only which endpoint is on the other side, because the endpoint id is the public key in the TLS certificate. Anyone can dial us. Membership of a specific network is proved separately.

iroh exposes the TLS exporter (RFC 5705) through Connection::export_keying_material. That yields the same secret bytes on both ends of this connection, which is what stops a proof being replayed elsewhere. It proves nothing about the shared secret on its own, because both ends of any connection can compute it. The membership proof is the HMAC keyed by auth_key; the exporter output is just one of its inputs.

cb = TLS-Exporter(label = "tsunagi/handshake/v1", context = network_id, 32)

transcript(role) = LP("tsunagi-handshake-v1")
                || LP(role)                    // "initiator-proof" | "responder-proof"
                || LP(u16_be(protocol_version))
                || LP(network_id)              // 32 bytes
                || LP(initiator_endpoint_id)   // 32 bytes
                || LP(responder_endpoint_id)   // 32 bytes
                || LP(cb)                      // 32 bytes
                || LP(nonce_initiator)         // 16 bytes
                || LP(nonce_responder)         // 16 bytes

proof(role) = HMAC-SHA256(auth_key, transcript(role))

What each input buys:

input property
auth_key membership in this network space
cb binding to this connection; a captured proof is useless on another
network_id binding to this network space
both endpoint ids binding to these two identities
distinct role labels no reflection: a proof cannot be bounced back
both nonces freshness contributed by each side

Message order:

initiator -> responder : Hello     { version, network_id, nonce_i }
initiator <- responder : HelloAck  { version, nonce_r }
initiator -> responder : AuthProof { proof(initiator) }
initiator <- responder : AuthProof { proof(responder) }   // only after the first verified

The responder emits nothing derived from auth_key until the initiator's proof verifies, so a caller who does not know the secret learns nothing. Comparison is constant time. Endpoint ids always come from the TLS certificate, never from a peer's claim. Until both steps complete, no regular control message is accepted in either direction. The whole exchange is bounded by Limits::handshake_timeout.

A Hello naming a network this agent does not have active is rejected with "unknown network". Because the claim is unverified at that point, the rejection event does not report a network id.

The data plane protocol

IP plugin packets never travel on a control connection. They use their own ALPN, tsunagi/data/1, on their own iroh connection:

initiator -> responder : (the same membership handshake as above)
initiator -> responder : DataOpen    { protocol }
initiator <- responder : DataOpenAck { accepted, max_datagram }
thereafter             : QUIC datagrams carrying that plugin's packets

The membership handshake is identical and bound to the same network, so a data channel cannot be opened by somebody who does not know the secret. protocol is bounded and must name a plugin the responder actually runs; otherwise the channel is declined, which is an ordinary outcome rather than an error.

Only one side dials — the one with the smaller endpoint id — so two agents never open two channels for the same thing.

Packets ride as QUIC datagrams: unreliable and unordered, which is what a tunnelled protocol wants, and free of the head-of-line blocking a stream would add. The datagram limit is what caps a plugin's MTU.

Separate connections mean separate congestion control, so a saturated data plane cannot delay control messages, and a data plane failure cannot take the control plane down with it.

Control messages

After authentication, every frame is an Envelope { network_id, message } and the network_id is re-checked against the session's network on every message. A mismatch ends that session and is counted as a protocol violation; it does not affect other networks.

message meaning
Announce { hostname, capabilities } this agent's hostname and IP-plugin capabilities
Ping { seq, payload } small request used to verify the exchange
Pong { seq, payload } the echoed reply
Bye { reason } graceful goodbye; not a revocation of anything

PluginCapability { protocol, version, enabled, data } is opaque to the core: data is bounded and handed to the matching plugin unparsed. Nothing in it is ever treated as a shell command, filesystem path or OS setting.

Every decoded message is validated against Limits before it reaches anything else. A rejected message never stops a network or the agent.

Limits

Defaults from Limits, all configurable:

limit default
frame payload 64 KiB
hostname 255 bytes
capabilities per announcement 16
capability payload 4 KiB
echo payload 4 KiB
reason string 256 bytes
handshake timeout 10 s
dial timeout 10 s
write timeout 30 s
concurrent dials per network 8
sessions per network 64
inbound handshakes in flight 32
outbound queue per session 64

Liveness of an established session is delegated to QUIC: iroh configures keep-alives and an idle timeout, so a dead peer surfaces as a read error rather than needing a heartbeat in this protocol.