# tsunagi A proof-of-concept Rust library for **small private mesh networks** — a handful of friends, home machines, a few servers. Units to dozens of participants, not thousands. The end user configures exactly two things: ```text network_name secret # one shared secret; "password" and "secret" mean the same value ``` From those, every agent independently derives the same network space. There is no central server, no network owner with special powers, no registration and no majority vote. Anyone who knows the parameters can join; nobody has to trust anybody else. ## What this proof of concept actually does A working library with **real iroh connections** and integration tests: - persistent device identity stored in SQLite, stable across restarts; - several independent networks at once in one agent; - deterministic network identity derived from name + secret; - candidates supplied by a replaceable discovery component; - real iroh connections plus an explicit mutual proof of network membership; - a small versioned control protocol: handshake, hostname/capability announcement, ping/pong; - automatic reconnect with bounded exponential backoff and jitter; - status snapshots, an event stream and honest diagnostics; - configuration restored after a restart; - correct behaviour when the disposable cache is missing or corrupt; - a **WireGuard data plane**, in userspace: its own key per network, an IPv6 overlay with deterministically derived addresses and optional IPv4, real tunnels carried over iroh, and address ownership enforced rather than believed; - a **command line agent**, `tsunagi`, with a local control socket. ### What it deliberately does **not** do Not implemented, and not pretended to be: Mainline DHT, DNS, routing through intermediate participants, a full CRDT, dynamically loaded plugins, a system service, a complete CLI, or a local control socket. Snapshot synchronisation and signed revocations are designed for but not implemented — see [docs/sync-model.md](docs/sync-model.md). The WireGuard plugin's own limits, including that its system backend is Linux-only, are in [docs/wireguard.md](docs/wireguard.md#limits-and-future-work). **Control and data are separated logically, not physically.** Both ride on iroh, on different ALPNs and different connections, so the data plane inherits iroh's hole punching and relay fallback instead of reimplementing them — while the control protocol still knows nothing about packets and can keep a different transport underneath it later. Filtering user traffic remains the operating system's and the user's responsibility, not this library's. ## Requirements - Rust 1.91 or newer (iroh 1.2 requires it), edition 2024. Pinned dependencies in `Cargo.lock`. - No internet, no DHT, no public relay, no administrator rights and no changes to OS network settings are needed to build or test. - WireGuard runs in userspace (boringtun): **no kernel module and no `wg` tool**. Only creating a real network interface needs `CAP_NET_ADMIN`, and `--no-tun` skips even that. ## Trying it on two machines On the first machine: ```bash cargo build --release ./target/release/tsunagi secret # prints tsn1...; share it privately ./target/release/tsunagi doctor # what this host can and cannot do ./target/release/tsunagi up --network lab --secret "$SECRET" --wireguard ``` It prints its endpoint id and then waits. On the second machine, pass that id: ```bash ./target/release/tsunagi up --network lab --secret "$SECRET" --wireguard \ --peer ``` Within a few seconds both print something like: ```text + peer b47c958462 connected over Direct rtt=Some(4.5ms) + data link to b47c958462 for wireguard: Direct via Ip(…), datagram 1382 --- status --- control: 1 peer(s), 0 dial failure(s), 0 handshake failure(s) wireguard: tsunkkcp43lmdje on fd15:1d9e:fa21:f201:…/64 mtu 1280, 1/1 tunnel(s) established 4jO4kx9Z fd15:1d9e:fa21:f201:… handshake 3s ago tx=0 rx=0 dropped=0 path=Direct via Ip(…) ``` `1/1 tunnel(s) established` means a real WireGuard handshake completed. ## Checking that it works From another shell on either machine: ```bash tsunagi status ``` ```text endpoint 7d76ccbbc21bf30767e14422c0494740a2cecc02aa9f82d5b8d57bdae350e7fc hostname tsunagi-7d76ccbbc2 bound 0.0.0.0:41641 network lab (z2o4qwrvnj3zb6st2aoqg4abf342j662q2ujttqrsmz22argk2ba) active peer b345d5271b tsunagi-b345d5271b Direct rtt 24ms overlay tsunz2o4qwrvnj3 fd09:…:c1c6/64 and 100.110.49.177 mtu 1280 1/1 tunnel(s) up SDsEb/WF fd09:…:c4b / 100.65.243.53 handshake 4s ago tx 0 rx 0 Direct via Ip(…) ``` `1/1 tunnel(s) up` and a recent handshake mean the tunnel is live. Then send real traffic to the peer's overlay address: ```bash ping6 fd09:…:c4b # or ping 100.65.243.53 ``` `tx` and `rx` in the status should start moving. IPv6 works out of the box: each member's address is derived from the network id and collides with essentially nothing. **IPv4 addresses are allocated and then remembered.** The default range is `10.13.37.0/24`; the first member to join settles it and later members adopt what they find, so `--ipv4-range` only matters for whoever starts the network: ```bash tsunagi up --network lab --secret "$SECRET" --wireguard --ipv4-range 10.44.0.0/16 tsunagi up --network lab --secret "$SECRET" --wireguard --ipv4-range none # IPv6 only ``` An address is claimed with a record signed by that member's persistent device key, stored, and merged between every replica. A member that disappears for a month comes back to the same address, because the claim outlived the session. No vote is involved — see [docs/wireguard.md](docs/wireguard.md#ipv4-allocated-signed-and-kept) and [docs/sync-model.md](docs/sync-model.md). Because the address is allocated at run time rather than derived, it is not known until the agent has started and agreed with its peers, so `tsunagi tun-setup` cannot print it in advance. The agent prints the exact `ip address add` command once it has one, and keeps saying so until the address is actually on an interface — without it, packets leave with the wrong source address and every peer drops them. ## Running unprivileged The agent does not need to run as root. Creating a network interface and giving it an address do need privileges, but they are a **one-time setup step** that can be done separately. Ask the agent what it needs, then run that once as root: ```bash tsunagi tun-setup --network lab --secret "$SECRET" ``` ```text # Interface tsunjwc6dcrtmo5, address fd80:1210:f724:f620:d1bb:f982:3b6e:19bd/64, mtu 1280 # Run once as root; then run `tsunagi up` as ab. sudo ip tuntap add dev tsunjwc6dcrtmo5 mode tun user ab sudo ip link set dev tsunjwc6dcrtmo5 mtu 1280 up sudo sysctl -qw net.ipv6.conf.tsunjwc6dcrtmo5.keep_addr_on_down=1 sudo ip -6 address add fd80:1210:f724:f620:d1bb:f982:3b6e:19bd/64 dev tsunjwc6dcrtmo5 nodad ``` If you asked for IPv4 with `--ipv4-range`, `tun-setup` adds an `ip address add` line for it too. The MTU is 1280 because that is the minimum IPv6 requires (RFC 8200). Linux disables IPv6 entirely on an interface below it — the per-device `/proc/sys/net/ipv6` entries vanish and `ip -6 address add` fails with `Invalid argument` — so a smaller MTU cannot work at all. The agent refuses one rather than letting it fail later. The order and the last two lines are not decoration. A persistent TUN interface has **no carrier** until a process attaches to it, and Linux flushes IPv6 addresses from an interface that loses carrier unless `keep_addr_on_down` is set — so an address added without it disappears before the agent ever starts. `nodad` is needed for the same reason: duplicate address detection cannot finish without a carrier, and the address would sit there tentative and unusable. `user ab` is the point: the interface is persistent and owned by that user, so `tsunagi up` afterwards opens it with **no privileges and no capabilities at all**. The interface name and address are derived, so they are stable — the setup survives restarts and only has to be redone if the network name, the secret or this agent's WireGuard key changes. Other ways, and their trade-offs: | approach | agent runs as | notes | |---|---|---| | `tsunagi tun-setup` (above) | ordinary user, no capabilities | recommended | | `sudo setcap cap_net_admin+ep ./tsunagi` | ordinary user, one capability | the agent can then create the interface itself, but **still cannot assign the IPv6 address** (see below), so the `ip -6 address add` line is needed anyway. The capability is lost on every rebuild or copy. | | systemd service | `User=`, `AmbientCapabilities=CAP_NET_ADMIN` | same caveat about the address | | plain `sudo tsunagi up` | root | everything works, nothing is isolated | **Known limitation.** The agent cannot assign the IPv6 overlay address itself: the `tun` crate sets addresses through an IPv4-only ioctl, so an IPv6 address has to come from `ip -6 address add` or an equivalent. Rather than start with an interface that could never receive anything, the agent checks for the address in `/proc/net/if_inet6` and refuses with the exact command to run. Doing it in-process would mean talking netlink directly, which is possible but not implemented. ## Checks ```bash cargo fmt --all -- --check cargo clippy --locked --workspace --all-targets -- -D warnings cargo test --locked --workspace --all-targets ``` The whole suite runs offline on loopback. Set `TSUNAGI_TEST_LOG=tsunagi=debug` to see agent logs while a test runs. There are also two runnable demos, which are demos and not substitutes for the tests: ```bash cargo run --example two_agents # control plane only cargo run --example wireguard_mesh # a WireGuard overlay carrying a real packet ``` Both run with no privileges and change nothing on the host. ## Usage ```rust,no_run use std::sync::Arc; use tsunagi::config::{AgentConfig, StoragePaths, TransportPolicy}; use tsunagi::discovery::SharedMemoryDiscovery; use tsunagi::identity::{NetworkName, NetworkSecret}; use tsunagi::proto::ControlMessage; use tsunagi::{Agent, Result}; // The library never starts a runtime, installs a logger, handles signals, // forks, or calls process::exit. The binary owns all of that. #[tokio::main] async fn main() -> Result<()> { let config = AgentConfig::new(StoragePaths::user_default()?) .with_transport(TransportPolicy::N0Defaults) .with_discovery(Arc::new(SharedMemoryDiscovery::new())); let agent = Agent::spawn(config).await?; let name = NetworkName::new("kitchen-table")?; let secret = NetworkSecret::generate(); // 32 random bytes println!("share this: {}", secret.encode().as_str()); let network = agent.join_network(&name, &secret).await?; let mut events = agent.subscribe(); tokio::spawn(async move { while let Ok(event) = events.recv().await { println!("{event:?}"); } }); for peer in agent.network_status(network).await?.connected_peers() { agent .send(network, peer, ControlMessage::Ping { seq: 1, payload: vec![] }) .await?; } agent.shutdown().await; Ok(()) } ``` `TransportPolicy::LocalOnly` is the default, so a plain `AgentConfig::new` never reaches the internet by accident. Opt into `DirectOnly` or `N0Defaults` explicitly. ## How peers find each other Two different lookups are involved, and only one of them is this project's: **1. Resolving one endpoint's address — iroh's, and it works today.** With `--transport relay` or `--transport direct`, iroh publishes a signed record of this endpoint's addresses, keyed by its endpoint id, to the public service run by Number 0 — "n0", the company behind iroh — at `dns.iroh.link`, over pkarr and DNS, and resolves other endpoints the same way. That is why `--peer ` works with no address attached: iroh looks it up. None of that code is ours. **2. Finding who is in a network — ours, and it is still manual.** `NetworkDiscovery` maps a secret-derived `DiscoveryKey` to a set of *candidate* members. Two backends exist: `StaticBootstrap` (what `--peer` feeds) and an in-memory one for tests. The planned Mainline DHT backend, which would let members find each other from the network secret alone, is **not implemented**. So today you bootstrap by passing one peer's id; after that the mesh is whatever those agents reach. What this means in practice: - With `relay` or `direct`, **your endpoint id and IP addresses are published to a public third-party service** (Number 0's, unless you change it). They are not secret, and the network secret is never published, but an observer of that service learns that your endpoint exists and where it is. `--transport local` publishes nothing. - A relay, when one is needed, sees the volume and timing of your traffic — not its contents. The default relays are Number 0's, in the US, EU and Asia-Pacific. ## Storage Two physically separate SQLite files, placed wherever the library's configuration says (`StoragePaths`). A future system service supplies its own paths; tests always use temporary directories. | file | holds | when damaged | |----------------|--------------------------------------------------|-------------------------| | `state.sqlite` | device identity, network configuration, hostname | clear error, never reset | | `cache.sqlite` | address hints and other recoverable data | discarded and recreated | The WireGuard plugin keeps its own keys in its own `wireguard.sqlite`, wherever its configuration points, because plugin keys are neither the iroh identity nor the network secret. The command line agent puts everything under the platform's per-user directories by default; `--state-dir` and `--cache-dir` override them. One state directory belongs to one live agent, enforced with a real OS file lock rather than an existence check. ## Documentation - [docs/architecture.md](docs/architecture.md) — module boundaries and runtime. - [docs/wireguard.md](docs/wireguard.md) — the WireGuard plugin: overlay addressing, announcements, backends, reconciliation. - [docs/protocol.md](docs/protocol.md) — identity derivation, framing, handshake. - [docs/sync-model.md](docs/sync-model.md) — the planned signed-state model and what is deliberately not built yet. - [docs/threat-model.md](docs/threat-model.md) — threat model and known limits. - [docs/testing.md](docs/testing.md) — what the suite covers and what it does not. - [AGENTS.md](AGENTS.md) — rules for anyone (human or agent) changing this repo. ## Security in one paragraph Membership is proved by an HMAC over a transcript keyed by a value derived from the shared secret, bound to the specific iroh connection through the TLS exporter, to the network id, to both endpoint identities and to distinct role labels. This targets high-entropy secrets: there is no PAKE here, so a short human passphrase is guessable offline by anyone who can reach the handshake. Anyone who knows the secret is a full participant and can create many identities. Read [docs/threat-model.md](docs/threat-model.md) before relying on any of this. ## Licence MIT OR Apache-2.0.