Derived IPv4 addresses could not survive anything: they changed with the range, and there was no way for a member to come back to the one it had. Addresses are now allocated and recorded as signed facts, which is the first slice of the model in docs/sync-model.md. src/state/ holds one record per author per network, carrying that author's complete current statement, signed with its persistent device key over a length-prefixed canonical encoding. Merging follows the model's rules: a higher version wins, an older one never rolls back a newer, duplicates are idempotent, absence from a snapshot is not deletion, and a same-version conflict is resolved identically on every replica and reported rather than letting replicas diverge. Records are persisted in state.sqlite, with the record and the author's version counter committed in one transaction before anything is announced, and distributed as a State control message that is merged into what the receiver already holds. No vote, deliberately, despite the request. A majority is not a trust root here — anyone with the secret can mint identities — and a quorum would stall with one peer online and diverge across a partition. Signatures plus a deterministic merge converge without either failure mode: two members claiming one address at once are resolved by the lower endpoint id, and the loser allocates again with a higher version. The range moved from the plugin to the agent, defaults to 10.13.37.0/24, and is now agreed rather than configured per member: a joining agent adopts what the network already uses, so --ipv4-range only matters for whoever starts it. The announcement went back to identity only (version 3) since the range travels in signed records now. A release tombstone exists and merges correctly, but nothing emits one yet. 116 tests. The headline ones: an address survives restarting both agents, three members get three distinct addresses, and a member started with a different range adopts the one in use. Confirmed by hand with two CLI agents restarted end to end. Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com>
274 lines
12 KiB
Markdown
274 lines
12 KiB
Markdown
# The WireGuard data plane
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WireGuard is the first IP plugin. It carries user traffic between
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participants while the control plane keeps doing its own job: deciding who is
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in the network and carrying each participant's opaque announcement.
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Module boundaries are in [architecture.md](architecture.md), the control
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protocol in [protocol.md](protocol.md), the security consequences in
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[threat-model.md](threat-model.md).
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## Userspace, not the kernel
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WireGuard here is [boringtun]'s protocol state machine running in this
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process. There is **no kernel WireGuard module** and **no `wg` tool**: the same
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code runs everywhere, and the protocol can be exercised in tests without any
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privileges at all.
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The only privileged step left is creating a packet interface so the operating
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system can hand us IP packets, and even that is behind a trait
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([`TunFactory`]) with an in-memory implementation.
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| | needs privileges | what it proves |
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|---|---|---|
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| `MemoryTunFactory` | no | handshake, encryption, routing, address ownership |
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| `SystemTunFactory`, attaching | none, if the interface was prepared | traffic actually reaches the OS |
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| `SystemTunFactory`, creating | `CAP_NET_ADMIN` | the same, at the cost of a capability |
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`SystemTunFactory` attaches to an interface that already exists and only
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creates one when it does not. A persistent interface created by root and owned
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by the user lets the agent run with no privileges at all; see *Running
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unprivileged* in [../README.md](../README.md#running-unprivileged).
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[boringtun]: https://docs.rs/boringtun
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[`TunFactory`]: https://docs.rs/tsunagi
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## Where the packets go
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The plugin does not know and does not care. It is handed a `PacketLink` per
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peer by the agent and runs a WireGuard tunnel over it:
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```text
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TUN device (IP packets) PacketLink per peer
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v v
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destination address -> peer --Tunn.encapsulate--> ciphertext -> transport
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source address checked <--Tunn.decapsulate-- ciphertext <- transport
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```
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Reachability — hole punching, relay fallback — belongs to the transport, which
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today is iroh. That is the whole reason the plugin's announcement says *who* it
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is and never *where* it is: there is no address for a peer to advertise, get
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wrong, or lie about.
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**Two peers behind NAT work exactly as well as iroh does.** iroh hole punches a
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direct path when it can and falls back to a relay when it cannot; the tunnel
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rides on whichever it got. There is no separate STUN, no separate hole punching
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and no second set of NAT problems to solve for WireGuard.
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## Checking it from outside
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`tsunagi status` asks a running agent over its local control socket and prints
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what it sees, including whether each tunnel has actually handshaken. See
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[../README.md](../README.md#checking-that-it-works).
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## Deterministic overlay addressing
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A mesh with no coordinator cannot hand out addresses, so everyone derives their
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own. The result is an IPv6 unique local address (RFC 4193):
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```text
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prefix (/64) = 0xfd || SHA-256( LP(domain) || LP("prefix") || LP(network_id) )[0..7]
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iid (64b) = SHA-256( LP(domain) || LP("interface") || LP(network_id) || LP(wg_public_key) )[0..8]
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address = prefix || iid
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```
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with `domain = "tsunagi-wireguard-overlay-v1"` and `LP(x) = u32_be(len(x)) || x`,
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the same unambiguous encoding the rest of the project uses.
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Two consequences matter:
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* every member of a network derives the **same `/64`**, so the overlay is one
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subnet that nobody had to allocate;
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* a member's address is bound to its WireGuard public key, so address
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ownership can be checked locally rather than believed.
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## IPv4: allocated, signed, and kept
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IPv6 addresses are *derived*: a 64 bit interface identifier makes a collision
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impossible in practice, so nobody has to agree on anything. IPv4 has nothing
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like that room, so deriving would collide. Instead an address is **allocated
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and then recorded as a signed fact**, using the model in
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[sync-model.md](sync-model.md).
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```text
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default range 10.13.37.0/24 (override with --ipv4-range)
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who decides the first member to claim; later ones adopt what they find
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who signs the claiming member, with its persistent device key
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where it is kept state.sqlite, and every replica that has seen it
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what a return costs nothing: the old address is reclaimed
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```
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How it works:
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1. On joining, an agent reads back the records it already had and learns more
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from its peers.
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2. If it already holds an address, it keeps it. **That is the whole point**: a
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participant that was away for a month comes back to the address it signed
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for, because the claim outlived the session.
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3. Otherwise it picks a free one — starting from a position derived from its
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own identity, so two newcomers rarely start in the same place — signs the
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claim, commits it together with its version counter, and only then
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announces it.
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4. Every replica merges what it receives into what it has. An author missing
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from a snapshot is left alone: absence is not deletion.
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**No vote is involved, deliberately.** Anyone who knows the network secret can
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mint identities, so a majority proves nothing, and a quorum would stall with
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one participant online and diverge across a partition. Two members who claim
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the same address at the same moment are resolved by a rule both compute
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identically — the lower endpoint id keeps it — and the loser simply allocates
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again with a higher version.
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**The range is agreed, not configured per member.** `--ipv4-range` says what
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this agent would use; a network that has already settled on something else
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wins, and the agent adopts it. So the flag matters for whoever starts the
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network and is harmless afterwards. Pass `--ipv4-range none` for an IPv6-only
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overlay.
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A release tombstone exists in the record type and merges correctly, but
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nothing emits one yet, so an address stays claimed until the network is
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forgotten.
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## Address ownership is enforced, not announced
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Kernel WireGuard enforces `AllowedIPs`. In userspace that is our job, and
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[`device`] does it on both sides:
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* **outbound**, a packet is routed to the peer that *owns* its destination
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address; a destination nobody owns is counted as unroutable and dropped;
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* **inbound**, a decrypted packet is dropped unless its *source* is exactly the
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address derived for the peer whose tunnel decrypted it.
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Both apply to IPv4 and IPv6 alike.
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So a participant cannot receive traffic addressed to somebody else and cannot
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forge traffic that appears to come from somebody else. A participant who knows
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the network secret can mint many keys and therefore occupy many addresses, but
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it cannot choose to collide with an existing member without finding a hash
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preimage.
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The announcement also carries the address the peer believes it has. It is never
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used — only cross-checked — so a version skew produces a clear rejection rather
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than silent non-connectivity.
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[`device`]: https://docs.rs/tsunagi
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## MTU
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Two constraints pull against each other.
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**IPv6 sets a floor of 1280 bytes** (RFC 8200), and Linux enforces it
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brutally: an interface whose MTU drops below 1280 loses IPv6 entirely — its
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`/proc/sys/net/ipv6/conf/<dev>` directory disappears and `ip -6 address add`
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answers `Invalid argument`. So the overlay MTU cannot go below 1280, and the
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plugin refuses a smaller one at startup instead of letting it fail obscurely.
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**The transport sets a ceiling.** Every packet rides in one datagram and
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WireGuard adds 32 bytes, so a link must carry `mtu + 32` = 1312 bytes. A direct
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QUIC path typically offers around 1380, which fits. A relayed path can offer
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less, and then full-size packets do not fit: they are dropped and counted as
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`dropped_oversize`, never truncated, and the plugin reports the exact numbers
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when the tunnel is set up.
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There is no room left to trade, so the default MTU is exactly 1280.
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Fragmenting a packet across several datagrams would lift the ceiling and is
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not implemented.
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## Lifecycle
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* A network is activated → the plugin loads or creates its key for that
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network, derives the interface name, and creates the packet interface. If
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that fails — no privileges, for instance — the key and the announcement still
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work and the interface is retried on the next reconcile.
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* A peer announces its key → recorded.
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* A data link to that peer arrives → recorded.
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* Reconciliation starts a tunnel for every peer that has **both**, and removes
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tunnels for peers that lost either.
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* A network is deactivated, or the agent shuts down → the interface and every
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tunnel go away. The key stays, so coming back keeps the same overlay address.
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There is no external configuration file and no command line tool, so unlike a
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kernel-WireGuard setup there is nothing outside this process for anybody to
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edit. Reconciliation is purely "do the running tunnels match what is known".
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## Using it
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```bash
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# On both machines
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tsunagi up --network lab --secret "$SECRET" --wireguard
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```
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See the two-machine walkthrough in [../README.md](../README.md#trying-it-on-two-machines).
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From the library:
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```rust,no_run
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use std::sync::Arc;
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use tsunagi::config::{AgentConfig, StoragePaths, TransportPolicy};
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use tsunagi::dataplane::IpPlugin;
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use tsunagi::dataplane::wireguard::{MemoryTunFactory, WireguardConfig, WireguardPlugin};
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use tsunagi::identity::{NetworkName, NetworkSecret};
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use tsunagi::{Agent, Result};
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#[tokio::main]
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async fn main() -> Result<()> {
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let paths = StoragePaths::user_default()?;
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// MemoryTunFactory needs no privileges; swap in SystemTunFactory for a
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// real interface.
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let plugin = WireguardPlugin::open(
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WireguardConfig::new(paths.state_dir.join("wireguard")),
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Arc::new(MemoryTunFactory::new()),
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)
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.await
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.expect("wireguard plugin");
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let agent = Agent::spawn(
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AgentConfig::new(paths)
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.with_transport(TransportPolicy::N0Defaults)
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.with_plugin(plugin.clone() as Arc<dyn IpPlugin>),
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)
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.await?;
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let network = agent
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.join_network(&NetworkName::new("lab")?, &NetworkSecret::generate())
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.await?;
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if let Some(view) = plugin.overview(network) {
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println!("{} on {}", view.interface, view.overlay_address);
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}
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agent.shutdown().await;
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Ok(())
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}
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```
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## Limits and future work
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* **Full mesh only.** Every member runs a tunnel to every other member.
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Routing through an intermediate participant is not implemented.
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* **Nothing frees an address yet.** The release record exists and merges, but
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no command emits one.
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* **A snapshot grows with the number of members ever seen**, and is capped per
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message rather than compacted.
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* **No routes, DNS or firewall rules.** The plugin creates its interface and
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nothing else. Anything beyond the overlay `/64` is the operator's business.
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* **Membership is session-scoped.** A peer leaves the overlay when its control
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session ends; surviving a long absence is the same future work.
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* **Userspace costs CPU.** Kernel WireGuard is faster. A kernel backend could
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return behind the same boundary, but it would give up transport-provided NAT
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traversal unless paired with a local proxy.
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* **A persistent TUN interface needs `keep_addr_on_down`.** Without a process
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attached it has no carrier, and Linux then flushes its IPv6 addresses. The
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setup printed by `tsunagi tun-setup` sets it; the agent checks the address is
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present *and usable* — not tentative, not DAD-failed — before attaching, and
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reports what it actually found.
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* **The agent cannot assign the overlay address itself.** The `tun` crate sets
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addresses through an IPv4-only ioctl, so the IPv6 overlay address must come
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from `ip -6 address add` or an equivalent. The agent verifies the address is
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present, via `/proc/net/if_inet6`, and refuses with the exact command rather
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than running an interface that could never receive anything. Doing it
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in-process would mean speaking netlink, which is not implemented.
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* **The system interface path is not exercised by the default suite**, because
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it needs privileges. Everything else about the data plane is.
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