415b6a666736cbcf895731063c39d07a3f1a850b
21
Commits
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415b6a6667 |
Make a network on the spot, and say which one you just started
Two reports of the same shape: a network was left and came back after a restart, and `network join` asked for a secret it could have invented. The first was not a bug in leaving. The secret on the start command line derives the network id, so a command line carrying the secret of a network you have just left recreates it on the next start — which is right, it says to join that network, but nothing on screen said so. `up` now marks the network `· new` or `· already here`, and warns in full when another configured network answers to the same name. A name is a label; the id is the identity, and the secret is what decides which of them this is. Said at the moment it happens it is obvious; discovered later in a status report it is a mystery, which is exactly how it went. The second was an omission: `up` had learned to invent a secret and `network join` had not, so the quickest possible thing — a network with somebody for as long as it is needed, then gone — still needed a secret generated first. Both now resolve a bare name the same way: the one network of that name this device already has, or a fresh random secret when there is none. It is printed in full, with the single line the other person can paste as it stands, endpoint id included, because a secret nobody can read is a network nobody can join. The id is printed in full by both answers now. The shortened form belongs in a report, where it is read; this one gets copied into the next command. Covered end to end against a running agent: joining with no secret prints a secret and a pasteable command with a peer in it, and joining a name this device already has resumes that network instead of making another that merely looks the same. Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com> |
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0f97d60854 |
Serve a zone per network, and make a network in one command
Twice now a report has read "dns not serving" and been taken for a broken resolver. It was accurate both times: the agent had been started without `--dns`. That is the flag's fault, not the reader's — a resolver that disappears because one word was not retyped is worse than none, since the names simply stop working. So the setting belongs to the device now: `--dns` turns it on and it stays on, `tsunagi dns off` turns it off, and `tsunagi dns on` turns it on for an agent that is already running, without restarting it. `tsunagi dns` says what it is doing, or what it will do at the next start when nothing is running. One agent has one identity and as many networks as it likes, so one DNS service serves them all: each network is a zone named after it, and joining or leaving one changes what resolves with no restart. A question carries a name and not the network it belongs to, so the suffix decides and nothing is shared between zones — a member of one network is not a name in another. `--dns-zone` is gone with that: there is no single zone to name any more, and a network name may contain dots, so `--network lab.internal` is how you get `music.lab.internal`. It listens on loopback only, where it always could have. Binding the overlay address put the zones in front of the whole mesh, and with several networks on one agent that would have answered one network's questions about another's names. That made a gap plain: a second network on an agent had no addresses at all, because the configured range belongs to whichever network took it first, so its members had nothing to allocate from and no names to answer with. A second network now uses the range **derived from its own network id** — every member derives the same one from something they all already have, so it is an agreement rather than a local invention. It is held back for a moment first, because a network that already exists has a range of its own and a joiner should adopt it rather than argue; that wait is what keeps "the first member settles it" true. And a network needs no ceremony to start. `tsunagi up --network lab` with no secret resolves the obvious way: the one network of that name this device already has, or — when there is none — a fresh random secret, printed in full with the single line to send the others. That is the ad-hoc case, one person makes a network and passes the command round, and it was previously two steps with a flag people could not find. The secret is printed only when the agent invented it, because then there is nowhere else to read it from; one that was supplied is not echoed. Two networks of one name and no secret is the one case with no answer, and it says so rather than choosing. Releasing now also stops this agent claiming again. The periodic check would otherwise publish a fresh claim in the moment between the goodbye and the teardown, turning a release into a hello nobody asked for. Exercised with the real binary: a zone per network as a second one is joined into a running agent, the resolver switched on and off while it runs, and an ad-hoc network printing its secret and the line to share. Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com> |
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41604225ba |
Let a device leave a network, and start over
Joining was one command and leaving was nothing at all: a network went into `state.sqlite` on the first `up` and stayed there, so a mistyped secret left a second network beside the working one with no way to remove it but editing the database by hand. `tsunagi network` lists what this device belongs to. `tsunagi network leave <id>` publishes a signed release first — while the agent is running and its sessions are up — and only then deactivates the network and removes it. The order is the whole point: signed state has no expiry, so the tombstone is the only thing that ever frees the address and the name for the others, and after the network is gone there is nothing left here to sign one with. Peers pass it on, so a member that was away hears it from them rather than from an agent that has already left. With no agent running nothing can sign or send, and the command says so instead of quietly succeeding: `--offline` drops the network locally and says plainly that the others keep the old claim. The outcome always distinguishes "published to nobody" from "not published at all", because they leave the network in different states. A network is named by its id, and a unique prefix will do. The name is refused on purpose: two networks can share one — that is exactly the situation this command exists for — and picking between them for the user is how the wrong one gets left. The author's version counter deliberately survives. Rejoining the same network with the same key must continue above the release, or every replica that holds the release would treat the new claim as stale and the returning member would be invisible for good. The protocol key does not survive: rejoining is joining, not resuming, and coming back with a key the network was told to let go claims an identity nobody holds any more. Plugins learn about it through a new `on_network_forgotten`, which is about what outlives a session rather than what a deactivation tears down. A released member also drops out of the roster `status` prints. The tombstone stays in the record set — a replica that never heard of it would otherwise reinstate the old claim — but listing an author that gave everything up as a member made leaving look like a peer that had broken. `tsunagi wipe` is the other half: it empties both directories, so the device identity, every network, every signed record and everything a protocol kept beside them go at once and the next start is a stranger. It refuses while an agent holds the directory, and refuses a directory with no `state.sqlite` in it, so a mistyped `--state-dir` cannot take somebody's documents with it. Without `--yes` it only prints what it would remove and what membership would be lost. It is not a goodbye and says so: leaving the networks first is what frees their addresses. The local control protocol is 8 — the socket carries a `Leave` request now, since only the running agent can publish the release. Exercised end to end against real agents: leaving by prefix released the address to a connected peer, leaving by name was refused, `--offline` was refused until asked for explicitly, wipe was refused while the agent ran, and the directory afterwards had no identity in it. Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com> |
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0b3915d52b |
Bound every wait that could last for ever
Nine orphaned test processes were found still running from the day before, three of them spinning on a core each for twenty hours. The code they ran is several changes old and the mesh test passes twenty times over now, so the wedge itself is gone — but nothing in the way it was waited on was bounded, which is why a wedge lasted a day instead of failing a run. The harness enforced its deadline only between probes. A probe that never returned — one call into a wedged runtime, which is exactly what a status request is — waited for ever inside the deadline it was supposed to obey. The probe is now bounded too, so the same wedge fails the test in thirty seconds. Shutdown claimed to be bounded and was not. The plugins had a grace period; the network runtimes, the accept loop, the plugin request loop and the endpoint close did not, and a peer that stops reading is enough to hold any of them open. Each now gets a grace period and is aborted after it. The overlay packet loop was not stopped at all: it ends when the device reports end of stream, which a live interface never does, so it outlived the interface it was reading. And a plugin's grace period abandoned the future without stopping the task behind it, so the helper is public and `wg-quic` uses it on its own runtime. The local control socket was unbounded in both directions. A wedged agent left `tsunagi status` hanging with nothing on screen and no way out but Ctrl-C; it now says the agent did not answer, after five seconds, and falls back to the state store as it already did for a socket that refuses a connection. On the serving side, a connection that sends no request no longer holds a task open. Tests cover the mechanism — a task that stops on its own is not aborted, one that ignores the grace is cut off and drops what it held — and both sides of the change in behaviour: a probe that never answers fails its deadline, and a silent agent is reported rather than waited out. Also: the binary opts out of rustdoc, since it shares a name with the library and `cargo doc` cannot put both in one directory. Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com> |
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990b9f2e0f |
Describe the layers as they now stand
The module table still had the plugin inside the core and no mention of the overlay or the DNS view, and the stale path in the testing notes pointed at a directory that had moved. Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com> |
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60e6b263d1 |
Split the system level and the command line into a workspace
First step of separating the layers. The library and the binary are now crates/tsunagi and crates/tsunagi-cli, which means the plugin crate to come can be told apart from the core by the compiler rather than by discipline. Falls out of it immediately: the CLI's dependencies stop being features of the library. clap, anstream and tracing-subscriber were optional dependencies behind a `cli` feature that every library user had to remember to turn off; now they belong to the crate that uses them, and the library defaults to no features at all. The one test that drives the binary moved beside it — a library cannot depend on a binary built from a crate that depends on the library — and was rewritten against the public API instead of the test harness. AGENTS.md said to prefer one crate. It now says the system level and its plugins are separate crates, for the reason above, and that everything else stays one crate. Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com> |
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4759e47e31 |
Remove tun-setup and the attach path it served
The managed interface supersedes both. They go together because apart they are useless: attaching needs an interface somebody prepared, and tun-setup existed only to say how to prepare one. This also corrects what the last commit's README claimed. It said the manual route was needed on macOS and Windows; it was not, and could not be. The recipe printed Linux `ip` commands, and a persistent TUN that a second process can attach to is a Linux concept — macOS creates a utun by opening a control socket and there is nothing to hand over. So those platforms were never served by this path, and their honest state is that a real interface waits on a provisioner, with --no-tun meanwhile. Gone with it: the interface-existence check, the /proc/net/if_inet6 address inspection and its DAD flag decoding, and the --interface flag, which had one mode left. Kept: the check that the allocated IPv4 address is really on a local interface. The agent now assigns that address itself, so the check is no longer telling a user what to run — it verifies the outcome instead of trusting it, which is worth keeping precisely because the assumptions around Linux address behaviour have been wrong here more than once. Its message says which interface should have had the address rather than a command to run. Boxing Up(UpArgs) is fallout: TunSetupArgs had been masking how much larger that variant is than its siblings. Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com> |
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b23e832a73 |
Manage the overlay interface instead of asking for it
The agent printed a list of `ip` commands and asked a human to run them. That is fragile in the way hand-held setup always is: a persistent TUN does not survive a reboot, a changed address allocation needs another manual round, and a run that died leaves a half-configured interface the next run trips over. On Linux the agent now creates the interface, sets the MTU, brings it up and assigns both overlay addresses itself, over netlink in process. No `ip` is invoked, so nothing this path does can be influenced by PATH, a shell, or anything a remote peer said. Cleanup stops being an action. The interface is tied to an open file descriptor and is deliberately not persistent, so the kernel removes it when the agent goes — cleanly, by panic, by SIGKILL or by power loss alike. That also retires `keep_addr_on_down` and `nodad`, which existed only because an interface nobody held open lost carrier. Anything still left behind is repaired rather than tripped over: an abandoned TUN is replaced along with its stale addresses. Two cases refuse instead of guessing — a link that is not a TUN, because a name collision is no reason to destroy somebody's bridge, and a TUN another process holds open, because that is a working overlay belonging to someone else. CAP_NET_ADMIN is kept out of the effective set except around the calls that use it. Two facts shape how: capabilities are per thread, and netlink checks the credentials of whichever thread calls sendmsg, which with an async client is the connection task rather than the caller. So netlink runs on one dedicated thread with a current-thread runtime where nothing is polled outside a block_on, and opening the TUN descriptor is synchronous with no await between the guard and its release. The decision of what to change is a pure function, tested on every platform; only the execution is behind the provisioner trait. macOS and Windows get an implementation that refuses with an explanation and falls back to attaching to a prepared interface, plus a mock host the tests drive the whole plugin lifecycle against. Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com> |
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944d98389f |
Print the allocated IPv4 address in tun-setup
The overlay IPv4 address is not derived from the keys: it is allocated at run time and signed, so on a fresh state directory there is nothing for tun-setup to print. Once the agent has run, the claim is in state.sqlite, and reading it back takes no directory lock, so tun-setup can show the `ip address add` line while the agent is running. Records are verified on the way out; the database is not a trust boundary. The line needs no keep_addr_on_down and no nodad, unlike its IPv6 counterpart: Linux keeps IPv4 addresses on an interface that has lost carrier, and IPv4 has no duplicate address detection to stall. Also fix a race in the four-agent test. A peer counts as connected once its session authenticates, which can precede the announcement carrying its hostname, so reading the hostnames straight away occasionally saw only two. It now waits for them like every other success condition. Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com> |
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8b333455f1 |
Report an allocated IPv4 address that is not on the host
IPv6 works end to end between two machines; IPv4 silently did not, and the agent said nothing useful about why. Allocation moved the address from something derivable before startup to something agreed at run time, so an interface configured by an earlier `tun-setup` carries a different address than the one allocated. The kernel then sends packets with that stale source and every peer drops them as not belonging to us — correct behaviour, invisible cause. Meanwhile pings to our own allocated address fall into the tunnel and land in the "nobody owns this" counter. The agent now checks whether its allocated address is assigned anywhere on the host — by binding a UDP socket to it, which needs no privileges and no platform code — and reports the exact `ip address add` command until it is, mentioning that another address of the range has to go. `tun-setup` no longer prints a derived IPv4 address, because that number is now wrong by construction. It says the agent will print the real one. The unroutable counter keeps one destination as a sample, in status output too. A bare count says something is wrong; the address says what. Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com> |
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84c06c6cac |
Allocate IPv4 addresses and keep them, as signed state
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> |
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ce64264027 |
Make the IPv4 overlay opt-in and detect a range mismatch
100.64.0.0/10 was a bad default: it is exactly Tailscale's range, and carrier-grade NAT's. There is no IPv4 range that is free on every host, so there is now no default at all — IPv4 is off until --ipv4-range names one. IPv6 is unaffected and still works out of the box, because a ULA derived from the network id collides with essentially nothing. The more serious problem this exposed: the range is an input to the address derivation, and each agent derives every peer's address itself. Two members configured with different ranges would therefore derive different addresses for each other and IPv4 would silently misroute. So the range now travels in the announcement — not as a request and never trusted, only so the mismatch is seen. A peer whose range disagrees gets no IPv4 address here, keeps working over IPv6, and the reason is reported with both ranges named. The announcement format goes to version 2. postcard is not self-describing, so an older peer cannot read it; the version check already catches that and now says which side needs updating. The (Ipv4Addr, u8) tuple that had spread across six modules is now an Ipv4Range with validation, Display and FromStr, so a bad --ipv4-range is refused with a reason instead of being accepted and misbehaving later. It is also rejected when passed without --wireguard rather than ignored. Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com> |
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cfab38824d |
Make the overlay dual stack
Every member now also derives an IPv4 address, from the same inputs as its IPv6 one, into 100.64.0.0/10 by default. The range is configurable and IPv4 can be turned off with --no-ipv4. IPv4 is honestly weaker than IPv6 here and the code says so. A 64 bit interface identifier makes an IPv6 collision impossible in practice; IPv4 has nothing like that room, and in a /10 with 50 members two will derive the same address about 0.03% of the time. A mesh with no coordinator cannot allocate around that, so a collision is detected and resolved instead: the member whose public key sorts lower keeps the address, a rule every member computes identically and therefore agrees on. The other keeps IPv6 and is flagged in the status. IPv6 always works; IPv4 almost always works and degrades predictably. Routing and address-ownership enforcement now cover both families: a packet goes to the peer that owns its destination, and a decrypted packet is dropped unless its source is an address derived for the peer that sent it, IPv4 included. Six new tests, among them a real IPv4 packet crossing a tunnel next to an IPv6 one, a spoofed IPv4 source being dropped, and an IPv6-only overlay. Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com> |
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d2e336f2f9 |
Raise the overlay MTU to 1280: below that Linux disables IPv6
The setup recipe failed with a missing sysctl directory and "RTNETLINK answers: Invalid argument". The cause was the default MTU of 1100. IPv6 requires a minimum MTU of 1280 (RFC 8200) and Linux enforces it by tearing IPv6 down on any interface below it: the per-device /proc/sys/net/ipv6/conf entries disappear and an address can no longer be assigned. Evidence on the test host: every interface at 1280 or above has an IPv6 conf directory, every interface below it (1230, 1100) has none. So the overlay MTU is now 1280, which is also the floor. A smaller value is refused when the plugin opens, naming the reason, rather than surfacing as an obscure netlink error after the user has already run four commands. That leaves no slack against the other constraint: a packet needs mtu + 32 bytes of transport datagram, so 1312. A direct QUIC path offers roughly 1380 and fits; a relayed path may not, so the plugin now reports the exact numbers when a link cannot carry a full-size packet, instead of only counting silent drops. Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com> |
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38beb762d8 |
Fix the TUN setup recipe: the overlay address was being flushed
The setup this tool printed did not work, and the agent then correctly refused to start. 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 net.ipv6.conf.<dev>.keep_addr_on_down is set, which it is not by default. So `ip -6 address add` on a freshly created interface silently lost the address before the agent ever ran. The recipe now brings the link up first, sets keep_addr_on_down, and adds the address with `nodad` — without which duplicate address detection can never finish on an interface with no carrier and the address stays tentative and unusable. The agent's own retry loop made this worse: it attached, failed the address check, dropped the device and toggled the carrier, which flushed the address again. The check now runs before attaching to an existing interface, so looking is not destructive. Failures are self-diagnosing now: the check parses the IFA_F_* flags, tells tentative and DAD-failed apart from missing, and lists the addresses the interface actually has. Four new tests, including one that reads this host's real /proc/net/if_inet6 and one that pins the ordering of the setup commands. Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com> |
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1dd7507bf4 |
Let the agent run unprivileged against a prepared TUN interface
Creating a network interface needs CAP_NET_ADMIN, but that is a one-time setup step rather than something the agent must hold for its whole life. SystemTunFactory now attaches to an interface that already exists and only creates one when it does not. A persistent interface created by root and owned by the user therefore lets the agent run with no privileges and no capabilities at all. When attaching, nothing is reconfigured, since doing so would need exactly the privileges we are avoiding. New `tsunagi tun-setup` prints the three commands to run once as root, resolving the derived interface name and overlay address for the network. This also fixes a real gap: the overlay address was passed to the factory and thrown away, so an interface the agent created had no address and could never have received anything. The `tun` crate sets addresses through an IPv4-only ioctl and cannot assign an IPv6 one at all, so the agent now verifies the address is present via /proc/net/if_inet6 and refuses with the exact command to run instead of coming up broken. Doing it in-process would mean speaking netlink, which is not implemented and is recorded as such. Not verified on this machine: no sudo is available here, so the privileged setup and the attach path were not executed end to end. Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com> |
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fae62892e0 |
Rename the --transport n0 value to relay and say what n0 means
"n0" is Number 0, the company behind iroh, and the name leaked from iroh's own preset into this project's user interface, where it explains nothing. The value is now --transport relay, which says what it does; n0 stays as an accepted alias. Also spells out, in the CLI help, the README, the threat model and the TransportPolicy docs, whose infrastructure is involved: address records are published to and resolved from dns.iroh.link, and the fallback relays are Number 0's, in the US, EU and Asia-Pacific. Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com> |
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5cc92d7067 |
Make joining a network idempotent and shut down cleanly on every path
Running `tsunagi up` twice with the same arguments failed with "network ... is already active", and then dropped the iroh endpoint without closing it. A configured network is activated automatically at startup, so the second run found it already up. `join_network` is declarative — "be a member of this network" — so joining one that is already active now succeeds and changes nothing. `activate_network` stays strict for callers that specifically want to know whether an inactive network was started. The CLI now closes the agent on the error path too, and handles SIGTERM as well as Ctrl-C, so a service manager stopping the agent gets the same clean shutdown an interactive user does. Also documents the two lookups people conflate: resolving one endpoint's address is iroh's public pkarr/DNS service and works today, which is why `--peer <endpoint-id>` needs no address; finding who is in a network is this project's `NetworkDiscovery` and is still static bootstrap only. Notes in the README and the threat model that `n0` and `direct` publish this endpoint's addresses to a public third-party service. Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com> |
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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> |
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ea7aaa2b69 |
Implement the WireGuard data plane plugin
The first IP plugin, built on the data plane boundary the core already had. Plugin: - one X25519 key per network in the plugin's own wireguard.sqlite, separate from the iroh identity and from the network secret; a damaged store is an error, never a silently regenerated identity - deterministic IPv6 ULA overlay: every member derives the same /64 from the network id and its own /128 from its WireGuard public key, so no coordinator allocates addresses - AllowedIPs are derived locally, never taken from a peer's announcement, so a member cannot claim another member's overlay address; a mismatched claim is rejected - bounded, versioned, validated announcement carried as the existing opaque capability payload, which the core still never parses - each agent builds its own full-mesh configuration (N-1 peers) and reconciles on every change and on a timer, repairing drift - WireguardBackend abstraction: RecordingBackend in memory, and WgToolBackend driving real wg/ip on Linux, split into a pure planner plus parsers and a thin executor so everything interesting is testable without root Core, three generic additions the plugin needed: - IpPlugin::on_network_activated, so per-network state is ready before peers - PluginContext for re-announcements and error reports from plugin tasks, with errors counted by the owning network runtime - IpPlugin::shutdown, awaited with a grace period, so system objects go away 94 tests pass offline with no privileges: 35 new WireGuard unit tests and 12 integration tests over real iroh connections. The real wg/ip backend needs root and is behind --ignored in tests/wireguard_system.rs; it was not run. Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com> |
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7cea9afa37 |
Proof-of-concept mesh agent library over iroh
Working library with real iroh connections, not an interface sketch: - persistent device identity in state.sqlite, stable across restarts - deterministic network space derived from name + secret via HKDF-SHA256, with frozen labels and unambiguous length-prefixed encoding - replaceable discovery returning unverified candidates only; static bootstrap, in-memory test backend and a composite - real iroh connections plus an explicit mutual membership proof: HMAC-SHA256 over a role-separated transcript bound to the TLS exporter, the network id and both endpoint identities - small versioned control protocol: handshake, announcement, ping/pong - multiple networks per agent with enforced isolation - automatic reconnect with bounded backoff and jitter - mandatory state vs disposable cache, with a real directory ownership lock - status snapshots, event stream and honest diagnostics 47 integration and unit tests cover the required scenarios offline on loopback. Snapshots, revocations and WireGuard are designed for and documented, not implemented. Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com> |