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ts_runtime/
lib.rs

1#![doc = include_str!("../README.md")]
2
3extern crate ts_netstack_smoltcp as netstack;
4
5use core::time::Duration;
6use std::sync::Arc;
7
8use kameo::{
9    actor::{ActorRef, Spawn, WeakActorRef},
10    mailbox::Signal,
11};
12use netstack::netcore::Channel;
13use tokio::sync::watch;
14
15use crate::{
16    control_runner::ControlRunner, dataplane::DataplaneActor, direct::DirectManager,
17    forwarder_actor::ForwarderActor, multiderp::Multiderp, netstack_actor::NetstackActor,
18};
19
20/// Pcap stream framer for debug packet capture (`CapturePcap`).
21pub mod capture;
22/// Control runner.
23pub mod control_runner;
24mod dataplane;
25mod derp_latency;
26/// Device connection-state tracking ([`DeviceState`]) and typed registration outcome
27/// ([`RegistrationError`]).
28pub mod device_state;
29mod direct;
30/// DNS over TCP for the MagicDNS service IP: the transport a stub resolver retries on when a UDP
31/// answer comes back truncated. Only the TUN application data path serves it today, so it is
32/// compiled with `tun`.
33#[cfg(feature = "tun")]
34mod dns_over_tcp;
35mod env;
36mod error;
37/// Exit-node suggestion algorithm (the classic DERP-region-latency path, Go
38/// `suggestExitNodeUsingDERP`) and its result/error types.
39pub mod exit_node_suggest;
40/// Fallback TCP handler registry (`tsnet.Server.RegisterFallbackTCPHandler` parity).
41pub mod fallback_tcp;
42mod forwarder_actor;
43/// Client-side Funnel ingress termination (`tsnet`'s `ListenFunnel` data path).
44pub mod funnel;
45/// Unified IPN notification bus ([`Notify`] / [`watch_ipn_bus`](Runtime::watch_ipn_bus)), mirroring
46/// Go `ipn` `LocalBackend.WatchNotifications` / the `WatchIPNBus` LocalAPI.
47pub mod ipn_bus;
48mod magic_dns;
49pub use magic_dns::DnsQueryResult;
50mod multiderp;
51/// OS network-link-change supervisor (opt-in `network-monitor` feature): re-binds + re-probes
52/// connectivity on a link change. Compiled out entirely when the feature is off.
53#[cfg(feature = "network-monitor")]
54mod netmon;
55mod netstack_actor;
56mod packetfilter;
57pub mod peer_tracker;
58mod peerapi;
59mod peerapi_doh;
60mod route_updater;
61/// Stored Serve config + accept-loop runtime (`tsnet`'s `Get/SetServeConfig` + serving runtime).
62pub mod serve;
63mod src_filter;
64/// Netmap status snapshot, WhoIs, and watcher types.
65pub mod status;
66/// Taildrop peer-to-peer file transfer store.
67pub mod taildrop;
68pub mod taildrop_send;
69/// Tailnet-Lock (TKA) chain-sync orchestration: bootstrap + offer/send driver (the runtime layer
70/// that bridges the `ts_control` sync RPCs and the `ts_tka` chain logic).
71mod tka_sync;
72#[cfg(feature = "tun")]
73mod tun_actor;
74
75pub use device_state::{DeviceState, RegistrationError};
76pub(crate) use env::Env;
77pub use error::{Error, ErrorKind};
78pub use exit_node_suggest::{ExitNodeSuggestion, SuggestExitNodeError};
79pub use ipn_bus::{IpnBusWatcher, Notify, NotifyWatchOpt};
80pub use status::{FileTarget, NetcheckReport, RegionLatency, Status, StatusNode, WhoIs};
81pub use tka_sync::TkaLogEntry;
82pub use ts_dataplane::{CaptureHook, CapturePath};
83
84use crate::peer_tracker::PeerTracker;
85
86/// The runtime for a tailscale device.
87pub struct Runtime {
88    /// Reference to the control actor.
89    pub control: ActorRef<ControlRunner>,
90    dataplane: ActorRef<DataplaneActor>,
91    /// Reference to the direct (disco/UDP underlay) manager, retained so [`Runtime::rebind`] can
92    /// ask it to re-bind the underlay socket on a network/link change.
93    direct: ActorRef<DirectManager>,
94    /// Reference to the application netstack actor. `None` in TUN transport mode, where there is
95    /// no userspace application netstack (the application data path is a real kernel TUN device).
96    netstack: Option<WeakActorRef<NetstackActor>>,
97    /// Reference to the peer tracker for peer lookups.
98    pub peer_tracker: WeakActorRef<PeerTracker>,
99    /// Fallback TCP handler registry, bound to the application netstack. `None` in TUN transport
100    /// mode (no application netstack exists to attach it to).
101    fallback_tcp: Option<fallback_tcp::FallbackTcpManager>,
102    /// Reference to the MagicDNS responder, retained so [`Runtime::query_dns`] can run a query
103    /// through the live `100.100.100.100` forward path. `None` in TUN transport mode (no
104    /// `MagicDnsActor` is spawned there — TUN-mode MagicDNS is an in-packet intercept, not an actor).
105    magic_dns: Option<ActorRef<magic_dns::MagicDnsActor>>,
106    /// Reference to the forwarder actor, retained so [`Runtime::set_advertise_routes`] can push a
107    /// new accept/dial route table onto the running forwarder (the local half of advertising
108    /// routes). Without this the strong ref would drop after the startup `GetChannel` and the
109    /// forwarder would be reachable only via the message bus.
110    forwarder: ActorRef<ForwarderActor>,
111    /// Reference to the multiderp manager, retained so [`Runtime::status`] can resolve each
112    /// relayed peer's DERP region id to its region **code** (`ipnstate.PeerStatus.Relay`). Without
113    /// this the strong ref would drop after startup (it is cloned into the direct manager + route
114    /// updater) and the region-code map would be unreachable.
115    multiderp: ActorRef<Multiderp>,
116    env: Env,
117    shutdown: watch::Sender<bool>,
118    /// Sender side of the exit-node selector `watch` cell. Held privately here (not on the cloned
119    /// `Env`, which keeps only the read side) so that only `Runtime::set_exit_node` can mutate the
120    /// selection; the route updater and source filter re-read it via [`Env::exit_node`].
121    exit_node_tx: watch::Sender<Option<ts_control::ExitNodeSelector>>,
122    /// Sender side of the accept-routes preference `watch` cell. Held privately here (same rationale
123    /// as [`exit_node_tx`](Self::exit_node_tx)) so that only [`Runtime::set_accept_routes`] can
124    /// toggle it; the route updater and source filter re-read it via [`Env::accept_routes`].
125    accept_routes_tx: watch::Sender<bool>,
126    /// Sender side of the accept-dns preference `watch` cell. Held privately here (same rationale as
127    /// [`accept_routes_tx`](Self::accept_routes_tx)) so that only [`Runtime::set_accept_dns`] can
128    /// toggle it; the MagicDNS responder re-reads it via [`Env::accept_dns`] when it rebuilds its
129    /// view (the republish that `set_accept_dns` triggers).
130    accept_dns_tx: watch::Sender<bool>,
131    /// Receiver mirroring the *active* (resolved + fail-closed) exit node's stable id, fed by the
132    /// route updater. Read by [`Runtime::status`] / [`Runtime::active_exit_node`] to report which
133    /// exit node traffic is actually egressing through (vs. the merely-configured selector).
134    active_exit_rx: watch::Receiver<Option<ts_control::StableNodeId>>,
135    /// Receiver for the device connection-state cell, fed by the control runner. Read by
136    /// [`Runtime::watch_state`] and [`Runtime::wait_until_running`].
137    state_rx: watch::Receiver<DeviceState>,
138    /// Receiver for the retained peer-capability grants, fed by the packet-filter updater. Read by
139    /// [`Runtime::whois`] to resolve the flow-scoped cap map (Go `apitype.WhoIsResponse.CapMap`).
140    cap_grants_rx: watch::Receiver<packetfilter::CapGrants>,
141    /// Live advertised-route preference (explicit subnet routes + the exit-node flag), seeded from
142    /// the startup config. [`Runtime::set_advertise_routes`] and [`set_advertise_exit_node`] each
143    /// mutate their part under this lock then re-send the composed set, so the two compose.
144    advertise: std::sync::Mutex<AdvertiseState>,
145    /// The most recent exit-node suggestion's stable id (Go `LocalBackend.lastSuggestedExitNode`),
146    /// remembered across calls so [`Runtime::suggest_exit_node`] can apply *stickiness* — if the
147    /// previously-suggested node is still an eligible candidate in the winning region it is kept, to
148    /// avoid the suggestion flapping between equally-good ties on each call. `None` until the first
149    /// suggestion. Held behind a `Mutex` (same rationale as [`advertise`](Self::advertise): a
150    /// cheap, infrequently-touched bit of mutable runtime state, not worth an actor round-trip).
151    prev_suggestion: std::sync::Mutex<Option<ts_control::StableNodeId>>,
152    /// Background task that periodically reaps abandoned taildrop `.partial` files (Go
153    /// `feature/taildrop/delete.go` `fileDeleter`). `None` when no taildrop store is configured.
154    /// Aborted on [`Drop`] so it cannot outlive the runtime (the `reauth_bridge` pattern).
155    taildrop_reaper: Option<tokio::task::JoinHandle<()>>,
156    /// The opt-in OS network-link-change supervisor (`network-monitor` feature + the
157    /// `Config::network_monitor` flag). Retained so the actor — and thus the
158    /// `LinkMonitorHandle` it holds, which aborts the monitor's watcher task on drop — lives for the
159    /// device's life and is torn down when the runtime drops. `None` when the flag is off. Only
160    /// present when built with the `network-monitor` feature.
161    #[cfg(feature = "network-monitor")]
162    #[allow(dead_code)]
163    netmon_supervisor: Option<ActorRef<netmon::NetmonSupervisor>>,
164}
165
166impl Runtime {
167    /// Spawn a new runtime with the given parameters for connecting to a tailnet.
168    pub async fn spawn(
169        config: ts_control::Config,
170        auth_key: Option<String>,
171        keys: ts_keys::NodeState,
172    ) -> Result<Self, Error> {
173        let (shutdown_tx, shutdown_rx) = watch::channel(false);
174
175        // The exit-node selector, accept-routes, and accept-dns preferences are live `watch` cells so
176        // `Device::set_exit_node` / `set_accept_routes` / `set_accept_dns` can change them at runtime.
177        // `new_with_runtime_txs` returns each `Sender` (mutation capability) grouped in `pref_cells`
178        // so they are retained privately on the `Runtime`, while only the `Receiver`s (the readers'
179        // contract) live on the cloned `Env`. Initial values come from `ForwarderConfig`.
180        let (env, pref_cells) = Env::new_with_runtime_txs(
181            keys,
182            shutdown_rx,
183            env::ForwarderConfig::from_control_config(&config),
184        );
185
186        // Both userspace netstacks (application + forwarder) share one netstack config. Honor the
187        // per-deployment TCP buffer knob, and set the netstack MTU to the overlay/tunnel MTU so the
188        // advertised MSS fits the tunnel — leaving it at the netstack's generic 1500 default would
189        // emit over-1280 segments into the WireGuard path. The MTU comes from a `Tun` transport's
190        // `TunConfig` when one is configured (so the netstack and the TUN agree), else the 1280
191        // overlay default (the `Netstack` userspace mode — the common case — has no per-OS MTU knob,
192        // but the tailnet overlay MTU is still 1280).
193        let configured_mtu = match &config.transport_mode {
194            ts_control::TransportMode::Tun(tun_cfg) => tun_cfg.mtu,
195            ts_control::TransportMode::Netstack => None,
196        };
197        let netstack_config = netstack_config_from(config.tcp_buffer_size, configured_mtu);
198
199        let dataplane = DataplaneActor::spawn(env.clone());
200
201        let (netstack_id, netstack_up, netstack_down) =
202            dataplane.ask(dataplane::NewOverlayTransport).await?;
203
204        // A second overlay transport feeds the dedicated any-IP forwarder netstack. Inbound packets
205        // for advertised subnet routes / the exit-node default route are routed here (see
206        // `route_updater`), keeping forwarded flows off the application netstack.
207        let (forwarder_id, forwarder_up, forwarder_down) =
208            dataplane.ask(dataplane::NewOverlayTransport).await?;
209
210        // The selected DERP home region (Go `report.PreferredDERP`): the control runner is the sole
211        // writer (it applies the netcheck `bestRecent` + hysteresis smoothing), and `Multiderp`
212        // reads it to drive the local home relay — so the relay follows the SAME smoothed home the
213        // runner advertises to control, instead of picking it from the raw per-cycle latency minimum
214        // (which flapped on jitter and could disagree with the advertised home). Created here so it
215        // outlives both actors; `None` until the first home is chosen.
216        let (home_region_tx, home_region_rx) = watch::channel::<Option<ts_derp::RegionId>>(None);
217
218        let multiderp = Multiderp::spawn((env.clone(), dataplane.clone(), home_region_rx));
219
220        // Spawn the direct (disco) underlay manager before the route updater. Its `on_start`
221        // binds the UDP socket and registers its transport synchronously, so by the time the
222        // route updater asks it for the direct transport id it is guaranteed to be available.
223        let direct = DirectManager::spawn((env.clone(), dataplane.clone(), multiderp.clone()));
224
225        // Spawn the forwarder before the route updater. Its `on_start` builds the forwarder
226        // netstack, enables any-IP acceptance, and starts the per-port accept loops synchronously,
227        // so by the time the route updater begins delivering advertised prefixes to
228        // `forwarder_id` the netstack is already draining its transport.
229        let forwarder = ForwarderActor::spawn((
230            env.clone(),
231            netstack_config.clone(),
232            forwarder_up,
233            forwarder_down,
234        ));
235        // Force `on_start` to finish (any-IP enabled, accept loops live) before the route updater
236        // can route the first inbound flow to `forwarder_id`: an `ask` blocks until the actor has
237        // started.
238        //
239        // The forwarder netstack's overlay `Channel` is reused by the TUN application path for
240        // recursive / exit-node-DoH MagicDNS forwarding (TUN mode has no application netstack of its
241        // own, but the forwarder netstack runs in both modes and egresses over the overlay — the
242        // anti-leak property `forward_query`/`forward_doh` require). Only the `tun` Tun arm consumes
243        // it, so it is unused when the `tun` feature is off — allow that without warn-as-error.
244        #[cfg_attr(not(feature = "tun"), allow(unused_variables))]
245        let (forwarder_channel,) = forwarder.ask(forwarder_actor::GetChannel).await?;
246
247        // The route updater is the single authoritative resolver of the active (resolved,
248        // fail-closed) exit node; it publishes the resolved stable id into this watch cell so
249        // `Runtime::status` can report which exit is actually engaged (not just configured).
250        let (active_exit_tx, active_exit_rx) = watch::channel(None);
251        route_updater::RouteUpdater::spawn((
252            multiderp.clone(),
253            direct.clone(),
254            env.clone(),
255            netstack_id,
256            forwarder_id,
257            active_exit_tx,
258        ));
259        // The packet-filter updater also surfaces the retained cap-grants (for flow-scoped WhoIs)
260        // through a `watch` cell whose receiver the `Runtime` holds — the bus has no replay, so a
261        // `watch` is how `Runtime::whois` reads the current grants on demand.
262        let (cap_grants_tx, cap_grants_rx) = watch::channel(Default::default());
263        packetfilter::PacketfilterUpdater::spawn((env.clone(), cap_grants_tx));
264        src_filter::SourceFilterUpdater::spawn(env.clone());
265        // TKA enforcement-authority cell (Go `tkaFilterNetmapLocked`). Created here — before both
266        // actors spawn — so the control runner (sole writer, `Sender`) and the peer tracker (reader,
267        // `Receiver`) share one `watch` cell. A `watch` (not a bus message) is the transport for this
268        // security-critical state: last-write-wins, never dropped under load, ordered by the control
269        // runner's writes, so a disable (`None`) can never be reordered behind or dropped before a
270        // stale `Some`. `None` = no lock synced / disabled (admit all).
271        let (tka_authority_tx, tka_authority_rx) =
272            watch::channel::<Option<std::sync::Arc<ts_tka::Authority>>>(None);
273        let peer_tracker = PeerTracker::spawn((env.clone(), tka_authority_rx)).downgrade();
274
275        // Select the application data path from the transport mode. The forwarder/egress path
276        // above is UNCHANGED in both modes — TUN mode only swaps the application data path, never
277        // the forwarder. `config` is moved into `ControlRunner::spawn` below, so branch on a
278        // borrow and clone the small `TunConfig` where needed before the move.
279        //
280        // - Netstack (the default, and the only reachable arm when the `tun` feature is off):
281        //   spawn the application netstack + MagicDNS responder + fallback-TCP registry, all on
282        //   the `netstack_up`/`netstack_down` overlay seam.
283        // - Tun: spawn `TunActor` on that same overlay seam instead; no application netstack and
284        //   no MagicDNS responder exist, and `netstack`/`fallback_tcp` are `None`.
285        // - Tun requested but built without the `tun` feature: hard-error (a config/build
286        //   mismatch knowable at spawn time). NEVER silently fall back to netstack.
287        let (netstack, fallback_tcp, magic_dns) = match &config.transport_mode {
288            ts_control::TransportMode::Netstack => {
289                let netstack = NetstackActor::spawn((
290                    env.clone(),
291                    netstack_config,
292                    netstack_up,
293                    netstack_down,
294                ));
295
296                // Fetch the netstack channel while we still hold the strong ActorRef, then spawn
297                // the MagicDNS responder on it. Its ActorRef is retained on `Runtime` so
298                // `query_dns` can drive the live forward path; the serve loop itself is owned by the
299                // actor's internal JoinSet.
300                let (channel,) = netstack.ask(netstack_actor::GetChannel).await?;
301                // The fallback-TCP registry attaches to the application netstack — the same one
302                // that carries the embedder's explicit `Device::tcp_listen` sockets — so a
303                // fallback handler sees exactly the inbound flows no explicit listener matched.
304                let fallback_tcp = fallback_tcp::FallbackTcpManager::new(channel.clone());
305                let magic_dns = magic_dns::MagicDnsActor::spawn((env.clone(), channel));
306
307                (
308                    Some(netstack.downgrade()),
309                    Some(fallback_tcp),
310                    Some(magic_dns),
311                )
312            }
313
314            #[cfg(feature = "tun")]
315            ts_control::TransportMode::Tun(tun_cfg) => {
316                // Reuse the same `netstack_up`/`netstack_down` overlay-transport pair that would
317                // have fed the netstack — it is just the application-side overlay seam (the name
318                // is historical). No NetstackActor / MagicDnsActor is spawned.
319                tun_actor::TunActor::spawn((
320                    env.clone(),
321                    tun_cfg.clone(),
322                    netstack_up,
323                    netstack_down,
324                    // Reuse the forwarder netstack's overlay `Channel` for recursive / exit-node-DoH
325                    // MagicDNS forwarding in the TUN datapath (TUN mode has no application netstack
326                    // Channel of its own). Egresses over the overlay — anti-leak preserved.
327                    //
328                    // Host-route gating (subnet routes gated on `--accept-routes`, the host `/0` from
329                    // the selected exit peer) is no longer snapshotted here: `TunActor` reads the live
330                    // `Env` cells (`accept_routes`/`exit_node`) on every host-FIB apply — both the
331                    // device-build path and the `PeerState` re-apply path — and folds the union of
332                    // peers' AllowedIPs (see `tun_actor::host_routes_from_node`). A runtime
333                    // `set_accept_routes` / `set_exit_node` toggle re-broadcasts the peer state, so the
334                    // host routing table is re-steered live (no device rebuild needed).
335                    forwarder_channel.clone(),
336                ));
337
338                (None, None, None)
339            }
340
341            #[cfg(not(feature = "tun"))]
342            ts_control::TransportMode::Tun(_) => {
343                return Err(Error {
344                    kind: ErrorKind::TunUnavailable,
345                    target_actor: None,
346                    message_ty: None,
347                });
348            }
349        };
350
351        // Device connection-state cell. Created here (not inside the actor) so the control runner's
352        // `on_start` can publish `Failed`/`NeedsLogin` and still return `Err` without the sender
353        // being tied to a `Self` that never gets constructed on a hard registration failure.
354        let (state_tx, state_rx) = watch::channel(DeviceState::Connecting);
355
356        // Seed the live advertised-route preference from the startup config before `config` moves
357        // into the control runner, so the runtime setters compose against the configured baseline.
358        let advertise = std::sync::Mutex::new(AdvertiseState {
359            routes: config.advertise_routes.clone(),
360            exit_node: config.advertise_exit_node,
361        });
362
363        // Unbounded mailbox (not the default bounded-64): the control runner SELF-messages — a
364        // spawned TKA sync task delivers its result back via `self_ref.tell(TkaSynced)`, and the
365        // netmap stream pump tells `StreamMessage::Next` onto the same mailbox. The stall path: the
366        // netmap handler ends by parking on `env.publish().await` into the bounded-64 *bus* (a slow
367        // bus subscriber, e.g. a busy TKA-enforcing peer tracker, holds the bus full); while it is
368        // parked, a concurrently-finishing sync task's `TkaSynced` self-tell queues behind a full
369        // *ControlRunner* mailbox and blocks waiting for capacity, delaying the verified-authority
370        // (or lock-disable) write to the enforcement cell — i.e. stale TKA enforcement under churn.
371        // kameo gates its self-tell deadlock warning on `is_current()`, which is false for the
372        // detached sync task, so the stall is silent. An unbounded mailbox lets the self-tell and the
373        // stream pump enqueue without ever awaiting capacity (kameo's documented choice for a
374        // self-messaging actor); the runner's inputs are control-paced (the netmap stream + a few RPC
375        // replies; the bus delivers best-effort and never backpressures this mailbox), not an attacker
376        // flood, so unbounded growth is not a practical exposure.
377        let control = ControlRunner::spawn_with_mailbox(
378            control_runner::Params {
379                config,
380                auth_key,
381                env: env.clone(),
382                state_tx,
383                tka_authority: tka_authority_tx,
384                home_region: home_region_tx,
385            },
386            kameo::mailbox::unbounded(),
387        );
388
389        // Spawn the taildrop partial-reaper if a store is configured; it sweeps abandoned `.partial`
390        // files every `DELETE_DELAY` and exits on shutdown (the handle is aborted in `Drop`).
391        let taildrop_reaper = env.taildrop_store.as_ref().map(|store| {
392            crate::taildrop::spawn_partial_reaper(store.clone(), shutdown_tx.subscribe())
393        });
394
395        // Opt-in OS network-link monitor (`Config::network_monitor`, default off). When enabled it
396        // spawns a `NetmonSupervisor` that, on a coalesced link change, asks the direct manager to
397        // rebind + re-probe and republishes `MeasureNow` for a re-netcheck — the auto-recovery a
398        // real `tailscaled` performs and the engine otherwise leaves to the embedder. When the flag
399        // is off this is a complete no-op: zero extra threads/sockets, byte-for-byte today's
400        // behavior. The manual `Device::rebind` path is unchanged either way.
401        //
402        // Feature gating is strict and never silent: with the `network-monitor` feature ON the
403        // supervisor (and its `ts_netmon` dep) compile in and spawn when the flag is set; with the
404        // feature OFF, setting the flag is a HARD error at spawn (mirrors the `TransportMode::Tun`
405        // without-`tun`-feature error above), so a build that cannot honor the request fails loudly
406        // rather than booting a node that silently won't auto-recover.
407        #[cfg(feature = "network-monitor")]
408        let netmon_supervisor = if env.network_monitor {
409            // Slice (a): no OS event-source backend is wired yet (the Linux netlink / macOS
410            // PF_ROUTE backends are later slices), so the supervisor runs against a `NoopLinkMonitor`
411            // — it is live and correctly shaped (it will react the moment a real backend feeds it),
412            // it just never sees a synthetic/OS event in this build. Production end-to-end reaction
413            // is proven in the integration test via a `ManualLinkMonitor`.
414            let monitor: std::sync::Arc<dyn ts_netmon::LinkMonitor> =
415                std::sync::Arc::new(ts_netmon::NoopLinkMonitor);
416            Some(netmon::NetmonSupervisor::spawn(
417                netmon::NetmonSupervisorArgs {
418                    monitor,
419                    direct: direct.clone(),
420                    env: env.clone(),
421                },
422            ))
423        } else {
424            None
425        };
426
427        #[cfg(not(feature = "network-monitor"))]
428        if env.network_monitor {
429            // The flag is set but this build cannot honor it. Fail loudly (never a silent no-op).
430            return Err(Error {
431                kind: ErrorKind::NetworkMonitorUnavailable,
432                target_actor: None,
433                message_ty: None,
434            });
435        }
436
437        Ok(Self {
438            control,
439            dataplane,
440            direct,
441            peer_tracker,
442            fallback_tcp,
443            magic_dns,
444            forwarder,
445            multiderp,
446            netstack,
447            env,
448            shutdown: shutdown_tx,
449            exit_node_tx: pref_cells.exit_node,
450            accept_routes_tx: pref_cells.accept_routes,
451            accept_dns_tx: pref_cells.accept_dns,
452            active_exit_rx,
453            state_rx,
454            cap_grants_rx,
455            advertise,
456            prev_suggestion: std::sync::Mutex::new(None),
457            taildrop_reaper,
458            #[cfg(feature = "network-monitor")]
459            netmon_supervisor,
460        })
461    }
462
463    /// Register a fallback TCP handler consulted for every inbound TCP flow that matches no
464    /// explicit listener (`tsnet.Server.RegisterFallbackTCPHandler` parity).
465    ///
466    /// The returned [`fallback_tcp::FallbackTcpHandle`] deregisters the handler when dropped. See
467    /// [`fallback_tcp`] for the dispatch contract and anti-leak guarantees.
468    ///
469    /// Returns [`ErrorKind::UnsupportedInTunMode`] in TUN transport mode, where there is no
470    /// application netstack to attach a fallback handler to.
471    pub fn register_fallback_tcp_handler(
472        &self,
473        cb: Arc<
474            dyn Fn(core::net::SocketAddr, core::net::SocketAddr) -> fallback_tcp::FallbackDecision
475                + Send
476                + Sync,
477        >,
478    ) -> Result<fallback_tcp::FallbackTcpHandle, Error> {
479        Ok(self
480            .fallback_tcp
481            .as_ref()
482            .ok_or(Error {
483                kind: ErrorKind::UnsupportedInTunMode,
484                target_actor: None,
485                message_ty: None,
486            })?
487            .register(cb))
488    }
489
490    /// Get a channel to send commands to the netstack.
491    ///
492    /// Returns [`ErrorKind::UnsupportedInTunMode`] in TUN transport mode, where there is no
493    /// application netstack.
494    pub async fn channel(&self) -> Result<Channel, Error> {
495        let (channel,) = self
496            .netstack
497            .as_ref()
498            .ok_or(Error {
499                kind: ErrorKind::UnsupportedInTunMode,
500                target_actor: None,
501                message_ty: None,
502            })?
503            .upgrade()
504            .ok_or(Error {
505                kind: ErrorKind::ActorGone,
506                target_actor: None,
507                message_ty: None,
508            })?
509            .ask(netstack_actor::GetChannel)
510            .await?;
511
512        Ok(channel)
513    }
514
515    /// Resolve `name` for `qtype` through the live MagicDNS responder (the `100.100.100.100`
516    /// forward path), returning the raw DNS response, its RCODE, and the upstream resolver(s)
517    /// consulted (analogue of Go `LocalClient.QueryDNS`).
518    ///
519    /// This drives the *real* responder — the same `decide`/forward logic an on-the-wire query
520    /// hits — so the answer and its anti-leak posture (a tailnet-suffix name never egresses; a
521    /// recursive forward delegates to the active exit node's DoH; only IPv4 upstreams are dialed)
522    /// match exactly what a tailnet client observes. `qtype` is the raw RFC 1035 TYPE (`1`=A,
523    /// `28`=AAAA, `12`=PTR, or any other).
524    ///
525    /// Returns [`ErrorKind::UnsupportedInTunMode`] in TUN transport mode, where MagicDNS is an
526    /// in-packet intercept on the host's own resolver rather than an actor that can be queried, and
527    /// [`ErrorKind::ActorGone`] if the responder has shut down.
528    pub async fn query_dns(
529        &self,
530        name: &str,
531        qtype: u16,
532    ) -> Result<magic_dns::DnsQueryResult, Error> {
533        let result = self
534            .magic_dns
535            .as_ref()
536            .ok_or(Error {
537                kind: ErrorKind::UnsupportedInTunMode,
538                target_actor: None,
539                message_ty: None,
540            })?
541            .ask(magic_dns::Query {
542                name: name.to_owned(),
543                qtype,
544            })
545            .await?;
546
547        Ok(result)
548    }
549
550    /// The Taildrop file store, if Taildrop is enabled (`taildrop_dir` configured and the store
551    /// initialized). `None` when disabled — fail-closed. Shared with the peerAPI Taildrop server so
552    /// the embedder's read APIs and the receive path see the same on-disk store.
553    pub fn taildrop_store(&self) -> Option<Arc<crate::taildrop::TaildropStore>> {
554        self.env.taildrop_store.clone()
555    }
556
557    /// The shared Funnel ingress slot the peerAPI `/v0/ingress` route reads per connection.
558    ///
559    /// `Device::listen_funnel` installs a [`FunnelManager`](crate::funnel::FunnelManager)'s sink here
560    /// to make the route live (the peerAPI server is already running from startup). Returns a clone of
561    /// the runtime-lifetime `Arc` so the device can write the slot without restarting the server. See
562    /// [`crate::funnel`] for the ingress data path.
563    pub fn funnel_ingress_slot(&self) -> crate::funnel::FunnelIngressSlot {
564        self.env.funnel_ingress.clone()
565    }
566
567    /// The shared "Funnel ingress listener active" flag (the same `Arc` the control session reads to
568    /// set `HostInfo.IngressEnabled`). `Device::listen_funnel` flips it `true` while a funnel listener
569    /// is up so control routes Funnel traffic to this node; clearing it advertises no live endpoint.
570    pub fn ingress_active_flag(&self) -> std::sync::Arc<std::sync::atomic::AtomicBool> {
571        self.env.ingress_active.clone()
572    }
573
574    /// Install (`Some`) or clear (`None`) the debug packet-capture hook on the running dataplane.
575    /// `Some(hook)` tees every plaintext packet crossing the datapath to `hook` until it is cleared;
576    /// `None` stops capture. Mirrors Go `tstun.Wrapper.InstallCaptureHook` / `ClearCaptureSink`.
577    pub async fn install_capture(
578        &self,
579        hook: Option<ts_dataplane::CaptureHook>,
580    ) -> Result<(), Error> {
581        self.dataplane
582            .ask(dataplane::InstallCapture { hook })
583            .await
584            .map_err(Into::into)
585    }
586
587    /// Re-bind the underlay UDP socket after a network/link change (Wi-Fi switch, sleep/wake). The
588    /// embedder's own link monitor calls this (the engine owns the socket re-bind; the embedder owns
589    /// OS netmon). Re-binds the socket (same-port-preferred, IPv4-only invariant preserved) and
590    /// resets the now-stale local NAT mapping — clearing learned reflexive addresses and every
591    /// confirmed direct path while keeping candidate endpoints, so peers re-probe over the new socket
592    /// and relay over DERP (never a direct host dial) until a path re-confirms. Peers, control, the
593    /// netmap, disco state, and DERP are untouched. A no-op when the underlay is inert (bind failed
594    /// at startup, DERP-only). Mirrors Go magicsock `Conn.Rebind` + `resetEndpointStates`.
595    pub async fn rebind(&self) -> Result<(), Error> {
596        self.direct.ask(direct::Rebind).await.map_err(Error::from)
597    }
598
599    /// Force an immediate STUN / endpoint re-probe **without** rebinding the underlay socket —
600    /// Go magicsock's `Conn.ReSTUN`. Asks the `DirectManager` to run one STUN sweep now (re-learn
601    /// our reflexive/public address) while leaving the socket, its NAT mapping, learned paths, peers,
602    /// control, and DERP untouched. Lighter than [`rebind`](Self::rebind): no socket swap, no
603    /// re-ping. A no-op when the underlay is inert (bind failed at startup, DERP-only). No control
604    /// round-trip.
605    pub async fn re_stun(&self) -> Result<(), Error> {
606        self.direct.ask(direct::ReStun).await.map_err(Error::from)
607    }
608
609    /// A snapshot of the local netmap: this node plus every known peer.
610    ///
611    /// Combines the self node held by the control runner with the peer set held by the peer
612    /// tracker. Mirrors tsnet's `LocalClient::Status`.
613    ///
614    /// `self_node` is `None` until the first netmap update has been received from control. Peer
615    /// entries carry no online/user/capability data (see the [`status`] module docs for that gap).
616    pub async fn status(&self) -> Result<Status, Error> {
617        let self_node_domain = self.control.ask(control_runner::SelfNode).await?;
618        // The MagicDNS suffix is the self node's FQDN minus its host label — already split into
619        // `Node.tailnet` at decode time (Go derives it the same way in `NetworkMap.MagicDNSSuffix`).
620        // Capture it before the domain `Node` is mapped away into a `StatusNode`.
621        let magic_dns_suffix = self_node_domain.as_ref().and_then(|n| n.tailnet.clone());
622        let self_node = self_node_domain.as_ref().map(StatusNode::from_node);
623
624        let peers_with_ids = self
625            .peer_tracker
626            .upgrade()
627            .ok_or(Error {
628                kind: ErrorKind::ActorGone,
629                target_actor: None,
630                message_ty: None,
631            })?
632            .ask(peer_tracker::GetStatus)
633            .await?;
634
635        // Join per-peer connectivity (Go `PeerStatus.CurAddr`): one batched query to the direct
636        // manager for every peer's current trusted direct endpoint, then fill `cur_addr` on each
637        // `StatusNode`. A peer absent from the map is relayed via DERP (`cur_addr = None`). This is a
638        // live snapshot — the direct path can expire/re-confirm between calls (matches Go's snapshot
639        // semantics). The `watch_netmap` stream intentionally carries no connectivity (it is a netmap
640        // watch, not a path-state watch, and does not re-fire on direct↔relay flips).
641        let ids: Vec<ts_transport::PeerId> = peers_with_ids.iter().map(|(id, _)| *id).collect();
642        let best_addrs = self
643            .direct
644            .ask(direct::BestAddrs { ids: ids.clone() })
645            .await
646            .unwrap_or_default();
647
648        // For the peers with NO direct path (relayed via DERP), resolve the region CODE they relay
649        // through (Go `PeerStatus.Relay`). One batched ask to multiderp; `cur_addr` and `relay` are
650        // mutually exclusive for a routed peer, mirroring Go's empty-vs-set strings.
651        let relay_ids: Vec<ts_transport::PeerId> = ids
652            .into_iter()
653            .filter(|id| !best_addrs.contains_key(id))
654            .collect();
655        let relay_codes = if relay_ids.is_empty() {
656            Default::default()
657        } else {
658            self.multiderp
659                .ask(multiderp::RelayCodesForPeers { ids: relay_ids })
660                .await
661                .unwrap_or_default()
662        };
663
664        let peers = peers_with_ids
665            .into_iter()
666            .map(|(id, mut node)| match best_addrs.get(&id).copied() {
667                Some(addr) => {
668                    node.cur_addr = Some(addr);
669                    node
670                }
671                None => {
672                    node.relay = relay_codes.get(&id).cloned();
673                    node
674                }
675            })
676            .collect();
677
678        Ok(Status {
679            self_node,
680            peers,
681            active_exit_node: self.active_exit_node(),
682            magic_dns_suffix,
683        })
684    }
685
686    /// Suggest a reasonably good exit node to use, from the current netmap + recent DERP latency
687    /// (Go `LocalBackend.SuggestExitNode`). The Phase-1 classic DERP-region-latency path; see the
688    /// [`exit_node_suggest`] module for the algorithm, scope, and the IPv4-only parity deviation.
689    ///
690    /// Gathers the inputs the way [`status`](Self::status) and [`file_targets`](Self::file_targets)
691    /// do — from the control runner, the latest [`NetcheckReport`]'s preferred DERP region plus the
692    /// recent per-region latencies (both immediate, non-blocking borrows), and every peer
693    /// [`Node`](ts_control::Node) from the peer tracker — then runs the pure algorithm with the
694    /// production uniform-random selectors (`random_region` / `random_node`). The returned
695    /// suggestion's id is remembered in the runtime's `prev_suggestion` cell so the next call is
696    /// *sticky* (Go `lastSuggestedExitNode`).
697    ///
698    /// Returns `Ok(None)` when no peer is an eligible candidate (Go's empty response), and
699    /// `Err(`[`SuggestExitNodeError::NoPreferredDerp`]`)` when there is no netcheck report yet (Go's
700    /// `ErrNoPreferredDERP`, "try again later").
701    pub async fn suggest_exit_node(
702        &self,
703    ) -> Result<Result<Option<ExitNodeSuggestion>, SuggestExitNodeError>, Error> {
704        use ts_control::NODE_ATTR_SUGGEST_EXIT_NODE;
705
706        // The two netcheck inputs Go's `suggestExitNode` takes. First the preferred DERP region from
707        // the latest report (Go `MagicConn().GetLastNetcheckReport().PreferredDERP`): an immediate
708        // borrow of the control runner's published measurement (the value `Device::netcheck`
709        // surfaces), used only as the "have we netchecked at all yet" precondition.
710        let report = self.control.ask(control_runner::Netcheck).await?;
711
712        // Then the *ranking* input: the lowest latency seen per region over the retained measurement
713        // history (Go `netcheck.Client.RecentRegionLatency()`). Deliberately NOT the latest report's
714        // own latency list — every measurement this fork makes is partial (`complete_threshold`), so
715        // ranking on one report leaves a distant candidate's region unmeasured and collapses the
716        // suggestion to a uniform random pick. See `exit_node_suggest`'s module docs.
717        let region_latency = self
718            .control
719            .ask(control_runner::RecentRegionLatency)
720            .await?;
721
722        // Every known peer (Go reads the netmap peers via `AppendMatchingPeers`); the domain `Node`
723        // retains the cap map, home DERP region, online state, and accepted routes the predicate
724        // needs.
725        let peers = self
726            .peer_tracker
727            .upgrade()
728            .ok_or(Error {
729                kind: ErrorKind::ActorGone,
730                target_actor: None,
731                message_ty: None,
732            })?
733            .ask(peer_tracker::AllPeers)
734            .await?;
735
736        // Project each peer into the algorithm's candidate inputs. The eligibility predicate runs
737        // inside the pure function, so every peer is passed (self is naturally absent from the peer
738        // set). `derp_region`/`online`/`cap_map`/`accepted_routes` map straight off the domain node;
739        // the exit-route check is the fork's family-agnostic `prefix_len == 0` (IPv4-only parity —
740        // see `exit_node_suggest::suggest_exit_node`).
741        let candidates: Vec<exit_node_suggest::ExitNodeCandidate> = peers
742            .iter()
743            .map(|peer| exit_node_suggest::ExitNodeCandidate {
744                stable_id: peer.stable_id.clone(),
745                name: peer
746                    .fqdn_opt(false)
747                    .unwrap_or_else(|| peer.hostname.clone()),
748                derp_region: peer.derp_region,
749                online: peer.online,
750                advertises_exit_route: peer
751                    .accepted_routes
752                    .iter()
753                    .any(|route| route.prefix_len() == 0),
754                has_suggest_cap: peer.has_node_attr(NODE_ATTR_SUGGEST_EXIT_NODE),
755            })
756            .collect();
757
758        // Read the sticky previous suggestion, run the pure algorithm with the production
759        // uniform-random selectors, then update the sticky value to the new result. This mirrors Go
760        // `suggestExitNodeLocked` (`ipn/ipnlocal/local.go`), which assigns `b.lastSuggestedExitNode =
761        // res.ID` on **every** no-error return — INCLUDING the empty/no-candidate result, where it
762        // clears the sticky id to "". So a successful suggestion sets stickiness, an empty result
763        // CLEARS it (a peer that dropped out of candidacy stops being preferred), and only an `Err`
764        // (`NoPreferredDerp` — no netcheck yet) returns before the assignment and leaves it untouched.
765        let prev = self.prev_suggestion.lock().unwrap().clone();
766        let outcome = exit_node_suggest::suggest_exit_node(
767            report.preferred_derp,
768            &region_latency,
769            &candidates,
770            prev.as_ref(),
771            &exit_node_suggest::random_region,
772            &exit_node_suggest::random_node,
773        );
774        *self.prev_suggestion.lock().unwrap() = exit_node_suggest::next_sticky(prev, &outcome);
775        Ok(outcome)
776    }
777
778    /// List the tailnet peers this node can Taildrop a file *to* (Go LocalAPI `FileTargets`).
779    ///
780    /// Mirrors the upstream send-path filter (`feature/taildrop` `Extension::FileTargets`): a peer
781    /// qualifies when it advertises a reachable peerAPI **and** is either owned by the same user as
782    /// this node **or** explicitly granted the file-sharing-target capability. The whole list is
783    /// gated on this node holding the file-sharing capability (control sets it when the admin enables
784    /// Taildrop) — absent that, an empty list (fail-closed, not an error, matching how the receive
785    /// store returns empty when disabled). Results are sorted by the peer's MagicDNS name.
786    ///
787    /// Targets are listed regardless of current online state (upstream's `FileTargets` does not gate
788    /// on online either; an offline target's send will simply time out). The self node is never
789    /// included. Returns empty before the first netmap.
790    ///
791    /// Divergence from Go: the upstream filter also excludes `tvOS` peers, which this fork cannot
792    /// reproduce (the domain node carries no OS string); the impact is negligible — the actual send
793    /// fail-closes if such a peer refused the transfer.
794    pub async fn file_targets(&self) -> Result<Vec<FileTarget>, Error> {
795        // Node-level gate: this node must hold the file-sharing capability (Taildrop enabled by the
796        // admin). Read it off the self node's cap map, like Go's `hasCapFileSharing()`.
797        let self_node = self.control.ask(control_runner::SelfNode).await?;
798        let Some(self_node) = self_node else {
799            return Ok(Vec::new()); // no netmap yet
800        };
801        if !self_node.can_share_files() {
802            return Ok(Vec::new()); // Taildrop not enabled for the tailnet — fail-closed
803        }
804        let self_user_id = self_node.user_id;
805
806        let peers = self
807            .peer_tracker
808            .upgrade()
809            .ok_or(Error {
810                kind: ErrorKind::ActorGone,
811                target_actor: None,
812                message_ty: None,
813            })?
814            .ask(peer_tracker::AllPeers)
815            .await?;
816
817        // Eligibility + ordering live in `build_file_targets` (pure, unit-tested in `status`).
818        Ok(status::build_file_targets(peers, self_user_id))
819    }
820
821    /// The stable id of the exit node traffic is currently egressing through, or `None` if none is
822    /// engaged. This is the route updater's resolved + fail-closed answer (see
823    /// [`Status::active_exit_node`](crate::status::Status::active_exit_node)): it differs from the
824    /// configured [`exit_node`](Self::exit_node) selector, which may name a peer that is absent or
825    /// no longer advertising a default route (in which case egress is dropped and this returns
826    /// `None`).
827    pub fn active_exit_node(&self) -> Option<ts_control::StableNodeId> {
828        self.active_exit_rx.borrow().clone()
829    }
830
831    /// Request an OIDC ID token from control scoped to `audience` (workload-identity federation).
832    ///
833    /// Returns the signed JWT, or the token RPC's own [`ts_control::IdTokenError`]. The kameo
834    /// delegated-reply send error is flattened: a handler error carries the real `IdTokenError`,
835    /// any other send failure (actor shutdown / mailbox closed) is surfaced as
836    /// [`ts_control::IdTokenError::NetworkError`].
837    pub async fn fetch_id_token(
838        &self,
839        audience: String,
840    ) -> Result<String, ts_control::IdTokenError> {
841        self.control
842            .ask(control_runner::FetchIdToken { audience })
843            .await
844            .map_err(flatten_send_err)
845    }
846
847    /// Log this node out of the tailnet: deregister it by expiring its current node key.
848    ///
849    /// Forwards to the control runner, which re-POSTs `/machine/register` with a past expiry over a
850    /// fresh Noise channel. This is a control-plane state change only — it does NOT shut the runtime
851    /// down (the caller follows with [`graceful_shutdown`](Self::graceful_shutdown)) and does not
852    /// touch the on-disk node key. The kameo delegated-reply send error is flattened the same way as
853    /// `fetch_id_token`: a handler error carries the real
854    /// [`ts_control::LogoutError`]; any other send failure (actor shutdown / mailbox closed) is
855    /// surfaced as [`ts_control::LogoutError::NetworkError`].
856    pub async fn logout(&self) -> Result<(), ts_control::LogoutError> {
857        self.control
858            .ask(control_runner::Logout)
859            .await
860            .map_err(flatten_logout_send_err)
861    }
862
863    /// Publish a `TXT` DNS record for this node via control's `/machine/set-dns` (Go
864    /// `LocalClient.SetDNS`).
865    ///
866    /// Forwards to the control runner, which POSTs the record over a fresh Noise channel. The kameo
867    /// delegated-reply send error is flattened the same way as `fetch_id_token`:
868    /// a handler error carries the real [`ts_control::SetDnsError`]; any other send failure (actor
869    /// shutdown / mailbox closed) is surfaced as [`ts_control::SetDnsError::NetworkError`].
870    pub async fn set_dns(
871        &self,
872        name: String,
873        value: String,
874    ) -> Result<(), ts_control::SetDnsError> {
875        self.control
876            .ask(control_runner::SetDns { name, value })
877            .await
878            .map_err(flatten_set_dns_send_err)
879    }
880
881    /// Sign `node_key` with this node's network-lock key and submit the signature to control
882    /// (Go `tka.sign` Direct case → `/machine/tka/sign`).
883    ///
884    /// Submits only — the local [`Authority`](ts_tka::Authority) is **not** mutated here; it advances
885    /// via the existing verified-sync path. A handler error carries the real [`ts_control::TkaSyncError`];
886    /// any other send failure (actor shutdown / mailbox closed) is surfaced as
887    /// [`ts_control::TkaSyncError::NetworkError`].
888    pub async fn tka_sign(&self, node_key: [u8; 32]) -> Result<(), ts_control::TkaSyncError> {
889        self.control
890            .ask(control_runner::TkaSign { node_key })
891            .await
892            .map_err(flatten_tka_send_err)
893    }
894
895    /// Disable Tailnet Lock by presenting the `disablement_secret` to control (Go `tka.disable` →
896    /// `/machine/tka/disable`), targeting the current authority head.
897    ///
898    /// Submits only — the local [`Authority`](ts_tka::Authority) is **not** mutated here. A handler
899    /// error carries the real [`ts_control::TkaSyncError`] (incl.
900    /// [`Unsupported`](ts_control::TkaSyncError::Unsupported) when there is no known TKA head to
901    /// disable); any other send failure collapses to
902    /// [`NetworkError`](ts_control::TkaSyncError::NetworkError).
903    pub async fn tka_disable(
904        &self,
905        disablement_secret: Vec<u8>,
906    ) -> Result<(), ts_control::TkaSyncError> {
907        self.control
908            .ask(control_runner::TkaDisable { disablement_secret })
909            .await
910            .map_err(flatten_tka_send_err)
911    }
912
913    /// Initialize Tailnet Lock with this node as the sole initial trusted key, gated by
914    /// `disablement_secret` (Go `tka` init → `/machine/tka/init/{begin,finish}`).
915    ///
916    /// Submits only — does not seed the local [`Authority`](ts_tka::Authority); the node picks up the
917    /// new lock via the existing verified netmap-sync. A handler error carries the real
918    /// [`ts_control::TkaSyncError`] ([`Unsupported`](ts_control::TkaSyncError::Unsupported) if
919    /// control needs other nodes re-signed — the single-node "lock yourself in" subset only); any
920    /// other send failure collapses to [`NetworkError`](ts_control::TkaSyncError::NetworkError).
921    pub async fn tka_init(
922        &self,
923        disablement_secret: Vec<u8>,
924    ) -> Result<(), ts_control::TkaSyncError> {
925        self.control
926            .ask(control_runner::TkaInit { disablement_secret })
927            .await
928            .map_err(flatten_tka_send_err)
929    }
930
931    /// Read up to `limit` entries of the Tailnet-Lock update-chain log, head-first (Go
932    /// `NetworkLockLog`). A **pure local read** of the synced AUM chain — no control round-trip — so
933    /// the only failure is a kameo send error (actor gone / mailbox), surfaced as a coarse [`Error`]
934    /// like the other local-read paths (`status`/`tka_status`), not a [`ts_control::TkaSyncError`].
935    /// Returns an empty `Vec` when no lock is synced.
936    pub async fn tka_log(&self, limit: usize) -> Result<Vec<TkaLogEntry>, Error> {
937        self.control
938            .ask(control_runner::TkaLog { limit })
939            .await
940            .map_err(Error::from)
941    }
942
943    /// Issue a real Let's Encrypt certificate for this node's MagicDNS `name` (`acme` feature).
944    ///
945    /// Mirrors `fetch_id_token`: forwards to the control runner, which runs
946    /// the client-side ACME DNS-01 flow on a spawned task and publishes the challenge TXT via the
947    /// node's set-dns RPC. The kameo delegated-reply send error is flattened — a handler error
948    /// carries the real [`ts_control::CertError`]; any other send failure (actor shutdown / mailbox
949    /// closed) is surfaced as a [`ts_control::CertError::Io`]. SaaS-only: a self-hosted control
950    /// plane 501s on set-dns.
951    #[cfg(feature = "acme")]
952    pub async fn get_certificate(
953        &self,
954        name: String,
955    ) -> Result<ts_control::tls::CertifiedKey, ts_control::CertError> {
956        self.control
957            .ask(control_runner::GetCertificate { name })
958            .await
959            .map_err(flatten_cert_send_err)
960    }
961
962    /// Issue a real Let's Encrypt certificate for this node's MagicDNS `name` and return the
963    /// **PEM pair** `(cert_chain_pem, key_pem)` — the analog of Go's
964    /// `LocalClient.CertPairWithValidity`, for writing the daemon's on-disk `.crt` + `.key`
965    /// (`tnet cert`). `acme` feature.
966    ///
967    /// Same issuance as [`get_certificate`](Self::get_certificate) (one client-side ACME DNS-01
968    /// order, challenge published via the node's set-dns RPC) — only the result shape differs: this
969    /// returns the leaf+chain PEM and the leaf-key PEM instead of the opaque
970    /// [`CertifiedKey`](ts_control::tls::CertifiedKey). The second element is the **leaf private
971    /// key** PEM; it is never logged anywhere on this path.
972    ///
973    /// **`min_validity` (honest "always fresh").** Go's `CertPairWithValidity` reuses a cached cert
974    /// when it has at least `min_validity` of its lifetime left, and re-issues otherwise. This fork
975    /// has **no cert cache** — every call performs a fresh issuance — so `min_validity` is accepted
976    /// for signature compatibility but does not change behavior: a freshly issued cert (full
977    /// lifetime) trivially satisfies any `min_validity`. A reuse cache is separate future work; this
978    /// does NOT fake one.
979    ///
980    /// Mirrors [`get_certificate`](Self::get_certificate)'s error handling: the kameo
981    /// delegated-reply send error is flattened — a handler error carries the real
982    /// [`ts_control::CertError`]; any other send failure (actor shutdown / mailbox closed) collapses
983    /// to a [`ts_control::CertError::Io`]. SaaS-only: a self-hosted control plane 501s on set-dns.
984    #[cfg(feature = "acme")]
985    pub async fn cert_pair(
986        &self,
987        name: String,
988        min_validity: Option<Duration>,
989    ) -> Result<(String, String), ts_control::CertError> {
990        // No cert cache exists in this fork (every issuance is fresh), so `min_validity` is honored
991        // trivially by always issuing a full-lifetime cert. Bound (unused beyond this contract) so
992        // the parameter is explicitly accounted for rather than silently ignored.
993        let _ = min_validity;
994        self.control
995            .ask(control_runner::GetCertPair { name })
996            .await
997            .map_err(flatten_cert_send_err)
998    }
999
1000    /// Resolve which node owns a tailnet source address.
1001    ///
1002    /// Maps the destination IP of `addr` to its owning node. Mirrors tsnet's `LocalClient::WhoIs`.
1003    /// Returns `None` if no peer holds that tailnet IP.
1004    ///
1005    /// The returned [`WhoIs`] additionally carries the **flow-scoped** peer-capability grants
1006    /// ([`WhoIs::cap_map`], Go `apitype.WhoIsResponse.CapMap`): the caps control's packet-filter
1007    /// application rules authorize for traffic from THIS node (the flow source) to `addr` (the
1008    /// destination). Empty when no grant matches. (The node-level cap map rides
1009    /// [`WhoIs::capabilities`].)
1010    pub async fn whois(&self, addr: core::net::SocketAddr) -> Result<Option<WhoIs>, Error> {
1011        let whois = self
1012            .peer_tracker
1013            .upgrade()
1014            .ok_or(Error {
1015                kind: ErrorKind::ActorGone,
1016                target_actor: None,
1017                message_ty: None,
1018            })?
1019            .ask(peer_tracker::Whois { addr })
1020            .await?;
1021
1022        let Some(mut whois) = whois else {
1023            return Ok(None);
1024        };
1025
1026        // Fill the flow-scoped cap map: src = this node's own tailnet IP (of the dst's family),
1027        // dst = the queried address. A grant applies when its source matches the flow source — `src`
1028        // ∈ its src prefixes OR this node holds one of its source node-caps — AND `dst` ∈ its dst
1029        // prefixes (Go `Filter.CapsWithValues`). Resolve our own IP + cap map from the self node; if
1030        // it isn't known yet, leave the map empty (no grants resolvable without a source).
1031        let dst = addr.ip();
1032        if let Some(self_node) = self.control.ask(control_runner::SelfNode).await? {
1033            let src: core::net::IpAddr = if dst.is_ipv6() {
1034                self_node.tailnet_address.ipv6.addr().into()
1035            } else {
1036                self_node.tailnet_address.ipv4.addr().into()
1037            };
1038            let grants = self.cap_grants_rx.borrow();
1039            whois.cap_map = ts_packetfilter_state::caps_for(&grants, src, dst, |cap| {
1040                self_node.has_node_attr(cap)
1041            });
1042        }
1043
1044        Ok(Some(whois))
1045    }
1046
1047    /// The current direct-path status to the peer holding tailnet IP `dst`: its confirmed direct UDP
1048    /// endpoint and that path's last-measured RTT, or `None` when there is no direct path right now
1049    /// (the peer is relayed via DERP, is unknown, or has no disco key).
1050    ///
1051    /// The latency is the RTT of the most recent disco ping/pong that confirmed the path — a live
1052    /// snapshot up to one probe interval stale, NOT a fresh on-demand round-trip (that is a separate,
1053    /// heavier capability). Mirrors the direct-path latency Go surfaces for `ipnstate.PeerStatus`.
1054    pub async fn direct_path(
1055        &self,
1056        dst: core::net::IpAddr,
1057    ) -> Result<Option<(core::net::SocketAddr, Duration)>, Error> {
1058        let peer_tracker = self.peer_tracker.upgrade().ok_or(Error {
1059            kind: ErrorKind::ActorGone,
1060            target_actor: None,
1061            message_ty: None,
1062        })?;
1063
1064        // Resolve the tailnet IP to its node, then to its disco key. No node / no disco key ⇒ no
1065        // direct path is possible (a peer with no disco key can only be reached via DERP).
1066        let Some(node) = peer_tracker
1067            .ask(peer_tracker::PeerByTailnetIp { ip: dst })
1068            .await?
1069        else {
1070            return Ok(None);
1071        };
1072        let Some(disco) = node.disco_key else {
1073            return Ok(None);
1074        };
1075
1076        self.direct
1077            .ask(direct::DirectPathLatency { disco })
1078            .await
1079            .map_err(Into::into)
1080    }
1081
1082    /// Send a disco ping to the peer holding tailnet IP `dst` **now** and await the pong, returning
1083    /// the fresh round-trip latency and the endpoint that answered, or `None` if no pong arrives
1084    /// within `timeout` (or the peer is unknown / has no disco key / no candidate path). This is the
1085    /// true on-demand `PingType::Disco` (Go `tailscale ping`), as opposed to
1086    /// [`direct_path`](Self::direct_path) which reports the last periodic probe's RTT.
1087    ///
1088    /// The ping round-trip is awaited OFF the direct manager's mailbox (we take a `MagicSock` handle
1089    /// and await on it directly), so a slow/timing-out ping never blocks the actor.
1090    pub async fn ping_disco(
1091        &self,
1092        dst: core::net::IpAddr,
1093        timeout: Duration,
1094    ) -> Result<Option<(core::net::SocketAddr, Duration)>, Error> {
1095        let peer_tracker = self.peer_tracker.upgrade().ok_or(Error {
1096            kind: ErrorKind::ActorGone,
1097            target_actor: None,
1098            message_ty: None,
1099        })?;
1100
1101        let Some(node) = peer_tracker
1102            .ask(peer_tracker::PeerByTailnetIp { ip: dst })
1103            .await?
1104        else {
1105            return Ok(None);
1106        };
1107        let Some(disco) = node.disco_key else {
1108            return Ok(None);
1109        };
1110
1111        // Cheap synchronous handle fetch, then await the ping OFF the actor mailbox.
1112        let Some(sock) = self.direct.ask(direct::SockHandle).await? else {
1113            return Ok(None);
1114        };
1115        // A `ping_now` error is an underlay UDP send failure (not an actor problem); surface it as a
1116        // reply-level error. A timed-out / unanswered ping is `Ok(None)`, not an error.
1117        sock.ping_now(&disco, timeout).await.map_err(|_| Error {
1118            kind: ErrorKind::ReplyErr,
1119            target_actor: None,
1120            message_ty: None,
1121        })
1122    }
1123
1124    /// Change the selected exit node at runtime (the equivalent of Go `tsnet`'s
1125    /// `LocalClient.EditPrefs(ExitNodeID/ExitNodeIP)`), without recreating the device.
1126    ///
1127    /// Updates the live exit-node selector, then asks the peer tracker to re-broadcast the current
1128    /// peer set so the route updater and source filter re-resolve the new selector immediately.
1129    /// `None` clears the exit node (internet-bound traffic is then dropped, fail-closed, unless this
1130    /// node egresses directly). The selection is re-resolved against the live peer set, so passing a
1131    /// selector for a peer not yet in the netmap simply takes effect once that peer appears.
1132    pub async fn set_exit_node(
1133        &self,
1134        selector: Option<ts_control::ExitNodeSelector>,
1135    ) -> Result<(), Error> {
1136        // Update the live cell every reader borrows from. `send_replace` keeps the value current
1137        // even with no active receivers (none can have dropped while the runtime is up, but it is
1138        // the right non-failing primitive here).
1139        self.exit_node_tx.send_replace(selector);
1140
1141        // Trigger an immediate re-resolution: the route updater (outbound routes + DoH delegation)
1142        // and the source filter (inbound validation) both recompute on an `Arc<PeerState>`, so a
1143        // re-broadcast applies the new exit without waiting for the next netmap update.
1144        self.peer_tracker
1145            .upgrade()
1146            .ok_or(Error {
1147                kind: ErrorKind::ActorGone,
1148                target_actor: None,
1149                message_ty: None,
1150            })?
1151            .ask(peer_tracker::RepublishState)
1152            .await
1153            .map_err(Into::into)
1154    }
1155
1156    /// The currently-selected exit node, or `None` if none is selected.
1157    pub fn exit_node(&self) -> Option<ts_control::ExitNodeSelector> {
1158        self.env.exit_node()
1159    }
1160
1161    /// Toggle whether this node accepts peer-advertised subnet routes at runtime (the equivalent of
1162    /// Go `tsnet`'s `LocalClient.EditPrefs(RouteAll)` / `tailscale set --accept-routes`), without
1163    /// recreating the device.
1164    ///
1165    /// `accept-routes` is a purely **local** preference — unlike advertised routes it is never
1166    /// reported to control (no `Hostinfo` / MapRequest side), so this only re-runs the local
1167    /// route/source-filter recompute, mirroring [`set_exit_node`](Self::set_exit_node) rather than
1168    /// [`set_advertise_routes`](Self::set_advertise_routes). Updates the live cell, then asks the peer
1169    /// tracker to re-broadcast the current peer set so the route updater (outbound routes) and the
1170    /// source filter (inbound validation) re-filter against the new value immediately: turning it on
1171    /// installs newly-accepted subnet routes (and widens the source filter to match); turning it off
1172    /// removes them from BOTH in lock-step (never accepting a source for a route no longer installed).
1173    /// Self routes and the exit-node default `/0` are unaffected (the latter is gated by the exit-node
1174    /// selection, not this flag).
1175    ///
1176    /// In TUN transport mode the host routing table is also re-steered live: the `RepublishState`
1177    /// kicked below re-broadcasts the peer set to the `TunActor`, whose `PeerState` handler re-reads
1178    /// `accept_routes` (and the exit selection) from `Env` and re-applies the host routes — so the
1179    /// toggle takes effect without rebuilding the device (the apply is an idempotent add-new/
1180    /// remove-gone diff). The exit-node default `/0` is still keyed on the exit selection, not this flag.
1181    pub async fn set_accept_routes(&self, accept: bool) -> Result<(), Error> {
1182        // Update the live cell every reader borrows from (same primitive/rationale as set_exit_node).
1183        self.accept_routes_tx.send_replace(accept);
1184
1185        // Trigger an immediate re-filter: the route updater and source filter both recompute on an
1186        // `Arc<PeerState>`, so a re-broadcast applies the new preference without waiting for the next
1187        // netmap update. Both re-read the same live cell, so the outbound route set and the inbound
1188        // source filter stay coupled (the anti-leak invariant).
1189        self.peer_tracker
1190            .upgrade()
1191            .ok_or(Error {
1192                kind: ErrorKind::ActorGone,
1193                target_actor: None,
1194                message_ty: None,
1195            })?
1196            .ask(peer_tracker::RepublishState)
1197            .await
1198            .map_err(Into::into)
1199    }
1200
1201    /// Whether this node currently accepts peer-advertised subnet routes (`--accept-routes`).
1202    pub fn accept_routes(&self) -> bool {
1203        self.env.accept_routes()
1204    }
1205
1206    /// Toggle whether this node accepts the tailnet's DNS configuration at runtime (the equivalent of
1207    /// Go `tsnet`'s `LocalClient.EditPrefs(CorpDNS)` / `tailscale set --accept-dns`), without
1208    /// recreating the device.
1209    ///
1210    /// Like [`set_accept_routes`](Self::set_accept_routes), `accept-dns` is a purely **local**
1211    /// preference — it is never reported to control (no `Hostinfo` / MapRequest side), so this only
1212    /// re-runs the local MagicDNS view rebuild. Updates the live cell, then asks the peer tracker to
1213    /// re-broadcast the current peer set; the resulting `PeerState` rebuild re-applies the gate on the
1214    /// MagicDNS responder (and the peerAPI DoH server that shares its view). When `false`, the
1215    /// responder ignores the control-pushed DNS config and answers every query `REFUSED`, mirroring Go
1216    /// applying an empty `dns.Config` when `CorpDNS` is off; flipping it back to `true` restores
1217    /// serving from the still-current config (the real config is never destroyed — only gated at the
1218    /// read site), so the OFF→ON restore is automatic.
1219    pub async fn set_accept_dns(&self, accept: bool) -> Result<(), Error> {
1220        // Update the live cell every reader borrows from (same primitive/rationale as set_accept_routes).
1221        self.accept_dns_tx.send_replace(accept);
1222
1223        // Trigger an immediate view rebuild: the MagicDNS responder re-reads `Env::accept_dns()` when
1224        // it handles a `PeerState`, so a re-broadcast re-applies the gate on both the netstack
1225        // responder and the peerAPI DoH server (which share the view) without waiting for the next
1226        // control/peer update. Mirrors `set_accept_routes`'s republish.
1227        self.peer_tracker
1228            .upgrade()
1229            .ok_or(Error {
1230                kind: ErrorKind::ActorGone,
1231                target_actor: None,
1232                message_ty: None,
1233            })?
1234            .ask(peer_tracker::RepublishState)
1235            .await
1236            .map_err(Into::into)
1237    }
1238
1239    /// Whether this node currently accepts the tailnet's DNS configuration (`--accept-dns` / `CorpDNS`).
1240    pub fn accept_dns(&self) -> bool {
1241        self.env.accept_dns()
1242    }
1243
1244    /// Change the set of subnet routes this node advertises at runtime (Go `tailscale set
1245    /// --advertise-routes`). Applies BOTH halves together so the wire and the data path agree:
1246    ///
1247    /// 1. **Wire** — re-advertise `Hostinfo.RoutableIPs` to control on the live map-poll connection
1248    ///    (so control grants the node the subnet-router role for exactly these prefixes).
1249    /// 2. **Local** — swap the forwarder's accept/dial route table (so the node actually forwards the
1250    ///    prefixes it advertises). New flows see the new set; in-flight flows keep their routing.
1251    ///
1252    /// `routes` is filtered to the IPv4-only, deduplicated set this fork can honor (IPv6 prefixes are
1253    /// dropped under the IPv6-off posture — we never advertise a route we won't forward), so the wire
1254    /// and forwarder are fed the identical final set. This sets the explicit subnet prefixes only; it
1255    /// does NOT touch the exit-node `0.0.0.0/0` advertisement (a separate concern).
1256    pub async fn set_advertise_routes(&self, routes: Vec<ipnet::IpNet>) -> Result<(), Error> {
1257        // Update the explicit-subnet part of the live preference, keep the exit-node flag, and
1258        // re-send the composed set. Composes with `set_advertise_exit_node` (neither clobbers the
1259        // other's contribution to `Hostinfo.RoutableIPs`).
1260        let composed = {
1261            let mut adv = self.advertise.lock().unwrap_or_else(|p| p.into_inner());
1262            adv.routes = routes;
1263            compose_advertised_routes(adv.routes.clone(), adv.exit_node)
1264        };
1265        self.apply_advertised_routes(composed).await
1266    }
1267
1268    /// Advertise (or stop advertising) this node as an **exit node** — the `0.0.0.0/0` default route
1269    /// (Go `tailscale set --advertise-exit-node`). Composes with
1270    /// [`set_advertise_routes`](Self::set_advertise_routes): toggling the exit node re-sends the
1271    /// explicit subnet routes plus (when `enable`) `0.0.0.0/0`, so the two preferences are
1272    /// independent. Like `set_advertise_routes`, this both re-advertises `Hostinfo.RoutableIPs` to
1273    /// control AND updates the forwarder's accept/dial set, applied together. Control still gates
1274    /// whether the advertised exit node is actually *usable* by peers (this only advertises it).
1275    pub async fn set_advertise_exit_node(&self, enable: bool) -> Result<(), Error> {
1276        let composed = {
1277            let mut adv = self.advertise.lock().unwrap_or_else(|p| p.into_inner());
1278            adv.exit_node = enable;
1279            compose_advertised_routes(adv.routes.clone(), adv.exit_node)
1280        };
1281        self.apply_advertised_routes(composed).await
1282    }
1283
1284    /// Push a freshly-composed advertised-route set to BOTH halves: the forwarder's accept/dial
1285    /// table (local) FIRST — so the node forwards a prefix before control grants it, never the
1286    /// reverse — then re-advertise `Hostinfo.RoutableIPs` to control on the live map-poll connection
1287    /// (wire). `composed` is already filtered + exit-node-folded by [`compose_advertised_routes`].
1288    async fn apply_advertised_routes(&self, composed: Vec<ipnet::IpNet>) -> Result<(), Error> {
1289        self.forwarder
1290            .ask(forwarder_actor::UpdateRoutes {
1291                routes: composed.clone(),
1292            })
1293            .await?;
1294        self.control
1295            .ask(control_runner::SetAdvertiseRoutes { routes: composed })
1296            .await
1297            .map_err(Into::into)
1298    }
1299
1300    /// Change this node's hostname at runtime (Go `tailscale set --hostname`), re-reporting
1301    /// `Hostinfo.Hostname` to control on the live map-poll connection. Hostname is display-only
1302    /// (control reflects it in the netmap), so there is no dataplane half. The new value is also
1303    /// what a subsequent re-registration reports, so it persists across a reconnect.
1304    pub async fn set_hostname(&self, hostname: String) -> Result<(), Error> {
1305        self.control
1306            .ask(control_runner::SetHostname { hostname })
1307            .await
1308            .map_err(Into::into)
1309    }
1310
1311    /// Subscribe to netmap peer-change events: the **narrow** peer-set view.
1312    ///
1313    /// Returns a [`watch::Receiver`] whose value is the current set of peer [`StatusNode`]s,
1314    /// updated on every netmap state update from control. Await
1315    /// [`watch::Receiver::changed`](tokio::sync::watch::Receiver::changed) to react to peers
1316    /// joining, leaving, or changing. For the unified Go-`WatchIPNBus` feed that merges this with
1317    /// device-state and the interactive-login URL, see [`watch_ipn_bus`](Self::watch_ipn_bus); this
1318    /// method is the peer-only projection of the same underlying cell.
1319    pub async fn watch_netmap(&self) -> Result<watch::Receiver<Vec<StatusNode>>, Error> {
1320        self.peer_tracker
1321            .upgrade()
1322            .ok_or(Error {
1323                kind: ErrorKind::ActorGone,
1324                target_actor: None,
1325                message_ty: None,
1326            })?
1327            .ask(peer_tracker::WatchNetmap)
1328            .await
1329            .map_err(Into::into)
1330    }
1331
1332    /// The current device connection-[`DeviceState`].
1333    pub fn device_state(&self) -> DeviceState {
1334        self.state_rx.borrow().clone()
1335    }
1336
1337    /// Watch the device connection-[`DeviceState`] (`Connecting` → `Running` / `NeedsLogin` /
1338    /// `Expired` / `Failed`).
1339    ///
1340    /// Returns a [`watch::Receiver`]; await
1341    /// [`changed`](tokio::sync::watch::Receiver::changed) to react push-style to control connection
1342    /// transitions instead of polling [`status`](Self::status). The initial value is the current
1343    /// state. Note: a transient per-reconnect dip back to `Connecting` is **not** currently
1344    /// emitted (control transparently reconnects below this layer); the state reflects registration
1345    /// outcome and node-key expiry.
1346    pub fn watch_state(&self) -> watch::Receiver<DeviceState> {
1347        self.state_rx.clone()
1348    }
1349
1350    /// Wait until the device finishes registering, returning a typed outcome.
1351    ///
1352    /// Resolves `Ok(())` once the device reaches [`DeviceState::Running`]. Returns a typed
1353    /// [`RegistrationError`] otherwise — the actionable distinction between "retry", "re-pair", and
1354    /// "drive interactive login" that replaces polling the device's `ipv4_addr` in a loop:
1355    /// - `AuthRejected` — bad/expired/unknown auth key. **Permanent** (re-pair).
1356    /// - `NeedsLogin(url)` — interactive authorization required (no usable auth key). **Not
1357    ///   permanent**: the runtime keeps retrying and will reach `Running` once the user authorizes
1358    ///   the URL. An **auth-key** caller should treat this as a failure; an **interactive** caller
1359    ///   should ignore this return and instead drive the flow via [`watch_state`](Self::watch_state)
1360    ///   (this method returns the URL eagerly rather than blocking for the whole login).
1361    /// - `NetworkUnreachable` — control unreachable. **Transient** (retry).
1362    /// - `Timeout` — no settled state within `timeout`.
1363    ///
1364    /// `KeyExpired` is not produced by this initial wait (a node key expires only *after* it has
1365    /// come up); observe post-registration expiry via [`watch_state`](Self::watch_state).
1366    /// `timeout` of `None` waits indefinitely for a settled state.
1367    pub async fn wait_until_running(
1368        &self,
1369        timeout: Option<Duration>,
1370    ) -> Result<(), RegistrationError> {
1371        device_state::wait_for_running(self.state_rx.clone(), timeout).await
1372    }
1373
1374    /// Subscribe to the unified IPN notification bus (Go `ipn` `WatchIPNBus` /
1375    /// `LocalBackend.WatchNotifications`).
1376    ///
1377    /// Returns an [`IpnBusWatcher`]; await [`next`](IpnBusWatcher::next) to receive [`Notify`]
1378    /// events that coalesce device-[`DeviceState`] changes (including the interactive-login URL as
1379    /// `browse_to_url`) and netmap peer-set changes into one feed. `mask`
1380    /// ([`NotifyWatchOpt`]) selects which current-state fields are front-loaded as an initial
1381    /// snapshot on subscribe (`INITIAL_STATE` / `INITIAL_NETMAP`), exactly like Go's
1382    /// `NotifyInitialState` / `NotifyInitialNetMap`.
1383    ///
1384    /// This composes the same `watch` cells as [`watch_state`](Self::watch_state),
1385    /// [`watch_netmap`](Self::watch_netmap), and `pop_browser_url` — one source of truth, so the
1386    /// merged feed cannot diverge from those narrow views. Besides the registration-time login URL
1387    /// (carried by `NeedsLogin`), `browse_to_url` also streams the mid-session
1388    /// `MapResponse.PopBrowserURL` (re-auth / consent on an already-running node). Delivery is
1389    /// best-effort/lossy (a bounded per-watcher buffer; a notification is dropped rather than
1390    /// blocking the runtime if a slow consumer's buffer fills), matching Go's bus. The stream ends
1391    /// (`next` returns `None`) on runtime shutdown or when the watcher is dropped.
1392    pub async fn watch_ipn_bus(&self, mask: NotifyWatchOpt) -> Result<IpnBusWatcher, Error> {
1393        // The peer-set cell lives on the peer-tracker actor; obtain a receiver the same way
1394        // `watch_netmap` does. State + shutdown cells are held here.
1395        let peer_rx = self
1396            .peer_tracker
1397            .upgrade()
1398            .ok_or(Error {
1399                kind: ErrorKind::ActorGone,
1400                target_actor: None,
1401                message_ty: None,
1402            })?
1403            .ask(peer_tracker::WatchNetmap)
1404            .await?;
1405        // The running-node consent-URL cell lives on the control runner; obtain its receiver the
1406        // same way (the control actor ref is strong, so no upgrade needed).
1407        let browser_rx = self.control.ask(control_runner::WatchBrowserUrl).await?;
1408        Ok(ipn_bus::spawn_watcher(
1409            mask,
1410            self.state_rx.clone(),
1411            peer_rx,
1412            browser_rx,
1413            self.shutdown.subscribe(),
1414        ))
1415    }
1416
1417    /// Attempt to shut down the runtime gracefully.
1418    ///
1419    /// Returns false if the shutdown timed out. It is still shut down if it timed out, just
1420    /// more violently and with possible resource leaks.
1421    pub async fn graceful_shutdown(self, timeout: Option<Duration>) -> bool {
1422        self.shutdown.send_replace(true);
1423
1424        async fn _shutdown_all(runtime: Runtime) {
1425            // See the note in `Drop` for why we only need to stop these actors to bring down the
1426            // whole runtime.
1427
1428            let _ignore = runtime.control.stop_gracefully().await;
1429            let _ignore = runtime.dataplane.stop_gracefully().await;
1430            let _ignore = runtime.env.bus.stop_gracefully().await;
1431
1432            tokio::join![
1433                runtime.control.wait_for_shutdown(),
1434                runtime.dataplane.wait_for_shutdown(),
1435                runtime.env.bus.wait_for_shutdown(),
1436            ];
1437        }
1438
1439        let fut = _shutdown_all(self);
1440
1441        match timeout {
1442            Some(timeout) => tokio::time::timeout(timeout, fut).await.is_ok(),
1443            None => {
1444                fut.await;
1445                true
1446            }
1447        }
1448    }
1449}
1450
1451impl Drop for Runtime {
1452    fn drop(&mut self) {
1453        // Stop the taildrop reaper so it cannot outlive the runtime (the `reauth_bridge` pattern). It
1454        // also self-exits when `shutdown` flips below, but aborting is immediate and covers the
1455        // already-shutdown early-return path too.
1456        if let Some(reaper) = self.taildrop_reaper.take() {
1457            reaper.abort();
1458        }
1459
1460        // We must have already run `graceful_shutdown`: on the happy path, this does nothing, but
1461        // if it timed out, we need to make sure the actors are dead so we don't leak them and their
1462        // dependents.
1463        if *self.shutdown.borrow() {
1464            self.control.kill();
1465            self.dataplane.kill();
1466            self.env.bus.kill();
1467            return;
1468        }
1469
1470        self.shutdown.send_replace(true);
1471
1472        // Actors shut down when the last ActorRef to them is dropped (as nothing can send them
1473        // messages anymore). If we don't hold an ActorRef in Runtime, in general the only thing
1474        // that has one is the MessageBus, which each actor subscribes to for a subset of messages.
1475        // Hence, if we shut down the bus, most actors die as well.
1476
1477        // First shut down the actors we have an ActorRef to:
1478        try_shutdown(&self.control);
1479        try_shutdown(&self.dataplane);
1480
1481        // Then shutdown the message bus, stopping the rest of the actors:
1482        try_shutdown(&self.env.bus);
1483    }
1484}
1485
1486fn try_shutdown(a: &ActorRef<impl kameo::Actor>) {
1487    if let Err(e) = a.mailbox_sender().try_send(Signal::Stop) {
1488        tracing::error!(error = %e, "graceful shutdown failed, killing actor");
1489        a.kill();
1490    }
1491}
1492
1493/// Tailscale's overlay MTU. The userspace netstacks MUST advertise an MSS that fits this so they
1494/// never hand the WireGuard encrypt path an IP packet larger than the tunnel can carry (the netstack
1495/// has no PMTU discovery and nothing re-segments between it and the 1280-MTU TUN). This is the same
1496/// default the TUN device uses (`tun_config_from_control`); both are derived from this value so the
1497/// netstack and the TUN always agree.
1498///
1499/// This is the **inner** IP-packet budget. The WireGuard transport header (a 16-byte
1500/// `TransportDataHeader` + the 16-byte AEAD tag = 32 bytes) is added by `TransmitSession::encrypt`
1501/// *after* the netstack produces the inner packet, and the outer UDP/IP headers ride on top of that.
1502/// So do NOT subtract the WireGuard overhead here — that would be a double-subtraction that
1503/// under-fills the tunnel and diverges from the TUN's MTU. The assert below documents that the outer
1504/// datagram still fits a conventional 1500-byte physical path with margin (1280 + 32 WG + 8 UDP +
1505/// 20 outer-IP = 1340).
1506const DEFAULT_OVERLAY_MTU: u16 = 1280;
1507
1508const _: () = assert!(
1509    DEFAULT_OVERLAY_MTU as usize + 32 + 8 + 20 <= 1500,
1510    "inner overlay MTU + WireGuard(32) + UDP(8) + outer-IP(20) must fit a 1500-byte physical path"
1511);
1512
1513/// Build the netstack config shared by both userspace netstacks (application + forwarder) from the
1514/// per-deployment `tcp_buffer_size` and `mtu` knobs.
1515///
1516/// `tcp_buffer_size`: `None` keeps the netstack default (256 KiB/direction); `Some(n)` overrides it
1517/// (e.g. a smaller window on a memory-constrained exit node forwarding many concurrent flows — see
1518/// [`netstack::netcore::Config::tcp_buffer_size`]).
1519///
1520/// `mtu`: the overlay/tunnel MTU. `None` (and a stray `0`) falls back to [`DEFAULT_OVERLAY_MTU`]
1521/// (1280), exactly as the TUN device does, so the netstack's advertised MSS fits the tunnel. Leaving
1522/// this at the netstack's generic 1500 default (the prior behavior) made smoltcp advertise MSS ~1460
1523/// and segment to ~1500 B, which then overflowed the 1280 TUN — a PMTU black-hole / throughput cliff.
1524///
1525/// Factored out of [`Runtime::spawn`] so the mapping is unit-testable without standing up the actors.
1526fn netstack_config_from(
1527    tcp_buffer_size: Option<usize>,
1528    mtu: Option<u16>,
1529) -> netstack::netcore::Config {
1530    let mut c = netstack::netcore::Config::default();
1531    if let Some(tcp_buffer_size) = tcp_buffer_size {
1532        c.tcp_buffer_size = tcp_buffer_size;
1533    }
1534    // `0` is not a usable MTU; treat it like `None` and fall back to the overlay default, mirroring
1535    // the TUN's `and_then(NonZeroU16::new).unwrap_or(1280)`.
1536    let mtu = mtu.filter(|&m| m != 0).unwrap_or(DEFAULT_OVERLAY_MTU);
1537    c.mtu = usize::from(mtu);
1538    c
1539}
1540
1541/// Filter a requested advertise-route set to the IPv4-only, deduplicated set this fork can honor,
1542/// mirroring [`ts_control::Config::advertised_routes`] so a runtime `set_advertise_routes` feeds the
1543/// wire (control grant) and the forwarder (accept/dial table) the identical final set. IPv6 prefixes
1544/// are dropped under the IPv6-off posture — we never advertise a route we won't forward. Order is
1545/// preserved (first occurrence wins). Factored out so the filter is unit-testable without an actor.
1546fn filter_advertise_routes(routes: Vec<ipnet::IpNet>) -> Vec<ipnet::IpNet> {
1547    let mut filtered: Vec<ipnet::IpNet> = Vec::new();
1548    for net in routes {
1549        if matches!(net, ipnet::IpNet::V4(_)) {
1550            if !filtered.contains(&net) {
1551                filtered.push(net);
1552            }
1553        } else {
1554            tracing::warn!(prefix = %net, "dropping IPv6 advertise route (IPv6-off posture)");
1555        }
1556    }
1557    filtered
1558}
1559
1560/// Compose the final advertised-route set from the explicit subnet `routes` and the exit-node flag,
1561/// mirroring [`ts_control::Config::advertised_routes`]: the IPv4-only, deduplicated subnet prefixes,
1562/// plus `0.0.0.0/0` appended when `exit_node` is set. This is the single source of truth both
1563/// runtime advertise mutators (`set_advertise_routes`, `set_advertise_exit_node`) feed, so the two
1564/// compose instead of clobbering. Factored out so the composition is unit-testable without an actor.
1565fn compose_advertised_routes(routes: Vec<ipnet::IpNet>, exit_node: bool) -> Vec<ipnet::IpNet> {
1566    let mut filtered = filter_advertise_routes(routes);
1567    if exit_node {
1568        let default_v4 = ipnet::IpNet::V4(
1569            ipnet::Ipv4Net::new(core::net::Ipv4Addr::UNSPECIFIED, 0)
1570                .expect("0.0.0.0/0 is a valid prefix"),
1571        );
1572        if !filtered.contains(&default_v4) {
1573            filtered.push(default_v4);
1574        }
1575    }
1576    filtered
1577}
1578
1579/// The runtime's live advertised-route preference: the explicit subnet routes plus whether this node
1580/// advertises itself as an exit node. Held behind a `Mutex` on the [`Runtime`] so
1581/// [`Runtime::set_advertise_routes`] and [`Runtime::set_advertise_exit_node`] each mutate their own
1582/// part and re-send the composed set — they compose rather than clobber (Go `EditPrefs` keeps
1583/// `AdvertiseRoutes` and the exit-node advertisement as independent prefs that both feed
1584/// `Hostinfo.RoutableIPs`).
1585#[derive(Debug, Default, Clone)]
1586struct AdvertiseState {
1587    /// The explicit subnet prefixes (pre-filter; the last value passed to `set_advertise_routes`).
1588    routes: Vec<ipnet::IpNet>,
1589    /// Whether this node advertises the exit-node default route (`0.0.0.0/0`).
1590    exit_node: bool,
1591}
1592
1593/// Flatten a kameo delegated-reply [`SendError`] for the id-token RPC into the RPC's own
1594/// [`ts_control::IdTokenError`].
1595///
1596/// A [`SendError::HandlerError`](kameo::error::SendError::HandlerError) carries the real
1597/// `IdTokenError` produced by the handler and is surfaced verbatim. Any other send failure (actor
1598/// not running / stopped, mailbox full, send timeout) is a delivery problem rather than an RPC
1599/// result, so it collapses to a transient [`ts_control::IdTokenError::NetworkError`]. Factored out
1600/// of [`Runtime::fetch_id_token`] so this mapping is unit-testable without standing up an actor.
1601fn flatten_send_err<M>(
1602    e: kameo::error::SendError<M, ts_control::IdTokenError>,
1603) -> ts_control::IdTokenError {
1604    match e {
1605        kameo::error::SendError::HandlerError(err) => err,
1606        _ => ts_control::IdTokenError::NetworkError,
1607    }
1608}
1609
1610/// Flatten a kameo `SendError` from the `Logout` ask into a [`ts_control::LogoutError`].
1611///
1612/// A `HandlerError` carries the real `LogoutError` from the control RPC and is surfaced verbatim;
1613/// any other send failure (actor not running / stopped, mailbox full, send timeout) — a delivery
1614/// problem, not a logout result — collapses to the transient [`ts_control::LogoutError::NetworkError`]
1615/// (logout is idempotent, so a retry after a delivery failure is safe). Factored out of
1616/// [`Runtime::logout`] so the mapping is unit-testable without standing up an actor.
1617fn flatten_logout_send_err<M>(
1618    e: kameo::error::SendError<M, ts_control::LogoutError>,
1619) -> ts_control::LogoutError {
1620    match e {
1621        kameo::error::SendError::HandlerError(err) => err,
1622        _ => ts_control::LogoutError::NetworkError,
1623    }
1624}
1625
1626/// Flatten a kameo `SendError` from the `SetDns` ask into a [`ts_control::SetDnsError`].
1627///
1628/// A `HandlerError` carries the real `SetDnsError` from the set-dns RPC and is surfaced verbatim;
1629/// any other send failure (actor not running / stopped, mailbox full, send timeout) — a delivery
1630/// problem, not a publish result — collapses to the transient
1631/// [`ts_control::SetDnsError::NetworkError`]. Factored out of [`Runtime::set_dns`] so the mapping is
1632/// unit-testable without standing up an actor.
1633fn flatten_set_dns_send_err<M>(
1634    e: kameo::error::SendError<M, ts_control::SetDnsError>,
1635) -> ts_control::SetDnsError {
1636    match e {
1637        kameo::error::SendError::HandlerError(err) => err,
1638        _ => ts_control::SetDnsError::NetworkError,
1639    }
1640}
1641
1642/// Flatten a kameo `SendError` from a TKA mutation ask (`TkaSign`/`TkaDisable`) into a
1643/// [`ts_control::TkaSyncError`]. A `HandlerError` carries the real RPC error; any other send failure
1644/// (actor shutdown / mailbox closed) is surfaced as the transient
1645/// [`ts_control::TkaSyncError::NetworkError`]. Generic over the message type so both share it.
1646fn flatten_tka_send_err<M>(
1647    e: kameo::error::SendError<M, ts_control::TkaSyncError>,
1648) -> ts_control::TkaSyncError {
1649    match e {
1650        kameo::error::SendError::HandlerError(err) => err,
1651        _ => ts_control::TkaSyncError::NetworkError,
1652    }
1653}
1654
1655/// Flatten a kameo `SendError` from the `GetCertificate` / `GetCertPair` ask into a
1656/// [`ts_control::CertError`].
1657///
1658/// A `HandlerError` carries the real `CertError` produced by the ACME issuance and is surfaced
1659/// verbatim. `CertError` has no transient-network variant, so any other send failure (actor not
1660/// running / stopped, mailbox full, send timeout) — a delivery problem rather than an issuance
1661/// result — collapses to a [`ts_control::CertError::Io`]. Generic over the message type, so it
1662/// serves both [`Runtime::get_certificate`] and [`Runtime::cert_pair`]; factored out so the mapping
1663/// is unit-testable without standing up an actor.
1664#[cfg(feature = "acme")]
1665fn flatten_cert_send_err<M>(
1666    e: kameo::error::SendError<M, ts_control::CertError>,
1667) -> ts_control::CertError {
1668    match e {
1669        kameo::error::SendError::HandlerError(err) => err,
1670        _ => ts_control::CertError::Io(std::io::Error::other(
1671            "control runner unavailable for certificate issuance",
1672        )),
1673    }
1674}
1675
1676#[cfg(test)]
1677mod tests {
1678    use super::*;
1679
1680    /// `None` must leave the netstack's own default TCP window in place (the 256 KiB throughput
1681    /// default), and must not silently coerce to some other value.
1682    #[test]
1683    fn netstack_config_none_uses_netstack_default() {
1684        let default = netstack::netcore::Config::default();
1685        let built = netstack_config_from(None, None);
1686        assert_eq!(
1687            built.tcp_buffer_size, default.tcp_buffer_size,
1688            "None must inherit the netstack default TCP buffer size"
1689        );
1690    }
1691
1692    #[test]
1693    fn netstack_config_mtu_defaults_to_overlay_not_generic_1500() {
1694        // The crux of the fix: with no explicit MTU, the netstack must use the 1280 overlay MTU, NOT
1695        // smoltcp's generic 1500 default — otherwise it advertises an MSS that overflows the tunnel.
1696        let built = netstack_config_from(None, None);
1697        assert_eq!(
1698            built.mtu,
1699            usize::from(DEFAULT_OVERLAY_MTU),
1700            "netstack MTU must default to the 1280 overlay MTU, not the 1500 netstack default"
1701        );
1702        assert_ne!(built.mtu, 1500, "must not leave the generic 1500 default");
1703    }
1704
1705    #[test]
1706    fn netstack_config_honors_explicit_mtu_and_rejects_zero() {
1707        // An explicit (control-supplied) MTU is honored verbatim.
1708        assert_eq!(netstack_config_from(None, Some(1400)).mtu, 1400);
1709        // A stray 0 is not a usable MTU; fall back to the overlay default (mirrors the TUN).
1710        assert_eq!(
1711            netstack_config_from(None, Some(0)).mtu,
1712            usize::from(DEFAULT_OVERLAY_MTU)
1713        );
1714    }
1715
1716    #[test]
1717    fn netstack_config_overlay_mtu_matches_tun_default() {
1718        // The netstack MTU default and the TUN MTU default must be the same value, or the two
1719        // netstacks and the TUN would disagree on the segment size budget.
1720        assert_eq!(
1721            DEFAULT_OVERLAY_MTU, 1280,
1722            "overlay MTU must match the TUN device default (tun_config_from_control)"
1723        );
1724    }
1725
1726    /// `Some(n)` must override the TCP window (the memory-vs-throughput knob exit-node operators
1727    /// reach for), reaching the config that both netstacks are built from.
1728    #[test]
1729    fn netstack_config_some_overrides_buffer() {
1730        let built = netstack_config_from(Some(64 * 1024), None);
1731        assert_eq!(
1732            built.tcp_buffer_size,
1733            64 * 1024,
1734            "Some(n) must override the TCP buffer size that both netstacks use"
1735        );
1736    }
1737
1738    /// `set_advertise_routes` must feed the wire and the forwarder the IDENTICAL filtered set:
1739    /// IPv4-only (IPv6 dropped under the IPv6-off posture), deduplicated, order preserved.
1740    #[test]
1741    fn filter_advertise_routes_keeps_v4_dedups_drops_v6() {
1742        let v4a: ipnet::IpNet = "10.0.0.0/24".parse().unwrap();
1743        let v4b: ipnet::IpNet = "192.168.1.0/24".parse().unwrap();
1744        let v6: ipnet::IpNet = "2001:db8::/32".parse().unwrap();
1745
1746        // Mixed input with a duplicate v4 and a v6 prefix.
1747        let out = filter_advertise_routes(vec![v4a, v6, v4b, v4a]);
1748
1749        assert_eq!(
1750            out,
1751            vec![v4a, v4b],
1752            "v6 dropped, duplicate v4 collapsed, first-occurrence order preserved"
1753        );
1754    }
1755
1756    /// An all-IPv6 request filters to empty (we never advertise a route we won't forward) rather
1757    /// than erroring — clearing the advertised set is a legitimate outcome.
1758    #[test]
1759    fn filter_advertise_routes_all_v6_is_empty() {
1760        let v6: ipnet::IpNet = "2001:db8::/32".parse().unwrap();
1761        assert!(filter_advertise_routes(vec![v6]).is_empty());
1762    }
1763
1764    /// `compose_advertised_routes` folds the exit-node `0.0.0.0/0` onto the filtered subnet routes
1765    /// when (and only when) the exit-node flag is set — so `set_advertise_routes` and
1766    /// `set_advertise_exit_node` compose. The two preferences are independent.
1767    #[test]
1768    fn compose_advertised_routes_folds_exit_node() {
1769        let subnet: ipnet::IpNet = "10.0.0.0/24".parse().unwrap();
1770        let default_v4: ipnet::IpNet = "0.0.0.0/0".parse().unwrap();
1771
1772        // Exit node off: just the (filtered) subnet routes.
1773        assert_eq!(
1774            compose_advertised_routes(vec![subnet], false),
1775            vec![subnet],
1776            "exit-node off ⇒ no default route"
1777        );
1778        // Exit node on: subnet routes PLUS 0.0.0.0/0.
1779        assert_eq!(
1780            compose_advertised_routes(vec![subnet], true),
1781            vec![subnet, default_v4],
1782            "exit-node on ⇒ 0.0.0.0/0 appended"
1783        );
1784        // Exit node on with NO subnet routes: just the default route.
1785        assert_eq!(
1786            compose_advertised_routes(vec![], true),
1787            vec![default_v4],
1788            "exit-node alone advertises only 0.0.0.0/0"
1789        );
1790        // Idempotent: an explicit 0.0.0.0/0 already in the routes isn't duplicated by the fold.
1791        assert_eq!(
1792            compose_advertised_routes(vec![default_v4], true),
1793            vec![default_v4],
1794            "the exit-node fold dedups against an explicit default route"
1795        );
1796    }
1797
1798    /// A `HandlerError` carries the real `IdTokenError` from the RPC handler and must pass through
1799    /// verbatim, not be flattened to a generic network error. Using an `Internal(_)` payload (not
1800    /// `NetworkError`) makes the passthrough observable: a buggy flatten that always returned
1801    /// `NetworkError` would fail this assertion.
1802    #[test]
1803    fn flatten_send_err_handler_error_passes_through() {
1804        // Build an `Internal(_)` payload via the public `From<Utf8Error>` conversion (no extra
1805        // deps): it is distinct from the `_ => NetworkError` fallback, so a buggy flatten that
1806        // always returned `NetworkError` would fail this assertion.
1807        // Route the invalid bytes through a runtime Vec so the `invalid_from_utf8` lint (which only
1808        // fires on compile-time-known literals) doesn't flag this intentional bad input.
1809        let bytes = vec![0xffu8, 0xfe];
1810        let utf8_err = core::str::from_utf8(&bytes).unwrap_err();
1811        let inner = ts_control::IdTokenError::from(utf8_err);
1812        assert!(matches!(inner, ts_control::IdTokenError::Internal(_)));
1813        let e: kameo::error::SendError<control_runner::FetchIdToken, ts_control::IdTokenError> =
1814            kameo::error::SendError::HandlerError(inner.clone());
1815        assert_eq!(flatten_send_err(e), inner);
1816    }
1817
1818    /// A non-handler send failure (actor stopped) is a delivery problem, not an RPC result, so it
1819    /// must collapse to a transient `NetworkError`.
1820    #[test]
1821    fn flatten_send_err_actor_stopped_is_network_error() {
1822        let e: kameo::error::SendError<control_runner::FetchIdToken, ts_control::IdTokenError> =
1823            kameo::error::SendError::ActorStopped;
1824        assert_eq!(flatten_send_err(e), ts_control::IdTokenError::NetworkError);
1825    }
1826
1827    /// `ActorNotRunning` (the message bounces back undelivered) is likewise a delivery failure and
1828    /// must map to a transient `NetworkError`.
1829    #[test]
1830    fn flatten_send_err_actor_not_running_is_network_error() {
1831        let e: kameo::error::SendError<control_runner::FetchIdToken, ts_control::IdTokenError> =
1832            kameo::error::SendError::ActorNotRunning(control_runner::FetchIdToken {
1833                audience: "sts.amazonaws.com".to_string(),
1834            });
1835        assert_eq!(flatten_send_err(e), ts_control::IdTokenError::NetworkError);
1836    }
1837
1838    /// A `HandlerError` from the logout RPC carries the real `LogoutError` and must pass through
1839    /// verbatim. An `Internal(_)` payload (distinct from the `_ => NetworkError` fallback) makes the
1840    /// passthrough observable.
1841    #[test]
1842    fn flatten_logout_send_err_handler_error_passes_through() {
1843        let inner = ts_control::LogoutError::Internal(ts_control::LogoutInternalErrorKind::Http);
1844        assert!(matches!(inner, ts_control::LogoutError::Internal(_)));
1845        let e: kameo::error::SendError<control_runner::Logout, ts_control::LogoutError> =
1846            kameo::error::SendError::HandlerError(inner.clone());
1847        assert_eq!(flatten_logout_send_err(e), inner);
1848    }
1849
1850    /// A non-handler send failure (actor stopped) is a delivery problem, not a logout result, and
1851    /// collapses to a transient `NetworkError` (logout is idempotent, so a retry is safe).
1852    #[test]
1853    fn flatten_logout_send_err_actor_stopped_is_network_error() {
1854        let e: kameo::error::SendError<control_runner::Logout, ts_control::LogoutError> =
1855            kameo::error::SendError::ActorStopped;
1856        assert_eq!(
1857            flatten_logout_send_err(e),
1858            ts_control::LogoutError::NetworkError
1859        );
1860    }
1861
1862    /// A `HandlerError` from the set-dns RPC carries the real `SetDnsError` and must pass through
1863    /// verbatim. An `Internal(_)` payload (distinct from the `_ => NetworkError` fallback) makes the
1864    /// passthrough observable.
1865    #[test]
1866    fn flatten_set_dns_send_err_handler_error_passes_through() {
1867        let inner = ts_control::SetDnsError::Internal(ts_control::SetDnsInternalErrorKind::Http);
1868        assert!(matches!(inner, ts_control::SetDnsError::Internal(_)));
1869        let e: kameo::error::SendError<control_runner::SetDns, ts_control::SetDnsError> =
1870            kameo::error::SendError::HandlerError(inner.clone());
1871        assert_eq!(flatten_set_dns_send_err(e), inner);
1872    }
1873
1874    /// A non-handler send failure (actor stopped) is a delivery problem, not a publish result, and
1875    /// collapses to a transient `NetworkError`.
1876    #[test]
1877    fn flatten_set_dns_send_err_actor_stopped_is_network_error() {
1878        let e: kameo::error::SendError<control_runner::SetDns, ts_control::SetDnsError> =
1879            kameo::error::SendError::ActorStopped;
1880        assert_eq!(
1881            flatten_set_dns_send_err(e),
1882            ts_control::SetDnsError::NetworkError
1883        );
1884    }
1885
1886    /// A `HandlerError` from a TKA mutation RPC carries the real `TkaSyncError` and must pass through
1887    /// verbatim (an `Unsupported` payload makes the passthrough observable, distinct from the
1888    /// `_ => NetworkError` fallback).
1889    #[test]
1890    fn flatten_tka_send_err_handler_error_passes_through() {
1891        let e: kameo::error::SendError<control_runner::TkaSign, ts_control::TkaSyncError> =
1892            kameo::error::SendError::HandlerError(ts_control::TkaSyncError::Unsupported);
1893        assert_eq!(
1894            flatten_tka_send_err(e),
1895            ts_control::TkaSyncError::Unsupported
1896        );
1897    }
1898
1899    /// A non-handler send failure (actor stopped) collapses to a transient `NetworkError`.
1900    #[test]
1901    fn flatten_tka_send_err_actor_stopped_is_network_error() {
1902        let e: kameo::error::SendError<control_runner::TkaSign, ts_control::TkaSyncError> =
1903            kameo::error::SendError::ActorStopped;
1904        assert_eq!(
1905            flatten_tka_send_err(e),
1906            ts_control::TkaSyncError::NetworkError
1907        );
1908    }
1909
1910    /// The same flatten works for the `TkaDisable` message type (the helper is generic over `M`).
1911    #[test]
1912    fn flatten_tka_send_err_works_for_disable() {
1913        let e: kameo::error::SendError<control_runner::TkaDisable, ts_control::TkaSyncError> =
1914            kameo::error::SendError::HandlerError(ts_control::TkaSyncError::Unsupported);
1915        assert_eq!(
1916            flatten_tka_send_err(e),
1917            ts_control::TkaSyncError::Unsupported
1918        );
1919    }
1920}