tailscale/lib.rs
1//! A work-in-progress [Tailscale](https://tailscale.com/blog/how-tailscale-works) library.
2//!
3//! `tailscale` allows Rust programs to connect to a tailnet and exchange traffic with peers over
4//! TCP and UDP. It can communicate with other `tailscale`-based peers, `tailscaled` (the Tailscale
5//! Go client), `tsnet`, and `libtailscale` via public DERP servers.
6//!
7//! <div class="warning">
8//! `tailscale` is unstable and insecure.
9//!
10//! We welcome enthusiasm and interest, but please **do not** build production software using these
11//! libraries or rely on it for data privacy until we have a chance to batten down some hatches and
12//! complete a third-party audit.
13//!
14//! See the [Caveats section](#caveats) for more details.
15//! </div>
16//!
17//! For language bindings, see the following crates:
18//!
19//! - C: [ts_ffi](https://docs.rs/ts_ffi)
20//! - Python: [ts_python](https://docs.rs/ts_python)
21//! - Elixir: [ts_elixir](https://docs.rs/ts_elixir)
22//!
23//! For instructions on how to run tests, lints, etc., see [CONTRIBUTING.md]. For the high-level
24//! architecture and repository layout, see [ARCHITECTURE.md].
25//!
26//! ## Code Sample
27//!
28//! A simple UDP client that periodically sends messages to a tailnet peer at `100.64.0.1:5678`:
29//!
30//! ```no_run
31//! # use std::{
32//! # time::Duration,
33//! # net::Ipv4Addr,
34//! # error::Error,
35//! # };
36//! #
37//! # #[tokio::main]
38//! # async fn main() -> Result<(), Box<dyn Error>> {
39//! // Open a new connection to the tailnet
40//! let dev = tailscale::Device::new(
41//! &tailscale::Config::default_with_key_file("tsrs_keys.json").await?,
42//! Some("YOUR_AUTH_KEY_HERE".to_owned()),
43//! ).await?;
44//!
45//! // Bind a UDP socket on our tailnet IP, port 1234
46//! let sock = dev.udp_bind((dev.ipv4_addr().await?, 1234).into()).await?;
47//!
48//! // Send a packet containing "hello, world!" to 100.64.0.1:5678 once per second
49//! loop {
50//! sock.send_to((Ipv4Addr::new(100, 64, 0, 1), 5678).into(), b"hello, world!").await?;
51//! tokio::time::sleep(Duration::from_secs(1)).await;
52//! }
53//! # }
54//! ```
55//!
56//! Additional examples of using the `tailscale` crate can be found in the [`examples/`] directory.
57//!
58//! ## Using `tailscale`
59//!
60//! To use this crate or the language bindings, you will need to set the `TS_RS_EXPERIMENT` env var
61//! to `this_is_unstable_software`. We'll remove this requirement after a third-party code/cryptography
62//! audit and any necessary fixes.
63//!
64//! Under the hood, we use Tokio for our async runtime. You must also use Tokio, any kind and most
65//! configurations of Tokio runtimes should work, but there must be one available when you call any
66//! async API functions. The easiest way to do this is to use `#[tokio::main]`, see the
67//! [Tokio docs](https://docs.rs/tokio) for more information. In the future, we would like to limit
68//! our reliance on Tokio so that there are alternatives for users of other async runtimes.
69//!
70//! ## Caveats
71//!
72//! This software is still a work-in-progress! We are providing it in the open at this stage out of
73//! a belief in open-source and to see where the community runs with it, but please be aware of a
74//! few important considerations:
75//!
76//! - This implementation contains unaudited cryptography and hasn't undergone a comprehensive
77//! security analysis. Conservatively, assume there could be a critical security hole meaning
78//! anything you send or receive could be in the clear on the public Internet.
79//! - There are no compatibility guarantees at the moment. This is early-days software - we may
80//! break dependent code in order to get things right.
81//! - Direct peer-to-peer connections via NAT traversal are implemented (STUN-discovered endpoints
82//! and Disco, with `CallMeMaybe` hole-punching over DERP), with DERP relays as the fallback when
83//! no direct path is available. Hard/symmetric NATs get the same single fixed-local-port candidate
84//! (`EndpointSTUN4LocalPort`) Go Tailscale uses; behind a NAT with no static port mapping a flow
85//! may still stay relayed through DERP, which caps its throughput. (Upstream Go does **not** do a
86//! "256-port birthday-paradox spray" — that is a common misconception; the single-candidate guess
87//! is the actual behavior, and this fork matches it.)
88//!
89//! ## Feature Flags
90//!
91//! - `axum`: enables the `axum` module, which enables you to run an `axum` HTTP server on top
92//! of a [`netstack::TcpListener`].
93//! - `tsnet`: enables the `tsnet` module — a Go-idiomatic `tsnet.Server`-shaped facade over
94//! [`Device`] and [`Config`]. Set fields, then call `up`/`listen`/`dial`/`loopback`/`close`/…, and
95//! the wrapped [`Device`] is built and started lazily on the first call (Go's "fields may be
96//! changed until the first method call"). A thin ergonomics layer only — same engine, same typed
97//! returns. See the [`tsnet` module docs] for the full Go `tsnet.Server` → Rust API mapping.
98//!
99//! ## Platform Support
100//!
101//! `tailscale` currently supports the following platforms:
102//!
103//! - Linux (x86_64 and ARM64)
104//! - macOS (ARM64)
105//!
106//! ## Component crates
107//!
108//! The following crates are part of the tailscale-rs project and are dependencies of this one. For
109//! many tasks, just this crate should be sufficient and these other crates are an implementation detail.
110//! There are other crates too, see [ARCHITECTURE.md]
111//! or the [GitHub repo](https://github.com/tailscale/tailscale-rs).
112//!
113//! - [ts_runtime](https://docs.rs/ts_runtime): for each API-level `Device`, the runtime uses an actor
114//! architecture to manage the lifecycle of the control client, data plane components, netstack, etc.
115//! A message bus passes updates and communications between these top-level actors.
116//! - [ts_netcheck](https://docs.rs/ts_netcheck): checks network availability and reports latency to
117//! DERP servers in different regions.
118//! - [ts_netstack_smoltcp](https://docs.rs/ts_netstack_smoltcp): a [smoltcp](https://docs.rs/smoltcp)-based
119//! network stack that processes Layer 3+ packets to/from the overlay network.
120//! - [ts_control](https://docs.rs/ts_control): control plane client that handles registration,
121//! authorization/authentication, configuration, and streaming updates.
122//! - [ts_dataplane](https://docs.rs/ts_dataplane): wires all the individual data plane functions together,
123//! flowing inbound and outbound packets through the components in the correct order.
124//! - [ts_tunnel](https://docs.rs/ts_tunnel): a partial implementation of the WireGuard specification
125//! that protects all data plane traffic, and is interoperable with other WireGuard clients, including Tailscale clients.
126//! - [ts_cli_util](https://docs.rs/ts_cli_util): helpers for writing command line tools and initializing
127//! logging, used in examples.
128//! - [ts_disco_protocol](https://docs.rs/ts_disco_protocol): incomplete implementation of Tailscale's
129//! discovery protocol (disco).
130//!
131//! [ARCHITECTURE.md]: https://github.com/tailscale/tailscale-rs/blob/main/ARCHITECTURE.md
132//! [CONTRIBUTING.md]: https://github.com/tailscale/tailscale-rs/blob/main/CONTRIBUTING.md
133//! [`examples/`]: https://github.com/tailscale/tailscale-rs/blob/main/examples/README.md
134//! [open an issue]: https://github.com/tailscale/tailscale-rs/issues
135//! [`axum` HTTP server]: https://docs.rs/axum/latest/axum/
136//! [`tsnet` module docs]: https://docs.rs/geiserx_tailscale/latest/tailscale/tsnet/
137
138use std::{
139 net::{IpAddr, Ipv4Addr, Ipv6Addr, SocketAddr},
140 time::Duration,
141};
142
143#[doc(inline)]
144pub use config::Config;
145#[doc(inline)]
146pub use error::{Error, InternalErrorKind};
147// Re-exported so a downstream crate depending only on `tailscale` can name the auth-key secret type
148// for [`Device::new_with_secret`] without taking a separate, version-pinned dependency on `secrecy`
149// (which would risk a `SecretString`-type mismatch if the two `secrecy` majors diverged). Callers
150// pass `tailscale::SecretString`; `secrecy` is a pure-Rust wrapper (no aws-lc/openssl/ring).
151pub use secrecy::SecretString;
152#[doc(inline)]
153pub use ts_control::ExitNodeSelector;
154#[doc(inline)]
155pub use ts_control::Node as NodeInfo;
156#[doc(inline)]
157pub use ts_control::tls::{CertifiedKey, TlsAcceptor, TlsStream};
158#[doc(inline)]
159pub use ts_control::{CertError, MISSING_CERT_RPC, ServeConfig, ServeState, ServeTarget};
160/// The netmap DNS configuration returned by [`Device::dns_config`] (Go `netmap.NetworkMap.DNS`).
161#[doc(inline)]
162pub use ts_control::{DnsConfig, DnsResolver, ExtraRecord};
163#[doc(inline)]
164pub use ts_control::{ExitProxyConfig, ExitProxyScheme};
165pub use ts_control::{
166 IdTokenError, LogoutError, ServiceError, ServiceMode, SetDnsError, SetDnsInternalErrorKind,
167 SshAccept, SshAction, SshConnIdentity, SshDecision, SshDenyReason, SshPolicy, SshPrincipal,
168 SshRule, StableNodeId,
169};
170// Re-exported so the application data-path transport can be selected through the `tailscale`
171// facade alone: `Config::transport_mode` is `TransportMode` (default `Netstack`; `Tun(TunConfig {
172// name, mtu })` for a real kernel TUN interface). Both are `pub` in `ts_control` but were not
173// reachable through this facade, forcing downstream crates to depend on `ts_control` directly just
174// to name them.
175pub use ts_control::{TransportMode, TunConfig};
176#[doc(inline)]
177pub use ts_netstack_smoltcp::PingError;
178use ts_netstack_smoltcp::{CreateSocket, netcore::Channel};
179#[doc(inline)]
180pub use ts_runtime::fallback_tcp::{
181 FallbackConnFuture, FallbackConnHandler, FallbackDecision, FallbackTcpHandle,
182};
183#[doc(inline)]
184pub use ts_runtime::taildrop::WaitingFile;
185#[doc(inline)]
186pub use ts_runtime::{
187 DeviceState, DnsQueryResult, ExitNodeSuggestion, FileTarget, IpnBusWatcher, NetcheckReport,
188 Notify, NotifyWatchOpt, RegionLatency, RegistrationError, Status, StatusNode, TkaLogEntry,
189 WhoIs,
190};
191/// The interactive-login URL type returned by [`Device::pop_browser_url`].
192#[doc(inline)]
193pub use url::Url;
194
195#[cfg(feature = "axum")]
196pub mod axum;
197pub mod config;
198mod dial;
199mod error;
200#[cfg(feature = "hyper")]
201pub mod http;
202mod loopback;
203#[cfg(feature = "ssh")]
204pub mod ssh;
205#[cfg(feature = "tsnet")]
206pub mod tsnet;
207
208#[doc(inline)]
209pub use dial::{ConnectedUdpSocket, DialConn};
210#[doc(inline)]
211pub use loopback::LoopbackHandle;
212
213/// How a program connects to a tailnet and communicates with peers.
214///
215/// The `Device` connects to the control plane, registers itself with the tailnet, and communicates
216/// with tailnet peers. Its tailnet identity is determined by the key state provided at
217/// construction-time.
218pub struct Device {
219 runtime: ts_runtime::Runtime,
220 /// Command channel to the application netstack. `None` in TUN transport mode, where there is
221 /// no userspace application netstack; the channel-driven socket APIs ([`Device::udp_bind`],
222 /// [`Device::tcp_listen`], [`Device::tcp_connect`], [`Device::ping`]) are unsupported there.
223 channel: Option<Channel>,
224 /// Whether IPv6 is enabled on the tailnet overlay (the `Config::enable_ipv6` gate, default
225 /// `false`). Captured at construction; used by [`Device::listen_service`] to decide whether an
226 /// IPv6 VIP-service address is bindable (the netstack only accepts IPv6 overlay addresses when
227 /// this is set).
228 enable_ipv6: bool,
229 /// The stored Serve config + its live per-port accept loops (`tsnet`'s `Get/SetServeConfig` +
230 /// serving runtime). Built lazily on the first [`Device::set_serve_config`] (it needs this
231 /// node's overlay IPv4, only known after registration). Held here so its accept loops abort when
232 /// the `Device` drops; `None` (empty config) until the first `set`.
233 serve: std::sync::Mutex<Option<ts_runtime::serve::ServeManager>>,
234 /// The live Funnel ingress manager (`tsnet`'s `ListenFunnel` data path), built on
235 /// [`Device::listen_funnel`](crate::Device::listen_funnel). Held here so its TLS-termination pump and the installed peerAPI
236 /// ingress sink stay alive for the device's life (and tear down when a new `listen_funnel`
237 /// replaces it, or the `Device` drops). `None` until the first `listen_funnel`.
238 funnel: std::sync::Mutex<Option<ts_runtime::funnel::FunnelManager>>,
239}
240
241/// Map a [`ts_runtime::taildrop::TaildropError`] to the device-facing [`Error`]. `Error` is a
242/// `Copy` enum with no payload, so the I/O detail string is dropped, but the *kind* is preserved so
243/// a caller can still distinguish the actionable cases: an invalid name →
244/// [`InternalErrorKind::BadRequest`], an in-progress conflict → [`InternalErrorKind::AlreadyExists`],
245/// a missing file → [`InternalErrorKind::NotFound`], and any other filesystem failure →
246/// [`InternalErrorKind::Io`].
247fn taildrop_err(e: ts_runtime::taildrop::TaildropError) -> Error {
248 use ts_runtime::taildrop::TaildropError;
249 match e {
250 TaildropError::InvalidFileName => Error::Internal(InternalErrorKind::BadRequest),
251 TaildropError::FileExists => Error::Internal(InternalErrorKind::AlreadyExists),
252 TaildropError::Io(io) if io.kind() == std::io::ErrorKind::NotFound => {
253 Error::Internal(InternalErrorKind::NotFound)
254 }
255 TaildropError::Io(_) => Error::Internal(InternalErrorKind::Io),
256 }
257}
258
259/// Map a [`ts_runtime::taildrop_send::TaildropSendError`] (the Taildrop *sender*) to the
260/// device-facing [`Error`]. The send-side conflict/forbidden/unexpected-status cases all reduce to
261/// `BadRequest` (the peer refused the transfer for a request-level reason), a dial failure or
262/// timeout to `Timeout`, an invalid name to `BadRequest`, and any stream I/O failure to `Io`.
263fn taildrop_send_err(e: ts_runtime::taildrop_send::TaildropSendError) -> Error {
264 use ts_runtime::taildrop_send::TaildropSendError;
265 match e {
266 TaildropSendError::Connect | TaildropSendError::Timeout => Error::Timeout,
267 TaildropSendError::InvalidName
268 | TaildropSendError::Forbidden
269 | TaildropSendError::Conflict
270 | TaildropSendError::UnexpectedStatus(_) => Error::Internal(InternalErrorKind::BadRequest),
271 TaildropSendError::Io => Error::Internal(InternalErrorKind::Io),
272 }
273}
274
275/// Resolve the effective registration auth key from `auth_key` plus the config's
276/// workload-identity-federation (WIF) / OAuth-client fields.
277///
278/// With the `identity-federation` feature enabled, an OAuth client secret (`tskey-client-…`) or a
279/// `client_id` + (`id_token` | `audience`) is exchanged for a Tailscale auth key against the SaaS
280/// admin API before registration (Go `tsnet.Server`'s `resolveAuthKey`). Without the feature this is
281/// a pure pass-through: `auth_key` is returned unchanged and the WIF config fields are ignored, so
282/// the default build is byte-identical to before.
283#[cfg(feature = "identity-federation")]
284async fn resolve_auth_key(
285 config: &Config,
286 auth_key: Option<String>,
287) -> Result<Option<String>, Error> {
288 let wif = ts_control::WifConfig {
289 auth_key,
290 client_id: config.client_id.clone(),
291 client_secret: config.client_secret.clone(),
292 id_token: config.id_token.clone(),
293 audience: config.audience.clone(),
294 tags: config.requested_tags.clone(),
295 };
296 ts_control::resolve_auth_key(&wif, &config.control_server_url)
297 .await
298 .map_err(|e| {
299 tracing::error!(error = %e, "resolving auth key via workload-identity federation");
300 Error::Internal(InternalErrorKind::BadRequest)
301 })
302}
303
304/// Pass-through when the `identity-federation` feature is disabled: the auth key is used as-is and
305/// the WIF config fields have no effect (matching Go, where the federation path is compiled out
306/// unless its optional feature is linked).
307#[cfg(not(feature = "identity-federation"))]
308async fn resolve_auth_key(
309 _config: &Config,
310 auth_key: Option<String>,
311) -> Result<Option<String>, Error> {
312 Ok(auth_key)
313}
314
315impl Device {
316 /// Create a device from the given [`Config`] and auth key.
317 ///
318 /// Internally, this will spawn multiple asynchronous actors onto a Tokio runtime.
319 ///
320 /// # Example
321 ///
322 /// ```rust,no_run
323 /// # #[tokio::main]
324 /// # async fn main() -> Result<(), Box<dyn std::error::Error>> {
325 /// # use tailscale::*;
326 /// let dev = Device::new(
327 /// &Config::default_with_key_file("tsrs_keys.json").await?,
328 /// Some("MY_AUTH_KEY".to_string()),
329 /// ).await?;
330 /// # Ok(()) }
331 /// ```
332 pub async fn new(config: &Config, auth_key: Option<String>) -> Result<Self, Error> {
333 check_magic_env()?;
334
335 // Resolve the effective registration auth key. The explicit `auth_key` argument wins; if it
336 // is `None`, fall back to `config.auth_key` (Go `tsnet.Server.AuthKey`). When the
337 // `identity-federation` feature is enabled, the resolved key is further passed through the
338 // WIF / OAuth-client bootstrap, which exchanges an OAuth client secret (`tskey-client-…`) or
339 // an IdP-issued OIDC token for a Tailscale auth key before registration (SaaS-only).
340 let auth_key = auth_key.or_else(|| config.auth_key.clone());
341 let auth_key = resolve_auth_key(config, auth_key).await?;
342
343 let rt =
344 ts_runtime::Runtime::spawn(config.into(), auth_key, (&config.key_state).into()).await?;
345 // In TUN transport mode there is no application netstack, so the runtime has no command
346 // channel: that surfaces as `UnsupportedInTunMode`, which we map to a `None` channel rather
347 // than an error (the device is still usable for control-plane and peer-lookup APIs).
348 let channel = match rt.channel().await {
349 Ok(c) => Some(c),
350 Err(e) if e.kind == ts_runtime::ErrorKind::UnsupportedInTunMode => None,
351 Err(e) => return Err(e.into()),
352 };
353
354 Ok(Self {
355 runtime: rt,
356 channel,
357 enable_ipv6: config.enable_ipv6,
358 serve: std::sync::Mutex::new(None),
359 funnel: std::sync::Mutex::new(None),
360 })
361 }
362
363 /// Create a device from the given [`Config`] and a [`SecretString`] auth key.
364 ///
365 /// This is a back-compat-preserving convenience over [`new`](Self::new) for callers that already
366 /// hold the registration auth key as a [`secrecy::SecretString`] (e.g. a daemon that keeps the
367 /// pre-auth key wrapped end-to-end). It lets the caller avoid materializing a plain `String` at
368 /// the engine boundary: the secret is exposed only on the last inch, immediately before being
369 /// handed to [`new`](Self::new).
370 ///
371 /// # Honesty about the plaintext window
372 ///
373 /// This closes the *caller's* boundary, **not** the engine's internal handling. The engine still
374 /// resolves the auth key to a plain `String` internally for registration (the plaintext `String`
375 /// window inside the engine is identical to calling [`new`](Self::new) directly) — this method
376 /// does not make the engine itself secret-clean. If you call [`new`](Self::new) you create that
377 /// `String` yourself; if you call this you do not, but the engine creates one either way.
378 ///
379 /// Passing `None` is equivalent to `new(config, None)` (falls back to `config.auth_key`).
380 ///
381 /// # Example
382 ///
383 /// ```rust,no_run
384 /// # #[tokio::main]
385 /// # async fn main() -> Result<(), Box<dyn std::error::Error>> {
386 /// # use tailscale::*;
387 /// let dev = Device::new_with_secret(
388 /// &Config::default_with_key_file("tsrs_keys.json").await?,
389 /// Some(SecretString::from("MY_AUTH_KEY")),
390 /// ).await?;
391 /// # Ok(()) }
392 /// ```
393 pub async fn new_with_secret(
394 config: &Config,
395 auth_key: Option<SecretString>,
396 ) -> Result<Self, Error> {
397 use secrecy::ExposeSecret as _;
398
399 // Expose the secret on the last inch and delegate to `new`, so the spawn/registration path
400 // is shared verbatim (no duplicated runtime-spawn logic) and the engine-internal plaintext
401 // window is byte-for-byte identical to a direct `new` call.
402 let plain = auth_key.map(|s| s.expose_secret().to_string());
403 Self::new(config, plain).await
404 }
405
406 /// The application netstack command channel, or an error in TUN transport mode (no application
407 /// netstack exists).
408 fn channel(&self) -> Result<&Channel, Error> {
409 self.channel
410 .as_ref()
411 .ok_or(Error::Internal(InternalErrorKind::UnsupportedInTunMode))
412 }
413
414 /// Get this [`Device`]'s IPv4 tailnet address.
415 pub async fn ipv4_addr(&self) -> Result<Ipv4Addr, Error> {
416 self.runtime
417 .control
418 .ask(ts_runtime::control_runner::Ipv4)
419 .await
420 .map_err(ts_runtime::Error::from)?
421 .ok_or(Error::Internal(InternalErrorKind::Actor))
422 }
423
424 /// Get this [`Device`]'s IPv6 tailnet address.
425 pub async fn ipv6_addr(&self) -> Result<Ipv6Addr, Error> {
426 self.runtime
427 .control
428 .ask(ts_runtime::control_runner::Ipv6)
429 .await
430 .map_err(ts_runtime::Error::from)?
431 .ok_or(Error::Internal(InternalErrorKind::Actor))
432 }
433
434 /// This node's tailnet IPv4 and (when provisioned) IPv6 addresses as a pair — the Rust analog of
435 /// Go `tsnet.Server.TailscaleIPs() (ip4, ip6 netip.Addr)`.
436 ///
437 /// Reads the self node's assigned addresses (the same source Go splits by family). The tailnet
438 /// is IPv4-only unless [`Config::enable_ipv6`](crate::config::Config) is set, so the IPv6 half is
439 /// `None` when no v6 address is assigned — the Rust shape for Go returning the zero `netip.Addr`
440 /// in that case (Go's IPv6-absent sentinel). Errors until the first netmap is received (no self
441 /// node yet), matching Go returning invalid addresses before the node has joined.
442 pub async fn tailscale_ips(&self) -> Result<(Ipv4Addr, Option<Ipv6Addr>), Error> {
443 let me = self.self_node().await?;
444 let v4 = me.tailnet_address.ipv4.addr();
445 let v6 = me.tailnet_address.ipv6.addr();
446 // The decoder synthesizes the unspecified `::` placeholder on an IPv4-only tailnet; surface
447 // a real v6 only when IPv6 is enabled AND a non-placeholder address was assigned.
448 let v6 = (self.enable_ipv6 && !v6.is_unspecified()).then_some(v6);
449 Ok((v4, v6))
450 }
451
452 /// Bind a UDP socket to the specified [`SocketAddr`].
453 ///
454 /// Returns an error in TUN transport mode (there is no application netstack to bind on).
455 pub async fn udp_bind(&self, socket_addr: SocketAddr) -> Result<netstack::UdpSocket, Error> {
456 self.channel()?
457 .udp_bind(socket_addr)
458 .await
459 .map_err(Into::into)
460 }
461
462 /// Bind a TCP listener to the specified [`SocketAddr`].
463 ///
464 /// Returns an error in TUN transport mode (there is no application netstack to listen on).
465 pub async fn tcp_listen(
466 &self,
467 socket_addr: SocketAddr,
468 ) -> Result<netstack::TcpListener, Error> {
469 self.channel()?
470 .tcp_listen(socket_addr)
471 .await
472 .map_err(Into::into)
473 }
474
475 /// Register a fallback TCP handler (like `tsnet`'s `RegisterFallbackTCPHandler`).
476 ///
477 /// The callback is consulted for every inbound TCP flow that matches **no** explicit
478 /// [`Device::tcp_listen`] listener, with the flow's `(src, dst)` addresses. It returns
479 /// `(handler, intercept)`:
480 /// - `(_, false)` — decline; the next registered callback is tried.
481 /// - `(Some(h), true)` — claim the flow; `h` is handed the accepted [`netstack::TcpStream`].
482 /// - `(None, true)` — claim and reject the flow (the connection is closed).
483 ///
484 /// Multiple handlers may be registered; they are consulted in registration order and the first
485 /// to intercept wins. The returned [`FallbackTcpHandle`] deregisters the handler when dropped.
486 ///
487 /// Handlers serve flows over the overlay netstack only — never a host socket — and a flow no
488 /// handler claims is closed (fail-closed), never direct-dialed.
489 ///
490 /// Returns an error in TUN transport mode (there is no application netstack to attach to).
491 pub fn register_fallback_tcp_handler<F>(&self, cb: F) -> Result<FallbackTcpHandle, Error>
492 where
493 F: Fn(SocketAddr, SocketAddr) -> FallbackDecision + Send + Sync + 'static,
494 {
495 self.runtime
496 .register_fallback_tcp_handler(std::sync::Arc::new(cb))
497 .map_err(Into::into)
498 }
499
500 /// Resolve a tailnet peer (or this node) by MagicDNS name to its tailnet IPv4 address.
501 ///
502 /// This is an in-process lookup against the netmap we already hold — like `tsnet`'s in-memory
503 /// `dnsMap`, it does not query any DNS server (there is no `100.100.100.100` resolver). The
504 /// `name` may be a bare hostname or a fully-qualified MagicDNS name, with or without a trailing
505 /// dot, in any case (matching is case-insensitive). Returns `Ok(None)` if no tailnet node has
506 /// that name.
507 ///
508 /// Only MagicDNS names are resolved; names outside the tailnet are not looked up here, so the
509 /// caller's system resolver remains responsible for them. IPv6 is intentionally not resolved —
510 /// this fork operates IPv4-only on the tailnet.
511 pub async fn resolve(&self, name: &str) -> Result<Option<Ipv4Addr>, Error> {
512 if let Some(peer) = self.peer_by_name(name).await? {
513 return Ok(Some(peer.tailnet_address.ipv4.addr()));
514 }
515
516 // tsnet's dnsMap also resolves our own name; fall back to self when no peer matches.
517 let me = self.self_node().await?;
518 if me.matches_name(name) {
519 return Ok(Some(me.tailnet_address.ipv4.addr()));
520 }
521
522 Ok(None)
523 }
524
525 /// Run a real DNS query through the tailnet's MagicDNS responder (the `100.100.100.100`
526 /// forward path), returning the raw response, RCODE, and resolver(s) consulted — the analogue of
527 /// Go `LocalClient.QueryDNS`.
528 ///
529 /// Unlike [`resolve`](Self::resolve) (an in-memory netmap lookup that answers only MagicDNS
530 /// A-records), this issues an actual query of any `qtype` and runs it through the live
531 /// responder: an authoritative tailnet name is answered locally, anything else is forwarded to
532 /// the configured split-DNS / recursive upstreams (or delegated to the active exit node's DoH).
533 /// The response is returned as raw bytes (matching Go's `QueryDNS`), since this fork's DNS wire
534 /// codec has no answer-record decoder; the caller parses records itself if needed.
535 ///
536 /// `qtype` is the raw RFC 1035 TYPE value (`1`=A, `28`=AAAA, `12`=PTR, `16`=TXT, `33`=SRV,
537 /// `65`=HTTPS/SVCB, …). Anti-leak is inherited from the responder: a tailnet-suffix name never
538 /// egresses, recursive forwards delegate to the exit node when one is active, and only IPv4
539 /// upstreams are dialed.
540 ///
541 /// Returns an [`Error::Internal`] with `InternalErrorKind::UnsupportedInTunMode` in TUN
542 /// transport mode (MagicDNS there is an in-packet intercept, not a queryable responder).
543 pub async fn query_dns(&self, name: &str, qtype: u16) -> Result<DnsQueryResult, Error> {
544 self.runtime
545 .query_dns(name, qtype)
546 .await
547 .map_err(Into::into)
548 }
549
550 /// Connect to a tailnet peer by MagicDNS name and port over TCP.
551 ///
552 /// Resolves `name` via [`Device::resolve`] (an in-process netmap lookup, no DNS server), then
553 /// dials the resulting tailnet IPv4 address. Returns [`InternalErrorKind::BadRequest`] if the
554 /// name does not resolve to a tailnet node.
555 pub async fn connect_by_name(
556 &self,
557 name: &str,
558 port: u16,
559 ) -> Result<netstack::TcpStream, Error> {
560 let addr = self
561 .resolve(name)
562 .await?
563 .ok_or(Error::Internal(InternalErrorKind::BadRequest))?;
564
565 self.tcp_connect((addr, port).into()).await
566 }
567
568 /// Resolve a `host:port` string to a tailnet [`SocketAddr`], honoring the family forced by a
569 /// `network` suffix. The host may be an IP literal (parsed directly) or a MagicDNS name
570 /// (resolved via [`Device::resolve`], which yields a tailnet IPv4). Shared by [`Device::dial`]
571 /// and [`Device::dial_tcp`]. The IPv4-only invariant is enforced here: a `…6` network, or any v6
572 /// destination, requires `Config::enable_ipv6` and otherwise returns
573 /// [`InternalErrorKind::BadRequest`] (a clean typed error rather than a downstream actor error).
574 async fn resolve_dial_addr(
575 &self,
576 network: dial::Network,
577 addr: &str,
578 ) -> Result<SocketAddr, Error> {
579 let (host, port) = dial::split_host_port(addr)?;
580
581 // An IP literal is used directly; otherwise resolve the MagicDNS name (IPv4 only).
582 let ip: IpAddr = if let Ok(ip) = host.parse::<IpAddr>() {
583 ip
584 } else {
585 self.resolve(host)
586 .await?
587 .ok_or(Error::Internal(InternalErrorKind::BadRequest))?
588 .into()
589 };
590
591 dial::check_family(network.family, ip)?;
592
593 // IPv4-only invariant: a v6 destination is only reachable when IPv6 is provisioned.
594 if ip.is_ipv6() && !self.enable_ipv6 {
595 return Err(Error::Internal(InternalErrorKind::BadRequest));
596 }
597
598 Ok((ip, port).into())
599 }
600
601 /// Connect to a tailnet address over TCP or UDP, the Rust analog of Go
602 /// `tsnet.Server.Dial(ctx, network, address)`.
603 ///
604 /// `network` is one of `"tcp"`, `"tcp4"`, `"tcp6"`, `"udp"`, `"udp4"`, `"udp6"`; `addr` is a
605 /// `host:port` string where `host` is a MagicDNS name, an IPv4 literal, or a bracketed IPv6
606 /// literal (`[2001:db8::1]:443`). The host is resolved in-process via [`Device::resolve`] (no DNS
607 /// server). Returns a [`DialConn`] whose arm matches the transport — use [`Device::dial_tcp`]
608 /// when you want the TCP stream directly.
609 ///
610 /// Differences from Go (documented for parity): ports must be **numeric** (Go's `LookupPort`
611 /// also resolves named ports like `"http"`; this fork avoids a services-file dependency), and
612 /// `…6`/v6 destinations require `Config::enable_ipv6` (the tailnet is IPv4-only by default).
613 ///
614 /// # Errors
615 /// [`InternalErrorKind::BadRequest`] for an unsupported `network`, a malformed/portless `addr`,
616 /// an unresolvable name, or a v6 destination while IPv6 is disabled; otherwise the transport's
617 /// own connect error.
618 pub async fn dial(&self, network: &str, addr: &str) -> Result<DialConn, Error> {
619 let net = dial::parse_network(network)?;
620 let remote = self.resolve_dial_addr(net, addr).await?;
621
622 match net.transport {
623 dial::Transport::Tcp => Ok(DialConn::Tcp(self.tcp_connect(remote).await?)),
624 dial::Transport::Udp => {
625 // Bind an ephemeral local UDP socket on this node's tailnet address of the SAME
626 // family as the remote, then connect it (Go's `Dial("udp", …)` returns a connected
627 // UDP `net.Conn`, with the local source picked by `IfElse(dst.Is6(), v6, v4)`). A v4
628 // local socket cannot send to a v6 peer, so the family must match `remote`. (TCP gets
629 // this for free: `tcp_connect` already picks the source family from `remote`.)
630 let local_ip: IpAddr = if remote.is_ipv6() {
631 self.ipv6_addr().await?.into()
632 } else {
633 self.ipv4_addr().await?.into()
634 };
635 let sock = self.udp_bind((local_ip, 0).into()).await?;
636 Ok(DialConn::Udp(ConnectedUdpSocket::new(sock, remote)))
637 }
638 }
639 }
640
641 /// Connect to a tailnet address over TCP, returning the stream directly — the common case of
642 /// [`Device::dial`] for `"tcp"`. `addr` is a `host:port` string (MagicDNS name or IP literal).
643 /// This is the building block for HTTP-over-tailnet: an embedder's `hyper`/`reqwest` client can
644 /// route requests by calling `dial_tcp(&format!("{host}:{port}"))` from its connector, mirroring
645 /// how Go `tsnet.Server.HTTPClient` sets `http.Transport.DialContext = Server.Dial`.
646 ///
647 /// # Errors
648 /// As [`Device::dial`] for the `"tcp"` network.
649 pub async fn dial_tcp(&self, addr: &str) -> Result<netstack::TcpStream, Error> {
650 let remote = self
651 .resolve_dial_addr(
652 dial::Network {
653 transport: dial::Transport::Tcp,
654 family: dial::Family::Any,
655 },
656 addr,
657 )
658 .await?;
659 self.tcp_connect(remote).await
660 }
661
662 /// Connect to a tailnet address over UDP, returning a connected socket directly — the `"udp"`
663 /// sibling of [`dial_tcp`](Device::dial_tcp) and the common case of [`Device::dial`] for
664 /// `"udp"`. `addr` is a `host:port` string (MagicDNS name or IP literal).
665 ///
666 /// Returns a [`ConnectedUdpSocket`] (`send`/`recv` against a fixed peer), the connected
667 /// UDP-`net.Conn` shape Go's `tsnet.Server.Dial("udp", …)` returns — as opposed to
668 /// [`listen_packet`](Device::listen_packet), which yields an unconnected `net.PacketConn`. An
669 /// ephemeral local UDP socket is bound on this node's tailnet address of the same family as the
670 /// resolved remote (a v4 local socket cannot send to a v6 peer).
671 ///
672 /// # Errors
673 /// As [`Device::dial`] for the `"udp"` network (name resolution, the IPv4-only / `enable_ipv6`
674 /// family invariant, or TUN transport mode having no application netstack to bind on).
675 pub async fn dial_udp(&self, addr: &str) -> Result<ConnectedUdpSocket, Error> {
676 let remote = self
677 .resolve_dial_addr(
678 dial::Network {
679 transport: dial::Transport::Udp,
680 family: dial::Family::Any,
681 },
682 addr,
683 )
684 .await?;
685 let local_ip: IpAddr = if remote.is_ipv6() {
686 self.ipv6_addr().await?.into()
687 } else {
688 self.ipv4_addr().await?.into()
689 };
690 let sock = self.udp_bind((local_ip, 0).into()).await?;
691 Ok(ConnectedUdpSocket::new(sock, remote))
692 }
693
694 /// Bind a UDP socket from a `host:port` string, the Rust analog of Go
695 /// `tsnet.Server.ListenPacket(network, addr)`.
696 ///
697 /// `network` is one of `"udp"`, `"udp4"`, `"udp6"`; `addr` must be a **valid IP literal**
698 /// `host:port` (Go's `ListenPacket` rejects a name or empty host — unlike `Listen`). An
699 /// unspecified host (`0.0.0.0`/`[::]`) binds on this node's tailnet address. Returns the
700 /// unconnected [`netstack::UdpSocket`] (a `net.PacketConn`).
701 ///
702 /// # Errors
703 /// [`InternalErrorKind::BadRequest`] for a non-UDP/unsupported `network`, a malformed addr, a
704 /// non-IP host, a family mismatch, or a v6 bind while IPv6 is disabled.
705 pub async fn listen_packet(
706 &self,
707 network: &str,
708 addr: &str,
709 ) -> Result<netstack::UdpSocket, Error> {
710 let net = dial::parse_network(network)?;
711 if net.transport != dial::Transport::Udp {
712 return Err(Error::Internal(InternalErrorKind::BadRequest));
713 }
714 let (host, port) = dial::split_host_port(addr)?;
715
716 // ListenPacket requires a valid IP host (Go rejects a name here).
717 let ip: IpAddr = host
718 .parse()
719 .map_err(|_| Error::Internal(InternalErrorKind::BadRequest))?;
720 dial::check_family(net.family, ip)?;
721
722 // A v6 bind (whether an explicit literal or an unspecified `[::]`) requires IPv6 to be
723 // provisioned — enforce the gate for BOTH cases (the unspecified `[::]` path used to skip it).
724 if ip.is_ipv6() && !self.enable_ipv6 {
725 return Err(Error::Internal(InternalErrorKind::BadRequest));
726 }
727
728 // An unspecified bind host (`0.0.0.0` / `[::]`) means "this node's tailnet address" — of the
729 // SAME family as the requested address, so a `udp6` `[::]:0` binds a v6 socket (it used to
730 // fall through to the v4 address regardless, silently yielding an IPv4 socket for a v6 listen).
731 let bind_ip: IpAddr = if ip.is_unspecified() {
732 if ip.is_ipv6() {
733 self.ipv6_addr().await?.into()
734 } else {
735 self.ipv4_addr().await?.into()
736 }
737 } else {
738 ip
739 };
740
741 self.udp_bind((bind_ip, port).into()).await
742 }
743
744 /// Connect to a TCP socket at the remote address.
745 ///
746 /// Returns an error in TUN transport mode (there is no application netstack to dial from).
747 pub async fn tcp_connect(&self, remote: SocketAddr) -> Result<netstack::TcpStream, Error> {
748 let channel = self.channel()?;
749
750 let ip: IpAddr = match remote.is_ipv4() {
751 true => self.ipv4_addr().await?.into(),
752 false => self.ipv6_addr().await?.into(),
753 };
754
755 // TODO(npry): collision checking
756 let ephemeral_port = rand::random_range(49152..=u16::MAX);
757
758 channel
759 .tcp_connect((ip, ephemeral_port).into(), remote)
760 .await
761 .map_err(Into::into)
762 }
763
764 /// Start a SOCKS5 proxy on a host loopback address that dials into the tailnet (Go
765 /// `tsnet.Server.Loopback`, SOCKS5 half).
766 ///
767 /// Binds a TCP listener on `127.0.0.1:0` (host loopback only — never an external interface) and
768 /// serves SOCKS5 (RFC 1928) with required username/password auth (RFC 1929): username `tsnet`,
769 /// password = the returned `proxy_cred`. Each `CONNECT` is dialed INTO the overlay via
770 /// [`Device::connect_by_name`] / [`Device::tcp_connect`] and spliced to the accepted host socket, so
771 /// a non-Rust host process can reach tailnet peers through the proxy. Returns the bound address, the
772 /// proxy credential, and a [`LoopbackHandle`] whose drop stops the listener.
773 ///
774 /// Anti-leak: the listener is loopback-only and every connection egresses over the overlay, never a
775 /// host socket — the host's real origin IP is never used to reach the destination. Unlike Go, the
776 /// LocalAPI HTTP surface is not served (this fork exposes status/whois/id-token natively on
777 /// `Device`); only the SOCKS5 proxy is provided.
778 ///
779 /// Returns an error in TUN transport mode (no application netstack to dial from).
780 pub async fn loopback(&self) -> Result<(std::net::SocketAddr, String, LoopbackHandle), Error> {
781 loopback::start(self.overlay_dialer().await?).await
782 }
783
784 /// Build an [`OverlayDialer`](loopback::OverlayDialer): the cloneable, `&Device`-free dialer that
785 /// resolves a MagicDNS name (or takes an IPv4 literal) and `tcp_connect`s it into the overlay,
786 /// reused by [`Device::loopback`] (SOCKS5) and the `hyper` [`http_connector`](Device::http_connector).
787 ///
788 /// Captures only cloneable pieces — never `&self` — so the dialer (and anything built on it, like a
789 /// spawned accept loop or an HTTP connector) carries no borrow of the `Device`: a clone of the
790 /// netstack command channel, this device's own overlay IPv4 (fetched once), and a boxed resolver
791 /// closure over clones of the control + peer-tracker actor refs. The resolver replicates
792 /// [`Device::resolve`] (peer-by-name, falling back to this node's own name).
793 async fn overlay_dialer(&self) -> Result<loopback::OverlayDialer, Error> {
794 let channel = self.channel()?.clone();
795 let self_ipv4 = self.ipv4_addr().await?;
796
797 let control = self.runtime.control.clone();
798 let peer_tracker = self.runtime.peer_tracker.clone();
799 let resolve: loopback::Resolver = std::sync::Arc::new(move |name: String| {
800 let control = control.clone();
801 let peer_tracker = peer_tracker.clone();
802 Box::pin(async move {
803 let pt = peer_tracker
804 .upgrade()
805 .ok_or(Error::Internal(InternalErrorKind::Actor))?;
806 let peer = pt
807 .ask(ts_runtime::peer_tracker::PeerByName { name: name.clone() })
808 .await
809 .map_err(ts_runtime::Error::from)?;
810 if let Some(peer) = peer {
811 return Ok(Some(peer.tailnet_address.ipv4.addr()));
812 }
813 // tsnet's dnsMap also resolves our own name; fall back to self.
814 let me = control
815 .ask(ts_runtime::control_runner::SelfNode)
816 .await
817 .map_err(ts_runtime::Error::from)?
818 .ok_or(Error::Internal(InternalErrorKind::Actor))?;
819 if me.matches_name(&name) {
820 Ok(Some(me.tailnet_address.ipv4.addr()))
821 } else {
822 Ok(None)
823 }
824 }) as std::pin::Pin<Box<dyn std::future::Future<Output = _> + Send>>
825 });
826
827 Ok(loopback::OverlayDialer::new(channel, self_ipv4, resolve))
828 }
829
830 /// Build a [`hyper`-compatible connector](crate::http::TailnetConnector) that routes outbound HTTP
831 /// requests over the tailnet — the analog of Go `tsnet.Server.HTTPClient`, whose mechanism is
832 /// simply `http.Transport{DialContext: s.Dial}`.
833 ///
834 /// Hand the returned connector to `hyper_util::client::legacy::Client::builder(...).build(conn)`;
835 /// each request's `Uri` host is resolved as a MagicDNS name (or IPv4 literal) and dialed into the
836 /// overlay (default port 80 for `http`, 443 for `https`), so the request egresses over the tailnet
837 /// rather than the host's network. TLS, redirects, and pooling are the hyper client's concern — the
838 /// connector only supplies the transport, exactly like Go's bare `DialContext` injection.
839 ///
840 /// Available only with the **`hyper`** crate feature.
841 ///
842 /// # Errors
843 /// Fails for the same reasons as [`Device::loopback`]'s setup: TUN transport mode (no application
844 /// netstack) or the node not yet having an overlay IPv4.
845 #[cfg(feature = "hyper")]
846 pub async fn http_connector(&self) -> Result<crate::http::TailnetConnector, Error> {
847 Ok(crate::http::TailnetConnector::new(
848 self.overlay_dialer().await?,
849 ))
850 }
851
852 /// Get our node info.
853 pub async fn self_node(&self) -> Result<NodeInfo, Error> {
854 self.runtime
855 .control
856 .ask(ts_runtime::control_runner::SelfNode)
857 .await
858 .map_err(ts_runtime::Error::from)?
859 .ok_or(Error::Internal(InternalErrorKind::Actor))
860 }
861
862 /// The DNS names this node can obtain TLS certificates for — Go `tsnet.Server.CertDomains()`.
863 ///
864 /// These are the `CertDomains` control pushed in the netmap DNS config: the names a TLS-serving
865 /// consumer (e.g. a `ListenTLS`/`GetCertificate`-style caller) should request a cert for. Returns
866 /// an empty `Vec` before the first netmap, or when control granted none — mirroring Go returning a
867 /// clone of `nm.DNS.CertDomains` (empty/`nil` when absent).
868 pub async fn cert_domains(&self) -> Result<Vec<String>, Error> {
869 self.runtime
870 .control
871 .ask(ts_runtime::control_runner::CertDomains)
872 .await
873 .map_err(ts_runtime::Error::from)
874 .map_err(Into::into)
875 }
876
877 /// The DNS configuration control pushed in the latest netmap — Go `tsnet`'s view of
878 /// `netmap.NetworkMap.DNS` (what `tailscale dns status` reports).
879 ///
880 /// Returns the full [`DnsConfig`] — MagicDNS on/off, search domains, global + fallback resolvers,
881 /// split-DNS routes, extra records, cert domains — or `None` before the first netmap / when
882 /// control has sent no DNS config. A superset of [`cert_domains`](Device::cert_domains), which
883 /// remains a separate narrower accessor for the TLS-cert use. Mirrors Go reading a clone of
884 /// `nm.DNS` (absent ⇒ `None`).
885 pub async fn dns_config(&self) -> Result<Option<DnsConfig>, Error> {
886 self.runtime
887 .control
888 .ask(ts_runtime::control_runner::DnsConfig)
889 .await
890 .map_err(ts_runtime::Error::from)
891 .map_err(Into::into)
892 }
893
894 /// The URL control last asked this node to open in a browser (`MapResponse.PopBrowserURL`), or
895 /// `None` if control has never sent one.
896 ///
897 /// This is the interactive-login / consent URL an embedder driving a non-authkey (interactive)
898 /// login must surface to the user — the Rust analog of Go `ipn` delivering `BrowseToURL` through
899 /// the notification bus. A daemon polls this after starting an interactive login to obtain the
900 /// auth URL to present.
901 ///
902 /// **Sticky semantics** (Go `controlclient`'s `sess.lastPopBrowserURL`): once control sends a
903 /// URL it remains the returned value until control sends a *different* non-empty one — it is
904 /// **never cleared back to `None`** (control sends `PopBrowserURL` empty on nearly every netmap
905 /// tick; those empty updates are ignored, not treated as "clear"). So a non-`None` result does
906 /// **not** signal "control is asking *right now*" vs. "already handled" — it is the last URL
907 /// seen this session. A consumer that acts on it should de-duplicate on the URL value rather than
908 /// re-acting on every poll. For a push stream of *new* consent URLs (rather than polling this
909 /// sticky value), subscribe to [`watch_ipn_bus`](Self::watch_ipn_bus) and react to
910 /// [`Notify::browse_to_url`](crate::Notify::browse_to_url).
911 pub async fn pop_browser_url(&self) -> Result<Option<Url>, Error> {
912 self.runtime
913 .control
914 .ask(ts_runtime::control_runner::PopBrowserUrl)
915 .await
916 .map_err(ts_runtime::Error::from)
917 .map_err(Into::into)
918 }
919
920 /// This node's latest network-conditions report — the Rust analog of Go's `netcheck.Report` as
921 /// `tailscale netcheck` surfaces it.
922 ///
923 /// Returns the [`NetcheckReport`]: the preferred (lowest-latency) DERP region and the per-region
924 /// latency map this node last measured. Empty (default) before the first measurement. This fork's
925 /// net-report path measures only DERP-region latency, so the report carries that subset rather
926 /// than fabricating the UDP/port-mapping fields Go also reports (see [`NetcheckReport`]).
927 pub async fn netcheck(&self) -> Result<NetcheckReport, Error> {
928 self.runtime
929 .control
930 .ask(ts_runtime::control_runner::Netcheck)
931 .await
932 .map_err(ts_runtime::Error::from)
933 .map_err(Into::into)
934 }
935
936 /// Suggest a reasonably good exit node to use, based on this node's current netmap and latest
937 /// network-conditions report — Go `tailscale exit-node suggest` / `LocalBackend.SuggestExitNode`.
938 ///
939 /// Returns the suggested exit node's stable id + name as an [`ExitNodeSuggestion`]; engage it by
940 /// passing the id to [`Config::exit_node`](crate::config::Config) /
941 /// [`Device::set_exit_node`](crate::Device::set_exit_node) as a stable-id selector. The
942 /// suggestion uses the classic DERP-region-latency algorithm: among peers control marked
943 /// suggestable (the `suggest-exit-node` capability) that advertise an exit route and are online,
944 /// it prefers the one whose home DERP region this node measured as lowest-latency, and is
945 /// **sticky** — a prior suggestion that is still a good candidate is kept across calls, so
946 /// repeated calls don't flap between equally-good options.
947 ///
948 /// Outcomes (mirroring Go):
949 /// - `Ok(Some(suggestion))` — a node was suggested.
950 /// - `Ok(None)` — no eligible candidate (no suggestion); **not** an error.
951 /// - `Err(`[`Error::NoPreferredDerp`]`)` — no netcheck has completed yet, so no preferred DERP
952 /// region is known; retry once connectivity has been measured.
953 ///
954 /// ## Scope (Phase 1)
955 /// This ports Go's classic DERP path only. The traffic-steering path and the Mullvad
956 /// geographic-distance ranking (for exit nodes with no DERP home) are not yet implemented, and
957 /// the suggestion does not carry a `Location` (Go's `omitempty` field) — this fork's peer model
958 /// has none yet. The candidate exit-route check accepts a peer advertising `0.0.0.0/0` (this
959 /// fork is IPv4-only), rather than Go's both-`0.0.0.0/0`-and-`::/0` requirement.
960 pub async fn suggest_exit_node(&self) -> Result<Option<ExitNodeSuggestion>, Error> {
961 // The runtime returns the actor-gather outcome (outer) wrapping the algorithm outcome
962 // (inner: `Ok(None)` empty, or the `NoPreferredDerp` domain error). Flatten both into the
963 // device-facing `Error`.
964 self.runtime.suggest_exit_node().await?.map_err(Into::into)
965 }
966
967 /// This node's key-expiry instant as Unix seconds (`Node.KeyExpiry` in Go), or `Ok(None)` if
968 /// the key never expires.
969 ///
970 /// Like Go, this fork is **reactive** about key expiry — it reports it rather than rotating the
971 /// node key in the background. A caller can schedule re-authentication around this time; on
972 /// expiry, re-create the [`Device`] (which re-registers), supplying a fresh node key + the prior
973 /// `old_node_key` to rotate, or the same key to refresh.
974 pub async fn self_key_expiry_unix(&self) -> Result<Option<i64>, Error> {
975 Ok(self.self_node().await?.key_expiry_unix())
976 }
977
978 /// Whether this node's key has expired as of now (`!KeyExpiry.IsZero() && KeyExpiry.Before(now)`
979 /// in Go). A key with no expiry is never expired. See [`Device::self_key_expiry_unix`] for the
980 /// reactive-rotation note.
981 pub async fn self_key_expired(&self) -> Result<bool, Error> {
982 let now = std::time::SystemTime::now()
983 .duration_since(std::time::UNIX_EPOCH)
984 .map(|d| d.as_secs() as i64)
985 // An unreadable clock (pre-epoch) is treated as the far future so a time-limited key
986 // looks expired — fail-safe toward prompting re-auth rather than trusting a stale key.
987 .unwrap_or(i64::MAX);
988 Ok(self.self_node().await?.key_expired_at_unix(now))
989 }
990
991 /// Fetch the current Tailscale SSH policy pushed by control, if any.
992 ///
993 /// Returns `Ok(None)` when control has not sent an SSH policy. The SSH server treats an absent
994 /// or empty policy as **deny-all** (fail-closed). Used by the SSH auth path
995 /// ([`SshPolicy::evaluate`][ts_control::SshPolicy::evaluate]) to authorize incoming
996 /// connections.
997 pub async fn ssh_policy(&self) -> Result<Option<ts_control::SshPolicy>, Error> {
998 self.runtime
999 .control
1000 .ask(ts_runtime::control_runner::CurrentSshPolicy)
1001 .await
1002 .map_err(ts_runtime::Error::from)
1003 .map_err(Into::into)
1004 }
1005
1006 /// Look up a peer by name.
1007 pub async fn peer_by_name(&self, name: &str) -> Result<Option<NodeInfo>, Error> {
1008 let pt = self
1009 .runtime
1010 .peer_tracker
1011 .upgrade()
1012 .ok_or(Error::Internal(InternalErrorKind::Actor))?;
1013
1014 pt.ask(ts_runtime::peer_tracker::PeerByName {
1015 name: name.to_string(),
1016 })
1017 .await
1018 .map_err(ts_runtime::Error::from)
1019 .map_err(Into::into)
1020 }
1021
1022 /// Look up a peer by ip.
1023 pub async fn peer_by_tailnet_ip(&self, ip: IpAddr) -> Result<Option<NodeInfo>, Error> {
1024 let pt = self
1025 .runtime
1026 .peer_tracker
1027 .upgrade()
1028 .ok_or(Error::Internal(InternalErrorKind::Actor))?;
1029
1030 pt.ask(ts_runtime::peer_tracker::PeerByTailnetIp { ip })
1031 .await
1032 .map_err(ts_runtime::Error::from)
1033 .map_err(Into::into)
1034 }
1035
1036 /// Look up the peer(s) with the most-specific route matches for `ip`.
1037 ///
1038 /// This reports which peers *advertise* a route covering `ip`, independent of this device's
1039 /// `accept_routes` setting — analogous to the Go client's informational `PrimaryRoutes`. It is
1040 /// not a reachability oracle: with `accept_routes` off, the dataplane will not actually route
1041 /// to (or accept return traffic from) advertised subnet routes even if this returns a peer.
1042 pub async fn peers_with_route(&self, ip: IpAddr) -> Result<Vec<NodeInfo>, Error> {
1043 let pt = self
1044 .runtime
1045 .peer_tracker
1046 .upgrade()
1047 .ok_or(Error::Internal(InternalErrorKind::Actor))?;
1048
1049 pt.ask(ts_runtime::peer_tracker::PeerByAcceptedRoute { ip })
1050 .await
1051 .map_err(ts_runtime::Error::from)
1052 .map_err(Into::into)
1053 }
1054
1055 /// List the Taildrop files this device has fully received and not yet consumed (Go LocalAPI
1056 /// `WaitingFiles`).
1057 ///
1058 /// Returns the files waiting under the configured `taildrop_dir`, sorted by name. Returns an
1059 /// empty list when Taildrop is disabled (`Config::taildrop_dir` unset) — fail-closed, never an
1060 /// error for the disabled case. A filesystem error while listing surfaces as
1061 /// [`InternalErrorKind::Actor`].
1062 pub fn taildrop_waiting_files(&self) -> Result<Vec<WaitingFile>, Error> {
1063 let Some(store) = self.runtime.taildrop_store() else {
1064 return Ok(Vec::new());
1065 };
1066 store
1067 .waiting_files()
1068 .map_err(|_| Error::Internal(InternalErrorKind::Actor))
1069 }
1070
1071 /// Open a received Taildrop file by name for reading, returning the handle and its size (Go
1072 /// LocalAPI `OpenFile`).
1073 ///
1074 /// The `name` is validated (path-traversal-safe) inside the store before any path is built.
1075 /// Returns [`InternalErrorKind::BadRequest`] when Taildrop is disabled or the name is invalid,
1076 /// and [`InternalErrorKind::Actor`] for a filesystem error (e.g. the file does not exist).
1077 pub fn taildrop_open_file(&self, name: &str) -> Result<(std::fs::File, u64), Error> {
1078 let store = self
1079 .runtime
1080 .taildrop_store()
1081 .ok_or(Error::Internal(InternalErrorKind::BadRequest))?;
1082 store.open_file(name).map_err(taildrop_err)
1083 }
1084
1085 /// Delete a received Taildrop file by name (Go LocalAPI `DeleteFile`).
1086 ///
1087 /// The `name` is validated (path-traversal-safe) inside the store before any path is built.
1088 /// Returns [`InternalErrorKind::BadRequest`] when Taildrop is disabled or the name is invalid,
1089 /// and [`InternalErrorKind::Actor`] for a filesystem error (e.g. the file does not exist).
1090 pub fn taildrop_delete_file(&self, name: &str) -> Result<(), Error> {
1091 let store = self
1092 .runtime
1093 .taildrop_store()
1094 .ok_or(Error::Internal(InternalErrorKind::BadRequest))?;
1095 store.delete_file(name).map_err(taildrop_err)
1096 }
1097
1098 /// Send a local file to a tailnet `peer` via Taildrop (Go `PushFile` / `tailscale file cp`).
1099 ///
1100 /// Pushes `content_length` bytes from `reader` to the peer's peerAPI as
1101 /// `PUT /v0/put/<name>` over the overlay netstack — the sending counterpart to the receive store
1102 /// surfaced by [`Device::taildrop_waiting_files`]. The transfer rides the encrypted WireGuard
1103 /// overlay, never a host socket. The body is streamed from offset 0 (no resume).
1104 ///
1105 /// The destination is derived **solely from `peer`'s own node record**
1106 /// ([`NodeInfo::peerapi_addr`][ts_control::Node::peerapi_addr]): its advertised tailnet IPv4 and
1107 /// `peerapi4` port. The caller obtains `peer` from [`Device::peer_by_name`] /
1108 /// [`Device::peer_by_tailnet_ip`], so it is always a current netmap peer — a raw control-supplied
1109 /// or attacker-chosen address can never be targeted. As defense in depth, the resolved address is
1110 /// additionally asserted to be a Tailscale CGNAT IP before dialing.
1111 ///
1112 /// Returns [`InternalErrorKind::BadRequest`] when the peer advertises no IPv4 peerAPI (so it
1113 /// cannot receive files), when the name is invalid, or when the peer refuses the transfer
1114 /// (`403`/`409`/unexpected status); [`Error::Timeout`] on a dial failure or timeout; and
1115 /// [`InternalErrorKind::Io`] on a mid-transfer stream error.
1116 pub async fn send_file<R>(
1117 &self,
1118 peer: &NodeInfo,
1119 name: &str,
1120 content_length: u64,
1121 reader: R,
1122 ) -> Result<(), Error>
1123 where
1124 R: tokio::io::AsyncRead + Unpin,
1125 {
1126 let channel = self.channel()?;
1127
1128 // Destination comes only from the peer's own node record — never an arbitrary address.
1129 let dst = peer
1130 .peerapi_addr()
1131 .ok_or(Error::Internal(InternalErrorKind::BadRequest))?;
1132 // Defense in depth: refuse to dial anything outside the Tailscale CGNAT range, so a
1133 // malformed node record can't steer the PUT at a non-tailnet host.
1134 if !ts_control::is_tailscale_ip(dst.ip()) {
1135 return Err(Error::Internal(InternalErrorKind::BadRequest));
1136 }
1137
1138 let self_ipv4 = self.ipv4_addr().await?;
1139
1140 ts_runtime::taildrop_send::send_file(channel, self_ipv4, dst, name, content_length, reader)
1141 .await
1142 .map_err(taildrop_send_err)
1143 }
1144
1145 /// List the tailnet peers this node can Taildrop a file *to* — the Rust analog of Go's LocalAPI
1146 /// `FileTargets`.
1147 ///
1148 /// Each [`FileTarget`] pairs a peer's node record with the `http://ip:port` base of its peerAPI;
1149 /// pass `target.node` straight to [`Device::send_file`]. A peer qualifies when it advertises a
1150 /// reachable IPv4 peerAPI **and** is either owned by the same user as this node **or** explicitly
1151 /// granted the file-sharing-target capability — mirroring upstream's send-path filter. The list is
1152 /// gated on this node holding the file-sharing capability (control grants it when the admin
1153 /// enables Taildrop); absent that, the result is empty (fail-closed, not an error). Sorted by the
1154 /// peer's MagicDNS name. Targets are listed regardless of online state (matching upstream — an
1155 /// offline target's [`send_file`](Device::send_file) simply times out). Empty before the first
1156 /// netmap.
1157 pub async fn file_targets(&self) -> Result<Vec<FileTarget>, Error> {
1158 self.runtime.file_targets().await.map_err(Into::into)
1159 }
1160
1161 /// Begin a debug packet capture, streaming a pcap of every packet crossing the dataplane to
1162 /// `writer` (Go `tsnet.Server.CapturePcap`).
1163 ///
1164 /// Installs a capture hook on the running dataplane: from now until [`Device::stop_capture`] is
1165 /// called (or another capture replaces this one), a copy of every plaintext IP packet on the
1166 /// datapath — outbound (pre-encrypt) and inbound (post-decrypt) — is framed and written to
1167 /// `writer`. The 24-byte pcap global header is written immediately on success.
1168 ///
1169 /// The format is byte-faithful classic pcap with Tailscale's `LINKTYPE_USER0` + 4-byte path
1170 /// preamble per record (see [`ts_runtime::capture`]); a resulting file opens in Wireshark, and
1171 /// with Tailscale's `ts-dissector.lua` the direction/path of each packet decodes.
1172 ///
1173 /// The hook runs **inline on the single-threaded dataplane step**, so `writer` must not block for
1174 /// long — a slow writer back-pressures the datapath. Records are **not** flushed per packet (that
1175 /// would be a syscall on every packet on the dataplane thread); buffered bytes are flushed when
1176 /// the writer is dropped on [`Device::stop_capture`]. Wrap `writer` in a [`std::io::BufWriter`] if
1177 /// you want buffering. A write error is swallowed per-packet (the capture silently drops that
1178 /// record) rather than tearing down the datapath; call [`Device::stop_capture`] to end it. Returns
1179 /// an error only if the dataplane actor is unreachable or the initial global-header write fails.
1180 pub async fn capture_pcap<W>(&self, writer: W) -> Result<(), Error>
1181 where
1182 W: std::io::Write + Send + 'static,
1183 {
1184 let sink = std::sync::Arc::new(std::sync::Mutex::new(
1185 ts_runtime::capture::PcapSink::new(writer)
1186 .map_err(|_| Error::Internal(InternalErrorKind::Io))?,
1187 ));
1188 let hook: ts_runtime::CaptureHook = std::sync::Arc::new(move |path, pkt: &[u8]| {
1189 if let Ok(mut sink) = sink.lock() {
1190 // A per-packet write failure (e.g. a closed pipe) silently drops that record rather
1191 // than tearing down the datapath; the caller ends capture via `stop_capture`.
1192 drop(sink.log_packet(path.code(), pkt));
1193 }
1194 });
1195 self.runtime.install_capture(Some(hook)).await?;
1196 Ok(())
1197 }
1198
1199 /// Stop a debug packet capture started by [`Device::capture_pcap`] (Go `ClearCaptureSink`).
1200 ///
1201 /// Clears the dataplane capture hook; the writer is dropped (its remaining buffered bytes are
1202 /// flushed by its own `Drop`). Idempotent — clearing when no capture is installed is a no-op.
1203 /// Returns an error only if the dataplane actor is unreachable.
1204 pub async fn stop_capture(&self) -> Result<(), Error> {
1205 self.runtime.install_capture(None).await?;
1206 Ok(())
1207 }
1208
1209 /// Snapshot of this device and its tailnet peers (like `tailscale status`).
1210 ///
1211 /// Combines this node's self info with the current peer set: each [`StatusNode`] reports the
1212 /// stable id, display name, tailnet IPs, advertised routes, and exit-node flag. (Per-peer
1213 /// `online`/user/capabilities are honestly `None`/empty in this fork — the domain node model
1214 /// does not yet carry the wire-level liveness/login fields; see `ts_runtime::status` docs.)
1215 pub async fn status(&self) -> Result<Status, Error> {
1216 self.runtime.status().await.map_err(Into::into)
1217 }
1218
1219 /// Fetch the current Tailnet Lock (TKA) status pushed by control, if any.
1220 ///
1221 /// Returns `Ok(None)` when control has sent no `TKAInfo` (tailnet lock not in use, or no change
1222 /// observed yet). The returned [`TkaStatus`][ts_control::TkaStatus] carries the authority head
1223 /// (a base32 `AUMHash`, decode with [`tka::AumHash::from_base32`][ts_tka::AumHash::from_base32])
1224 /// and the disablement signal. Signature verification of a peer's node-key signature against the
1225 /// authority is performed with the [`tka`] module's [`tka::Authority`].
1226 pub async fn tka_status(&self) -> Result<Option<ts_control::TkaStatus>, Error> {
1227 self.runtime
1228 .control
1229 .ask(ts_runtime::control_runner::CurrentTkaStatus)
1230 .await
1231 .map_err(ts_runtime::Error::from)
1232 .map_err(Into::into)
1233 }
1234
1235 /// Read the Tailnet Lock update-chain history — the Rust analog of Go
1236 /// `LocalClient.NetworkLockLog`.
1237 ///
1238 /// Returns up to `limit` [`TkaLogEntry`] rows of the AUM chain **head-first** (newest first,
1239 /// walking back toward the genesis), read **locally** from this node's synced + verified chain —
1240 /// a pure read with no control round-trip. The list is empty when no lock is synced (lock not in
1241 /// use, or control hasn't pushed a chain yet). Each entry carries the AUM's chain-link hash, its
1242 /// change kind (`"add-key"` / `"remove-key"` / `"checkpoint"` / …), the ids of the keys that
1243 /// signed it, and the raw CBOR (Go `NetworkLockUpdate.Raw`) for a faithful full decode.
1244 pub async fn tka_log(&self, limit: usize) -> Result<Vec<TkaLogEntry>, Error> {
1245 self.runtime.tka_log(limit).await.map_err(Into::into)
1246 }
1247
1248 /// Sign a peer's `node_key` with this node's network-lock key and submit the signature to
1249 /// control — the Rust analog of Go `LocalClient.NetworkLockSign` for the Direct case.
1250 ///
1251 /// Builds a `Direct` [`NodeKeySignature`][ts_tka::NodeKeySignature] authorizing `node_key`, signed
1252 /// by this node's network-lock private key, and POSTs it to `/machine/tka/sign`. The signing node
1253 /// must itself be trusted under the current authority for control to accept the signature.
1254 ///
1255 /// **This only *submits* the signature; it does not mutate this node's local
1256 /// [`Authority`][ts_tka::Authority].** The local trusted-key state advances solely through the
1257 /// verified netmap-driven sync path (every applied AUM passes
1258 /// [`VerifiedAumChain::verify`][ts_tka::VerifiedAumChain::verify]), so a successful `tka_sign` is
1259 /// reflected locally on the next sync — the active fail-closed enforcement posture is unchanged.
1260 ///
1261 /// # Errors
1262 /// [`ts_control::TkaSyncError::Unsupported`] if control has no TKA endpoint (no lock / control too
1263 /// old), [`ts_control::TkaSyncError::NetworkError`] on a transient failure, or a coarse
1264 /// `Internal` for other RPC failures.
1265 pub async fn tka_sign(
1266 &self,
1267 node_key: &ts_keys::NodePublicKey,
1268 ) -> Result<(), ts_control::TkaSyncError> {
1269 self.runtime.tka_sign(node_key.to_bytes()).await
1270 }
1271
1272 /// Disable Tailnet Lock by presenting the `disablement_secret` to control — the Rust analog of
1273 /// Go `LocalClient.NetworkLockDisable`.
1274 ///
1275 /// Targets this node's current authority head (from the cached [`tka_status`](Device::tka_status));
1276 /// the `disablement_secret` is the operator-held capability (one of the lock's
1277 /// `DisablementValues`) that authorizes turning the lock off. Control verifies the secret against
1278 /// the authority's disablement set and, if valid, disables the lock for the tailnet.
1279 ///
1280 /// **Submit-only:** this POSTs the disablement; it does not mutate this node's local
1281 /// [`Authority`][ts_tka::Authority]. The disablement is reflected locally through the existing
1282 /// verified netmap-driven sync — which then clears enforcement to admit-all. The active
1283 /// fail-closed enforcement posture (until that sync lands) is unchanged.
1284 ///
1285 /// # Errors
1286 /// [`ts_control::TkaSyncError::Unsupported`] when there is no known TKA head to disable (lock not
1287 /// in use / control hasn't pushed a status) or control has no TKA endpoint;
1288 /// [`ts_control::TkaSyncError::NetworkError`] on a transient failure; a coarse `Internal` for
1289 /// other RPC failures (incl. control rejecting an invalid secret).
1290 pub async fn tka_disable(
1291 &self,
1292 disablement_secret: Vec<u8>,
1293 ) -> Result<(), ts_control::TkaSyncError> {
1294 self.runtime.tka_disable(disablement_secret).await
1295 }
1296
1297 /// Initialize Tailnet Lock for this tailnet with this node as the sole initial trusted key — the
1298 /// Rust analog of Go `LocalClient.NetworkLockInit` for the single-node "lock yourself in" case.
1299 ///
1300 /// Builds and signs a genesis Checkpoint AUM trusting only this node's network-lock key and
1301 /// gated by `disablement_secret` (stored as its Argon2i [`disablement_value`][ts_tka::disablement_value]
1302 /// in the lock; the raw secret is the operator-held capability that later disables it via
1303 /// [`tka_disable`](Device::tka_disable)), then drives control's two-phase
1304 /// `/machine/tka/init/{begin,finish}`.
1305 ///
1306 /// **Single-node only (for now):** if control reports that other nodes must be (re)signed under
1307 /// the new lock (a multi-node tailnet), this returns [`ts_control::TkaSyncError::Unsupported`] —
1308 /// the multi-node init (re-signing each node, incl. rotation keys) is a deferred follow-up.
1309 ///
1310 /// **Submit-only:** this creates the lock at control and does not seed this node's local
1311 /// [`Authority`][ts_tka::Authority]; the lock is reflected locally through the verified
1312 /// netmap-driven sync (every applied AUM passes
1313 /// [`VerifiedAumChain::verify`][ts_tka::VerifiedAumChain::verify]). Verify-and-log posture is
1314 /// unchanged.
1315 ///
1316 /// # Errors
1317 /// [`ts_control::TkaSyncError::Unsupported`] if control has no TKA endpoint or requires re-signing
1318 /// other nodes; [`ts_control::TkaSyncError::NetworkError`] on a transient failure; a coarse
1319 /// `Internal` for a malformed genesis or other RPC failure (incl. control rejecting the init,
1320 /// e.g. a lock already exists).
1321 pub async fn tka_init(
1322 &self,
1323 disablement_secret: Vec<u8>,
1324 ) -> Result<(), ts_control::TkaSyncError> {
1325 self.runtime.tka_init(disablement_secret).await
1326 }
1327
1328 /// Request an OIDC **ID token** from control for this node, scoped to `audience` (workload-
1329 /// identity federation, like `tailscale`'s `id-token` LocalAPI).
1330 ///
1331 /// Returns a signed JWT whose `sub` claim is this node's MagicDNS name and whose `aud` claim is
1332 /// `audience`, suitable for presenting to a third-party relying party (e.g. AWS/GCP
1333 /// workload-identity federation). The node is the token *subject*, not the authenticator — this
1334 /// is token issuance over the Noise transport (`POST /machine/id-token`), not a login path.
1335 /// Requires the control plane to support capability version ≥ 30.
1336 pub async fn fetch_id_token(&self, audience: &str) -> Result<String, ts_control::IdTokenError> {
1337 self.runtime.fetch_id_token(audience.to_string()).await
1338 }
1339
1340 /// Publish a `TXT` DNS record for this node into the tailnet's `ts.net` zone via control's
1341 /// `/machine/set-dns` RPC — the Rust analog of Go `tailscale.com/client/tailscale`'s
1342 /// `LocalClient.SetDNS(ctx, name, value)`.
1343 ///
1344 /// `name` is the full record name (e.g. `_acme-challenge.host.tailnet.ts.net`) and `value` is
1345 /// the record value (e.g. the base64url DNS-01 digest). Like Go's `SetDNS`, this publishes a
1346 /// `TXT` record specifically — its canonical use is satisfying an ACME DNS-01 challenge so a CA
1347 /// can verify control of a `*.ts.net` name. Issuance over the Noise transport (`POST
1348 /// /machine/set-dns`), not a login path.
1349 pub async fn set_dns(&self, name: &str, value: &str) -> Result<(), ts_control::SetDnsError> {
1350 self.runtime
1351 .set_dns(name.to_string(), value.to_string())
1352 .await
1353 }
1354
1355 /// Log this node out of the tailnet — deregister it from the control plane (the equivalent of
1356 /// Go `tsnet`'s `LocalClient.Logout`).
1357 ///
1358 /// Re-`POST`s `/machine/register` with this node's current node key and a past expiry, which the
1359 /// control plane honors by **expiring the node now**: it drops out of every peer's netmap and
1360 /// must re-register (re-authenticate) to rejoin.
1361 ///
1362 /// This is primarily for **non-ephemeral** nodes. An ephemeral node is garbage-collected by
1363 /// control shortly after it disconnects, but a persistent node lingers in the tailnet
1364 /// (visible to peers, counting against the machine limit) for up to ~24h after the process exits
1365 /// unless explicitly logged out. Call this before [`shutdown`](Self::shutdown) to deregister
1366 /// immediately. Calling it on an ephemeral node simply brings the GC forward; it is idempotent,
1367 /// so logging out an already-gone node is not an error.
1368 ///
1369 /// This is a **control-plane state change only**: it does not tear down the local datapath (do
1370 /// that via [`shutdown`](Self::shutdown)), and it does not delete or rotate the on-disk node key
1371 /// — re-registering with the same key (a fresh [`Device::new`]) is the re-login path.
1372 pub async fn logout(&self) -> Result<(), ts_control::LogoutError> {
1373 self.runtime.logout().await
1374 }
1375
1376 /// Snapshot this node's client metrics in Prometheus text exposition format.
1377 ///
1378 /// Mirrors Go Tailscale's `clientmetric` registry: process-global counters/gauges incremented
1379 /// on the datapath hot loops (e.g. `magicsock_send_udp`, `magicsock_recv_data_bytes_udp`),
1380 /// rendered as `# TYPE <name> <kind>\n<name> <value>\n` per metric, sorted by name. (Go `tsnet`
1381 /// exposes no metrics method of its own, so this is the fork's clean public surface.) The
1382 /// registry is process-global, so the output covers every `Device` in the process.
1383 pub fn metrics(&self) -> String {
1384 ts_metrics::write_prometheus()
1385 }
1386
1387 /// Map a tailnet source `addr` to the node that owns its IP (like `tsnet`'s `WhoIs`).
1388 ///
1389 /// Only the IP of `addr` is used; the port is ignored. Returns `Ok(None)` if no tailnet node
1390 /// owns that address.
1391 pub async fn whois(&self, addr: SocketAddr) -> Result<Option<WhoIs>, Error> {
1392 self.runtime.whois(addr).await.map_err(Into::into)
1393 }
1394
1395 /// Change the selected exit node at runtime, without recreating the [`Device`] — the equivalent
1396 /// of Go `tsnet`'s `LocalClient.EditPrefs(ExitNodeID/ExitNodeIP)`.
1397 ///
1398 /// The peer may be named by stable node ID, tailnet IP, or MagicDNS name via
1399 /// [`ExitNodeSelector`] (a bare IP or name parses with `selector.parse()`); this is the same
1400 /// selector type as [`Config::exit_node`](crate::Config::exit_node), so the construction-time
1401 /// and runtime paths are identical. Passing `None` clears the exit node — internet-bound traffic
1402 /// is then dropped (fail-closed) unless this node egresses directly.
1403 ///
1404 /// The change is applied immediately: the new selector is re-resolved against the live peer set
1405 /// and the outbound route + inbound source filter are recomputed at once. A selector for a peer
1406 /// not yet in the netmap simply takes effect once that peer appears.
1407 ///
1408 /// Only NEW flows use the changed exit; in-flight connections are not torn down and continue
1409 /// egressing via the previously-selected exit until they close.
1410 pub async fn set_exit_node(&self, exit_node: Option<ExitNodeSelector>) -> Result<(), Error> {
1411 self.runtime
1412 .set_exit_node(exit_node)
1413 .await
1414 .map_err(Into::into)
1415 }
1416
1417 /// The currently-selected exit node, or `None` if none is selected.
1418 pub fn exit_node(&self) -> Option<ExitNodeSelector> {
1419 self.runtime.exit_node()
1420 }
1421
1422 /// Toggle whether this node accepts peer-advertised subnet routes at runtime, without recreating
1423 /// the [`Device`] — the equivalent of Go `tsnet`'s `LocalClient.EditPrefs(RouteAll)` /
1424 /// `tailscale set --accept-routes`.
1425 ///
1426 /// This is a purely **local** preference: unlike [`set_advertise_routes`](Self::set_advertise_routes)
1427 /// it is never reported to control, so it only changes which peer-advertised subnet routes *this*
1428 /// node installs. The change is applied immediately — the outbound route table and the inbound
1429 /// source filter are recomputed together against the live peer set, so turning it on installs (and
1430 /// accepts traffic from) newly-accepted subnets and turning it off removes them from both in
1431 /// lock-step. A peer's own tailnet address is always reachable regardless; the exit-node default
1432 /// route is governed by [`set_exit_node`](Self::set_exit_node), not this flag.
1433 ///
1434 /// Only NEW flows are affected; in-flight connections are not torn down. In TUN transport mode the
1435 /// netstack data path honors the toggle immediately, but the host routing table is not re-steered
1436 /// until the device is rebuilt.
1437 pub async fn set_accept_routes(&self, accept: bool) -> Result<(), Error> {
1438 self.runtime
1439 .set_accept_routes(accept)
1440 .await
1441 .map_err(Into::into)
1442 }
1443
1444 /// Whether this node currently accepts peer-advertised subnet routes (`--accept-routes`).
1445 pub fn accept_routes(&self) -> bool {
1446 self.runtime.accept_routes()
1447 }
1448
1449 /// Toggle whether this node accepts the tailnet's DNS configuration at runtime, without
1450 /// recreating the [`Device`] — the equivalent of Go `tsnet`'s `LocalClient.EditPrefs(CorpDNS)` /
1451 /// `tailscale set --accept-dns`.
1452 ///
1453 /// Like [`set_accept_routes`](Self::set_accept_routes) this is a purely **local** preference,
1454 /// never reported to control. When `false`, the MagicDNS responder ignores the control-pushed DNS
1455 /// configuration and answers every query `REFUSED` (mirroring Go applying an empty `dns.Config`
1456 /// when `CorpDNS` is off), so the node can join the tailnet for connectivity without taking over
1457 /// its DNS. The change is applied immediately to the netstack responder and the peerAPI DoH server
1458 /// that shares its view; flipping it back to `true` restores serving from the still-current config
1459 /// (the config is only gated at the read site, never destroyed), so the OFF→ON restore is
1460 /// automatic.
1461 ///
1462 /// In TUN transport mode the in-datapath responder honors the toggle immediately, but the host
1463 /// resolver/route programming (which points the host at `100.100.100.100`) is applied once at
1464 /// device build and is not re-steered until the device is rebuilt.
1465 pub async fn set_accept_dns(&self, accept: bool) -> Result<(), Error> {
1466 self.runtime
1467 .set_accept_dns(accept)
1468 .await
1469 .map_err(Into::into)
1470 }
1471
1472 /// Whether this node currently accepts the tailnet's DNS configuration (`--accept-dns` / `CorpDNS`).
1473 pub fn accept_dns(&self) -> bool {
1474 self.runtime.accept_dns()
1475 }
1476
1477 /// Change the subnet routes this node advertises at runtime — Go `tailscale set
1478 /// --advertise-routes`. This is the runtime equivalent of
1479 /// [`Config::advertise_routes`](crate::Config::advertise_routes): the node re-advertises the
1480 /// prefixes to control (so it is granted the subnet-router role for them) AND starts forwarding
1481 /// them on the data path, applied together so the two never disagree.
1482 ///
1483 /// `routes` is filtered to the IPv4-only, deduplicated set this fork honors (IPv6 prefixes are
1484 /// dropped under the IPv6-off posture). This sets the explicit subnet prefixes only; it does not
1485 /// affect the exit-node `0.0.0.0/0` advertisement. Only NEW forwarded flows use the changed set;
1486 /// in-flight flows keep their existing routing until they close.
1487 pub async fn set_advertise_routes(&self, routes: Vec<ipnet::IpNet>) -> Result<(), Error> {
1488 self.runtime
1489 .set_advertise_routes(routes)
1490 .await
1491 .map_err(Into::into)
1492 }
1493
1494 /// Advertise (or stop advertising) this node as an **exit node** at runtime — Go `tailscale set
1495 /// --advertise-exit-node`. The runtime equivalent of
1496 /// [`Config::advertise_exit_node`](crate::Config::advertise_exit_node): when `enable` it adds the
1497 /// `0.0.0.0/0` default route to what this node advertises (and forwards), when `false` it removes
1498 /// it.
1499 ///
1500 /// Composes with [`set_advertise_routes`](Device::set_advertise_routes): the explicit subnet
1501 /// routes and the exit-node advertisement are independent — toggling one preserves the other.
1502 /// Advertising an exit node only makes this node *eligible*; control + the peer still decide
1503 /// whether to route through it. Only NEW forwarded flows see the change; in-flight flows keep
1504 /// their routing.
1505 pub async fn set_advertise_exit_node(&self, enable: bool) -> Result<(), Error> {
1506 self.runtime
1507 .set_advertise_exit_node(enable)
1508 .await
1509 .map_err(Into::into)
1510 }
1511
1512 /// Change this node's hostname at runtime — Go `tailscale set --hostname`. Re-reports
1513 /// `Hostinfo.Hostname` to control on the live connection (no rebuild, no reconnect); control
1514 /// reflects the new name in the netmap (it drives the node's MagicDNS name / `tailscale status`
1515 /// display). Hostname is display metadata, so there is no data-path effect. The new value also
1516 /// persists across a later re-registration.
1517 pub async fn set_hostname(&self, hostname: String) -> Result<(), Error> {
1518 self.runtime
1519 .set_hostname(hostname)
1520 .await
1521 .map_err(Into::into)
1522 }
1523
1524 /// Re-bind the underlay UDP socket after a **network/link change** — Wi-Fi switch, sleep/wake,
1525 /// or any event that invalidates the device's local address/NAT mapping. This is the Rust
1526 /// analog of Go magicsock's `Conn.Rebind()`.
1527 ///
1528 /// The embedder owns deciding *when* to call this (it watches the OS for link changes — there is
1529 /// no built-in network monitor); `rebind` is the engine half that does the socket work:
1530 /// - Re-binds the underlay UDP socket, preferring the same local port (so the advertised
1531 /// endpoint stays stable) and falling back to an ephemeral port. The IPv4-only-by-default
1532 /// invariant is preserved.
1533 /// - Invalidates the now-stale local mapping: learned reflexive (STUN) addresses and every
1534 /// peer's *confirmed* direct path are cleared, while candidate endpoints are kept — so peers
1535 /// are re-probed over the new socket and **relay over DERP (never a direct host dial) until a
1536 /// path re-confirms**. Endpoint discovery re-runs on its normal cadence.
1537 /// - Leaves peers, control, the netmap, disco keys, and DERP connections untouched; existing
1538 /// WireGuard sessions survive (they ride whatever underlay carries them).
1539 ///
1540 /// A no-op if the underlay socket failed to bind at startup (the device is DERP-only). Existing
1541 /// connectivity is preserved on a re-bind error (the old socket is kept; the error is returned).
1542 pub async fn rebind(&self) -> Result<(), Error> {
1543 self.runtime.rebind().await.map_err(Into::into)
1544 }
1545
1546 /// Force an immediate STUN re-probe / endpoint re-derivation **without** rebinding the underlay
1547 /// socket — the Rust analog of Go magicsock's `Conn.ReSTUN("debug")` (what `tailscale debug
1548 /// restun` triggers).
1549 ///
1550 /// Unlike [`rebind`](Self::rebind), this does **not** swap the socket or disturb any learned
1551 /// path: it keeps the existing UDP socket and its NAT mapping and only re-runs the STUN sweep
1552 /// now (re-learning this node's reflexive/public address) instead of waiting out the periodic
1553 /// (~23s, jittered) prober. Use it when this node's public endpoint may have changed (e.g. a NAT
1554 /// rebinding) but the socket itself is still fine — it is strictly lighter than a rebind.
1555 ///
1556 /// Peers, control, the netmap, disco keys, and DERP are untouched, and there is **no control
1557 /// round-trip**. A no-op if the underlay socket failed to bind at startup (the device is
1558 /// DERP-only) or while no peer is configured (matching the periodic prober's gate).
1559 pub async fn re_stun(&self) -> Result<(), Error> {
1560 self.runtime.re_stun().await.map_err(Into::into)
1561 }
1562
1563 /// The stable id of the exit node traffic is **currently** egressing through, or `None` if none
1564 /// is engaged (the equivalent of Go `tsnet`'s `Status.ExitNodeStatus.ID`).
1565 ///
1566 /// This differs from [`exit_node`](Self::exit_node), which returns the *configured* selector:
1567 /// the active exit node is the route updater's resolved, fail-closed answer. It is `None` when
1568 /// no exit node is configured, the configured selector matches no current peer, or the matched
1569 /// peer no longer advertises a default route (egress is then dropped, fail-closed). Match the id
1570 /// against [`Status::peers`](crate::Status::peers) (via [`status`](Self::status)) for details.
1571 pub fn active_exit_node(&self) -> Option<ts_control::StableNodeId> {
1572 self.runtime.active_exit_node()
1573 }
1574
1575 /// Watch for netmap changes: the returned receiver's value is the current set of peer
1576 /// [`StatusNode`]s and updates on every netmap change. This is the narrow peer-only view; for
1577 /// the unified Go-`WatchIPNBus` feed (peers + device-state + login URL in one stream) use
1578 /// [`watch_ipn_bus`](Self::watch_ipn_bus).
1579 pub async fn watch_netmap(
1580 &self,
1581 ) -> Result<tokio::sync::watch::Receiver<Vec<StatusNode>>, Error> {
1582 self.runtime.watch_netmap().await.map_err(Into::into)
1583 }
1584
1585 /// The current device connection-[`DeviceState`] (`Connecting` / `Running` / `NeedsLogin` /
1586 /// `Expired` / `Failed`).
1587 pub fn device_state(&self) -> DeviceState {
1588 self.runtime.device_state()
1589 }
1590
1591 /// Watch the device connection-[`DeviceState`], reacting push-style to control connection
1592 /// transitions instead of polling [`status`](Self::status).
1593 ///
1594 /// Returns a [`tokio::sync::watch::Receiver`]; await its
1595 /// [`changed`](tokio::sync::watch::Receiver::changed) to be woken on each transition. The
1596 /// initial value is the current state.
1597 pub fn watch_state(&self) -> tokio::sync::watch::Receiver<DeviceState> {
1598 self.runtime.watch_state()
1599 }
1600
1601 /// Subscribe to the unified IPN notification bus (Go `ipn`'s `WatchIPNBus`).
1602 ///
1603 /// Returns an [`IpnBusWatcher`]; await [`next`](IpnBusWatcher::next) to receive [`Notify`]
1604 /// events that merge device-[`DeviceState`] transitions (with the interactive-login URL surfaced
1605 /// as [`Notify::browse_to_url`]) and netmap peer-set changes into one feed — the single stream a
1606 /// consumer porting from Go's `WatchNotifications` expects, instead of composing
1607 /// [`watch_state`](Self::watch_state) and [`watch_netmap`](Self::watch_netmap) by hand. `mask`
1608 /// ([`NotifyWatchOpt`]) front-loads the current state as an initial snapshot on subscribe
1609 /// (`INITIAL_STATE` / `INITIAL_NETMAP`), mirroring Go's `NotifyInitialState` /
1610 /// `NotifyInitialNetMap`. Delivery is best-effort (a slow consumer drops notifications rather
1611 /// than stalling the runtime); the stream ends when the device shuts down.
1612 pub async fn watch_ipn_bus(&self, mask: NotifyWatchOpt) -> Result<IpnBusWatcher, Error> {
1613 self.runtime.watch_ipn_bus(mask).await.map_err(Into::into)
1614 }
1615
1616 /// Wait until the device finishes registering, returning a typed outcome — the clean
1617 /// replacement for polling [`ipv4_addr`](Self::ipv4_addr) in a loop.
1618 ///
1619 /// Resolves `Ok(())` once the device is [`DeviceState::Running`]. On a non-running outcome it
1620 /// returns a typed [`RegistrationError`]:
1621 /// - [`AuthRejected`](RegistrationError::AuthRejected) — bad/expired/unknown auth key;
1622 /// **permanent** (re-pair).
1623 /// - [`NeedsLogin`](RegistrationError::NeedsLogin) — interactive authorization required;
1624 /// **not permanent** (the runtime keeps retrying and reaches `Running` once the user
1625 /// authorizes). Auth-key callers treat this as failure; interactive callers should ignore it
1626 /// and drive the flow via [`watch_state`](Self::watch_state).
1627 /// - [`NetworkUnreachable`](RegistrationError::NetworkUnreachable) — **transient** (retry).
1628 /// - [`Timeout`](RegistrationError::Timeout) — no settled state within `timeout` (`None` waits
1629 /// indefinitely).
1630 ///
1631 /// [`KeyExpired`](RegistrationError::KeyExpired) is not produced here (a key expires only after
1632 /// the node is up); observe it via [`watch_state`](Self::watch_state). Use
1633 /// [`RegistrationError::is_permanent`] to branch "re-pair" vs. "retry / drive login".
1634 pub async fn wait_until_running(
1635 &self,
1636 timeout: Option<Duration>,
1637 ) -> Result<(), RegistrationError> {
1638 self.runtime.wait_until_running(timeout).await
1639 }
1640
1641 /// Ping a tailnet peer over the overlay with an ICMPv4 echo, returning the round-trip time
1642 /// (like `tailscale ping`).
1643 ///
1644 /// The echo is sent from this device's own tailnet IPv4 over the overlay netstack — never a
1645 /// host socket. IPv6 destinations return [`PingError::Ipv6Unsupported`] (this fork is
1646 /// IPv4-only on the tailnet). A peer answers from its own OS stack; this netstack does not
1647 /// auto-reply to echo requests.
1648 ///
1649 /// In TUN transport mode there is no application netstack to ping from; this surfaces as
1650 /// [`PingError::Timeout`] (the same error this method already uses for an unavailable source
1651 /// address — `PingError` carries no dedicated "unsupported" variant).
1652 pub async fn ping(&self, dst: IpAddr, timeout: Duration) -> Result<Duration, PingError> {
1653 let channel = self.channel().map_err(|_| PingError::Timeout)?;
1654 let src = self.ipv4_addr().await.map_err(|_| PingError::Timeout)?;
1655 ts_netstack_smoltcp::ping(channel, src, dst, timeout).await
1656 }
1657
1658 /// The current **direct path** to the peer at tailnet IP `dst`: its confirmed direct UDP
1659 /// endpoint and that path's last-measured round-trip latency, or `None` when traffic to the peer
1660 /// is **relayed via DERP** (no trusted direct path right now), the peer is unknown, or it has no
1661 /// disco key.
1662 ///
1663 /// This is the direct-path analog of Go's `tailscale ping`/`PeerStatus` connectivity: a present
1664 /// result means packets reach the peer directly at the returned address, with roughly the
1665 /// returned RTT. The latency is a live snapshot taken from the most recent disco ping/pong that
1666 /// confirmed the path (up to one probe interval stale) — not a fresh on-demand round-trip. Unlike
1667 /// [`ping`](Device::ping) (an ICMP echo over the netstack), this reports the *underlay* path the
1668 /// data plane actually uses, distinguishing a direct connection from a DERP-relayed one.
1669 pub async fn direct_path(&self, dst: IpAddr) -> Result<Option<(SocketAddr, Duration)>, Error> {
1670 self.runtime.direct_path(dst).await.map_err(Into::into)
1671 }
1672
1673 /// Send a disco ping to the peer at tailnet IP `dst` **now** and await the pong — a fresh,
1674 /// on-demand round-trip measurement (Go's `tailscale ping`, `PingType::Disco`). Returns the
1675 /// endpoint that answered and the measured RTT, or `None` if no pong arrives within `timeout`
1676 /// (or the peer is unknown / has no candidate direct path).
1677 ///
1678 /// Unlike [`direct_path`](Device::direct_path) — which reports the *last periodic probe's* RTT
1679 /// from cache — this actively sends a ping and waits for the reply, so the latency is current. A
1680 /// `None` here means "no direct path confirmed within the timeout" (the peer may still be
1681 /// reachable via DERP). Unlike [`ping`](Device::ping) (an ICMP echo over the netstack), this
1682 /// measures the disco/underlay path the data plane uses for direct connections.
1683 pub async fn ping_disco(
1684 &self,
1685 dst: IpAddr,
1686 timeout: Duration,
1687 ) -> Result<Option<(SocketAddr, Duration)>, Error> {
1688 self.runtime
1689 .ping_disco(dst, timeout)
1690 .await
1691 .map_err(Into::into)
1692 }
1693
1694 /// Obtain a TLS certificate for a node's MagicDNS `name` (like `tsnet`'s `GetCertificate`).
1695 ///
1696 /// **Fail-closed without the `acme` feature.** By default this fork has no client-side ACME
1697 /// engine wired in, so this returns [`ts_control::CertError::Unimplemented`] (after a
1698 /// tailnet-name check) — it NEVER self-signs and NEVER returns a placeholder certificate
1699 /// ([`ts_control::MISSING_CERT_RPC`] names what is missing).
1700 ///
1701 /// **With the `acme` feature** this instead drives the client-side ACME DNS-01 engine to issue a
1702 /// real Let's Encrypt certificate for `name`, publishing the challenge TXT via the node's
1703 /// `POST /machine/set-dns` RPC (routed through the control runner). SaaS-only: a self-hosted
1704 /// control plane may 501 on set-dns, surfaced as [`ts_control::CertError::Acme`].
1705 #[cfg(not(feature = "acme"))]
1706 pub async fn get_certificate(&self, name: &str) -> Result<CertifiedKey, ts_control::CertError> {
1707 ts_control::get_certificate(name).await
1708 }
1709
1710 /// See the no-`acme` variant for the contract; with `acme` this issues a real cert via the
1711 /// runtime's ACME engine (`Device → Runtime → ControlRunner → issue_certificate_via_setdns`).
1712 #[cfg(feature = "acme")]
1713 pub async fn get_certificate(&self, name: &str) -> Result<CertifiedKey, ts_control::CertError> {
1714 self.runtime.get_certificate(name.to_string()).await
1715 }
1716
1717 /// Issue a real Let's Encrypt certificate for a node's MagicDNS `name` and return the **PEM
1718 /// pair** `(cert_chain_pem, key_pem)` — the analog of Go's `LocalClient.CertPairWithValidity`,
1719 /// for writing the daemon's on-disk `.crt` + `.key` (`tnet cert`). **`acme` feature only.**
1720 ///
1721 /// This drives the same client-side ACME DNS-01 issuance as [`Device::get_certificate`] (one
1722 /// order, the challenge TXT published via the node's `POST /machine/set-dns` RPC, routed through
1723 /// the runtime → control runner); it differs only in returning the raw leaf+chain PEM and the
1724 /// leaf private-key PEM instead of the opaque [`CertifiedKey`]. The second tuple element is
1725 /// **secret key material**: it is never logged anywhere on this path — persist it to a `0600`
1726 /// file and never trace it.
1727 ///
1728 /// **`min_validity` (honest "always fresh").** Go's `CertPairWithValidity` reuses a cached cert
1729 /// when it has at least `min_validity` of its lifetime remaining, re-issuing otherwise. This
1730 /// fork keeps **no cert cache** — every call issues fresh — so `min_validity` is accepted for
1731 /// signature compatibility but does not alter behavior: a freshly issued (full-lifetime) cert
1732 /// satisfies any `min_validity`. A reuse cache is separate future work; this does NOT fake one.
1733 ///
1734 /// Fail-closed: returns a [`ts_control::CertError`] (never a self-signed or partial pair) on any
1735 /// ACME/HTTP failure. SaaS-only: a self-hosted control plane may 501 on set-dns, surfaced as
1736 /// [`ts_control::CertError::Acme`].
1737 #[cfg(feature = "acme")]
1738 pub async fn cert_pair(
1739 &self,
1740 name: &str,
1741 min_validity: Option<Duration>,
1742 ) -> Result<(String, String), ts_control::CertError> {
1743 self.runtime.cert_pair(name.to_string(), min_validity).await
1744 }
1745
1746 /// Build a [`TlsAcceptor`] terminating TLS for `cfg.name` on the overlay (like `tsnet`'s
1747 /// `ListenTLS`).
1748 ///
1749 /// Obtains the certificate via [`Device::get_certificate`] — so with the `acme` feature this
1750 /// issues a real Let's Encrypt cert (when the control plane answers `set-dns`), and without it
1751 /// (or when issuance is unavailable) it surfaces the same fail-closed
1752 /// [`ts_control::CertError`] rather than ever serving a self-signed cert or downgrading to
1753 /// plaintext. Terminate accepted overlay streams with [`ts_control::accept_tls`].
1754 pub async fn listen_tls(
1755 &self,
1756 cfg: &ts_control::ServeConfig,
1757 ) -> Result<TlsAcceptor, ts_control::CertError> {
1758 // Route through Device::get_certificate (the acme-aware issuance path) rather than
1759 // ts_control::listen_tls, which only knows the non-acme stub. Validate the serve config
1760 // first (same fail-closed checks ts_control::listen_tls applies), then assemble the acceptor.
1761 cfg.validate()?;
1762 let cert = self.get_certificate(&cfg.name).await?;
1763 ts_control::tls_acceptor(cert)
1764 }
1765
1766 /// The currently-stored Serve config (like `tsnet`'s `GetServeConfig`).
1767 ///
1768 /// Returns the config last passed to [`Device::set_serve_config`], or an empty
1769 /// [`ts_control::ServeState`] (no ports) if none was ever set. Pure read — does not touch the
1770 /// network.
1771 pub fn get_serve_config(&self) -> ts_control::ServeState {
1772 match &*self.serve.lock().unwrap_or_else(|e| e.into_inner()) {
1773 Some(mgr) => mgr.get(),
1774 None => ts_control::ServeState::default(),
1775 }
1776 }
1777
1778 /// Replace this node's Serve config and (re)bind its tailnet ports (like `tsnet`'s
1779 /// `SetServeConfig`, REPLACE semantics).
1780 ///
1781 /// `state` becomes the **whole** config (full-replace reconcile: every previously-bound serve
1782 /// port's accept loop is torn down and the new config's ports are bound from scratch). For each
1783 /// configured port the manager binds an overlay listener on this node's tailnet IPv4 and
1784 /// dispatches per [`ts_control::ServeTarget`]:
1785 /// - [`Accept`](ts_control::ServeTarget::Accept) — the TLS-terminated stream is handed back over
1786 /// the returned [`ServeAcceptedReceiver`](ts_runtime::serve::ServeAcceptedReceiver) (the
1787 /// in-process stand-in for `ListenTLS`'s `net.Listener`).
1788 /// - [`Proxy`](ts_control::ServeTarget::Proxy) — reverse-proxy the decrypted stream to a local
1789 /// host backend.
1790 /// - [`Text`](ts_control::ServeTarget::Text) — write a fixed body and close.
1791 /// - [`TcpForward`](ts_control::ServeTarget::TcpForward) — forward the **raw** (non-TLS) stream
1792 /// to a local host backend.
1793 ///
1794 /// **Fail-closed.** `state.validate()` runs first. Every TLS-terminating port's acceptor is
1795 /// obtained up-front via [`Device::listen_tls`] (the ACME-aware cert path); if any cert cannot be
1796 /// issued the whole call fails with that [`ts_control::CertError`] and **nothing is bound** — a
1797 /// TLS port never downgrades to plaintext.
1798 ///
1799 /// **Anti-leak.** Listeners bind the overlay netstack only (never a host socket). The
1800 /// `Proxy`/`TcpForward` backend dial is a local host socket to the embedder's own backend (like
1801 /// Go's reverse-proxy to `127.0.0.1`), intentionally NOT routed through the exit-egress
1802 /// forwarder. A backend dial failure drops that connection; it never falls back.
1803 ///
1804 /// Returns an error in TUN transport mode (there is no application netstack to bind on). The
1805 /// previous config's accept loops (and any earlier `ServeAcceptedReceiver`) stop when this
1806 /// returns; the new receiver delivers every `Accept`-port connection.
1807 pub async fn set_serve_config(
1808 &self,
1809 state: ts_control::ServeState,
1810 ) -> Result<ts_runtime::serve::ServeAcceptedReceiver, Error> {
1811 state
1812 .validate()
1813 .map_err(|_| Error::Internal(InternalErrorKind::BadRequest))?;
1814
1815 // Fail-closed: build every TLS-terminating port's acceptor up-front via the ACME-aware cert
1816 // path. If any cert can't be issued, return before binding anything (no plaintext downgrade).
1817 let mut resolved = std::collections::BTreeMap::new();
1818 for (port, target) in &state.ports {
1819 let acceptor = if target.terminates_tls() {
1820 let cfg = ts_control::ServeConfig {
1821 name: state.name.clone(),
1822 port: *port,
1823 target: target.clone(),
1824 };
1825 Some(self.listen_tls(&cfg).await.map_err(|_| {
1826 // Cert issuance is fail-closed in this fork; surface as a request error rather
1827 // than ever binding a plaintext TLS port.
1828 Error::Internal(InternalErrorKind::BadRequest)
1829 })?)
1830 } else {
1831 None
1832 };
1833 resolved.insert(
1834 *port,
1835 ts_runtime::serve::ResolvedPort {
1836 target: target.clone(),
1837 acceptor,
1838 },
1839 );
1840 }
1841
1842 // The manager binds the OVERLAY netstack on this node's own tailnet IPv4.
1843 let self_ipv4 = self.ipv4_addr().await?;
1844 let channel = self.channel()?.clone();
1845
1846 let mut slot = self.serve.lock().unwrap_or_else(|e| e.into_inner());
1847 let mgr =
1848 slot.get_or_insert_with(|| ts_runtime::serve::ServeManager::new(channel, self_ipv4));
1849 Ok(mgr.set(state, resolved))
1850 }
1851
1852 /// Expose a tailnet TLS service to the public internet via Tailscale Funnel (like `tsnet`'s
1853 /// `ListenFunnel`), returning a [`FunnelAcceptedReceiver`](ts_runtime::funnel::FunnelAcceptedReceiver)
1854 /// that delivers each TLS-terminated public connection.
1855 ///
1856 /// **Two fail-closed gates, then the live ingress listener.** First the node-attribute gate is
1857 /// fully enforced from this node's own capability map (mirroring Go `ipn.NodeCanFunnel` +
1858 /// `ipn.CheckFunnelPort`): the tailnet admin must have enabled HTTPS and granted the `funnel`
1859 /// node attribute, and `cfg.port` must be in the set the `funnel-ports` capability allows —
1860 /// otherwise this returns [`ts_control::FunnelError::NotAllowed`] /
1861 /// [`ts_control::FunnelError::PortNotAllowed`] before touching any cert or network. Then the
1862 /// node's `*.ts.net` certificate is obtained via the ACME-aware [`Device::get_certificate`] (the
1863 /// Funnel hostname *is* the node's MagicDNS name, so its DNS-01 cert matches); fail-closed on
1864 /// [`ts_control::FunnelError::Cert`] — no self-signed or plaintext fallback.
1865 ///
1866 /// On success a [`FunnelManager`](ts_runtime::funnel::FunnelManager) is registered: its ingress
1867 /// sink is installed into the runtime's peerAPI `/v0/ingress` slot (making that route live without
1868 /// restarting the peerAPI server), and the `HostInfo.IngressEnabled` map-request signal is set so
1869 /// control routes Funnel traffic to this node. Public Funnel bytes arrive as a relay POST to
1870 /// `/v0/ingress`, are membership-gated + `101`-hijacked into a raw stream, TLS-terminated by the
1871 /// manager, and delivered over the returned receiver.
1872 ///
1873 /// **Where the relay comes from.** The public ingress **relay + DNS mapping** that feed
1874 /// `/v0/ingress` are Tailscale infrastructure ([`ts_control::MISSING_FUNNEL_RELAY`]), provisioned
1875 /// automatically against real Tailscale SaaS with a Funnel-enabled ACL; against a self-hosted
1876 /// control plane no relay exists, so the listener is correct but never fed.
1877 ///
1878 /// Anti-leak: Funnel TLS terminates only on the overlay netstack (the hijacked ingress stream
1879 /// arrives on the overlay peerAPI listener), never a host socket; there is no self-signed or
1880 /// plaintext fallback. A new `listen_funnel` replaces the previous manager (its pump + sink tear
1881 /// down); dropping the `Device` tears it down too.
1882 pub async fn listen_funnel(
1883 &self,
1884 cfg: &ts_control::ServeConfig,
1885 opts: ts_control::FunnelOptions,
1886 ) -> Result<ts_runtime::funnel::FunnelAcceptedReceiver, ts_control::FunnelError> {
1887 // Gate 1 (fail-closed, no network): node-attribute + funnel-port access from our cap map.
1888 let me = self
1889 .self_node()
1890 .await
1891 .map_err(|_| ts_control::FunnelError::NotAllowed)?;
1892 cfg.validate()?;
1893 ts_control::funnel_access(&me, cfg.port)?;
1894
1895 // Gate 2 (fail-closed): obtain the node's `*.ts.net` cert via the ACME-aware path and build
1896 // the TLS acceptor. A cert failure surfaces as FunnelError::Cert — never a plaintext listener.
1897 let cert = self
1898 .get_certificate(&cfg.name)
1899 .await
1900 .map_err(ts_control::FunnelError::Cert)?;
1901 let acceptor = ts_control::tls_acceptor(cert).map_err(ts_control::FunnelError::Cert)?;
1902
1903 // `opts.funnel_only` (reject tailnet-internal connections) is accepted for surface stability;
1904 // the ingress data path only ever carries relay-delivered public traffic, so there is no
1905 // tailnet-internal leg on this listener to reject. Documented as a no-op here for now.
1906 let _ = opts;
1907
1908 // Build the funnel manager + its ingress sink + the hand-back receiver, install the sink into
1909 // the runtime's shared peerAPI `/v0/ingress` slot (making the route live), and flip the
1910 // IngressEnabled map signal. Hold the manager on the device so its pump/sink live as long as
1911 // the listener; replacing a prior manager tears the old one down on drop at end of scope.
1912 let (manager, sink, receiver) = ts_runtime::funnel::FunnelManager::new(acceptor);
1913 {
1914 let slot = self.runtime.funnel_ingress_slot();
1915 *slot.lock().unwrap_or_else(|e| e.into_inner()) = Some(sink);
1916 }
1917 self.runtime
1918 .ingress_active_flag()
1919 .store(true, std::sync::atomic::Ordering::Relaxed);
1920
1921 let old = {
1922 let mut held = self.funnel.lock().unwrap_or_else(|e| e.into_inner());
1923 held.replace(manager)
1924 };
1925 drop(old);
1926
1927 Ok(receiver)
1928 }
1929
1930 /// Host a Tailscale **VIP service** (`svc:<label>`) by binding an overlay listener on the
1931 /// service's control-assigned virtual IP (like `tsnet`'s `ListenService`).
1932 ///
1933 /// **Fail-closed.** Mirrors Go `tsnet.Server.ListenService`'s preconditions, enforced from this
1934 /// node's own netmap state ([`ts_control::resolve_service_listen`]): the `name` must be a valid
1935 /// `svc:<dns-label>`, this node must be **tagged** (Go `ErrUntaggedServiceHost`), and control
1936 /// must have assigned the service a VIP address on this node (delivered via the `service-host`
1937 /// node-capability — see [`ts_control::Node::service_addresses`]). Any unmet precondition
1938 /// returns a typed [`ts_control::ServiceError`] before binding anything.
1939 ///
1940 /// When all hold, this binds a [`tcp_listen`][Device::tcp_listen] on the service VIP and the
1941 /// configured `mode` port over the **overlay netstack** (never a host socket) and returns the
1942 /// listener. The netstack already accepts packets for control-assigned VIPs (they are injected
1943 /// alongside the node's own tailnet address), so the listener is reachable by tailnet peers.
1944 ///
1945 /// The `Tun`/L3 service mode is unsupported (a TODO in upstream tsnet); only TCP/HTTP modes
1946 /// (which bind the same VIP:port at the listen layer) are offered. Returns an error in TUN
1947 /// transport mode (there is no application netstack to bind on).
1948 pub async fn listen_service(
1949 &self,
1950 name: &str,
1951 mode: ts_control::ServiceMode,
1952 ) -> Result<netstack::TcpListener, ts_control::ServiceError> {
1953 let me = self
1954 .self_node()
1955 .await
1956 .map_err(|e| ts_control::ServiceError::Listen(e.to_string()))?;
1957 let listen_addr = ts_control::resolve_service_listen(&me, name, mode, self.enable_ipv6)?;
1958 self.tcp_listen(listen_addr)
1959 .await
1960 .map_err(|e| ts_control::ServiceError::Listen(e.to_string()))
1961 }
1962
1963 /// Attempt to gracefully shut down this device's runtime.
1964 ///
1965 /// Reports whether the device was fully shut down before the timeout. It is still shut
1966 /// down if it timed out, just more violently and with potential resource leaks.
1967 ///
1968 /// If `timeout` is `None`, then shutdown will never time-out.
1969 pub async fn shutdown(self, timeout: Option<Duration>) -> bool {
1970 self.runtime.graceful_shutdown(timeout).await
1971 }
1972}
1973
1974/// Command-channel-driven userspace network stack.
1975///
1976/// This is an opinionated wrapper around [smoltcp](https://docs.rs/smoltcp) that provides an
1977/// easier-to-integrate, more-portable API.
1978pub mod netstack {
1979 #[doc(inline)]
1980 pub use ts_netstack_smoltcp::netcore::Error;
1981 #[doc(inline)]
1982 pub use ts_netstack_smoltcp::netcore::InternalErrorKind;
1983 #[doc(inline)]
1984 pub use ts_netstack_smoltcp::netsock::{TcpListener, TcpStream, UdpSocket};
1985}
1986
1987/// Geneve (RFC 8926) framing for Tailscale **peer-relay** traffic. A peer that advertises
1988/// [`NodeInfo::is_peer_relay`] runs a UDP relay server; relayed disco + WireGuard frames are
1989/// Geneve-encapsulated with a VNI. This module exposes the header codec so the framing is
1990/// recognizable. NOTE: the active relay *data path* (the relay-allocation handshake +
1991/// magicsock integration) is **not yet implemented** in this fork — this is the wire-aware slice.
1992pub mod geneve {
1993 #[doc(inline)]
1994 pub use ts_packet::geneve::{
1995 GENEVE_FIXED_HEADER_LEN, GENEVE_PROTOCOL_DISCO, GENEVE_PROTOCOL_WIREGUARD, GeneveError,
1996 GeneveHeader,
1997 };
1998}
1999
2000/// Tailnet Lock (TKA) verification: the [`tka::Authority`] checks a peer's node-key signature
2001/// against the trusted-key state, mirroring Go's `tka` package. Pair with [`Device::tka_status`]
2002/// (the control-pushed head/disablement signal).
2003pub mod tka {
2004 #[doc(inline)]
2005 pub use ts_tka::{
2006 AumHash, AumKind, Authority, Key, KeyKind, NodeKeySignature, SigKind, State, TkaError,
2007 aum_hash,
2008 };
2009}
2010
2011/// Tailscale cryptographic key types.
2012pub mod keys {
2013 #[doc(inline)]
2014 pub use ts_keys::{
2015 DiscoKeyPair, DiscoPrivateKey, DiscoPublicKey, MachineKeyPair, MachinePrivateKey,
2016 MachinePublicKey, NetworkLockKeyPair, NetworkLockPrivateKey, NetworkLockPublicKey,
2017 NodeKeyPair, NodePrivateKey, NodePublicKey, NodeState, PersistState,
2018 };
2019}
2020
2021const ENV_MAGIC_VAR: &str = "TS_RS_EXPERIMENT";
2022const ENV_MAGIC_VALUE: &str = "this_is_unstable_software";
2023
2024fn check_magic_env() -> Result<(), Error> {
2025 if std::env::var(ENV_MAGIC_VAR).as_deref() != Ok(ENV_MAGIC_VALUE) {
2026 let warning = format!(
2027 "
2028check failed: set {ENV_MAGIC_VAR}={ENV_MAGIC_VALUE} to acknowledge that tailscale-rs is early-days
2029experimental software containing bugs, unvalidated cryptography, and no stability or compatibility
2030guarantees.
2031 "
2032 );
2033
2034 eprintln!("{}", warning.trim());
2035
2036 return Err(Error::UnstableEnvVar);
2037 };
2038
2039 Ok(())
2040}
2041
2042#[cfg(test)]
2043mod tests {
2044 use secrecy::ExposeSecret as _;
2045
2046 use super::*;
2047
2048 // `Device::new`/`new_with_secret` cannot be unit-tested end-to-end without a live control
2049 // server (registration). The only behavioral difference `new_with_secret` introduces over `new`
2050 // is exposing the `SecretString` to a plain `String` on the last inch; everything after is the
2051 // shared `new` path. So we assert that equivalence at the auth-key-resolution level: the secret
2052 // path must resolve to the exact same key the plain path feeds into `resolve_auth_key`.
2053 const SAMPLE_KEY: &str = "tskey-auth-koCgSLP5R811CNTRL-EXAMPLEEXAMPLEEXAMPLEEXAMPLE";
2054
2055 // The mapping `new_with_secret` applies (`Option<SecretString>` -> `Option<String>`) must be a
2056 // byte-for-byte round-trip, so the spawn arg is identical to a direct `new(config, Some(..))`.
2057 #[test]
2058 fn secret_exposes_to_identical_string() {
2059 let plain = Some(SAMPLE_KEY.to_string());
2060 let from_secret =
2061 Some(SecretString::from(SAMPLE_KEY)).map(|s| s.expose_secret().to_string());
2062 assert_eq!(from_secret, plain);
2063
2064 // `None` must pass through unchanged (so it falls back to `config.auth_key` exactly as `new`).
2065 let none_secret: Option<SecretString> = None;
2066 assert_eq!(
2067 none_secret.map(|s| s.expose_secret().to_string()),
2068 None::<String>
2069 );
2070 }
2071
2072 // End-to-end equivalence at the resolve layer: feeding the exposed secret through
2073 // `resolve_auth_key` yields the same `Option<String>` as feeding the plain string — i.e. both
2074 // constructors reach the same spawn argument, without registering against a control server.
2075 #[tokio::test]
2076 async fn new_with_secret_resolves_same_as_new() {
2077 let config = Config::default();
2078
2079 let via_plain = resolve_auth_key(&config, Some(SAMPLE_KEY.to_string()))
2080 .await
2081 .expect("plain auth key resolves");
2082
2083 let exposed = Some(SecretString::from(SAMPLE_KEY)).map(|s| s.expose_secret().to_string());
2084 let via_secret = resolve_auth_key(&config, exposed)
2085 .await
2086 .expect("secret-derived auth key resolves");
2087
2088 assert_eq!(via_plain, via_secret);
2089 // Without the `identity-federation` feature `resolve_auth_key` is a pass-through, so the
2090 // resolved key is the input verbatim; assert that too to pin the default-build behavior.
2091 #[cfg(not(feature = "identity-federation"))]
2092 assert_eq!(via_secret, Some(SAMPLE_KEY.to_string()));
2093 }
2094}