ts_control/node.rs
1//! The parsed domain [`Node`] model: a tailnet node decoded from the wire (`tailcfg.Node`).
2//!
3//! [`Node`] is the owned, validated form the rest of the fork reasons about (addresses, keys, caps,
4//! accepted routes, peerAPI/VIP services), built from the borrow-bound `ts_control_serde::Node` via
5//! the [`From`] impl. It also carries the route/exit-node/funnel predicates ([`Node::is_subnet_route`],
6//! [`Node::routes_to_install`], [`Node::can_funnel`]) and the [`ExitNodeSelector`] resolution.
7//!
8//! Fail-closed: route, funnel, and service-host gates all deny on a missing/malformed input.
9
10use core::net::{IpAddr, Ipv4Addr, Ipv6Addr, SocketAddr};
11use std::collections::BTreeMap;
12
13use chrono::{DateTime, Utc};
14use ts_capabilityversion::CapabilityVersion;
15use ts_keys::{DiscoPublicKey, MachinePublicKey, NodePublicKey};
16
17use crate::dns::Resolver;
18
19/// An owned node-capability map (`Node.CapMap` in Go: `map[NodeCapability][]RawMessage`).
20///
21/// Keys are capability names or URLs (e.g. `"funnel"`, `"https"`, or
22/// `"https://tailscale.com/cap/funnel-ports?ports=443,8443"`); values are the raw JSON-encoded
23/// argument blobs for that capability (often empty). Stored *owned* because the wire form
24/// ([`ts_control_serde::Node::cap_map`]) borrows from the decode buffer, whereas the domain
25/// [`Node`] outlives it. Funnel gating only inspects the keys (see [`Node::can_funnel`] and
26/// [`Node::check_funnel_port`]); the values are retained for capabilities that carry argument data.
27pub type NodeCapMap = BTreeMap<String, Vec<String>>;
28
29/// Whether `addr` falls in a range Tailscale assigns to nodes: the CGNAT range for IPv4
30/// (`100.64.0.0/10`, excluding the ChromeOS VM carve-out `100.115.92.0/23`) and the Tailscale
31/// ULA for IPv6 (`fd7a:115c:a1e0::/48`).
32///
33/// Mirrors `tsaddr.IsTailscaleIP` in the Go client. Used to tell a peer's own node addresses
34/// (always single Tailscale IPs) apart from the larger subnet routes it advertises.
35pub fn is_tailscale_ip(addr: IpAddr) -> bool {
36 match addr {
37 IpAddr::V4(v4) => {
38 let cgnat = ipnet::Ipv4Net::new(Ipv4Addr::new(100, 64, 0, 0), 10).unwrap();
39 let chromeos = ipnet::Ipv4Net::new(Ipv4Addr::new(100, 115, 92, 0), 23).unwrap();
40 cgnat.contains(&v4) && !chromeos.contains(&v4)
41 }
42 IpAddr::V6(v6) => {
43 let ula = ipnet::Ipv6Net::new(Ipv6Addr::new(0xfd7a, 0x115c, 0xa1e0, 0, 0, 0, 0, 0), 48)
44 .unwrap();
45 ula.contains(&v6)
46 }
47 }
48}
49
50/// The unique id of a node.
51pub type Id = i64;
52
53/// The stable ID of a node.
54#[derive(
55 Debug, Clone, PartialEq, Eq, Hash, PartialOrd, Ord, serde::Serialize, serde::Deserialize,
56)]
57pub struct StableId(pub String);
58
59/// How this node selects which peer to use as its exit node (`--exit-node` in the Go client).
60///
61/// Mirrors the Go client's `--exit-node`, which accepts a tailnet IP, a MagicDNS name, or a stable
62/// node ID, and resolves it to a `StableNodeID` (`resolveExitNodeIPLocked`). We keep the selector
63/// *unresolved* and re-run [`ExitNodeSelector::resolve`] against the live peer set on every route
64/// rebuild, so an IP- or name-based selection follows the peer as the netmap changes (e.g. the
65/// exit node re-registers under a new stable id).
66///
67/// A selector can be parsed from a string with [`str::parse`]/[`FromStr`](core::str::FromStr),
68/// auto-detecting the variant the way the Go CLI's `--exit-node` does: a value that parses as an IP
69/// address becomes [`ExitNodeSelector::Ip`], anything else becomes [`ExitNodeSelector::Name`].
70/// Stable-id selection is available only by constructing [`ExitNodeSelector::StableId`] directly
71/// (it is not auto-detected, since a stable id is otherwise indistinguishable from a hostname).
72#[derive(Debug, Clone, PartialEq, Eq, serde::Serialize, serde::Deserialize)]
73pub enum ExitNodeSelector {
74 /// Select the peer with this exact stable node id.
75 StableId(StableId),
76 /// Select the peer whose tailnet address is this IP.
77 Ip(IpAddr),
78 /// Select the peer matching this bare hostname or MagicDNS name (case-insensitive, optional
79 /// trailing dot), as per [`Node::matches_name`].
80 Name(String),
81}
82
83impl core::str::FromStr for ExitNodeSelector {
84 type Err = core::convert::Infallible;
85
86 /// Parse a selector from a string, auto-detecting IP vs. name (matching the Go CLI's
87 /// `--exit-node`). Parsing never fails: a non-IP string is taken as a MagicDNS name.
88 fn from_str(s: &str) -> Result<Self, Self::Err> {
89 Ok(match s.parse::<IpAddr>() {
90 Ok(ip) => ExitNodeSelector::Ip(ip),
91 Err(_) => ExitNodeSelector::Name(s.to_owned()),
92 })
93 }
94}
95
96impl ExitNodeSelector {
97 /// Resolve this selector to the stable id of the matching peer, if any, given the current set
98 /// of peers.
99 ///
100 /// Resolution is **deterministic**: if a selector somehow matches more than one peer (e.g. two
101 /// peers sharing a MagicDNS name during a transient netmap state), the peer with the smallest
102 /// [`StableId`] is chosen. This matters because both the outbound route table and the inbound
103 /// source filter resolve independently; a deterministic tiebreak guarantees they pick the
104 /// *same* peer, preserving the cryptokey-routing coupling that prevents source-spoofing.
105 ///
106 /// Returns `None` when no peer matches (a stale/typo'd selector). Callers treat `None` as
107 /// fail-closed: no peer is granted a default route, so internet-bound traffic is dropped.
108 pub fn resolve<'a>(&self, peers: impl Iterator<Item = &'a Node>) -> Option<StableId> {
109 peers
110 .filter(|node| match self {
111 ExitNodeSelector::StableId(id) => &node.stable_id == id,
112 ExitNodeSelector::Ip(ip) => node.tailnet_address.contains(*ip),
113 ExitNodeSelector::Name(name) => node.matches_name(name),
114 })
115 .map(|node| &node.stable_id)
116 .min()
117 .cloned()
118 }
119}
120
121/// A node in a tailnet.
122#[derive(Debug, Clone, PartialEq, Eq, Hash)]
123pub struct Node {
124 /// The node's id.
125 pub id: Id,
126 /// The node's stable id.
127 pub stable_id: StableId,
128
129 /// This node's hostname.
130 pub hostname: String,
131
132 /// The integer id of the user that owns this node (`Node.User` in Go). `0` when control sends
133 /// no owner (e.g. tagged/ACL nodes have no human owner). Join against the netmap's
134 /// `UserProfiles` table (accumulated by the runtime's peer tracker) to resolve a login/display
135 /// name — see the runtime `WhoIs` lookup.
136 pub user_id: ts_control_serde::UserId,
137
138 /// The tailnet this node belongs to.
139 pub tailnet: Option<String>,
140
141 /// The tags assigned to this node.
142 pub tags: Vec<String>,
143
144 /// Every prefix control assigned this node (`tailcfg.Node.Addresses`), in wire order.
145 ///
146 /// Normally one IPv4 `/32` and one IPv6 `/128`, but the wire field is a variable-length list:
147 /// an IPv6-off tailnet assigns only the v4 prefix, and nothing in the protocol stops control
148 /// assigning more than one prefix of a family.
149 ///
150 /// [`tailnet_address`](Self::tailnet_address) is the *identity* projection of this list — the
151 /// first prefix of each family — and is what the overlay, MagicDNS and exit-node selection
152 /// reason about. The whole list is retained because [`is_router`](Self::is_router) has to ask
153 /// "is this prefix one of my own?" of **all** of them, exactly as Go's `tailcfg.Node.IsRouter`
154 /// does. Keep the two consistent when building a `Node` by hand.
155 pub addresses: Vec<ipnet::IpNet>,
156
157 /// The address of the node in the tailnet: the first prefix of each family in
158 /// [`addresses`](Self::addresses), with an unspecified placeholder for a family the tailnet
159 /// does not assign.
160 pub tailnet_address: TailnetAddress,
161
162 /// The node's [`NodePublicKey`].
163 pub node_key: NodePublicKey,
164 /// The node key's expiration.
165 pub node_key_expiry: Option<DateTime<Utc>>,
166
167 /// Whether this node's key is expired (`tailcfg.Node.Expired`).
168 ///
169 /// Two writers, exactly as upstream. Control may send it on the wire, and the client sets it
170 /// itself — only ever `false` → `true` — when
171 /// [`node_key_expiry`](Self::node_key_expiry) has passed, so the decision is made against a
172 /// clock corrected for control skew rather than the raw local one. See
173 /// [`ExpiryManager::flag_expired_peer`](crate::ExpiryManager::flag_expired_peer), which is what
174 /// sets it and which also clears this node's endpoints and home DERP and breaks its
175 /// [`node_key`](Self::node_key).
176 ///
177 /// An expired peer is **kept** in the netmap, not dropped: that is what lets a caller answer
178 /// [`PEER_KEY_EXPIRED`](crate::PEER_KEY_EXPIRED) rather than "no such peer". Distinct from
179 /// [`key_expired`](Self::key_expired), which recomputes the answer from the raw local clock and
180 /// is what the **self**-node re-auth decision reads.
181 pub expired: bool,
182
183 /// Whether control reports this node currently connected to the coordination server
184 /// (`tailcfg.Node.Online`, a tri-state `*bool`). `None` = unknown / no permission to know /
185 /// never been online — **do not collapse to `false`** (that would fabricate an offline status
186 /// control never asserted). Updated by full nodes AND by the delta channels (a
187 /// [`PeerChange::online`], or the `MapResponse.online_change` map).
188 pub online: Option<bool>,
189 /// When control last saw this node online (`tailcfg.Node.LastSeen`). Per Go, only meaningful
190 /// while `online` is not `Some(true)` ("not updated when Online is true"). `None` = unknown /
191 /// never online.
192 pub last_seen: Option<DateTime<Utc>>,
193
194 /// Marshalled TKA node-key signature (`tailcfg.Node.KeySignature`); empty when control sends
195 /// none. Verified against a TKA `Authority` at the peer-trust chokepoint WHEN tailnet-lock
196 /// enforcement is active.
197 pub key_signature: Vec<u8>,
198
199 /// The node's [`MachinePublicKey`], if known.
200 pub machine_key: Option<MachinePublicKey>,
201 /// The node's [`DiscoPublicKey`], if known.
202 pub disco_key: Option<DiscoPublicKey>,
203
204 /// Whether control marked this node as peerAPI-only and outside tailnet lock's coverage
205 /// (`tailcfg.Node.UnsignedPeerAPIOnly`).
206 ///
207 /// Such a node carries no node-key signature. Upstream Go treats that as deliberate: it exempts
208 /// the node from tailnet-lock verification and, in exchange, gives it **no network access** —
209 /// only this node's peerAPI.
210 ///
211 /// **This fork does not implement that admission exemption yet.** While a tailnet-lock authority
212 /// with a **non-empty trusted-key set** is active, the runtime's peer-admission gate
213 /// (`ts_runtime`'s `PeerTracker::tka_snapshot_admits`) drops *every* peer with an empty
214 /// [`key_signature`](Self::key_signature), this flag included — so such a peer is not admitted
215 /// to the peer db at all and gets no peerAPI access either. That is stricter than Go (the safe
216 /// direction); the carve-out is tracked as a parity gap in `docs/PARITY_ROADMAP.md`.
217 ///
218 /// The trusted-key qualifier is not hypothetical hedging, it names the one case where the gate
219 /// does not enforce: an authority whose trusted-key set is *empty* admits every peer, signed or
220 /// not. A verified chain can never produce that state (genesis rejects an empty key set and the
221 /// last key cannot be removed), so it means a `ts_tka` invariant was violated — and the gate
222 /// prefers admitting everyone (logged at `error!`) over black-holing the whole netmap. In that
223 /// state this flag changes nothing either, because nothing is being enforced against.
224 ///
225 /// The *routes* half of upstream's treatment **is** implemented here. Because the node is
226 /// outside the lock, a (possibly malicious) control server must not be able to grant it
227 /// network access via advertised routes, so [`accepted_routes`](Self::accepted_routes) is
228 /// clamped to the node's own [`addresses`](Self::addresses) when this is set. See the `From`
229 /// impl on this type, which mirrors Go's `upgradeNode` in `control/controlclient/map.go`.
230 ///
231 /// The clamp is **unconditional** — it does not depend on tailnet lock being enabled locally,
232 /// because the point is that an unsigned peer is by definition outside the lock's coverage.
233 pub unsigned_peer_api_only: bool,
234
235 /// The routes this node accepts traffic for.
236 ///
237 /// Clamped to [`addresses`](Self::addresses) when
238 /// [`unsigned_peer_api_only`](Self::unsigned_peer_api_only) is set.
239 pub accepted_routes: Vec<ipnet::IpNet>,
240 /// The underlay addresses this node is reachable on (`Endpoints` in Go).
241 pub underlay_addresses: Vec<SocketAddr>,
242
243 /// The node's advertised SSH host public keys, in known_hosts format (Go
244 /// `tailcfg.Hostinfo.SSHHostKeys`, surfaced by tsnet as `ipnstate.PeerStatus.SSH_HostKeys`).
245 /// Used by `tailscale ssh` to pin a peer's host key (TOFU). Empty when control advertised none
246 /// (the wire `Hostinfo.sshHostKeys` was absent), never fabricated. Projected from
247 /// [`ts_control_serde::HostInfo::ssh_host_keys`].
248 pub ssh_host_keys: Vec<String>,
249
250 /// The DERP region for this node, if known.
251 pub derp_region: Option<ts_derp::RegionId>,
252
253 /// This node's advertised capability version (`Node.Cap` in Go). Old control servers may not
254 /// send it, in which case it defaults to [`CapabilityVersion::default`]. Used to gate features
255 /// that require a minimum peer capability, e.g. exit-node DNS proxying (`peerCanProxyDNS`).
256 pub cap: CapabilityVersion,
257
258 /// This node's capability map (`Node.CapMap` in Go). Keys are capability names/URLs; values are
259 /// the raw JSON argument blobs (often empty). Threaded from the wire
260 /// ([`ts_control_serde::Node::cap_map`]) as an owned copy. Used to gate node-level features such
261 /// as Funnel ingress ([`Node::can_funnel`], [`Node::check_funnel_port`]).
262 pub cap_map: NodeCapMap,
263
264 /// The peerAPI port this node advertises over IPv4 (`peerapi4` service), if any.
265 ///
266 /// Derived from `HostInfo.Services`. `None` means the peer advertises no IPv4 peerAPI, so it
267 /// cannot be reached for peerAPI DoH (DNS-over-HTTPS) exit-node delegation.
268 pub peerapi_port: Option<u16>,
269
270 /// Whether this peer advertises the `peerapi-dns-proxy` service (Go `PeerAPIDNSProxy`),
271 /// indicating it will proxy DNS lookups for other nodes when used as an exit node.
272 pub peerapi_dns_proxy: bool,
273
274 /// Whether this is a non-Tailscale WireGuard-only peer (`IsWireGuardOnly` in Go). Such peers
275 /// cannot run a peerAPI DoH server, so exit-node DNS for them comes from
276 /// [`Node::exit_node_dns_resolvers`] instead.
277 pub is_wireguard_only: bool,
278
279 /// DNS resolvers to use when this WireGuard-only peer is selected as an exit node
280 /// (`ExitNodeDNSResolvers` in Go). Only meaningful when [`Node::is_wireguard_only`] is set.
281 /// Encrypted-transport resolvers are dropped (see `Resolver::from_serde`).
282 pub exit_node_dns_resolvers: Vec<Resolver>,
283
284 /// Whether this node advertises itself as a **peer relay** (Go `Hostinfo.PeerRelay`): it runs a
285 /// UDP relay server other peers can allocate relay endpoints on. This fork is a relay client
286 /// only and never sets this for itself; it is parsed off peers so a relay candidate can be
287 /// recognized. Actually *using* a relay path (the Geneve data path + allocation handshake) is
288 /// not yet implemented — see the crate docs.
289 pub peer_relay: bool,
290
291 /// Per-service virtual IP addresses of the Tailscale VIP services this node *hosts*, keyed by
292 /// `svc:<label>` service name. Parsed from the `service-host`
293 /// ([`ts_control_serde::NODE_ATTR_SERVICE_HOST`]) node-capability value
294 /// (`tailcfg.ServiceIPMappings`). These VIPs are control-assigned and also injected into the
295 /// node's `AllowedIPs`; the application netstack must accept packets for them so a
296 /// `Device::listen_service`-bound listener can answer. Empty when the
297 /// node hosts no VIP services (the common case). Per-service IP lists are deduplicated, source
298 /// order otherwise preserved. Use [`Node::service_addresses`] for the flattened set (netstack
299 /// accept list) and [`Node::service_addresses_for`] for a specific service's VIPs.
300 pub service_vips: alloc::collections::BTreeMap<String, Vec<IpAddr>>,
301}
302
303impl Node {
304 /// The fully-qualified domain name of the node.
305 ///
306 /// This is a string of the form `$HOST.$TAILNET_DOMAIN.`. For tailnets controlled by
307 /// Tailscale's control plane, this usually means `$HOST.tail1234.ts.net.`
308 ///
309 /// The `trailing_dot` parameter specifies whether to include the trailing dot in the
310 /// fqdn. This is included by the definition of FQDN, and is the way the Go codebase
311 /// formats this field, but the parameter is included to allow turning it off for use
312 /// in contexts that expect it to be absent.
313 pub fn fqdn(&self, trailing_dot: bool) -> String {
314 let dot = if trailing_dot { "." } else { "" };
315 match &self.tailnet {
316 Some(tailnet) => format!("{}.{tailnet}{dot}", self.hostname),
317 None => format!("{}{dot}", self.hostname),
318 }
319 }
320
321 /// Whether this node's key has expired as of `now`, mirroring Go's
322 /// `netmap.NetworkMap.SelfKeyExpiry` + the `!expiry.IsZero() && expiry.Before(now)` check in
323 /// `ipnlocal`. A node with no expiry ([`Node::node_key_expiry`] is `None`, the Go "zero value =
324 /// does not expire") is never expired.
325 ///
326 /// Like Go, this fork is **reactive**: it reports expiry rather than auto-rotating in the
327 /// background (Go transitions to `NeedsLogin` on expiry and re-registers via stored auth-key or
328 /// interactive login). A caller observing `true` should re-register
329 /// (`crate::tokio::register`) — supplying `RegisterRequest::old_node_key` (the prior key) and
330 /// a fresh `node_key` when rotating the key, or the same key to merely refresh.
331 pub fn key_expired(&self, now: DateTime<Utc>) -> bool {
332 match self.node_key_expiry {
333 None => false,
334 Some(expiry) => expiry < now,
335 }
336 }
337
338 /// The instant this node's key expires (`Node.KeyExpiry` in Go), or `None` if it never expires.
339 /// A caller can schedule a re-evaluation/re-auth at this time.
340 pub fn key_expiry(&self) -> Option<DateTime<Utc>> {
341 self.node_key_expiry
342 }
343
344 /// Whether this node advertises itself as a peer relay (Go `Hostinfo.PeerRelay`): it runs a UDP
345 /// relay server other peers may allocate relay endpoints on. Recognizing a relay candidate;
346 /// actually traversing a relay path is not yet implemented in this fork.
347 pub fn is_peer_relay(&self) -> bool {
348 self.peer_relay
349 }
350
351 /// The key-expiry instant as **Unix seconds**, or `None` if the key never expires. Provided for
352 /// callers (e.g. the root crate) that don't depend on `chrono`.
353 pub fn key_expiry_unix(&self) -> Option<i64> {
354 self.node_key_expiry.map(|t| t.timestamp())
355 }
356
357 /// Whether the key has expired as of `now_unix_secs` (Unix seconds). Equivalent to
358 /// [`key_expired`](Self::key_expired) for `chrono`-free callers. A key with no expiry is never
359 /// expired.
360 pub fn key_expired_at_unix(&self, now_unix_secs: i64) -> bool {
361 match self.key_expiry_unix() {
362 None => false,
363 Some(expiry) => expiry < now_unix_secs,
364 }
365 }
366
367 /// The fully-qualified domain name of the node, only returning `Some` if the tailnet
368 /// component is present.
369 ///
370 /// See [`Node::fqdn`].
371 pub fn fqdn_opt(&self, trailing_dot: bool) -> Option<String> {
372 let dot = if trailing_dot { "." } else { "" };
373 let tailnet = self.tailnet.as_deref()?;
374
375 Some(format!("{}.{tailnet}{dot}", self.hostname))
376 }
377
378 /// Report whether this node matches the given `name`.
379 ///
380 /// `name` is checked for equality with both this node's bare hostname and its fqdn. A
381 /// trailing `.` may be present. Matching is case-insensitive (DNS names are
382 /// case-insensitive), so this agrees with the canonicalized MagicDNS-name index used for
383 /// peer lookups.
384 pub fn matches_name(&self, name: &str) -> bool {
385 // Strip an optional trailing root dot, then chop our `.tailnet` suffix off the end (if it
386 // matches, case-insensitively) and compare the remainder to our hostname. If the tailnet
387 // suffix doesn't match, the final case-insensitive compare against our bare hostname fails
388 // naturally; if `name` was just the hostname, nothing is chopped and we compare directly.
389
390 let name = name.strip_suffix('.').unwrap_or(name);
391
392 let name = if let Some(tailnet) = &self.tailnet {
393 name.get(name.len().saturating_sub(tailnet.len())..)
394 .filter(|suffix| suffix.eq_ignore_ascii_case(tailnet))
395 .and_then(|_| name.get(..name.len() - tailnet.len()))
396 .and_then(|name| name.strip_suffix('.'))
397 .unwrap_or(name)
398 } else {
399 name
400 };
401
402 name.eq_ignore_ascii_case(&self.hostname)
403 }
404
405 /// Report whether this node is a **router**: it routes addresses besides its own. An exit
406 /// node, a subnet router and an app connector are all routers.
407 ///
408 /// Mirrors Go's `tailcfg.Node.IsRouter` (`tailcfg/tailcfg.go`, added upstream in `8d830599b`),
409 /// which is `true` when any prefix in `AllowedIPs` is not also one of the node's own
410 /// `Addresses`. It is a *derived predicate*, not a wire field: control sends nothing new for
411 /// it, so there is no interop surface here and no capability version to gate on.
412 ///
413 /// Deliberately **not** [`Node::is_subnet_route`] folded over [`Node::accepted_routes`]. That
414 /// predicate also excuses any single Tailscale-range IP (`100.64.0.0/10` /
415 /// `fd7a:115c:a1e0::/48`) so route installation never mistakes another peer's address for an
416 /// advertised subnet; Go's `IsRouter` makes no such exception — a `/32` that is not *this*
417 /// node's own address still makes it a router. The two must stay separate.
418 ///
419 /// The comparison is against [`Node::addresses`] — *every* prefix control assigned this node,
420 /// as Go's `slices.Contains(n.Addresses, r)` is — and not against the first-prefix-per-family
421 /// pair in [`Node::tailnet_address`]. A node control handed two prefixes of one family would
422 /// otherwise have the second read as a routed address and be misreported as a router.
423 pub fn is_router(&self) -> bool {
424 self.accepted_routes
425 .iter()
426 .any(|route| !self.addresses.contains(route))
427 }
428
429 /// Report whether `route` is an advertised *subnet* route (as opposed to one of this node's
430 /// own tailnet addresses).
431 ///
432 /// Mirrors `cidrIsSubnet` in the Go client (`wgengine/wgcfg/nmcfg/nmcfg.go`). A route is *not*
433 /// a subnet route (i.e. it's a self-address) when it is a single host IP that is either a
434 /// Tailscale-assigned IP or exactly one of this node's [`TailnetAddress`] addresses. Everything
435 /// else — multi-IP CIDRs, and single IPs outside the Tailscale ranges — is a subnet route.
436 ///
437 /// The default route (`0.0.0.0/0` / `::/0`) is treated as a subnet route here; exit-node
438 /// handling is a separate concern.
439 pub fn is_subnet_route(&self, route: &ipnet::IpNet) -> bool {
440 let host_prefix = match route {
441 ipnet::IpNet::V4(_) => 32,
442 ipnet::IpNet::V6(_) => 128,
443 };
444
445 if route.prefix_len() != host_prefix {
446 // Any multi-IP CIDR (including the default route) is a subnet route.
447 return true;
448 }
449
450 let addr = route.addr();
451 !(is_tailscale_ip(addr) || self.tailnet_address.contains(addr))
452 }
453
454 /// The routes that should be installed for this peer, given whether this node accepts
455 /// advertised subnet routes (`--accept-routes` / `RouteAll` in the Go client) and which peer
456 /// (if any) is the selected exit node (`--exit-node` / `ExitNodeID` in the Go client).
457 ///
458 /// This node's own addresses (the peer's `/32` and `/128`) are always installed so the peer
459 /// itself stays reachable. Larger advertised subnet routes are only installed when
460 /// `accept_routes` is set; otherwise they are dropped (fail-closed). The same filtered set
461 /// governs both outbound routing to the peer and inbound source validation, exactly as
462 /// WireGuard cryptokey routing couples them in the Go client.
463 ///
464 /// The default route (`0.0.0.0/0` / `::/0`) is installed *only* for the peer whose
465 /// [`StableId`] equals `exit_node`, mirroring `nmcfg.go`'s `if allowedIP.Bits()==0 &&
466 /// peer.StableID()!=exitNode { skip }`. Exit-node use is gated behind this separate, explicit
467 /// preference (`ExitNodeID`, not `RouteAll`): conflating the two would let enabling
468 /// subnet-route acceptance silently route every packet through any peer advertising a default
469 /// route — unacceptable for a fail-closed privacy posture. When `exit_node` is `None` (the
470 /// default) no peer ever receives a `/0`, so internet-bound traffic has no overlay route and is
471 /// dropped by the userspace netstack (fail-closed, no leak). Longest-prefix-match means a peer
472 /// selected as the exit node still loses more-specific destinations to other peers; only
473 /// residual default-route traffic egresses through it.
474 pub fn routes_to_install<'a>(
475 &'a self,
476 accept_routes: bool,
477 exit_node: Option<&StableId>,
478 ) -> impl Iterator<Item = &'a ipnet::IpNet> + 'a {
479 // Computed eagerly so the returned iterator doesn't borrow `exit_node`.
480 let is_selected_exit = exit_node == Some(&self.stable_id);
481 self.accepted_routes.iter().filter(move |route| {
482 if route.prefix_len() == 0 {
483 // Default route: installed only when this peer is the selected exit node. Both the
484 // outbound route table and the inbound source filter call this, so the exit peer
485 // may legitimately source arbitrary internet IPs on return traffic — and only it.
486 return is_selected_exit;
487 }
488 accept_routes || !self.is_subnet_route(route)
489 })
490 }
491
492 /// The capability version at and above which a peer can proxy DNS for nodes using it as an exit
493 /// node (Go `tailcfg.CapabilityVersion` `peerCanProxyDNS`, introduced 2022-01-12 at V26).
494 const PEER_CAN_PROXY_DNS: CapabilityVersion = CapabilityVersion::V26;
495
496 /// The base URL of this peer's IPv4 peerAPI DoH endpoint for exit-node DNS proxying, if it can
497 /// proxy DNS. Returns e.g. `http://100.64.0.5:8080/dns-query`.
498 ///
499 /// Mirrors Go `peerAPIBase(...)+"/dns-query"` gated by `exitNodeCanProxyDNS`: a peer can proxy
500 /// DNS when it advertises an IPv4 peerAPI port **and** either advertises the explicit
501 /// `peerapi-dns-proxy` service or is new enough ([`Node::cap`] ≥ `PEER_CAN_PROXY_DNS`). A
502 /// WireGuard-only peer never runs a peerAPI, so it returns `None` here (its exit-node DNS comes
503 /// from [`Node::exit_node_dns_resolvers`] instead).
504 ///
505 /// IPv4-only by deliberate design: the tailnet dataplane in this fork binds IPv4 only, so we
506 /// never form a peerAPI URL on the peer's IPv6 address.
507 ///
508 /// `None` for an [`expired`](Self::expired) peer — see [`Node::peerapi_addr`].
509 pub fn peerapi_doh_url(&self) -> Option<String> {
510 self.peerapi_doh_addr()
511 .map(|addr| format!("http://{addr}/dns-query"))
512 }
513
514 /// The IPv4 socket address (`<tailnet-ipv4>:<peerapi-port>`) of this peer's peerAPI DoH endpoint
515 /// for exit-node DNS proxying, if it can proxy DNS. Same gate as [`Node::peerapi_doh_url`]; this
516 /// is the form the DoH *client* dials (over the overlay netstack) when delegating recursive
517 /// resolution to a selected exit node. `SocketAddr`'s `Display` is `ip:port`, so
518 /// `peerapi_doh_url` formats to `http://<ip>:<port>/dns-query` over this.
519 pub fn peerapi_doh_addr(&self) -> Option<SocketAddr> {
520 if self.is_wireguard_only || self.expired {
521 return None;
522 }
523 let port = self.peerapi_port?;
524 if !(self.peerapi_dns_proxy || self.cap >= Self::PEER_CAN_PROXY_DNS) {
525 return None;
526 }
527 Some(SocketAddr::new(
528 IpAddr::V4(self.tailnet_address.ipv4.addr()),
529 port,
530 ))
531 }
532
533 /// The IPv4 peerAPI socket address (`<tailnet-ipv4>:<peerapi4-port>`) of this node, if it
534 /// advertises an IPv4 peerAPI. Unlike [`Node::peerapi_doh_addr`], this is **not** gated on the
535 /// DNS-proxy capability: it is the general base for any peerAPI request to this node (e.g. a
536 /// Taildrop `PUT /v0/put/<name>` upload), mirroring Go's `peerAPIBase`/`peerAPIPorts`.
537 ///
538 /// IPv4-only by this fork's deliberate design (the tailnet dataplane binds IPv4 only, so we never
539 /// form a peerAPI URL on the peer's IPv6 address). Returns `None` for a WireGuard-only peer (which
540 /// runs no peerAPI) or a peer advertising no IPv4 peerAPI port.
541 ///
542 /// Also `None` for an [`expired`](Self::expired) peer: Go refuses a peerAPI dial to one with
543 /// [`PEER_KEY_EXPIRED`](crate::PEER_KEY_EXPIRED) (`LocalBackend.pingPeerAPI`), and this is the
544 /// chokepoint every peerAPI dial in this fork resolves its destination through. Callers that
545 /// want to *report* the refusal rather than silently skip the peer should test
546 /// [`expired`](Self::expired) first.
547 pub fn peerapi_addr(&self) -> Option<SocketAddr> {
548 if self.is_wireguard_only || self.expired {
549 return None;
550 }
551 let port = self.peerapi_port?;
552 Some(SocketAddr::new(
553 IpAddr::V4(self.tailnet_address.ipv4.addr()),
554 port,
555 ))
556 }
557
558 /// The node attribute granting HTTPS (TLS cert provisioning) for this node (Go
559 /// `tailcfg.CapabilityHTTPS`). One of the two caps [`Node::can_funnel`] requires.
560 const CAP_HTTPS: &'static str = "https";
561
562 /// The node attribute granting the ability to host Funnel ingress (Go `tailcfg.NodeAttrFunnel`).
563 /// The other cap [`Node::can_funnel`] requires.
564 const NODE_ATTR_FUNNEL: &'static str = "funnel";
565
566 /// The capability URL whose `?ports=` query enumerates the ports Funnel may listen on (Go
567 /// `tailcfg.CapabilityFunnelPorts`). The allowed ports live entirely in the *key's* query
568 /// string, not the cap value.
569 const CAP_FUNNEL_PORTS: &'static str = "https://tailscale.com/cap/funnel-ports";
570
571 /// Report whether the cap map contains `cap` as a key (Go `NodeCapMap.Contains` / `HasCap`).
572 pub fn has_node_attr(&self, cap: &str) -> bool {
573 self.cap_map.contains_key(cap)
574 }
575
576 /// Report whether this node is permitted to host Tailscale Funnel ingress.
577 ///
578 /// Mirrors Go `ipn.NodeCanFunnel`: the node must advertise BOTH `CapabilityHTTPS` (`"https"`)
579 /// AND `NodeAttrFunnel` (`"funnel"`) in its cap map. Fail-closed: a missing cap denies.
580 pub fn can_funnel(&self) -> bool {
581 self.has_node_attr(Self::CAP_HTTPS) && self.has_node_attr(Self::NODE_ATTR_FUNNEL)
582 }
583
584 /// The capability control grants the **self** node when Taildrop is enabled for the tailnet (Go
585 /// `tailcfg.CapabilityFileSharing`). Gates [`Node::can_share_files`].
586 const CAP_FILE_SHARING: &'static str = "https://tailscale.com/cap/file-sharing";
587
588 /// The capability marking a **peer** as an explicit Taildrop send target even across owners (Go
589 /// `tailcfg.PeerCapabilityFileSharingTarget`). Checked by [`Node::is_file_sharing_target`].
590 const CAP_FILE_SHARING_TARGET: &'static str = "tailscale.com/cap/file-sharing-target";
591
592 /// Report whether this node may send Taildrop files — i.e. the admin has enabled file sharing for
593 /// the tailnet (Go `self.CapMap().Contains(CapabilityFileSharing)`). Applied to the **self** node
594 /// as the node-level gate in `FileTargets`; fail-closed when the cap is absent.
595 pub fn can_share_files(&self) -> bool {
596 self.has_node_attr(Self::CAP_FILE_SHARING)
597 }
598
599 /// Report whether this **peer** is an explicit Taildrop send target via ACL caps (Go
600 /// `PeerHasCap(p, PeerCapabilityFileSharingTarget)`) — the cross-owner path that lets a peer owned
601 /// by a different user still be a valid target.
602 pub fn is_file_sharing_target(&self) -> bool {
603 self.has_node_attr(Self::CAP_FILE_SHARING_TARGET)
604 }
605
606 /// Report whether `wanted_port` is allowed for Funnel on this node.
607 ///
608 /// Mirrors Go `ipn.CheckFunnelPort`: scan the cap-map keys for one prefixed by
609 /// `Node::CAP_FUNNEL_PORTS`, URL-parse that key, read its `ports` query parameter, and match
610 /// `wanted_port` against the comma-separated list of single ports and `first-last` ranges. The
611 /// port list lives in the *key*, never the value. Fail-closed: no matching cap, an empty or
612 /// unparseable `ports` query, or a key whose non-query part isn't exactly the funnel-ports URL
613 /// all deny.
614 pub fn check_funnel_port(&self, wanted_port: u16) -> bool {
615 // Extract the `ports=` list from the first cap-map key that is the funnel-ports URL with a
616 // non-empty `ports` query. Returns `None` (deny) if the key is unparseable, the query is
617 // missing/empty, or the URL (sans query) isn't exactly the funnel-ports cap.
618 let parse_attr = |attr: &str| -> Option<String> {
619 let mut url = url::Url::parse(attr).ok()?;
620 let ports = url
621 .query_pairs()
622 .find(|(k, _)| k == "ports")
623 .map(|(_, v)| v.into_owned())?;
624 if ports.is_empty() {
625 return None;
626 }
627 url.set_query(None);
628 // Go compares `u.String()` against the bare cap; `url`'s serializer keeps a trailing
629 // `/` only if present in the input, and the funnel-ports cap has none, so a direct
630 // string compare matches Go's behavior.
631 if url.as_str() != Self::CAP_FUNNEL_PORTS {
632 return None;
633 }
634 Some(ports)
635 };
636
637 let Some(ports_str) = self
638 .cap_map
639 .keys()
640 .filter(|attr| attr.starts_with(Self::CAP_FUNNEL_PORTS))
641 .find_map(|attr| parse_attr(attr))
642 else {
643 return false;
644 };
645
646 let wanted = wanted_port.to_string();
647 for ps in ports_str.split(',') {
648 if ps.is_empty() {
649 continue;
650 }
651 match ps.split_once('-') {
652 None => {
653 if ps == wanted {
654 return true;
655 }
656 }
657 Some((first, last)) => {
658 let (Ok(fp), Ok(lp)) = (first.parse::<u16>(), last.parse::<u16>()) else {
659 continue;
660 };
661 if fp <= wanted_port && wanted_port <= lp {
662 return true;
663 }
664 }
665 }
666 }
667 false
668 }
669
670 /// Report whether this node is permitted to host Tailscale VIP services.
671 ///
672 /// Mirrors the Go grant model: possession of the `service-host`
673 /// ([`ts_control_serde::NODE_ATTR_SERVICE_HOST`]) node-capability **and** at least one assigned
674 /// VIP address. Go additionally requires the host to be tagged
675 /// (`ErrUntaggedServiceHost`); that tag gate is enforced at
676 /// `Device::listen_service` using [`Node::tags`]. Fail-closed: no cap
677 /// or no assigned VIP denies.
678 pub fn is_service_host(&self) -> bool {
679 self.has_node_attr(ts_control_serde::NODE_ATTR_SERVICE_HOST)
680 && !self.service_vips.is_empty()
681 }
682
683 /// The control-assigned VIP addresses for one named service (`svc:<label>`), or an empty slice
684 /// if this node does not host that service. This is the exact per-service mapping (so a
685 /// multi-service co-host binds the right VIP for each service).
686 pub fn service_addresses_for(&self, service: &str) -> &[IpAddr] {
687 self.service_vips
688 .get(service)
689 .map(Vec::as_slice)
690 .unwrap_or(&[])
691 }
692
693 /// The flattened, deduplicated set of every VIP address this node hosts across all services.
694 /// Used to widen the netstack's accepted-address set so any hosted-service listener is
695 /// reachable. Per-service binding uses [`Node::service_addresses_for`] instead.
696 pub fn service_addresses(&self) -> Vec<IpAddr> {
697 let mut seen = alloc::collections::BTreeSet::new();
698 let mut out = Vec::new();
699 for addr in self.service_vips.values().flatten() {
700 if seen.insert(*addr) {
701 out.push(*addr);
702 }
703 }
704 out
705 }
706}
707
708/// Validate a Tailscale VIP service name (`tailcfg.ServiceName.Validate`): it must carry the
709/// `svc:` prefix ([`ts_control_serde::SERVICE_NAME_PREFIX`]) followed by a valid DNS label
710/// (1–63 chars, ASCII alphanumeric or `-`, not starting/ending with `-`). Returns the bare label on
711/// success. Fail-closed: anything malformed is rejected so a listener can never bind for a bogus
712/// service name.
713pub fn validate_service_name(name: &str) -> Option<&str> {
714 let label = name.strip_prefix(ts_control_serde::SERVICE_NAME_PREFIX)?;
715 if label.is_empty() || label.len() > 63 {
716 return None;
717 }
718 if label.starts_with('-') || label.ends_with('-') {
719 return None;
720 }
721 if label
722 .bytes()
723 .all(|b| b.is_ascii_alphanumeric() || b == b'-')
724 {
725 Some(label)
726 } else {
727 None
728 }
729}
730
731/// Parse the per-service VIP map this node hosts from the `service-host` node-capability value(s).
732/// Each value is the raw JSON text of a [`ts_control_serde::ServiceIpMappings`] object (svc-name ->
733/// VIP IPs); unparseable values are skipped (fail-closed: a malformed mapping contributes no VIPs).
734/// Per-service IP lists are deduplicated, source order otherwise preserved.
735fn service_vips_from_cap_map(
736 cap_map: &NodeCapMap,
737) -> alloc::collections::BTreeMap<String, Vec<IpAddr>> {
738 let mut out: alloc::collections::BTreeMap<String, Vec<IpAddr>> =
739 alloc::collections::BTreeMap::new();
740 let Some(values) = cap_map.get(ts_control_serde::NODE_ATTR_SERVICE_HOST) else {
741 return out;
742 };
743
744 for raw in values {
745 let Ok(mappings) = serde_json::from_str::<ts_control_serde::ServiceIpMappings>(raw) else {
746 continue;
747 };
748 for (name, addrs) in &mappings.0 {
749 let entry = out.entry((*name).to_string()).or_default();
750 for addr in addrs {
751 if !entry.contains(addr) {
752 entry.push(*addr);
753 }
754 }
755 }
756 }
757 out
758}
759
760/// Collect a wire ([`ts_control_serde`]) node cap map into an owned [`NodeCapMap`].
761///
762/// Keys are copied as owned strings; each value's raw JSON text is preserved verbatim. The wire map
763/// borrows from the decode buffer, so an owned copy is required to outlive it on the domain
764/// [`Node`].
765fn cap_map_from_serde(wire: &ts_nodecapability::Map<'_>) -> NodeCapMap {
766 wire.iter()
767 .map(|(&key, values)| {
768 let owned_values = values.0.iter().map(|v| v.get().to_owned()).collect();
769 (key.to_owned(), owned_values)
770 })
771 .collect()
772}
773
774/// Extract the advertised IPv4 peerAPI port and whether the explicit `peerapi-dns-proxy` service is
775/// advertised, from a peer's `HostInfo.Services` list.
776fn peerapi_from_services(
777 services: Option<&[ts_control_serde::Service<'_>]>,
778) -> (Option<u16>, bool) {
779 use ts_control_serde::ServiceProto;
780
781 let Some(services) = services else {
782 return (None, false);
783 };
784 let mut port = None;
785 let mut dns_proxy = false;
786 for svc in services {
787 match svc.proto {
788 ServiceProto::PeerApi4 => port = Some(svc.port),
789 ServiceProto::PeerApiDnsProxy => dns_proxy = true,
790 _ => {}
791 }
792 }
793 (port, dns_proxy)
794}
795
796/// Addresses for a node within a tailnet.
797#[derive(Debug, Clone, PartialEq, Eq, Hash)]
798pub struct TailnetAddress {
799 /// The IPv4 address of the node in the tailnet.
800 pub ipv4: ipnet::Ipv4Net,
801 /// The IPv6 address of the node in the tailnet.
802 pub ipv6: ipnet::Ipv6Net,
803}
804
805impl TailnetAddress {
806 /// Report whether `addr` matches either address in this [`TailnetAddress`].
807 pub fn contains(&self, addr: IpAddr) -> bool {
808 match addr {
809 IpAddr::V4(a) => self.ipv4.addr() == a,
810 IpAddr::V6(a) => self.ipv6.addr() == a,
811 }
812 }
813}
814
815impl From<&ts_control_serde::Node<'_>> for Node {
816 fn from(value: &ts_control_serde::Node) -> Self {
817 let fqdn_without_trailing_dot = value.name.strip_suffix('.').unwrap_or(&value.name);
818
819 let (hostname, tailnet) = match fqdn_without_trailing_dot.split_once('.') {
820 Some((hostname, tailnet)) => (hostname, Some(tailnet.to_owned())),
821 None => (fqdn_without_trailing_dot, None),
822 };
823
824 let (peerapi_port, peerapi_dns_proxy) =
825 peerapi_from_services(value.host_info.services.as_deref());
826
827 let cap_map = cap_map_from_serde(&value.cap_map);
828 let service_vips = service_vips_from_cap_map(&cap_map);
829
830 // `addresses` is a variable-length `Vec<IpNet>` on the wire (Go `[]netip.Prefix`), not a
831 // fixed (v4, v6) pair: an IPv6-off tailnet assigns only a v4 prefix. The whole list is kept
832 // verbatim on `Node::addresses` (Go's `Node.Addresses`, which `IsRouter` tests routes
833 // against); `tailnet_address` is the identity projection. Pick the first of each
834 // family. The v4 prefix is the node's tailnet identity (always present on a normal node);
835 // if somehow absent we fall back to the unspecified `0.0.0.0/32` rather than panicking.
836 // The v6 prefix is optional — when the tailnet is IPv4-only there is none, and the overlay
837 // never reads `ipv6` in that mode (gated on `enable_ipv6`); we synthesize the unspecified
838 // `::/128` placeholder so the domain `TailnetAddress` stays infallible.
839 let ipv4 = value
840 .addresses
841 .iter()
842 .find_map(|p| match p {
843 ipnet::IpNet::V4(n) => Some(*n),
844 ipnet::IpNet::V6(_) => None,
845 })
846 .unwrap_or_else(|| ipnet::Ipv4Net::new(core::net::Ipv4Addr::UNSPECIFIED, 32).unwrap());
847 let ipv6 = value
848 .addresses
849 .iter()
850 .find_map(|p| match p {
851 ipnet::IpNet::V6(n) => Some(*n),
852 ipnet::IpNet::V4(_) => None,
853 })
854 .unwrap_or_else(|| ipnet::Ipv6Net::new(core::net::Ipv6Addr::UNSPECIFIED, 128).unwrap());
855
856 Self {
857 id: value.id,
858 stable_id: StableId(value.stable_id.0.to_string()),
859
860 hostname: hostname.to_owned(),
861 user_id: value.user,
862 tailnet,
863
864 tags: value
865 .tags
866 .as_ref()
867 .map(|x| x.iter().map(|x| x.to_string()).collect())
868 .unwrap_or_default(),
869
870 addresses: value.addresses.clone(),
871 tailnet_address: TailnetAddress { ipv4, ipv6 },
872 node_key: value.key,
873 node_key_expiry: value.key_expiry,
874 // Control's own verdict, carried verbatim; `ExpiryManager` only ever raises it.
875 expired: value.expired,
876 online: value.online,
877 last_seen: value.last_seen,
878 key_signature: value.key_signature.to_vec(),
879 machine_key: value.machine,
880 disco_key: value.disco_key,
881
882 unsigned_peer_api_only: value.unsigned_peer_api_only,
883
884 // Per capver-112, `AllowedIPs` null/absent means "same as `addresses`". Fall back to the
885 // node's own assigned prefixes verbatim (whatever families the wire carried), not a
886 // synthesized v4+v6 pair.
887 //
888 // `UnsignedPeerAPIOnly` clamps the result back to `addresses` whatever control sent,
889 // mirroring Go's `upgradeNode` (`control/controlclient/map.go`): such a node is outside
890 // tailnet lock's coverage, so a possibly-malicious control server must not be able to
891 // grant it network access by handing it advertised routes (in the limit, `0.0.0.0/0`).
892 // Unconditional, exactly as upstream — it does not depend on tailnet lock being
893 // enabled here.
894 accepted_routes: if value.unsigned_peer_api_only {
895 value.addresses.clone()
896 } else {
897 value
898 .allowed_ips
899 .clone()
900 .unwrap_or_else(|| value.addresses.clone())
901 },
902 underlay_addresses: value.endpoints.clone(),
903
904 // legacy_derp_string is still in practical use as of 3/2026
905 #[allow(deprecated)]
906 derp_region: value
907 .home_derp
908 .or(value.legacy_derp_string)
909 .or_else(|| value.host_info.net_info.as_ref()?.preferred_derp)
910 .map(|x| ts_derp::RegionId(x.into())),
911
912 cap: value.cap,
913 cap_map,
914 peerapi_port,
915 peerapi_dns_proxy,
916 is_wireguard_only: value.is_wireguard_only,
917 exit_node_dns_resolvers: value
918 .exit_node_dns_resolvers
919 .iter()
920 .filter_map(Resolver::from_serde)
921 .collect(),
922 peer_relay: value.host_info.peer_relay,
923 // Project the advertised SSH host keys (Go `Hostinfo.SSHHostKeys`), mapping the
924 // borrowed `Option<Vec<&str>>` to owned `Vec<String>`; absent ⇒ empty (never
925 // fabricated), matching how `services`/`peer_relay` above are projected from host_info.
926 ssh_host_keys: value
927 .host_info
928 .ssh_host_keys
929 .as_ref()
930 .map(|keys| keys.iter().map(|k| k.to_string()).collect())
931 .unwrap_or_default(),
932 service_vips,
933 }
934 }
935}
936
937/// An incremental update to a single already-known peer [`Node`], carried in
938/// [`MapResponse::peers_changed_patch`][ts_control_serde::MapResponse::peers_changed_patch].
939///
940/// Control sends a patch (rather than a full node in `peers_changed`) when only a peer's
941/// reachability changes mid-session — most importantly its UDP `endpoints`
942/// and home [`derp_region`][PeerChange::derp_region] when an idle peer re-establishes connectivity.
943/// Every field is `Option`: a patch sets only the fields it carries and leaves the rest of the
944/// target node unchanged (see `PeerTracker::apply_peer_update` for the merge). Owned counterpart
945/// of the borrow-bound [`ts_control_serde::PeerChange`]; the fields that map onto a domain
946/// [`Node`] field are retained, including control's `online`/`last_seen` liveness deltas — the
947/// dominant channel by which peer online transitions are delivered (see [`Node::online`]).
948#[derive(Debug, Clone, PartialEq, Eq)]
949pub struct PeerChange {
950 /// The [`Node::id`] of the peer being mutated. If no peer with this id is in the current
951 /// netmap, the patch is ignored (the wire contract — a patch never creates a node).
952 pub id: Id,
953 /// If `Some`, the peer's new home DERP region.
954 pub derp_region: Option<ts_derp::RegionId>,
955 /// If `Some`, the peer's new advertised capability version.
956 pub cap: Option<CapabilityVersion>,
957 /// If `Some`, the peer's new capability map (replaces the prior map wholesale).
958 pub cap_map: Option<NodeCapMap>,
959 /// If `Some`, the peer's new UDP underlay endpoints (`Endpoints` in Go; replaces the prior
960 /// set). This is the field that lets magicsock re-handshake a peer that moved.
961 pub underlay_addresses: Option<Vec<SocketAddr>>,
962 /// If `Some`, the peer's new WireGuard public key (key rotation).
963 pub node_key: Option<NodePublicKey>,
964 /// If `Some`, the marshalled TKA signature over the new node key. Re-verified at the
965 /// peer-trust chokepoint when tailnet-lock enforcement is active.
966 pub key_signature: Option<Vec<u8>>,
967 /// If `Some`, the peer's new disco public key.
968 pub disco_key: Option<DiscoPublicKey>,
969 /// If `Some`, the peer's new node-key expiry (`KeyExpiry` in Go). Maps to
970 /// [`Node::node_key_expiry`]; carried so an expiry-only patch isn't lost until the next full
971 /// resync.
972 pub node_key_expiry: Option<DateTime<Utc>>,
973 /// If `Some`, the peer's new online status (`PeerChange.Online`). `None` here means "this patch
974 /// did not touch online", **not** "offline" — the merge sets [`Node::online`] only when present.
975 pub online: Option<bool>,
976 /// If `Some`, the peer's new last-seen time (`PeerChange.LastSeen`). Maps to [`Node::last_seen`].
977 pub last_seen: Option<DateTime<Utc>>,
978}
979
980impl From<&ts_control_serde::PeerChange<'_>> for PeerChange {
981 fn from(value: &ts_control_serde::PeerChange) -> Self {
982 Self {
983 id: value.node_id,
984 derp_region: value.derp_region.map(|x| ts_derp::RegionId(x.into())),
985 cap: value.cap,
986 cap_map: value.cap_map.as_ref().map(cap_map_from_serde),
987 underlay_addresses: value.endpoints.clone(),
988 node_key: value.key,
989 key_signature: value.key_signature.map(|s| s.to_vec()),
990 disco_key: value.disco_key,
991 node_key_expiry: value.key_expiry,
992 online: value.online,
993 last_seen: value.last_seen,
994 }
995 }
996}
997
998/// Identity of the user that owns a [`Node`], resolved from the netmap's `UserProfiles` table
999/// (Go `tailcfg.UserProfile`). Owned counterpart of the borrow-bound
1000/// [`ts_control_serde::UserProfile`]. Keyed by [`UserProfile::id`] (== [`Node::user_id`]).
1001///
1002/// Mostly display-friendly text ([`login_name`](Self::login_name),
1003/// [`display_name`](Self::display_name)), plus [`groups`](Self::groups) — the one attribute here an
1004/// embedder can *authorise* on, because it is the one a node cannot re-derive from anything else
1005/// control sends.
1006#[derive(Debug, Clone, PartialEq, Eq)]
1007pub struct UserProfile {
1008 /// The integer id of the Tailscale user this profile describes (matches [`Node::user_id`]).
1009 pub id: ts_control_serde::UserId,
1010 /// An email-ish login name for display (e.g. `alice@example.com` / `alice@github`). May be
1011 /// empty if control sent none.
1012 pub login_name: String,
1013 /// The user's display name (e.g. `Alice Smith`), if the IdP provided one.
1014 pub display_name: Option<String>,
1015 /// The groups that contain this user and that the coordination server was configured to report
1016 /// to this node (Go `tailcfg.UserProfile.Groups`): SCIM groups (e.g.
1017 /// `engineering@example.com`) or tailnet-policy group names (e.g. `group:eng`).
1018 ///
1019 /// Carried in the order control sent it (control sorts it when it loads the profile from
1020 /// storage). **Empty** when control reported no groups — including every control server older
1021 /// than the field, which omits it entirely. An empty list therefore means "control told this
1022 /// node nothing", not "this user is in no group": treat it as no grant, never as a denial you
1023 /// can act on.
1024 pub groups: Vec<String>,
1025}
1026
1027impl From<&ts_control_serde::UserProfile<'_>> for UserProfile {
1028 fn from(value: &ts_control_serde::UserProfile) -> Self {
1029 Self {
1030 id: value.id,
1031 login_name: value.login_name.to_string(),
1032 display_name: value.display_name.as_deref().map(str::to_string),
1033 groups: value.groups.iter().map(|g| g.to_string()).collect(),
1034 }
1035 }
1036}
1037
1038impl UserProfile {
1039 /// The best human-facing label for this user: the login name when present, else the display
1040 /// name, else `None`. This is what a `WhoIs` surfaces as the owning user.
1041 pub fn best_label(&self) -> Option<String> {
1042 if !self.login_name.is_empty() {
1043 Some(self.login_name.clone())
1044 } else {
1045 self.display_name.clone()
1046 }
1047 }
1048}
1049
1050#[cfg(test)]
1051pub(crate) mod tests {
1052 use super::*;
1053
1054 /// The wire `Node.User` id must be carried onto the domain `Node.user_id` by the `From` impl
1055 /// (the field the runtime joins against the netmap `UserProfiles` table for `WhoIs.user`).
1056 /// Guards against the `From` impl wiring the wrong serde field or dropping it.
1057 #[test]
1058 fn from_wire_node_carries_user_id() {
1059 let mut wire = ts_control_serde::Node {
1060 user: 4242,
1061 ..Default::default()
1062 };
1063 wire.name = "host.tail.ts.net.".into();
1064 let domain: Node = (&wire).into();
1065 assert_eq!(domain.user_id, 4242);
1066
1067 // Default (no owner / tagged node) stays 0.
1068 let tagged = ts_control_serde::Node::default();
1069 assert_eq!(Node::from(&tagged).user_id, 0);
1070 }
1071
1072 /// The wire `Hostinfo.sshHostKeys` must be projected onto the domain `Node.ssh_host_keys`
1073 /// (the field `tailscale ssh` reads via `StatusNode` to pin a peer's host key). Present →
1074 /// carried verbatim; absent → empty (never fabricated).
1075 #[test]
1076 fn from_wire_node_carries_ssh_host_keys() {
1077 let wire = ts_control_serde::Node {
1078 host_info: ts_control_serde::HostInfo {
1079 ssh_host_keys: Some(vec![
1080 "ssh-ed25519 AAAAC3Nz host",
1081 "ecdsa-sha2-nistp256 AAAAE2Vj host",
1082 ]),
1083 ..Default::default()
1084 },
1085 ..Default::default()
1086 };
1087 let domain: Node = (&wire).into();
1088 assert_eq!(
1089 domain.ssh_host_keys,
1090 vec![
1091 "ssh-ed25519 AAAAC3Nz host".to_string(),
1092 "ecdsa-sha2-nistp256 AAAAE2Vj host".to_string(),
1093 ]
1094 );
1095
1096 // Absent on the wire → empty Vec, not fabricated.
1097 let bare = ts_control_serde::Node::default();
1098 assert!(Node::from(&bare).ssh_host_keys.is_empty());
1099 }
1100
1101 /// A node from an **IPv4-only** tailnet (IPv6-off control plane / Headscale) carries a
1102 /// single-element `addresses` list. This used to fail deserialization ("invalid length 1,
1103 /// expected a tuple of size 2") when `addresses` was a fixed 2-tuple; it must now parse and
1104 /// derive the v4 identity, with the unused v6 a synthesized placeholder.
1105 #[test]
1106 fn from_wire_node_ipv4_only_addresses() {
1107 let wire = ts_control_serde::Node {
1108 addresses: vec!["100.64.0.5/32".parse().unwrap()],
1109 ..Default::default()
1110 };
1111 let domain: Node = (&wire).into();
1112 assert_eq!(
1113 domain.tailnet_address.ipv4,
1114 "100.64.0.5/32".parse().unwrap()
1115 );
1116 // No v6 on the wire → unspecified placeholder (never read in IPv4-only mode).
1117 assert_eq!(
1118 domain.tailnet_address.ipv6,
1119 ipnet::Ipv6Net::new(core::net::Ipv6Addr::UNSPECIFIED, 128).unwrap()
1120 );
1121 // AllowedIPs absent → falls back to the node's own assigned prefixes (just the v4 here).
1122 assert_eq!(
1123 domain.accepted_routes,
1124 vec!["100.64.0.5/32".parse::<ipnet::IpNet>().unwrap()]
1125 );
1126 }
1127
1128 /// A dual-stack node carries both families (any order); the domain picks the first of each.
1129 #[test]
1130 fn from_wire_node_dual_stack_addresses() {
1131 let wire = ts_control_serde::Node {
1132 addresses: vec![
1133 "100.64.0.7/32".parse().unwrap(),
1134 "fd7a:115c:a1e0::7/128".parse().unwrap(),
1135 ],
1136 ..Default::default()
1137 };
1138 let domain: Node = (&wire).into();
1139 assert_eq!(
1140 domain.tailnet_address.ipv4,
1141 "100.64.0.7/32".parse().unwrap()
1142 );
1143 assert_eq!(
1144 domain.tailnet_address.ipv6,
1145 "fd7a:115c:a1e0::7/128".parse().unwrap()
1146 );
1147 }
1148
1149 /// A wire peer that owns `100.64.0.9/32` and is handed `route` plus the default route in its
1150 /// `AllowedIPs`. `unsigned` sets `UnsignedPeerAPIOnly`; everything else is identical between
1151 /// the two, so the only variable in the test below is that flag.
1152 fn wire_peer_advertising(
1153 stable_id: &'static str,
1154 route: &str,
1155 unsigned: bool,
1156 ) -> ts_control_serde::Node<'static> {
1157 ts_control_serde::Node {
1158 stable_id: ts_control_serde::StableNodeId(stable_id),
1159 addresses: vec!["100.64.0.9/32".parse().unwrap()],
1160 allowed_ips: Some(vec![
1161 "100.64.0.9/32".parse().unwrap(),
1162 route.parse().unwrap(),
1163 "0.0.0.0/0".parse().unwrap(),
1164 ]),
1165 unsigned_peer_api_only: unsigned,
1166 ..Default::default()
1167 }
1168 }
1169
1170 /// `UnsignedPeerAPIOnly` must clamp a peer's accepted routes back to its own addresses, so a
1171 /// control server cannot grant an unsigned (lock-exempt) peer network access via advertised
1172 /// routes. Mirrors Go's `upgradeNode` in `control/controlclient/map.go`.
1173 ///
1174 /// The signed peer is the control: it advertises the **same** route and the same default route,
1175 /// and keeps both. Without it this test would still pass if the `From` impl simply dropped every
1176 /// advertised route.
1177 #[test]
1178 fn from_wire_unsigned_peer_api_only_clamps_routes_to_own_addresses() {
1179 let own: ipnet::IpNet = "100.64.0.9/32".parse().unwrap();
1180 let subnet: ipnet::IpNet = "192.0.2.0/24".parse().unwrap();
1181 let default_route: ipnet::IpNet = "0.0.0.0/0".parse().unwrap();
1182
1183 let unsigned: Node = (&wire_peer_advertising("nUnsigned", "192.0.2.0/24", true)).into();
1184 let signed: Node = (&wire_peer_advertising("nSigned", "192.0.2.0/24", false)).into();
1185
1186 // The flag is carried onto the domain node, not silently dropped.
1187 assert!(unsigned.unsigned_peer_api_only);
1188 assert!(!signed.unsigned_peer_api_only);
1189
1190 // Unsigned: clamped to its own addresses. The advertised subnet and the default route are
1191 // both gone, whatever control sent.
1192 assert_eq!(unsigned.accepted_routes, vec![own]);
1193
1194 // Signed: the identical advertisement survives verbatim.
1195 assert_eq!(
1196 signed.accepted_routes,
1197 vec![own, subnet, default_route],
1198 "the clamp must be specific to UnsignedPeerAPIOnly, not a blanket route drop"
1199 );
1200
1201 // Consequences the rest of the fork reads. `is_router` reports the unsigned peer routes
1202 // nothing but itself...
1203 assert!(!unsigned.is_router());
1204 assert!(signed.is_router());
1205
1206 // ...and no route-install policy can resurrect the advertisement: even with
1207 // `--accept-routes` on AND the peer selected as the exit node — the most permissive input
1208 // `routes_to_install` accepts — the unsigned peer yields only its own address.
1209 let installed: Vec<_> = unsigned
1210 .routes_to_install(true, Some(&unsigned.stable_id))
1211 .copied()
1212 .collect();
1213 assert_eq!(installed, vec![own]);
1214
1215 // The same permissive inputs against the signed peer do install the subnet and the /0,
1216 // proving the difference is the flag and not the policy arguments.
1217 let installed_signed: Vec<_> = signed
1218 .routes_to_install(true, Some(&signed.stable_id))
1219 .copied()
1220 .collect();
1221 assert_eq!(installed_signed, vec![own, subnet, default_route]);
1222 }
1223
1224 /// The wire default (`UnsignedPeerAPIOnly` absent) must leave `AllowedIPs` untouched, including
1225 /// the capver-112 "null AllowedIPs means the node's own addresses" fallback. Guards against the
1226 /// clamp being applied on the wrong branch.
1227 #[test]
1228 fn from_wire_default_is_not_clamped() {
1229 let wire = ts_control_serde::Node {
1230 addresses: vec!["100.64.0.9/32".parse().unwrap()],
1231 allowed_ips: Some(vec!["198.51.100.0/24".parse().unwrap()]),
1232 ..Default::default()
1233 };
1234 assert!(!wire.unsigned_peer_api_only);
1235 let domain: Node = (&wire).into();
1236 assert_eq!(
1237 domain.accepted_routes,
1238 vec!["198.51.100.0/24".parse::<ipnet::IpNet>().unwrap()]
1239 );
1240 }
1241
1242 /// An unsigned peer with **no** `AllowedIPs` on the wire still lands on its own addresses (the
1243 /// clamp and the capver-112 fallback agree), and a multi-prefix unsigned peer keeps *all* of
1244 /// its assigned prefixes — the clamp is to `Addresses`, not to the v4/v6 identity pair.
1245 #[test]
1246 fn from_wire_unsigned_peer_clamp_keeps_every_assigned_prefix() {
1247 let wire = ts_control_serde::Node {
1248 addresses: vec![
1249 "100.64.0.9/32".parse().unwrap(),
1250 "fd7a:115c:a1e0::9/128".parse().unwrap(),
1251 ],
1252 allowed_ips: None,
1253 unsigned_peer_api_only: true,
1254 ..Default::default()
1255 };
1256 let domain: Node = (&wire).into();
1257 assert_eq!(
1258 domain.accepted_routes,
1259 vec![
1260 "100.64.0.9/32".parse::<ipnet::IpNet>().unwrap(),
1261 "fd7a:115c:a1e0::9/128".parse::<ipnet::IpNet>().unwrap(),
1262 ]
1263 );
1264 assert!(!domain.is_router());
1265 }
1266
1267 /// The deserialization regression itself: a MapResponse-style Node JSON with a 1-element
1268 /// `Addresses` array must parse (this is the exact shape the dev-Headscale sends).
1269 #[test]
1270 fn deserialize_node_with_single_address() {
1271 let json = r#"{
1272 "ID": 1,
1273 "StableID": "n1",
1274 "Name": "host.tail.ts.net.",
1275 "User": 1,
1276 "Addresses": ["100.64.0.9/32"],
1277 "Key": "nodekey:0000000000000000000000000000000000000000000000000000000000000000",
1278 "Machine": null,
1279 "DiscoKey": null,
1280 "AllowedIPs": null,
1281 "Endpoints": []
1282 }"#;
1283 let wire: ts_control_serde::Node = serde_json::from_str(json).expect("1-addr node parses");
1284 assert_eq!(wire.addresses.len(), 1);
1285 let domain: Node = (&wire).into();
1286 assert_eq!(
1287 domain.tailnet_address.ipv4,
1288 "100.64.0.9/32".parse().unwrap()
1289 );
1290 }
1291
1292 #[test]
1293 fn key_expiry_semantics() {
1294 let now: DateTime<Utc> = "2026-06-05T00:00:00Z".parse().unwrap();
1295 let past: DateTime<Utc> = "2020-01-01T00:00:00Z".parse().unwrap();
1296 let future: DateTime<Utc> = "2099-01-01T00:00:00Z".parse().unwrap();
1297
1298 let mut n = node("h", Some("t.ts.net"));
1299
1300 // No expiry set => never expired (Go zero-value semantics).
1301 n.node_key_expiry = None;
1302 assert!(!n.key_expired(now));
1303 assert_eq!(n.key_expiry(), None);
1304
1305 // Future expiry => not yet expired.
1306 n.node_key_expiry = Some(future);
1307 assert!(!n.key_expired(now));
1308 assert_eq!(n.key_expiry(), Some(future));
1309
1310 // Past expiry => expired.
1311 n.node_key_expiry = Some(past);
1312 assert!(n.key_expired(now));
1313 }
1314
1315 #[test]
1316 fn key_expiry_unix_agrees_with_chrono() {
1317 // The chrono-free variants (`key_expired_at_unix` / `key_expiry_unix`) must agree with the
1318 // chrono variants for the same none/future/past cases (Unix seconds of the same instants).
1319 let now: DateTime<Utc> = "2026-06-05T00:00:00Z".parse().unwrap();
1320 let past: DateTime<Utc> = "2020-01-01T00:00:00Z".parse().unwrap();
1321 let future: DateTime<Utc> = "2099-01-01T00:00:00Z".parse().unwrap();
1322 let now_unix = now.timestamp();
1323
1324 let mut n = node("h", Some("t.ts.net"));
1325
1326 // No expiry => never expired; the unix accessor reports `None`.
1327 n.node_key_expiry = None;
1328 assert_eq!(n.key_expired(now), n.key_expired_at_unix(now_unix));
1329 assert!(!n.key_expired_at_unix(now_unix));
1330 assert_eq!(n.key_expiry_unix(), None);
1331
1332 // Future expiry => not yet expired; unix accessor matches the chrono timestamp.
1333 n.node_key_expiry = Some(future);
1334 assert_eq!(n.key_expired(now), n.key_expired_at_unix(now_unix));
1335 assert!(!n.key_expired_at_unix(now_unix));
1336 assert_eq!(n.key_expiry_unix(), Some(future.timestamp()));
1337
1338 // Past expiry => expired; unix accessor matches the chrono timestamp.
1339 n.node_key_expiry = Some(past);
1340 assert_eq!(n.key_expired(now), n.key_expired_at_unix(now_unix));
1341 assert!(n.key_expired_at_unix(now_unix));
1342 assert_eq!(n.key_expiry_unix(), Some(past.timestamp()));
1343 }
1344
1345 #[test]
1346 fn key_expiry_boundary_is_not_expired() {
1347 // A key whose expiry exactly equals `now` is NOT expired: the code uses strict `<`, matching
1348 // Go's `Before`. Both the chrono and chrono-free variants must agree at the boundary.
1349 let now: DateTime<Utc> = "2026-06-05T00:00:00Z".parse().unwrap();
1350 let now_unix = now.timestamp();
1351
1352 let mut n = node("h", Some("t.ts.net"));
1353 n.node_key_expiry = Some(now);
1354
1355 assert!(!n.key_expired(now));
1356 assert!(!n.key_expired_at_unix(now_unix));
1357 }
1358
1359 #[test]
1360 fn is_peer_relay_returns_field() {
1361 let mut n = node("h", Some("t.ts.net"));
1362
1363 n.peer_relay = true;
1364 assert!(n.is_peer_relay());
1365
1366 n.peer_relay = false;
1367 assert!(!n.is_peer_relay());
1368 }
1369
1370 /// A minimal well-formed peer, shared with the `expiry` module's tests so both reason about
1371 /// the same node shape.
1372 pub(crate) fn test_node() -> Node {
1373 node("h", Some("t.ts.net"))
1374 }
1375
1376 fn node(hostname: &str, tailnet: Option<&str>) -> Node {
1377 Node {
1378 id: 1,
1379 stable_id: StableId("n1".to_string()),
1380 hostname: hostname.to_string(),
1381 user_id: 0,
1382 tailnet: tailnet.map(str::to_string),
1383 tags: vec![],
1384 addresses: vec![
1385 "100.64.0.1/32".parse().unwrap(),
1386 "fd7a::1/128".parse().unwrap(),
1387 ],
1388 tailnet_address: TailnetAddress {
1389 ipv4: "100.64.0.1/32".parse().unwrap(),
1390 ipv6: "fd7a::1/128".parse().unwrap(),
1391 },
1392 node_key: [0u8; 32].into(),
1393 node_key_expiry: None,
1394 expired: false,
1395 online: None,
1396 last_seen: None,
1397 key_signature: vec![],
1398 machine_key: None,
1399 disco_key: None,
1400 accepted_routes: vec![],
1401 underlay_addresses: vec![],
1402 derp_region: None,
1403 cap: CapabilityVersion::default(),
1404 cap_map: NodeCapMap::new(),
1405 peerapi_port: None,
1406 peerapi_dns_proxy: false,
1407 is_wireguard_only: false,
1408 exit_node_dns_resolvers: vec![],
1409 peer_relay: false,
1410 ssh_host_keys: vec![],
1411 service_vips: Default::default(),
1412 unsigned_peer_api_only: false,
1413 }
1414 }
1415
1416 #[test]
1417 fn matches_name_is_case_and_trailing_dot_insensitive() {
1418 let n = node("MyHost", Some("tail-scale.ts.net"));
1419
1420 // bare hostname, any case
1421 assert!(n.matches_name("myhost"));
1422 assert!(n.matches_name("MYHOST"));
1423 assert!(n.matches_name("MyHost"));
1424
1425 // fqdn, any case, with and without trailing dot
1426 assert!(n.matches_name("myhost.tail-scale.ts.net"));
1427 assert!(n.matches_name("MYHOST.TAIL-SCALE.TS.NET"));
1428 assert!(n.matches_name("myhost.tail-scale.ts.net."));
1429 assert!(n.matches_name("MyHost.Tail-Scale.TS.NET."));
1430
1431 // wrong host / wrong tailnet must not match
1432 assert!(!n.matches_name("other"));
1433 assert!(!n.matches_name("myhost.other.ts.net"));
1434 }
1435
1436 #[test]
1437 fn matches_name_no_tailnet() {
1438 let n = node("solo", None);
1439 assert!(n.matches_name("solo"));
1440 assert!(n.matches_name("SOLO."));
1441 assert!(!n.matches_name("solo.ts.net"));
1442 }
1443
1444 #[test]
1445 fn is_tailscale_ip_ranges() {
1446 // CGNAT v4
1447 assert!(is_tailscale_ip("100.64.0.1".parse().unwrap()));
1448 assert!(is_tailscale_ip("100.127.255.254".parse().unwrap()));
1449 // ChromeOS carve-out is excluded
1450 assert!(!is_tailscale_ip("100.115.92.5".parse().unwrap()));
1451 // outside CGNAT
1452 assert!(!is_tailscale_ip("10.0.0.1".parse().unwrap()));
1453 assert!(!is_tailscale_ip("100.128.0.1".parse().unwrap()));
1454 // Tailscale ULA v6
1455 assert!(is_tailscale_ip("fd7a:115c:a1e0::1".parse().unwrap()));
1456 assert!(!is_tailscale_ip("fd00::1".parse().unwrap()));
1457 }
1458
1459 /// Taildrop SSRF guard (defense-in-depth). `Device::send_file` rejects an upload destination
1460 /// unless `is_tailscale_ip(peer.peerapi_addr().ip())` holds. `Device::send_file` itself needs a
1461 /// live runtime (it goes through `self.channel()`), so it can't be unit-tested here; instead we
1462 /// test the exact composition the guard relies on — `is_tailscale_ip ∘ peerapi_addr` — against a
1463 /// `Node` whose `tailnet_address.ipv4` has been corrupted to a non-CGNAT (public) address. A
1464 /// well-formed peer always has a CGNAT 100.64.0.0/10 address, but the guard exists to catch a
1465 /// malformed/hostile node; this proves it would reject one.
1466 #[test]
1467 fn taildrop_ssrf_guard_rejects_non_cgnat_peerapi_addr() {
1468 let mut n = node("evil", Some("ts.net"));
1469 // Corrupt the peer to a public, non-CGNAT address and advertise a peerAPI port so
1470 // `peerapi_addr` returns `Some(_)`.
1471 n.tailnet_address.ipv4 = "1.2.3.4/32".parse().unwrap();
1472 n.peerapi_port = Some(443);
1473
1474 let addr = n
1475 .peerapi_addr()
1476 .expect("peerapi_addr yields Some with a port set");
1477 assert_eq!(addr.ip(), Ipv4Addr::new(1, 2, 3, 4));
1478 // The guard `if !is_tailscale_ip(dst.ip()) { return Err(BadRequest) }` WOULD reject this.
1479 assert!(
1480 !is_tailscale_ip(addr.ip()),
1481 "SSRF guard must reject a peer whose peerAPI addr is not a Tailscale CGNAT IP"
1482 );
1483
1484 // Conversely, a well-formed CGNAT peer passes the guard.
1485 let mut good = node("friend", Some("ts.net"));
1486 good.peerapi_port = Some(443);
1487 let good_addr = good.peerapi_addr().expect("peerapi_addr yields Some");
1488 assert!(is_tailscale_ip(good_addr.ip()));
1489 }
1490
1491 /// Ported from upstream's `TestNodeIsRouter` (`tailcfg/tailcfg_test.go`, `8d830599b`): a node
1492 /// is a router exactly when its `AllowedIPs` reach past its own `Addresses`. The absent case
1493 /// (a plain node advertising only its own addresses) is asserted alongside the present one,
1494 /// since "no routes besides my own" is the answer that must not drift.
1495 #[test]
1496 fn is_router_reports_routes_beyond_own_addresses() {
1497 let v4: ipnet::Ipv4Net = "100.64.0.1/32".parse().unwrap();
1498 let v6: ipnet::Ipv6Net = "fd7a:115c:a1e0::1/128".parse().unwrap();
1499 let self4 = ipnet::IpNet::V4(v4);
1500 let self6 = ipnet::IpNet::V6(v6);
1501
1502 let cases: &[(&str, Vec<ipnet::IpNet>, bool)] = &[
1503 ("empty", vec![], false),
1504 ("plain-ipv4", vec![self4], false),
1505 ("plain-ipv6", vec![self6], false),
1506 ("plain-ipv4-ipv6", vec![self4, self6], false),
1507 ("duplicates", vec![self4, self4], false),
1508 (
1509 "exit-node-ipv4",
1510 vec![self4, "0.0.0.0/0".parse().unwrap()],
1511 true,
1512 ),
1513 ("exit-node-ipv6", vec![self6, "::/0".parse().unwrap()], true),
1514 (
1515 "exit-node-ipv4-ipv6",
1516 vec![
1517 self4,
1518 self6,
1519 "0.0.0.0/0".parse().unwrap(),
1520 "::/0".parse().unwrap(),
1521 ],
1522 true,
1523 ),
1524 (
1525 "subnet-router-ipv4",
1526 vec![self4, "192.0.2.0/24".parse().unwrap()],
1527 true,
1528 ),
1529 (
1530 "subnet-router-ipv6",
1531 vec![self6, "2001:db8::/32".parse().unwrap()],
1532 true,
1533 ),
1534 (
1535 "subnet-router-ipv4-ipv6",
1536 vec![
1537 self4,
1538 self6,
1539 "192.0.2.0/24".parse().unwrap(),
1540 "2001:db8::/32".parse().unwrap(),
1541 ],
1542 true,
1543 ),
1544 // Go's `IsRouter` has no Tailscale-range exception: another peer's /32 is still a
1545 // routed address. This is where it parts ways with `is_subnet_route`.
1546 (
1547 "other-tailnet-host",
1548 vec![self4, "100.64.5.5/32".parse().unwrap()],
1549 true,
1550 ),
1551 ];
1552
1553 for (name, allowed, want) in cases {
1554 let mut n = node("host", Some("ts.net"));
1555 n.addresses = vec![self4, self6];
1556 n.tailnet_address = TailnetAddress { ipv4: v4, ipv6: v6 };
1557 n.accepted_routes = allowed.clone();
1558 assert_eq!(n.is_router(), *want, "{name}");
1559 }
1560 }
1561
1562 /// Go's `IsRouter` tests each `AllowedIPs` prefix against the node's **whole** `Addresses`
1563 /// slice, so every prefix control assigned is "its own". The wire field is a variable-length
1564 /// list, not a v4/v6 pair, so a tailnet may hand a node more than one prefix of a family; such
1565 /// a node must not be reported as a router on account of the extra one — which comparing only
1566 /// against the first-of-family `tailnet_address` pair does. Runs through the production `From`
1567 /// impl so the retention of the full list is pinned along with the predicate.
1568 #[test]
1569 fn is_router_tests_every_assigned_address_not_only_the_first_of_each_family() {
1570 let second4: ipnet::IpNet = "100.64.0.9/32".parse().unwrap();
1571 let second6: ipnet::IpNet = "fd7a:115c:a1e0::9/128".parse().unwrap();
1572 let wire = ts_control_serde::Node {
1573 addresses: vec![
1574 "100.64.0.1/32".parse().unwrap(),
1575 second4,
1576 "fd7a:115c:a1e0::1/128".parse().unwrap(),
1577 second6,
1578 ],
1579 ..Default::default()
1580 };
1581 let domain: Node = (&wire).into();
1582
1583 // The identity projection is still the first prefix of each family...
1584 assert_eq!(
1585 domain.tailnet_address.ipv4,
1586 "100.64.0.1/32".parse().unwrap()
1587 );
1588 // ...but every assigned prefix is retained, and (AllowedIPs absent ⇒ routes are exactly
1589 // the addresses) none of them makes the node a router.
1590 assert_eq!(domain.addresses, wire.addresses);
1591 assert!(
1592 !domain.is_router(),
1593 "a node whose routes are exactly its own assigned prefixes is not a router"
1594 );
1595
1596 // Either second-of-family address on its own is still not a routed prefix.
1597 for extra in [second4, second6] {
1598 let mut n = domain.clone();
1599 n.accepted_routes = vec![extra];
1600 assert!(
1601 !n.is_router(),
1602 "{extra} is one of this node's own addresses"
1603 );
1604 }
1605
1606 // The predicate still fires for a route that does reach past every assigned address.
1607 let mut router = domain.clone();
1608 router.accepted_routes.push("192.0.2.0/24".parse().unwrap());
1609 assert!(router.is_router(), "a real subnet route makes it a router");
1610 }
1611
1612 #[test]
1613 fn is_subnet_route_distinguishes_self_from_subnet() {
1614 let n = node("host", Some("ts.net"));
1615
1616 // The node's own /32 and /128 are self-addresses, not subnet routes.
1617 assert!(!n.is_subnet_route(&"100.64.0.1/32".parse().unwrap()));
1618 assert!(!n.is_subnet_route(&"fd7a::1/128".parse().unwrap()));
1619 // A different single Tailscale IP is still a self-address (Tailscale-assigned host).
1620 assert!(!n.is_subnet_route(&"100.64.5.5/32".parse().unwrap()));
1621 // A LAN /24 the node advertises is a subnet route.
1622 assert!(n.is_subnet_route(&"192.168.1.0/24".parse().unwrap()));
1623 // A single non-Tailscale host IP counts as a subnet route.
1624 assert!(n.is_subnet_route(&"8.8.8.8/32".parse().unwrap()));
1625 // The default route is treated as a subnet route.
1626 assert!(n.is_subnet_route(&"0.0.0.0/0".parse().unwrap()));
1627 assert!(n.is_subnet_route(&"::/0".parse().unwrap()));
1628 }
1629
1630 #[test]
1631 fn routes_to_install_gates_subnets_on_accept_routes() {
1632 let mut n = node("host", Some("ts.net"));
1633 let self4: ipnet::IpNet = "100.64.0.1/32".parse().unwrap();
1634 let self6: ipnet::IpNet = "fd7a::1/128".parse().unwrap();
1635 let subnet: ipnet::IpNet = "192.168.1.0/24".parse().unwrap();
1636 n.accepted_routes = vec![self4, self6, subnet];
1637
1638 // accept_routes off: only the self addresses are installed.
1639 let off: Vec<_> = n.routes_to_install(false, None).copied().collect();
1640 assert_eq!(off, vec![self4, self6]);
1641
1642 // accept_routes on: the advertised subnet is installed too.
1643 let on: Vec<_> = n.routes_to_install(true, None).copied().collect();
1644 assert_eq!(on, vec![self4, self6, subnet]);
1645 }
1646
1647 #[test]
1648 fn routes_to_install_default_route_only_for_selected_exit_node() {
1649 let mut n = node("host", Some("ts.net"));
1650 n.stable_id = StableId("exit1".to_string());
1651 let self4: ipnet::IpNet = "100.64.0.1/32".parse().unwrap();
1652 let default4: ipnet::IpNet = "0.0.0.0/0".parse().unwrap();
1653 let default6: ipnet::IpNet = "::/0".parse().unwrap();
1654 n.accepted_routes = vec![self4, default4, default6];
1655
1656 // No exit node selected: default routes are excluded even with accept_routes on
1657 // (fail-closed — internet-bound traffic has no overlay route and is dropped).
1658 let none_off: Vec<_> = n.routes_to_install(false, None).copied().collect();
1659 assert_eq!(none_off, vec![self4]);
1660 let none_on: Vec<_> = n.routes_to_install(true, None).copied().collect();
1661 assert_eq!(none_on, vec![self4]);
1662
1663 // A *different* peer selected as exit node: this peer still gets no default route.
1664 let other = StableId("exit2".to_string());
1665 let other_sel: Vec<_> = n.routes_to_install(false, Some(&other)).copied().collect();
1666 assert_eq!(other_sel, vec![self4]);
1667
1668 // This peer selected as the exit node: its default routes are installed.
1669 let me = StableId("exit1".to_string());
1670 let sel: Vec<_> = n.routes_to_install(false, Some(&me)).copied().collect();
1671 assert_eq!(sel, vec![self4, default4, default6]);
1672 }
1673
1674 fn exit_node_with(id: &str, ipv4: &str, hostname: &str, tailnet: Option<&str>) -> Node {
1675 let mut n = node(hostname, tailnet);
1676 n.stable_id = StableId(id.to_string());
1677 n.tailnet_address.ipv4 = format!("{ipv4}/32").parse().unwrap();
1678 n
1679 }
1680
1681 #[test]
1682 fn exit_node_selector_resolves_by_id_ip_and_name() {
1683 let a = exit_node_with("nA", "100.64.0.5", "alpha", Some("ts.net"));
1684 let b = exit_node_with("nB", "100.64.0.6", "beta", Some("ts.net"));
1685 let peers = [a, b];
1686 let it = || peers.iter();
1687
1688 // By stable id.
1689 assert_eq!(
1690 ExitNodeSelector::StableId(StableId("nB".into())).resolve(it()),
1691 Some(StableId("nB".into()))
1692 );
1693 // By tailnet IP.
1694 assert_eq!(
1695 ExitNodeSelector::Ip("100.64.0.5".parse().unwrap()).resolve(it()),
1696 Some(StableId("nA".into()))
1697 );
1698 // By MagicDNS name (fqdn, case-insensitive).
1699 assert_eq!(
1700 ExitNodeSelector::Name("BETA.ts.net".into()).resolve(it()),
1701 Some(StableId("nB".into()))
1702 );
1703 // By bare hostname.
1704 assert_eq!(
1705 ExitNodeSelector::Name("alpha".into()).resolve(it()),
1706 Some(StableId("nA".into()))
1707 );
1708 // Unresolvable selector => None (fail-closed at the call site).
1709 assert_eq!(
1710 ExitNodeSelector::Ip("100.64.0.99".parse().unwrap()).resolve(it()),
1711 None
1712 );
1713 assert_eq!(ExitNodeSelector::Name("ghost".into()).resolve(it()), None);
1714 }
1715
1716 #[test]
1717 fn exit_node_selector_resolution_is_deterministic_on_ties() {
1718 // Two peers sharing a name (transient netmap state): the smallest stable id wins, so the
1719 // outbound table and inbound source filter — which resolve independently — agree.
1720 let a = exit_node_with("nZ", "100.64.0.5", "dup", Some("ts.net"));
1721 let b = exit_node_with("nA", "100.64.0.6", "dup", Some("ts.net"));
1722 let peers = [a, b];
1723
1724 assert_eq!(
1725 ExitNodeSelector::Name("dup".into()).resolve(peers.iter()),
1726 Some(StableId("nA".into())),
1727 "smallest stable id wins the tie"
1728 );
1729 // Order of iteration must not change the result.
1730 assert_eq!(
1731 ExitNodeSelector::Name("dup".into()).resolve(peers.iter().rev()),
1732 Some(StableId("nA".into()))
1733 );
1734 }
1735
1736 #[test]
1737 fn peerapi_doh_url_requires_port_and_capability() {
1738 let mut n = node("exit", Some("ts.net"));
1739 n.tailnet_address.ipv4 = "100.64.0.5/32".parse().unwrap();
1740
1741 // No peerAPI port advertised: cannot proxy DNS.
1742 n.peerapi_port = None;
1743 n.cap = CapabilityVersion::V130;
1744 assert_eq!(n.peerapi_doh_url(), None);
1745
1746 // Port advertised but capability too old and no explicit service: cannot proxy.
1747 n.peerapi_port = Some(8080);
1748 n.cap = CapabilityVersion::V25;
1749 n.peerapi_dns_proxy = false;
1750 assert_eq!(n.peerapi_doh_url(), None);
1751
1752 // Port + new-enough capability: yields the DoH URL on the IPv4 address.
1753 n.cap = CapabilityVersion::V26;
1754 assert_eq!(
1755 n.peerapi_doh_url().as_deref(),
1756 Some("http://100.64.0.5:8080/dns-query")
1757 );
1758
1759 // Port + explicit peerapi-dns-proxy service, even with an old capability.
1760 n.cap = CapabilityVersion::V25;
1761 n.peerapi_dns_proxy = true;
1762 assert_eq!(
1763 n.peerapi_doh_url().as_deref(),
1764 Some("http://100.64.0.5:8080/dns-query")
1765 );
1766
1767 // WireGuard-only peers never run a peerAPI: no DoH URL even with a port.
1768 n.is_wireguard_only = true;
1769 assert_eq!(n.peerapi_doh_url(), None);
1770 }
1771
1772 #[test]
1773 fn peerapi_doh_addr_matches_url_gate() {
1774 let mut n = node("exit", Some("ts.net"));
1775 n.tailnet_address.ipv4 = "100.64.0.5/32".parse().unwrap();
1776 n.peerapi_port = Some(8080);
1777 n.cap = CapabilityVersion::V26;
1778
1779 // The addr form the DoH client dials is the same gated endpoint as the URL.
1780 assert_eq!(
1781 n.peerapi_doh_addr(),
1782 Some("100.64.0.5:8080".parse().unwrap())
1783 );
1784 // And it composes into exactly the URL form.
1785 assert_eq!(
1786 n.peerapi_doh_url().as_deref(),
1787 Some("http://100.64.0.5:8080/dns-query")
1788 );
1789
1790 // Gated off the same way: no port => no addr.
1791 n.peerapi_port = None;
1792 assert_eq!(n.peerapi_doh_addr(), None);
1793 }
1794
1795 #[test]
1796 fn peerapi_addr_returns_addr_when_advertised() {
1797 let mut n = node("peer", Some("ts.net"));
1798 n.tailnet_address.ipv4 = "100.64.0.5/32".parse().unwrap();
1799 n.peerapi_port = Some(8089);
1800
1801 // Not gated on the DNS-proxy capability: a plain advertised peerAPI port is enough.
1802 assert_eq!(n.peerapi_addr(), Some("100.64.0.5:8089".parse().unwrap()));
1803 }
1804
1805 #[test]
1806 fn peerapi_addr_none_when_no_port() {
1807 let mut n = node("peer", Some("ts.net"));
1808 n.tailnet_address.ipv4 = "100.64.0.5/32".parse().unwrap();
1809 n.peerapi_port = None;
1810
1811 assert_eq!(n.peerapi_addr(), None);
1812 }
1813
1814 #[test]
1815 fn peerapi_addr_none_for_wireguard_only() {
1816 let mut n = node("peer", Some("ts.net"));
1817 n.tailnet_address.ipv4 = "100.64.0.5/32".parse().unwrap();
1818 n.peerapi_port = Some(8089);
1819 n.is_wireguard_only = true;
1820
1821 // WireGuard-only peers run no peerAPI, even with a port set.
1822 assert_eq!(n.peerapi_addr(), None);
1823 }
1824
1825 #[test]
1826 fn can_share_files_gated_on_self_capability() {
1827 let mut n = node("self", Some("ts.net"));
1828 assert!(
1829 !n.can_share_files(),
1830 "no cap → file sharing not enabled (fail-closed)"
1831 );
1832 n.cap_map
1833 .insert("https://tailscale.com/cap/file-sharing".to_string(), vec![]);
1834 assert!(n.can_share_files(), "the file-sharing cap enables it");
1835 }
1836
1837 #[test]
1838 fn is_file_sharing_target_gated_on_peer_capability() {
1839 let mut n = node("peer", Some("ts.net"));
1840 assert!(
1841 !n.is_file_sharing_target(),
1842 "no cap → not an explicit target"
1843 );
1844 n.cap_map
1845 .insert("tailscale.com/cap/file-sharing-target".to_string(), vec![]);
1846 assert!(
1847 n.is_file_sharing_target(),
1848 "the file-sharing-target cap marks a cross-owner target"
1849 );
1850 }
1851
1852 #[test]
1853 fn peerapi_from_services_extracts_v4_port_and_dns_proxy_flag() {
1854 use ts_control_serde::{Service, ServiceProto};
1855
1856 let services = [
1857 Service {
1858 proto: ServiceProto::PeerApi4,
1859 port: 8080,
1860 description: "peerapi".into(),
1861 },
1862 Service {
1863 proto: ServiceProto::PeerApi6,
1864 port: 9090,
1865 description: "peerapi6".into(),
1866 },
1867 Service {
1868 proto: ServiceProto::PeerApiDnsProxy,
1869 port: 1,
1870 description: "dns".into(),
1871 },
1872 ];
1873 let (port, dns_proxy) = peerapi_from_services(Some(&services));
1874 assert_eq!(port, Some(8080), "only the IPv4 peerAPI port is taken");
1875 assert!(dns_proxy);
1876
1877 // No services at all.
1878 assert_eq!(peerapi_from_services(None), (None, false));
1879 }
1880
1881 #[test]
1882 fn exit_node_selector_parses_ip_vs_name() {
1883 assert_eq!(
1884 "100.64.0.5".parse::<ExitNodeSelector>().unwrap(),
1885 ExitNodeSelector::Ip("100.64.0.5".parse().unwrap())
1886 );
1887 assert_eq!(
1888 "fd7a::5".parse::<ExitNodeSelector>().unwrap(),
1889 ExitNodeSelector::Ip("fd7a::5".parse().unwrap())
1890 );
1891 assert_eq!(
1892 "my-exit.ts.net".parse::<ExitNodeSelector>().unwrap(),
1893 ExitNodeSelector::Name("my-exit.ts.net".into())
1894 );
1895 }
1896}