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ts_runtime/
status.rs

1//! Netmap status aggregation, WhoIs lookups, and a netmap-change watcher.
2//!
3//! These surface the internal netmap state ([`ts_control::StateUpdate`], consumed by the
4//! [`PeerTracker`](crate::peer_tracker::PeerTracker)) to embedders, mirroring tsnet's
5//! `LocalClient::Status`, `WhoIs`, and `WatchIPNBus`.
6//!
7//! ## Capability / user / online surfacing (do not fabricate)
8//!
9//! tsnet's `Status`/`WhoIs` also carry per-node *online* state, the owning *user* (login/profile),
10//! and a *capability map*. Status of each in this fork:
11//! - **Capabilities** — surfaced: [`WhoIs::capabilities`] is populated from the domain
12//!   [`Node`](ts_control::Node)'s `cap_map` (the control-pushed `CapMap`), which the domain model
13//!   retains.
14//! - **User (login/profile)** — surfaced when the netmap provided it: [`WhoIs::user`] is the owning
15//!   user's login/display name, resolved by joining the node's owning user id against the netmap's
16//!   `UserProfiles` table (accumulated by the [`PeerTracker`](crate::peer_tracker::PeerTracker)
17//!   across delta updates). `None` when control sent no profile for that user.
18//! - **Online state** — surfaced: [`StatusNode::online`] / [`StatusNode::last_seen`] reflect the
19//!   domain [`Node`](ts_control::Node)'s retained `online`/`last_seen`, populated from the netmap
20//!   node and its online deltas (`PeerChange`, `MapResponse.online_change`/`peer_seen_change`).
21//!   `online` stays tri-state (`None` = unknown), never fabricated to `false`.
22
23use std::net::{IpAddr, SocketAddr};
24
25use ts_control::{Node, StableNodeId, UserId};
26
27/// A snapshot of the local netmap: this node plus every known peer.
28///
29/// Analogous to tsnet's `ipnstate.Status`. Built by [`Runtime::status`](crate::Runtime::status)
30/// from the self node held by the control runner and the peers held by the peer tracker.
31#[derive(Debug, Clone, PartialEq, Eq)]
32pub struct Status {
33    /// This node, if a netmap has been received from control yet.
34    pub self_node: Option<StatusNode>,
35    /// Every peer currently known in the netmap.
36    pub peers: Vec<StatusNode>,
37    /// The stable id of the exit node traffic is **currently** egressing through, if any (Go's
38    /// `Status.ExitNodeStatus.ID`). This is the *resolved + fail-closed* answer from the route
39    /// updater — `None` when no exit node is configured, the configured selector matches no peer, or
40    /// the matched peer no longer advertises a default route — so it reflects what is actually
41    /// engaged, not merely what [`Config::exit_node`](ts_control::Config) requested. Find the peer's
42    /// details by matching this id against [`peers`](Status::peers).
43    pub active_exit_node: Option<StableNodeId>,
44    /// The tailnet's MagicDNS suffix (e.g. `"tail0123.ts.net"`) — Go `ipnstate.Status.MagicDNSSuffix`.
45    /// Derived (like Go's `NetworkMap.MagicDNSSuffix`) from the self node's FQDN minus its host label,
46    /// **not** from the DNS config and **not** from the tailnet `Domain` name. `None` before the first
47    /// netmap, or when the self FQDN has no tailnet component (a bare hostname).
48    pub magic_dns_suffix: Option<String>,
49}
50
51/// A single node entry in a [`Status`] snapshot.
52///
53/// Analogous to tsnet's `ipnstate.PeerStatus`.
54#[derive(Debug, Clone, PartialEq, Eq)]
55pub struct StatusNode {
56    /// The node's stable id (stable across re-registration).
57    pub stable_id: StableNodeId,
58    /// A display name for the node: its fqdn if a tailnet component is known, else its bare
59    /// hostname.
60    pub display_name: String,
61    /// The node's tailnet IPv4 address.
62    pub ipv4: IpAddr,
63    /// The node's tailnet IPv6 address.
64    pub ipv6: IpAddr,
65    /// Whether the node is online, if known (`ipnstate.PeerStatus.Online`). Tri-state: `Some(true)`
66    /// connected to control, `Some(false)` offline, `None` unknown (control sent no online status or
67    /// the local node lacks permission to know). Reflects control's liveness state, retained from the
68    /// netmap node + its online deltas — `None` is *unknown*, never fabricated to `false`.
69    pub online: Option<bool>,
70    /// When control last saw this node online (`ipnstate.PeerStatus.LastSeen`). Per Go, only
71    /// meaningful while the node is not currently online. `None` when unknown or never seen.
72    pub last_seen: Option<chrono::DateTime<chrono::Utc>>,
73    /// The routes this node accepts traffic for (its own `/32` and `/128`, plus any advertised
74    /// subnet routes and possibly the exit-node default route).
75    pub allowed_routes: Vec<ipnet::IpNet>,
76    /// Whether this node advertises a default route (`0.0.0.0/0` or `::/0`), making it eligible to
77    /// be selected as an exit node.
78    pub is_exit_node: bool,
79}
80
81impl StatusNode {
82    /// Build a [`StatusNode`] from a domain [`Node`].
83    pub fn from_node(node: &Node) -> Self {
84        let is_exit_node = node
85            .accepted_routes
86            .iter()
87            .any(|route| route.prefix_len() == 0);
88
89        Self {
90            stable_id: node.stable_id.clone(),
91            display_name: node
92                .fqdn_opt(false)
93                .unwrap_or_else(|| node.hostname.clone()),
94            ipv4: node.tailnet_address.ipv4.addr().into(),
95            ipv6: node.tailnet_address.ipv6.addr().into(),
96            online: node.online,
97            last_seen: node.last_seen,
98            allowed_routes: node.accepted_routes.clone(),
99            is_exit_node,
100        }
101    }
102}
103
104/// The result of a [`Runtime::whois`](crate::Runtime::whois) lookup: the node that owns a tailnet
105/// source address, plus its user and capabilities.
106///
107/// Analogous to tsnet's `apitype.WhoIsResponse`.
108#[derive(Debug, Clone, PartialEq, Eq)]
109pub struct WhoIs {
110    /// The node that owns the queried source IP.
111    pub node: Node,
112    /// The login/email of the user that owns the node, if known.
113    ///
114    /// Always `None` in this fork: the domain [`Node`](ts_control::Node) does not retain the
115    /// wire-level user/login mapping (see the module-level capability/user gap note).
116    pub user: Option<String>,
117    /// The node's capability map, as `(capability, args)` pairs.
118    ///
119    /// Populated from the domain [`Node`](ts_control::Node)'s `cap_map` (the control-pushed
120    /// `CapMap`), sorted by capability name (the underlying map is a `BTreeMap`). Empty when control
121    /// granted the node no capabilities. Mirrors tsnet's `WhoIsResponse.CapMap`.
122    pub capabilities: Vec<(String, Vec<String>)>,
123}
124
125impl WhoIs {
126    /// Build a [`WhoIs`] from the owning node and its resolved owner login/display name (if the
127    /// netmap's `UserProfiles` table mapped the node's owning user id to a profile; `None` when
128    /// control sent no profile — e.g. a tagged node with no human owner).
129    ///
130    /// `capabilities` is always populated from the node's `cap_map`.
131    pub(crate) fn from_node_with_user(node: Node, user: Option<String>) -> Self {
132        let capabilities = node
133            .cap_map
134            .iter()
135            .map(|(cap, args)| (cap.clone(), args.clone()))
136            .collect();
137        Self {
138            node,
139            user,
140            capabilities,
141        }
142    }
143}
144
145/// Resolve which node owns a tailnet source address, used by WhoIs.
146pub(crate) fn whois_addr(addr: SocketAddr) -> IpAddr {
147    addr.ip()
148}
149
150/// A measured-latency entry for one DERP region in a [`NetcheckReport`].
151#[derive(Debug, Clone, PartialEq, Eq)]
152pub struct RegionLatency {
153    /// The DERP region id (Go `tailcfg.DERPRegionID`).
154    pub region_id: u32,
155    /// The measured round-trip latency to the region's closest DERP node.
156    pub latency: std::time::Duration,
157}
158
159/// A snapshot of this node's latest network conditions report — the Rust analog of Go's
160/// `netcheck.Report` as `tailscale netcheck` surfaces it.
161///
162/// ## Surfaced subset (do not fabricate)
163/// Go's `netcheck.Report` also carries UDP/IPv4/IPv6 reachability, port-mapping support
164/// (UPnP/PMP/PCP), `MappingVariesByDestIP`, global-address discovery, etc. This fork's net-report
165/// path measures only **DERP-region latency** (the data that drives home-region selection), so the
166/// report carries exactly that — the preferred (lowest-latency) region and the per-region latency
167/// map — rather than inventing fields we never probe. Empty before the first measurement.
168#[derive(Debug, Clone, PartialEq, Eq, Default, kameo::Reply)]
169pub struct NetcheckReport {
170    /// The id of the preferred DERP region — the lowest-latency region this node measured, the one it
171    /// homes to (Go `Report.PreferredDERP`). `None` before the first measurement / when no region
172    /// was reachable.
173    pub preferred_derp: Option<u32>,
174    /// Per-region measured latencies, sorted by latency ascending (Go `Report.RegionLatency`, here as
175    /// an ordered list). The first entry, when present, is the [`preferred_derp`](Self::preferred_derp)
176    /// region.
177    pub region_latencies: Vec<RegionLatency>,
178}
179
180impl NetcheckReport {
181    /// Build a report from the latest DERP-region measurements (the `RegionResult` set the latency
182    /// measurer produces). `results` is expected sorted by latency ascending (the measurer's
183    /// `RegionResult` `Ord` sorts on latency first), so the first entry is the preferred region; we
184    /// do not re-sort beyond trusting that contract for `preferred_derp`, but the list is emitted in
185    /// the order given. An empty `results` yields the default (no preferred region, empty list).
186    pub(crate) fn from_region_results(results: &[ts_netcheck::RegionResult]) -> NetcheckReport {
187        let region_latencies: Vec<RegionLatency> = results
188            .iter()
189            .map(|r| RegionLatency {
190                // `ts_derp::RegionId` is a `NonZeroU32` newtype (its `.0` is the public inner).
191                region_id: r.id.0.get(),
192                latency: r.latency,
193            })
194            .collect();
195        NetcheckReport {
196            preferred_derp: region_latencies.first().map(|r| r.region_id),
197            region_latencies,
198        }
199    }
200}
201
202/// A tailnet peer this node can send a Taildrop file *to*, plus the peerAPI base URL to reach it.
203///
204/// Analogous to tsnet's `apitype.FileTarget`. The set is produced by
205/// [`Runtime::file_targets`](crate::Runtime::file_targets) (exposed as `Device::file_targets`).
206#[derive(Debug, Clone, PartialEq, Eq)]
207pub struct FileTarget {
208    /// The target peer's node record — pass straight to the Taildrop send path
209    /// (`Device::send_file`), which re-derives the same peerAPI address.
210    pub node: Node,
211    /// The `http://ip:port` base URL of the peer's peerAPI, with no trailing path — the exact shape
212    /// of Go's `apitype.FileTarget.PeerAPIURL`. Derived from
213    /// [`Node::peerapi_addr`](ts_control::Node::peerapi_addr).
214    pub peerapi_url: String,
215}
216
217/// Compute the sorted Taildrop send-target list from the peer set, given the local node's owning
218/// user id. The pure core of [`Runtime::file_targets`](crate::Runtime::file_targets) — separated out
219/// so the eligibility + ordering rules are unit-testable without spinning up the actor graph (the
220/// node-level file-sharing gate is applied by the caller before this runs).
221///
222/// A peer is a target when it advertises a reachable peerAPI (Go `PeerAPIBase(p) != ""`) **and** is
223/// either owned by `self_user_id` **or** carries the file-sharing-target capability — Go's two-way
224/// OR. Sorted by MagicDNS name (Go sorts by `Node.Name`), falling back to the bare hostname.
225pub(crate) fn build_file_targets(peers: Vec<Node>, self_user_id: UserId) -> Vec<FileTarget> {
226    let mut targets: Vec<FileTarget> = peers
227        .into_iter()
228        .filter_map(|peer| {
229            // Must advertise a reachable peerAPI (Go `PeerAPIBase(p) != ""`).
230            let addr = peer.peerapi_addr()?;
231            // Same owner OR explicitly an ACL file-sharing target (Go's two-way OR).
232            let eligible = peer.user_id == self_user_id || peer.is_file_sharing_target();
233            if !eligible {
234                return None;
235            }
236            Some(FileTarget {
237                peerapi_url: format!("http://{addr}"),
238                node: peer,
239            })
240        })
241        .collect();
242    // Sort by MagicDNS name (Go sorts by `Node.Name`), bare hostname as the fallback key.
243    targets.sort_by(|a, b| {
244        let name = |t: &FileTarget| {
245            t.node
246                .fqdn_opt(false)
247                .unwrap_or_else(|| t.node.hostname.clone())
248        };
249        name(a).cmp(&name(b))
250    });
251    targets
252}
253
254#[cfg(test)]
255mod tests {
256    use ts_control::{Node, StableNodeId, TailnetAddress};
257
258    use super::*;
259
260    fn node(stable: &str, hostname: &str, tailnet: Option<&str>, ipv4: &str) -> Node {
261        Node {
262            id: 1,
263            stable_id: StableNodeId(stable.to_string()),
264            hostname: hostname.to_string(),
265            user_id: 0,
266            tailnet: tailnet.map(str::to_string),
267            tags: vec![],
268            tailnet_address: TailnetAddress {
269                ipv4: format!("{ipv4}/32").parse().unwrap(),
270                ipv6: "fd7a::1/128".parse().unwrap(),
271            },
272            node_key: [0u8; 32].into(),
273            node_key_expiry: None,
274            online: None,
275            last_seen: None,
276            key_signature: vec![],
277            machine_key: None,
278            disco_key: None,
279            accepted_routes: vec![],
280            underlay_addresses: vec![],
281            derp_region: None,
282            cap: Default::default(),
283            cap_map: Default::default(),
284            peerapi_port: None,
285            peerapi_dns_proxy: false,
286            is_wireguard_only: false,
287            exit_node_dns_resolvers: vec![],
288            peer_relay: false,
289            service_vips: Default::default(),
290        }
291    }
292
293    #[test]
294    fn status_node_display_name_prefers_fqdn() {
295        let with_tailnet = node("n1", "host", Some("ts.net"), "100.64.0.1");
296        assert_eq!(
297            StatusNode::from_node(&with_tailnet).display_name,
298            "host.ts.net"
299        );
300
301        let bare = node("n2", "solo", None, "100.64.0.2");
302        assert_eq!(StatusNode::from_node(&bare).display_name, "solo");
303    }
304
305    #[test]
306    fn status_node_addresses_and_online_surfaced() {
307        let n = node("n1", "host", Some("ts.net"), "100.64.0.7");
308        let s = StatusNode::from_node(&n);
309
310        assert_eq!(s.ipv4, "100.64.0.7".parse::<IpAddr>().unwrap());
311        assert_eq!(s.ipv6, "fd7a::1".parse::<IpAddr>().unwrap());
312        // A node with no online data surfaces `None` (unknown) — never a fabricated `false`.
313        assert_eq!(s.online, None);
314        assert_eq!(s.last_seen, None);
315
316        // A node whose domain online state is known surfaces it through StatusNode (no longer
317        // hardwired to None).
318        let mut online = node("n2", "up", Some("ts.net"), "100.64.0.8");
319        online.online = Some(true);
320        assert_eq!(StatusNode::from_node(&online).online, Some(true));
321
322        let mut offline = node("n3", "down", Some("ts.net"), "100.64.0.9");
323        offline.online = Some(false);
324        assert_eq!(StatusNode::from_node(&offline).online, Some(false));
325    }
326
327    #[test]
328    fn status_node_detects_exit_node() {
329        let mut not_exit = node("n1", "a", Some("ts.net"), "100.64.0.1");
330        not_exit.accepted_routes = vec!["100.64.0.1/32".parse().unwrap()];
331        assert!(!StatusNode::from_node(&not_exit).is_exit_node);
332
333        let mut exit = node("n2", "b", Some("ts.net"), "100.64.0.2");
334        exit.accepted_routes = vec![
335            "100.64.0.2/32".parse().unwrap(),
336            "0.0.0.0/0".parse().unwrap(),
337        ];
338        assert!(StatusNode::from_node(&exit).is_exit_node);
339
340        let mut exit6 = node("n3", "c", Some("ts.net"), "100.64.0.3");
341        exit6.accepted_routes = vec!["::/0".parse().unwrap()];
342        assert!(StatusNode::from_node(&exit6).is_exit_node);
343    }
344
345    #[test]
346    fn whois_caps_empty_when_node_has_none() {
347        // A node with no cap_map surfaces empty capabilities (not fabricated), and no user unless a
348        // profile was joined in.
349        let n = node("n1", "host", Some("ts.net"), "100.64.0.9");
350        let whois = WhoIs::from_node_with_user(n.clone(), None);
351
352        assert_eq!(whois.node, n);
353        assert_eq!(whois.user, None);
354        assert!(whois.capabilities.is_empty());
355    }
356
357    #[test]
358    fn whois_populates_capabilities_from_cap_map() {
359        // WhoIs surfaces the domain Node's cap_map verbatim, sorted by capability name (BTreeMap).
360        let mut n = node("n1", "host", Some("ts.net"), "100.64.0.9");
361        n.cap_map
362            .insert("https://tailscale.com/cap/is-admin".to_string(), vec![]);
363        n.cap_map.insert(
364            "cap/ssh".to_string(),
365            vec!["root".to_string(), "ubuntu".to_string()],
366        );
367        let whois = WhoIs::from_node_with_user(n, None);
368
369        // BTreeMap iteration is sorted: "cap/ssh" < "https://…".
370        assert_eq!(
371            whois.capabilities,
372            vec![
373                (
374                    "cap/ssh".to_string(),
375                    vec!["root".to_string(), "ubuntu".to_string()]
376                ),
377                ("https://tailscale.com/cap/is-admin".to_string(), vec![]),
378            ]
379        );
380    }
381
382    #[test]
383    fn whois_from_node_with_user_sets_user_and_caps() {
384        let mut n = node("n1", "host", Some("ts.net"), "100.64.0.9");
385        n.cap_map.insert("cap/x".to_string(), vec!["y".to_string()]);
386        let whois = WhoIs::from_node_with_user(n, Some("alice@example.com".to_string()));
387
388        assert_eq!(whois.user, Some("alice@example.com".to_string()));
389        assert_eq!(
390            whois.capabilities,
391            vec![("cap/x".to_string(), vec!["y".to_string()])]
392        );
393    }
394
395    /// Build a peer with a reachable peerAPI on `ipv4`, owned by `user`.
396    fn peer_with_peerapi(stable: &str, hostname: &str, ipv4: &str, user: UserId) -> Node {
397        let mut n = node(stable, hostname, Some("ts.net"), ipv4);
398        n.user_id = user;
399        n.peerapi_port = Some(8089);
400        n
401    }
402
403    #[test]
404    fn file_targets_includes_same_owner_peer_with_peerapi() {
405        let peer = peer_with_peerapi("p1", "host", "100.64.0.5", 42);
406        let targets = build_file_targets(vec![peer], 42);
407
408        assert_eq!(targets.len(), 1);
409        assert_eq!(targets[0].peerapi_url, "http://100.64.0.5:8089");
410        assert_eq!(targets[0].node.hostname, "host");
411    }
412
413    #[test]
414    fn file_targets_includes_cross_owner_peer_with_target_cap() {
415        // Different owner, but carries the file-sharing-target cap → still a target (Go's OR).
416        let mut peer = peer_with_peerapi("p1", "host", "100.64.0.5", 99);
417        peer.cap_map
418            .insert("tailscale.com/cap/file-sharing-target".to_string(), vec![]);
419        let targets = build_file_targets(vec![peer], 42);
420
421        assert_eq!(
422            targets.len(),
423            1,
424            "cross-owner peer with the target cap qualifies"
425        );
426    }
427
428    #[test]
429    fn file_targets_excludes_cross_owner_peer_without_cap() {
430        // Different owner and no target cap → excluded.
431        let peer = peer_with_peerapi("p1", "host", "100.64.0.5", 99);
432        let targets = build_file_targets(vec![peer], 42);
433
434        assert!(
435            targets.is_empty(),
436            "a different owner without the cap is not a target"
437        );
438    }
439
440    #[test]
441    fn file_targets_excludes_peer_without_peerapi() {
442        // Same owner, but advertises no peerAPI (no port) → excluded (Go `PeerAPIBase(p) == ""`).
443        let mut peer = peer_with_peerapi("p1", "host", "100.64.0.5", 42);
444        peer.peerapi_port = None;
445        let targets = build_file_targets(vec![peer], 42);
446
447        assert!(
448            targets.is_empty(),
449            "a peer with no peerAPI cannot be a Taildrop target"
450        );
451    }
452
453    #[test]
454    fn file_targets_sorted_by_magic_dns_name() {
455        // Insert out of order; expect sorted by fqdn ("alpha.ts.net" < "zeta.ts.net").
456        let zeta = peer_with_peerapi("p2", "zeta", "100.64.0.6", 42);
457        let alpha = peer_with_peerapi("p1", "alpha", "100.64.0.5", 42);
458        let targets = build_file_targets(vec![zeta, alpha], 42);
459
460        let names: Vec<_> = targets.iter().map(|t| t.node.hostname.clone()).collect();
461        assert_eq!(names, vec!["alpha", "zeta"]);
462    }
463
464    fn region_result(id: u32, latency_ms: u64) -> ts_netcheck::RegionResult {
465        ts_netcheck::RegionResult {
466            latency: std::time::Duration::from_millis(latency_ms),
467            id: ts_derp::RegionId(std::num::NonZeroU32::new(id).unwrap()),
468            latency_map_key: format!("{id}-v4"),
469            connected_remote: "1.2.3.4:443".parse().unwrap(),
470        }
471    }
472
473    #[test]
474    fn netcheck_report_preferred_is_first_region() {
475        // The measurer hands results sorted by latency ascending, so the first is the preferred
476        // (home) region and every region is surfaced.
477        let results = [
478            region_result(5, 12),
479            region_result(9, 40),
480            region_result(2, 88),
481        ];
482        let report = NetcheckReport::from_region_results(&results);
483        assert_eq!(
484            report.preferred_derp,
485            Some(5),
486            "lowest-latency region is preferred"
487        );
488        assert_eq!(report.region_latencies.len(), 3);
489        assert_eq!(report.region_latencies[0].region_id, 5);
490        assert_eq!(
491            report.region_latencies[0].latency,
492            std::time::Duration::from_millis(12)
493        );
494        // Order is preserved as given (latency-ascending from the measurer).
495        let ids: Vec<u32> = report
496            .region_latencies
497            .iter()
498            .map(|r| r.region_id)
499            .collect();
500        assert_eq!(ids, vec![5, 9, 2]);
501    }
502
503    #[test]
504    fn netcheck_report_empty_when_no_measurements() {
505        // Before any measurement (or when none was reachable): no preferred region, empty list — not
506        // a fabricated value.
507        let report = NetcheckReport::from_region_results(&[]);
508        assert_eq!(report, NetcheckReport::default());
509        assert_eq!(report.preferred_derp, None);
510        assert!(report.region_latencies.is_empty());
511    }
512}