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boatramp_node/
node.rs

1//! The node-graph assembly: given a built store (blobs + KV), a configured
2//! [`Auth`](boatramp_server::Auth), and resolved
3//! [`ServerOptions`](boatramp_server::ServerOptions), wire the deploy store,
4//! handler runtime, compute reconcile loop, and domain-verify reconcile loop
5//! into a [`RunningNode`] ready to hand to a transport (`serve_with` & friends).
6//!
7//! This is the headline extraction of `PLAN-node-library`: the binary's
8//! `serve::run` used to inline this wiring, so no embedder or in-process test
9//! could exercise the same graph the `boatramp serve` binary runs. `run` now
10//! resolves the *environment* (args -> backends -> store, signal handlers,
11//! migration, auth) and calls [`assemble`]; the cluster path keeps its own inline
12//! copy until a later step converges it here.
13
14use std::path::Path;
15use std::sync::Arc;
16
17use boatramp_core::deploy::DeployStore;
18use boatramp_core::kv::KvStore;
19use boatramp_core::Storage;
20
21use crate::config::ServerConfig;
22use crate::error::{Error, Result};
23
24/// How often the compute reconcile loop converges desired vs actual workloads.
25/// Defaults to 30s; override with `BOATRAMP_COMPUTE_RECONCILE_TICK_MS` (milliseconds)
26/// so compute-backed tests can converge in a fraction of a second instead of
27/// waiting a full tick for the launch/scale reconcile.
28pub fn compute_reconcile_tick() -> std::time::Duration {
29    std::env::var("BOATRAMP_COMPUTE_RECONCILE_TICK_MS")
30        .ok()
31        .and_then(|s| s.parse::<u64>().ok())
32        .filter(|&ms| ms > 0)
33        .map(std::time::Duration::from_millis)
34        .unwrap_or(std::time::Duration::from_secs(30))
35}
36/// How often the domain-verify reconcile loop re-checks pending challenges.
37pub const DOMAIN_VERIFY_RECONCILE_TICK: std::time::Duration = std::time::Duration::from_secs(60);
38/// How long a compute workload may be idle before scale-to-zero sleeps it.
39pub const COMPUTE_IDLE_TIMEOUT: std::time::Duration = std::time::Duration::from_secs(300);
40
41/// The built store + resolved config handed to [`assemble`]. Owns the blob/KV
42/// backends and the auth/options the caller already resolved; borrows the parsed
43/// config and data directory.
44pub struct NodeInput<'a> {
45    /// The full parsed server config (the handler + compute sections are read here).
46    pub config: &'a ServerConfig,
47    /// The node data directory (per-site SQL, handler state).
48    pub data_dir: &'a Path,
49    /// The object store built by [`crate::blobs::build_blobs`].
50    pub storage: Arc<dyn Storage>,
51    /// The metadata KV, already cache-fronted, built by [`crate::backends::build_kv`].
52    pub kv: Arc<dyn KvStore>,
53    /// The control-plane auth built by [`crate::auth::configure_auth`].
54    pub auth: boatramp_server::Auth,
55    /// Server options, already carrying the resolved posture, daemon runtime, and
56    /// (post-`configure_auth`/`configure_oidc`) issuer / OIDC verifier.
57    pub options: boatramp_server::ServerOptions,
58    /// The public HTTP serve bind address, if known — used (under
59    /// `allow_guest_self_egress`) to let a handler guest's `wasi:http` reach this
60    /// instance's own front door over loopback. `None` (an in-process embedder with no
61    /// listener) disables self-egress.
62    pub serve_addr: Option<std::net::SocketAddr>,
63    /// The cloud blob-change watch provider (FA-5b2), if the backend is a cloud one.
64    pub watch_provider: Option<Arc<dyn boatramp_core::blob_provision::WatchProvider>>,
65    /// The provisioning tier for the watch provider.
66    pub provision_tier: boatramp_core::blob_notify::ProvisionTier,
67    /// The `wasi:messaging` substrate override for the handler runtime. `None` uses
68    /// the single-node default (`LogMessaging` over the same backends); the cluster
69    /// path passes its Raft-backed coordinator.
70    pub messaging: Option<Arc<dyn boatramp_core::messaging::Messaging>>,
71    /// The single leader gate for cron firing + the compute / domain-verify reconcile
72    /// loops. Single-node passes an always-true gate (there is one node); the cluster
73    /// passes its Raft `is_leader` check so a single node drives each sweep.
74    pub is_leader: boatramp_server::CronLeaderGate,
75    /// This node's compute scheduler id (`0` single-node; the cluster node id in a
76    /// fleet, so replicas are tagged to the right node).
77    pub node_id: u64,
78    /// The binary the re-exec'd compute workers run as — the container backend's
79    /// `__sandbox` jailer and the microVM backends' `__vmm-run`/`__vz-run` VM hosts.
80    /// `None` uses this process's own executable (`current_exe`), which is what
81    /// `boatramp serve` wants (the child *is* boatramp). An **embedding harness**
82    /// whose own binary doesn't implement those subcommands should point this at a
83    /// built `boatramp` binary, so it can drive the real container/microVM backends
84    /// in-process (only the per-workload worker re-execs; the serving plane stays
85    /// embedded). The docker backend needs neither — it talks to a daemon.
86    pub worker_exe: Option<std::path::PathBuf>,
87}
88
89/// A fully wired node: the deploy store, handler runtime, auth, and options a
90/// transport consumes, plus the detached reconcile loops kept alive for the
91/// node's serving life. Destructure it and hold `reconcile` across the serve
92/// await so the loops outlive assembly.
93pub struct RunningNode {
94    /// The deploy store (blob + KV) the router serves from.
95    pub deploy: DeployStore,
96    /// The handler runtime for wasm handlers (a disabled build ⇒ a no-op runtime).
97    pub handlers: boatramp_server::HandlerRuntime,
98    /// The control-plane auth.
99    pub auth: boatramp_server::Auth,
100    /// The resolved server options.
101    pub options: boatramp_server::ServerOptions,
102    /// The detached reconcile loops (compute + domain-verify). Tokio `JoinHandle`s
103    /// do not abort on drop, so the loops run for the process life regardless; the
104    /// handles are retained so an embedder can join/abort them on shutdown.
105    pub reconcile: Vec<tokio::task::JoinHandle<()>>,
106}
107
108/// The instance's own serve socket(s) a guest self-call may reach, given the bind `addr` and
109/// whether the posture (`allow_guest_self_egress`) permits it. A wildcard bind
110/// (`0.0.0.0`/`::`) is reachable over loopback, so it normalizes to `127.0.0.1` **and** `::1`
111/// on the serve port; a specific bind is reachable at itself. Empty when disabled or no
112/// listener.
113fn self_egress_addrs(
114    addr: Option<std::net::SocketAddr>,
115    enabled: bool,
116) -> Vec<std::net::SocketAddr> {
117    use std::net::{IpAddr, Ipv4Addr, Ipv6Addr, SocketAddr};
118    let Some(addr) = addr.filter(|_| enabled) else {
119        return Vec::new();
120    };
121    if addr.ip().is_unspecified() {
122        let port = addr.port();
123        vec![
124            SocketAddr::new(IpAddr::V4(Ipv4Addr::LOCALHOST), port),
125            SocketAddr::new(IpAddr::V6(Ipv6Addr::LOCALHOST), port),
126        ]
127    } else {
128        vec![addr]
129    }
130}
131
132/// Whether a node with **no configured control-plane issuer** should auto-provision an ephemeral
133/// in-memory fleet signer (for host session cookies + delegable capabilities) from its serve bind.
134///
135/// The fleet signer is a distinct trust domain from control-plane admin auth, so a DEV / loopback
136/// node with auth disabled should still be able to sign/verify session cookies and capabilities. It
137/// is gated **strictly to a loopback bind** (`127.0.0.1`/`::1`) or an in-process embedder with no
138/// bind address (`None`): NEVER a public or wildcard (`0.0.0.0`/`::`, reachable off-host) bind,
139/// where an ephemeral key would silently invalidate live capabilities across a restart — a
140/// public node that wants guest capabilities without control-plane auth must supply a persistent
141/// key. (`is_loopback()` is already `false` for a wildcard/unspecified address, so a `0.0.0.0` bind
142/// correctly does NOT auto-provision.)
143#[cfg(feature = "handlers")]
144fn should_autoprovision_fleet_signer(serve_addr: Option<std::net::SocketAddr>) -> bool {
145    serve_addr.is_none_or(|a| a.ip().is_loopback())
146}
147
148/// Wire [`NodeInput`] into a [`RunningNode`]: build the handler runtime, the
149/// deploy store (materializing the reserved `default` project), the compute
150/// backends + reconcile loop, and the domain-verify reconcile loop.
151///
152/// The caller has already built the store and configured auth/OIDC on `options`;
153/// this is the pure node-graph wiring, identical to what `boatramp serve` runs.
154pub async fn assemble(input: NodeInput<'_>) -> Result<RunningNode> {
155    let NodeInput {
156        config,
157        data_dir,
158        storage,
159        kv,
160        auth,
161        options,
162        serve_addr,
163        watch_provider,
164        provision_tier,
165        messaging,
166        is_leader,
167        node_id,
168        worker_exe,
169    } = input;
170    // Copy out the posture scalars up front so `options` can be moved into the
171    // returned `RunningNode` without a lingering borrow.
172    let max_handler_blob_bytes = options.posture.max_handler_blob_bytes;
173    let max_component_bytes = options.posture.max_component_bytes;
174    let allow_guest_private_egress = options.posture.allow_guest_private_egress;
175    let allow_env_secret_refs = options.posture.allow_env_secret_refs;
176    let allow_guest_email = options.posture.allow_guest_email;
177    // The instance's own serve socket(s) a guest self-call may reach, when the posture allows
178    // it: a wildcard bind (`0.0.0.0`/`::`) is reachable on loopback, so normalize to
179    // `127.0.0.1`/`::1`; a specific bind is itself.
180    let self_egress_addrs = self_egress_addrs(serve_addr, options.posture.allow_guest_self_egress);
181    let allow_shared_kernel = options.posture.allow_shared_kernel_compute;
182    let domain_verify_allow_private = options.posture.domain_verify_allow_private;
183
184    // The deploy store the router serves from — built up front so the handler
185    // runtime's managed compute-backed `sql` binding can resolve DB endpoints from
186    // the same store the reconcile writes.
187    let compute_storage = storage.clone();
188    let deploy = DeployStore::new(storage, kv.clone());
189    // The `[secrets]` envelope (local KEK / Vault) that seals a managed SQL
190    // credential at rest. `None` ⇒ no wrapping (a managed DB then fails closed).
191    let secrets_envelope = build_secrets_envelope(config.secrets.as_ref(), data_dir)?;
192    // The project-scoped internal secret store, built from the same KV + `[secrets]`
193    // envelope that seal managed-DB credentials. Backs both the `boatramp:<name>`
194    // resolver (wired into the handler runtime below, when that feature is present)
195    // and the admin secrets API (threaded into `ServerOptions` unconditionally, so it
196    // works on a lean node too). `None` when no envelope is configured — the admin
197    // endpoints then fail closed with a clear 501, never a panic.
198    let secret_store = secrets_envelope.clone().map(|envelope| {
199        Arc::new(boatramp_core::secret_store::SecretStore::new(
200            kv.clone(),
201            envelope,
202        ))
203    });
204    // The project-scoped SMTP email-profile store, built from the same KV + envelope
205    // (the password is sealed at rest). Backs the admin API (`options` below,
206    // unconditionally, so it works on a lean node) and — when the `email` feature +
207    // `allow_guest_email` posture permit — the runtime's host-side profile
208    // resolution (wired inside `build_handler_runtime`). `None` with no envelope, so
209    // the admin email endpoints fail closed with a clear 501.
210    let email_profile_store = secrets_envelope.clone().map(|envelope| {
211        Arc::new(boatramp_core::email_config::EmailProfileStore::new(
212            kv.clone(),
213            envelope,
214        ))
215    });
216
217    // Dev-posture guest-egress extra CA(s): when the posture permits (off/refused under
218    // multi-tenant) AND the operator pointed `BOATRAMP_GUEST_EGRESS_EXTRA_CA_FILE` at a PEM, parse
219    // it into trust anchors the guest's outbound `wasi:http` TLS client trusts on TOP of the webpki
220    // roots (for a hermetic HTTPS test double). Empty otherwise. A configured-but-unreadable/
221    // unparsable file is a hard config error (fail closed), never a silent no-trust.
222    let guest_egress_extra_roots =
223        load_guest_egress_extra_roots(options.posture.allow_guest_egress_extra_ca)?;
224
225    // The handler runtime reuses the same blob/KV backends (per-site prefixed)
226    // for its wasi:blobstore/keyvalue bindings; the sql binding is selected by
227    // `[handlers.bindings.sql]` (default: per-site libsql files under <data-dir>).
228    let handlers = crate::handlers::build_handler_runtime(
229        kv.clone(),
230        compute_storage.clone(),
231        data_dir,
232        config.handlers.as_ref(),
233        messaging,
234        max_handler_blob_bytes,
235        max_component_bytes,
236        allow_guest_private_egress,
237        self_egress_addrs,
238        guest_egress_extra_roots,
239        allow_env_secret_refs,
240        allow_guest_email,
241        options.posture.require_tenancy_declaration,
242        options.posture.allow_cross_tenant_db,
243        &deploy,
244        secrets_envelope.clone(),
245    )
246    .await?;
247    // Wire the fleet session-cookie signer (R3, PLAN-tenancy-principal): the same issuer that mints
248    // control-plane tokens signs + verifies the host-issued anonymous session cookie AND the
249    // delegable capabilities (PLAN-delegable-capabilities). Handlers-gated: the session-cookie
250    // machinery lives on the handler runtime, so a lean (no-handlers) build has nothing to wire.
251    //
252    // The fleet signer is a DIFFERENT trust domain from control-plane admin auth (signing a
253    // customer's session cookie / an embed capability is not the authority to admit an operator to
254    // the control plane), but production derives it from the control-plane issuer for convenience.
255    // For a DEV / loopback node with control-plane auth disabled (`options.issuer` is `None`),
256    // auto-provision an EPHEMERAL in-memory Ed25519 fleet key so the guest-facing signer just works
257    // — session cookies + capability mint/verify — WITHOUT turning on control-plane auth. Strictly
258    // gated to a loopback bind (or an in-process embedder with no bind address): never on a public
259    // bind, where an ephemeral key would silently invalidate live capabilities across a restart (a
260    // public node that wants guest capabilities without control-plane auth must supply a persistent
261    // key). Ephemeral = issue + verify within one process run; nothing persisted, no cross-process
262    // or cross-deploy trust. Production is byte-identical: a real deploy supplies a control-plane key
263    // ⇒ `issuer` is `Some` ⇒ this fallback is never taken.
264    #[cfg(feature = "handlers")]
265    {
266        let fleet_signer = options.issuer.clone().or_else(|| {
267            should_autoprovision_fleet_signer(serve_addr).then(|| {
268                tracing::warn!(
269                    "control-plane auth is disabled and no signer is configured; auto-provisioning \
270                     an EPHEMERAL in-memory fleet signer (Ed25519) for host session cookies + \
271                     delegable capabilities on this loopback/dev node — regenerated each start, \
272                     never persisted. Configure a control-plane key (or a dedicated signer) for \
273                     production."
274                );
275                Arc::new(boatramp_core::cose::LocalSigner::generate(
276                    boatramp_core::cose::TokenAlg::Ed25519,
277                )) as Arc<dyn boatramp_core::cose::Signer>
278            })
279        });
280        if let Some(issuer) = fleet_signer {
281            handlers.set_session_signer(issuer);
282        }
283    }
284    // Enable guest capability minting (`boatramp:handlers/capability`, PLAN-delegable-capabilities)
285    // when the operator posture allows it. A minted capability is verified against the same fleet
286    // signer as the session cookie (wired just above), so this only enables the mint path + the TTL
287    // ceiling; posture-off (or a zero ceiling) ⇒ not offered (a guest `mint` is access-denied).
288    #[cfg(feature = "capability")]
289    if options.posture.allow_guest_mint_capability {
290        handlers.set_capability_minting(options.posture.max_guest_capability_ttl_secs);
291    }
292    // Per-project tenancy/capability posture overrides (Gap 4a): resolve each
293    // `[security.projects.<p>]` override against the fleet base so one serve process can run a
294    // strict-isolation project beside a looser one on a shared, multi-project machine. Empty ⇒
295    // every project uses the node base wired just above. Only these four in-project knobs are
296    // per-project; cross-project isolation stays structural (project = database).
297    #[cfg(feature = "handlers")]
298    {
299        let base = &options.posture;
300        let overrides: std::collections::BTreeMap<
301            String,
302            boatramp_core::security::ResolvedProjectTenancy,
303        > = config
304            .security
305            .as_ref()
306            .map(|s| {
307                s.projects
308                    .iter()
309                    .map(|(project, ovr)| (project.clone(), base.project_tenancy(ovr)))
310                    .collect()
311            })
312            .unwrap_or_default();
313        handlers.set_project_tenancy_overrides(overrides);
314    }
315    // Wire the guest project self-config capability (`boatramp:handlers/admin`) when the
316    // operator posture enables at least one surface. The controller reuses the same in-process
317    // domain-verify / email-profile / secret / site-config subsystems + the real domain probe;
318    // it's project-scoped per grant and rate-limited + audited. Posture-off ⇒ not offered.
319    #[cfg(feature = "admin")]
320    {
321        use boatramp_handlers::AdminSurface;
322        let p = &options.posture;
323        let mut surfaces = std::collections::BTreeSet::new();
324        if p.allow_guest_admin_domains {
325            surfaces.insert(AdminSurface::Domains);
326        }
327        if p.allow_guest_admin_email {
328            surfaces.insert(AdminSurface::Email);
329        }
330        if p.allow_guest_admin_site {
331            surfaces.insert(AdminSurface::Site);
332        }
333        if p.allow_guest_admin_secrets {
334            surfaces.insert(AdminSurface::Secrets);
335        }
336        if !surfaces.is_empty() {
337            let controller = Arc::new(boatramp_server::ServerAdminController::with_server_probe(
338                deploy.clone(),
339                email_profile_store.clone(),
340                secret_store.clone(),
341                p.domain_verify_allow_private,
342            ));
343            handlers.set_admin(controller, surfaces);
344        }
345    }
346    // Leader-gate cron firing (cluster: only the Raft leader fires; single-node: an
347    // always-true gate, equivalent to the unset default). The same gate drives the
348    // reconcile loops below, so all three converge on one leader per fleet. Only the
349    // handler runtime has a scheduler, so this is a no-op without the `handlers` feature.
350    #[cfg(feature = "handlers")]
351    handlers.set_cron_leader_gate(is_leader.clone());
352    // FA-5b2: on a cloud backend, wire the blob-change notification provisioner +
353    // its tier so adding a `blob` trigger provisions (and removing it retracts).
354    #[cfg(feature = "handlers")]
355    if let Some(provider) = watch_provider {
356        handlers.set_watch_provider(provider);
357        handlers.set_provision_tier(provision_tier);
358    }
359    #[cfg(not(feature = "handlers"))]
360    let _ = (watch_provider, provision_tier);
361
362    // Materialize the reserved `default` project so `project ls` / `project show
363    // default` reflect it on a fresh install, not only after a migration. Best
364    // effort: the reader backstop keeps listings correct even if this write can't
365    // land, so a transient failure must never block serving.
366    match deploy.ensure_default_project().await {
367        Ok(true) => tracing::info!("materialized the reserved `default` project record"),
368        Ok(false) => {}
369        Err(e) => tracing::warn!(
370            error = %e,
371            "could not materialize the `default` project record; readers use the synthesized default"
372        ),
373    }
374    // Wire the function-to-function invoke resolver now the deploy store exists,
375    // so a function granted `invoke` can call a sibling in-process (FI).
376    #[cfg(feature = "handlers")]
377    handlers.set_invoker(deploy.clone());
378
379    // Compute reconcile loop. Single-node is always the "leader". Backends are
380    // built from the `[compute]` config + capability detection; a no-op when none
381    // are registered. Detached for the server's life.
382    let (compute_backends, compute_node) = crate::compute::build_compute(
383        config.compute.as_ref(),
384        compute_storage,
385        data_dir,
386        node_id,
387        !allow_shared_kernel,
388        options.daemon_runtime.clone(),
389        worker_exe.as_deref(),
390    )
391    .await;
392    // Adopt the IPs of already-running replicas into each backend's fresh-on-boot
393    // IP pool BEFORE the reconcile loop starts allocating. A backend with a per-node
394    // pool (the native container backend) rebuilds it empty each process start; without
395    // this the boot reconcile could re-hand a live address to a different workload —
396    // the container-IP collision — or move a replica's endpoint on relaunch. Feeds
397    // every persisted replica's `(workload, replica, endpoint-ip)`; each backend keeps
398    // only the IPs in its own subnet (a cheap no-op for docker/cloudflare/VMM).
399    crate::compute::adopt_running_replica_ips(&deploy, &compute_backends).await;
400    // Per-project internal DNS (service discovery): start the resolver on the bridge
401    // gateway so a guest resolves peers by name within its project. On by default;
402    // starts only when the container backend + bridge are up (Linux). Detached for
403    // the node's serving life (pushed into `reconcile` below). Started before the
404    // reconcile loop consumes `compute_backends` — it borrows the registry to check
405    // the container backend is present.
406    let internal_dns =
407        crate::compute::spawn_internal_dns(config.compute.as_ref(), &compute_backends, &deploy);
408    // Activate the compute sql-shim (PLAN-compute-bindings): bind its listener +
409    // build the resolver when a sql provider and `compute.sql_shim_url` are both present.
410    #[cfg(feature = "handlers")]
411    let sql_resolver = boatramp_server::sql_shim::spawn_sql_shim(
412        handlers.sql_backends(),
413        config.compute.as_ref().and_then(|c| c.sql_shim_url.clone()),
414    )
415    .await;
416    #[cfg(not(feature = "handlers"))]
417    let sql_resolver: Option<Arc<dyn boatramp_core::compute::ComputeBindingResolver>> = None;
418
419    // Managed compute-backed SQL (PLAN-managed-compute-sql P2-b): if the handler
420    // `sql` config declares any managed database, inject its `POSTGRES_*`/`MYSQL_*`
421    // server-init env into the DB workload at launch from the sealed credential.
422    // Reaching here with a managed DB implies an envelope (build_handler_runtime
423    // fails closed otherwise), so the credential store always has one to seal with.
424    // Keep a clone of the secrets envelope for the operator-SQL capability below
425    // (the managed_db_resolver match moves the original).
426    #[cfg(any(feature = "sql-postgres", feature = "sql-mysql"))]
427    let operator_envelope = secrets_envelope.clone();
428    // …and a second clone for the tenant-deprovision capability (drops a deleted
429    // tenant's managed DB/role/credential on project/site delete). It needs a real
430    // envelope to seal/unseal + delete per-tenant credentials, so it is wired only
431    // when one is present (same fail-closed gating as the managed-DB paths).
432    #[cfg(any(feature = "sql-postgres", feature = "sql-mysql"))]
433    let deprovision_envelope = secrets_envelope.clone();
434    // …and a third clone for the soft-delete tombstone reaper (the leader-gated task
435    // that hard-drops a Shared-Postgres tenant once its grace window elapses). It, too,
436    // needs a real envelope to unseal the superuser credential + delete the per-tenant
437    // one on hard-drop.
438    #[cfg(any(feature = "sql-postgres", feature = "sql-mysql"))]
439    let reaper_envelope = secrets_envelope.clone();
440    #[cfg(any(feature = "sql-postgres", feature = "sql-mysql"))]
441    let managed_db_resolver: Option<Arc<dyn boatramp_core::compute::ManagedDbEnvResolver>> = match (
442        config
443            .handlers
444            .as_ref()
445            .and_then(|h| h.bindings.sql.as_ref()),
446        secrets_envelope,
447    ) {
448        (Some(sql), Some(envelope)) if !sql.databases.is_empty() => {
449            let creds = crate::managed_sql::ManagedSqlCredentials::new(kv.clone(), envelope);
450            let privilege = config
451                .compute
452                .as_ref()
453                .map(|c| c.managed_db_privilege)
454                .unwrap_or_default();
455            let env =
456                crate::managed_sql::ManagedDbEnv::from_config(&sql.databases, creds, privilege);
457            (!env.is_empty()).then(|| Arc::new(env) as Arc<_>)
458        }
459        _ => None,
460    };
461    #[cfg(not(any(feature = "sql-postgres", feature = "sql-mysql")))]
462    let managed_db_resolver: Option<Arc<dyn boatramp_core::compute::ManagedDbEnvResolver>> = None;
463
464    // Turnkey managed DB: auto-register the compute workload(s) backing each managed
465    // co-located database that has none yet, so declaring the `databases` binding is
466    // enough to boot the DB (no separate `compute set` / apply). Tenant-aware — a
467    // `Shared` binding registers its one shared server; a `Single` binding registers
468    // nothing at boot (its per-tenant `<compute>-<ident>` is created durably by the lazy
469    // resolve on first `sql` use and relaunched by the reconcile, so a project that never
470    // uses `sql` — e.g. a static-only site — never gets a spurious DB). Non-clobbering +
471    // idempotent; runs before the reconcile loop so its first tick can launch what it
472    // registered.
473    #[cfg(any(feature = "sql-postgres", feature = "sql-mysql"))]
474    if let Some(sql) = config
475        .handlers
476        .as_ref()
477        .and_then(|h| h.bindings.sql.as_ref())
478        .filter(|sql| !sql.databases.is_empty())
479    {
480        crate::managed_sql::auto_register_managed_db_workloads(&deploy, &sql.databases).await;
481    }
482
483    // Operator SQL capability (managed-DB migrations/queries via the sealed credential, resolved
484    // server-side) — backs `POST /api/sql/{db}/{exec,query}`. The SAME concrete NodeOperatorSql
485    // also backs the owner-gated schema-migration runner (which reuses its owner + superuser
486    // backends), so build it ONCE and share it.
487    // Build the SAME concrete NodeOperatorSql once (when a managed DB is configured) and share it:
488    // it backs both `operator_sql` (the sql exec/query cap) and the migration runner (which reuses
489    // its owner + superuser backends). Two separate bindings so neither annotation is a complex type.
490    // The migration substrate is a single dispatcher (crate::managed_sql::DispatchMigrationRunner)
491    // routing each `(project, db)` to its engine's substrate: the sqlx NodeMigrationRunner for a
492    // Postgres/MySQL binding, the LibsqlMigrationRunner for a `libsql` binding. It compiles whenever a
493    // sqlx engine OR `migrate` (⇒ libsql) is on, so the embedded-libsql default can migrate even on a
494    // node with no external sqlx engine. `operator_sql` (the `POST /api/sql/{db}/{exec,query}` cap)
495    // stays sqlx-only — a libsql file has no operator-SQL/credential seam.
496    #[cfg(any(feature = "sql-postgres", feature = "sql-mysql"))]
497    let operator_sql: Option<Arc<dyn boatramp_core::sql::OperatorSql>>;
498    // Late-init: the match arms assign it (and, under sqlx, `operator_sql` in the same block), and the
499    // arms differ by feature-cfg — so a direct `let … = match {…}` would need cfg'd arm bodies. The
500    // late-init keeps that readable; the value is always assigned before use.
501    #[cfg(any(feature = "sql-postgres", feature = "sql-mysql", feature = "migrate"))]
502    #[allow(clippy::needless_late_init)]
503    let migration_substrate: Option<Arc<dyn boatramp_core::sql::MigrationSubstrate>>;
504    #[cfg(any(feature = "sql-postgres", feature = "sql-mysql", feature = "migrate"))]
505    match config
506        .handlers
507        .as_ref()
508        .and_then(|h| h.bindings.sql.as_ref())
509        .filter(|sql| !sql.databases.is_empty())
510    {
511        Some(sql) => {
512            // The sqlx (Postgres/MySQL) arm — the shared NodeOperatorSql backs both the operator-SQL
513            // cap and the sqlx migration runner. Only built when a sqlx engine is compiled in.
514            #[cfg(any(feature = "sql-postgres", feature = "sql-mysql"))]
515            let node_op = Arc::new(crate::managed_sql::NodeOperatorSql::new(
516                sql.databases.clone(),
517                kv.clone(),
518                operator_envelope,
519                deploy.clone(),
520            ));
521            // The operator's trusted-extension allowlist — the only extensions a migration may
522            // enable (empty ⇒ none). See ExternalSqlConfig::migrate_trusted_extensions.
523            #[cfg(any(feature = "sql-postgres", feature = "sql-mysql"))]
524            let trusted: std::collections::BTreeSet<String> = sql
525                .migrate_trusted_extensions
526                .clone()
527                .unwrap_or_default()
528                .into_iter()
529                .collect();
530            migration_substrate = Some(Arc::new(crate::managed_sql::DispatchMigrationRunner::new(
531                #[cfg(any(feature = "sql-postgres", feature = "sql-mysql"))]
532                node_op.clone(),
533                #[cfg(any(feature = "sql-postgres", feature = "sql-mysql"))]
534                trusted,
535                #[cfg(feature = "migrate")]
536                sql.databases.clone(),
537            ))
538                as Arc<dyn boatramp_core::sql::MigrationSubstrate>);
539            #[cfg(any(feature = "sql-postgres", feature = "sql-mysql"))]
540            {
541                operator_sql = Some(node_op as Arc<dyn boatramp_core::sql::OperatorSql>);
542            }
543        }
544        None => {
545            #[cfg(any(feature = "sql-postgres", feature = "sql-mysql"))]
546            {
547                operator_sql = None;
548            }
549            migration_substrate = None;
550        }
551    }
552    // When only `migrate` (no sqlx) is compiled, the operator-SQL cap does not exist.
553    #[cfg(all(
554        not(any(feature = "sql-postgres", feature = "sql-mysql")),
555        feature = "migrate"
556    ))]
557    let operator_sql: Option<Arc<dyn boatramp_core::sql::OperatorSql>> = None;
558    #[cfg(not(any(feature = "sql-postgres", feature = "sql-mysql", feature = "migrate")))]
559    let migration_substrate: Option<Arc<dyn boatramp_core::sql::MigrationSubstrate>> = None;
560    #[cfg(not(any(feature = "sql-postgres", feature = "sql-mysql", feature = "migrate")))]
561    let operator_sql: Option<Arc<dyn boatramp_core::sql::OperatorSql>> = None;
562
563    // Tenant-deprovision capability (drop a deleted tenant's managed DB/role/sealed
564    // credential on project/site delete). Wired only when a compute-backed managed
565    // database + a secrets envelope are both present — same gating as operator_sql,
566    // plus the envelope requirement (it must seal/unseal per-tenant credentials).
567    // The soft-delete grace window for a Shared-Postgres managed tenant
568    // (`handlers.bindings.sql.deprovision_grace_secs`, env-settable). Default 7 days;
569    // `0` disables the soft path (immediate hard drop). Threaded to the deprovisioner
570    // (which soft-deletes) and implicitly honored by the reaper (which only ever finds
571    // tombstones a >0 grace produced).
572    #[cfg(any(feature = "sql-postgres", feature = "sql-mysql"))]
573    let deprovision_grace_secs = config
574        .handlers
575        .as_ref()
576        .and_then(|h| h.bindings.sql.as_ref())
577        .and_then(|sql| sql.deprovision_grace_secs)
578        .unwrap_or(crate::tenant_sql::DEFAULT_DEPROVISION_GRACE_SECS);
579    #[cfg(any(feature = "sql-postgres", feature = "sql-mysql"))]
580    let tenant_deprovisioner: Option<Arc<dyn boatramp_core::sql::TenantDeprovisioner>> = config
581        .handlers
582        .as_ref()
583        .and_then(|h| h.bindings.sql.as_ref())
584        .filter(|sql| !sql.databases.is_empty())
585        .zip(deprovision_envelope)
586        .map(|(sql, envelope)| {
587            Arc::new(crate::tenant_sql::NodeTenantDeprovisioner::new(
588                deploy.clone(),
589                kv.clone(),
590                envelope,
591                sql.databases.clone(),
592                deprovision_grace_secs,
593            )) as Arc<_>
594        });
595    #[cfg(not(any(feature = "sql-postgres", feature = "sql-mysql")))]
596    let tenant_deprovisioner: Option<Arc<dyn boatramp_core::sql::TenantDeprovisioner>> = None;
597
598    // Operator compute-exec capability (run a command inside a running workload) —
599    // backs `POST /api/compute/{name}/exec`, gated by the `allow_compute_exec`
600    // posture. Clone the backend registry before the reconcile loop consumes it.
601    let compute_exec: Option<Arc<dyn boatramp_core::compute::ComputeExec>> = Some(Arc::new(
602        crate::compute::NodeComputeExec::new(compute_backends.clone(), deploy.clone()),
603    ) as Arc<_>);
604
605    // Operator volume-reclamation capability (list + remove persistent volumes) —
606    // backs `GET /api/compute/volumes` + `DELETE /api/compute/volumes/{name}`.
607    // Same admin-scoped `/api/compute/*` gate; clone the registry before the
608    // reconcile loop consumes the original below.
609    let compute_volumes: Option<Arc<dyn boatramp_core::compute::ComputeVolumes>> = Some(Arc::new(
610        crate::compute::NodeComputeVolumes::new(compute_backends.clone(), deploy.clone()),
611    )
612        as Arc<_>);
613
614    // Operator reconcile-plane control capability (restart a replica) — backs
615    // `POST /api/compute/maintenance/restart` (admin-scoped). Clone the registry
616    // before the reconcile loop consumes the original below.
617    let compute_control: Option<Arc<dyn boatramp_core::compute::ComputeControl>> = Some(Arc::new(
618        crate::compute::NodeComputeControl::new(compute_backends.clone(), deploy.clone()),
619    )
620        as Arc<_>);
621
622    let compute_reconcile = boatramp_server::spawn_compute_reconcile(
623        deploy.clone(),
624        compute_backends,
625        vec![compute_node],
626        boatramp_core::compute::BackendPolicy::from_shared_kernel_allowed(allow_shared_kernel),
627        is_leader.clone(),
628        compute_reconcile_tick(),
629        COMPUTE_IDLE_TIMEOUT,
630        sql_resolver,
631        managed_db_resolver,
632    );
633
634    // Tenant tombstone reaper: leader-gated hard-drop of soft-deleted Shared-Postgres
635    // tenants past their grace window (safe deprovision — see `tenant_sql`). Wired only
636    // when a compute-backed managed database + a secrets envelope are both present
637    // (same gating as the deprovisioner); each tombstone carries its own server +
638    // superuser, so the reaper needs no per-binding config. A `0` grace never writes a
639    // tombstone, so the sweep is simply inert then.
640    #[cfg(any(feature = "sql-postgres", feature = "sql-mysql"))]
641    let tombstone_reaper: Option<tokio::task::JoinHandle<()>> = config
642        .handlers
643        .as_ref()
644        .and_then(|h| h.bindings.sql.as_ref())
645        .filter(|sql| !sql.databases.is_empty())
646        .zip(reaper_envelope)
647        .map(|(_sql, envelope)| {
648            crate::tenant_sql::spawn_tenant_tombstone_reaper(
649                deploy.clone(),
650                kv.clone(),
651                envelope,
652                is_leader.clone(),
653                crate::tenant_sql::TOMBSTONE_REAPER_TICK,
654            )
655        });
656    #[cfg(not(any(feature = "sql-postgres", feature = "sql-mysql")))]
657    let tombstone_reaper: Option<tokio::task::JoinHandle<()>> = None;
658
659    // Domain-verify auto-complete: periodically re-check every site's pending
660    // ownership challenges and attach any that now pass — a published token (e.g.
661    // via `domain add --provider`) converges without a manual `domain verify`.
662    let dv_reconcile = boatramp_server::spawn_domain_verify_reconcile(
663        deploy.clone(),
664        domain_verify_allow_private,
665        is_leader,
666        DOMAIN_VERIFY_RECONCILE_TICK,
667    );
668
669    // Wire the operator capabilities onto the options the router is built from.
670    let mut options = options;
671    options.operator_sql = operator_sql;
672    options.migration_substrate = migration_substrate;
673    options.tenant_deprovisioner = tenant_deprovisioner;
674    options.compute_exec = compute_exec;
675    options.compute_volumes = compute_volumes;
676    options.compute_control = compute_control;
677    // The internal secret store backs the admin secrets API (set/list/delete). Not
678    // handlers-gated — it must be reachable even on a lean node.
679    options.secret_store = secret_store;
680    // The email-profile store backs the admin API (`/api/email/profiles`); like the
681    // secret store it is not handlers-gated, so it works on a lean node.
682    options.email_profile_store = email_profile_store;
683
684    // The detached reconcile loops: the always-present compute + domain-verify ones,
685    // plus the optional tenant-tombstone reaper (only when a managed DB is configured).
686    let mut reconcile = vec![compute_reconcile, dv_reconcile];
687    if let Some(reaper) = tombstone_reaper {
688        reconcile.push(reaper);
689    }
690    if let Some(dns) = internal_dns {
691        reconcile.push(dns);
692    }
693
694    Ok(RunningNode {
695        deploy,
696        handlers,
697        auth,
698        options,
699        reconcile,
700    })
701}
702
703/// Build the `[secrets]` envelope (secrets-at-rest wrapping) from `boatramp.cfg`'s
704/// `[secrets]` section: `local` (a machine-local AES-256-GCM KEK) or `vault` (Vault
705/// Env var an operator points at a PEM file of extra CA(s) the guest's outbound `wasi:http` TLS
706/// client should trust on top of the webpki roots — honored only under the
707/// `allow_guest_egress_extra_ca` posture (a hermetic HTTPS test double lever).
708const GUEST_EGRESS_EXTRA_CA_ENV: &str = "BOATRAMP_GUEST_EGRESS_EXTRA_CA_FILE";
709
710/// Parse the operator's guest-egress extra-CA PEM ([`GUEST_EGRESS_EXTRA_CA_ENV`]) into rustls trust
711/// anchors, gated by the `allow_guest_egress_extra_ca` posture (`allow`). No env set ⇒ empty (the
712/// default). `allow == false` (e.g. multi-tenant) with a file set ⇒ empty + a warning (the posture
713/// refuses it). Set + readable + ≥1 cert ⇒ those certs. Set-but-unreadable / no valid cert ⇒ a hard
714/// error (fail closed — a configured-but-broken CA must not silently degrade to no-trust).
715fn load_guest_egress_extra_roots(
716    allow: bool,
717) -> Result<Vec<rustls::pki_types::CertificateDer<'static>>> {
718    let path = match std::env::var(GUEST_EGRESS_EXTRA_CA_ENV) {
719        Ok(p) if !p.is_empty() => p,
720        _ => return Ok(Vec::new()),
721    };
722    if !allow {
723        tracing::warn!(
724            env = GUEST_EGRESS_EXTRA_CA_ENV,
725            "ignoring a guest-egress extra CA: the security posture forbids it \
726             (allow_guest_egress_extra_ca is off — e.g. under multi-tenant)"
727        );
728        return Ok(Vec::new());
729    }
730    let pem =
731        std::fs::read(&path).map_err(|e| Error::GuestEgressCa(format!("reading {path:?}: {e}")))?;
732    let certs = rustls_pemfile::certs(&mut std::io::BufReader::new(&pem[..]))
733        .collect::<std::result::Result<Vec<_>, _>>()
734        .map_err(|e| Error::GuestEgressCa(format!("parsing {path:?}: {e}")))?;
735    if certs.is_empty() {
736        return Err(Error::GuestEgressCa(format!(
737            "{path:?} contained no PEM certificate"
738        )));
739    }
740    tracing::info!(
741        env = GUEST_EGRESS_EXTRA_CA_ENV,
742        count = certs.len(),
743        path = %path,
744        "guest egress trusts operator extra CA(s) (dev-posture; webpki roots still apply)"
745    );
746    Ok(certs)
747}
748
749/// Transit). `None`/empty ⇒ no wrapping. The Vault token is read from the
750/// environment (`token_env`), never a file. This seals a managed SQL credential at
751/// rest; a managed database fails closed without it.
752fn build_secrets_envelope(
753    secrets: Option<&crate::config::SecretsConfig>,
754    data_dir: &Path,
755) -> Result<Option<Arc<dyn boatramp_core::envelope::KeyEnvelope>>> {
756    use boatramp_server::envelope::{build_envelope, EnvelopeSpec};
757    let Some(cfg) = secrets else {
758        return Ok(None);
759    };
760    let spec = match cfg.envelope.as_str() {
761        "" => EnvelopeSpec::None,
762        "local" => EnvelopeSpec::Local {
763            kek_file: cfg
764                .kek_file
765                .clone()
766                .unwrap_or_else(|| data_dir.join("secrets/kek")),
767        },
768        "vault" => {
769            let v = cfg.vault.as_ref().ok_or_else(|| {
770                Error::Envelope(
771                    "secrets.envelope = \"vault\" needs a [secrets.vault] section".into(),
772                )
773            })?;
774            let token = std::env::var(&v.token_env).map_err(|_| {
775                Error::Envelope(format!("Vault token env `{}` is not set", v.token_env))
776            })?;
777            EnvelopeSpec::Vault {
778                addr: v.addr.clone(),
779                key: v.key.clone(),
780                token,
781            }
782        }
783        other => {
784            return Err(Error::Envelope(format!(
785                "unknown secrets.envelope {other:?} (want \"local\" or \"vault\")"
786            )))
787        }
788    };
789    build_envelope(spec).map_err(|e| Error::Envelope(e.to_string()))
790}
791
792#[cfg(all(test, feature = "fs"))]
793mod tests {
794    use super::*;
795    use boatramp_core::kv::MemoryKv;
796    use boatramp_core::security::SecurityProfile;
797
798    /// The dev/loopback ephemeral fleet-signer auto-provision is gated STRICTLY to a loopback bind
799    /// (or an in-process embedder with no bind): a public / wildcard / private-network bind must
800    /// NOT silently provision an ephemeral signing key (it would invalidate live capabilities on a
801    /// restart — such a node must supply a persistent key). This is the security-critical boundary.
802    #[cfg(feature = "handlers")]
803    #[test]
804    fn ephemeral_fleet_signer_auto_provisions_only_on_loopback_or_in_process() {
805        use std::net::SocketAddr;
806        let sa = |s: &str| s.parse::<SocketAddr>().unwrap();
807        // In-process (no listener) and loopback → auto-provision the dev fleet signer.
808        assert!(should_autoprovision_fleet_signer(None));
809        assert!(should_autoprovision_fleet_signer(Some(sa(
810            "127.0.0.1:8080"
811        ))));
812        assert!(should_autoprovision_fleet_signer(Some(sa("[::1]:8080"))));
813        // Off-host-reachable binds MUST NOT auto-provision an ephemeral key: a public IP, a
814        // private-network IP, and a wildcard bind (`0.0.0.0`/`::`, reachable off-host).
815        assert!(!should_autoprovision_fleet_signer(Some(sa(
816            "203.0.113.5:8080"
817        ))));
818        assert!(!should_autoprovision_fleet_signer(Some(sa(
819            "10.0.0.4:8080"
820        ))));
821        assert!(!should_autoprovision_fleet_signer(Some(sa("0.0.0.0:8080"))));
822        assert!(!should_autoprovision_fleet_signer(Some(sa("[::]:8080"))));
823    }
824
825    /// The headline in-process fidelity check (PLAN-node-library N2b.3): `assemble`
826    /// over a temp `FsStorage` + `MemoryKv` produces a `RunningNode` whose deploy
827    /// store is live (the reserved `default` project was materialized during
828    /// assembly) and whose router — the exact one `boatramp serve` builds — answers
829    /// `/healthz`. No listener is bound: the request is driven through the router
830    /// via `tower::oneshot`, so the whole assembly runs in-process.
831    #[tokio::test]
832    async fn assemble_produces_a_serving_node_over_a_temp_store() {
833        use axum::body::Body;
834        use axum::http::{Request, StatusCode};
835        use tower::ServiceExt;
836
837        let tmp = tempfile::tempdir().unwrap();
838        let storage: Arc<dyn Storage> = Arc::new(boatramp_storage::FsStorage::new(tmp.path()));
839        let kv: Arc<dyn KvStore> = Arc::new(MemoryKv::new());
840        let config = ServerConfig::default();
841        let options = boatramp_server::ServerOptions {
842            // The strict `multi-tenant` posture, as an unconfigured `serve` resolves.
843            posture: SecurityProfile::MultiTenant.preset(),
844            ..Default::default()
845        };
846
847        let node = assemble(NodeInput {
848            config: &config,
849            data_dir: tmp.path(),
850            storage,
851            kv,
852            auth: boatramp_server::Auth::disabled(),
853            options,
854            serve_addr: None,
855            watch_provider: None,
856            provision_tier: boatramp_core::blob_notify::ProvisionTier::default(),
857            messaging: None,
858            is_leader: Arc::new(|| true),
859            node_id: 0,
860            worker_exe: None,
861        })
862        .await
863        .expect("assemble a node over a temp store");
864
865        // The deploy store is live: `assemble` already materialized the reserved
866        // `default` project, so a second ensure reports "already present" (`false`).
867        assert!(
868            !node
869                .deploy
870                .ensure_default_project()
871                .await
872                .expect("read the default project"),
873            "assemble should have materialized the default project"
874        );
875
876        // The assembled router (the same wiring `serve` binds) answers /healthz.
877        let router =
878            boatramp_server::router_with(node.deploy, node.auth, node.handlers, node.options);
879        let response = router
880            .oneshot(
881                Request::builder()
882                    .uri("/healthz")
883                    .body(Body::empty())
884                    .unwrap(),
885            )
886            .await
887            .expect("route /healthz");
888        assert_eq!(response.status(), StatusCode::OK);
889    }
890}