# CB-308 — Multi-Host Federation (Stage 5) **Status:** design note (proposal) — core design decisions resolved 2026-08-10 (§7) **Depends on:** CB-307 (broker-based reliable delivery) — CB-308 is the multi-host layer built *on* CB-307's broker fabric. **Relates to:** CB-401 (`PeerHandle` opaque id), CB-304 (`rosterView`), CB-306 (spawn-readiness), CB-303 (lifecycle limits), CB-117 (orphan reap). ## 1. Goal Let `claude-bridge` coordinate agents that live on **more than one host** — a primary on host A delegating to workers on hosts B, C, … — without any host learning another host's terminals. The bus stays a **provider-neutral communication fabric**; multi-host is an addressing + routing concern, not a new kind of peer. The design rests on three pieces (the shape this ticket proposes): 1. **Dedicated per-agent channels** — every agent has its own addressable inbox on the broker. 2. **A federated agent directory** — a global "who/where/status" lookup, assembled from per-host presence, not a central database. 3. **A per-host gateway** — each host runs a `fleetd` that owns its local herdr, registers/manages its own sessions, and proxies messages to/from other hosts over the broker. ## 2. What is single-host today (the assumptions to break) ```mermaid flowchart TB subgraph host["Single host (today)"] primary["primary
(MCP client)"] daemon["fleetd daemon
127.0.0.1:8765"] reg["in-process registry
keyed by PeerHandle.id() == paneId"] herdr["herdr
(local unix-socket PTY mux)"] w1["worker pane wQ:p1"] w2["worker pane wQ:p2"] primary --> daemon daemon --> reg daemon --> herdr herdr --> w1 herdr --> w2 end ``` *Figure 1 — everything is co-located and loopback.* Three concrete bake-ins assume one host: | Assumption | Where | Why it blocks multi-host | |---|---|---| | **herdr is local** | `herdr/` unix socket `~/.config/herdr/herdr.sock` | You cannot drive another host's PTYs → each host **must** own its herdr. This is why a per-host gateway is mandatory. | | **registry is in-process, keyed by `paneId`** | `session/SessionManager` | `paneId` (e.g. `wQ:p2B`) is a herdr-local coordinate — meaningless off-host. Routing needs a host-unique id. | | **loopback, no authn** | `rest/FleetApp` binds `127.0.0.1:8765` | Fine on one host; the moment a second host can talk to a gateway, that link is a trust boundary. | ## 3. Target architecture ```mermaid flowchart TB subgraph hostA["HOST A"] gA["gateway = fleetd A"] regA["local registry + herdr"] primary["primary (MCP client)"] gA --- regA primary --- gA end subgraph hostB["HOST B"] gB["gateway = fleetd B"] regB["local registry + herdr"] wb["worker panes"] gB --- regB gB --- wb end subgraph broker["BROKER (LavinMQ / AMQP) — CB-307 fabric"] inbox["agent.<id>.inbox queues"] roster["roster.* presence topic"] dlq["DLQ · delayed-retry (remind)"] end gA -->|"publish to agent.<id>.inbox"| inbox gB -->|"publish to agent.<id>.inbox"| inbox inbox -->|"owning gateway consumes"| gA inbox -->|"owning gateway consumes"| gB gA -->|"announce local agents"| roster gB -->|"announce local agents"| roster roster -->|"union view"| gA roster -->|"union view"| gB ``` *Figure 2 — each gateway owns its local herdr + registry, consumes only its own agents' inboxes, and announces its agents onto a shared presence topic. The broker routes; no host sees another host's terminals.* ### 3.1 Component mapping (the three pieces) - **Dedicated per-agent channels** = a per-agent AMQP routing key / queue, e.g. `agent..inbox`. The agent's **owning gateway is the only consumer** of its inbox. Senders publish to `agent..inbox` and never need to know the agent's host — the broker routes to whichever gateway holds it. LavinMQ additionally gives durability, DLX, and a native delayed-message exchange (the remind/backoff loop for free) — the same reasons CB-307 picked it. - **Federated agent directory** = a **soft-state, bridge-owned** roster, *not* a broker-stored database. Per the persistence-boundary decision (fleetd is soft-state; the broker owns *message* durability, not *who/where/status*), each gateway announces its local agents `(globalId, host, status, capabilities)` on a `roster.*` presence topic with periodic heartbeats. Every gateway builds an eventually-consistent **union view** — literally CB-304's `rosterView`, federated. A stale entry expires by missed heartbeat (reuses CB-303's idle/TTL thinking). - **Per-host gateway** = today's `fleetd` daemon, evolved. It already registers/manages sessions and controls its local herdr; multi-host adds exactly two responsibilities: (a) a broker client that consumes its agents' inboxes and injects into local herdr, and (b) presence announce + union-roster assembly. Evolution, not rewrite. ### 3.2 Routing rule ```mermaid flowchart LR send["fleet_send(globalId, msg)"] --> lookup{"directory:
is globalId local?"} lookup -->|"yes"| local["inject via local herdr
(today's Injector path)"] lookup -->|"no"| pub["publish agent.<id>.inbox
(broker routes to owning gateway)"] pub --> consume["owning gateway consumes
→ injects into its local herdr"] ``` *Figure 3 — one fork: local agents keep today's in-process inject path; remote agents go over the broker. A sender is oblivious to which branch it took.* ## 4. What CB-307 already provides vs. what is net-new **CB-307 delivers the transport half** and is independently valuable on a single host: the AMQP broker fabric, the `fleetd → broker` client/adapter, at-least-once + idempotent (dedup-by-id) delivery, DLQ, and delayed-retry (remind). That *is* the "proxy cross-host message" backbone; extending the same broker from "worker→primary reliability" to "gateway↔gateway" is incremental. **Net-new for CB-308 (multi-host), five items:** 1. **Global agent id** — decouple the routing key from `paneId`. CB-401's `PeerHandle` already abstracts the routing id; make it host-unique (e.g. `/` or a UUID minted at spawn). The registry and all verbs route on the global id. 2. **Federated directory** — presence announce + heartbeat + union roster over `roster.*` (§3.1). 3. **Gateway routing** — the `local ? inject : publish` fork (§3.2), plus each gateway consuming its own agents' inbox queues and injecting into local herdr. 4. **Cross-host spawn** — `spawn on host B` = publish a control request to B's control channel → gateway B runs `ClaudeCodeLauncher.spawn` **locally** (CB-306's readiness gate becomes *more* valuable here: the far side wants a positive "agent ready" before anyone sends) → announces the new agent into the federated roster. 5. **Trust** — the broker connection is now the security boundary. A gateway injects env/tokens at daemon privilege (the CB-401 Stage-C concern), so a **remote-triggered spawn/send** needs authn/authz: who may act on which host, and which control channels a gateway will honour. *Authenticity* is resolved — signed messages, §7.1; *authorization* (who may do what) remains open — §8. ## 5. The one thing the broker does NOT dissolve The MCP asymmetry survives the network. The primary is an MCP **client** to its **local** gateway; it cannot be called into. A worker on B replying to a primary on A flows: ```mermaid sequenceDiagram participant W as worker (host B) participant GB as gateway B participant BR as broker participant GA as gateway A participant P as primary (host A, MCP client) W->>GB: fleet_reply GB->>BR: publish primary-bound (durable, msg id) BR->>GA: route to A's primary inbox Note over GA: held durably until the primary pulls P->>GA: blocking fleet_send resolves / fleet_poll GA-->>P: reply (then ACK to broker) ``` *Figure 4 — the broker makes the middle hop lossless, ordered, and idempotent; the **final** hop into the primary is still a **pull** (gateway A holds the message until the primary's blocking `fleet_send` or `fleet_poll`). Cross-host neither improves nor worsens this — it just spans hosts. This is precisely the gap CB-307 closes on one host and CB-308 stretches across hosts.* ## 6. Staging & dependencies ```mermaid flowchart LR cb307["CB-307
broker-based reliable delivery
(single host first)"] --> cb308["CB-308
multi-host federation
(this note)"] cb308 --> a["global agent id"] cb308 --> b["federated directory"] cb308 --> c["gateway routing"] cb308 --> d["cross-host spawn"] cb308 --> e["cross-host trust model"] classDef gate fill:#b7791f,stroke:#7b341e,color:#ffffff; class e gate ``` *Figure 5 — CB-307 is the foundation; CB-308's five items build on it. The trust model (e) is the gating concern before any host accepts remote control.* **Recommendation:** keep CB-307 scoped to single-host broker reliability (foundation, independently useful), and build CB-308's items on top once the broker fabric exists. Choose CB-307's broker / channel naming **multi-host-ready** now (per-agent routing keys, a `roster.*` topic namespace) so CB-308 doesn't have to repaint the topology. ## 7. Resolved design decisions (2026-08-10) Settled in a design review of this note + wiki chapter 10. The broker-level operational rules (inbox caps, TLS + private broker, schema versioning, trace id, exclusive consumers, U8 broadcast) are recorded in wiki 10 §10; the CB-308-side decisions are below. Entries 1–6 are the first-pass decisions; 7–10 came out of the adversarial second-pass review (same day) and supersede 1–6 where they overlap (notably: the envelope is no longer optional, and dedup is split by path). 1. **Sender authenticity — sign every message.** Each gateway holds its own signing key and signs what it publishes (sender gid, `msgId`, timestamp). The receiving gateway verifies the signature **and** checks against the roster that the claimed sender lives on the signing gateway's host. This extends the single-host invariant — *identity comes from the connection, never an argument* — across the broker: cross-host, identity comes from the key. Complements (not replaces) per-gateway broker logins over TLS. 2. **Profiles are owned by the worker's host.** `fleet_spawn(profile, host)` resolves the name in the *target* gateway's `fleetd.yaml`. Gateways advertise their profile names in presence heartbeats, so a leader sees what each host offers before spawning; an unknown name is a clear error from the target. Secrets (base URLs, tokens) never leave the host that uses them. 3. **Repo provisioning — clone from the forge, pinned.** A cross-host spawn names the repo URL and the exact commit. The target gateway clones from the forge into a local cache (first spawn only), then cuts a per-worker worktree — the CB-301-ext flow with a clone step in front, covered by the same repo-scoped forge token (CB-302). Git stays the only channel code moves through. 4. **Asks are live-only, with expiry.** `ASK`/`ANSWER` (U2) traverse the broker as short-lived (TTL'd) messages carrying the `turn_id`, and are never held durably — the single-host rule kept. An answer arriving after its turn ended is **not** injected; it is dropped and the leader gets a `TOO_LATE` notice, so the one failure case is loud rather than weird. Only terminal replies are durable. Walkthrough: wiki 10 §7.4. 5. **Spawn dedup — a spawn id, remembered on the target.** The control queue redelivers like any queue; a replayed `SpawnRequest` must not double-spawn. Requests carry a unique spawn id; the target gateway keeps a short memory of handled ids and answers a redelivery with the existing `PeerHandle`. CB-117's orphan reap stays as the backstop. 6. **Broker down — local unaffected, remote fails fast.** The routing fork (§3.2) means same-host traffic never touches the broker; that is now a written promise. A send to a remote agent while the broker is unreachable **fails immediately** with a clear error — the gateway never buffers on the broker's behalf (it stays soft-state, so a crash cannot lose messages it claimed to deliver). Gateways auto-reconnect; remote hosts read as unknown in the roster meanwhile. Broker HA is a later ops choice, not a design requirement. 7. **Turn state — split by where the signals are.** The *worker's* gateway owns the turn record (turnId minting, ask coalescing, STALE_TURN, the completion/failure fallbacks, CB-516 abandon): every input to those decisions — pane status, injection, teardown — is local to it. The *sender's* gateway owns only the waiter. The two are stitched by terminal-outcome envelope kinds (`REPLY` / `FAILED` / `ABANDONED`) published to the sender's inbox: a worker dying on B fails A's waiter fast because gateway B sees the death synchronously and says so. **`ABANDONED` is belt-and-braces over the waiter's own timeout and roster expiry, never a replacement** — the case where the waiter hangs longest is gateway B itself dying, which is exactly when B can publish nothing. 8. **Dual ack model + spawn idempotence by construction.** Forward path (a brief into a worker): ack **before** the inject — at-most-once, duplicates structurally impossible; the loss window is closed by an `INJECTED` confirmation published after the inject lands (no `INJECTED` within a bound = loud fast failure at the sender, not a silent send-timeout). Reply/pull path keeps ack-after-drain — a duplicate reply is benign, deduped by `msgId`. Spawn: the requester mints **spawn id = the new worker's gid**; the target checks it against the **live pane registry**, and the gid is **stored in the herdr pane itself** (label/env, readable back), so a restarted gateway rebuilds gid↔pane from herdr and the check survives restarts with *no persisted ledger* — this storage point is the load-bearing detail of the no-ledger position. An **in-flight reservation set**, entered before the launcher call, absorbs a redelivery arriving while the first spawn is still inside CB-306's readiness gate; a crash mid-spawn leaves a half-built pane, which is exactly what CB-117 reaps. 9. **Publish is enforced, not fire-and-forget.** Publisher confirms + the `mandatory` flag + a return listener, on a **publish channel separate from the consume/ack channel** — synchronous confirms on the single shared channel would hold its lock across a broker round trip and serialize acks fleet-wide. Ordering caveat: a *return* (unroutable) arrives **before** the confirm, so "confirmed" ≠ "routed"; the sender checks the returned-set at confirm time. `mandatory` is false only for `BROADCAST`, where an empty group is legal silence. 10. **Queue lifecycle is session lifecycle.** `fleet_stop`/reap deletes the worker's inbox queue (its `broadcast.*` bindings die with it — no broadcasts to the dead); `x-expires` collects queues orphaned by a crashed gateway (long for main/orchestrator inboxes, short for workers). Queue names carry a version suffix (`.v2`): AMQP refuses to redeclare an existing durable queue with new arguments (`PRECONDITION_FAILED` — a crash loop on an in-place upgrade from v1.0.0), and the suffix keeps old sender-keyed and new recipient-keyed queues apart during the keying migration (wiki 10 §3 footnote). ## 8. Still open - **Directory ground-truth:** pure soft-state presence (heartbeats) vs. also treating broker queue existence as authoritative. Lean soft-state to preserve the persistence boundary; revisit if split-brain roster views cause mis-routing. - **Gateway discovery:** how gateways find the broker and each other (static config vs. discovery). - **Control authorization — THE GATE ON U4.** Signing (§7.1) settles *who sent it*; authorization is *who may do what*. **Cross-host spawn must not land before the minimal version exists**: a per-host allowlist in `fleetd.yaml` — beside the peer public keys — of gateway ids permitted to publish control to this host, checked against the verified signature. A few lines of config and check; without them, any principal holding broker credentials can start processes on every host in the fleet. - **Key distribution & rotation:** static config (host → public key in each `fleetd.yaml`) is fine at the current 2–3 host scale; rotation is manual. A refinement, not a blocker. - **Gateway death mid-turn:** the roster reaps it by missed heartbeat, and in-flight primary-bound messages survive by broker durability; still open is reconciling *worker* state when the dead gateway's host comes back (orphaned panes vs. still-valid sessions). *(Resolved and moved up: the global id scheme — an opaque UUID minted by the spawn requester as the spawn id, host carried as roster metadata; §7.8.)* ## 9. Implementation order (each step verifiable single-host) 1. **As-built fixes, independent of CB-308** (v1.0.x tickets): `basicQos` prefetch on the AMQP consumer (today the queue drains into gateway heap, so any cap would guard an empty queue); publisher confirms + `mandatory` (§7.9); the `drainReplies` javadoc that claims "the ack is local" — false for the AMQP adapter. 2. Envelope + signing (wiki 10 §2.1) — testable against the single-host broker. 3. Recipient-keyed queue migration (`.v2` names, drain-by-`from`, `ReplyPushLoop` rekeyed). 4. Global id + queue lifecycle (§7.8, §7.10). 5. Roster: host-level heartbeat + signed presence; then the routing fork (§3.2). 6. U2 cross-host with the terminal-outcome kinds (§7.4, §7.7). 7. U4 cross-host spawn — **gated on the control allowlist (§8)**. 8. U8 broadcast **last** — it is the feature that punishes an unfinished queue lifecycle.