fleet_handover{action: "open"|"confirm"|"cancel"} drives LeadRollover, which #483 and
#484 landed with nothing calling it. Primary-only via a new Authz.Action.HANDOVER, on
the same case line as SPAWN/STOP/DRAIN.
The tool has NO terminal, session or leadTerminal parameter of any kind — the pane is
always callerTerminal(exchange), resolved from the connection. A lead can therefore only
ever roll itself, never another lead. That is charter invariant 3, and it is the second
of the two corrections recorded in LeadRollover's class javadoc.
Registered unconditionally, so the tool surface does not vary with config: with
leadRollover: absent, every action returns a clean NOT_CONFIGURED refusal instead of
failing, and open()'s IllegalStateException (config removed by a hot reload after
construction) is caught and turned into the same refusal. A config-dependent tool set
would have collided with #474's charter tool-surface gate and McpContractDocTest.
Correction round applied before merge, and it is the reason this took two passes.
The unit first shipped with a defaulted 15-argument FleetMcp constructor delegating to
the new 16-argument one with leadRollover = null. I mutated the wiring rather than
reasoning about it: deleting just the leadRollover argument from Fleetd.main's FleetMcp
call compiled with 0 errors and passed all 1659 tests, BUILD SUCCESS — while the live
daemon would have answered NOT_CONFIGURED to every fleet_handover call for ever.
Neither FleetMcpHandoverTest (it builds its own FleetMcp) nor FleetdLeadRolloverWiringTest
(it pins that LeadRollover is constructed, not that it is passed on) could see it.
The worker then found the defect was wider than I had named: all five shorter
constructors (11/12/13/14/15-arg) formed one defaulting chain into the 16-arg one, each
silently supplying another feature's "off" value — leadChannel, outage, leadSeats, peers,
and finally leadRollover. All five are deleted. FleetMcp now has exactly one public
constructor, so every one of those features is compile-enforced at its call site, not
just this one.
Verified by the lead before merge, on PR head merged with current main (0176378):
- CI run 1728 green on eb05576.
- The identical mutation re-run by me: control against the original -> 1; mutant present
(MUT-DROP-ARG2) -> 1; original gone -> 0; `mvn -o -q compile` now FAILS —
"constructor FleetMcp ... cannot be applied to given types; reason: actual and formal
argument lists differ in length" at Fleetd.java:[698,24]. The antidote holds: required
parameter = compile error, defaulted overload = silent survivor a green suite vouches for.
- Restored clean (0 changed files), then mvn clean install on the merged tree:
BUILD SUCCESS 1, BUILD FAILURE 0, Tests run: 1662, Failures: 0, Errors: 0, Skipped: 0.
- Three call sites of `new FleetMcp(` measured, all accounted for: Fleetd.java,
FleetMcpAuthzTest.java, FleetMcpHandoverTest.java.
claude-bridge
A subscription-safe bridge that lets a primary Claude Code (Opus 4.8, on Pro/Max)
session drive a secondary Claude agent running a different model via its own
ANTHROPIC_BASE_URL — without ever putting a proxy on the primary session.
Sibling of crush-bridge (which drives a headless
Crush worker on GX10 DeepSeek). claude-bridge keeps the worker a real Claude Code
process, so it inherits CLAUDE.md, hooks, skills, and MCP — just pointed at a
cheaper/local model.
Leading approach — herdr-centric message server (fleetd)
A small always-on message server, fleetd, controls
herdr (an agent multiplexer) over its Unix-socket API and exposes a
clean 2-way messaging API as an MCP server that both the primary and the workers mount —
one unified Claude setup and the sole communication gateway (REST/SSE stays for non-Claude
clients; any broker is fleetd-internal, below the gateway).
herdr owns the PTYs, multiplexing, persistence, and agent-status events; fleetd owns
policy (subscription boundary, session lifecycle, status-gated delivery) and the client
contract. A Claude member launches with ANTHROPIC_BASE_URL pointed at the gateway,
https://llm.ltms.dev/anthropic, plus a bearer token; the lead stays env-clean and calls
fleetd's MCP tools. See the wiki's 13 User Guide to run it.
flowchart LR
OPUS["Opus — primary<br/>(Claude Code, env CLEAN)<br/>MCP client"]
subgraph BD["fleetd — standalone daemon (not a claude process)"]
SRV["SERVER face<br/>MCP · REST/SSE · policy"]
CLI["CLIENT face<br/>status-gated injector · herdr socket"]
SRV --> CLI
end
HERDR["herdr<br/>panes · agent-status"]
W["worker claude pane<br/>ANTHROPIC_BASE_URL set<br/>MCP client"]
M["llm.ltms.dev<br/>(the one gateway)"]
OPUS -->|"MCP fleet_send (blocks)"| SRV
W -.->|"MCP fleet_reply"| SRV
CLI -->|"Unix socket<br/>send_text · events.subscribe"| HERDR
HERDR -->|"drives PTY"| W
W -->|"inference"| M
classDef ext fill:#2b6cb0,stroke:#1a365d,color:#ffffff;
classDef core fill:#2f855a,stroke:#22543d,color:#ffffff;
class OPUS ext
class SRV,CLI,HERDR core
- Subscription boundary: the primary never sets
ANTHROPIC_BASE_URL(stays on Pro/Max). Only the secondary process is off-subscription — andfleetditself is a plain daemon (no Anthropic quota), so it may poll/subscribe freely. - One gateway (unified MCP setup):
fleetdis the sole communication path for every Claude session. Primary and workers each mount it as an MCP server (oneclaude mcp addline, same on both) and talk over MCP tools —fleet_send/fleet_reply/fleet_status(withfleet_askplanned for the blocked-worker path). No Claude session ever addresses a broker, a peer, or the network directly; any queue isfleetd-internal. MCP tool I/O never setsANTHROPIC_BASE_URL, so mounting the bridge is subscription-safe by construction. Tool naming: the tools arefleet_*(renamed frombridge_*in CB-622). The oldbridge_*names were removed in CB-634 — onlyfleet_*answers now. - How the primary consumes a reply: a single blocking MCP call (
fleet_send);fleetdholds it open until the worker callsfleet_replyor its turn hitsagent_status=done, then returns the reply as the tool result. No cross-turn busy-poll, so no quota burn. SSE is an optional side-channel for humans/dashboards watching status. - Worker → primary rides
fleetd's MCP rendezvous — the reply resolves the primary's blocking call (or, for detached work,fleetdinjects the primary's idle pane when it's ready), so no keystroke-into-primary and no broker are involved, even single-host. The one exception: a split-host primary that isn't a herdr pane wakes via its ownStop-hook, which pollsfleetd(never a broker). See the wiki for the two topologies. - Different model per process sidesteps Claude Code's lack of per-subagent provider routing — the worker isn't a subagent, it's its own configured process.
- AgentAPI (
coder/agentapi) is retained only as a swappable fallback injector behind the same interface. See the wiki for the full design, comparison, and rationale.
Docs
Full design, setup, and operations live in the wiki,
vendored here as a submodule under wiki/:
git clone --recurse-submodules ssh://git@git.ltms.dev:2224/fleet/fleetd.git
# or, after a plain clone:
git submodule update --init
Edit docs in wiki/, then cd wiki && git commit && git push to publish them to the
Gitea wiki.
Status
🟢 Implemented & dogfooded — the herdr-centric fleetd message server is built and in
real use: an Opus primary delegates tasks to off-subscription workers that reply through the
bridge (code reviews delegated this way have produced committed bug fixes). Selected as the
primary approach 2026-07-11, superseding the AgentAPI plan (2026-07-08); AgentAPI retained as a
fallback injector.
Shipped (Java 25 · Maven · 266 unit/acceptance tests green; the live-herdr and broker contract
tests run separately via mvn test -Pcontract):
- Core gateway — herdr socket client (contract-tested vs live 0.7.0); guard-checked worker
spawn with
ANTHROPIC_BASE_URLinjected only into the worker's env; status-gated injector; blockingfleet_sendwith reply rendezvous; MCP server as a thin adapter over the REST core. - MCP tools —
fleet_send/fleet_reply/fleet_status(messaging) andfleet_spawn/fleet_list/fleet_stop/fleet_profiles/fleet_poll(fleet). Caller identity is connection-based (loopback peer PID → herdr pane), so the same mount serves primary and workers. - Delivery reliability — completion fallback (a confirmed
working→idleturn resolves a send); async fire-and-poll (beats the caller's MCP call timeout for long tasks); and failure detection for wedged (unknown), vanished, and never-ready workers so a send never hangs. - Fleet — multiple worker profiles, each with an independent base_url guard check; workers
inherit the primary's working directory (never
$HOME); a readiness gate holds delivery until a worker's Claude has connected the bridge MCP (no paste lost into its boot window). - Blocked-worker path —
fleet_askreverse rendezvous: a worker pauses its delegated turn to ask the primary and resumes the same turn with the answer (CB-205). - Session lifecycle — session manager with spawn/reuse/recycle,
idle_ttlreaper,context_cap, and graceful drain on shutdown (CB-301/CB-303); per-worker git worktrees on their own branch with a config-parity overlay, so parallel implementers never stomp each other (CB-301-ext). - Reliable worker→primary delivery — a durable
ReplyInbox(in-memory by default, AMQP/LavinMQ for cross-restart durability) holds a reply that arrives with no open send, and an active status-gated push loop nudges the primary to drain it (CB-307). - Pluggable peers — a
PeerLauncherSPI with two in-tree adapters,claude-codeandopencode, routed by akind:discriminator (CB-401/CB-402).
Next (see the roadmap) — Stage 5 hardening (auth/TLS, /metrics, CI,
service supervision, per-session authz + audit), then cross-host: CB-308 multi-host federation and
CB-500 multi-tier coordination.