A lavinmq provider and an amqp-ping consumer ride laptop while the
substrate's own broker owns 5672 on anchor — the twin of two-node-db.
lavinmq is the mesh's control broker AND a user-facing capability, so a
provider must publish 5672 for its consumers and cannot share a node
with the control broker that already owns it; the split unblocks the
chain single-node.
The bed proves, layered: the run-once bootstrap computed the admin hash
and wrote the broker config before the broker started (ADR 0052); the
service and both runtimes are up and stable; each module got its scoped
broker account on the substrate broker; the provisioner created the
consumer's vhost AND user, both named for the derived login; and the
consumer connected to that vhost with the mesh-minted password and
round-tripped a message. The consumer uses ${bound:amqp:as} for user
and vhost both, and the provider's serves carries the port.
Claude-Session: https://claude.ai/code/session_01LrgweAeERJYBg88c5cKDzF
60 lines
2.8 KiB
YAML
60 lines
2.8 KiB
YAML
# Two machines: one is the substrate, the other carries a lavinmq PROVIDER and a consumer of it.
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#
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# lavinmq is the mesh's own control-plane broker (mesh-broker), and it is ALSO offered as a
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# user-facing capability: a module that needs a message queue gets its OWN broker — a scoped vhost and
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# user on a lavinmq PROVIDER — not an account on the control broker. That makes lavinmq the sharp
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# two-node case, for the same reason two-node-db is: the substrate's broker publishes 5672 on the node
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# it runs on, and a lavinmq provider must publish 5672 too for its consumers to reach it — so the two
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# cannot share a machine. The moment a real amqp provider must own a node's 5672, it collides with the
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# control broker already there, and the chain is blocked single-node.
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#
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# This is the split that unblocks it. `anchor` runs the substrate (store, broker, control) and NOTHING
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# else. `laptop` runs the whole chain: the lavinmq PROVIDER and the amqp-ping CONSUMER that requires
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# it. Provider and consumer are co-located on laptop, so the grant never crosses a node boundary; only
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# enrolment crosses to anchor, over the underlay both machines share. And because the substrate broker
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# is on the OTHER node, the provider owns laptop's 5672 uncontested.
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#
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# It needs a host binary and the substrate bundle:
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#
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# MESH_LAB_HOST_BINARY=.../mesh-host MESH_LAB_BUNDLE=.../examples/substrate-first-node.lock
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#
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# HELPER — stock the two runtimes into the local daemon before the run (some may already be there):
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# scripts/build-module-runtime.sh lavinmq /tmp/lavinmq.tar
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# scripts/build-module-runtime.sh amqp-ping /tmp/amqp-ping.tar
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# The service image cloudamqp/lavinmq:latest must be in the local daemon too — it is already stocked as
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# the substrate's own broker image; each node pulls what it runs from the scenario's own registry by
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# digest.
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scenario: lavinmq-bed
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segments:
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hosting:
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kind: public
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cidr: [192.0.2.0/24]
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machines:
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anchor:
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at: { segment: hosting, address: [192.0.2.10] }
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inbound: allow
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memory: 3GiB
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cpus: 2
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laptop:
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at: { segment: hosting, address: [192.0.2.11] }
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inbound: allow
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memory: 3GiB
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cpus: 2
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images:
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# The first-node substrate: store, broker (itself lavinmq), control.
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- postgres:17-alpine
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- cloudamqp/lavinmq:latest
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- mesh-control:development
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# The lavinmq provider's runtime (reused for its run-once bootstrap and its provisioner) and the
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# amqp-ping consumer's runtime, both built by scripts/build-module-runtime.sh into the local daemon
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# and stocked into the scenario's own registry, which is where the hosts pull them from by digest.
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# The lavinmq SERVICE image is cloudamqp/lavinmq:latest, already stocked above.
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- mesh-runtime-lavinmq:development
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- mesh-runtime-amqp-ping:development
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place:
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all: [host, runtime]
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