docker inspect <name> resolves across every object kind, not just
containers. A module regularly names a network the same as the
container that joins it (keycloak does this today, ordinarily) — so
when the container does not exist yet but the same-named network
already does, the bare form answers with the network's JSON instead
of reporting the container absent, and the template these callers use
(.State.Running) fails to execute against it entirely.
Live on novox tonight: minio's LB container, named the same as its
network ("minio"), could never be created — every apply crashed on
"the container runtime could not say whether minio is here", stuck
since first push, because the check itself never got a clean answer.
Fixed at every call site asking a container's state by name
(containerState, inspectFound, NamesFree, raiseGiteaServer,
containerRunning) by scoping to `docker container inspect`, matching
the type-scoped form this codebase already uses correctly for
networks, volumes and images elsewhere. Also scoped the one image
inspect that was still bare (publish.go), for the same reason.
mesh-host runs as a host-level service (nox-mesh-host.service), not a
Docker module — merging this does not redeploy it. The live novox
failure persists until the service itself is rebuilt and updated.
Review of the ADR 0105 build (hq ADR 0105). The takeover stopped the found
unit and then found out whether the mesh's interface would do; a start that
failed left the machine with no tunnel at all.
Now nothing is stopped until the declared interface listens on the found port
at the found address and the key file it names holds the found key — the
refusal names the remedy — and a mesh interface that fails to start after the
takeover has the found unit started again, with the account saying so. The
account has three states (not taken, taken, down) and is given on every
takeover, failure included. An interface raised by hand is looked at again
for a moment and then refused naming `wg-quick down`. A found unit started
again by hand beside the mesh's is said, not stopped: on the hub it cannot
hold the port, and on a spoke two interfaces with one key would fight.
`mesh-host overlay take --tunnel <iface>` is the path for a node that
enrolled before the mesh knew to take a tunnel over: the found key becomes its
overlay key — identity, sealing and serving keys untouched, so nothing sealed
to the node is remade — and the mesh is told with a rekey signed by the
identity key, over the key left, the key taken and the tunnel. Told first,
written second, so a run again puts right whichever half did not happen.
The plan says what an apply would change from the declaration and the
record, before the machine is touched. The apply now recreates a container
when the content of a file it reads at creation changed, and the plan said
"check" for every recorded container — true, but a preview that hides the
one step somebody asked about.
So a recorded container whose record of what it read differs from what this
apply will hand it — a plain file declared here, by its declared content;
otherwise what this host last wrote at that path — is planned as an update
naming the file, the same comparison applyContainer makes. What the record
cannot settle stays a check: a file neither declared nor recorded is read
from the machine by the apply, not by the plan; and a container with no
record of what it read was labelled before the host kept that record and is
accepted as it is.
novox/hq 04-ISSUES/103, 104
Review of the first cut found four things.
A directory mounted into a container is no longer looked inside, not even
for the files this host wrote there. The controller records every
provider's received and contributions file as a plain file under a mounted
directory, so folding those in would have recreated the route proxy — which
re-reads its routes live, by design — on every route change, and killed
every provisioner sidecar, which polls what it receives, mid-reconcile on
every grant. Whether a service reads a file under its directory once or
watches it is the service's; restart-on is how a module says "once", and it
stays the opt-in. Env-files and files mounted directly remain by content.
Genesis wrote the superuser secret as `value\n`; `secret accept` strips the
line ending by design, so the postgres module declared `value` — and with
a mounted file's content in the spec, phase three would have recreated the
store it meant to adopt in place, with the temporary control plane
connected to it. Genesis now writes the value alone. readCredentialFile
tolerated both endings already. Pinned with the bytes the genesis code
path writes, then the module's declaration of the same container: it must
reconcile.
A container carrying a label from before the host folded in what it reads
is accepted rather than recreated, when that label matches the spec as it
used to be computed: what it reads is recorded then, a change is caught
from that record from the next apply on, and the label is renewed at the
next genuine recreate. Recreating them all would have been a restart storm
across the mesh in declaration order, the store first. The trade-off is
stated in the code: a container already stale at upgrade time is not
caught, and could not have been either way.
The record of what a container read is looked up by its name when its
declared id has none — the bundle's `store` becomes `postgres.server` for
the same container — so a change on the day it is adopted still names the
file. The by-target lookup takes the most recently applied record, since
the bundle's record for the same target is never removed by the mesh's.
novox/hq 04-ISSUES/103
The host decided whether a container was still the one declared by a digest
of its declaration, and the declaration names an env-file's path and a
mount's path — never what is in them. So when the store was given a new
port, the host rewrote the forge's and the analytics service's environment
files, correctly, and left both containers running with the old port in
their environment: a container reads its env-file when it is CREATED, and
`docker restart` hands it the same environment again. Both looked healthy
until they answered 502.
What a running container takes in at creation is now part of its spec, by
content: every env-file, a file bind-mounted into it, and every file this
host wrote at or under a directory bind-mounted into it — the secrets,
bindings and configs under a module's state directories. The digest is the
one the store already records for a file the host wrote (`wrote`), read
from the state as it stands when the container is reached, so a file
rewritten earlier in the same apply is already the new one; a file the host
has no record of — an env-file a predecessor left, the superuser secret
genesis writes before any declaration names it — is read from disk, which
is what keeps adopting a running store in place a reconcile and not a
recreate.
Deliberately not part of it: what else is in a bind-mounted directory,
which is the service's own data and changes while it runs; a named volume;
a seed created once, which digests as the seed the host wrote and not as
what has grown in it; and a step — a run-once or scheduled container reads
its files when it runs and runs fresh each time. On an adopted node a held
container is held before any of this is looked at.
The host records what each container was created reading, per file, so
the recreate can say which file changed — "recreated: <file> changed" in
the report and, now with its detail, in the log. A container made before
this record existed is recreated once and says so.
novox/hq 04-ISSUES/103
Review of the fix for hq issue 104 found three faults in it. A file applied
on an enrolled node — the mesh's own last declaration included — is applied
as the bundle is, so its resources are recorded as the machine's own and
what the mesh declared reads as undeclared: the plan removed the foundation.
`apply FILE` is for a machine the mesh has not spoken to, and is now refused
saying so whenever declared.json exists. The plan looked at what is held
before what the declaration says is taken, so the one cutover ADR 0100 says
must be previewed read as a hold; it now decides in holdOnAdopted's order,
models a step run inside a held container, and a test holds the plan's
sequence to the apply's outcomes. Genesis wrote the mode on every run, so a
re-run after `converge` left the state saying adopted while the kept,
signed declaration said converged, and the reconcile loop refused every five
minutes with no delivery coming to end it: genesis now writes the mode only
when none is recorded, and where the state and the verified kept declaration
disagree, the kept declaration wins and the repair is said.
Also: a file lock beside the state, taken by the link service, the host's
own commands and the installer alike, so a `reconcile` run by hand no
longer races the loop's save — chosen over refusing while a named service is
active, which would miss a `mesh-host run` started by hand; `--json
--dry-run` emits {plan} like an apply emits {plan, report}; the README's
duplicate flag line; and the bundle refusal is about the digest, not a claim
the carried bytes can never match what genesis applied.
On an adopted machine the private network takes the predecessor's tunnel
over in place (hq ADR 0105). Genesis finds the one interface up besides the
mesh's own, settles the hub's port and the mesh's range on it, and skips
ADR 0100's non-overlap check for a range that is now the tunnel's; a
--hub-port or --overlay-range that disagrees is refused naming the tunnel's.
At enrolment the found interface's private key becomes this node's overlay
key — the one credential the mesh takes rather than mints — stored where a
generated one is stored, never printed and never sent; the tunnel (port,
address, range, peers) travels with the keys so the mesh composes from it
before the first declaration.
The interface's service may say what it takes over. Before the mesh's unit
starts, the found configuration is kept like any held file and the found
unit is stopped and disabled; nothing is flushed, and an interface still up
after its unit stopped refuses the takeover rather than half-working. The
report says what was carried: interface, port, range, peer count, taken or
not, and where the original was kept.
An operator ran `mesh-host reconcile` on an adopted control-node with twelve
modules assigned. It applied the bundle the host carries — the genesis
declaration, foundation only, converged: recreated the store, failed on the
broker's held port, wrote the converged base filter and started its service,
and stopped at the first failing action. The filter closed the machine for
forty-five minutes. The host reported the node adopted in every report, the
declaration said converged, and nothing compared the two; nothing was printed
before acting (hq issue 104).
The host now records the node's mode — from every declaration the mesh sends,
and at genesis from what the operator said — and refuses, at the point of
application, a declaration that says the other mode, naming both and the act
that changes it. Only a declaration the link delivers, signed, changes the
mode: that is how `converge` and `adopt` arrive, so the flip still works and
nothing else can do it. Genesis marks the bundle consumed, with the digest of
what it applied, so `reconcile` holds a node the mesh has spoken to against
what the mesh last said and never the bundle, and refuses the carried bytes
when they are not what genesis applied. A file is refused when it is not what
the mesh last said: a declaration carries no sequence and no issued-at, so the
host cannot tell older from newer, and says so. Both commands print what they
would change — a hold, a removal, an action named as one — before touching
anything, and --dry-run is that list and nothing more.
Registering a module is an overwrite. Recording the forge's port ran `module add`
every time, so a genesis re-run pointed at an older catalogue would replace the
manifest of a forge that is built and assigned — with a push a few lines later.
Registering is only here so a settings row has a module row to hang on, and that
row is already there on a mesh that knows the forge. So: ask first, and skip.
Two comments narrowed to what is true. What follows the node's setting is what
the mesh derives from a module's ports — its container mapping, its filter rule,
its opening and what it serves. The forge's own address in its runtime's
environment (hq 088) and its route contribution's port do not, and are already
wrong for any port the mesh assigned. And a settings layer is the module's, not
one resource's: a second mergeable file on the builder would be given `serves`
too.
novox/hq 04-ISSUES/085
Every foundation port given at genesis became a per-node setting of the module
that binds it, except the package registry's: that one was fixed by rewriting
the builder's manifest when the installer registered it. Registering the builder
again from the catalogue undid it, and the forge's own module, when it took the
bootstrap forge over, came up on the catalogue's port — which on a machine where
a predecessor holds 3000 points the builder at the predecessor's forge.
So the rewrite is gone, and the port is recorded twice as a setting, both from
the one input:
- the forge's module is registered at genesis — not assigned, nothing of it runs
— so the controller has something to hold `{"ports": {"3000": <given>}}`
against. Assigning the forge later raises it on the port this machine was
given, and its container, its filter rule, its opening, what it serves and
what consumers are told all read it from there.
- the builder is given `{"serves": {"port": <given>}}`, which merges into the
binding it carries in place of one nothing can resolve yet.
A genesis on the catalogue's port records nothing and registers nothing, so it
does exactly what it did before.
novox/hq 04-ISSUES/085, ADR 0100
The control plane's manifest existed twice: at the root of its repository, read
whenever the mesh rebuilds it from source, and as a copy in the catalogue, read by
genesis. Nothing kept them equal, and the first rebuild replaced the mesh's record
with the repository's shape while every later push was refused (novox/hq
04-ISSUES/072). The builder's one-shot result already carries the manifest it built,
artifact resolved to the image; step 3 keeps it and step 9 registers it, re-pinning
the built image's bare id to the reference the registry assigned. The catalogue is
still read for the registry's and the builder's manifests and for phase two.
A container on the machine dialling a port the machine publishes reaches it
through the runtime's proxy — input, not forward — and the builder could not
reach the broker. The derived ruleset opens the mesh's own ports in both
chains; the base one now does the same.
031: a window of unacknowledged declarations is drained to the newest; the
rest are set aside and reported as superseded. 035: a file resource may say
create-once — written when absent, kept untouched when present (ADR 0087).
054: the bundle installs nftables and loads a base ruleset before the store
and broker, in the table the filter module later replaces (ADR 0088).
The verify reads the marker with the shell's read, which fails at end of file
without a line ending; the action ran and its verify said no. And the applier
reports each action with its command line, two of which now carry the real
store and broker passwords — the installer masks the values it made in
everything it says.
From review: the store and broker passwords genesis makes were carried into
the controller through a world-readable file in /tmp, a bundle left at 0644 by
an earlier installer kept that mode while now holding them, a mesh raised by
the old installer would have been handed new passwords its servers do not have,
and the broker-admin action's marker did not depend on the value. Secrets now
stage in a 0700 directory owned by the controller's account; the bundle is
chmod'd; an existing store or broker volume with no credential file is refused
by name; the marker holds the password's fingerprint. Also: one install path
for the store, broker and vault, no error-string matching for the operator
key, and no unreachable fallback for the superuser.
The template raises the store with the password 'bootstrap' and the broker
with its image's default administrator, and the installer carried both into
the mesh as accepted secrets — permanent, and not secret (novox/hq issue 071).
Now the installer makes both credentials, once, at the paths the postgres and
lavinmq modules declare as their own secrets, rewrites the produced bundle to
use them (the store reads its password from a file; the broker's default
account is given the new password by an action before anything dials it), and
writes the bundle at 0600 since it now carries them.
Before the first secret is accepted it makes the operator's sealing key beside
the bundle and gives the mesh the public half, so everything minted from there
is sealed to it too (ADR 0085, amended). Phase three adopts the broker as the
lavinmq module beside the store and installs mesh-vault as a foundation module;
the run ends by writing the operator-sealed export beside the key.
Like the store, the amqp provision is plaintext 5672 (vhost-per-login), so a
consumer must reach it — bind 0.0.0.0 (firewall-gated to `mesh`, WireGuard-
encrypted on the wire) instead of loopback. amqps (5671) was already mesh-wide;
management (15672) stays loopback for the host-networked provisioner.
Issue 051 (WBS 3.2).
Claude-Session: https://claude.ai/code/session_01D6qtiYU3P9jk3pnAXyAFyx
Not "every module's database"; a module requests one via requires
postgres-database. The one server holds the controller's contexts and the
database of each module that asks for one.
Claude-Session: https://claude.ai/code/session_01D6qtiYU3P9jk3pnAXyAFyx
InstallStore turns the mesh-store the foundation raised at genesis into the
postgres module, adopted in place: it verifies the module's server names the
same container and the same image the foundation is running (fail-fast on a
drift, rather than tearing down the mesh's store), then registers, builds the
provisioner, and carries the superuser in via secret accept — the mesh cannot
invent a credential that already made the databases (mirroring the control
plane's store-connection delivery, control.go). pinImage generalised to any
module for reuse.
Issue 051 (WBS 3.1). One server holds the controller's contexts and every
module's database.
Claude-Session: https://claude.ai/code/session_01D6qtiYU3P9jk3pnAXyAFyx
One name per thing, per the HQ glossary: the module/container/image/binary/repo
becomes mesh-controller, the seat the-controller, and the store+broker pair the
foundation (embedded base bundles, default template and example lock renamed with
their go:embed directives). No behaviour change — a pure vocabulary rename.
Claude-Session: https://claude.ai/code/session_01D6qtiYU3P9jk3pnAXyAFyx
Fixes found raising the package registry end-to-end in the lab: seed gitea's DB
with plain psql statements (no \gexec, no $$ DO-blocks that clash with the
shell); run gitea on the host network so it reaches the substrate store and
answers where the builder looks; set gitea ROOT_URL to the machine's loopback so
npm's stored credential matches the tarball host; keep the pivot's passwords so a
re-run is the same run; create the admin without re-enabling must-change-password.
Claude-Session: https://claude.ai/code/session_01D6qtiYU3P9jk3pnAXyAFyx
The base (mesh-tools) resolves the SDK by version from the mesh's package
registry rather than cloning it from a git URL (hq ADR 0076, issue 053), so the
registry has to answer and the SDK has to be in it before the base build runs.
New steps, before base: seed gitea's database in the substrate store, raise
gitea's server on it, create the admin/org/team and the builder's account, seal
the builder its registry credential, and publish the SDK on a public base. gitea
is adopted as an ordinary module after the base, so its provisioner image can be
built. A minimal Go gitea admin client stands in until that module exists.
Claude-Session: https://claude.ai/code/session_01D6qtiYU3P9jk3pnAXyAFyx
Twelve steps made a mesh that RUNS and then said "what remains is somebody
else's". The seven things that turn it into a mesh that WORKS — the shared base,
a database provider, the catalogue, the private network, the packet filter — were
typed afterwards, which is how they went missing for weeks without anything
complaining.
Six more steps now: base, store, catalogue, network, filter, extras. Everything
in them is module add, build, assign and push — the same verbs a person types,
through the same commands, so the installer and an operator remain one act.
Where a human must choose, the installer asks. A choice resolves in the order a
person expects: the flag wins; a lone option answers itself ALOUD, because "it
chose for me" and "there was nothing to choose" read identically afterwards
unless one speaks; a terminal is asked; a default fills in; and a required
choice nothing answered refuses naming its flag — a guessed packet filter is a
machine somebody else configured. The filter is required, so the question is
which, not whether. A run without a terminal (the lab, --json) is never left
waiting on a prompt nobody will answer.
Placement is part of the network step, not a separate act — a lesson paid for:
the module installed, the names file was written with no names in it, and
everything reported success because nobody had said where the machine IS. The
hub endpoint derives from the broker address when unsaid: the host other
machines dial is one fact, not two that drift.
Extras fail the run rather than soft-fail: somebody asked for them by name, and
a mesh reporting success minus one thing is reporting the wrong thing.
Claude-Session: https://claude.ai/code/session_01D6qtiYU3P9jk3pnAXyAFyx
The module that provides artifact-store runs Distribution, the OCI reference
implementation. It was called registry, which named neither the software nor the
provision.
Claude-Session: https://claude.ai/code/session_01D6qtiYU3P9jk3pnAXyAFyx
Found by being asked whether processes and containers handle environment the
same way. They do not, and the difference is not cosmetic.
Docker passes --env through literally. A unit file reads three things out of a
value that nothing else does, and a module's environment routinely contains all
three because a generated password is arbitrary bytes:
- % begins a specifier. %H is the hostname. A password containing one is
silently replaced, and it fails later as an authentication error nobody can
explain by reading the declaration.
- whitespace separates assignments. Unquoted, K=a b sets K to "a" and reads
"b" as another assignment.
- a newline ends the line, and what follows is read as a unit DIRECTIVE.
The first two are escaped: quoted, with quotes and backslashes escaped and
percent doubled. The third cannot be — a unit's environment has no way to carry
a line break — so it is refused in validation, near whoever wrote it. Without
that, an environment value could write ExecStart= and have the machine run
something nobody declared.
Ordinary awkward values stay accepted, because refusing those too would leave a
module unable to hold a generated password.
Claude-Session: https://claude.ai/code/session_01D6qtiYU3P9jk3pnAXyAFyx
The first cut of this added a `daemon` for the long-running case alone. That
would have meant a new vocabulary entry for each of the others — a scheduled
task, a run-once migration, a health check — when they are one thing run at
different cadences. That is a field, not four entries in a vocabulary where every
entry widens what a compromised control plane can express.
So it mirrors a container exactly, because it IS a container's twin: the same
intent, hosted by the machine's own supervisor instead of a runtime. Stays up,
runs once, or runs on a schedule.
Tools, hooks and event consumers are not further modes. They are loaded by a tool
host, which is itself a process that stays up — so the generic case already
covers them, which is the test of whether it is generic.
A scheduled process gets a timer and a unit that finishes; a long-running one
gets a unit that is restarted when it exits. Getting that wrong either way is a
second copy running continuously between fires, or a schedule that never fires.
The modes are exclusive and validation says so near the author: something that
runs once does not run on a schedule, and something not running between fires
cannot be restarted when a file changes.
A missed fire happens when the machine comes back rather than being skipped,
which is the difference between a machine that was down and a schedule that
quietly stopped.
Claude-Session: https://claude.ai/code/session_01D6qtiYU3P9jk3pnAXyAFyx