The repo has consumed packaged gRPC clients (LocalDb.Replication,
HistorianGateway.Client) but never compiled a proto locally. This adds the
Grpc.Tools toolchain to Commons and a deployment_artifact.proto with a single
server-streaming Fetch(deployment_id) -> stream ArtifactChunk RPC, generating
both the server base and the client stub (GrpcServices="Both") so central
(Host/AdminUI) and the node (Runtime) share one reference. A compile-touch test
pins the codegen: it stops compiling if generation regresses.
Claude-Session: https://claude.ai/code/session_01GASWkNEi68FSCtvr6rLoEW
ConfigSource:Mode = Direct (default, read central SQL) | FetchAndCache (fetch
the artifact from central over gRPC, read LocalDb). The validator fails host
start on a FetchAndCache shape that cannot fetch — no endpoints, a non-http(s)
endpoint, no shared key, or a non-positive timeout — because each otherwise
surfaces as a silent absence (a deploy that never applies). ConfigServe (the
central serve surface) takes a plain Configure: a 0 port is a valid "disabled".
Claude-Session: https://claude.ai/code/session_01GASWkNEi68FSCtvr6rLoEW
Phase 2 Task 3. Central-side end of the boundary: routes every central->node
command out over DPS or ClusterClient per MeshTransport:Mode, and forwards
inbound ApplyAcks to the deploy coordinator singleton (Forward, not Tell, so
the coordinator sees the node rather than this relay).
Three things here are load-bearing and easy to get wrong later:
SendToAll, never Send. Today's DPS publish reaches EVERY DriverHostActor and
the node side has no ClusterId or node filter to compensate -- scoping happens
later, inside the artifact. ClusterClient.Send delivers to exactly ONE
registered actor, so it would deploy to a single node while every other node
silently kept its old config, and the deployment could still seal green.
Sabotage-verified: swapping to Send reddens exactly that one test.
Exactly ONE ClusterClient, fleet-wide. A receptionist serves its whole cluster,
so SendToAll reaches every registered node-comm actor in the mesh regardless of
which contact point was dialled. One client per application Cluster -- the
shape Phase 6 wants -- would fan each command out once per cluster while the
fleet is still one mesh: N x duplicate DispatchDeployment and ApplyAck. Marked
TODO(Phase 6).
The contact set does NOT scope delivery. Excluding a maintenance-mode node from
the contacts does not stop it receiving commands; it still receives them, as it
does under today's broadcast. The filter is about which receptionists are worth
dialling, not about who gets the message. Stated in the code because the
opposite is the natural assumption.
Also carries the sister project's shipped fixes: per-row address parsing so one
malformed ClusterNode cannot abort the refresh and leave the contact set
half-built (regression test orders the bad row FIRST), the cache entry cleared
before recreate so a failed create cannot leave commands routing into a
stopping actor, and a Status.Failure handler so a DB outage is a Warning rather
than a silent debug-level unhandled message.
Two test-harness bugs found and fixed while writing this, both mine: SubscribeAck
goes to the SENDER (so the mediator subscribe needed an explicit sender), and
EventFilter matches case-INSENSITIVELY, so a "was NOT" filter also caught this
actor's own "was not created" warning.
Claude-Session: https://claude.ai/code/session_01GASWkNEi68FSCtvr6rLoEW
Phase 2 Task 2. Two small pieces the comm actors are built on.
MeshCommand carries a command plus the DPS topic it would have been published
on, so the admin singletons stop knowing which transport is in force. Without
it the dark switch would have to be threaded through five publish sites across
two actors, each free to drift. Central-side only -- it never crosses the wire,
so it carries no serialization contract.
DefaultMeshClusterClientFactory appends a generation counter to the actor name.
Context.Stop is asynchronous and the name stays reserved until termination
completes, so recreating the same name inside one message handler throws
InvalidActorNameException -- which is exactly what a contact-set change does
(stop the old client, create the replacement, one handler). Ported from the
sister project, where it was a shipped bug fix rather than foresight.
Sabotage-verified: freezing the name to a constant reddens both name tests with
InvalidActorNameException.
Dropped a third test I had written -- it asserted ClusterClientSettings
directly and never touched the factory, so it was coverage theatre. Replaced
with a comment saying where contact propagation IS covered (the Task 8 boundary
test, the only place it can actually fail).
Claude-Session: https://claude.ai/code/session_01GASWkNEi68FSCtvr6rLoEW
Phase 2 Task 1. Three changes to the embedded base config, plus a test that
reads every one of them back off a RUNNING ActorSystem rather than off the
HOCON text -- the settled idiom here (SplitBrainResolverActivationTests),
because several fragments compete and the losing one still reads correctly in
the file.
- Registers the ClusterClientReceptionist extension. It is not auto-started, so
without this the boundary only listens if some code path happens to call
ClusterClientReceptionist.Get(system) first: "is the boundary up?" would
depend on startup ordering rather than on configuration.
- buffer-size = 0. This is the one genuine behaviour change and it is NOT what
the sister project runs -- they never wrote this section and inherit 1000.
Buffering would replay a DispatchDeployment on reconnect and apply a
deployment the coordinator already sealed as TimedOut, leaving the node on a
configuration the database says failed.
- log-frame-size-exceeding = 32000b. An oversized frame is dropped WITHOUT
tearing down the association: heartbeats keep flowing, the node reports
healthy, and the only symptom is a command that never arrived. Our deploy
notify is payload-free, so this canary should stay quiet.
reconnect-timeout and receptionist.role restate Akka defaults; they are stated
explicitly and pinned because the behaviour is load-bearing, and the comments
say which is which.
One test was VACUOUS on first write: Config.GetInt returns 0 for a missing key,
so the buffering assertion passed before the feature existed -- it could not
distinguish "explicitly 0" from "absent, default 1000 in force". Rewritten to
assert through ClusterClientSettings/ClusterReceptionistSettings, the objects
the client is actually built from. Sabotage-verified after the fix: setting
buffer-size back to 1000 reddens exactly that one test.
Claude-Session: https://claude.ai/code/session_01GASWkNEi68FSCtvr6rLoEW
Phase 2 Task 0. Binds a validated `MeshTransport` section selecting which
transport carries central->node commands, defaulting to Dps so nothing changes
until the rig gate passes.
The validator exists because every fault it catches otherwise surfaces as an
ABSENCE -- a deployment that never arrives, an alarm ack that does nothing --
which has no stack trace and no failing node to point at. Two of the shapes it
rejects are ported from the sister project's shipped mistakes: a contact point
carrying an actor-path suffix, and (documented in the options XML) a template
listing the node's OWN remoting port as a central contact, which is a permanent
failure in the initial-contact rotation.
Contact points are required only under ClusterClient mode; requiring them under
the default would make the section mandatory on admin-only nodes that have no
reason to carry them.
Sabotage-verified: relaxing the empty-contacts guard and the actor-path-suffix
guard turns exactly those two tests red, and nothing else.
Claude-Session: https://claude.ai/code/session_01GASWkNEi68FSCtvr6rLoEW
Phase 1 gate step 4 failed: setting Enabled = 0 to take a node out of service
returns 422 ClusterEnabledNodeCountMismatch, because
DraftValidator.ValidateClusterTopology requires the enabled-node count to equal
ServerCluster.NodeCount. On a Warm/Hot pair — every cluster on the rig, and
every cluster in the target topology — Enabled can therefore never be the
maintenance hatch. The plan called step 4 "the check that makes step 3
acceptable to ship", so Task 3's behaviour change was not shippable as it stood:
a node down for maintenance would block every deployment to its cluster.
The two rules were each reasonable and contradictory together — the validator
reads Enabled as "part of the declared topology", Phase 1 additionally read it
as "expect an ack". Split the meanings rather than weaken either rule:
Enabled part of the declared topology (validator, untouched)
MaintenanceMode expected to participate now (coordinator + reconciler)
Rejected alternatives: counting configured rather than enabled nodes (drops the
guard against booting a pair into InvalidTopology); downgrading the rule to a
warning (weakens a deploy gate for everyone); shipping with no hatch.
Sabotage: dropping !n.MaintenanceMode from the coordinator query turns the new
test red. It also asserts both nodes remain Enabled, so the fix cannot quietly
regress to disabling the row after all.
Configuration.Tests 95/95, ControlPlane.Tests 101/101, solution builds clean.
Claude-Session: https://claude.ai/code/session_01GASWkNEi68FSCtvr6rLoEW
Additive only — two AddColumn ops, no AlterColumn, so no accumulated model
drift is riding along with this change:
ALTER TABLE [ClusterNode] ADD [AkkaPort] int NOT NULL DEFAULT 4053;
ALTER TABLE [ClusterNode] ADD [GrpcPort] int NULL;
Adds a third test covering the DB-side default specifically. The entity
round-trip cannot see it: ClusterNode.AkkaPort's CLR initializer is also 4053,
so that assertion passes with the mapping default deleted. The new test inserts
through raw SQL with the column omitted, so only the schema can supply the
value — verified by setting defaultValue: 0, which turns exactly that one test
red and leaves the other two green.
Configuration.Tests 95/95.
Claude-Session: https://claude.ai/code/session_01GASWkNEi68FSCtvr6rLoEW
Per-cluster mesh Phase 1 groundwork. Once the meshes split (Phase 2) central
can no longer see a site node's appsettings, so the transport ports it must
dial have to live in a row central can read.
AkkaPort is non-nullable with a 4053 default — every node listens on a
remoting port, so 0 is never a truthful value and pre-existing rows must
migrate to something real. GrpcPort is nullable with no default: nothing
listens on it until Phase 5, and a non-null default would assert a port that
does not exist.
Both are documented as central's dial targets rather than the node's own
binding config; the duplication against Cluster:Port is reconciled in Task 4.
The new SchemaCompliance test is red until the migration lands (Task 2).
Claude-Session: https://claude.ai/code/session_01GASWkNEi68FSCtvr6rLoEW
Akka runs FirstSeedNodeProcess -- the only bootstrap path that can form a NEW
cluster when no peer answers InitJoin -- exclusively when seed-nodes[0] is the
node's own address. Every other node runs JoinSeedNodeProcess and retries
InitJoin forever. That is why "both peers are seeds" never meant "either can
cold-start alone", and it is fixed here the way Akka itself intends: each seed
node lists ITSELF first.
- docker-dev central-2 now lists itself as SeedNodes__0 (central-1 was already
self-first). The site nodes are untouched -- they seed off central-1 only and
are deliberately not seeds.
- AkkaClusterOptionsValidator enforces the invariant at boot via the shared
ZB.MOM.WW.Configuration AddValidatedOptions/ValidateOnStart seam. The rule is
CONDITIONAL -- self must be seed[0] only IF self is in the list at all -- or it
would refuse to boot every driver-only site node. Identity is compared on
PublicHostname (falling back to Hostname when blank) AND port, i.e. the address
Akka puts in SelfAddress: matching the 0.0.0.0 bind address would find no seed
anywhere and leave the rule silently inert on the whole docker-dev rig.
- ClusterBootstrapFallback + Cluster:SelfFormAfter are DELETED. The watchdog sat
outside Akka's join handshake, so it could not distinguish "no seed answered"
from "a seed answered and the join is in flight" -- and Cluster.Join(SelfAddress)
is not ignored mid-handshake, it wins. The live gate (ea45ace1) caught it
islanding a node that a manual failover had bounced: InitJoinAck received, no
Welcome inside the window because the peer's ring still held the old
incarnation, watchdog fired, second cluster. The TCP reachability guard patched
that one shape; the race stayed. It was also inert for every non-seed node, so
after this change it can never usefully fire.
- SelfFormBootstrapTests -> SelfFirstSeedBootstrapTests: real in-process clusters
through the production bootstrap at production failure-detection timings, incl.
a falsifiability control proving the OLD peer-first ordering never forms (that
test failed at 11s against the watchdog, which is what proved the retirement),
the restart-into-a-live-peer case that killed the watchdog, and a simultaneous
cold start converging on ONE cluster.
Mirrors ScadaBridge 4a6341d8; anticipates per-cluster-mesh-program Phase 6, which
had this retirement queued.
The live gate for the manual-failover control caught the self-form fallback
forming a SECOND cluster. A node bounced by a failover restarted, received
InitJoinAck from its live peer — the join was in flight and healthy — but did
not get the Welcome inside the 10s window, because the peer's ring still held
the node's previous incarnation (Exiting -> Down -> Removed). The fallback
fired on the timer and the node islanded itself until an operator restarted it.
The original design assumed Cluster.Join(SelfAddress) would be ignored
mid-handshake. It is not — it wins. And since manual failover deliberately
produces that restart, every failover could island the node it bounced.
Before self-forming, TCP-probe the other seed addresses; a reachable peer means
wait another window instead. That is also what the fallback claims to detect:
'no seed answered InitJoin (peer down at boot)'.
Claude-Session: https://claude.ai/code/session_01GASWkNEi68FSCtvr6rLoEW
Four NU1903 high-severity advisories (GHSA-23rf-6693-g89p, GHSA-8q5v-6pqq-x66h,
GHSA-cvvh-rhrc-wg4q, GHSA-g8r8-53c2-pm3f) landed in the NuGet audit data against
System.Security.Cryptography.Xml 10.0.7, which Microsoft.AspNetCore.DataProtection
10.0.7 pulls in transitively for key storage. Under TreatWarningsAsErrors a fresh
restore produces 204 NU1903 errors and the solution does not build at all.
This was invisible locally: machines with cached audit data keep building, so the
break only shows on a clean clone or a docker image build. It surfaced here by
accident — a detached worktree at the pre-change baseline, created to check
whether a flaky test predated today's work, could not restore. Worth noting that
the diagnostic path was the accident, not the intent: nothing in the normal build
or test loop would have reported this before someone else hit it.
Same surgical-pin pattern as the SQLitePCLRaw entry directly above it: a direct
PackageReference at the one project where the chain enters the repo
(Core.Configuration), rather than CentralPackageTransitivePinningEnabled, which
this repo already documents as breaking the Roslyn version split. Bumping the
DataProtection parent to 10.0.10 instead was rejected for the reason the sister
repo recorded when it hit the same advisories: 10.0.10 floors
Microsoft.Extensions.* and, via the EFCore adapter, Microsoft.EntityFrameworkCore
at 10.0.10, forcing a family-wide servicing bump and an NU1605 downgrade cascade
that deserves its own reviewed change.
Verified the way the defect demanded — in a fresh worktree, not this one: restore
clean (0 errors, down from 204) and full solution build clean.
Claude-Session: https://claude.ai/code/session_01GASWkNEi68FSCtvr6rLoEW
RedundancyStateActor derived the driver Primary from ClusterState.RoleLeader("driver").
Akka offers two different notions of a "first" member and they are not the same
one: role leader is the lowest-ADDRESSED Up member (host, then port), while
ClusterSingletonManager places singletons on the OLDEST — lowest up-number.
They agree on a freshly-formed cluster, which is why every existing test passed.
They diverge after any restart: the restarted node re-joins as the youngest while
keeping its address, so if it holds the lower address it becomes role leader while
the singletons stay put. The snapshot would then name a Primary that is not
hosting the work, and every Primary-gated surface follows it — inbound device
writes, native-alarm acks, the fleet-wide alerts emit, and the alarm-history
drain would all enable on the wrong node while the node actually running the
singletons stayed gated off.
BuildSnapshot now selects the oldest Up member carrying the driver role, matching
singleton placement. Leaving members are excluded: a node handing its singletons
over must not be named Primary.
NodeRedundancyState.IsRoleLeaderForDriver is renamed IsDriverPrimary, and
NodeHealthInputs.IsDriverRoleLeader likewise. Keeping the old names would have
left the wire contract asserting a derivation the code no longer uses — the same
drift that made this defect invisible.
Proven by a real two-node cluster rather than a mock. RedundancyPrimaryElectionTests
binds the first-joining node to the HIGHER port, so oldest and lowest-address name
different nodes, and includes a fixture assertion that the divergence actually
occurred — without it the real assertion could pass for the wrong reason. Positive
control: restoring the RoleLeader derivation turns exactly the two election tests
red while the fixture check stays green.
Runtime.Tests 440 passed, ControlPlane.Tests 82, Cluster.Tests 36.
Claude-Session: https://claude.ai/code/session_01GASWkNEi68FSCtvr6rLoEW
Ports the sister project's live-proven fix (ScadaBridge cf3bd52f). OtOpcUa ran
the identical configuration it indicts: keep-oldest with down-if-alone = on.
Akka.NET 1.5.62's KeepOldest.OldestDecision only lets the down-if-alone branch
rescue a side holding >= 2 members. A two-node cluster losing a peer is always a
1-vs-1 split, so the branch never fires, the lone survivor falls through to
DownReachable and downs ITSELF, and run-coordinated-shutdown-when-down then
terminates it. down-if-alone is a 3+-node feature and does not do what its name
suggests for a pair: a crash of the oldest node is a total outage, which is the
exact failure the redundancy pair exists to absorb.
Cluster:SplitBrainResolverStrategy now selects the provider, defaulting to
auto-down: Akka's AutoDowning with auto-down-unreachable-after = 15s, so the
leader among the reachable members downs the unreachable peer and a crash of
either node fails over in place. keep-oldest remains available for deployments
that would rather take an outage than ever run dual-active during a real
partition. An unrecognised value fails the host at startup rather than falling
through to the fatal default.
The tests assert the EFFECTIVE configuration — they start a real host through
WithOtOpcUaClusterBootstrap and read akka.cluster.downing-provider-class back off
the running ActorSystem. This is not incidental. The first draft inlined the
three calls the bootstrap makes instead of calling it, which pinned the test's
own wiring: sabotaging production's HOCON precedence left all 36 green. The
prior file had the same shape at a smaller scale, asserting only that
BuildClusterOptions returned a KeepOldestOption — true, and true of a
configuration that cannot fail over. Positive control: making BuildDowningHocon
emit nothing for auto-down turns exactly the two effective-config guards red.
Measured while verifying rather than assumed: HoconAddMode.Append also wins here,
purely because it is added last, so the mode name is not the guarantee. The
comment now says so instead of asserting a precedence rule that does not hold.
Not yet live-drilled on OtOpcUa. The docker-dev rig is a single six-node mesh
where the 1-vs-1 pathology cannot occur; the kill-the-oldest drill belongs with
the per-cluster mesh work that makes every mesh exactly two nodes (design doc
6.2 / Phase 0a). Recorded as an outstanding gate in docs/Redundancy.md.
Claude-Session: https://claude.ai/code/session_01GASWkNEi68FSCtvr6rLoEW
Copies the pre-consolidation store-and-forward queue into the consolidated
database on first boot, then renames the legacy file aside. Rows are in that
file precisely because the historian could not be reached, so dropping them
on upgrade would discard exactly the alarm audit trail the queue exists to
protect.
Runs last in OnReady, after every RegisterReplicated call. It is the only
thing in OnReady that writes rows, and capture is trigger-based: a migration
that ran before registration would recover the backlog locally and never
replicate a line of it, silently and permanently.
Ids are derived from the payload rather than the plan's mig-{node}-{legacyId}
scheme. Node-prefixing solves the collision the legacy AUTOINCREMENT key
would cause -- node A's row 7 and node B's row 7 are different alarms -- but
it preserves a duplication that should be collapsed instead. A warm pair's
two legacy files OVERLAP: HistorianAdapterActor default-writes while its
redundancy role is unknown, so both nodes accepted the same transitions
during every boot window. Prefixed ids would carry those duplicates into the
merged buffer forever; equal-payload ids converge them. The same property
makes a crash between commit and rename harmless under INSERT OR IGNORE.
OnReady now takes IConfiguration rather than offering an overload that skips
the migration. A wiring mistake that silently discarded a node's undelivered
alarm history is not a mistake worth making possible.
The copy is restricted to the columns the legacy table actually has. Naming
a column an older build never wrote throws "no such column", which would
discard every row in the table rather than the one field.
Claude-Session: https://claude.ai/code/session_01GASWkNEi68FSCtvr6rLoEW
Moves the alarm store-and-forward buffer out of its own alarm-historian.db
and into the node's consolidated LocalDb, where it replicates to the
redundant pair peer. A node that dies holding undelivered alarm history no
longer takes it to the grave.
Tasks 2 and 3 land together, as the plan anticipated. They are not separable:
the gate is a constructor argument of the rewritten sink, and a commit that
replicated the queue without gating the drain would be a commit in which both
nodes of a pair deliver every alarm event, continuously.
That drain gate is the load-bearing part of the change, and the recon
explains why it is new work rather than a refinement. Exactly-once delivery
across a pair is enforced today on the ENQUEUE side, by
HistorianAdapterActor: only the Primary enqueues, so the Secondary's queue is
empty and its ungated drain has nothing to send. Replicating the table
destroys that invariant.
The gate is a Func<bool> the caller supplies, because the drain runs on a
timer the sink owns rather than on a mailbox, and Core.AlarmHistorian cannot
reference PrimaryGatePolicy in Runtime. Runtime supplies it via a new
IRedundancyRoleView singleton that DriverHostActor publishes its Primary-gate
verdict to -- the same verdict the inbound-write and native-ack gates use, so
there is no second notion of am-I-the-Primary to drift.
Two failure modes are deliberately closed:
- The view is seeded OPEN, matching the policy's own answer for an unknown
role with no driver peer. A deployment that runs no redundancy never
publishes to it, and defaulting closed would silently stop its alarm
history forever.
- A gate that throws is read as not-now, never as permission, and a closed
gate reports the new HistorianDrainState.NotPrimary rather than Idle. A
Secondary's rising queue is supposed to look different from a stalled
drain, and if BOTH nodes report NotPrimary the pair is misconfigured and
says so instead of quietly filling toward the capacity ceiling.
Row ids are a hash of the payload rather than fresh GUIDs. Both adapters
accept the same fanned transition in the window before the first redundancy
snapshot arrives, and under last-writer-wins an equal key converges those two
accepts into one row instead of duplicating them.
Claude-Session: https://claude.ai/code/session_01GASWkNEi68FSCtvr6rLoEW
Adds the alarm store-and-forward buffer to the consolidated LocalDb file and
registers it for replication, so a node that dies with undelivered alarm
history no longer takes it to the grave.
The table keeps the legacy queue's shape rather than the status column the
plan sketched. An acknowledged row is deleted, not marked delivered: that
needs no second sweeper to keep the table bounded, leaves the capacity
semantics untouched, and the replication engine carries the delete as a
tombstone so the peer drops its copy anyway -- which is what the status
column was for. last_error is retained because it is the only operator-facing
record of why a row was dead-lettered.
The primary key is app-minted TEXT. The legacy AUTOINCREMENT RowId cannot
replicate under last-writer-wins: two nodes would independently allocate
rowid 7 to different alarms and silently overwrite each other. The drain
index therefore orders by enqueued_at_utc rather than insertion order, with
id as a tiebreak so the ordering is total.
Tables are created unconditionally, independent of AlarmHistorian:Enabled.
An empty registered table costs three triggers; creating it lazily would mean
a node that enables the historian later writes rows before its capture
triggers exist, which is exactly the silent-loss shape OnReady's ordering
comment warns about.
Claude-Session: https://claude.ai/code/session_01GASWkNEi68FSCtvr6rLoEW
Hooks the Bootstrap catch that previously went straight to Stale. On a cache hit the
node serves its last-known-good configuration through the outage instead of coming
up with an empty address space; on a miss, behaviour is byte-for-byte what it was.
The read is unkeyed because ClusterId is only derivable from an artifact you already
hold or from the unreachable central DB (recon D-1). Newest pointer wins, which is
correct in every real topology - a node belongs to one cluster and its peer
replicates that same row.
Splits PushDesiredSubscriptionsFromArtifact out of PushDesiredSubscriptions: the
cache path runs precisely when the ConfigDb read cannot succeed, so re-reading the
artifact there would fail by definition.
RunningFromCache is surfaced on NodeDiagnosticsSnapshot (optional param, existing
call sites unaffected). A node running from cache looks entirely healthy from
outside - full address space, live values - but its config is frozen and no deploy
can reach it. It clears only on a real apply from central.
Never registered in DI and dead since Phase 6.1. Keeping two unwired cache designs
invites the next reader to wire the wrong one.
Deletes all three test files - LiteDbConfigCacheTests.cs was missing from the plan's
list and would have failed to compile (it calls new LiteDB.LiteDatabase directly).
StaleConfigFlagTests lives inside ResilientConfigReaderTests.cs, so it goes too.
The XML-doc reference in ILdapGroupRoleMappingService is rewritten rather than removed:
it now records that no sign-in fallback exists and that reviving one means an admin-side
cache on LocalDb.
Layer 3 of #477: a scripted alarm's condition Quality now reflects the WORST
quality across its input tags, mirroring the native OT semantic (#477 L2).
Plumbing (quality was silently discarded twice on the live path):
- VirtualTagActor.DependencyValueChanged gains Quality (defaulted Good); the
DependencyMuxActor forwards the published AttributeValuePublished.Quality it
already carried; ScriptedAlarmHostActor.OnDependencyChanged pushes the real
quality into the engine (was hardcoded 0u/Good).
Engine (Core.ScriptedAlarms):
- ScriptedAlarmEngine computes worst-of-input quality each eval (skipping
not-yet-published inputs, which are a readiness concern, not a quality signal)
and carries it on ScriptedAlarmEvent.WorstInputStatusCode.
- A real transition carries the current worst quality so ToSnapshot's full
snapshot doesn't clobber quality back to Good (e.g. transition while Uncertain).
- A Bad input freezes the condition (no transition), like a comms-lost native
driver; a quality-bucket change with no transition emits the new
EmissionKind.QualityChanged, routed to the existing #477-L2
AlarmQualityUpdate -> WriteAlarmQuality node path (quality only, no /alerts
row, no historian write). ScriptedAlarmSource skips QualityChanged so it never
fabricates a phantom IAlarmSource event.
Host: ToSnapshot maps WorstInputStatusCode -> OpcUaQuality; OnEngineEmission
routes QualityChanged out of band.
Tests (TDD, RED-first): engine worst-carry + Bad/restore QualityChanged +
unchanged-bucket-no-emit; source swallows QualityChanged; mux forwards quality;
host Bad-dep -> AlarmQualityUpdate(no alerts) + transition snapshot carries worst.
Docs: AlarmTracking.md Layer-3 section + design doc.
Closes#478
Part 9 ConditionType.Quality was never assigned; default(StatusCode)==Good
so every native + scripted condition reported Good unconditionally — a
comms-lost device still showed a healthy, inactive, Good condition (a
wrong-VALUE bug, distinct from the null-value #473/#475). Clients (and HMIs
bucketing on IsGood) could not tell "genuinely inactive" from "lost contact".
Layer 1 — make Quality a real, plumbed field:
- AlarmConditionSnapshot gains OpcUaQuality Quality (default Good).
- MaterialiseAlarmCondition sets it (native BadWaitingForInitialData, scripted Good).
- WriteAlarmCondition projects snapshot.Quality; the delta-gate gains a Quality
member so a quality-bucket change fires a Part 9 event.
Layer 2 — drive native quality from driver connectivity (a comms-lost driver
emits no alarm transitions, and an alarm-bearing raw tag has no value variable,
so quality can't come from either existing channel):
- DriverInstanceActor Tells parent ConnectivityChanged on Connected/Reconnecting.
- DriverHostActor fans it to every native condition the driver owns as
OpcUaPublishActor.AlarmQualityUpdate (Good on connect, Bad on disconnect).
- New dedicated IOpcUaAddressSpaceSink.WriteAlarmQuality sets ONLY Quality and
fires only on a bucket change — never touches Active/Acked/Retain (an active
alarm that loses comms stays active). Not a full-snapshot re-projection, so it
can't clobber severity/message and works for a never-fired condition.
Forwarded through DeferredAddressSpaceSink (F10b trap; auto-verified by the
reflection forwarding guard). Ungated by redundancy role; no /alerts row.
Scripted conditions stay Good; worst-of-input quality deferred to #478 (Layer 3).
Tests: node-level (materialise/project/no-clobber/unknown-node no-op),
NativeAlarmProjector, DriverInstanceActor connectivity emission, DriverHostActor
fan-out, OpcUaPublishActor routing, and the wire-level guard
(Condition_event_Quality_tracks_source_connectivity_on_the_wire) — RED-verified
against a simulated pre-fix always-Good server. Existing DriverInstanceActor
parent probes ignore the new ConnectivityChanged.
Docs: docs/AlarmTracking.md §"Condition source-data Quality (#477)";
design doc docs/plans/2026-07-17-alarm-condition-quality-477-design.md.
Materialize each native alarm ONCE at the raw tag (ConditionId = RawPath, Raw
realm); wire the single condition as an SDK event notifier of each referencing
equipment's UNS folder so one ReportEvent fans to every root without
re-reporting per root (which would break Server-object dedup + Part 9 ack
correlation).
- New sink method WireAlarmNotifiers(alarmNodeId, alarmRealm,
notifierFolderNodeIds, notifierFolderRealm) on IOpcUaAddressSpaceSink,
forwarded through DeferredAddressSpaceSink + SdkAddressSpaceSink +
NullOpcUaAddressSpaceSink (the forwarding-trap guard); auto-covered by the
DeferredSinkForwardingReflectionTests realm + forwarding guards + a
hand-written forward test.
- OtOpcUaNodeManager: the normative AddNotifier(isInverse) pair + idempotent
EnsureFolderIsEventNotifier per equipment folder; tracked per condition in
_alarmNotifierWiring. Teardown symmetry: RemoveNotifier(bidirectional:true) on
RebuildAddressSpace, RemoveAlarmConditionNode, and RemoveEquipmentSubtree so no
inverse-notifier entry leaks across redeploys.
- AddressSpaceApplier.MaterialiseRawSubtree wires notifiers for each native alarm
tag, resolving its ReferencingEquipmentPaths (Area/Line/Equipment) to the
EquipmentId folder NodeIds via BuildEquipmentIdByFolderPath.
- AlarmTransitionEvent gains ReferencingEquipmentPaths (empty default); /alerts
renders the referencing-equipment list as display metadata.
- Un-skipped + rewrote the native-alarm dark tests
(DriverHostActorNativeAlarmTests x6, DriverHostActorNativeAlarmAckRoutingTests
x1) for the v3 raw-condition model; new NodeManagerMultiNotifierAlarmTests
proves multi-notifier wiring + teardown symmetry (no leaked duplicates after a
re-trip) + applier wiring test.
Claude-Session: https://claude.ai/code/session_01LVneM3eh1UtJxEisFXgmox
H1 (HIGH): write-routing key now (AddressSpaceRealm, bareId), not bare-only.
A raw s=<RawPath> and a UNS s=<Area/Line/Equip/Eff> can collide as bare
strings; the bare-only key let a colliding raw+UNS pair route to the WRONG
driver ref (last-writer-wins). The realm the node manager resolves (RealmOf)
is now threaded through IOpcUaNodeWriteGateway.WriteAsync -> RouteNodeWrite ->
_driverRefByNodeId keyed by (realm, bareId). New regression test:
Colliding_raw_and_uns_bare_ids_route_to_their_own_driver_by_realm.
M1 (MEDIUM): discovered-node injection made coherently DORMANT. HandleDiscoveredNodes
hard-short-circuits (single enforcement point; _discoveredByDriver never
populates so the re-inject tail is inert too), with a clear log pointing at the
/raw browse-commit flow. New pin: Discovered_nodes_are_ignored_dormant_in_v3;
the 16+2 v2 injection scenarios re-pointed to an accurate skip reason
(DiscoveryInjectionDormantV3).
M2 (MEDIUM): realm-qualified dual-node self-correction tests —
Failed_uns_write_reverts_uns_node_and_leaves_raw_node_untouched +
Raw_realm_revert_reverts_raw_node_only (the second fails if the realm is dropped).
L1: removed the = AddressSpaceRealm.Uns defaults from the consequential
node-manager mutation methods (WriteValue/WriteAlarmCondition/MaterialiseAlarmCondition/
EnsureFolder/EnsureVariable/UpdateFolderDisplayName/UpdateTagAttributes/
RaiseNodesAddedModelChange/Remove*/RevertOptimisticWriteIfNeeded) + the
AttributeValueUpdate/AlarmStateUpdate records, so the compiler forces explicit
realm; read-only accessors + internal builders retain their defaults.
L3: fixed the stale VirtualTagHostActor class comment (V3NodeIds.Uns, not the
retired EquipmentNodeIds.Variable).
Also: DeploymentArtifactRawUnsParityTests — Raw/UNS node-set byte-parity
round-trip between AddressSpaceComposer.Compose and DeploymentArtifact.ParseComposition.
Claude-Session: https://claude.ai/code/session_01LVneM3eh1UtJxEisFXgmox
Wave B of Batch 4 — the runtime binding seam for the dual namespace.
Applier (both realms, explicit realm at every sink call site):
- MaterialiseRawSubtree: Raw containers as folders + Raw tags as variables
keyed by RawPath (native-alarm tag → single Part 9 condition at the RawPath),
all in AddressSpaceRealm.Raw; historian tagname = override else RawPath.
- MaterialiseUnsReferences: each UNS reference Variable under its equipment
folder (Uns realm) + an Organizes UNS->Raw edge; inherits writable/array/
historian tagname from the backing raw tag (both NodeIds -> one tagname).
- FeedHistorizedRefs / ProvisionHistorizedTags now source RAW tags (mux ref
stays single, keyed by RawPath); ApplyPureRemove tears down raw tags + UNS
refs in place (raw-container removal falls back to rebuild).
DriverHostActor (dual-NodeId, single-source fan-out):
- _nodeIdByDriverRef value gains a realm (NodeRealmRef); rebuilt from
RawTags UNION UnsReferenceVariables so one (DriverInstanceId, RawPath) fans
to the raw NodeId AND every referencing UNS NodeId with identical
value/quality/timestamp. Write inverse map keyed by the bare id; the
ns-qualified NodeId the write hook passes is normalised (BareNodeId) so a
write to either NodeId resolves the same driver ref (-> RawPath write).
- Native raw alarm condition routing is realm-tagged (Raw); AttributeValueUpdate
+ AlarmStateUpdate carry the realm through to the sink.
Retire EquipmentNodeIds -> V3NodeIds.Uns (applier/VirtualTagHostActor) and
RawPaths.Combine (DiscoveredNodeMapper, discovered nodes are Raw now).
DeploymentArtifact.ParseComposition emits the Raw + UNS subtrees byte-parity
with the composer (reconstruct entities -> AddressSpaceComposer.Compose).
Sink surface: removed the transitional `= AddressSpaceRealm.Uns` defaults from
IOpcUaAddressSpaceSink / ISurgicalAddressSpaceSink / SdkAddressSpaceSink /
DeferredAddressSpaceSink / NullOpcUaAddressSpaceSink — every call site is now
explicit (realm reordered before the trailing optionals on EnsureVariable +
MaterialiseAlarmCondition). Node-manager convenience methods keep their
defaults (they are not the interface impl; Sdk delegates explicitly).
Tests: rewrote DriverHostActorLiveValueTests (fan-out drift, 1:N) +
DriverHostActorWriteRoutingTests (dual-NodeId raw/uns write routing) to the v3
raw+uns model; new AddressSpaceApplierRawUnsTests; migrated the EquipmentTags
provisioning/feed tests to RawTags; swept EquipmentNodeIds test callers.
Claude-Session: https://claude.ai/code/session_01LVneM3eh1UtJxEisFXgmox
Close the Wave-A M1 gap: the sink surface had no way to wire the mandated
cross-tree Organizes reference from each UNS reference Variable to its backing
Raw node, forcing WP3 to reopen the frozen surface. Add a dedicated
realm-qualified AddReference method instead.
- IOpcUaAddressSpaceSink.AddReference(sourceNodeId, sourceRealm, targetNodeId,
targetRealm, referenceType="Organizes"): realm-qualified both ends; idempotent;
a missing endpoint is a logged no-op (never throws) so a mid-rebuild race can't
fault a deploy. Base-interface capability (no surgical sniff, no transitional
default — WP3 wires it explicitly per UNS reference variable).
- SdkAddressSpaceSink forwards to the node manager; DeferredAddressSpaceSink
forwards unconditionally (like EnsureFolder); NullOpcUaAddressSpaceSink no-ops.
- OtOpcUaNodeManager.AddReference: resolve both nodes by full ns-qualified key
(variable/folder/condition via ResolveNodeState), guard both-exist, then wire
the edge bidirectionally (forward Organizes on source, inverse on target) with a
ReferenceExists idempotency guard + ClearChangeMasks on mutated sides. Reference
type resolved by ResolveReferenceType (Organizes default). Added internal
GetNodeReferences test/diagnostic accessor.
- Reflection guard: the exhaustive-forwarding test + the realm-discriminator guard
auto-cover AddReference (it has two AddressSpaceRealm params) — no edit needed.
- New SdkAddressSpaceSinkTests: Organizes UNS→Raw edge created bidirectionally +
idempotent; missing endpoint is a safe no-op.
- All 15 IOpcUaAddressSpaceSink test doubles gain the AddReference no-op so the
solution still builds.
Build: dotnet build ZB.MOM.WW.OtOpcUa.slnx = 0 errors.
Tests: Commons.Tests 310/310; OpcUaServer.Tests 337 passed / 4 pre-existing skips.
Claude-Session: https://claude.ai/code/session_01LVneM3eh1UtJxEisFXgmox
Register both v3 namespaces (Raw first, UNS second) on OtOpcUaNodeManager and
thread an AddressSpaceRealm discriminator through every node-naming sink method
so a bare node id is resolved to the correct namespace by realm — never parsed
out of the id string.
- IOpcUaAddressSpaceSink / ISurgicalAddressSpaceSink: every node-naming method
gains `AddressSpaceRealm realm = AddressSpaceRealm.Uns` (transitional default so
un-migrated WP3 call sites still compile; WP3/Wave B makes them explicit and
removes the default). Null + SdkAddressSpaceSink impls updated; DeferredAddress-
SpaceSink forwards realm through every method (the forwarding trap).
- DeferredSinkForwardingReflectionTests: existing exhaustive-forwarding guard
auto-covers the new signatures; added an explicit guard that every node-naming
sink method carries an AddressSpaceRealm parameter (RebuildAddressSpace exempt).
- OtOpcUaNodeManager: register RawNamespaceUri + UnsNamespaceUri; realm->namespace
index via NamespaceIndexForRealm; all node maps (_variables/_folders/
_alarmConditions/_nativeAlarmNodeIds/_historizedTagnames/_eventNotifierSources)
re-keyed by the full ns-qualified NodeId string so Raw and UNS nodes sharing a
bare id stay distinct; _notifierFolders already NodeId-keyed. A historized UNS
reference node registers the SAME historian tagname as its backing raw node
(both NodeIds -> one tagname). Inbound-write hook routes the full ns-qualified
NodeId to the write gateway (realm-aware) and reverts by bare id + realm.
HistoryRead seams resolve via NodeId directly. DefaultNamespaceUri kept as a
transitional alias to UnsNamespaceUri for the SubscriptionSurvivalTests.
- Test doubles across Commons.Tests / OpcUaServer.Tests / Runtime.Tests updated to
the new interface signatures; SdkAddressSpaceSinkTests asserts the UNS namespace
index for default-realm nodes.
Build: dotnet build ZB.MOM.WW.OtOpcUa.slnx = 0 errors.
Tests: Commons.Tests 310/310; OpcUaServer.Tests 335 passed / 4 pre-existing skips.
Claude-Session: https://claude.ai/code/session_01LVneM3eh1UtJxEisFXgmox
Batch 4 contracts commit (coordinator lands before Wave A fan-out). Purely
additive so wave agents branch from a green base:
- AddressSpaceRealm enum (Raw | Uns) — the explicit realm discriminator that
travels alongside a node's s= identifier at every sink seam (WP2 adds it to
IOpcUaAddressSpaceSink / ISurgicalAddressSpaceSink; WP3 threads it).
- V3NodeIds — the two namespace URI constants (https://zb.com/otopcua/raw,
https://zb.com/otopcua/uns, replacing the single .../ns) + Raw() pass-through
(s= id == RawPath) + Uns()/UnsChild() slash-joined Area/Line/Equipment[/Eff]
builders, both sharing RawPaths.Separator + ordinal segment validation.
Placement note: URIs live in V3NodeIds (Commons) rather than beside the retired
OtOpcUaNodeManager.DefaultNamespaceUri so runtime + tests reference them without
depending on OpcUaServer (single-source-of-truth, §5). WP2 rewires the node
manager to register both via V3NodeIds.RawNamespaceUri/UnsNamespaceUri.
EquipmentNodeIds retirement is NOT in this commit: its callers are the applier +
runtime (DriverHostActor/VirtualTagHostActor/DiscoveredNodeMapper), all WP3-owned
(the composer does not use it) — deleting it here would red the base. WP3 sweeps
it in Wave B.
Claude-Session: https://claude.ai/code/session_01LVneM3eh1UtJxEisFXgmox
Adds the Calculation pseudo-driver (tags computed by C# scripts over other tags' live
values) plus the host seam that feeds it:
- IDependencyConsumer capability interface (Core.Abstractions) + DriverTypeNames.Calculation.
- CalculationDriver : IDriver, ISubscribable, IReadable, IDependencyConsumer — change-gate +
dedupe (VirtualTagActor parity), timer-group scheduler, Bad-transition + script-log emission,
Good recovery; reuses the T0-4 CalculationEvaluator.
- DriverHostActor spawns a DependencyConsumerMuxAdapter per dependency-consuming driver,
registering its refs on the per-node DependencyMuxActor and forwarding DependencyValueChanged
→ OnDependencyValue; re-registers on every apply, torn down with the driver.
- Factory + probe registered in DriverFactoryBootstrap (keeps the T0-3 guard green); guard test
csproj references the driver so the bin-scan discovers the factory.
- DeploymentArtifact injects the resolved scriptSource (scriptId → SourceCode) into a calc tag's
delivered TagConfig so the host-blind driver can compile it.
- DraftValidator deploy gates: CalculationScriptMissing / CalculationScriptNotFound (scriptId
existence) + CalculationDependencyCycle (DependencyGraph.DetectCycles over calc→calc edges).
- Tests: driver units (dep-ref extraction, change-gate, dedupe, Bad+script-log+recovery, timer,
read), tag-config parsing, DraftValidator gates (self/2-cycle/cross-driver-terminal), and a
Runtime integration test proving values FLOW mux → adapter → driver → calc-of-calc end-to-end.
Claude-Session: https://claude.ai/code/session_01LVneM3eh1UtJxEisFXgmox
Add a pure, no-I/O RFC 4180 CSV reader and writer to the Commons project
(greenfield — no CSV code existed).
CsvParser: string / TextReader -> rows of string[]; streaming IEnumerable
overload + eager Parse(string) + thin ParseWithHeader. Handles quoted
fields (embedded delimiter/CR/LF/CRLF, "" -> " escape), space
preservation, CRLF/LF/CR terminators, no phantom trailing row. Strict
malformed-input policy: FormatException with 1-based line/column on a
quote inside an unquoted field, a char after a closing quote, or an
unterminated quote. Faithful empty-line policy: a blank line is one empty
field (callers filter).
CsvWriter: rows -> string / TextWriter; quote-on-demand (delimiter, quote,
CR, LF only; internal quotes doubled), configurable delimiter/newline
(default CRLF), optional quote-all, no trailing terminator.
Tests (xUnit + Shouldly, 109): full RFC edge corpus for the parser, the
writer quote-on-demand rules, and the required Parse(Write(rows)) == rows
round-trip property over a table of every tricky character (x CRLF/LF/
quote-all/semicolon).
Claude-Session: https://claude.ai/code/session_01LVneM3eh1UtJxEisFXgmox
Add DriverTypeNames as the single source of truth for driver-type
dispatch strings, one const per currently-registered driver factory
(value = the exact factory DriverTypeName). Fixes the latent drift
between hand-authored dispatch-map literals and the real factory names
(e.g. TwinCAT/FOCAS/GalaxyMxGateway) at the source.
A reflection guard test in Core.Abstractions.Tests builds the real
registered-factory set by driving each *DriverFactoryExtensions.Register
into a live DriverFactoryRegistry (mirroring the Host's
DriverFactoryBootstrap) and asserts bidirectional parity with the
constants, so any future rename on either side breaks the test gate.
Consumers are rewired in Batch 2 WP8; Calculation's const lands with its
factory in WP7.
Claude-Session: https://claude.ai/code/session_01LVneM3eh1UtJxEisFXgmox
- ConfigComposer: snapshot v3 tables (RawFolders/TagGroups/UnsTagReferences),
drop the retired Namespaces snapshot; RevisionHash follows the new blob.
- DeploymentArtifact: compute each raw tag's RawPath (RawFolder->Driver->Device->
TagGroup ancestry via shared RawPathResolver); per-driver RawTags + merged
DriverConfig+DeviceConfig config injected into DriverInstanceSpec via
DriverDeviceConfigMerger; ParseComposition emits an empty EquipmentTags set
(DARK until Batch 4); EquipmentNode driver/device hooks always null; cluster
scoping attributes equipment by UNS line only.
- AddressSpaceComposer: rewritten to the v3 shape (no Namespace/NamespaceKind,
no dropped Tag/Equipment fields); emits empty EquipmentTags (parity mirror).
- DriverHostActor: fan-out/write map tuple member FullName -> RawPath.
- Commons: new RawPathResolver (shared identity authority) + DriverDeviceConfigMerger
(single/multi-device endpoint+RawTags merge).
- DraftValidator: v3 rules — raw-name charset (RawPaths.ValidateSegment),
historized effective-tagname <=255, UNS effective-leaf uniqueness across
UnsTagReference/VirtualTag/ScriptedAlarm; DraftSnapshot(+Factory) carry the new tables.
- AdminOperationsActor: tag-config inspection resolves driver via Device (no
EquipmentId/DriverInstanceId on Tag).
- Tests: RawPathResolver/merger unit tests (Commons.Tests, green) +
DeploymentArtifact RawPath/dark test (Runtime.Tests, awaits WP6 corpus fixes).
- EquipmentTagRefResolver<TDef> re-keyed to RawPath: byName(RawPath)-only lookup,
blob-parse fallback deleted (a miss is a miss). Clear() retained as documented no-op.
- New RawTagEntry(RawPath, TagConfig, WriteIdempotent) in Core.Abstractions — the
artifact->driver tag-delivery unit both WP5 (factory consumer) and WP4 (artifact
producer) code against.
- EquipmentNodeWalker greened for the dark Batch-1 address space: drop the raw-tag
emission path (relied on removed Tag.EquipmentId/FullName); keep Area/Line/Equipment
folders + VirtualTags + ScriptedAlarms. Raw-tag reference materialization is Batch 4.
Commons, Core.Abstractions, Configuration, Core all build green.
Task 9: DiscoverTreeAsync UntilStable settle loop (FOCAS) — re-capture on a 1s interval until
the node set is non-empty and stable across two passes, bounded by open-timeout; on
timeout with a prior non-empty capture, return it (best-effort) instead of failing.
Task 11: BrowserSessionService resolves bespoke-first, falls back to IUniversalDriverBrowser
when no bespoke browser matches and CanBrowse is true; new CanBrowse on the service.
16 unit tests green (4 settle + 12 service).
Task 1: ITagDiscovery.SupportsOnlineDiscovery default member (=> false)
Task 2: Commons -> Core.Abstractions ProjectReference
Task 13: TagModal BuildEditorParameters passes DriverType + GetDriverConfigJson;
all 7 typed tag editors declare the two new [Parameter]s (DynamicComponent
throws on unmatched params, so every editor must accept them).
R2-11 Phase C. All six equipment-tag parsers (Modbus/S7/AbCip/AbLegacy/
TwinCAT/Focas) now read enum fields via the new TagConfigJson.TryReadEnumStrict:
absent -> fallback, valid -> parsed, present-but-invalid (typo) -> TryParse
returns false -> EquipmentTagRefResolver.TryResolve false -> driver surfaces
BadNodeIdUnknown, instead of the old lenient path that silently defaulted a
typo to a wrong-width Good.
Modbus flips all three enum fields (region/dataType/byteOrder); the other five
flip dataType. The deploy-time Deployment:TagConfigValidationMode=Error gate is
unchanged and remains the operator pre-flight.
Coverage:
- Six *EquipmentTagParserStrictnessTests inverted from Freeze_typo_* (lenient)
to Typo_*_rejects_the_tag + Valid_*_still_parses.
- TagConfigJsonTests.TryReadEnumStrict_rejects_only_invalid matrix.
- Driver-level end-to-end proof:
AbCipEquipmentTagTests.Driver_read_of_a_typod_dataType_ref_surfaces_BadNodeIdUnknown
drives the real AbCipDriver.ReadAsync through resolve->status.
Golden parity corpus has no typo'd enums, so the flip is a no-op there.
Full solution builds clean; all six driver suites + core + parity + gate green.
The patched native SQLite bundle shipped: SQLitePCLRaw.bundle_e_sqlite3 2.1.12
is the first version outside the CVE-2025-6965 / GHSA-2m69-gcr7-jv3q vulnerable
range (<= 2.1.11), embedding the SQLite 3.50.2+ fix.
- Bump Microsoft.Data.Sqlite 9.0.0 -> 10.0.7 (aligns with the EF Core 10.0.7 family).
This alone still pulls the native bundle 2.1.11, so:
- Add a surgical direct pin of SQLitePCLRaw.bundle_e_sqlite3 2.1.12 in Core.AlarmHistorian
(the sole consumer), overriding the transitive 2.1.11 without enabling
CentralPackageTransitivePinningEnabled (which breaks the Roslyn 5.0/4.12 split).
- Remove the temporary NuGetAuditSuppress from Directory.Build.props.
Verified: dotnet restore/build clean with audit active (no GHSA-2m69), every
in-solution project resolves lib.e_sqlite3 2.1.12, AlarmHistorian tests 29/29 green
against the real native bundle.
Closes#458
Four continuous-historization types (IHistorizationOutbox, HistorizationOutboxEntry,
IHistorianValueWriter/HistorizationValue, HistorizationCommitMode) drifted into a
ZB.MOM.WW.OtOpcUa.Core.Abstractions.Historian sub-namespace while the other six files
in the same folder correctly use the root namespace. This violated decision #59's
flat-public-surface rule and left InterfaceIndependenceTests.AllPublicTypes_LiveInRootNamespace
red on master (pre-existing, predates round-2 remediation).
Move all four to the root namespace and drop/retarget the now-redundant
'using ...Core.Abstractions.Historian;' in the ~11 consumers. No behavioral change.
Verified: Core.Abstractions.Tests 129/129 (was 128/129), Runtime.Tests Historian+DI 72/72,
Gateway driver unit 102/102, full solution build 0 errors.