A parking lot is one pool of spaces with a flexible set of entry/exit
points — no "lane". Direction is a property of each RELAY inside an access
controller; readers/cameras bind to a controller relay and inherit it.
Schema:
- drop `lane` from ledger_events, device_events, sessions
- rename lane_devices -> devices (no lane/direction columns)
- access config.relays=[{relay,direction,button?}]; reader/camera
config.controllerId+relay binding
- fresh 0000_baseline migration (history reset; dev data was throwaway)
Signed ledger:
- remove `lane` from canonicalize(); bump signer keyId sw-hmac-v1 -> v2
(v1 events won't verify under v2 — intentional, gated per-event by keyId)
Server:
- new device-resolve.ts (replaces lane-map.ts): relayForButton,
relayForDevice, firstRelayByDirection, devicesByDirection
- entry-flow: button terminal -> its relay; exit/permit: reader's bound
relay; dispatcher resolves the bound relay + inherited direction
- camera snapshots fire by direction site-wide, async, never block open
- DeviceConfig widened to nested JSON for relays[]
Web:
- wizard: no lane selector; add controllers (relay map + entry-button
terminal) first, then bind readers/cameras/printers to a controller relay
Wiki: new entry-exit-points.md (replaces lane-direction); reworked
entry-exit-readers, parking-session, first-run-setup, device-registry,
append-only-event-chain, device-events; removed stale lane/LaneMap mentions.
7.3 KiB
type, tags, sources, updated
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2026-06-15 |
Append-Only Event Chain
The core integrity mechanism against operator fraud (see threat-model). (See parking-system-architecture §3.)
Three layered properties:
- Append-only event model. Entry/exit events are never edited or deleted, only appended. A "void" is itself a recorded event, not an erasure.
- Tamper-evident chaining. Each event stores the hash of the previous event (a hash chain). Reordering or deleting breaks the chain visibly.
- Hardware-backed signing. The atecc608 secure element signs each event with a non-extractable key. This is what makes the chain unforgeable rather than merely self-consistent — someone who owns the machine still cannot forge a valid entry.
It only becomes trustworthy as an external fraud control when paired with reconciliation against an authority the operator can't alter.
Two event streams — the signed ledger vs. device telemetry (decision 2026-06-15)
These are different concerns and live in different tables:
ledger_events— this signed, hash-chained, atecc608-signed business ledger:vehicle_entry/vehicle_exit/payment/void/shift_z_report, plus the witness-gradebarrier_open_command/barrier_open_observedandanomaly. This is the anti-fraud record that reconciliation runs against; sessions/tariff/occupancy are projections over it. (This is the table formerly calledevents.)device_events— unsigned operational telemetry: relay fired, printer paper-out, camera offline, reader read, raw input edges. High-volume, churny, not anti-fraud; may rotate/prune. Keeping it out of the signed chain keeps the ledger small and high-value.
A raw button press is device telemetry, not a business fact. It lands in
device_events; the entry flow then mints a signedvehicle_entryin the ledger once a ticket prints and the barrier is commanded. (This supersedes the earlier "every device event lands in the chain" framing and theinput_received-as-signed-event approach — see device-input-flow.)
Implementation (apps/server)
Implementation-derived. The schema (
packages/dbevents) and types (packages/sharedParkingEvent) predate this; the writer/signer are new.
EventLog(apps/server/src/event-log.ts) is the append primitive.append()reads the latest row, setsindex = prev + 1,prevHash = sha256(canonical(prev))(genesis = null), signs the canonical form, and inserts. There are no update/delete paths.- Serialized appends. SQLite is single-writer, but read-prev → compute-hash → insert is
multi-step, so
EventLogalso guards it with an in-process async lock — otherwise two near- simultaneous events could claim the sameindexor chain off a staleprevHash. Verified: 5 concurrent appends produced indices 1..5 with an intact chain. - Canonical form is a fixed-order JSON array (
index,type,direction,lane,source,identity, occurredAt,prevHash) — byte-stable, since the chain + signatures depend on it. The volatile rowidis excluded; chain identity isindex+ content. verifyChain()walks oldest→newest, recomputing hashes + signatures. Catches tampered content (bad signature), reordering / a deleted row (indexgap), and aprevHashmismatch. Exposed atGET /api/events/verify(admin). Read access to the log:GET /api/events.
The Signer abstraction (software now, ATECC608 later)
Signing goes through a Signer interface (packages/shared) — the abstraction over the
atecc608. Because the chip being wired is still open-questions, the
server ships a SoftwareSigner (HMAC-SHA256, key from EVENT_SIGNING_KEY). Swapping to the
secure element is a new Signer impl with no EventLog change; each event stores its keyId
so old events stay verifiable.
⚠️ The software signer makes the chain self-consistent + tamper-evident, but not unforgeable by someone who owns the host — only the ATECC608's non-extractable key gives property (3) above. Until the chip is wired, the chain detects tampering by outsiders and accidental corruption, but an operator with the signing key + DB access could re-sign a forged chain. This is the central reason #6 matters.
Business-layer event types (the ledger)
The parking-session domain folds over these signed ledger events:
vehicle_entry/vehicle_exit— a stay's endpoints;identitycarries the ticket id or plate.payment— a settled fee at the pay station, referencing the session it pays for (amount in integer minor units; see tariff). Making "paid" a signed event — not a mutable row — is the whole point: an operator can't forge it or silently delete it.void— a correction / lost-ticket write-off; like every other void here it is an appended event, never an erasure.shift_z_report— the signed per-shift takings summary.
A session is a projection over this chain, never a mutable table — the same anti-fraud reason the chain exists. See parking-session.
As-built (table split done)
The split above is implemented: raw Dingtian input (button) pushes are device telemetry in
device_events (unsigned, prunable), keyed to the firing devices instance. Only the business
vehicle_entry the press drives is signed into ledger_events. The signed events carry no
lane — the pool-of-spaces model has none (dropped 2026-06-16; see entry-exit-points), and
the canonical form bumped sw-hmac-v1 → sw-hmac-v2 accordingly.
⚠️ Limitation: the log captures HOST-ORIGINATED actions only
The event log records what the host did (inputs it received, opens it commanded). It is
blind to out-of-band relay actuation — anything that fires a relay without going through the
host. Proven on hardware: a binary relay command sent directly to the device with the
(sniffable) relay_pw fired a relay and produced zero events. Out-of-band paths include:
- the password-less string protocol (until disabled — see dingtian-relay),
- a sniffed/replayed
relay_pwbinary command (plaintext UDP — relay control is defence-in-depth, not a boundary), - the device's own
ip_watchdog(auto-toggles a relay on ping-failure — must stay disabled), - a future
barrier_open_commandpath is host-side and would log; these bypass it.
So the log alone does not detect operator/attacker fraud at the relay. That is by design — the actual control is reconciliation: compare the host's signed commanded opens against an independent witness of opens that physically happened (a door/loop sensor on a Dingtian input → which DOES push + log; the opencv-anpr-service's plate and vehicle read; payment/Z-report). A physical open with no matching signed command is the fraud signal — and, with vehicle verification, a plate that enters/exits on a different car is too (the plate-spoofing case). Both the witness sources and the reconciliation logic are NOT yet built — this is the main open gap. Prevention (VLAN isolation so the attacker can't reach UDP 60000) is the necessary first line; detection-via-reconciliation is the backstop.