Camera snapshots were stored RAW — the camera's full-res JPEG straight into the BLOB, no resize/recompress. Measured on the dev DB: 300 snapshots = 81.7 MB = ~72% of the 114 MB SQLite file (the big ones 2688×1520 / ~600 KB, Hikvision main stream). They dominated the appliance's single backed-up DB file. Re-encode on capture (snapshot.ts): - Downscale each frame to SNAPSHOT_MAX_EDGE (1280px long edge) + recompress at SNAPSHOT_JPEG_QUALITY (80) via sharp (libvips, Apache-2.0) before storage — ~6-10× smaller (verified 2688×1520 → 1280×724, ~8×), plate still readable, clean image/jpeg (drops the camera's charset cruft). STORAGE-ONLY: recognition keeps the ORIGINAL full-res bytes (downscaling hurts OCR). Fail-soft — a re-encode error stores the original, never drops the snapshot or blocks the (already-open) path. sharp lives in apps/server (owns the capture path), where bcrypt already establishes the native-dep pattern. Disk-pressure retention (snapshot-retention.ts) — a SAFETY VALVE, not the daily mechanism (the re-encode does that). Daily check reads the DB filesystem used% (statfs on db.$client.name); no-op unless ≥ SNAPSHOT_DISK_HIGH_PCT (70). Over the mark: delete the OLDEST until an estimated SNAPSHOT_DISK_FREE_TARGET_PCT (10%) of disk is freed — never below SNAPSHOT_MIN_KEEP (500) — then VACUUM once to return space to the OS. A DELETE only frees SQLite pages (disk doesn't drop until VACUUM), so the loop is driven by estimated freed bytes (SUM(length(bytes))), not a live disk re-read; the prune owns the DB-locking VACUUM, run daily off-peak. diskUsage is injectable for tests. None of this touches the signed ledger — snapshots are unsigned/advisory, referenced only by id. Tests: encodeForStorage (downscale / clean-type / no-enlarge / fail-soft) + pruneSnapshots (no-op below mark / delete-oldest-to-target + VACUUM / MIN_KEEP floor / skip-VACUUM-when-empty). All four snapshot env knobs documented in the komodo env reference. Full workspace build/lint/test green; the prune smoke-verified on a scratch DB copy (file shrank after VACUUM). Existing ~81.7 MB of raw snapshots are unchanged (a one-off re-encode backfill is a separate optional follow-up). Updated entry-exit-points + technology-stack wiki. Claude-Session: https://claude.ai/code/session_01Xcm6ikLgGoCxxHrxtjkk5V
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type, tags, sources, updated
| type | tags | sources | updated | ||||
|---|---|---|---|---|---|---|---|
| concept |
|
2026-06-16 |
Entry / Exit Points (pool-of-spaces model)
A parking lot is one pool of spaces with a flexible set of entry points and exit points — any number of each, in any combination (1 in + 1 out, 1 in + 2 out, 2 in + 1 out, …). There is no "lane" concept anywhere in the system (dropped 2026-06-16 — see below).
Direction lives on the relay, not the controller
An access controller (e.g. a dingtian-relay board) has several relays — each relay opens one barrier. Direction is a property of each relay, declared in the controller's config:
// access `devices` row — one Dingtian board
config: {
host: "192.168.1.100",
relays: [
{ relay: 1, direction: "entry", button: 1 }, // entry barrier; entry button on input 1
{ relay: 2, direction: "exit" } // exit barrier; opened by a reader, no button
]
}
direction:entry|exit|both(both= one barrier/relay serving in and out).button: the input terminal the transient entry button is wired to. Only entry/both relays have one. Absent = no button at that barrier (subscriber/reader-driven only).presenceInput/entryCooldownSec: the one-car-one-ticket guard for the entry button —presenceInputis the input terminal of a vehicle-presence loop (physical guard), orentryCooldownSeca fallback timer when there's no barrier feedback. See entry-double-press.
The four real layouts all fall out of this:
| Layout | Controllers | Relays |
|---|---|---|
| 1 barrier, both directions | 1 | {relay:1, both, button:1} |
| 2 barriers, 1 board | 1 | {relay:1, entry, button:1}, {relay:2, exit} |
| 2 barriers far apart | 2 | board A {relay:1, entry}, board B {relay:1, exit} |
| 1 entry + 2 exit | 3 | A entry; B, C each exit |
Readers / cameras BIND to a relay
A reader or camera points at the barrier it physically sits at, via its config:
config: { ...readerConfig, controllerId: "<access devices.id>", relay: 2 }
Its direction is inherited from that relay. So an exit read opens exactly that relay —
no ambiguity even with multiple exit barriers ("the relay at that reader", decided 2026-06-16).
Binding is optional: an unbound device falls back to a config.direction + the first relay
site-wide of that direction (keeps the single-barrier case trivial). LPR is a snapshot sink —
an ANPR service (opencv-anpr-service) POSTs the plate as a plate read to the reader
endpoint, flowing through the same dispatcher.
Resolution (one module: apps/server/src/device-resolve.ts)
- Button press →
relayForButton(controllerId, terminal)→ the entry relay whosebuttonmatches → entry flow →pulseOpen(relay). - Reader/permit/LPR read →
relayForDevice(reader)→ the bound relay →pulseOpen(relay); direction inherited. - Snapshots →
devicesByDirection("camera", dir)→ every camera serving that direction.
A directional barrier that contradicts the car's open-session state (an exit barrier scanned by a
car not inside, or an entry barrier by a car already in) is a wrong-barrier / anti-passback
refusal. A both relay defers to session state.
The flows
| Flow | Trigger | Opens |
|---|---|---|
| Transient entry | entry button press | the entry relay (button-mapped) → ticket prints |
| Transient exit | voucher scan at exit reader | the exit relay (reader-bound), if paid+grace |
| Subscriber entry | QR/RFID/plate at entry reader | the entry relay (reader-bound), if permit valid |
| Subscriber exit | QR/RFID/plate at exit reader | the exit relay (reader-bound), if permit valid |
Every open also fires a camera snapshot (async, never blocks the open).
Why no lane
"Lane" was a leftover from a rows-of-gates mental model. It added nothing here:
- Occupancy is a site-wide fold over the ledger (entries − exits); it never grouped by lane.
- Device grouping is now done by the reader→relay binding, far more precisely than a lane key.
- Anti-fraud doesn't use it — the signed chain, the "open must match a signed event" check, and reconciliation all work on what happened, not which gate. The relay's direction already catches an exit firing an entry barrier, better than a lane number would.
Dropping it removed lane from ledger_events, device_events, sessions, and the device
table (renamed lane_devices → devices). Because lane was part of the signed canonical
form, this is a versioned change: the canonical array no longer includes lane, and the signer
keyId bumped sw-hmac-v1 → sw-hmac-v2. v1 events won't verify under v2 — intentional, gated by
each event's stored keyId (done pre-deployment, on throwaway data, so zero real cost). See
append-only-event-chain.
Camera snapshots (evidence, not a gate)
Captured after the barrier opens, never awaited — a camera failure can't delay or block an
open (the signed ledger is the decision). Stored as a BLOB in the snapshots table (single
backed-up DB, nothing scattered on disk), in its own table so hot telemetry scans don't drag image
bytes and images prune independently. Linked to the signed vehicle_entry/exit by identity.
Served read-only via GET /api/snapshots/:id.
Re-encoded for storage (2026-06-28). Cameras serve full-res JPEGs (a Hikvision main stream is
2688×1520 / ~600 KB); stored raw, snapshots dominated the appliance DB (measured ~72%). Each frame
is now downscaled (long edge ≤ SNAPSHOT_MAX_EDGE=1280) + recompressed (SNAPSHOT_JPEG_QUALITY
=80) before storage via technology-stack (~6–10× smaller, plate still readable). The
re-encode is storage-only — ANPR recognition runs on the original full-res bytes
(downscaling hurts OCR). Fail-soft: a re-encode error stores the original, never drops the snapshot
(snapshot.ts encodeForStorage).
Retention (2026-06-28, resolves the old open question) — DISK-PRESSURE safety valve. Snapshots
are unsigned/advisory, so they prune freely. The day-to-day shrink is the re-encode above; pruning is
a backstop that only fires under real disk pressure. A daily check (snapshot-retention.ts
pruneSnapshots, wired in server.ts) reads the DB filesystem's used%; if it's ≥
SNAPSHOT_DISK_HIGH_PCT=70% it deletes the OLDEST snapshots until an estimated
SNAPSHOT_DISK_FREE_TARGET_PCT=10% of the disk is freed — never below the SNAPSHOT_MIN_KEEP=500
floor — then VACUUMs once to return the space to the OS (a row delete only frees SQLite pages;
the file doesn't shrink until VACUUM, which this prune now OWNS — daily, off-peak). Because a delete
doesn't move disk-used% until the VACUUM, the loop is driven by estimated freed bytes
(SUM(length(bytes)) of deleted rows), not a live disk re-read. On a roomy booth disk this is a
near-permanent no-op. (Replaced the first cut's age/row-cap model the same day.)
Refused entry/exit ALSO snapshots (2026-06-19)
A snapshot is evidence of who was at the barrier — which matters most when the barrier is
refused (a turned-away car is a fraud/dispute signal: "lot full" denial, an unpaid exit attempt,
a no-session ticket, an out-of-window subscription). Originally only the OPEN paths captured; now
every refusal/hold anomaly fires the directional camera too, keyed to the same identity the
anomaly carries so the booth-console evidence strip finds it. Coverage: entry
refused-full / held-no-ticket (a refused entry has no ticket id → mint a synthetic REFUSED-… ref
to key the anomaly + photo together), exit refused closed/no-session/unpaid/grace-expired (booth
and reader paths), and a refused subscription (the lane the reader sits at picks the camera).
Same fire-and-forget contract — a refusal is never delayed by a camera. Failed captures still surface
as "⚠ camera unreachable" tiles (see booth-console).
Related
entry-exit-readers · device-events · parking-session · anti-passback · append-only-event-chain · barrier-not-a-door · opencv-anpr-service · dingtian-relay · first-run-setup