wiki: Dingtian relay decision, HTTP-over-MQTT, unmanned direction

- dingtian-relay: relay+input controller (4ch on hand). Inputs are decoupled
  from relays (configurable via input_link_relay) — solves the
  access-controller-button-flow blocker the UHPPOTE couldn't. Full protocol from
  the SDK (UDP string control :60001, `00` status parse, input_link_url push,
  multicast discovery). Driver + hardware test still to build.
- dingtian-vs-mqtt: use direct HTTP/UDP now; MQTT skipped (broker = extra infra
  + failure mode + overkill at one-host/few-devices scale) but kept for later
  multi-lane scale.
- autonomous-direction: record the roadmap to fully unmanned (no booth) and how
  it reshapes the threat model (operator-fraud -> unattended-machine threats),
  makes host-in-the-loop entry mandatory, and raises fail-state stakes.
- threat-model: note the unmanned shift. index + log.

gitignore the vendor SDK (dingtian/, 71MB of binaries/examples) — reference
only, protocol captured in the wiki.
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.playwright-mcp/ .playwright-mcp/
# stray hardware/UI test screenshots # stray hardware/UI test screenshots
/*.png /*.png
# Vendor device SDKs (reference only — protocol captured in wiki, not committed)
/dingtian/
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@@ -35,3 +35,9 @@ The controls that actually address insider/operator fraud are different in kind:
The same reframing recurs at the device layer: the [[uhppote-controller]]'s real problem is The same reframing recurs at the device layer: the [[uhppote-controller]]'s real problem is
unauthenticated commands ([[uhppote-udp-protocol]]), addressed by detection unauthenticated commands ([[uhppote-udp-protocol]]), addressed by detection
([[event-log-ingestion]]) or prevention ([[esp32-custom-controller]]). ([[event-log-ingestion]]) or prevention ([[esp32-custom-controller]]).
> **Direction shift:** the system is heading toward **fully unmanned operation** — no operator, no
> booth ([[autonomous-direction]]). That removes the booth-operator as the *primary* adversary, but
> swaps in **unattended-machine threats** (tailgating, plate spoofing, physical tampering, forced
> entry). The append-only signed log + reconciliation controls carry over; the emphasis moves from
> "catch the cashier" to "trust the automated record and detect tampering."
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---
type: decision
tags: [parking, direction, roadmap]
sources: []
updated: 2026-06-15
status: open
---
# Project Direction: Toward Fully Autonomous (Unmanned)
> Stated goal (2026-06-15): the system will evolve to **fully automatic operation — no human
> operator, no booth at all**. Recorded because "unmanned" is an architectural force that shapes
> several existing decisions, not just a feature.
## What "unmanned" changes
- **Threat model shift.** The original primary adversary was *"the legitimate operator at the
booth"* ([[threat-model]]). Remove the operator and that specific fraud vector (take cash → void
the record) largely disappears — but it's replaced by **unattended-machine threats**: tailgating,
plate spoofing/obscuring, physical tampering with a box nobody is watching, and forced entry.
The [[append-only-event-chain]] + [[reconciliation]] controls still apply; the emphasis moves
from "catch the cashier" to "trust the automated record + detect tampering."
- **Host-in-the-loop entry becomes mandatory, not optional.** With no person to hand over a ticket
or wave a car through, the machine must own the whole flow: detect arrival → issue ticket / read
plate → open. This is exactly why the [[access-controller-button-flow]] blocker matters and why
a controller whose input does **not** auto-fire the relay (see [[dingtian-relay]]) is required.
- **Reliability / fail-state get more critical** ([[fail-state-safety]]). No operator to recover a
stuck barrier or a trapped car ⇒ watchdogs, **exit-fails-open**, and hardware manual override
stop being nice-to-haves. Unattended uptime is a hard requirement.
- **Payment goes unmanned.** Pay-station / pay-on-foot or in-lane unmanned terminal rather than a
booth P2PE + cash drawer — sharpens [[open-questions]] #3 toward the unmanned option (PCI scope
still kept out of the app via a certified terminal).
- **Identity leans on automation.** Plate recognition ([[lpr-camera]]) and permit reads become the
primary identity sources, since there's no one to issue/inspect a paper ticket by hand.
## Near-term stance
Build for the unmanned target but don't over-engineer ahead of it. Current concrete step: the
**[[dingtian-relay]]** controller over **HTTP** (device pushes input events to the host; host
commands relays) — see [[dingtian-vs-mqtt]] for why HTTP over a message bus for now.
## Open
Lane topology, payment subsystem, and reconciliation channel ([[open-questions]]) should all be
(re)evaluated through the **unmanned** lens before procurement.
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---
type: decision
tags: [parking, decision, devices, transport]
sources: []
updated: 2026-06-15
status: settled
---
# Transport for the Relay Controller: HTTP/UDP now, MQTT parked
**Decision (2026-06-15): use direct HTTP + UDP for the [[dingtian-relay]] controller now. MQTT is
deliberately skipped, but kept on the radar** for when the system scales.
## Options the device supports
The Dingtian relay board speaks several protocols: Dingtian string (UDP/TCP), Dingtian binary
(UDP, optional multicast/password), **HTTP CGI**, **HTTP input-link push** (`input_link_url`),
**Modbus** (RTU/TCP/ASCII), and **MQTT**.
## Why not MQTT (yet)
- **A broker is new infrastructure** on a deliberately **single-purpose hardened appliance**
([[disk-os-hardening]]) — another service to install, secure, supervise, and keep alive.
- **Extra failure mode on the critical path.** Today host→UDP→relay. MQTT inserts a broker on both
control and event paths; if it stalls, the lane stalls — and there are 3 processes to debug, not 2.
- **Doesn't fit [[offline-first]] for this scale.** MQTT earns its keep with *many* devices/consumers
and intermittent links. Here it's **one host + a few devices on one isolated LAN, metres apart** —
request/response control + a single input event, no fleet.
- **The device's MQTT input publish is periodic** ("default every 30 s"), so it's not even a clean
on-press event without relying on unverified on-change behaviour.
## Why HTTP/UDP fits
- **Relay control:** direct **UDP string protocol** (port 60001) — `11`=relay1 on, `21`=off,
`T1`=toggle, `11*`=jog/pulse. No deps, no broker.
- **Input/button events:** the device's **`input_link_url`** can **HTTP POST to the host backend
when an input fires** — real push, device calls our existing Fastify server directly, no broker.
(Polling `00` status over UDP every ~50 ms is the self-contained fallback.)
- Fewest moving parts; matches the local same-origin model already in use.
## When to revisit MQTT
If the system grows to **many lanes / many controllers**, or multiple subsystems (LPR, payment,
signage) all need to share events, a broker becomes a worthwhile central event bus. That aligns
with the [[autonomous-direction|unmanned]] roadmap at multi-lane scale — re-evaluate then. Until
then, direct HTTP/UDP wins on simplicity and reliability.
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---
type: entity
tags: [parking, hardware, access-control, relay]
sources: []
updated: 2026-06-15
---
# Dingtian Relay Controller
A network **relay + input** board (the unit on hand is the **4-channel** variant: 4 relays + 4
inputs). Chosen to drive the entry/exit lane because — unlike the [[uhppote-controller]] — its
**inputs are independent of its relays**, which solves the [[access-controller-button-flow]]
blocker (a button on an input does not auto-open a relay; the host decides).
SDK: `dingtian/4ch/sdk_v2_0_0/` (programming manual, examples). MIT-compatible use; no vendor
runtime needed.
## ⚠️ The one gotcha: `input_link_relay`
By **default the device links each input to auto-fire its matching relay** (`input_link_relay: 1`,
`on_action_on: [[0],[1],…]` in the config) — i.e. the *same* auto-open problem as the UHPPOTE.
The difference: **it is configurable.** Set `input_link_relay: 0` (or clear the action mappings)
so an input only *reports* and the host commands the relay. **This config step is mandatory** for
the ticket-first entry flow. See [[autonomous-direction]].
## Protocol (Dingtian string — what we use)
Transport options: UDP/TCP string, UDP binary, HTTP CGI, Modbus, MQTT. We use **HTTP + UDP** —
see [[dingtian-vs-mqtt]].
- **Relay control — UDP ASCII, port 60001:** `1`+ch = ON, `2`+ch = OFF, `T`+ch = toggle.
Pulse/jog `11*` (default 500 ms), delay `11:30` (30 s then off), flash `11F5`. `X` = all relays.
Intent-only pulse for a barrier = `pulseOpen` ([[barrier-not-a-door]]).
- **Status / inputs — send `00`** → `「relays」:「inputs」:「count」`, e.g. **`0000:1111:4`** (4ch:
relays off, inputs high). `0` = OFF/Low, `1` = ON/High. Poll-based.
- **Input push — `input_link_url`:** device **HTTP POSTs to a host URL on input change** — the
push path for button events without a broker.
- **Discovery:** UDP multicast `224.0.2.11:60000`, send `\x05\xAA` (devices reply). Defaults:
IP `192.168.1.100`, UDP `60000` (binary) / `60001` (string).
- Binary protocol (port 60000) adds optional **password** + multicast; bitmask relay/input maps.
## Status
Protocol understood from the SDK; **driver + on-hardware test not built yet**. Next: a `dingtian`
relay driver in [[device-registry]] (UDP control + status parse) and the input-push endpoint,
with `input_link_relay` disabled on the device. Needs the device IP + LAN to test.
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- [[wiegand]] — reader standard feeding the controller directly (autonomous permit-holder path). - [[wiegand]] — reader standard feeding the controller directly (autonomous permit-holder path).
- [[lpr-camera]] — edge-AI plate recognition; host-side casual-identity source. - [[lpr-camera]] — edge-AI plate recognition; host-side casual-identity source.
- [[zkteco-controller]] — C3/inBio controller; aux-input path may enable host-in-the-loop (driver TBD). - [[zkteco-controller]] — C3/inBio controller; aux-input path may enable host-in-the-loop (driver TBD).
- [[dingtian-relay]] — relay+input board; inputs decoupled from relays → solves the button blocker (driver TBD).
- [[bom]] — reference bill of materials (barrier, loops, controller, readers, payment, host, network). - [[bom]] — reference bill of materials (barrier, loops, controller, readers, payment, host, network).
## Concepts — foundational forces ## Concepts — foundational forces
@@ -74,3 +75,5 @@ Counts: 1 source · 14 entities · 10 concepts · 2 decision records.
- [[standing-decisions]] — settled decisions (stack, platform, integrity, access control, readers). - [[standing-decisions]] — settled decisions (stack, platform, integrity, access control, readers).
- [[open-questions]] — 7 open items (6 procurement + JWT key choice); ESP32 device auth deferred. - [[open-questions]] — 7 open items (6 procurement + JWT key choice); ESP32 device auth deferred.
- [[access-controller-button-flow]] — ⚠️ BLOCKER: UHPPOTE/ZKTeco on hand can't do ticket-first entry as wired. - [[access-controller-button-flow]] — ⚠️ BLOCKER: UHPPOTE/ZKTeco on hand can't do ticket-first entry as wired.
- [[autonomous-direction]] — roadmap: toward fully unmanned (no booth); reshapes threat model + fail-state.
- [[dingtian-vs-mqtt]] — transport choice: direct HTTP/UDP now, MQTT parked until multi-lane scale.
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@@ -94,3 +94,14 @@ earlier "broadcast permission (EACCES)" note in [[device-discovery]] — the rea
cause was the lib not enabling SO_BROADCAST for the global 255.255.255.255; cause was the lib not enabling SO_BROADCAST for the global 255.255.255.255;
documented the three verified broadcast gotchas + serialization. Added a `reference` documented the three verified broadcast gotchas + serialization. Added a `reference`
page type to the schema; new "Dev environment" index section. page type to the schema; new "Dev environment" index section.
## [2026-06-15] decision | Dingtian relay chosen; HTTP over MQTT; unmanned direction
New relay+input controller on hand (Dingtian 4ch). Its inputs are decoupled from
relays (configurable via input_link_relay) — solves the [[access-controller-button-flow]]
blocker the UHPPOTE couldn't. Transport decision [[dingtian-vs-mqtt]]: direct
HTTP/UDP now (UDP string for relay control on :60001; device input_link_url HTTP
push for button events), MQTT skipped (broker = infra + failure mode + overkill at
this scale) but kept for later multi-lane scale. Recorded the stated roadmap to
**fully unmanned, no-booth** operation in [[autonomous-direction]] and its threat-model
shift (operator-fraud → unattended-machine threats). New stub [[dingtian-relay]]
with the full protocol from the SDK. Driver + on-hardware test still to build.