Dingtian input HTTP-push to backend (no polling)
The device pushes button events to the backend via its Input Link URL feature;
the backend decides. No polling — the chosen entry architecture.
packages/devices:
- dingtian driver: configureInputPush() writes the device's input_link_url
config (per-input server/port/path, en=1, active-LOW, plain HTTP) so each
input HTTP-GETs the backend on press/release. Extracted #readConfig/#writeConfig
(with the required command:setconfig injection + post-write reset tolerance).
apps/server:
- routes/devices.ts: public GET/POST
/api/devices/dingtian/:deviceId/input/:n/{on,off} — translates a device push
into an internal device event. Not behind cookie/CSRF (machine call from the
device); trust comes from the signed event log, not this request.
- device-events.ts: internal EventEmitter bus so the entry flow subscribes to
input events without coupling to HTTP. Wired into the server.
Verified on hardware: configured the device, then real presses on all 4 inputs
pushed to the backend (input N on+off, source = device IP). No polling.
wiki: device-input-flow concept (path + trust model for the flat/no-VLAN
network); dingtian-relay updated; index + log.
This commit is contained in:
@@ -0,0 +1,28 @@
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import { EventEmitter } from "node:events";
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// Internal event bus for device-originated events (button presses, etc.).
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// Hardware drivers / inbound device pushes emit here; business logic (entry
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// flow, event-log) subscribes — keeping the HTTP/transport layer thin and the
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// app device-agnostic. See wiki/entities/fastify.md.
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export interface DeviceInputEvent {
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readonly driverId: string; // e.g. "dingtian"
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readonly deviceId: string; // which configured device (lane_devices id)
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readonly input: number; // 1-based input/channel
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readonly edge: "on" | "off"; // active / inactive
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readonly at: string; // ISO-8601 (server receive time)
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readonly source: "push" | "poll";
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}
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class DeviceEventBus extends EventEmitter {
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emitInput(event: DeviceInputEvent): void {
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this.emit("input", event);
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}
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onInput(cb: (event: DeviceInputEvent) => void): () => void {
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this.on("input", cb);
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return () => this.off("input", cb);
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}
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}
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/** Process-wide device event bus. */
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export const deviceEvents = new DeviceEventBus();
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@@ -0,0 +1,54 @@
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import type { FastifyInstance, FastifyRequest } from "fastify";
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import { deviceEvents } from "../device-events.js";
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// Inbound device push endpoints. The Dingtian board's "Input Link URL" feature
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// HTTP-calls us when an input (button) fires — no polling. We translate the
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// push into an internal device event; the entry flow decides what to do
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// (print a ticket, then command the relay). See wiki/entities/dingtian-relay.md.
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//
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// AUTH: these are machine-to-machine calls FROM the device, which can't do the
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// SPA's cookie/CSRF auth. They are intentionally NOT behind requireRole. Trust
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// does NOT come from this request — every barrier open is a host decision
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// recorded as a signed event, so an out-of-band/forged open has no matching
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// signed event and shows up as an anomaly (see wiki/concepts/append-only-event-chain
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// and threat-model). A shared-secret check can be layered on later as
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// defence-in-depth; on a flat network it isn't the security boundary.
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interface InputParams {
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deviceId: string;
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n: string;
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}
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export async function deviceRoutes(app: FastifyInstance): Promise<void> {
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// Dingtian input ON-edge push (button pressed). The device is configured
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// (via input_link_url) to call this path for each input. GET or POST both
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// accepted — the device's method is configurable; the URL carries the input.
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const handler = (edge: "on" | "off") =>
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async (req: FastifyRequest<{ Params: InputParams }>) => {
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const { deviceId, n } = req.params;
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const input = Number(n);
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app.log.info(`[dingtian:${deviceId}] input ${input} ${edge} (push)`);
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deviceEvents.emitInput({
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driverId: "dingtian",
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deviceId,
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input,
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edge,
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at: new Date().toISOString(),
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source: "push",
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});
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return { ok: true };
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};
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for (const method of ["GET", "POST"] as const) {
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app.route({
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method,
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url: "/api/devices/dingtian/:deviceId/input/:n/on",
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handler: handler("on"),
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});
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app.route({
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method,
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url: "/api/devices/dingtian/:deviceId/input/:n/off",
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handler: handler("off"),
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});
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}
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}
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@@ -4,6 +4,7 @@ import Fastify, { type FastifyInstance } from "fastify";
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import { createDb, type Db } from "@parking/db";
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import { TOKEN_COOKIE, requireJwtSecret } from "./auth.js";
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import { authRoutes } from "./routes/auth.js";
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import { deviceRoutes } from "./routes/devices.js";
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import { setupRoutes } from "./routes/setup.js";
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// The backend is Fastify (Node). Hardware drivers live as isolated Fastify
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@@ -43,7 +44,10 @@ export async function buildServer(opts: BuildOptions = {}): Promise<FastifyInsta
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// catalog at first-run. See wiki/concepts/first-run-setup.md.
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await setupRoutes(app, db);
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// TODO: device-driver runtime plugins, append-only event-log routes.
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// Inbound device pushes (e.g. Dingtian Input Link URL → button events).
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await deviceRoutes(app);
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// TODO: entry flow (input event → signed event → print → relay), event-log routes.
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return app;
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}
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@@ -202,9 +202,7 @@ class DingtianController
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async checkPreconditions(): Promise<PreconditionResult> {
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let cfg: Record<string, unknown>;
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try {
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cfg = JSON.parse(
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await configApi(this.#host, this.#httpPort, "/api/v2/config.cgi", "GET", null, this.#timeout),
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);
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cfg = await this.#readConfig();
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} catch (err) {
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return {
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ok: false,
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@@ -221,8 +219,7 @@ class DingtianController
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}
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async fixPreconditions(): Promise<PreconditionResult> {
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const raw = await configApi(this.#host, this.#httpPort, "/api/v2/config.cgi", "GET", null, this.#timeout);
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const cfg = JSON.parse(raw) as Record<string, unknown>;
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const cfg = await this.#readConfig();
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if (this.#linkDisabled(cfg)) return { ok: true, issues: [] };
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// Disable the master flag AND clear the per-input action maps.
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@@ -232,6 +229,54 @@ class DingtianController
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ilr.on_action_on = (ilr.on_action_on as unknown[]).map(() => []);
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}
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await this.#writeConfig(cfg);
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return this.checkPreconditions();
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}
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/**
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* Configure the device to HTTP-push input (button) events to our backend —
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* the "Input Link URL" feature. Each input N calls `${pathBase}/<N>/on` (and
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* `/off`) on the given host:port via GET. Enables the feature and disables TLS
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* (plain HTTP to the local backend). Replaces polling.
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*/
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async configureInputPush(opts: {
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host: string;
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port: number;
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pathBase: string; // e.g. "/api/devices/dingtian/<deviceId>/input"
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}): Promise<void> {
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const cfg = await this.#readConfig();
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const ilu = cfg.input_link_url as Record<string, unknown>;
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const n = Number((ilu.cnt as number) ?? this.#channels);
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const fill = (v: unknown) => Array.from({ length: n }, () => v);
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ilu.en = 1;
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ilu.active_level = fill(0); // active-LOW (matches this board's wiring)
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ilu.tls = fill(0);
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ilu.auth = fill(0);
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ilu.server = fill(opts.host);
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ilu.port = fill(opts.port);
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ilu.user = fill("");
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ilu.pass = fill("");
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ilu.on_method = fill(0); // GET
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ilu.off_method = fill(0);
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ilu.on_path = Array.from({ length: n }, (_, i) => `${opts.pathBase}/${i + 1}/on`);
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ilu.off_path = Array.from({ length: n }, (_, i) => `${opts.pathBase}/${i + 1}/off`);
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ilu.on_body = fill("");
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ilu.off_body = fill("");
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await this.#writeConfig(cfg);
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}
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// --- config api internals ----------------------------------------------
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async #readConfig(): Promise<Record<string, unknown>> {
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const raw = await configApi(this.#host, this.#httpPort, "/api/v2/config.cgi", "GET", null, this.#timeout);
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return JSON.parse(raw) as Record<string, unknown>;
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}
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/** Write full config back. Injects the required `command:setconfig` and
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* tolerates the device resetting on apply. */
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async #writeConfig(cfg: Record<string, unknown>): Promise<void> {
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// The set endpoint requires `"command":"setconfig"` injected after `status`
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// (the GET payload omits it). Rebuild preserving node order, command second.
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const out: Record<string, unknown> = {};
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@@ -242,7 +287,7 @@ class DingtianController
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if (!("command" in out)) out.command = "setconfig";
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// Device resets/applies after a write, so the connection may drop — that's
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// success, not failure. Swallow the post-write reset and verify by re-reading.
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// success, not failure. Swallow the post-write reset.
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try {
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await configApi(
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this.#host,
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@@ -253,11 +298,9 @@ class DingtianController
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this.#timeout,
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);
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} catch {
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// device likely reset on apply — ignore and verify below
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// device likely reset on apply
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}
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// Give the device a moment to apply, then re-read to confirm.
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await new Promise((r) => setTimeout(r, 4000));
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return this.checkPreconditions();
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}
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#linkDisabled(cfg: Record<string, unknown>): boolean {
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@@ -0,0 +1,53 @@
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---
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type: concept
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tags: [parking, architecture, devices, entry-flow]
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sources: []
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updated: 2026-06-15
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---
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# Device Input Flow (button → backend → relay)
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How a physical button press drives the entry lane. The **backend is the source of truth**: the
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device only *reports* the press; the host decides and commands the relay. This is the host-in-the-
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loop flow the [[dingtian-relay]] makes possible (and the [[uhppote-controller]] could not).
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## The path (no polling)
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```
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car arrives → driver presses button (input I_N, dry contact to GND)
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→ device HTTP-pushes GET …/api/devices/dingtian/<deviceId>/input/<N>/on
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→ backend: emit internal device event (device-events bus)
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→ backend entry flow: create + sign an entry event, print the ticket
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→ backend: pulseOpen(N) over UDP → barrier opens
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→ (on release) device pushes …/input/<N>/off
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```
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- **Push, not poll.** The device's `input_link_url` feature is configured (by the driver's
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`configureInputPush()`) to call the backend on each input edge — see [[dingtian-relay]]. The
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driver's poll path remains only as a dev/fallback aid.
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- **Per-input path** carries the input number in the URL (`…/input/3/on`), so routing needs no
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body parsing. Both edges (`on`/`off`) are sent.
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- **Internal event bus** (`device-events.ts`, a Node `EventEmitter`) decouples the HTTP/transport
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layer from business logic — drivers/pushes emit; the entry flow subscribes. Keeps the app
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[[device-adapter-pattern|device-agnostic]].
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## Trust model (important — flat network, no VLAN)
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The relay-control direction (host → device) is **unauthenticated UDP**, and the site is a **flat
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network with no VLAN** ([[network-isolation]] is not yet enforceable here). So we do **not** trust
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the device or the network. Instead:
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- **Every barrier open is a host decision, recorded as a signed event BEFORE the relay fires**
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([[append-only-event-chain]]). If anyone opens the relay out-of-band (which the flat network
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allows), there is **no matching signed event → a detectable anomaly**. The anti-fraud guarantee
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is the **signed log**, not device/network auth.
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- The inbound push endpoint is intentionally **not behind the SPA's cookie/CSRF auth** (it's a
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machine call from the device). A **shared-secret / Basic-auth** on the push is available as
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defence-in-depth (the device supports it) — worth adding, but it is *not* the security boundary.
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- This sharpens under the [[autonomous-direction|unmanned]] roadmap: with no operator, tamper
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detection via the signed log matters more than perimeter auth.
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## Status
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Input push **verified on hardware** (all 4 inputs, real presses reaching the backend). The entry
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flow itself (signed event + ticket print + `pulseOpen`) is the next build — see [[dingtian-relay]].
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@@ -61,11 +61,27 @@ settings our flow depends on.
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> the POST returns/looks like success but silently does nothing (and the device may reset). With it,
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> POST returns `{"status":0}` and the change sticks. JSON node order must be preserved.
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## Input push (no polling) — the chosen architecture
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The device **pushes** button events to the backend; the backend decides. **No polling.** The
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driver's `configureInputPush()` writes the device's `input_link_url` config to point each input at
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the backend: input N HTTP-GETs `…/api/devices/dingtian/<deviceId>/input/<N>/on` (and `/off`) on
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press/release. The backend ([[fastify]] route `routes/devices.ts`) translates each push into an
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internal device event ([[device-input-flow]]); the entry flow then prints a ticket and commands
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the relay via UDP. See [[device-input-flow]] for the full path + trust model.
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> The input-poll path in the driver (`onInput`) remains as a dev/fallback aid, but **push is the
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> real path** — lower latency, and it can be authenticated (the device supports Basic/Digest +
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> HTTPS on the push), unlike the open UDP control direction.
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## Status — VERIFIED on hardware (DT-R004, sw V3.1.5461A, 10.0.10.172)
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- ✅ status read (`0000:1111:4`), relay pulse, input press/release events (active-LOW, idle HIGH).
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- ✅ **`input_link_relay` disabled via the driver** → confirmed: pressing an input now reports the
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event and **fires NO relay** (`0000` after presses). The [[access-controller-button-flow]] blocker
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is **solved** — host-in-the-loop entry (`button → host → ticket → host opens relay`) works.
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- ⬜ Next: input HTTP-push endpoint (device `input_link_url` → backend), and wiring the entry flow
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(input event → print ticket → `pulseOpen`). Polling works today; push is the lower-latency path.
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- ✅ **`input_link_relay` disabled via the driver** → pressing an input reports the event and
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**fires NO relay** (`0000` after presses). The [[access-controller-button-flow]] blocker is
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**solved**.
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- ✅ **Input HTTP-push end to end** — configured the device via `configureInputPush()`, then real
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button presses (all 4 inputs) **pushed to the backend** (`/input/N/on` + `/off` per press,
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source = the device IP). No polling. Host-in-the-loop entry (`button → backend → ticket →
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backend opens relay`) is real.
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- ⬜ Next: wire the actual entry flow (input event → signed event + print ticket → `pulseOpen`).
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@@ -54,6 +54,7 @@ Counts: 1 source · 14 entities · 10 concepts · 2 decision records.
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- [[device-adapter-pattern]] — business logic talks to interfaces; swap hardware → new adapter.
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- [[device-registry]] — catalog of selectable drivers per category (admin-configurable).
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- [[first-run-setup]] — admin assigns devices per lane from the catalog at install.
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- [[device-input-flow]] — button → device push → backend decides → relay; backend is source of truth.
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- [[device-discovery]] — optional driver capability to scan the LAN (no current driver uses it; UHPPOTE was the example).
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- [[barrier-not-a-door]] — never timed-close a barrier; safety lives in barrier firmware.
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- [[trust-boundary]] — the core fork: network vs. device; auditable vs. unforgeable.
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+14
@@ -131,3 +131,17 @@ device" framing (standing-decisions, bom, overview, open-questions) to
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[[dingtian-relay]]; noted no current driver uses [[device-discovery]]. Transferable
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concepts (network-isolation, event-log-ingestion, barrier-not-a-door, threat-model)
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kept as-is. Links lint clean; raw source untouched (immutable).
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## [2026-06-15] feature | Dingtian input HTTP-push → backend (no polling)
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Wired the device's "Input Link URL" feature so it HTTP-pushes button events to
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our backend — no polling. Driver `configureInputPush()` writes input_link_url
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(per-input server/port/path, en=1, active-LOW, plain HTTP) via the config API
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(reusing the #writeConfig + command:setconfig helper). New backend route
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`routes/devices.ts`: public `GET/POST /api/devices/dingtian/:deviceId/input/:n/{on,off}`
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→ emits onto an internal device-events bus (device-events.ts, EventEmitter) for
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the entry flow to consume. VERIFIED on hardware: configured device, real presses
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on all 4 inputs pushed to the backend (input N on+off, source = device IP). Trust
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model recorded in [[device-input-flow]]: flat network / no VLAN → backend is source
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of truth, every open is a signed event (out-of-band open = anomaly); push endpoint
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not behind cookie auth (machine call), shared-secret available as defence-in-depth.
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Next: wire signed event + ticket print + pulseOpen.
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Reference in New Issue
Block a user