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https://github.com/Matysh/houseplan-card
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378 lines
17 KiB
JavaScript
378 lines
17 KiB
JavaScript
import test from 'node:test';
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import assert from 'node:assert/strict';
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import { readFileSync } from 'node:fs';
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import {
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solveAffine, applyAffine, affineResidual, readVacTelemetry, autoCalibrate,
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thinPath, pushTrailPoint, isVacMoving, isVacSourceState, vacMapIdFromAttrs,
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vacMapIdWithFallback, areaCentroid, normalizeVacPath, resolveCurrentVacPath,
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trimVacPathTarget, parseVacSourceCandidate, resolveVacSource,
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vacCalibrationResidualCm, vacRoomNameMatchCount, VAC_CALIBRATION_WARN_CM,
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} from '../test-build/vacuum.js';
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test('solveAffine recovers rotation+scale+mirror+offset exactly', () => {
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// target = mirror-X, rotate 90°, scale 0.02, offset (300, 400)
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const f = ([x, y]) => [300 + 0.02 * y, 400 + 0.02 * x];
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const src = [[1000, 2000], [8000, 2500], [3000, 9000], [7000, 7000]];
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const m = solveAffine(src.map((p) => [p, f(p)]));
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assert.ok(m);
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for (const p of [[5000, 5000], [0, 0], [12000, 3000]]) {
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const got = applyAffine(m, p[0], p[1]);
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const want = f(p);
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assert.ok(Math.hypot(got[0] - want[0], got[1] - want[1]) < 1e-6, String(p));
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}
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assert.ok(affineResidual(m, src.map((p) => [p, f(p)])) < 1e-6);
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});
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test('solveAffine rejects degenerate input', () => {
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assert.equal(solveAffine([[[0, 0], [0, 0]], [[1, 1], [1, 1]]]), null); // 2 pairs
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// collinear
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assert.equal(solveAffine([[[0, 0], [0, 0]], [[1, 0], [1, 0]], [[2, 0], [2, 0]]]), null);
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assert.equal(solveAffine([[[0, NaN], [0, 0]], [[1, 0], [1, 0]], [[2, 3], [2, 0]]]), null);
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});
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test('readVacTelemetry: Map Extractor shape', () => {
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const t = readVacTelemetry({
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vacuum_position: { x: 25500, y: 24800, a: 271 },
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path: [{ x: 25000, y: 24000 }, { x: 25100, y: 24100 }],
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rooms: { 16: { name: 'Kitchen', cx: 23000, cy: 22500, x0: 20000, y0: 20000, x1: 26000, y1: 25000 } },
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map_name: '0',
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});
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assert.deepEqual(t.pos, { x: 25500, y: 24800, a: 271 });
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assert.deepEqual(t.path, [[[25000, 24000], [25100, 24100]]]);
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assert.equal(t.rooms[0].name, 'Kitchen');
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assert.equal(t.rooms[0].cx, 23000);
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assert.equal(t.mapId, '0');
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});
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test('readVacTelemetry: Valetudo/Tasshack shapes + junk safety', () => {
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const t = readVacTelemetry({ robot_position: { x: '120', y: '340', angle: '90' }, rooms: [{ id: 7, name: 'Спальня', cx: 10, cy: 20 }] });
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assert.deepEqual(t.pos, { x: 120, y: 340, a: 90 });
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assert.equal(t.rooms[0].id, '7');
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assert.equal(readVacTelemetry({ vacuum_position: { x: 'nope', y: 1 } }), null);
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assert.equal(readVacTelemetry({}), null);
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assert.equal(readVacTelemetry(null), null);
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assert.ok(isVacSourceState({ attributes: { vacuum_position: { x: 1, y: 2 } } }));
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assert.ok(!isVacSourceState({ attributes: { battery: 1 } }));
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});
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test('readVacTelemetry: Tasshack room centres come as plain x/y', () => {
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// shape captured from a live Dreame X50 Master (dacha, 2026-07-31)
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const t = readVacTelemetry({
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vacuum_position: { x: 1399, y: -55, a: 181 },
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rooms: { 2: { room_id: 2, name: 'Кладовка', x0: 800, y0: -2000, x1: 4200, y1: 300, x: 2575, y: -825 } },
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});
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assert.equal(t.rooms[0].name, 'Кладовка');
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// Explicit x/y is the calibration anchor; bbox is independently retained.
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assert.equal(t.rooms[0].cx, 2575);
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assert.deepEqual(
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[t.rooms[0].x0, t.rooms[0].y0, t.rooms[0].x1, t.rooms[0].y1],
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[800, -2000, 4200, 300],
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);
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const t2 = readVacTelemetry({ vacuum_position: { x: 0, y: 0 }, rooms: { 2: { name: 'Кладовка', x: 2575, y: -825 } } });
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assert.equal(t2.rooms[0].cx, 2575);
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});
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test('readVacTelemetry keeps XCME subpath gaps and Valetudo outline geometry', () => {
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const t = readVacTelemetry({
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vacuum_position: { x: 5, y: 6 },
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path: { path: [
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[{ x: 0, y: 0 }, { x: 1, y: 1 }],
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[{ x: 10, y: 10 }, { x: 11, y: 11 }, { x: null, y: 2 }],
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] },
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rooms: {
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l: { name: 'L', outline: [[0, 0], [4, 0], [4, 1], [1, 1], [1, 4], [0, 4], [0, 0]] },
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},
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});
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assert.deepEqual(t.path, [
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[[0, 0], [1, 1]],
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[[10, 10], [11, 11]],
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]);
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assert.deepEqual(
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[t.rooms[0].x0, t.rooms[0].y0, t.rooms[0].x1, t.rooms[0].y1],
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[0, 0, 4, 4],
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);
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assert.ok(Math.abs(t.rooms[0].cx - 1.3571428571428572) < 1e-12);
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assert.ok(Math.abs(t.rooms[0].cy - 1.3571428571428572) < 1e-12);
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});
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test('room anchor priority never mixes fields from different tiers', () => {
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const t = readVacTelemetry({
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vacuum_position: { x: 0, y: 0 },
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rooms: [{
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id: 1, name: 'Atomic pair', cx: 999,
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center: { x: 20, y: 30 }, x: 40, y: 50,
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outline: [[0, 0], [10, 0], [10, 10], [0, 10]],
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}],
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});
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assert.deepEqual([t.rooms[0].cx, t.rooms[0].cy], [20, 30]);
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});
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test('bbox centre is the final calibration-anchor fallback for bbox-only dialects', () => {
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const t = readVacTelemetry({
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vacuum_position: { x: 0, y: 0 },
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rooms: [{ id: 1, name: 'BBox only', x0: 100, y0: 80, x1: 0, y1: -20 }],
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});
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assert.equal(t.rooms.length, 1);
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assert.deepEqual(t.rooms[0], {
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id: '1', name: 'BBox only', cx: 50, cy: 30,
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x0: 0, y0: -20, x1: 100, y1: 80,
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});
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const incomplete = readVacTelemetry({
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vacuum_position: { x: 0, y: 0 },
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rooms: [{ id: 2, name: 'Incomplete bbox', x0: 0, y0: 0, x1: 100 }],
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});
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assert.deepEqual(incomplete.rooms, []);
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});
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test('areaCentroid has deterministic closing, zero-area, invalid and butterfly behaviour', () => {
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assert.deepEqual(areaCentroid([[0, 0], [2, 0], [2, 2], [0, 2], [0, 0]]), [1, 1]);
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assert.deepEqual(areaCentroid([[0, 0], [1, 0], [2, 0]]), [1, 0]);
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assert.equal(areaCentroid([[0, 0], [1, Number.NaN], [0, 1]]), null);
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assert.deepEqual(areaCentroid([[0, 0], [2, 2], [0, 2], [2, 0]]), [1, 1]);
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});
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test('normalizeVacPath filters before cap and distributes the exact 4000-point budget', () => {
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const many = [];
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for (let segment = 0; segment < 66; segment++) {
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const length = 70 + (segment % 3) * 10;
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many.push(Array.from({ length }, (_, point) => [segment, point]));
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many.push([[segment, 999]]); // singleton must not displace a drawable segment
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}
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const out = normalizeVacPath(many);
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assert.equal(out.length, 64);
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assert.equal(out.reduce((sum, segment) => sum + segment.length, 0), 4000);
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assert.equal(out[0][0][0], 2); // oldest two drawable segments were capped
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for (const segment of out) {
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const source = many.find((candidate) => candidate.length > 1 && candidate[0][0] === segment[0][0]);
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assert.deepEqual(segment[0], source[0]);
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assert.deepEqual(segment.at(-1), source.at(-1));
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}
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});
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test('normalizeVacPath uses largest remainder over internal points', () => {
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const lengths = [3002, 2002, 1002];
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const out = normalizeVacPath(lengths.map((length, segment) =>
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Array.from({ length }, (_, point) => [segment, point])));
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assert.deepEqual(out.map((segment) => segment.length), [1999, 1333, 668]);
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assert.equal(out.reduce((sum, segment) => sum + segment.length, 0), 4000);
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});
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test('normalizeVacPath largest-remainder ties prefer the older subpath', () => {
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const out = normalizeVacPath([0, 1, 2].map((segment) =>
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Array.from({ length: 10002 }, (_, point) => [segment, point])));
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assert.deepEqual(out.map((segment) => segment.length), [1334, 1333, 1333]);
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assert.equal(out.reduce((sum, segment) => sum + segment.length, 0), 4000);
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});
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test('resolveCurrentVacPath arbitrates only drawable sources and preserves gaps', () => {
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const server = { points: [[1, 1], [2, 2]] };
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assert.equal(resolveCurrentVacPath({ path: [[]] }, server, []).source, 'server');
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assert.equal(resolveCurrentVacPath({ path: [[[9, 9]]] }, server, []).source, 'server');
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assert.equal(resolveCurrentVacPath({ path: [[[NaN, 1], [2, Infinity]]] }, server, []).source, 'server');
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const integration = resolveCurrentVacPath({ path: [
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[[0, 0]], [[10, 10], [11, 11]], [[20, 20], [21, 21]],
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] }, server, []);
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assert.equal(integration.source, 'integration');
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assert.deepEqual(integration.path, [
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[[10, 10], [11, 11]], [[20, 20], [21, 21]],
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]);
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assert.deepEqual(trimVacPathTarget([[[0, 0], [1, 1]], [[5, 5], [6, 6], [7, 7]]]), [
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[[0, 0], [1, 1]], [[5, 5], [6, 6]],
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]);
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});
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test('parseVacSourceCandidate is deterministic and explains XCME/camera capability', () => {
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const positioned = parseVacSourceCandidate('camera.map', {
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attributes: { friendly_name: 'Map', vacuum_position: { x: 1, y: 2 }, rooms: {} },
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}, { platform: 'xiaomi_cloud_map_extractor' });
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assert.equal(positioned.category, 'compatible');
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assert.equal(positioned.score, 300);
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const xcme = parseVacSourceCandidate('camera.map', { attributes: {} }, {
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platform: 'xiaomi_cloud_map_extractor',
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});
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assert.equal(xcme.category, 'known_xcme_incomplete');
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assert.equal(parseVacSourceCandidate('sensor.position', {
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attributes: { position: '(1, 2, 3)' },
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}), null);
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});
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test('resolveVacSource is sticky, order-independent and never auto-selects global cameras', () => {
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const a = parseVacSourceCandidate('camera.a', {
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attributes: { vacuum_position: { x: 1, y: 2 } },
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}, { platform: 'demo' });
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const z = parseVacSourceCandidate('camera.z', {
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attributes: { vacuum_position: { x: 3, y: 4 } },
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}, { platform: 'demo' });
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const vacuum = parseVacSourceCandidate('vacuum.self', {
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attributes: { vacuum_position: { x: 5, y: 6 } },
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}, { platform: 'demo' });
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const statuses = {
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'camera.a': 'ok', 'camera.z': 'ok', 'camera.saved': 'missing', 'vacuum.self': 'ok',
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};
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const first = resolveVacSource(null, ['camera.z', 'camera.a'], [z, a], statuses);
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const reordered = resolveVacSource(null, ['camera.a', 'camera.z'], [a, z], statuses);
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assert.equal(first.entityId, 'camera.a');
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assert.equal(reordered.entityId, 'camera.a');
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assert.equal(resolveVacSource(null, ['vacuum.self', 'camera.z'], [vacuum, z], statuses).entityId, 'camera.z');
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assert.equal(resolveVacSource(null, [], [a], statuses).entityId, null);
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const sticky = resolveVacSource('camera.saved', ['camera.a'], [a], statuses);
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assert.deepEqual(
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{ entityId: sticky.entityId, status: sticky.status, pinned: sticky.pinned },
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{ entityId: 'camera.saved', status: 'missing', pinned: true },
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);
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assert.equal(resolveVacSource('camera.unknown', [], [], {}).status, 'unverified');
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for (const status of ['disabled', 'unavailable', 'unverified', 'unsupported']) {
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const result = resolveVacSource('camera.saved', ['camera.a'], [a], {
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...statuses, 'camera.saved': status,
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});
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assert.equal(result.entityId, 'camera.saved');
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assert.equal(result.status, status);
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}
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});
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test('vacRoomNameMatchCount uses calibration canonicalisation and unique room names', () => {
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const rooms = [
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{ id: '1', name: 'Living Room', cx: 0, cy: 0 },
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{ id: '2', name: 'living_room', cx: 1, cy: 1 },
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{ id: '3', name: 'Kitchen.', cx: 2, cy: 2 },
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{ id: '4', name: 'Bedroom', cx: 3, cy: 3 },
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];
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assert.equal(vacRoomNameMatchCount(rooms, ['Living-room', 'Kitchen', 'Office']), 2);
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});
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test('calibration warning threshold is expressed in physical centimetres', () => {
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assert.equal(vacCalibrationResidualCm(8, 10, 50), 40);
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assert.equal(vacCalibrationResidualCm(8.01, 10, 50) > VAC_CALIBRATION_WARN_CM, true);
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assert.equal(vacCalibrationResidualCm(1, 0, 5), Infinity);
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});
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test('autoCalibrate matches by name and solves', () => {
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const f = ([x, y]) => [0.01 * x + 100, -0.01 * y + 900];
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const vac = [
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{ id: '1', name: 'Kitchen', cx: 1000, cy: 2000 },
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{ id: '2', name: 'Bed Room', cx: 9000, cy: 2500 },
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{ id: '3', name: 'office', cx: 3000, cy: 8000 },
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{ id: '4', name: 'Garage', cx: 5000, cy: 5000 }, // no plan match
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];
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const plan = [
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{ name: 'kitchen', cx: f([1000, 2000])[0], cy: f([1000, 2000])[1] },
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{ name: 'BEDROOM', cx: f([9000, 2500])[0], cy: f([9000, 2500])[1] },
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{ name: 'Office', cx: f([3000, 8000])[0], cy: f([3000, 8000])[1] },
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];
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const r = autoCalibrate(vac, plan);
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assert.ok(r);
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assert.deepEqual(r.matched, ['Kitchen', 'Bed Room', 'office']);
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assert.ok(r.residual < 1e-6);
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// two matches only -> null
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assert.equal(autoCalibrate(vac.slice(0, 2), plan.slice(0, 2)), null);
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});
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test('thinPath keeps corners, drops straight-line noise', () => {
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const pts = [];
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for (let i = 0; i <= 100; i++) pts.push([i, 0]);
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for (let i = 1; i <= 100; i++) pts.push([100, i]);
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const out = thinPath(pts, 0.5);
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assert.ok(out.length <= 5, String(out.length));
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assert.deepEqual(out[0], [0, 0]);
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assert.deepEqual(out[out.length - 1], [100, 100]);
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assert.ok(out.some((p) => p[0] === 100 && p[1] === 0)); // the corner survives
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});
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test('pushTrailPoint dedups and respects the cap', () => {
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let buf = [];
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for (let i = 0; i < 3000; i++) buf = pushTrailPoint(buf, [i, (i * 7) % 13], 0.5);
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assert.ok(buf.length <= 600, String(buf.length));
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buf = pushTrailPoint(buf, buf[buf.length - 1], 0.5); // dup ignored
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assert.ok(buf.length <= 600);
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});
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test('isVacMoving', () => {
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assert.ok(isVacMoving('cleaning'));
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assert.ok(isVacMoving('returning'));
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assert.ok(!isVacMoving('docked'));
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assert.ok(!isVacMoving('idle'));
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assert.ok(!isVacMoving(undefined));
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});
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test('fitMatrix/fitFromMatrix round-trip, mirror and quarters', async () => {
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const { fitMatrix, fitFromMatrix, initialFit, reanchorFit } = await import('../test-build/vacuum.js');
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for (const rot of [0, 90, 180, 270]) for (const mir of [false, true]) {
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const p = { ox: 123.4, oy: -55.5, s: 0.083, rot, mir };
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const q = fitFromMatrix(fitMatrix(p));
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assert.equal(q.rot, rot, `rot ${rot} mir ${mir}`);
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assert.equal(q.mir, mir);
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assert.ok(Math.abs(q.s - p.s) < 1e-9 && Math.abs(q.ox - p.ox) < 1e-9 && Math.abs(q.oy - p.oy) < 1e-9);
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}
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// the real X50 matrix shape: X forward, Y flipped == mir + 180? decompose sanity
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const q = fitFromMatrix([0.08, 0, 590, 0, -0.08, 677]);
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assert.equal(q.mir, true);
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// initialFit centres the map bbox on the canvas
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const rooms = [{ id: '1', name: 'A', cx: 500, cy: 500, x0: 0, y0: 0, x1: 1000, y1: 1000 }];
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const f = initialFit(rooms, [0, 0, 1000, 1000]);
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const m = fitMatrix(f);
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const c = applyAffine(m, 500, 500);
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assert.ok(Math.abs(c[0] - 500) < 1e-6 && Math.abs(c[1] - 500) < 1e-6);
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assert.ok(Math.abs(1000 * f.s - 600) < 1e-6); // 60% of the canvas
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assert.equal(f.mir, true);
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// reanchor keeps the chosen source point fixed through a rotation
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const p2 = { ...f, rot: 90 };
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const r2 = reanchorFit(p2, f, 500, 500);
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const c2 = applyAffine(fitMatrix(r2), 500, 500);
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assert.ok(Math.abs(c2[0] - c[0]) < 1e-6 && Math.abs(c2[1] - c[1]) < 1e-6);
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});
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// HP-1540-02: the map-id contract, mirrored by trails.py resolve_map_id —
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// the first value that is not null/undefined wins; zero and '' are valid ids.
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test('vacMapIdFromAttrs: first NOT-nullish value wins, zero survives', () => {
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assert.equal(vacMapIdFromAttrs({ map_index: 0 }), '0');
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assert.equal(vacMapIdFromAttrs({ map_index: '0' }), '0');
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assert.equal(vacMapIdFromAttrs({ map_name: '', selected_map: 'Floor' }), '');
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assert.equal(vacMapIdFromAttrs({ map_name: 'A', map_index: 0 }), 'A');
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assert.equal(vacMapIdFromAttrs({ current_map: 2 }), '2');
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assert.equal(vacMapIdFromAttrs({ selected_map: 'Vac' }), 'Vac');
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assert.equal(vacMapIdFromAttrs({}), 'default');
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});
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// HP-1541-01: the vacuum-entity fallback half of the contract. Truthiness
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// here turned selected_map: 0 into 'default' while the server recorder
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// stored the trail under '0' — reloads never showed the saved run.
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test('vacMapIdWithFallback: selected_map 0 / "0" / "" survive, nullish falls back', () => {
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assert.equal(vacMapIdWithFallback('default', 0), '0');
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assert.equal(vacMapIdWithFallback('default', '0'), '0');
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assert.equal(vacMapIdWithFallback('default', ''), '');
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assert.equal(vacMapIdWithFallback('default', 'Vac'), 'Vac');
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assert.equal(vacMapIdWithFallback('default', null), 'default');
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assert.equal(vacMapIdWithFallback('default', undefined), 'default');
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assert.equal(vacMapIdWithFallback('1', 0), '1'); // telemetry wins over fallback
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|
});
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|
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// HP-1541-01 cross-runtime contract: for the same inputs the card-side chain
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|
// (vacMapIdFromAttrs -> vacMapIdWithFallback) must yield exactly what
|
|
// trails.py resolve_map_id stores. Mirrored by
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|
// tests_backend/test_trail_recorder.py::test_map_id_contract_first_not_none_wins.
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|
test('map-id contract: frontend chain matches backend resolve_map_id', () => {
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|
const chain = (srcAttrs, vacSel) => vacMapIdWithFallback(vacMapIdFromAttrs(srcAttrs), vacSel);
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|
assert.equal(chain({}, 0), '0');
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|
assert.equal(chain({}, '0'), '0');
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|
assert.equal(chain({}, ''), '');
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|
assert.equal(chain({}, 'Vac'), 'Vac');
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|
assert.equal(chain({}, undefined), 'default');
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|
assert.equal(chain({ map_index: 0 }, 'Vac'), '0'); // source wins over vacuum
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|
});
|
|
|
|
test('map-id shared fixture ignores changing vacuum_json_id nonce', () => {
|
|
const fixture = JSON.parse(readFileSync(
|
|
new URL('./fixtures/vacuum-attrs/map-id.json', import.meta.url), 'utf8',
|
|
));
|
|
for (const row of fixture) {
|
|
const got = vacMapIdWithFallback(vacMapIdFromAttrs(row.source), row.vacuum.selected_map);
|
|
assert.equal(got, row.expected, JSON.stringify(row));
|
|
}
|
|
assert.equal(fixture.at(-2).expected, fixture.at(-1).expected);
|
|
});
|
|
|
|
test('readVacTelemetry keeps numeric zero map_index as map id (HP-1540-02)', () => {
|
|
const t = readVacTelemetry({ vacuum_position: { x: 1, y: 2 }, map_index: 0 });
|
|
assert.equal(t.mapId, '0');
|
|
});
|