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https://github.com/Matysh/houseplan-card
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213 lines
12 KiB
JavaScript
213 lines
12 KiB
JavaScript
// #780: the lazy LED chunk and its gate, judged by results (ТЗ §3, §5, §6,
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// §13.1, §13.2; AC2, AC7, AC9, AC11, AC17 unit parts).
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import { test } from 'node:test';
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import assert from 'node:assert/strict';
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import { ledAnchor, ledStripsByMarker } from '../test-build/led-strip-gate.js';
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import { faceContext, ledFrame, ledStripView, stripRoom } from '../test-build/led-strip-runtime.js';
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import { LED_FIELD_BANDS, LedFieldCache, buildFieldGeometry, falloffAt } from '../test-build/led-strip-field.js';
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import { GLOW_FALLOFF } from '../test-build/glow-scene.js';
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import { stripAnchor } from '../test-build/led-strip-geometry.js';
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const space = (strips) => ({ id: 's', rooms: [], led_strips: strips });
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test('ТЗ §13.1: only an active, bound strip with geometry is represented', () => {
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const map = ledStripsByMarker(space([
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{ id: 'a', points: [[0, 0], [1, 0]], marker: 'm1' },
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{ id: 'b', points: [[0, 0], [1, 0]], marker: 'm2', active: true },
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{ id: 'c', points: [[0, 0], [1, 0]], marker: 'm3', active: false },
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{ id: 'd', points: [[0, 0], [1, 0]], marker: null },
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{ id: 'e', points: [[0, 0]], marker: 'm5' },
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]));
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assert.deepEqual([...map.keys()].sort(), ['m1', 'm2']);
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assert.equal(ledStripsByMarker(space([])).size, 0);
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assert.equal(ledStripsByMarker(null).size, 0);
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});
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test('AC2: the gate anchor equals the geometry anchor (half length) in render units', () => {
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const cases = [
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[[0, 0], [10, 0], [10, 10]], [[0, 0], [4, 0]], [[0, 0], [9, 0], [9, 1]],
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[[0, 0], [4, 0], [4, 4], [0, 4], [0, 0]], [[0, 0], [0, 0], [4, 0], [4, 0]],
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[[1, 1], [1, 1]],
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];
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for (const points of cases) {
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const reference = stripAnchor(points);
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const gate = ledAnchor(points, 100);
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assert.ok(Math.abs(gate.x - reference[0] * 100) < 1e-9 && Math.abs(gate.y - reference[1] * 100) < 1e-9,
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`${JSON.stringify(points)}: ${JSON.stringify(gate)} vs ${reference}`);
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}
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});
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test('ТЗ §3: the linear falloff is the shared GLOW_FALLOFF', () => {
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for (const [offset, value] of GLOW_FALLOFF) {
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assert.ok(Math.abs(falloffAt(offset / 100) - value) < 1e-12, `${offset}%`);
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}
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assert.equal(falloffAt(0), 1);
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assert.equal(falloffAt(1), 0);
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assert.equal(falloffAt(2), 0);
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// Monotonic: the field never brightens away from the strip.
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let previous = 1;
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for (let i = 0; i <= 100; i++) {
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const value = falloffAt(i / 100);
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assert.ok(value <= previous + 1e-12);
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previous = value;
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}
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});
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test('#784: the continuous field has enough bands to avoid visible gradient steps', () => {
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assert.ok(LED_FIELD_BANDS >= 32, `${LED_FIELD_BANDS} bands are visibly discrete on wide fields`);
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const fraction = 0.5;
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const band = Math.floor((1 - fraction) * LED_FIELD_BANDS);
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const midpoint = 1 - (band + 0.5) / LED_FIELD_BANDS;
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const exact = falloffAt(fraction);
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assert.ok(Math.abs(falloffAt(midpoint) - exact) / exact <= 0.1,
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`${LED_FIELD_BANDS} bands must approximate r/2 within 10%`);
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});
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const device = (extra = {}) => ({ id: 'm1', name: 'Kitchen LED', primary: 'light.led', space: 's', ...extra });
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const strip = { id: 'a', points: [[0, 0], [1, 0]], marker: 'm1' };
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test('#784/AC7: states — off white, on, unavailable without a field; radius 30 cm or the own one', () => {
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const base = { strip, defaultRadius: 6, cellCm: 5, gridPitch: 1, glow: true };
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const on = ledStripView({ ...base, device: device(), hass: { states: { 'light.led': { state: 'on' } } },
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candidate: { key: 's|m1', sourceEid: 'light.led', pos: { x: 0, y: 0 }, radius: 3, appearance: { c: '#ff0000', alpha: 0.5 } } });
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assert.equal(on.state, 'on');
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assert.deepEqual(on.appearance, { c: '#ff0000', alpha: 0.5 });
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assert.equal(on.radius, 6, 'the shared radius of ordinary sources does not apply: 30 cm default');
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const off = ledStripView({ ...base, device: device(), hass: { states: { 'light.led': { state: 'off' } } },
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candidate: { key: 's|m1', sourceEid: 'light.led', pos: { x: 0, y: 0 }, radius: 3, appearance: null } });
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assert.equal(off.state, 'off');
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for (const raw of ['unavailable', 'unknown']) {
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const view = ledStripView({ ...base, device: device(), hass: { states: { 'light.led': { state: raw } } },
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candidate: { key: 's|m1', sourceEid: 'light.led', pos: { x: 0, y: 0 }, radius: 3, appearance: { c: '#fff', alpha: 1 } } });
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assert.equal(view.state, 'unavailable', raw);
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assert.equal(view.appearance, null, `${raw}: no field`);
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}
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const own = ledStripView({ ...base, device: device({ marker: { glow_radius_cm: 100 } }),
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hass: { states: { 'light.led': { state: 'on' } } }, candidate: null });
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assert.equal(own.radius, 20, 'the personal radius wins (100 cm / 5 cm per cell)');
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});
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// A scene with one opaque square body [4,6]×[4,6] and a 10×10 room floor.
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const body = [[4, 4], [6, 4], [6, 6], [4, 6]];
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const floor = [[0, 0], [10, 0], [10, 10], [0, 10]];
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const scene = {
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occluders: body.map((p, i) => [p[0], p[1], body[(i + 1) % 4][0], body[(i + 1) % 4][1]]),
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floor: [floor], fingerprint: 'f1', masonryGeometry: [], opaqueBodies: [body],
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};
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const polygons = [{ room: { id: 'r' }, poly: floor }];
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test('ТЗ §6: every piece is clipped to what its own emitters see; a buried strip emits nothing', () => {
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const faces = faceContext(scene, 1e-6);
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const geometry = buildFieldGeometry({ points: [[1, 1], [9, 1]], radius: 2, scene, polygons, faces, spaceId: 's' });
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assert.ok(geometry, 'a free strip has a field');
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assert.equal(geometry.pieces.length, 4, 'an 8-unit segment with r = 2 makes four pieces');
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assert.equal((geometry.d.match(/M/g) || []).length, 1,
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'visibility/cache pieces do not split the painted path');
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for (const piece of geometry.pieces) {
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assert.ok(piece.clip.length >= 2, 'free pieces retain filled visibility fans for the shared clip');
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}
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// Passing 0.5 below the body: the pieces near it are clipped to their own fans.
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const near = buildFieldGeometry({ points: [[0.5, 3.5], [9.5, 3.5]], radius: 1, scene, polygons, faces, spaceId: 's' });
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const clipped = near.pieces.filter((piece) => piece.clip.some((d) => (d.match(/[ML]/g) || []).length > 12));
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assert.ok(clipped.length >= 2 && clipped.length < near.pieces.length, `${clipped.length} of ${near.pieces.length}`);
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for (const piece of clipped) {
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assert.ok(piece.clip.length > 0);
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// No fan vertex lies inside the body: light never passes into or through it.
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for (const d of piece.clip) {
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for (const [, x, y] of d.matchAll(/[ML]([-\d.e]+) ([-\d.e]+)/g)) {
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assert.ok(!(+x > 4 + 1e-6 && +x < 6 - 1e-6 && +y > 4 + 1e-6 && +y < 6 - 1e-6), `${x},${y}`);
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}
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}
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}
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const buried = buildFieldGeometry({ points: [[4.5, 5], [5.5, 5]], radius: 2, scene, polygons, faces, spaceId: 's' });
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assert.equal(buried, null, 'entirely inside the body: no field');
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});
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test('#784: a corner and a closed strip remain one painted path', () => {
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const faces = faceContext(scene, 1e-6);
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const corner = buildFieldGeometry({ points: [[1, 1], [9, 1], [9, 9]], radius: 2,
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scene, polygons, faces, spaceId: 's' });
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assert.ok(corner && corner.pieces.length > 1);
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assert.equal((corner.d.match(/M/g) || []).length, 1);
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assert.match(corner.d, /L9 1 L9 9$/);
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const closed = buildFieldGeometry({ points: [[1, 1], [3, 1], [3, 3], [1, 3], [1, 1]], radius: 1,
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scene, polygons, faces, spaceId: 's' });
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assert.ok(closed);
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assert.equal((closed.d.match(/M/g) || []).length, 1);
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assert.match(closed.d, / Z$/);
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});
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test('#785: a mixed free/wall polyline keeps visibility for every piece', () => {
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const faces = faceContext(scene, 1e-6);
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const mixed = buildFieldGeometry({ points: [[1, 1], [8, 1], [10, 1], [10, 7]], radius: 2,
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scene, polygons, faces, spaceId: 's' });
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assert.ok(mixed && mixed.pieces.length > 3);
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assert.equal(mixed.pieces.every((piece) => piece.clip.length > 0), true,
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'free pieces use filled discs and blocked pieces use visibility polygons');
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assert.equal(mixed.pieces.some((piece) => piece.clip.length >= 4), true,
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'the long free run retains several overlapping visibility discs');
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});
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test('AC17: the field cache is bounded, per space, and counts geometry rebuilds', () => {
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const cache = new LedFieldCache(3);
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cache.forSpace('a');
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for (let i = 0; i < 5; i++) cache.read(`k${i}`, () => ({ pieces: [], box: { x: 0, y: 0, w: 1, h: 1 } }));
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assert.equal(cache.size, 3);
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assert.equal(cache.recomputes, 5);
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cache.read('k4', () => { throw new Error('a hit must not rebuild'); });
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assert.equal(cache.recomputes, 5);
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cache.forSpace('b');
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assert.equal(cache.size, 0, 'another space frees the previous one');
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});
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test('#784/AC9: the frame gives every strip the 30 cm default, not the shared radius; unbound strips have no view', () => {
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const lamp = { id: 'm1', name: 'Lamp', primary: 'light.led', entities: ['light.led'], space: 's', marker: { id: 'm1', binding: 'device:m1' } };
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const frame = ledFrame({
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space: { id: 's', vb: [0, 0, 1000, 1000], rooms: [], led_strips: [
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{ id: 'a', points: [[0.1, 0.1], [0.4, 0.1]], marker: 'm1' },
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{ id: 'b', points: [[0.1, 0.3], [0.4, 0.3]], marker: null },
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] },
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devices: [lamp],
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hass: { states: { 'light.led': { state: 'on', attributes: {} } } },
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defaultColor: '#ffd27b', paletteAlpha: 0.7, cellCm: 5, gridPitch: 1000 / 240, iconPct: 3.4,
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scene: null, polygons: [], glowFor: () => true, inRoom: () => false, showHidden: false,
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});
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assert.equal(frame.views.length, 1, 'the unbound strip is not a View strip');
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assert.ok(Math.abs(frame.views[0].radius - (30 / 5) * (1000 / 240)) < 1e-9, `radius ${frame.views[0].radius}`);
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});
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test('AC2/r1 M2: an explicit valid room_id wins over the anchor room; a stale one falls back', () => {
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const rooms = [{ id: 'A' }, { id: 'B' }];
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const inA = (point, room) => room.id === 'A' && point[0] < 500;
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const frameWith = (roomId) => ledFrame({
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space: { id: 's', vb: [0, 0, 1000, 1000], rooms, led_strips: [
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// Anchor (half length) at x = 250: geometrically inside A.
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{ id: 'a', points: [[0.1, 0.1], [0.4, 0.1]], marker: 'm1' },
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] },
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devices: [{ id: 'm1', name: 'Lamp', primary: 'light.led', entities: ['light.led'], space: 's',
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marker: { id: 'm1', binding: 'device:m1', ...(roomId === undefined ? {} : { room_id: roomId }) } }],
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hass: { states: { 'light.led': { state: 'on', attributes: {} } } },
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defaultColor: '#ffd27b', paletteAlpha: 0.7, cellCm: 5, gridPitch: 1000 / 240, iconPct: 3.4,
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scene: null, polygons: [], glowFor: (room) => room.id === 'B', inRoom: inA, showHidden: false,
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});
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assert.equal(frameWith(undefined).views[0].glow, false, 'no room_id: the anchor room A decides (Glow off)');
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assert.equal(frameWith('B').views[0].glow, true, 'explicit room_id B wins over the geometric A');
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assert.equal(frameWith('Z').views[0].glow, false, 'a stale room_id falls back to the geometry');
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assert.equal(stripRoom(rooms, 'B', [250, 100], inA)?.id, 'B');
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assert.equal(stripRoom(rooms, null, [250, 100], inA)?.id, 'A');
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assert.equal(stripRoom(rooms, null, null, inA), undefined);
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});
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test('AC17/r1 M5: a released owner retains nothing; the stats count visibility entries and fans', async () => {
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const { ledFieldCache, ledFieldStats, releaseLedField } = await import('../test-build/led-strip-field.js');
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const owner = {};
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const cache = ledFieldCache(owner);
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cache.forSpace('a');
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cache.read('k1', () => ({ pieces: [{ d: 'M0 0', clip: ['M0 0 Z', 'M1 1 Z'] }, { d: 'M1 1', clip: [] }], box: { x: 0, y: 0, w: 1, h: 1 } }));
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cache.read('k2', () => null);
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assert.deepEqual(ledFieldStats(owner), { visibility: 2, sources: 2, recomputes: 2 });
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releaseLedField(owner);
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assert.deepEqual(ledFieldStats(owner), { visibility: 0, sources: 0, recomputes: 0 });
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assert.notEqual(ledFieldCache(owner), cache, 'a new mount starts a new cache');
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});
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