feat(qgis): add editable traffic signal assemblies
This commit is contained in:
@@ -1,39 +1,24 @@
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"use strict";
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const fs = require("fs");
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const crypto = require("crypto");
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const { parseOsm } = require("./osm");
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const EARTH_RADIUS = 6371008.8;
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const CURB_OFFSET_METERS = 5.2;
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const MAST_REACH_METERS = 4.5;
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// This layout is serialized with the anchors so Blender's static structure and
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// Cesium's dynamic overlay cannot independently drift in size or handedness.
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// Lateral offsets use the approach travel direction: positive is the driver's
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// right. The countdown board therefore sits at +1.15m from the signal head.
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const SIGNAL_LAYOUT = Object.freeze({
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poleHeightMeters: 6.7,
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poleRadiusMeters: 0.13,
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armWidthMeters: 0.21,
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// The mast arm and the signal head share this centre elevation.
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mastHeightMeters: 6.25,
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headCenterHeightMeters: 6.25,
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headWidthMeters: 0.68,
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headDepthMeters: 0.30,
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headBodyHeightMeters: 1.62,
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lensRadiusMeters: 0.22,
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lensDepthMeters: 0.07,
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lensFaceOffsetMeters: 0.18,
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poleHeightMeters: 6.7, poleRadiusMeters: 0.13, armWidthMeters: 0.21,
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mastHeightMeters: 6.25, headCenterHeightMeters: 6.25,
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headWidthMeters: 0.68, headDepthMeters: 0.30, headBodyHeightMeters: 1.62,
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lensRadiusMeters: 0.22, lensDepthMeters: 0.07, lensFaceOffsetMeters: 0.18,
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lensVerticalOffsetsMeters: [0.49, -0.01, -0.51],
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countdownLateralMeters: 1.15,
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countdownFaceOffsetMeters: 0.05,
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countdownWidthMeters: 0.82,
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countdownDepthMeters: 0.14,
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countdownHeightMeters: 0.56,
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// The countdown board is fixed on the mast arm, not hung below it.
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countdownVerticalOffsetMeters: 0.0,
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countdownLateralMeters: 1.15, countdownFaceOffsetMeters: 0.05,
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countdownWidthMeters: 0.82, countdownDepthMeters: 0.14,
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countdownHeightMeters: 0.56, countdownVerticalOffsetMeters: 0.0,
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});
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function buildTrafficSignals(stopLines, intersections, controls = []) {
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function buildTrafficSignalFeatures(stopLines, intersections, controls = []) {
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const centers = (intersections.features || []).map((feature, index) => {
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const point = polygonCenter(feature.geometry);
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return { id: `intersection-${index + 1}`, point, radius: polygonRadius(feature.geometry, point) };
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@@ -46,215 +31,238 @@ function buildTrafficSignals(stopLines, intersections, controls = []) {
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if (!intersection || metersBetween(center, intersection.point) > 32) continue;
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const axis = roadAxis(feature.geometry, center, intersection.point);
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if (!axis) continue;
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// A vehicle signal belongs beyond the junction, facing back toward the
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// approaching stop line. Use the far edge of the intersection, never the
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// near-side stop-line area where it would read as a pedestrian signal.
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const right = [axis[1], -axis[0]];
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const farSide = moveMeters(intersection.point, axis, intersection.radius + 3.2);
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// The pole is on the far-side sidewalk, not at the stop line or inside
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// the intersection. Its mast then reaches back above the approach lanes.
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const point = moveMeters(farSide, right, CURB_OFFSET_METERS);
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candidates.push({
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intersectionId: intersection.id,
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center,
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axis,
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point,
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intersectionId: intersection.id, center, axis,
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point: moveMeters(farSide, right, CURB_OFFSET_METERS),
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headingDegrees: normalizeDegrees(Math.atan2(axis[0], axis[1]) * 180 / Math.PI),
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});
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}
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const signals = [];
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const features = [];
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for (const control of controls) {
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const controlPoint = [Number(control.longitude), Number(control.latitude)];
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if (!controlPoint.every(Number.isFinite)) continue;
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// A traffic-signal node on a through road is not a controlled vehicle
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// junction. Its connected motor-road arms are the source of truth.
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if (!Array.isArray(control.arms) || control.arms.length < 3) continue;
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if (!controlPoint.every(Number.isFinite) || !Array.isArray(control.arms) || control.arms.length < 3) continue;
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const intersection = nearestCenter(controlPoint, centers);
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if (!intersection || metersBetween(controlPoint, intersection.point) > 32) continue;
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const arms = matchOsmArms(candidates.filter((candidate) => candidate.intersectionId === intersection.id), controlPoint, control.arms);
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const arms = matchOsmArms(candidates.filter((item) => item.intersectionId === intersection.id), controlPoint, control.arms);
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const groups = phaseGroups(arms);
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for (const [index, candidate] of arms.entries()) {
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signals.push({
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id: `signal-${signals.length + 1}`,
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controlId: String(control.id || ""),
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intersectionId: intersection.id,
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phaseGroup: groups[index],
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longitude: candidate.point[0],
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latitude: candidate.point[1],
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stopLongitude: candidate.center[0],
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stopLatitude: candidate.center[1],
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headingDegrees: candidate.headingDegrees,
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mastReachMeters: MAST_REACH_METERS,
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pose: buildSignalPose(candidate.point, candidate.axis, MAST_REACH_METERS),
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arms.forEach((candidate, index) => {
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const fallbackArmId = `heading-${Math.round(normalizeDegrees(candidate.osmArm?.headingDegrees || 0) * 1000)}`;
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const sourceWayId = String(candidate.osmArm?.wayId || "legacy");
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const neighborNodeId = String(candidate.osmArm?.neighborNodeId || fallbackArmId);
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const approachId = `${sourceWayId}:${neighborNodeId}`;
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const signalUid = `osm-${String(control.id)}-${sourceWayId}-${neighborNodeId}`;
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features.push({
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type: "Feature",
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geometry: { type: "Point", coordinates: candidate.point.slice() },
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properties: {
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signal_uid: signalUid, display_id: signalUid, control_id: String(control.id),
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approach_id: approachId, source_way_id: sourceWayId,
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heading_deg: candidate.headingDegrees, phase_group: groups[index],
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mast_reach_m: MAST_REACH_METERS,
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stop_lon: candidate.center[0], stop_lat: candidate.center[1],
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enabled: true, z_offset_m: 0,
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},
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});
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}
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});
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}
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return validateTrafficSignalFeatures({ type: "FeatureCollection", features });
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}
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function validateTrafficSignalFeatures(collection) {
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if (collection?.type !== "FeatureCollection" || !Array.isArray(collection.features)) {
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throw new Error("Traffic signal assemblies must be a FeatureCollection");
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}
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const uids = new Set();
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const displayIds = new Set();
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const features = collection.features.map((feature, index) => {
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const label = `traffic signal feature ${index + 1}`;
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if (feature?.geometry?.type !== "Point" || !Array.isArray(feature.geometry.coordinates) ||
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feature.geometry.coordinates.length < 2 || !feature.geometry.coordinates.slice(0, 2).every(Number.isFinite)) {
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throw new Error(`${label}: geometry must be a finite Point`);
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}
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const input = feature.properties || {};
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const text = (key, required = true) => {
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const value = input[key] == null ? "" : String(input[key]).trim();
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if (required && !value) throw new Error(`${label}: missing ${key}`);
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return value;
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};
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const number = (key, options = {}) => {
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if (input[key] === null || input[key] === undefined || input[key] === "") {
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throw new Error(`${label}: missing ${key}`);
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}
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const value = Number(input[key]);
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if (!Number.isFinite(value) || (options.min != null && value < options.min) || (options.max != null && value > options.max)) {
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throw new Error(`${label}: invalid ${key} '${input[key]}'`);
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}
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return value;
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};
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const signalUid = text("signal_uid");
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if (!/^osm-[A-Za-z0-9_.:-]+$/.test(signalUid)) throw new Error(`${label}: invalid signal_uid '${signalUid}'`);
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if (uids.has(signalUid)) throw new Error(`Duplicate signal_uid '${signalUid}'`);
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uids.add(signalUid);
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const displayId = text("display_id", false);
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if (displayId && displayIds.has(displayId)) throw new Error(`Duplicate display_id '${displayId}'`);
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if (displayId) displayIds.add(displayId);
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const phaseGroup = number("phase_group", { min: 0, max: 1 });
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if (!Number.isInteger(phaseGroup)) throw new Error(`${label}: phase_group must be 0 or 1`);
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const enabled = normalizeBoolean(input.enabled, label);
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const controlId = text("control_id");
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const approachId = text("approach_id");
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const sourceWayId = text("source_way_id");
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if (!approachId.startsWith(`${sourceWayId}:`)) throw new Error(`${label}: approach_id does not match source_way_id`);
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const expectedUid = `osm-${controlId}-${approachId.replace(":", "-")}`;
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if (signalUid !== expectedUid) throw new Error(`${label}: signal_uid does not match source identity (expected '${expectedUid}')`);
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return {
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type: "Feature",
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geometry: { type: "Point", coordinates: feature.geometry.coordinates.slice(0, 2).map(Number) },
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properties: {
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...input, signal_uid: signalUid, display_id: displayId,
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control_id: controlId, approach_id: approachId,
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source_way_id: sourceWayId, heading_deg: normalizeDegrees(number("heading_deg")),
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phase_group: phaseGroup, mast_reach_m: number("mast_reach_m", { min: 0.1, max: 30 }),
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stop_lon: number("stop_lon", { min: -180, max: 180 }),
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stop_lat: number("stop_lat", { min: -90, max: 90 }),
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enabled, z_offset_m: number("z_offset_m", { min: -20, max: 100 }),
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},
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};
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});
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return { type: "FeatureCollection", features };
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}
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function buildTrafficSignalsFromFeatures(collection) {
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const normalized = validateTrafficSignalFeatures(collection);
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const signals = normalized.features.filter((feature) => feature.properties.enabled).map((feature) => {
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const p = feature.properties;
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const point = feature.geometry.coordinates;
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const axis = headingVector(p.heading_deg);
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return {
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id: p.signal_uid, signalUid: p.signal_uid, displayId: p.display_id,
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nodeKey: signalNodeKey(p.signal_uid),
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controlId: p.control_id, approachId: p.approach_id, sourceWayId: p.source_way_id,
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phaseGroup: p.phase_group, longitude: point[0], latitude: point[1],
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stopLongitude: p.stop_lon, stopLatitude: p.stop_lat,
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headingDegrees: p.heading_deg, mastReachMeters: p.mast_reach_m,
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zOffsetMeters: p.z_offset_m,
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pose: buildSignalPose(point, axis, p.mast_reach_m, p.z_offset_m),
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};
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});
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return { version: 3, layout: SIGNAL_LAYOUT, signals };
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}
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function uniqueApproachArms(candidates, controlPoint) {
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const sorted = candidates.map((candidate) => ({
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...candidate,
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armHeading: normalizeDegrees(headingBetween(controlPoint, candidate.center)),
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controlDistance: metersBetween(controlPoint, candidate.center),
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})).sort((a, b) => a.armHeading - b.armHeading || a.controlDistance - b.controlDistance);
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const arms = [];
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for (const candidate of sorted) {
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const duplicate = arms.find((arm) => angularDistance(arm.armHeading, candidate.armHeading) <= 25);
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if (!duplicate) arms.push(candidate);
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function signalNodeKey(signalUid) {
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return `ts_${crypto.createHash("sha256").update(signalUid).digest("hex").slice(0, 16)}`;
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}
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function validateTrafficSignalSourceReferences(collection, controls) {
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const normalized = validateTrafficSignalFeatures(collection);
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const approachesByControl = new Map((controls || []).map((control) => [
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String(control.id),
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new Set((control.arms || []).map((arm) => `${String(arm.wayId)}:${String(arm.neighborNodeId)}`)),
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]));
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for (const [index, feature] of normalized.features.entries()) {
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const { control_id: controlId, approach_id: approachId } = feature.properties;
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const approaches = approachesByControl.get(controlId);
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if (!approaches) {
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throw new Error(`traffic signal feature ${index + 1}: control_id '${controlId}' is not present in the current OSM`);
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}
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if (!approaches.has(approachId)) {
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throw new Error(
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`traffic signal feature ${index + 1}: approach_id '${approachId}' is not present on OSM control '${controlId}'`,
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);
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}
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}
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return normalized;
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}
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function buildTrafficSignals(stopLines, intersections, controls = []) {
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return buildTrafficSignalsFromFeatures(buildTrafficSignalFeatures(stopLines, intersections, controls));
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}
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function readTrafficSignalFeatures(stopLinePath, intersectionPath, osmPath) {
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const controls = parseOsm(fs.readFileSync(osmPath, "utf8")).trafficSignalControls;
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return buildTrafficSignalFeatures(
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JSON.parse(fs.readFileSync(stopLinePath, "utf8")),
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JSON.parse(fs.readFileSync(intersectionPath, "utf8")), controls,
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);
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}
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function readTrafficSignals(editablePath, osmPath = null) {
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const collection = JSON.parse(fs.readFileSync(editablePath, "utf8"));
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if (osmPath) {
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const controls = parseOsm(fs.readFileSync(osmPath, "utf8")).trafficSignalControls;
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validateTrafficSignalSourceReferences(collection, controls);
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}
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return buildTrafficSignalsFromFeatures(collection);
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}
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function normalizeBoolean(value, label) {
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if (value === true || value === 1 || value === "1" || String(value).toLowerCase() === "true" || String(value).toLowerCase() === "yes") return true;
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if (value === false || value === 0 || value === "0" || String(value).toLowerCase() === "false" || String(value).toLowerCase() === "no") return false;
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throw new Error(`${label}: invalid enabled '${value}'`);
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}
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function uniqueApproachArms(candidates, controlPoint) {
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const sorted = candidates.map((candidate) => ({ ...candidate, armHeading: normalizeDegrees(headingBetween(controlPoint, candidate.center)), controlDistance: metersBetween(controlPoint, candidate.center) }))
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.sort((a, b) => a.armHeading - b.armHeading || a.controlDistance - b.controlDistance);
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const arms = [];
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for (const candidate of sorted) if (!arms.some((arm) => angularDistance(arm.armHeading, candidate.armHeading) <= 25)) arms.push(candidate);
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return arms;
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}
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function matchOsmArms(candidates, controlPoint, osmArms) {
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const withHeadings = candidates.map((candidate) => ({
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...candidate,
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armHeading: normalizeDegrees(headingBetween(controlPoint, candidate.center)),
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}));
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if (!Array.isArray(osmArms) || !osmArms.length) return uniqueApproachArms(withHeadings, controlPoint);
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const remaining = withHeadings.slice();
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const matched = [];
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for (const osmArm of osmArms) {
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let bestIndex = -1;
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let bestDistance = Infinity;
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for (let index = 0; index < remaining.length; index += 1) {
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const distance = angularDistance(remaining[index].armHeading, osmArm.headingDegrees);
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if (distance < bestDistance) { bestDistance = distance; bestIndex = index; }
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}
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if (bestIndex >= 0 && bestDistance <= 45) {
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matched.push(remaining.splice(bestIndex, 1)[0]);
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} else {
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matched.push(fallbackCandidate(controlPoint, osmArm));
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}
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}
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return matched;
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const remaining = candidates.map((candidate) => ({ ...candidate, armHeading: normalizeDegrees(headingBetween(controlPoint, candidate.center)) }));
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if (!osmArms.length) return uniqueApproachArms(remaining, controlPoint);
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return osmArms.map((osmArm) => {
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let bestIndex = -1; let bestDistance = Infinity;
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remaining.forEach((item, index) => { const distance = angularDistance(item.armHeading, osmArm.headingDegrees); if (distance < bestDistance) { bestDistance = distance; bestIndex = index; } });
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const candidate = bestIndex >= 0 && bestDistance <= 45 ? remaining.splice(bestIndex, 1)[0] : fallbackCandidate(controlPoint, osmArm);
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return { ...candidate, osmArm };
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});
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}
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function fallbackCandidate(controlPoint, osmArm) {
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const outward = headingVector(osmArm.headingDegrees);
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const axis = [-outward[0], -outward[1]];
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const stopDistance = 8.0;
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const stop = moveMeters(controlPoint, outward, stopDistance);
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const farSide = moveMeters(controlPoint, axis, 3.2);
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return {
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center: stop,
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axis,
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point: moveMeters(farSide, [axis[1], -axis[0]], CURB_OFFSET_METERS),
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headingDegrees: normalizeDegrees(Math.atan2(axis[0], axis[1]) * 180 / Math.PI),
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fallback: true,
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};
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const outward = headingVector(osmArm.headingDegrees); const axis = [-outward[0], -outward[1]];
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const center = moveMeters(controlPoint, outward, 8); const farSide = moveMeters(controlPoint, axis, 3.2);
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return { center, axis, point: moveMeters(farSide, [axis[1], -axis[0]], CURB_OFFSET_METERS), armHeading: normalizeDegrees(osmArm.headingDegrees), headingDegrees: normalizeDegrees(Math.atan2(axis[0], axis[1]) * 180 / Math.PI), fallback: true };
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}
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function phaseGroups(arms) {
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const groups = Array(arms.length).fill(1);
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if (arms.length < 2) return groups;
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let main = [0, 1];
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let bestOpposition = -1;
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for (let left = 0; left < arms.length; left += 1) {
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for (let right = left + 1; right < arms.length; right += 1) {
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const opposition = angularDistance(arms[left].armHeading, arms[right].armHeading);
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if (opposition > bestOpposition) {
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bestOpposition = opposition;
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main = [left, right];
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}
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}
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}
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groups[main[0]] = 0;
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groups[main[1]] = 0;
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return groups;
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const groups = Array(arms.length).fill(1); if (arms.length < 2) return groups;
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let main = [0, 1]; let best = -1;
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for (let a = 0; a < arms.length; a += 1) for (let b = a + 1; b < arms.length; b += 1) { const opposition = angularDistance(arms[a].armHeading, arms[b].armHeading); if (opposition > best) { best = opposition; main = [a, b]; } }
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groups[main[0]] = 0; groups[main[1]] = 0; return groups;
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}
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function buildSignalPose(pole, axis, mastReach) {
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const lateral = [axis[1], -axis[0]];
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const face = [-axis[0], -axis[1]];
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const head = moveMeters(pole, lateral, -mastReach);
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const faceHeadingDegrees = Math.atan2(face[0], face[1]) * 180 / Math.PI;
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const position = (point, height) => ({ longitude: point[0], latitude: point[1], height });
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function buildSignalPose(pole, axis, mastReach, zOffset = 0) {
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const lateral = [axis[1], -axis[0]]; const face = [-axis[0], -axis[1]];
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const head = moveMeters(pole, lateral, -mastReach); const faceHeadingDegrees = Math.atan2(face[0], face[1]) * 180 / Math.PI;
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const position = (point, height) => ({ longitude: point[0], latitude: point[1], height: height + zOffset });
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const lensPoint = moveMeters(head, face, SIGNAL_LAYOUT.lensFaceOffsetMeters);
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const board = moveMeters(
|
||||
moveMeters(head, lateral, SIGNAL_LAYOUT.countdownLateralMeters),
|
||||
face, SIGNAL_LAYOUT.countdownFaceOffsetMeters,
|
||||
);
|
||||
return {
|
||||
pole: position(pole, 0),
|
||||
arm: {
|
||||
from: position(pole, SIGNAL_LAYOUT.mastHeightMeters),
|
||||
to: position(head, SIGNAL_LAYOUT.mastHeightMeters),
|
||||
},
|
||||
head: { ...position(head, SIGNAL_LAYOUT.headCenterHeightMeters), faceHeadingDegrees },
|
||||
lenses: ["red", "yellow", "green"].map((state, index) => ({
|
||||
state,
|
||||
...position(lensPoint, SIGNAL_LAYOUT.headCenterHeightMeters + SIGNAL_LAYOUT.lensVerticalOffsetsMeters[index]),
|
||||
})),
|
||||
countdown: { ...position(board, SIGNAL_LAYOUT.mastHeightMeters), faceHeadingDegrees },
|
||||
};
|
||||
const board = moveMeters(moveMeters(head, lateral, SIGNAL_LAYOUT.countdownLateralMeters), face, SIGNAL_LAYOUT.countdownFaceOffsetMeters);
|
||||
return { pole: position(pole, 0), arm: { from: position(pole, SIGNAL_LAYOUT.mastHeightMeters), to: position(head, SIGNAL_LAYOUT.mastHeightMeters) }, head: { ...position(head, SIGNAL_LAYOUT.headCenterHeightMeters), faceHeadingDegrees }, lenses: ["red", "yellow", "green"].map((state, index) => ({ state, ...position(lensPoint, SIGNAL_LAYOUT.headCenterHeightMeters + SIGNAL_LAYOUT.lensVerticalOffsetsMeters[index]) })), countdown: { ...position(board, SIGNAL_LAYOUT.mastHeightMeters), faceHeadingDegrees } };
|
||||
}
|
||||
|
||||
function readTrafficSignals(stopLinePath, intersectionPath, osmPath) {
|
||||
const controls = osmPath ? parseOsm(fs.readFileSync(osmPath, "utf8")).trafficSignalControls : [];
|
||||
return buildTrafficSignals(JSON.parse(fs.readFileSync(stopLinePath, "utf8")), JSON.parse(fs.readFileSync(intersectionPath, "utf8")), controls);
|
||||
}
|
||||
function polygonCenter(geometry) { const ring = geometry?.type === "Polygon" ? geometry.coordinates?.[0] : null; if (!ring || ring.length < 4) return null; const points = ring.slice(0, -1); return [points.reduce((s, p) => s + p[0], 0) / points.length, points.reduce((s, p) => s + p[1], 0) / points.length]; }
|
||||
function polygonRadius(geometry, center) { const ring = geometry?.type === "Polygon" ? geometry.coordinates?.[0] : null; return ring && center ? Math.max(...ring.slice(0, -1).map((point) => metersBetween(center, point)), 0) : 0; }
|
||||
function roadAxis(geometry, center, target) { const ring = geometry?.coordinates?.[0]; if (!ring || ring.length < 3) return null; let longest; for (let i = 0; i < ring.length - 1; i += 1) { const dx = (ring[i + 1][0] - ring[i][0]) * Math.cos(center[1] * Math.PI / 180); const dy = ring[i + 1][1] - ring[i][1]; const length = Math.hypot(dx, dy); if (!longest || length > longest.length) longest = { dx, dy, length }; } if (!longest?.length) return null; let axis = [-longest.dy / longest.length, longest.dx / longest.length]; const toward = [(target[0] - center[0]) * Math.cos(center[1] * Math.PI / 180), target[1] - center[1]]; if (axis[0] * toward[0] + axis[1] * toward[1] < 0) axis = [-axis[0], -axis[1]]; return axis; }
|
||||
function nearestCenter(point, centers) { return centers.map((entry) => ({ ...entry, distance: metersBetween(point, entry.point) })).sort((a, b) => a.distance - b.distance)[0] || null; }
|
||||
function metersBetween(a, b) { const lat = (a[1] + b[1]) / 2 * Math.PI / 180; return Math.hypot((a[0] - b[0]) * Math.cos(lat), a[1] - b[1]) * Math.PI / 180 * EARTH_RADIUS; }
|
||||
function moveMeters(point, vector, meters) { const scale = 180 / Math.PI / EARTH_RADIUS; return [point[0] + vector[0] * meters * scale / Math.cos(point[1] * Math.PI / 180), point[1] + vector[1] * meters * scale]; }
|
||||
function headingBetween(from, to) { const latitude = (from[1] + to[1]) / 2 * Math.PI / 180; return Math.atan2((to[0] - from[0]) * Math.cos(latitude), to[1] - from[1]) * 180 / Math.PI; }
|
||||
function headingVector(degrees) { const radians = degrees * Math.PI / 180; return [Math.sin(radians), Math.cos(radians)]; }
|
||||
function normalizeDegrees(value) { return ((value % 360) + 360) % 360; }
|
||||
function angularDistance(a, b) { return Math.abs(((a - b + 540) % 360) - 180); }
|
||||
|
||||
function polygonCenter(geometry) {
|
||||
const ring = geometry?.type === "Polygon" ? geometry.coordinates?.[0] : null;
|
||||
if (!ring || ring.length < 4) return null;
|
||||
const points = ring.slice(0, -1);
|
||||
return [points.reduce((sum, point) => sum + point[0], 0) / points.length, points.reduce((sum, point) => sum + point[1], 0) / points.length];
|
||||
}
|
||||
|
||||
function polygonRadius(geometry, center) {
|
||||
const ring = geometry?.type === "Polygon" ? geometry.coordinates?.[0] : null;
|
||||
if (!ring || !center) return 0;
|
||||
return Math.max(...ring.slice(0, -1).map((point) => metersBetween(center, point)), 0);
|
||||
}
|
||||
|
||||
function roadAxis(geometry, center, target) {
|
||||
const ring = geometry?.coordinates?.[0];
|
||||
if (!ring || ring.length < 3) return null;
|
||||
let longest = null;
|
||||
for (let i = 0; i < ring.length - 1; i += 1) {
|
||||
const dx = (ring[i + 1][0] - ring[i][0]) * Math.cos(center[1] * Math.PI / 180);
|
||||
const dy = ring[i + 1][1] - ring[i][1];
|
||||
const length = Math.hypot(dx, dy);
|
||||
if (!longest || length > longest.length) longest = { dx, dy, length };
|
||||
}
|
||||
if (!longest?.length) return null;
|
||||
let axis = [-longest.dy / longest.length, longest.dx / longest.length];
|
||||
const toward = [(target[0] - center[0]) * Math.cos(center[1] * Math.PI / 180), target[1] - center[1]];
|
||||
if (axis[0] * toward[0] + axis[1] * toward[1] < 0) axis = [-axis[0], -axis[1]];
|
||||
return axis;
|
||||
}
|
||||
|
||||
function nearestCenter(point, centers) {
|
||||
return centers.map((entry) => ({ ...entry, distance: metersBetween(point, entry.point) })).sort((a, b) => a.distance - b.distance)[0] || null;
|
||||
}
|
||||
|
||||
function metersBetween(a, b) {
|
||||
const lat = (a[1] + b[1]) / 2 * Math.PI / 180;
|
||||
return Math.hypot((a[0] - b[0]) * Math.cos(lat), a[1] - b[1]) * Math.PI / 180 * EARTH_RADIUS;
|
||||
}
|
||||
|
||||
function moveMeters(point, vector, meters) {
|
||||
const scale = 180 / Math.PI / EARTH_RADIUS;
|
||||
return [point[0] + vector[0] * meters * scale / Math.cos(point[1] * Math.PI / 180), point[1] + vector[1] * meters * scale];
|
||||
}
|
||||
|
||||
function headingBetween(from, to) {
|
||||
const latitude = (from[1] + to[1]) / 2 * Math.PI / 180;
|
||||
return Math.atan2((to[0] - from[0]) * Math.cos(latitude), to[1] - from[1]) * 180 / Math.PI;
|
||||
}
|
||||
|
||||
function headingVector(headingDegrees) {
|
||||
const radians = headingDegrees * Math.PI / 180;
|
||||
return [Math.sin(radians), Math.cos(radians)];
|
||||
}
|
||||
|
||||
function normalizeDegrees(value) {
|
||||
return ((value % 360) + 360) % 360;
|
||||
}
|
||||
|
||||
function angularDistance(a, b) {
|
||||
return Math.abs(((a - b + 540) % 360) - 180);
|
||||
}
|
||||
|
||||
module.exports = { SIGNAL_LAYOUT, buildTrafficSignals, readTrafficSignals };
|
||||
module.exports = {
|
||||
SIGNAL_LAYOUT,
|
||||
signalNodeKey,
|
||||
buildTrafficSignalFeatures,
|
||||
validateTrafficSignalFeatures,
|
||||
validateTrafficSignalSourceReferences,
|
||||
buildTrafficSignalsFromFeatures,
|
||||
buildTrafficSignals,
|
||||
readTrafficSignalFeatures,
|
||||
readTrafficSignals,
|
||||
};
|
||||
|
||||
Reference in New Issue
Block a user