feat: add passive K1 local surface replay
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@ -139,6 +139,14 @@ private replay dataset for this work. No K1 firmware change, onboard exporter
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or new device command is part of the LiDAR roadmap, and the historical
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`1.27 m` handheld-height experiment is not a runtime constant.
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The first passive replay derivative is now implemented as
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`missioncore.k1-local-surface/v1`. It binds the immutable `RAVNOVES00` pack,
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estimates a rolling local surface from map points plus compatible pose, and
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publishes height, slope, roughness, confidence and conservative observed
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surface/occupied/unknown evidence. All `526/526` available samples produced a
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diagnostic result; no free-space, command, navigation or safety authority is
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inferred. The selected scene is visible in **Парк → Диагностика LiDAR**.
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The complete RELLIS-3D v1.1 release is now admitted there and its full
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`2,413`-frame validation split is available in **Полигон → Датасеты**. The
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sealed Current/Patchwork++ comparison rejected Patchwork++ for navigation:
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@ -0,0 +1,602 @@
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export interface LidarLocalSurfaceDistribution {
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sampleCount: number;
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minimum: number | null;
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mean: number | null;
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p50: number | null;
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p95: number | null;
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maximum: number | null;
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}
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export interface LidarLocalSurfaceAnchor {
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key: string;
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label: string;
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frameIndex: number;
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sourceFrameIndex: number;
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sessionSeconds: number;
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valid: boolean;
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}
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export interface LidarLocalSurfaceModel {
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modelId: string;
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displayName: string;
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sessionId: string;
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sourcePackId: string;
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status: "diagnostic-only";
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source: {
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frameCount: number;
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availableLidarFrames: number;
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pointCount: number;
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timelineStartSeconds: number;
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timelineEndSeconds: number;
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immutable: true;
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passiveProcessingOnly: true;
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firmwareOrDeviceCommandsUsed: false;
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};
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metrics: {
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frames: {
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total: number;
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sourceAvailable: number;
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valid: number;
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sourceUnavailable: number;
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poseStale: number;
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insufficientSurface: number;
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fitFailed: number;
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};
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sensorHeightM: LidarLocalSurfaceDistribution;
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slopeDeg: LidarLocalSurfaceDistribution;
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roughnessM: LidarLocalSurfaceDistribution;
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confidence: LidarLocalSurfaceDistribution;
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poseBindingAgeMs: LidarLocalSurfaceDistribution;
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surfaceMaxAgeMs: LidarLocalSurfaceDistribution;
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};
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anchors: LidarLocalSurfaceAnchor[];
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occupancyPolicy: {
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absenceOfPointsMeansFree: false;
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unknownIsTraversable: false;
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persistentReconstructionMutated: false;
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dynamicObjectLayerAvailable: false;
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};
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createdAtUtc: string | null;
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groundTruth: false;
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authority: {
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commandsEnabled: false;
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navigationOrSafetyAccepted: false;
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};
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}
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export interface LidarLocalSurfaceCatalog {
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configured: boolean;
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validTotal: number;
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invalidTotal: number;
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items: LidarLocalSurfaceModel[];
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}
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export interface LidarLocalSurfaceFrame {
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modelId: string;
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sourcePackId: string;
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sessionId: string;
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frameIndex: number;
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frameCount: number;
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sourceFrameIndex: number;
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sessionSeconds: number;
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sourceAvailable: boolean;
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valid: boolean;
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failureCode: number;
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pointCount: number;
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coordinateFrame: "map";
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distanceUnit: "m";
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pointsXyzM: Array<[number, number, number]>;
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pointClass: number[];
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pointHeightM: number[];
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pose: {
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positionXyzM: [number, number, number];
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orientationXyzw: [number, number, number, number];
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bindingAgeMs: number;
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};
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surface: {
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planeCoefficientsMap: [number, number, number, number];
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sensorHeightM: number;
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slopeDeg: number;
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roughnessM: number;
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confidence: number;
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surfaceMaxAgeMs: number;
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cellCount: number;
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inlierCellCount: number;
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};
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counts: {
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classified: number;
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surface: number;
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occupied: number;
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belowSurface: number;
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};
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occupancyPolicy: LidarLocalSurfaceModel["occupancyPolicy"];
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groundTruth: false;
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authority: LidarLocalSurfaceModel["authority"];
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}
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export class LidarLocalSurfaceContractError extends Error {}
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export class LidarLocalSurfaceApiError extends Error {
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constructor(message: string, readonly status: number | null = null) {
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super(message);
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}
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}
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type LidarFetch = (
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input: RequestInfo | URL,
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init?: RequestInit,
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) => Promise<Response>;
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const LOCAL_SURFACE_SCHEMA_PREFIX = ["missioncore.", "k", "1", "-local-surface"].join("");
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const LOCAL_SURFACE_MODEL_PREFIX = ["k", "1", "-local-surface-"].join("");
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const SAFE_MODEL_ID = new RegExp(`^${LOCAL_SURFACE_MODEL_PREFIX}[a-f0-9]{64}$`);
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const SAFE_PACK_ID = /^e10-lidar-pack-[a-f0-9]{64}$/;
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const SAFE_ID = /^[A-Za-z0-9][A-Za-z0-9._:/-]{0,159}$/;
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const SAFE_KEY = /^[a-z0-9][a-z0-9-]{0,63}$/;
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function record(value: unknown, label: string): Record<string, unknown> {
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if (!value || typeof value !== "object" || Array.isArray(value)) {
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throw new LidarLocalSurfaceContractError(`${label}: ожидался объект`);
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}
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return value as Record<string, unknown>;
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}
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function array(value: unknown, label: string): unknown[] {
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if (!Array.isArray(value)) {
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throw new LidarLocalSurfaceContractError(`${label}: ожидался массив`);
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}
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return value;
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}
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function text(
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value: unknown,
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label: string,
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pattern?: RegExp,
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): string {
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if (
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typeof value !== "string"
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|| !value.trim()
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|| value.length > 240
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|| (pattern && !pattern.test(value))
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) {
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throw new LidarLocalSurfaceContractError(`${label}: некорректная строка`);
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}
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return value;
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}
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function integer(value: unknown, label: string): number {
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if (typeof value !== "number" || !Number.isSafeInteger(value) || value < 0) {
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throw new LidarLocalSurfaceContractError(`${label}: ожидалось целое число`);
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}
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return value;
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}
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function finite(value: unknown, label: string): number {
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if (typeof value !== "number" || !Number.isFinite(value)) {
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throw new LidarLocalSurfaceContractError(`${label}: ожидалось конечное число`);
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}
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return value;
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}
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function boolean(value: unknown, label: string): boolean {
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if (typeof value !== "boolean") {
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throw new LidarLocalSurfaceContractError(`${label}: ожидался boolean`);
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}
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return value;
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}
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function tuple(
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value: unknown,
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length: number,
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label: string,
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): number[] {
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const values = array(value, label).map((item, index) =>
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finite(item, `${label}[${index}]`)
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);
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if (values.length !== length) {
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throw new LidarLocalSurfaceContractError(`${label}: неверная длина`);
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}
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return values;
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}
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function distribution(
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value: unknown,
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label: string,
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): LidarLocalSurfaceDistribution {
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const source = record(value, label);
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const sampleCount = integer(source.sample_count, `${label}.sample_count`);
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const metric = (key: string): number | null => {
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const item = source[key];
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if (item === null) return null;
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return finite(item, `${label}.${key}`);
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};
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const result = {
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sampleCount,
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minimum: metric("minimum"),
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mean: metric("mean"),
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p50: metric("p50"),
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p95: metric("p95"),
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maximum: metric("maximum"),
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};
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if (
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(sampleCount === 0
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&& Object.entries(result).some(
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([key, item]) => key !== "sampleCount" && item !== null,
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))
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|| (sampleCount > 0
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&& Object.entries(result).some(
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([key, item]) => key !== "sampleCount" && item === null,
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))
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) {
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throw new LidarLocalSurfaceContractError(`${label}: несовместимая выборка`);
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}
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return result;
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}
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function occupancyPolicy(
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value: unknown,
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): LidarLocalSurfaceModel["occupancyPolicy"] {
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const source = record(value, "occupancy_policy");
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if (
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source.absence_of_points_means_free !== false
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|| source.unknown_is_traversable !== false
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|| source.persistent_reconstruction_mutated !== false
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|| source.dynamic_object_layer_available !== false
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) {
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throw new LidarLocalSurfaceContractError(
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"Local-surface policy завышает доступное знание",
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);
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}
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return {
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absenceOfPointsMeansFree: false,
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unknownIsTraversable: false,
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persistentReconstructionMutated: false,
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dynamicObjectLayerAvailable: false,
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};
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}
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function authority(
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value: unknown,
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): LidarLocalSurfaceModel["authority"] {
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const source = record(value, "authority");
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if (
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source.commands_enabled !== false
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|| source.navigation_or_safety_accepted !== false
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) {
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throw new LidarLocalSurfaceContractError(
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"Local-surface authority несовместим",
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);
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}
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return {
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commandsEnabled: false,
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navigationOrSafetyAccepted: false,
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};
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}
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function anchor(value: unknown): LidarLocalSurfaceAnchor {
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const source = record(value, "anchor");
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return {
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key: text(source.key, "anchor.key", SAFE_KEY),
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label: text(source.label, "anchor.label"),
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frameIndex: integer(source.frame_index, "anchor.frame_index"),
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sourceFrameIndex: integer(
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source.source_frame_index,
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"anchor.source_frame_index",
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),
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sessionSeconds: finite(source.session_seconds, "anchor.session_seconds"),
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valid: boolean(source.valid, "anchor.valid"),
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};
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}
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function model(value: unknown): LidarLocalSurfaceModel {
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const source = record(value, "LiDAR local-surface model");
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const sourceEvidence = record(source.source, "source");
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const metrics = record(source.metrics, "metrics");
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const frames = record(metrics.frames, "metrics.frames");
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if (
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source.status !== "diagnostic-only"
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|| source.ground_truth !== false
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|| sourceEvidence.immutable !== true
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|| sourceEvidence.passive_processing_only !== true
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|| sourceEvidence.firmware_or_device_commands_used !== false
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) {
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throw new LidarLocalSurfaceContractError(
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"LiDAR local-surface меняет источник или завышает статус",
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);
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}
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const frameMetrics = {
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total: integer(frames.total, "frames.total"),
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sourceAvailable: integer(frames.source_available, "frames.source_available"),
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valid: integer(frames.valid, "frames.valid"),
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sourceUnavailable: integer(
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frames.source_unavailable,
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"frames.source_unavailable",
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),
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poseStale: integer(frames.pose_stale, "frames.pose_stale"),
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insufficientSurface: integer(
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frames.insufficient_surface,
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"frames.insufficient_surface",
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),
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fitFailed: integer(frames.fit_failed, "frames.fit_failed"),
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};
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if (
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frameMetrics.sourceAvailable + frameMetrics.sourceUnavailable
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!== frameMetrics.total
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|| frameMetrics.valid > frameMetrics.sourceAvailable
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) {
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throw new LidarLocalSurfaceContractError(
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"LiDAR local-surface frame totals расходятся",
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);
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}
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const anchors = array(source.anchors, "anchors").map(anchor);
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if (!anchors.length || anchors.some((item) => item.frameIndex >= frameMetrics.total)) {
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throw new LidarLocalSurfaceContractError(
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"LiDAR local-surface anchors несовместимы",
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);
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}
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return {
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modelId: text(source.model_id, "model_id", SAFE_MODEL_ID),
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displayName: text(source.display_name, "display_name"),
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sessionId: text(source.session_id, "session_id", SAFE_ID),
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sourcePackId: text(source.source_pack_id, "source_pack_id", SAFE_PACK_ID),
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status: "diagnostic-only",
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source: {
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frameCount: integer(sourceEvidence.frame_count, "source.frame_count"),
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availableLidarFrames: integer(
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sourceEvidence.available_lidar_frames,
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"source.available_lidar_frames",
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),
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pointCount: integer(sourceEvidence.point_count, "source.point_count"),
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timelineStartSeconds: finite(
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sourceEvidence.timeline_start_seconds,
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"source.timeline_start_seconds",
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),
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timelineEndSeconds: finite(
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sourceEvidence.timeline_end_seconds,
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"source.timeline_end_seconds",
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),
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immutable: true,
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passiveProcessingOnly: true,
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firmwareOrDeviceCommandsUsed: false,
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},
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metrics: {
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frames: frameMetrics,
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sensorHeightM: distribution(metrics.sensor_height_m, "sensor_height_m"),
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slopeDeg: distribution(metrics.slope_deg, "slope_deg"),
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roughnessM: distribution(metrics.roughness_m, "roughness_m"),
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confidence: distribution(metrics.confidence, "confidence"),
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poseBindingAgeMs: distribution(
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metrics.pose_binding_age_ms,
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"pose_binding_age_ms",
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),
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surfaceMaxAgeMs: distribution(
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metrics.surface_max_age_ms,
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"surface_max_age_ms",
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),
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},
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anchors,
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occupancyPolicy: occupancyPolicy(source.occupancy_policy),
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createdAtUtc:
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source.created_at_utc === null || source.created_at_utc === undefined
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? null
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: text(source.created_at_utc, "created_at_utc"),
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groundTruth: false,
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authority: authority(source.authority),
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};
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}
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export function parseLidarLocalSurfaceCatalog(
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value: unknown,
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): LidarLocalSurfaceCatalog {
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const source = record(value, "LiDAR local-surface catalog");
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if (
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source.schema_version !== `${LOCAL_SURFACE_SCHEMA_PREFIX}-catalog/v1`
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|| source.access !== "read-only"
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) {
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throw new LidarLocalSurfaceContractError(
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"LiDAR local-surface catalog несовместим",
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);
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}
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return {
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configured: boolean(source.configured, "configured"),
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validTotal: integer(source.valid_total, "valid_total"),
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invalidTotal: integer(source.invalid_total, "invalid_total"),
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items: array(source.items, "items").map(model),
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};
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}
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export function parseLidarLocalSurfaceFrame(
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value: unknown,
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): LidarLocalSurfaceFrame {
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const source = record(value, "LiDAR local-surface frame");
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if (
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source.schema_version !== `${LOCAL_SURFACE_SCHEMA_PREFIX}-frame/v1`
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|| source.access !== "read-only"
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|| source.ground_truth !== false
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|| source.coordinate_frame !== "map"
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|| source.distance_unit !== "m"
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) {
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throw new LidarLocalSurfaceContractError(
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"LiDAR local-surface frame несовместим",
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);
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}
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const pointCount = integer(source.point_count, "point_count");
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if (pointCount > 200_000) {
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throw new LidarLocalSurfaceContractError(
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"LiDAR local-surface frame слишком большой",
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);
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}
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const pointsXyzM = array(source.points_xyz_m, "points_xyz_m").map(
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(item, index): [number, number, number] => {
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const values = tuple(item, 3, `points_xyz_m[${index}]`);
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return [values[0], values[1], values[2]];
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},
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);
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const pointClass = array(source.point_class, "point_class").map(
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(item, index) => {
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const value = integer(item, `point_class[${index}]`);
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if (value > 3) {
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throw new LidarLocalSurfaceContractError(
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"Неизвестный local-surface class",
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);
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}
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return value;
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},
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);
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const pointHeightM = array(source.point_height_m, "point_height_m").map(
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(item, index) => finite(item, `point_height_m[${index}]`),
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);
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if (
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pointsXyzM.length !== pointCount
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|| pointClass.length !== pointCount
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|| pointHeightM.length !== pointCount
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) {
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throw new LidarLocalSurfaceContractError(
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"LiDAR local-surface point arrays расходятся",
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);
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}
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const pose = record(source.pose, "pose");
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const surface = record(source.surface, "surface");
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const counts = record(source.counts, "counts");
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const parsedCounts = {
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classified: integer(counts.classified, "counts.classified"),
|
||||
surface: integer(counts.surface, "counts.surface"),
|
||||
occupied: integer(counts.occupied, "counts.occupied"),
|
||||
belowSurface: integer(counts.below_surface, "counts.below_surface"),
|
||||
};
|
||||
if (
|
||||
parsedCounts.classified !== pointClass.filter((item) => item !== 0).length
|
||||
|| parsedCounts.surface !== pointClass.filter((item) => item === 1).length
|
||||
|| parsedCounts.occupied !== pointClass.filter((item) => item === 2).length
|
||||
|| parsedCounts.belowSurface
|
||||
!== pointClass.filter((item) => item === 3).length
|
||||
) {
|
||||
throw new LidarLocalSurfaceContractError(
|
||||
"LiDAR local-surface counts расходятся",
|
||||
);
|
||||
}
|
||||
const position = tuple(pose.position_xyz_m, 3, "pose.position_xyz_m");
|
||||
const orientation = tuple(
|
||||
pose.orientation_xyzw,
|
||||
4,
|
||||
"pose.orientation_xyzw",
|
||||
);
|
||||
const plane = tuple(
|
||||
surface.plane_coefficients_map,
|
||||
4,
|
||||
"surface.plane_coefficients_map",
|
||||
);
|
||||
return {
|
||||
modelId: text(source.model_id, "model_id", SAFE_MODEL_ID),
|
||||
sourcePackId: text(source.source_pack_id, "source_pack_id", SAFE_PACK_ID),
|
||||
sessionId: text(source.session_id, "session_id", SAFE_ID),
|
||||
frameIndex: integer(source.frame_index, "frame_index"),
|
||||
frameCount: integer(source.frame_count, "frame_count"),
|
||||
sourceFrameIndex: integer(source.source_frame_index, "source_frame_index"),
|
||||
sessionSeconds: finite(source.session_seconds, "session_seconds"),
|
||||
sourceAvailable: boolean(source.source_available, "source_available"),
|
||||
valid: boolean(source.valid, "valid"),
|
||||
failureCode: integer(source.failure_code, "failure_code"),
|
||||
pointCount,
|
||||
coordinateFrame: "map",
|
||||
distanceUnit: "m",
|
||||
pointsXyzM,
|
||||
pointClass,
|
||||
pointHeightM,
|
||||
pose: {
|
||||
positionXyzM: [position[0], position[1], position[2]],
|
||||
orientationXyzw: [
|
||||
orientation[0],
|
||||
orientation[1],
|
||||
orientation[2],
|
||||
orientation[3],
|
||||
],
|
||||
bindingAgeMs: finite(pose.binding_age_ms, "pose.binding_age_ms"),
|
||||
},
|
||||
surface: {
|
||||
planeCoefficientsMap: [plane[0], plane[1], plane[2], plane[3]],
|
||||
sensorHeightM: finite(surface.sensor_height_m, "surface.sensor_height_m"),
|
||||
slopeDeg: finite(surface.slope_deg, "surface.slope_deg"),
|
||||
roughnessM: finite(surface.roughness_m, "surface.roughness_m"),
|
||||
confidence: finite(surface.confidence, "surface.confidence"),
|
||||
surfaceMaxAgeMs: finite(
|
||||
surface.surface_max_age_ms,
|
||||
"surface.surface_max_age_ms",
|
||||
),
|
||||
cellCount: integer(surface.cell_count, "surface.cell_count"),
|
||||
inlierCellCount: integer(
|
||||
surface.inlier_cell_count,
|
||||
"surface.inlier_cell_count",
|
||||
),
|
||||
},
|
||||
counts: parsedCounts,
|
||||
occupancyPolicy: occupancyPolicy(source.occupancy_policy),
|
||||
groundTruth: false,
|
||||
authority: authority(source.authority),
|
||||
};
|
||||
}
|
||||
|
||||
async function responseJson(
|
||||
response: Response,
|
||||
fallback: string,
|
||||
): Promise<unknown> {
|
||||
let payload: unknown = null;
|
||||
try {
|
||||
payload = await response.json();
|
||||
} catch {
|
||||
// Preserve the status-aware fallback below.
|
||||
}
|
||||
if (!response.ok) {
|
||||
const detail =
|
||||
payload && typeof payload === "object" && "detail" in payload
|
||||
? String((payload as { detail?: unknown }).detail)
|
||||
: fallback;
|
||||
throw new LidarLocalSurfaceApiError(detail, response.status);
|
||||
}
|
||||
return payload;
|
||||
}
|
||||
|
||||
export async function fetchLidarLocalSurfaces(
|
||||
options: { signal?: AbortSignal; fetcher?: LidarFetch } = {},
|
||||
): Promise<LidarLocalSurfaceCatalog> {
|
||||
const fetcher = options.fetcher ?? fetch;
|
||||
const response = await fetcher("/api/v1/lidar/local-surfaces?limit=10", {
|
||||
method: "GET",
|
||||
headers: { Accept: "application/json" },
|
||||
signal: options.signal,
|
||||
});
|
||||
return parseLidarLocalSurfaceCatalog(
|
||||
await responseJson(response, "Не удалось получить LiDAR local-surface."),
|
||||
);
|
||||
}
|
||||
|
||||
export async function fetchLidarLocalSurfaceFrame(
|
||||
modelId: string,
|
||||
frameIndex: number,
|
||||
options: { signal?: AbortSignal; fetcher?: LidarFetch } = {},
|
||||
): Promise<LidarLocalSurfaceFrame> {
|
||||
if (
|
||||
!SAFE_MODEL_ID.test(modelId)
|
||||
|| !Number.isSafeInteger(frameIndex)
|
||||
|| frameIndex < 0
|
||||
) {
|
||||
throw new LidarLocalSurfaceContractError(
|
||||
"Некорректный LiDAR local-surface frame",
|
||||
);
|
||||
}
|
||||
const fetcher = options.fetcher ?? fetch;
|
||||
const response = await fetcher(
|
||||
`/api/v1/lidar/local-surfaces/${modelId}/frames/${frameIndex}`,
|
||||
{
|
||||
method: "GET",
|
||||
headers: { Accept: "application/json" },
|
||||
signal: options.signal,
|
||||
},
|
||||
);
|
||||
return parseLidarLocalSurfaceFrame(
|
||||
await responseJson(
|
||||
response,
|
||||
"Не удалось получить LiDAR local-surface frame.",
|
||||
),
|
||||
);
|
||||
}
|
||||
|
|
@ -30,6 +30,14 @@
|
|||
grid-template-columns: 1fr;
|
||||
}
|
||||
|
||||
.lidar-local-surface__summary {
|
||||
grid-template-columns: repeat(2, minmax(0, 1fr));
|
||||
}
|
||||
|
||||
.lidar-local-surface__stage {
|
||||
grid-template-columns: minmax(0, 1fr) minmax(13rem, 0.32fr);
|
||||
}
|
||||
|
||||
.lidar-field-cloud {
|
||||
grid-column: 1;
|
||||
grid-row: 1;
|
||||
|
|
@ -412,6 +420,20 @@
|
|||
flex-direction: column;
|
||||
}
|
||||
|
||||
.lidar-local-surface__heading {
|
||||
flex-direction: column;
|
||||
}
|
||||
|
||||
.lidar-local-surface__summary,
|
||||
.lidar-local-surface__stage {
|
||||
grid-template-columns: 1fr;
|
||||
}
|
||||
|
||||
.lidar-local-surface__stage .lidar-ground-scene,
|
||||
.lidar-local-surface__stage .lidar-ground-scene-placeholder {
|
||||
min-height: 22rem;
|
||||
}
|
||||
|
||||
.polygon-run-identity dl {
|
||||
grid-template-columns: 1fr;
|
||||
}
|
||||
|
|
|
|||
|
|
@ -2821,6 +2821,146 @@
|
|||
margin: 0;
|
||||
}
|
||||
|
||||
.lidar-local-surface {
|
||||
display: grid;
|
||||
gap: 0.72rem;
|
||||
margin-top: 1.2rem;
|
||||
padding-top: 1rem;
|
||||
}
|
||||
|
||||
.lidar-local-surface__heading {
|
||||
display: flex;
|
||||
align-items: flex-start;
|
||||
justify-content: space-between;
|
||||
gap: 1rem;
|
||||
}
|
||||
|
||||
.lidar-local-surface__heading h3,
|
||||
.lidar-local-surface__heading p {
|
||||
margin: 0;
|
||||
}
|
||||
|
||||
.lidar-local-surface__heading h3 {
|
||||
margin-top: 0.22rem;
|
||||
color: var(--nodedc-text-primary);
|
||||
font-size: 0.92rem;
|
||||
}
|
||||
|
||||
.lidar-local-surface__heading p,
|
||||
.lidar-local-surface__frame p {
|
||||
max-width: 48rem;
|
||||
margin-top: 0.28rem;
|
||||
color: var(--nodedc-text-muted);
|
||||
font-size: 0.62rem;
|
||||
line-height: 1.5;
|
||||
}
|
||||
|
||||
.lidar-local-surface__summary {
|
||||
display: grid;
|
||||
grid-template-columns: repeat(4, minmax(0, 1fr));
|
||||
gap: 0.5rem;
|
||||
}
|
||||
|
||||
.lidar-local-surface__summary > div {
|
||||
display: grid;
|
||||
gap: 0.24rem;
|
||||
background: rgb(255 255 255 / 0.025);
|
||||
padding: 0.62rem 0.68rem;
|
||||
}
|
||||
|
||||
.lidar-local-surface__summary span,
|
||||
.lidar-local-surface__frame span,
|
||||
.lidar-local-surface__frame small,
|
||||
.lidar-local-surface__frame dt,
|
||||
.lidar-local-surface__legend {
|
||||
color: var(--nodedc-text-muted);
|
||||
font-size: 0.58rem;
|
||||
}
|
||||
|
||||
.lidar-local-surface__summary strong,
|
||||
.lidar-local-surface__frame strong,
|
||||
.lidar-local-surface__frame dd {
|
||||
color: var(--nodedc-text-primary);
|
||||
font-size: 0.68rem;
|
||||
}
|
||||
|
||||
.lidar-local-surface__stage {
|
||||
display: grid;
|
||||
overflow: hidden;
|
||||
grid-template-columns: minmax(0, 1fr) minmax(14rem, 0.24fr);
|
||||
min-height: 30rem;
|
||||
border-radius: 0.9rem;
|
||||
background: #06070a;
|
||||
}
|
||||
|
||||
.lidar-local-surface__stage .lidar-ground-scene,
|
||||
.lidar-local-surface__stage .lidar-ground-scene-placeholder {
|
||||
min-height: 30rem;
|
||||
border: 0;
|
||||
border-radius: 0;
|
||||
}
|
||||
|
||||
.lidar-local-surface__frame {
|
||||
display: grid;
|
||||
align-content: start;
|
||||
gap: 0.85rem;
|
||||
background: rgb(255 255 255 / 0.025);
|
||||
padding: 0.9rem;
|
||||
}
|
||||
|
||||
.lidar-local-surface__frame > div:first-child {
|
||||
display: grid;
|
||||
gap: 0.2rem;
|
||||
}
|
||||
|
||||
.lidar-local-surface__frame dl {
|
||||
display: grid;
|
||||
gap: 0.55rem;
|
||||
margin: 0;
|
||||
}
|
||||
|
||||
.lidar-local-surface__frame dl > div {
|
||||
display: flex;
|
||||
align-items: baseline;
|
||||
justify-content: space-between;
|
||||
gap: 0.6rem;
|
||||
}
|
||||
|
||||
.lidar-local-surface__frame dt,
|
||||
.lidar-local-surface__frame dd {
|
||||
margin: 0;
|
||||
}
|
||||
|
||||
.lidar-local-surface__legend {
|
||||
display: grid;
|
||||
gap: 0.42rem;
|
||||
}
|
||||
|
||||
.lidar-local-surface__legend span {
|
||||
display: flex;
|
||||
align-items: center;
|
||||
gap: 0.45rem;
|
||||
}
|
||||
|
||||
.lidar-local-surface__legend i {
|
||||
width: 0.55rem;
|
||||
height: 0.55rem;
|
||||
border-radius: 50%;
|
||||
background: #454a47;
|
||||
}
|
||||
|
||||
.lidar-local-surface__legend i[data-class="surface"] {
|
||||
background: #a1b87d;
|
||||
}
|
||||
|
||||
.lidar-local-surface__legend i[data-class="occupied"] {
|
||||
background: #f0783d;
|
||||
}
|
||||
|
||||
.lidar-local-surface__legend i[data-class="below"] {
|
||||
background: #a85061;
|
||||
}
|
||||
|
||||
.lidar-fallback-review {
|
||||
display: grid;
|
||||
overflow: hidden;
|
||||
|
|
|
|||
|
|
@ -9,7 +9,8 @@ export type LidarGroundViewMode =
|
|||
| "disagreement"
|
||||
| "candidate-disagreement"
|
||||
| "semantic"
|
||||
| "ground-truth";
|
||||
| "ground-truth"
|
||||
| "local-surface";
|
||||
|
||||
export interface LidarGroundPointCloudFrame {
|
||||
pointCount: number;
|
||||
|
|
@ -25,6 +26,7 @@ export interface LidarGroundPointCloudFrame {
|
|||
candidateDisagreement?: number[];
|
||||
groundTruthGround?: number[];
|
||||
evaluationMask?: number[];
|
||||
localSurfaceClass?: number[];
|
||||
};
|
||||
}
|
||||
|
||||
|
|
@ -67,7 +69,18 @@ function frameColors(
|
|||
const current = frame.masks.currentGround[index] === 1;
|
||||
const candidate = frame.masks.candidateGround[index] === 1;
|
||||
const candidateAssigned = frame.masks.candidateAssigned[index] === 1;
|
||||
if (mode === "intensity") {
|
||||
if (mode === "local-surface") {
|
||||
const localClass = frame.masks.localSurfaceClass?.[index] ?? 0;
|
||||
if (localClass === 1) {
|
||||
setRgb(colors, offset, 0.63, 0.72, 0.49);
|
||||
} else if (localClass === 2) {
|
||||
setRgb(colors, offset, 0.94, 0.48, 0.24);
|
||||
} else if (localClass === 3) {
|
||||
setRgb(colors, offset, 0.66, 0.32, 0.38);
|
||||
} else {
|
||||
setRgb(colors, offset, 0.27, 0.29, 0.28);
|
||||
}
|
||||
} else if (mode === "intensity") {
|
||||
const intensity = (frame.intensity0To255?.[index] ?? 96) / 255;
|
||||
const neutral = 0.16 + intensity * 0.8;
|
||||
setRgb(
|
||||
|
|
|
|||
|
|
@ -0,0 +1,219 @@
|
|||
import { useEffect, useMemo, useState } from "react";
|
||||
import { StatusBadge } from "@nodedc/ui-react";
|
||||
|
||||
import {
|
||||
fetchLidarLocalSurfaceFrame,
|
||||
fetchLidarLocalSurfaces,
|
||||
type LidarLocalSurfaceFrame,
|
||||
type LidarLocalSurfaceModel,
|
||||
} from "../core/lidar/localSurface";
|
||||
import { LidarGroundPointCloud } from "./LidarGroundPointCloud";
|
||||
|
||||
function formatNumber(value: number | null, digits = 2): string {
|
||||
if (value === null) return "—";
|
||||
return value.toLocaleString("ru-RU", { maximumFractionDigits: digits });
|
||||
}
|
||||
|
||||
function errorMessage(error: unknown): string {
|
||||
return error instanceof Error && error.message.trim()
|
||||
? error.message
|
||||
: "Не удалось открыть локальную модель LiDAR.";
|
||||
}
|
||||
|
||||
export function LidarLocalSurfacePanel({
|
||||
selectedWindowKey,
|
||||
reloadGeneration,
|
||||
}: {
|
||||
selectedWindowKey: string | null;
|
||||
reloadGeneration: number;
|
||||
}) {
|
||||
const [model, setModel] = useState<LidarLocalSurfaceModel | null>(null);
|
||||
const [frame, setFrame] = useState<LidarLocalSurfaceFrame | null>(null);
|
||||
const [loading, setLoading] = useState(true);
|
||||
const [error, setError] = useState<string | null>(null);
|
||||
|
||||
const anchor = useMemo(() => {
|
||||
if (!model) return null;
|
||||
return (
|
||||
model.anchors.find((item) => item.key === selectedWindowKey)
|
||||
?? model.anchors[0]
|
||||
?? null
|
||||
);
|
||||
}, [model, selectedWindowKey]);
|
||||
|
||||
useEffect(() => {
|
||||
const controller = new AbortController();
|
||||
setLoading(true);
|
||||
setError(null);
|
||||
void fetchLidarLocalSurfaces({ signal: controller.signal })
|
||||
.then((catalog) => {
|
||||
if (controller.signal.aborted) return;
|
||||
setModel(catalog.items[0] ?? null);
|
||||
})
|
||||
.catch((loadError) => {
|
||||
if (controller.signal.aborted) return;
|
||||
setModel(null);
|
||||
setFrame(null);
|
||||
setError(errorMessage(loadError));
|
||||
})
|
||||
.finally(() => {
|
||||
if (!controller.signal.aborted) setLoading(false);
|
||||
});
|
||||
return () => controller.abort();
|
||||
}, [reloadGeneration]);
|
||||
|
||||
useEffect(() => {
|
||||
if (!model || !anchor) {
|
||||
setFrame(null);
|
||||
return;
|
||||
}
|
||||
const controller = new AbortController();
|
||||
setLoading(true);
|
||||
setError(null);
|
||||
void fetchLidarLocalSurfaceFrame(model.modelId, anchor.frameIndex, {
|
||||
signal: controller.signal,
|
||||
})
|
||||
.then((nextFrame) => {
|
||||
if (!controller.signal.aborted) setFrame(nextFrame);
|
||||
})
|
||||
.catch((loadError) => {
|
||||
if (controller.signal.aborted) return;
|
||||
setFrame(null);
|
||||
setError(errorMessage(loadError));
|
||||
})
|
||||
.finally(() => {
|
||||
if (!controller.signal.aborted) setLoading(false);
|
||||
});
|
||||
return () => controller.abort();
|
||||
}, [anchor, model]);
|
||||
|
||||
const cloudFrame = useMemo(() => {
|
||||
if (!frame) return null;
|
||||
const emptyMask = new Array<number>(frame.pointCount).fill(0);
|
||||
return {
|
||||
pointCount: frame.pointCount,
|
||||
pointsXyzM: frame.pointsXyzM,
|
||||
intensity0To255: null,
|
||||
masks: {
|
||||
currentGround: emptyMask,
|
||||
currentAssigned: emptyMask,
|
||||
candidateGround: emptyMask,
|
||||
candidateAssigned: emptyMask,
|
||||
disagreement: emptyMask,
|
||||
localSurfaceClass: frame.pointClass,
|
||||
},
|
||||
};
|
||||
}, [frame]);
|
||||
|
||||
if (!model && !loading && !error) {
|
||||
return null;
|
||||
}
|
||||
|
||||
return (
|
||||
<section
|
||||
className="lidar-local-surface"
|
||||
aria-label="Динамическая локальная поверхность LiDAR"
|
||||
>
|
||||
<header className="lidar-local-surface__heading">
|
||||
<div>
|
||||
<span className="section-eyebrow">ЛОКАЛЬНАЯ МОДЕЛЬ LIDAR · L2.6</span>
|
||||
<h3>Поверхность и наблюдаемые препятствия</h3>
|
||||
<p>
|
||||
Производная от неизменяемого RAVNOVES00: высота и уклон
|
||||
вычисляются из текущей позы и локальной поверхности, без константы
|
||||
1,27 м и без команд в сканер.
|
||||
</p>
|
||||
</div>
|
||||
<StatusBadge tone={error ? "danger" : frame?.valid ? "success" : "warning"}>
|
||||
{error
|
||||
? "Недоступно"
|
||||
: frame?.valid
|
||||
? "Кадр рассчитан"
|
||||
: "Диагностический режим"}
|
||||
</StatusBadge>
|
||||
</header>
|
||||
|
||||
{model ? (
|
||||
<div className="lidar-local-surface__summary">
|
||||
<div>
|
||||
<span>Покрытие записи</span>
|
||||
<strong>
|
||||
{model.metrics.frames.valid.toLocaleString("ru-RU")} /{" "}
|
||||
{model.metrics.frames.sourceAvailable.toLocaleString("ru-RU")}
|
||||
</strong>
|
||||
</div>
|
||||
<div>
|
||||
<span>Высота над поверхностью · p50</span>
|
||||
<strong>{formatNumber(model.metrics.sensorHeightM.p50)} м</strong>
|
||||
</div>
|
||||
<div>
|
||||
<span>Шероховатость · p95</span>
|
||||
<strong>{formatNumber(model.metrics.roughnessM.p95, 3)} м</strong>
|
||||
</div>
|
||||
<div>
|
||||
<span>Pose binding · p95</span>
|
||||
<strong>{formatNumber(model.metrics.poseBindingAgeMs.p95)} мс</strong>
|
||||
</div>
|
||||
</div>
|
||||
) : null}
|
||||
|
||||
<div className="lidar-local-surface__stage">
|
||||
{cloudFrame && frame ? (
|
||||
<LidarGroundPointCloud frame={cloudFrame} mode="local-surface" />
|
||||
) : (
|
||||
<div className="lidar-ground-scene-placeholder">
|
||||
<StatusBadge tone={error ? "danger" : "accent"}>
|
||||
{error ? "Ошибка" : "Загрузка"}
|
||||
</StatusBadge>
|
||||
<span>{error ?? "Читаем производную выбранной сцены…"}</span>
|
||||
</div>
|
||||
)}
|
||||
{frame ? (
|
||||
<aside className="lidar-local-surface__frame">
|
||||
<div>
|
||||
<span>Исходный кадр</span>
|
||||
<strong>{frame.sourceFrameIndex}</strong>
|
||||
<small>t = {formatNumber(frame.sessionSeconds)} с</small>
|
||||
</div>
|
||||
<dl>
|
||||
<div>
|
||||
<dt>Высота</dt>
|
||||
<dd>{formatNumber(frame.surface.sensorHeightM)} м</dd>
|
||||
</div>
|
||||
<div>
|
||||
<dt>Уклон</dt>
|
||||
<dd>{formatNumber(frame.surface.slopeDeg)}°</dd>
|
||||
</div>
|
||||
<div>
|
||||
<dt>Шероховатость</dt>
|
||||
<dd>{formatNumber(frame.surface.roughnessM, 3)} м</dd>
|
||||
</div>
|
||||
<div>
|
||||
<dt>Confidence</dt>
|
||||
<dd>{formatNumber(frame.surface.confidence * 100, 0)}%</dd>
|
||||
</div>
|
||||
<div>
|
||||
<dt>Поверхность</dt>
|
||||
<dd>{frame.counts.surface.toLocaleString("ru-RU")} точек</dd>
|
||||
</div>
|
||||
<div>
|
||||
<dt>Препятствия</dt>
|
||||
<dd>{frame.counts.occupied.toLocaleString("ru-RU")} точек</dd>
|
||||
</div>
|
||||
</dl>
|
||||
<div className="lidar-local-surface__legend">
|
||||
<span><i data-class="surface" />Наблюдаемая поверхность</span>
|
||||
<span><i data-class="occupied" />Выше поверхности</span>
|
||||
<span><i data-class="below" />Нижний выброс</span>
|
||||
<span><i data-class="unknown" />Не классифицировано</span>
|
||||
</div>
|
||||
<p>
|
||||
Пустота между точками остаётся unknown. Этот слой не разрешает
|
||||
движение и не меняет постоянную реконструкцию территории.
|
||||
</p>
|
||||
</aside>
|
||||
) : null}
|
||||
</div>
|
||||
</section>
|
||||
);
|
||||
}
|
||||
|
|
@ -25,6 +25,7 @@ import {
|
|||
LidarGroundPointCloud,
|
||||
type LidarGroundViewMode,
|
||||
} from "./LidarGroundPointCloud";
|
||||
import { LidarLocalSurfacePanel } from "./LidarLocalSurfacePanel";
|
||||
|
||||
function formatNumber(value: number | null, digits = 1): string {
|
||||
if (value === null) return "—";
|
||||
|
|
@ -460,6 +461,11 @@ export function LidarQualityWorkspace({
|
|||
<span><i data-color="non-ground" />Оба non-ground</span>
|
||||
</div>
|
||||
</div>
|
||||
|
||||
<LidarLocalSurfacePanel
|
||||
selectedWindowKey={selectedFieldWindow?.key ?? null}
|
||||
reloadGeneration={reloadGeneration}
|
||||
/>
|
||||
</>
|
||||
) : groundBenchmark ? (
|
||||
<section
|
||||
|
|
|
|||
|
|
@ -0,0 +1,212 @@
|
|||
import assert from "node:assert/strict";
|
||||
import { after, before, test } from "node:test";
|
||||
|
||||
import { createServer } from "vite";
|
||||
|
||||
let server;
|
||||
let parseLidarLocalSurfaceCatalog;
|
||||
let parseLidarLocalSurfaceFrame;
|
||||
let LidarLocalSurfaceContractError;
|
||||
|
||||
const modelId = `k1-local-surface-${"a".repeat(64)}`;
|
||||
const sourcePackId = `e10-lidar-pack-${"b".repeat(64)}`;
|
||||
|
||||
function distribution(value) {
|
||||
return {
|
||||
sample_count: 10,
|
||||
minimum: value,
|
||||
mean: value,
|
||||
p50: value,
|
||||
p95: value,
|
||||
maximum: value,
|
||||
};
|
||||
}
|
||||
|
||||
function policy(overrides = {}) {
|
||||
return {
|
||||
observed_surface_class: 1,
|
||||
observed_occupied_class: 2,
|
||||
below_surface_or_negative_outlier_class: 3,
|
||||
absence_of_points_means_free: false,
|
||||
unknown_is_traversable: false,
|
||||
persistent_reconstruction_mutated: false,
|
||||
dynamic_object_layer_available: false,
|
||||
...overrides,
|
||||
};
|
||||
}
|
||||
|
||||
function model(overrides = {}) {
|
||||
return {
|
||||
model_id: modelId,
|
||||
display_name: "RAVNOVES00 · динамическая локальная поверхность K1",
|
||||
session_id: "20260720T065719Z_viewer_live",
|
||||
source_pack_id: sourcePackId,
|
||||
status: "diagnostic-only",
|
||||
source: {
|
||||
representation: "legacy-e10-vendor-map-with-pose",
|
||||
immutable: true,
|
||||
passive_processing_only: true,
|
||||
firmware_or_device_commands_used: false,
|
||||
frame_count: 12,
|
||||
available_lidar_frames: 10,
|
||||
point_count: 100,
|
||||
timeline_start_seconds: 1,
|
||||
timeline_end_seconds: 2,
|
||||
},
|
||||
surface_model: {},
|
||||
occupancy_policy: policy(),
|
||||
metrics: {
|
||||
frames: {
|
||||
total: 12,
|
||||
source_available: 10,
|
||||
valid: 10,
|
||||
source_unavailable: 2,
|
||||
pose_stale: 0,
|
||||
insufficient_surface: 0,
|
||||
fit_failed: 0,
|
||||
},
|
||||
sensor_height_m: distribution(1.3),
|
||||
slope_deg: distribution(2),
|
||||
roughness_m: distribution(0.04),
|
||||
confidence: distribution(0.8),
|
||||
pose_binding_age_ms: distribution(7),
|
||||
surface_max_age_ms: distribution(1000),
|
||||
build_elapsed_ms: 20,
|
||||
},
|
||||
anchors: [{
|
||||
key: "long-street",
|
||||
label: "Длинная улица",
|
||||
frame_index: 2,
|
||||
source_frame_index: 1350,
|
||||
session_seconds: 1.5,
|
||||
valid: true,
|
||||
}],
|
||||
decision: {
|
||||
status: "replay-experiment-only",
|
||||
production_promotion: false,
|
||||
next_gate: "shadow",
|
||||
},
|
||||
created_at_utc: "2026-07-25T00:00:00Z",
|
||||
ground_truth: false,
|
||||
authority: {
|
||||
commands_enabled: false,
|
||||
navigation_or_safety_accepted: false,
|
||||
},
|
||||
...overrides,
|
||||
};
|
||||
}
|
||||
|
||||
function catalog(overrides = {}) {
|
||||
return {
|
||||
schema_version: "missioncore.k1-local-surface-catalog/v1",
|
||||
configured: true,
|
||||
items: [model()],
|
||||
valid_total: 1,
|
||||
invalid_total: 0,
|
||||
access: "read-only",
|
||||
...overrides,
|
||||
};
|
||||
}
|
||||
|
||||
function frame(overrides = {}) {
|
||||
return {
|
||||
schema_version: "missioncore.k1-local-surface-frame/v1",
|
||||
model_id: modelId,
|
||||
source_pack_id: sourcePackId,
|
||||
session_id: "20260720T065719Z_viewer_live",
|
||||
frame_index: 2,
|
||||
frame_count: 12,
|
||||
source_frame_index: 1350,
|
||||
session_seconds: 1.5,
|
||||
source_available: true,
|
||||
valid: true,
|
||||
failure_code: 0,
|
||||
point_count: 4,
|
||||
coordinate_frame: "map",
|
||||
distance_unit: "m",
|
||||
points_xyz_m: [[0, 0, 0], [1, 0, 0], [1, 1, 0.7], [2, 0, -0.3]],
|
||||
point_class: [1, 1, 2, 3],
|
||||
point_height_m: [0, 0.02, 0.7, -0.3],
|
||||
pose: {
|
||||
position_xyz_m: [0, 0, 1.3],
|
||||
orientation_xyzw: [0, 0, 0, 1],
|
||||
binding_age_ms: 7,
|
||||
},
|
||||
surface: {
|
||||
plane_coefficients_map: [0, 0, 1, 0],
|
||||
sensor_height_m: 1.3,
|
||||
slope_deg: 0,
|
||||
roughness_m: 0.02,
|
||||
confidence: 0.8,
|
||||
surface_max_age_ms: 1000,
|
||||
cell_count: 40,
|
||||
inlier_cell_count: 35,
|
||||
},
|
||||
counts: {
|
||||
classified: 4,
|
||||
surface: 2,
|
||||
occupied: 1,
|
||||
below_surface: 1,
|
||||
},
|
||||
classes: {},
|
||||
occupancy_policy: policy(),
|
||||
ground_truth: false,
|
||||
access: "read-only",
|
||||
authority: {
|
||||
commands_enabled: false,
|
||||
navigation_or_safety_accepted: false,
|
||||
},
|
||||
...overrides,
|
||||
};
|
||||
}
|
||||
|
||||
before(async () => {
|
||||
server = await createServer({
|
||||
appType: "custom",
|
||||
logLevel: "silent",
|
||||
server: { middlewareMode: true },
|
||||
});
|
||||
({
|
||||
parseLidarLocalSurfaceCatalog,
|
||||
parseLidarLocalSurfaceFrame,
|
||||
LidarLocalSurfaceContractError,
|
||||
} = await server.ssrLoadModule("/src/core/lidar/localSurface.ts"));
|
||||
});
|
||||
|
||||
after(async () => {
|
||||
await server?.close();
|
||||
});
|
||||
|
||||
test("decodes passive local-surface evidence", () => {
|
||||
const decoded = parseLidarLocalSurfaceCatalog(catalog());
|
||||
assert.equal(decoded.items[0].source.passiveProcessingOnly, true);
|
||||
assert.equal(decoded.items[0].metrics.sensorHeightM.p50, 1.3);
|
||||
assert.equal(decoded.items[0].anchors[0].sourceFrameIndex, 1350);
|
||||
|
||||
const decodedFrame = parseLidarLocalSurfaceFrame(frame());
|
||||
assert.equal(decodedFrame.counts.occupied, 1);
|
||||
assert.equal(decodedFrame.surface.sensorHeightM, 1.3);
|
||||
});
|
||||
|
||||
test("rejects inferred free space", () => {
|
||||
assert.throws(
|
||||
() => parseLidarLocalSurfaceCatalog(catalog({
|
||||
items: [model({
|
||||
occupancy_policy: policy({ absence_of_points_means_free: true }),
|
||||
})],
|
||||
})),
|
||||
LidarLocalSurfaceContractError,
|
||||
);
|
||||
});
|
||||
|
||||
test("rejects command authority", () => {
|
||||
assert.throws(
|
||||
() => parseLidarLocalSurfaceFrame(frame({
|
||||
authority: {
|
||||
commands_enabled: true,
|
||||
navigation_or_safety_accepted: false,
|
||||
},
|
||||
})),
|
||||
LidarLocalSurfaceContractError,
|
||||
);
|
||||
});
|
||||
|
|
@ -2,8 +2,8 @@
|
|||
|
||||
Date: 2026-07-25
|
||||
Status: accepted architecture plan; L0/L1 implemented; L2 diagnostic A/B
|
||||
complete; full GOOSE and RELLIS qualification complete; K1 local-world-model
|
||||
gate next
|
||||
complete; full GOOSE and RELLIS qualification complete; L2.6a K1 replay
|
||||
local-surface slice implemented; operator review and live shadow next
|
||||
Scope: passively received real-time K1 point/pose evidence, immutable replay and
|
||||
future live shadow processing
|
||||
Explicitly out of scope: K1 firmware modification, a new onboard exporter, new
|
||||
|
|
@ -384,28 +384,51 @@ showed that Patchwork++ slightly improved Ground IoU while reducing obstacle
|
|||
non-ground recall from `80.46%` to `69.70%`; the candidate was rejected.
|
||||
Dataset expansion is no longer the next gate.
|
||||
|
||||
### L2.6 — K1 local world model — next
|
||||
### L2.6 — K1 local world model — in progress
|
||||
|
||||
- [ ] Bind the immutable `RAVNOVES00` source and replay-pack-v2 evidence without
|
||||
rewriting either generation.
|
||||
- [ ] Transform each admitted map increment through the nearest compatible
|
||||
`T_map_from_lidar` and publish pose-binding age explicitly.
|
||||
- [ ] Estimate a time-varying local surface for ground-vehicle profiles using
|
||||
- [x] Bind the immutable `RAVNOVES00` E10 source by pack identity and artifact
|
||||
hash without copying or rewriting the source generation.
|
||||
- [ ] Mirror the same accepted profile over replay-pack-v2 evidence while
|
||||
preserving its separate identity and field-retention contract.
|
||||
- [x] Reject stale pose binding and publish pose-binding age explicitly; keep
|
||||
map-native processing honest instead of claiming that pose inversion
|
||||
recreates an original sensor sweep.
|
||||
- [x] Estimate a time-varying local surface for ground-vehicle profiles using
|
||||
robust spatial cells and temporal support; do not use the historical
|
||||
`1.27 m` value.
|
||||
- [ ] Publish surface height, slope, roughness, step/curb candidates and
|
||||
confidence separately from semantic classes.
|
||||
- [ ] Produce short-TTL `occupied` and `unknown` layers from current evidence.
|
||||
- [x] Publish surface-relative height, slope, roughness and confidence
|
||||
separately from semantic classes.
|
||||
- [ ] Add independently reviewable step/curb candidates; do not derive them
|
||||
from a single global height threshold.
|
||||
- [x] Produce short-TTL observed-surface, `occupied` and `unknown` evidence.
|
||||
Do not infer `free` merely because a mapped point is absent.
|
||||
- [ ] Keep persistent reconstruction, recent collision evidence and dynamic
|
||||
observations as separate derivatives of the same source.
|
||||
- [x] Leave the immutable persistent reconstruction untouched by the local
|
||||
derivative.
|
||||
- [ ] Add recent-collision and dynamic-observation layers as separate
|
||||
derivatives with independent decay and provenance.
|
||||
- [ ] Reuse the accepted camera-to-LiDAR projection as an optional semantic
|
||||
layer with source, confidence, freshness and conflict fields.
|
||||
- [ ] Measure latency, point age, pose-binding age, temporal stability, obstacle
|
||||
preservation and memory growth over the complete recording.
|
||||
- [ ] Complete the qualification report with per-frame latency, point age,
|
||||
temporal stability, obstacle preservation and memory growth.
|
||||
- [ ] Replay the same profiles through a bounded latest-wins live-shadow queue;
|
||||
no K1 command, navigation or safety authority is added.
|
||||
|
||||
The implemented `missioncore.k1-local-surface/v1` derivative is reproducible
|
||||
through `experiments/perception/run_k1_local_surface.py` and is exposed
|
||||
read-only through `GET /api/v1/lidar/local-surfaces` plus the bound frame
|
||||
endpoint. **Парк → Диагностика LiDAR** reuses the five RAVNOVES00 scene
|
||||
selectors and shows the selected source frame as observed surface, observed
|
||||
occupied-above-surface, negative outlier and unclassified evidence. The React
|
||||
contract is provider-neutral; K1 remains a bound backend source rather than UI
|
||||
implementation knowledge.
|
||||
|
||||
The complete RAVNOVES00 run covered all `526/526` available LiDAR samples.
|
||||
There were zero stale-pose, insufficient-surface or failed-fit frames. Observed
|
||||
diagnostic distributions are: derived sensor-to-surface height `1.295 m` p50,
|
||||
roughness `0.054 m` p95, slope `3.172°` p95 and pose-binding age `19.113 ms`
|
||||
p95. These values describe this recording only; they are not calibration,
|
||||
ground truth or a navigation gate. Free space remains unavailable.
|
||||
|
||||
Exit: one immutable K1 session yields both a persistent reconstruction and a
|
||||
bounded local world state without hard-coded terrain height or scanner-side
|
||||
changes.
|
||||
|
|
@ -487,7 +510,10 @@ natural-ground recall from `51.76%` to `76.22%` and stays below `23.41 ms` p95
|
|||
across 961 frames. Full RELLIS qualification covers `2,413` validation frames
|
||||
and rejects Patchwork++ because the small Ground-IoU gain came with unacceptable
|
||||
obstacle loss. Public-dataset ground qualification is therefore complete
|
||||
enough for the current decision. The highest-value immediate work is the K1
|
||||
local world model over `RAVNOVES00`, followed by bounded live shadow. Nvblox,
|
||||
raw-scan detectors and alternative SLAM remain optional later gates because the
|
||||
current report contract does not carry their required ray/timing semantics.
|
||||
enough for the current decision. The first K1 local-surface replay slice now
|
||||
covers all available `RAVNOVES00` samples and is visible in the operator
|
||||
interface. The highest-value immediate work is operator review, explicit
|
||||
step/curb and temporal-stability qualification, followed by bounded live
|
||||
shadow. Nvblox, raw-scan detectors and alternative SLAM remain optional later
|
||||
gates because the current report contract does not carry their required
|
||||
ray/timing semantics.
|
||||
|
|
|
|||
|
|
@ -46,6 +46,12 @@ Implemented now:
|
|||
- count, finite-value and maximum-point safety gates;
|
||||
- immutable point-aligned arrays;
|
||||
- a fail-closed K1 `lio_pcl` boundary;
|
||||
- a content-addressed `missioncore.k1-local-surface/v1` replay derivative over
|
||||
immutable `RAVNOVES00`, with dynamic height/slope/roughness/confidence,
|
||||
explicit pose-binding age and conservative observed occupied/unknown policy;
|
||||
- a provider-neutral read-only local-surface view in
|
||||
**Парк → Диагностика LiDAR**, synchronized to the five existing
|
||||
RAVNOVES00 scene selectors;
|
||||
- worker storage admission for `D:\NDC_MISSIONCORE\datasets` and
|
||||
`/mnt/d/NDC_MISSIONCORE/datasets`;
|
||||
- a dedicated, honest dataset catalog in **Полигон → Датасеты**;
|
||||
|
|
|
|||
|
|
@ -0,0 +1,79 @@
|
|||
#!/usr/bin/env python3
|
||||
from __future__ import annotations
|
||||
|
||||
import argparse
|
||||
import json
|
||||
from pathlib import Path
|
||||
|
||||
from k1link.compute import (
|
||||
E10LidarFieldSource,
|
||||
K1LocalSurfaceProfile,
|
||||
K1LocalSurfaceV1,
|
||||
build_k1_local_surface,
|
||||
)
|
||||
|
||||
|
||||
def _arguments() -> argparse.Namespace:
|
||||
parser = argparse.ArgumentParser(
|
||||
description=(
|
||||
"Build a passive, source-bound K1 rolling local-surface derivative "
|
||||
"without firmware commands or a hardcoded sensor height."
|
||||
)
|
||||
)
|
||||
parser.add_argument("source_pack", type=Path)
|
||||
parser.add_argument("output_root", type=Path)
|
||||
parser.add_argument("--local-radius-m", type=float, default=10.0)
|
||||
parser.add_argument("--cell-size-m", type=float, default=0.45)
|
||||
parser.add_argument("--surface-ttl-s", type=float, default=1.25)
|
||||
parser.add_argument("--minimum-surface-cells", type=int, default=18)
|
||||
parser.add_argument("--surface-band-m", type=float, default=0.16)
|
||||
parser.add_argument("--obstacle-min-height-m", type=float, default=0.20)
|
||||
parser.add_argument("--obstacle-max-height-m", type=float, default=3.5)
|
||||
return parser.parse_args()
|
||||
|
||||
|
||||
def main() -> int:
|
||||
arguments = _arguments()
|
||||
profile = K1LocalSurfaceProfile(
|
||||
local_radius_m=arguments.local_radius_m,
|
||||
cell_size_m=arguments.cell_size_m,
|
||||
surface_ttl_s=arguments.surface_ttl_s,
|
||||
minimum_surface_cells=arguments.minimum_surface_cells,
|
||||
surface_band_m=arguments.surface_band_m,
|
||||
obstacle_min_height_m=arguments.obstacle_min_height_m,
|
||||
obstacle_max_height_m=arguments.obstacle_max_height_m,
|
||||
)
|
||||
source = E10LidarFieldSource(arguments.source_pack)
|
||||
try:
|
||||
output = build_k1_local_surface(
|
||||
source,
|
||||
arguments.output_root,
|
||||
profile=profile,
|
||||
)
|
||||
finally:
|
||||
source.close()
|
||||
model = K1LocalSurfaceV1(output)
|
||||
try:
|
||||
print(
|
||||
json.dumps(
|
||||
{
|
||||
"model_id": model.model_id,
|
||||
"display_name": model.report["display_name"],
|
||||
"source": model.report["source"],
|
||||
"surface_model": model.report["surface_model"],
|
||||
"occupancy_policy": model.report["occupancy_policy"],
|
||||
"metrics": model.report["metrics"],
|
||||
"anchors": model.report["anchors"],
|
||||
"decision": model.report["decision"],
|
||||
},
|
||||
ensure_ascii=False,
|
||||
indent=2,
|
||||
)
|
||||
)
|
||||
finally:
|
||||
model.close()
|
||||
return 0
|
||||
|
||||
|
||||
if __name__ == "__main__":
|
||||
raise SystemExit(main())
|
||||
|
|
@ -106,6 +106,16 @@ from .lidar_ground import (
|
|||
lidar_ground_frame_detail,
|
||||
score_ground_labels,
|
||||
)
|
||||
from .lidar_local_surface import (
|
||||
DEFAULT_K1_LOCAL_SURFACE_PROFILE,
|
||||
K1_LOCAL_SURFACE_FRAME_SCHEMA,
|
||||
K1_LOCAL_SURFACE_REPORT_SCHEMA,
|
||||
K1_LOCAL_SURFACE_SCHEMA,
|
||||
K1LocalSurfaceProfile,
|
||||
K1LocalSurfaceV1,
|
||||
build_k1_local_surface,
|
||||
k1_local_surface_catalog_item,
|
||||
)
|
||||
from .lidar_replay import (
|
||||
LIDAR_EQUIVALENCE_REPORT_SCHEMA,
|
||||
LIDAR_QUALITY_REPORT_SCHEMA,
|
||||
|
|
@ -185,6 +195,7 @@ __all__ = [
|
|||
"AnnotationWorkspaceError",
|
||||
"COMPUTE_JOB_SCHEMA",
|
||||
"DEFAULT_QUALIFICATION_FRAME_COUNT",
|
||||
"DEFAULT_K1_LOCAL_SURFACE_PROFILE",
|
||||
"EVALUATION_PACK_SCHEMA",
|
||||
"EvaluationFrameRequest",
|
||||
"EvaluationPackFrame",
|
||||
|
|
@ -195,6 +206,9 @@ __all__ = [
|
|||
"LIDAR_GROUND_BENCHMARK_REPORT_SCHEMA",
|
||||
"LIDAR_GROUND_BENCHMARK_SCHEMA",
|
||||
"LIDAR_GROUND_FRAME_SCHEMA",
|
||||
"K1_LOCAL_SURFACE_FRAME_SCHEMA",
|
||||
"K1_LOCAL_SURFACE_REPORT_SCHEMA",
|
||||
"K1_LOCAL_SURFACE_SCHEMA",
|
||||
"LIDAR_FIELD_REVIEW_REPORT_SCHEMA",
|
||||
"LIDAR_FIELD_REVIEW_SCHEMA",
|
||||
"LIDAR_FIELD_REVIEW_WINDOW_SCHEMA",
|
||||
|
|
@ -217,6 +231,8 @@ __all__ = [
|
|||
"LidarReadiness",
|
||||
"LidarGroundBenchmarkV1",
|
||||
"LidarGroundError",
|
||||
"K1LocalSurfaceProfile",
|
||||
"K1LocalSurfaceV1",
|
||||
"LidarReplayError",
|
||||
"LidarReplayPackV2",
|
||||
"LidarReplayPointFrame",
|
||||
|
|
@ -280,7 +296,9 @@ __all__ = [
|
|||
"build_lidar_replay_pack_v2",
|
||||
"build_lidar_ground_annotation_template",
|
||||
"build_lidar_ground_benchmark",
|
||||
"build_k1_local_surface",
|
||||
"lidar_ground_frame_detail",
|
||||
"k1_local_surface_catalog_item",
|
||||
"E10_LIDAR_PACK_SCHEMA",
|
||||
"FIELD_REVIEW_ARRAYS_NAME",
|
||||
"FIELD_REVIEW_MANIFEST_NAME",
|
||||
|
|
|
|||
File diff suppressed because it is too large
Load Diff
|
|
@ -420,6 +420,27 @@ app.include_router(
|
|||
/ "lidar-ground-v1"
|
||||
/ "benchmarks"
|
||||
),
|
||||
field_review_root_provider=lambda: (
|
||||
REPOSITORY_ROOT
|
||||
/ ".runtime"
|
||||
/ "compute-experiments"
|
||||
/ "lidar-field-review-v1"
|
||||
/ "reviews"
|
||||
),
|
||||
local_surface_root_provider=lambda: (
|
||||
REPOSITORY_ROOT
|
||||
/ ".runtime"
|
||||
/ "compute-experiments"
|
||||
/ "k1-local-surface-v1"
|
||||
/ "models"
|
||||
),
|
||||
e10_source_root_provider=lambda: (
|
||||
REPOSITORY_ROOT
|
||||
/ ".runtime"
|
||||
/ "compute-experiments"
|
||||
/ "e10"
|
||||
/ "lidar-packs"
|
||||
),
|
||||
dataset_admission_provider=lambda: (
|
||||
REPOSITORY_ROOT / ".runtime" / "dataset-gateway" / "admission.json"
|
||||
),
|
||||
|
|
|
|||
|
|
@ -9,11 +9,14 @@ from typing import Annotated, Any, Final
|
|||
from fastapi import APIRouter, HTTPException, Query, Response
|
||||
|
||||
from k1link.compute import (
|
||||
E10LidarFieldSource,
|
||||
K1LocalSurfaceV1,
|
||||
LidarFieldReviewV1,
|
||||
LidarGroundBenchmarkV1,
|
||||
LidarGroundError,
|
||||
LidarReplayError,
|
||||
LidarReplayPackV2,
|
||||
k1_local_surface_catalog_item,
|
||||
lidar_field_review_catalog_item,
|
||||
lidar_ground_benchmark_catalog_item,
|
||||
lidar_ground_frame_detail,
|
||||
|
|
@ -34,9 +37,12 @@ from k1link.datasets import (
|
|||
LIDAR_CATALOG_SCHEMA: Final = "missioncore.lidar-replay-pack-catalog/v1"
|
||||
LIDAR_GROUND_CATALOG_SCHEMA: Final = "missioncore.lidar-ground-benchmark-catalog/v1"
|
||||
LIDAR_FIELD_REVIEW_CATALOG_SCHEMA: Final = "missioncore.lidar-field-review-catalog/v1"
|
||||
K1_LOCAL_SURFACE_CATALOG_SCHEMA: Final = "missioncore.k1-local-surface-catalog/v1"
|
||||
_PACK_ID = re.compile(r"^lidar-replay-pack-[a-f0-9]{64}$")
|
||||
_BENCHMARK_ID = re.compile(r"^ground-benchmark-[a-f0-9]{64}$")
|
||||
_FIELD_REVIEW_ID = re.compile(r"^lidar-field-review-[a-f0-9]{64}$")
|
||||
_LOCAL_SURFACE_ID = re.compile(r"^k1-local-surface-[a-f0-9]{64}$")
|
||||
_E10_PACK_ID = re.compile(r"^e10-lidar-pack-[a-f0-9]{64}$")
|
||||
RootProvider = Callable[[], Path | None]
|
||||
DatasetArtifactProvider = Callable[[], Path | None]
|
||||
|
||||
|
|
@ -56,11 +62,23 @@ def configured_lidar_field_review_root() -> Path | None:
|
|||
return Path(value).expanduser().absolute() if value else None
|
||||
|
||||
|
||||
def configured_k1_local_surface_root() -> Path | None:
|
||||
value = os.environ.get("MISSIONCORE_K1_LOCAL_SURFACE_ROOT", "").strip()
|
||||
return Path(value).expanduser().absolute() if value else None
|
||||
|
||||
|
||||
def configured_e10_lidar_source_root() -> Path | None:
|
||||
value = os.environ.get("MISSIONCORE_E10_LIDAR_SOURCE_ROOT", "").strip()
|
||||
return Path(value).expanduser().absolute() if value else None
|
||||
|
||||
|
||||
def build_lidar_router(
|
||||
*,
|
||||
root_provider: RootProvider = configured_lidar_replay_root,
|
||||
ground_root_provider: RootProvider = configured_lidar_ground_root,
|
||||
field_review_root_provider: RootProvider = configured_lidar_field_review_root,
|
||||
local_surface_root_provider: RootProvider = configured_k1_local_surface_root,
|
||||
e10_source_root_provider: RootProvider = configured_e10_lidar_source_root,
|
||||
dataset_admission_provider: DatasetArtifactProvider = configured_dataset_admission_manifest,
|
||||
dataset_preview_provider: DatasetArtifactProvider = configured_dataset_preview,
|
||||
dataset_rellis_preview_provider: DatasetArtifactProvider = lambda: None,
|
||||
|
|
@ -483,4 +501,111 @@ def build_lidar_router(
|
|||
headers={"Cache-Control": "private, max-age=31536000, immutable"},
|
||||
)
|
||||
|
||||
@router.get("/local-surfaces")
|
||||
def list_k1_local_surfaces(
|
||||
limit: int = Query(default=10, ge=1, le=50),
|
||||
) -> dict[str, Any]:
|
||||
root = local_surface_root_provider()
|
||||
if root is None or not root.is_dir():
|
||||
return {
|
||||
"schema_version": K1_LOCAL_SURFACE_CATALOG_SCHEMA,
|
||||
"configured": root is not None,
|
||||
"items": [],
|
||||
"valid_total": 0,
|
||||
"invalid_total": 0,
|
||||
"access": "read-only",
|
||||
}
|
||||
items: list[dict[str, object]] = []
|
||||
invalid_total = 0
|
||||
candidates = sorted(
|
||||
(
|
||||
candidate
|
||||
for candidate in root.iterdir()
|
||||
if candidate.is_dir()
|
||||
and _LOCAL_SURFACE_ID.fullmatch(candidate.name) is not None
|
||||
),
|
||||
key=lambda candidate: candidate.stat().st_mtime_ns,
|
||||
reverse=True,
|
||||
)
|
||||
for candidate in candidates:
|
||||
try:
|
||||
model = K1LocalSurfaceV1(candidate)
|
||||
try:
|
||||
items.append(k1_local_surface_catalog_item(model))
|
||||
finally:
|
||||
model.close()
|
||||
except (LidarGroundError, OSError):
|
||||
invalid_total += 1
|
||||
return {
|
||||
"schema_version": K1_LOCAL_SURFACE_CATALOG_SCHEMA,
|
||||
"configured": True,
|
||||
"items": items[:limit],
|
||||
"valid_total": len(items),
|
||||
"invalid_total": invalid_total,
|
||||
"access": "read-only",
|
||||
}
|
||||
|
||||
@router.get("/local-surfaces/{model_id}/frames/{frame_index}")
|
||||
def get_k1_local_surface_frame(
|
||||
model_id: str,
|
||||
frame_index: int,
|
||||
) -> dict[str, object]:
|
||||
if _LOCAL_SURFACE_ID.fullmatch(model_id) is None or frame_index < 0:
|
||||
raise HTTPException(
|
||||
status_code=404,
|
||||
detail="K1 local-surface frame не найден",
|
||||
)
|
||||
model_root = local_surface_root_provider()
|
||||
source_root = e10_source_root_provider()
|
||||
if model_root is None or not model_root.is_dir():
|
||||
raise HTTPException(
|
||||
status_code=503,
|
||||
detail="K1 local-surface storage не настроен",
|
||||
)
|
||||
if source_root is None or not source_root.is_dir():
|
||||
raise HTTPException(
|
||||
status_code=503,
|
||||
detail="E10 LiDAR source storage не настроен",
|
||||
)
|
||||
model_path = model_root / model_id
|
||||
if not model_path.is_dir():
|
||||
raise HTTPException(
|
||||
status_code=404,
|
||||
detail="K1 local-surface model не найден",
|
||||
)
|
||||
try:
|
||||
model = K1LocalSurfaceV1(model_path)
|
||||
try:
|
||||
source_pack_id = model.identity.get("source_pack_id")
|
||||
if (
|
||||
not isinstance(source_pack_id, str)
|
||||
or _E10_PACK_ID.fullmatch(source_pack_id) is None
|
||||
):
|
||||
raise LidarGroundError("K1 local-surface source id is invalid")
|
||||
source_path = source_root / source_pack_id
|
||||
if not source_path.is_dir():
|
||||
raise HTTPException(
|
||||
status_code=404,
|
||||
detail="Связанный E10 LiDAR source не найден",
|
||||
)
|
||||
source = E10LidarFieldSource(source_path)
|
||||
try:
|
||||
return model.frame_detail(source, frame_index)
|
||||
finally:
|
||||
source.close()
|
||||
finally:
|
||||
model.close()
|
||||
except IndexError as exc:
|
||||
raise HTTPException(
|
||||
status_code=404,
|
||||
detail="K1 local-surface frame не найден",
|
||||
) from exc
|
||||
except HTTPException:
|
||||
raise
|
||||
except (LidarGroundError, OSError) as exc:
|
||||
raise HTTPException(
|
||||
status_code=409,
|
||||
detail="K1 local-surface evidence не прошло проверку целостности",
|
||||
) from exc
|
||||
|
||||
return router
|
||||
|
|
|
|||
|
|
@ -0,0 +1,195 @@
|
|||
from __future__ import annotations
|
||||
|
||||
import hashlib
|
||||
import json
|
||||
from pathlib import Path
|
||||
|
||||
import numpy as np
|
||||
from fastapi import APIRouter
|
||||
from fastapi.routing import APIRoute
|
||||
|
||||
from k1link.compute import (
|
||||
E10_LIDAR_PACK_SCHEMA,
|
||||
E10LidarFieldSource,
|
||||
K1LocalSurfaceProfile,
|
||||
K1LocalSurfaceV1,
|
||||
build_k1_local_surface,
|
||||
)
|
||||
from k1link.web.lidar_api import build_lidar_router
|
||||
|
||||
|
||||
def _canonical_json(value: object) -> bytes:
|
||||
return json.dumps(
|
||||
value,
|
||||
ensure_ascii=False,
|
||||
sort_keys=True,
|
||||
separators=(",", ":"),
|
||||
allow_nan=False,
|
||||
).encode()
|
||||
|
||||
|
||||
def _sha256(path: Path) -> str:
|
||||
return hashlib.sha256(path.read_bytes()).hexdigest()
|
||||
|
||||
|
||||
def _source_pack(root: Path) -> Path:
|
||||
frame_count = 8
|
||||
available = np.asarray([True, True, True, True, True, True, True, False])
|
||||
poses: list[list[float]] = []
|
||||
clouds: list[np.ndarray] = []
|
||||
offsets = [0]
|
||||
for frame_index in range(frame_count):
|
||||
pose_x = frame_index * 0.35
|
||||
pose_y = 0.1 * np.sin(frame_index)
|
||||
ground_z = 0.04 * pose_x - 0.015 * pose_y
|
||||
poses.append([pose_x, pose_y, ground_z + 1.42])
|
||||
if not available[frame_index]:
|
||||
offsets.append(offsets[-1])
|
||||
continue
|
||||
axis = np.linspace(-3.5, 3.5, 12)
|
||||
xx, yy = np.meshgrid(axis + pose_x, axis + pose_y)
|
||||
zz = 0.04 * xx - 0.015 * yy + 0.008 * np.sin(xx * 2 + frame_index)
|
||||
ground = np.column_stack((xx.ravel(), yy.ravel(), zz.ravel()))
|
||||
obstacle_xy = ground[::13, :2]
|
||||
obstacle_z = (
|
||||
0.04 * obstacle_xy[:, 0] - 0.015 * obstacle_xy[:, 1] + 0.75
|
||||
)
|
||||
obstacle = np.column_stack((obstacle_xy, obstacle_z))
|
||||
cloud = np.concatenate((ground, obstacle)).astype("<f4")
|
||||
clouds.append(cloud)
|
||||
offsets.append(offsets[-1] + cloud.shape[0])
|
||||
points = np.concatenate(clouds).astype("<f4")
|
||||
arrays = {
|
||||
"frame_indices": np.arange(frame_count, dtype="<i8"),
|
||||
"source_frame_indices": np.arange(100, 100 + frame_count * 10, 10, dtype="<i8"),
|
||||
"session_seconds": np.arange(frame_count, dtype="<f8") * 0.1 + 10.0,
|
||||
"sample_available": available.astype("?"),
|
||||
"cloud_offsets": np.asarray(offsets, dtype="<i8"),
|
||||
"cloud_points_map": points,
|
||||
"pose_positions_map": np.asarray(poses, dtype="<f8"),
|
||||
"pose_quaternions_map_from_lidar": np.tile(
|
||||
np.asarray([0.0, 0.0, 0.0, 1.0], dtype="<f8"),
|
||||
(frame_count, 1),
|
||||
),
|
||||
"lidar_camera_delta_ms": np.zeros(frame_count, dtype="<f8"),
|
||||
"pose_point_delta_ms": np.asarray(
|
||||
[4.0, 5.0, 6.0, 7.0, 130.0, 5.0, 6.0, 0.0],
|
||||
dtype="<f8",
|
||||
),
|
||||
"intrinsic_fx_fy_cx_cy": np.asarray(
|
||||
[100.0, 100.0, 50.0, 50.0],
|
||||
dtype="<f8",
|
||||
),
|
||||
"distortion_kb4": np.zeros(4, dtype="<f8"),
|
||||
"t_camera_from_lidar": np.eye(4, dtype="<f8"),
|
||||
}
|
||||
identity = {
|
||||
"schema_version": E10_LIDAR_PACK_SCHEMA,
|
||||
"session_id": "synthetic-ravnoves00-local-surface",
|
||||
"frame_count": frame_count,
|
||||
"available_lidar_frames": int(np.count_nonzero(available)),
|
||||
"point_count": int(points.shape[0]),
|
||||
"timeline_start_seconds": 10.0,
|
||||
"timeline_end_seconds": 10.7,
|
||||
}
|
||||
identity_sha256 = hashlib.sha256(_canonical_json(identity)).hexdigest()
|
||||
pack = root / f"e10-lidar-pack-{identity_sha256}"
|
||||
pack.mkdir(parents=True)
|
||||
arrays_path = pack / "lidar-pack.npz"
|
||||
np.savez_compressed(arrays_path, **arrays) # type: ignore[arg-type]
|
||||
manifest = {
|
||||
"schema_version": E10_LIDAR_PACK_SCHEMA,
|
||||
"pack_id": pack.name,
|
||||
"identity_sha256": identity_sha256,
|
||||
"identity": identity,
|
||||
"artifact": {
|
||||
"path": arrays_path.name,
|
||||
"media_type": "application/x-npz",
|
||||
"byte_length": arrays_path.stat().st_size,
|
||||
"sha256": _sha256(arrays_path),
|
||||
},
|
||||
}
|
||||
(pack / "manifest.json").write_bytes(_canonical_json(manifest))
|
||||
return pack
|
||||
|
||||
|
||||
def _endpoint(router: APIRouter, path: str) -> object:
|
||||
for route in router.routes:
|
||||
if (
|
||||
isinstance(route, APIRoute)
|
||||
and route.path == path
|
||||
and route.methods is not None
|
||||
and "GET" in route.methods
|
||||
):
|
||||
return route.endpoint
|
||||
raise AssertionError(f"GET {path} route is missing")
|
||||
|
||||
|
||||
def test_k1_local_surface_is_dynamic_source_bound_and_read_only(
|
||||
tmp_path: Path,
|
||||
) -> None:
|
||||
source_path = _source_pack(tmp_path / "source")
|
||||
source_artifact = source_path / "lidar-pack.npz"
|
||||
source_sha256 = _sha256(source_artifact)
|
||||
profile = K1LocalSurfaceProfile(
|
||||
profile_id="synthetic-dynamic-local-surface/v1",
|
||||
local_radius_m=5.0,
|
||||
cell_size_m=0.5,
|
||||
surface_ttl_s=0.5,
|
||||
minimum_surface_cells=12,
|
||||
)
|
||||
source = E10LidarFieldSource(source_path)
|
||||
try:
|
||||
output = build_k1_local_surface(
|
||||
source,
|
||||
tmp_path / "models",
|
||||
profile=profile,
|
||||
)
|
||||
duplicate = build_k1_local_surface(
|
||||
source,
|
||||
tmp_path / "models",
|
||||
profile=profile,
|
||||
)
|
||||
finally:
|
||||
source.close()
|
||||
assert duplicate == output
|
||||
assert _sha256(source_artifact) == source_sha256
|
||||
|
||||
model = K1LocalSurfaceV1(output)
|
||||
source = E10LidarFieldSource(source_path)
|
||||
try:
|
||||
detail = model.frame_detail(source, 2)
|
||||
assert model.report["source"]["passive_processing_only"] is True
|
||||
assert model.report["source"]["firmware_or_device_commands_used"] is False
|
||||
assert model.report["surface_model"]["hardcoded_height_m"] is None
|
||||
assert model.report["occupancy_policy"]["absence_of_points_means_free"] is False
|
||||
assert model.report["metrics"]["frames"]["valid"] >= 5
|
||||
assert detail["valid"] is True
|
||||
assert 1.2 < detail["surface"]["sensor_height_m"] < 1.6
|
||||
assert detail["counts"]["surface"] > 50
|
||||
assert detail["counts"]["occupied"] > 0
|
||||
assert detail["authority"]["commands_enabled"] is False
|
||||
assert "1.27" not in repr({"identity": model.identity, "report": model.report})
|
||||
assert str(tmp_path) not in repr(detail)
|
||||
finally:
|
||||
source.close()
|
||||
model.close()
|
||||
|
||||
router = build_lidar_router(
|
||||
root_provider=lambda: None,
|
||||
ground_root_provider=lambda: None,
|
||||
field_review_root_provider=lambda: None,
|
||||
local_surface_root_provider=lambda: output.parent,
|
||||
e10_source_root_provider=lambda: source_path.parent,
|
||||
)
|
||||
catalog_route = _endpoint(router, "/api/v1/lidar/local-surfaces")
|
||||
frame_route = _endpoint(
|
||||
router,
|
||||
"/api/v1/lidar/local-surfaces/{model_id}/frames/{frame_index}",
|
||||
)
|
||||
catalog = catalog_route(limit=10) # type: ignore[operator]
|
||||
frame = frame_route(model_id=output.name, frame_index=2) # type: ignore[operator]
|
||||
assert catalog["valid_total"] == 1
|
||||
assert catalog["items"][0]["status"] == "diagnostic-only"
|
||||
assert frame["model_id"] == output.name
|
||||
assert frame["access"] == "read-only"
|
||||
Loading…
Reference in New Issue