/* * Copyright 2016 The Cartographer Authors * * Licensed under the Apache License, Version 2.0 (the "License"); * you may not use this file except in compliance with the License. * You may obtain a copy of the License at * * http://www.apache.org/licenses/LICENSE-2.0 * * Unless required by applicable law or agreed to in writing, software * distributed under the License is distributed on an "AS IS" BASIS, * WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied. * See the License for the specific language governing permissions and * limitations under the License. */ using CartographerSharp.Models.Transform; using CartographerSharp.Transform; using RobotNet10.Shared.Numbers; namespace CartographerSharp.Sensor; /// /// Range data structure. /// Rays begin at 'origin'. 'returns' are the points where obstructions were /// detected. 'misses' are points in the direction of rays for which no return /// was detected, and were inserted at a configured distance. It is assumed that /// between the 'origin' and 'misses' is free space. /// public struct RangeData(Vector3 origin, PointCloud returns, PointCloud misses) { public Vector3 Origin { get; set; } = origin; public PointCloud Returns { get; set; } = returns; public PointCloud Misses { get; set; } = misses; } /// /// Operations on RangeData. /// public static class RangeDataOperations { /// /// Transforms range data according to a transform. /// public static RangeData Transform(RangeData rangeData, Rigid3f transform) { return new RangeData( transform.TransformPoint(rangeData.Origin), PointCloudOperations.Transform(rangeData.Returns, transform), PointCloudOperations.Transform(rangeData.Misses, transform) ); } /// /// Normalizes range data origin to a target origin by translating all points. /// This is used in 2D SLAM to ensure consistent origin for ray casting in submap. /// public static RangeData NormalizeOrigin(RangeData rangeData, Vector3 targetOrigin) { var originOffset = targetOrigin - rangeData.Origin; return new RangeData( targetOrigin, PointCloudOperations.Translate(rangeData.Returns, originOffset), PointCloudOperations.Translate(rangeData.Misses, originOffset) ); } /// /// Crops 'range_data' according to the region defined by 'min_z' and 'max_z'. /// public static RangeData Crop(RangeData rangeData, double minZ, double maxZ) { return new RangeData( rangeData.Origin, PointCloudOperations.Crop(rangeData.Returns, minZ, maxZ), PointCloudOperations.Crop(rangeData.Misses, minZ, maxZ) ); } /// /// Converts 'range_data' to a proto::RangeData. /// public static Models.Sensor.RangeData ToProto(RangeData rangeData) { var proto = new Models.Sensor.RangeData { Origin = new Vector3f(rangeData.Origin.X, rangeData.Origin.Y, rangeData.Origin.Z), Returns = [], Misses = [] }; foreach (var point in rangeData.Returns.Points) { proto.Returns.Add(new Models.Sensor.RangefinderPoint { Position = new Vector3f(point.Position.X, point.Position.Y, point.Position.Z) }); } foreach (var point in rangeData.Misses.Points) { proto.Misses.Add(new Models.Sensor.RangefinderPoint { Position = new Vector3f(point.Position.X, point.Position.Y, point.Position.Z) }); } return proto; } /// /// Converts 'proto' to RangeData. /// public static RangeData FromProto(Models.Sensor.RangeData proto) { var returns = new List(); if (proto.Returns.Count > 0) { foreach (var protoPoint in proto.Returns) { returns.Add(new Sensor.RangefinderPoint(new Vector3(protoPoint.Position.X, protoPoint.Position.Y, protoPoint.Position.Z))); } } var misses = new List(); if (proto.Misses.Count > 0) { foreach (var protoPoint in proto.Misses) { misses.Add(new Sensor.RangefinderPoint(new Vector3(protoPoint.Position.X, protoPoint.Position.Y, protoPoint.Position.Z))); } } return new RangeData( new Vector3(proto.Origin.X, proto.Origin.Y, proto.Origin.Z), new PointCloud(returns), new PointCloud(misses) ); } }