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Object_array_vision Object_array_vision格式示例: tracked_object { timestamp: 1604996332862 stamp_secs: 1604996332 stamp_nsecs: 862911489 objects { id: 26175 label: "Car" pose_position_x: 1154.59912109375 pose_position_y: -496.5350646972656 pose_position_z: -1.8222997188568115 pose_orientation_z: 0.714431643486023 pose_orientation_w: 0.6997052431106567 pose_orientation_yaw: 1.5916229486465454 dimensions_x: 4.513162136077881 dimensions_y: 1.7747581005096436 dimensions_z: 1.628068208694458 speed_vector_linear_x: 0.012852923013269901 speed_vector_linear_y: -9.972732543945312 relative_position_x: -17.48011016845703 relative_position_y: 10.685434341430664 relative_position_z: -0.17673441767692566 } objects { id: 26170 label: "Pedestrian" pose_position_x: 1180.902099609375 pose_position_y: -504.7625732421875 pose_position_z: -1.3601081371307373 pose_orientation_z: -0.7057344317436218 pose_orientation_w: 0.7084764242172241 pose_orientation_yaw: -1.5669186115264893 dimensions_x: 0.7922295331954956 dimensions_y: 0.7891787886619568 dimensions_z: 1.6868246793746948 speed_vector_linear_x: 0.13573257625102997 speed_vector_linear_y: 1.5281875133514404 relative_position_x: -25.306795120239258 relative_position_y: -15.737456321716309 relative_position_z: 0.39350399374961853 } objects { id: 26169 label: "Pedestrian" pose_position_x: 1175.647216796875 pose_position_y: -506.730712890625 pose_position_z: -1.569373607635498 pose_orientation_z: 0.6943609118461609 pose_orientation_w: 0.7196269631385803 pose_orientation_yaw: 1.5350627899169922 dimensions_x: 0.8029457330703735 dimensions_y: 0.7876891493797302 dimensions_z: 1.6028095483779907 speed_vector_linear_x: 0.06551000475883484 speed_vector_linear_y: 0.0022428608499467373 relative_position_x: -27.355571746826172 relative_position_y: -10.512933731079102 relative_position_z: 0.19844147562980652 } objects { id: 26168 label: "Pedestrian" pose_position_x: 1173.3189697265625 pose_position_y: -507.2300109863281 pose_position_z: -1.6026556491851807 pose_orientation_z: 0.717462956905365 pose_orientation_w: 0.6965966820716858 pose_orientation_yaw: 1.600306749343872 dimensions_x: 0.7922430038452148 dimensions_y: 0.7811086177825928 dimensions_z: 1.6341478824615479 speed_vector_linear_x: -0.04817964881658554 speed_vector_linear_y: -0.21502695977687836 relative_position_x: -27.89008903503418 relative_position_y: -8.192517280578613 relative_position_z: 0.16775710880756378 } objects { id: 26155 label: "Bus" pose_position_x: 1172.106689453125 pose_position_y: -478.5303039550781 pose_position_z: -0.48812994360923767 pose_orientation_z: -0.7203028798103333 pose_orientation_w: 0.6936596632003784 pose_orientation_yaw: -1.6084778308868408 dimensions_x: 11.322981834411621 dimensions_y: 2.9294095039367676 dimensions_z: 3.1415622234344482 speed_vector_linear_x: -0.017722932621836662 speed_vector_linear_y: 0.1302066147327423 relative_position_x: 0.7977913022041321 relative_position_y: -6.548437118530273 relative_position_z: 0.9966707229614258 } objects { id: 26153 label: "Bus" pose_position_x: 1148.1876220703125 pose_position_y: -490.8350524902344 pose_position_z: -0.954763650894165 pose_orientation_z: 0.6907882690429688 pose_orientation_w: 0.7230570912361145 pose_orientation_yaw: 1.5251574516296387 dimensions_x: 10.779899597167969 dimensions_y: 2.856076717376709 dimensions_z: 2.811084508895874 speed_vector_linear_x: 0.03153659775853157 speed_vector_linear_y: 0.23439916968345642 relative_position_x: -11.868709564208984 relative_position_y: 17.1827335357666 relative_position_z: 0.6278138756752014 } objects { id: 26141 label: "Bus" pose_position_x: 1171.7779541015625 pose_position_y: -512.5936889648438 pose_position_z: -0.9443151354789734 pose_orientation_z: -0.7186583876609802 pose_orientation_w: 0.6953632831573486 pose_orientation_yaw: -1.6037421226501465 dimensions_x: 10.841312408447266 dimensions_y: 2.9661808013916016 dimensions_z: 3.2250704765319824 speed_vector_linear_x: 0.0513402484357357 speed_vector_linear_y: 0.006104861851781607 relative_position_x: -33.26952362060547 relative_position_y: -6.731308937072754 relative_position_z: 0.8776476979255676 } objects { id: 26133 label: "Bus" pose_position_x: 1146.657958984375 pose_position_y: -508.7508239746094 pose_position_z: -0.883571445941925 pose_orientation_z: 0.7007946968078613 pose_orientation_w: 0.713362991809845 pose_orientation_yaw: 1.5530219078063965 dimensions_x: 12.186415672302246 dimensions_y: 2.824420690536499 dimensions_z: 3.292656183242798 speed_vector_linear_x: 0.005901232361793518 speed_vector_linear_y: 0.013970088213682175 relative_position_x: -29.803848266601562 relative_position_y: 18.443498611450195 relative_position_z: 0.8749525547027588 } objects { id: 26120 label: "Bus" pose_position_x: 1170.993408203125 pose_position_y: -525.5801391601562 pose_position_z: -1.104852318763733 pose_orientation_z: -0.7154129147529602 pose_orientation_w: 0.6987019181251526 pose_orientation_yaw: -1.5944297313690186 dimensions_x: 10.749905586242676 dimensions_y: 2.7170863151550293 dimensions_z: 3.0421104431152344 speed_vector_linear_x: 0.016746148467063904 speed_vector_linear_y: -0.23609620332717896 relative_position_x: -46.26727294921875 relative_position_y: -6.141877174377441 relative_position_z: 0.8449855446815491 } }
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Traffic_light_info Traffic_light_info格式示例: timestamp: 1630057508000 stamp_secs: 1630057508 lights { id: 1 color: 1 location_x: -206.60186767578125 location_y: 459.9820861816406 location_z: 3.0 } lights { id: 2 color: 2 location_x: -74.1282958984375 location_y: 484.984619140625 location_z: 4.0 } lights { id: 3 color: 3 location_x: 59.96036911010742 location_y: 473.6038513183594 location_z: 5.0 }
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Vehicle Vehicle格式示例: vehicle_info { stamp_secs: 1604996332 stamp_nsecs: 847945211 autonomy_status: 0 gear_value: 4 vehicle_speed: 43.93000030517578 steering_angle: 0.699999988079071 yaw_rate: 0.0 interior_temperature: 0.0 outside_temperature: 0.0 brake: 0.0 timestamp: 1604996332847 turn_left_light: 0 turn_right_light: 0 longitude_acc: -0.03125 lateral_acc: 0.0 }
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Ego_tf Ego_tf格式示例: localization_info { timestamp: 1604996332855 stamp_secs: 1604996332 stamp_nsecs: 855301408 pose_position_x: 1165.5460205078125 pose_position_y: -479.2198486328125 pose_position_z: -1.48505699634552 pose_orientation_x: 0.003883248195052147 pose_orientation_y: -0.0031167068518698215 pose_orientation_z: 0.7017714977264404 pose_orientation_w: 0.7123847603797913 pose_orientation_yaw: 1.5557808876037598 velocity_linear: 12.21684455871582 velocity_angular: 0.014540454372763634 acceleration_linear: 0.23571151494979858 acceleration_angular: 0.0 }
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Tag_record Tag_record格式示例: segments { scenario_id: 100000000 source: "takeover" start: 1617336642300 end: 1617336652300 } segments { scenario_id: 100000000 source: "vehicle" start: 1617336672300 end: 1617336692300 }
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Routing_path Routing_path格式示例: timestamp: 1630057162125 stamp_secs: 1630057162 stamp_nsecs: 125769156 routing_path_info { id: 1 path_point { x: -203.34230041503906 y: 125.63516998291016 z: -0.5 } path_point { x: -203.34915161132812 y: 125.72517395019531 z: -0.5 }......}
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Predicted_objects Predicted_objects格式示例: stamp_secs: 1617336640 stamp_nsecs: 971891550 timestamp: 1617336640971 obstacle_info { obstacle_timestamp: 1617336640699 id: 6711 x: -123.08731842041016 y: 486.83221435546875 z: 0.575542688369751 prediction_trajectory { path_point { x: -103.26817321777344 y: 486.0815734863281 theta: -0.007839304395020008 v: 4.405668258666992 relative_time: 4.5 } path_point { x: -102.82765197753906 y: 486.0737609863281 theta: -0.00746726430952549 v: 4.405668258666992 relative_time: 4.599999904632568 } ...... } } obstacle_info { obstacle_timestamp: 1617336640699 id: 6744 x: -145.0320587158203 y: 491.35015869140625 z: -0.40381166338920593 prediction_trajectory { path_point { x: -145.0320587158203 y: 491.35015869140625 theta: -2.9442124366760254 v: 1.0038001537322998 } path_point { x: -145.1304931640625 y: 491.3304748535156 theta: -2.9442124366760254 v: 1.0038001537322998 relative_time: 0.10000000149011612 } ...... } } obstacle_info { obstacle_timestamp: 1617336640699 id: 6760 x: -138.3047332763672 y: 489.9286193847656 z: -0.12651222944259644 }
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Planning_trajectory Planning_trajectory格式示例: stamp_secs: 1617336640 stamp_nsecs: 809739351 timestamp: 1617336640809 trajectory_points { x: -151.27487182617188 y: 486.55096435546875 theta: 0.0023324606008827686 kappa: -0.0017824547830969095 } trajectory_points { x: -151.21182250976562 y: 486.5510559082031 theta: 0.0022713469807058573 kappa: -0.0017127590253949165 } ......
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与数据包同名的yaml配置文件说明 数据包中必须含有与数据包同名的yaml配置文件主要包括车辆名称、传感器信息和标定ID等信息,详情参考如下: # 华为八爪鱼自动驾驶云服务数据采集说明 project: '项目名称' module: '感知' cardrive: collect_time: 2020-11-01T08:00:00+08:00 #数据包采集日期,精确到小时即可 station: '腾飞' #选填 数据采集地点名称,站点名称 car: vehicle_name: 'test' #车辆名称,仅支持在八爪鱼平台创建的车辆 route: 'shuttlebus_30km' #选填 车辆行驶路线 speed:10km/h #选填 车速 mode: 'auto' #选填 路线驾驶意图, auto代表自动驾驶, manual代表人工驾驶采集 tags: ['主车直行','主车倒车'] #选填 标签,标签个数不超过50个 例:沙尘天,正向设计,驾驶模式 description: '强风沙天,车辆空载在排土区自动驾驶到接土区前等待长坡道' #选填 车载情况 segments: #选填 数据包场景片段 - tags: ['晴天','直行'] time: 2021-08-27T11:43:07~2021-08-27T11:43:47 data_type: Rosbag #必填 数据类型 map_id: MAP1134 #选填,高精地图ID,字符串类型,配备后才可在回放数据界面展示高精地图信息。 preprocessor: #转OpenData算子信息 id: 10105 # 算子id resource_spec: 4Core_8GiB # 资源规格
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