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Datasets/nuScenes LiDAR only

nuScenes LiDAR only

LiDARApache License, Version 2.0Introduced 2019-03-26

Robust detection and tracking of objects is crucial for the deployment of autonomous vehicle technology. Image based benchmark datasets have driven development in computer vision tasks such as object detection, tracking and segmentation of agents in the environment. Most autonomous vehicles, however, carry a combination of cameras and range sensors such as lidar and radar. As machine learning based methods for detection and tracking become more prevalent, there is a need to train and evaluate such methods on datasets containing range sensor data along with images. In this work we present nuTonomy scenes (nuScenes), the first dataset to carry the full autonomous vehicle sensor suite: 6 cameras, 5 radars and 1 lidar, all with full 360 degree field of view. nuScenes comprises 1000 scenes, each 20s long and fully annotated with 3D bounding boxes for 23 classes and 8 attributes. It has 7x as many annotations and 100x as many images as the pioneering KITTI dataset. We define novel 3D detection and tracking metrics. We also provide careful dataset analysis as well as baselines for lidar and image based detection and tracking. Data, development kit and more information are available online.

Benchmarks

16k/NDS16k/NDS (val)16k/mAP16k/mAP (val)2D Classification/NDS2D Classification/NDS (val)2D Classification/mAP2D Classification/mAP (val)2D Object Detection/NDS2D Object Detection/NDS (val)2D Object Detection/mAP2D Object Detection/mAP (val)3D/NDS3D/NDS (val)3D/mAP3D/mAP (val)3D Multi-Object Tracking/AMOTA3D Object Detection/NDS3D Object Detection/NDS (val)3D Object Detection/mAP3D Object Detection/mAP (val)Multi-Object Tracking/AMOTAObject Detection/NDSObject Detection/NDS (val)Object Detection/mAPObject Detection/mAP (val)Object Tracking/AMOTA

Statistics

Papers
11
Benchmarks
27

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Tasks

16k2D Classification2D Object Detection3D3D Multi-Object Tracking3D Object DetectionMulti-Object TrackingObject DetectionObject Tracking