Publication | Open Access
Virtual KITTI 2.
41
Citations
20
References
2020
Year
Scene AnalysisEngineeringVirtual HumanSequence ClonesImage Sequence AnalysisImage AnalysisData SciencePattern RecognitionVirtual RealityObject TrackingMachine VisionComputer EngineeringMoving Object TrackingComputer ScienceStructure From MotionDeep LearningComputer VisionVirtual EngineeringVirtual Kitti 2Virtual SpaceClass SegmentationInstance Segmentation
This paper introduces an updated version of the well-known Virtual KITTI dataset which consists of 5 sequence clones from the KITTI tracking benchmark. In addition, the dataset provides different variants of these sequences such as modified weather conditions (e.g. fog, rain) or modified camera configurations (e.g. rotated by 15 degrees). For each sequence, we provide multiple sets of images containing RGB, depth, class segmentation, instance segmentation, flow, and scene flow data. Camera parameters and poses as well as vehicle locations are available as well. In order to showcase some of the dataset's capabilities, we ran multiple relevant experiments using state-of-the-art algorithms from the field of autonomous driving. The dataset is available for download at this https URL.
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