OccuSeg: Occupancy-Aware 3D Instance Segmentation
Lei Han, Tian Zheng, Lan Xu, Lu Fang
Abstract
Abstract 3D instance segmentation, with a variety of applications in robotics and augmented reality, is in large demands these days. Unlike 2D images that are projective observations of the environment, 3D models provide metric reconstruction of the scenes without occlusion or scale ambiguity. In this paper, we define "3D occupancy size", as the number of voxels occupied by each instance. It owns advantages of robustness in prediction, on which basis, OccuSeg, an occupancy-aware 3D instance segmentation scheme is proposed. Our multi-task learning produces both occupancy signal and embedding representations, where the training of spatial and feature embedding varies with their difference in scale-aware. Our clustering scheme benefits from the reliable comparison between the predicted occupancy size and the clustered occupancy size, which encourages hard samples being correctly clustered and avoids over segmenta-
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Install the CLIlune papers fulltext c2b202f6-5f14-4edb-a985-ec44345cc9c1Cited by top-tier papers84
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