Point Cloud Instance Segmentation Using Probabilistic Embeddings
Biao Zhang, Peter Wonka
Abstract
In this paper we propose a new framework for point cloud instance segmentation. Our framework has two steps: an embedding step and a clustering step. In the embedding step, our main contribution is to propose a probabilistic embedding space for point cloud embedding. Specifically, each point is represented as a tri-variate normal distribution. In the clustering step, we propose a novel loss function, which benefits both the semantic segmentation and the clustering. Our experimental results show important improvements to the SOTA, i.e., 3.1% increased average per-category mAP on the PartNet dataset.
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Cited by top-tier papers22
- SoftGroup for 3D Instance Segmentation on Point CloudsThang Vu, Kookhoi Kim, Tung Minh Luu, Thanh Xuan Nguyen et al.CVPR 2022 · 251 citations
- Superpoint Transformer for 3D Scene Instance SegmentationJiahao Sun, Chunmei Qing, Junpeng Tan, Xiangmin XuAAAI 2023 · 181 citations
- Instance Segmentation in 3D Scenes using Semantic Superpoint Tree NetworksZhihao Liang, Zhihao Li, Songcen Xu, Mingkui Tan et al.ICCV 2021 · 170 citations
- Mask-Attention-Free Transformer for 3D Instance SegmentationXin Lai, Yuhui Yuan, Ruihang Chu, Yukang Chen et al.ICCV 2023 · 53 citations
- Divide and Conquer: 3D Point Cloud Instance Segmentation With Point-Wise BinarizationWeiguang Zhao, Yuyao Yan, Chaolong Yang, Jianan Ye et al.ICCV 2023 · 41 citations
Builds on3
- OccuSeg: Occupancy-Aware 3D Instance SegmentationLei Han, Tian Zheng, Lan Xu, Lu FangCVPR 2020
- PointGroup: Dual-Set Point Grouping for 3D Instance SegmentationLi Jiang, Hengshuang Zhao, Shaoshuai Shi, Shu Liu et al.CVPR 2020
- 3D-MPA: Multi-Proposal Aggregation for 3D Semantic Instance SegmentationFrancis Engelmann, Martin Bokeloh, Alireza Fathi, Bastian Leibe et al.CVPR 2020
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