Unsupervised Multi-Task Feature Learning on Point Clouds
Kaveh Hassani, Mike Haley
Abstract
We introduce an unsupervised multi-task model to jointly learn point and shape features on point clouds. We define three unsupervised tasks including clustering, reconstruction, and self-supervised classification to train a multi-scale graph-based encoder. We evaluate our model on shape classification and segmentation benchmarks. The results suggest that it outperforms prior state-of-the-art unsupervised models: In the ModelNet40 classification task, it achieves an accuracy of 89.1% and in ShapeNet segmentation task, it achieves an mIoU of 68.2 and accuracy of 88.6%.
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Install the CLIlune papers fulltext 7b09eefc-2772-4310-85eb-7b91f5912506Cited by top-tier papers39
- Contrastive Multi-View Representation Learning on GraphsKaveh Hassani, Amir Hosein Khas AhmadiICML 2020 · 1,663 citations
- Self-Supervised Pretraining of 3D Features on any Point-CloudZaiwei Zhang, Rohit Girdhar, Armand Joulin, Ishan MisraICCV 2021 · 333 citations
- Unsupervised Point Cloud Pre-training via Occlusion CompletionHanchen Wang, Qi Liu, Xiangyu Yue, Joan Lasenby et al.ICCV 2021 · 323 citations
- CrossPoint: Self-Supervised Cross-Modal Contrastive Learning for 3D Point Cloud UnderstandingMohamed Afham, Isuru Dissanayake, Dinithi Dissanayake, Amaya Dharmasiri et al.CVPR 2022 · 286 citations
- Weakly Supervised Semantic Segmentation for Large-Scale Point CloudYachao Zhang, Zhonghao Li, Yuan Xie, Yanyun Qu et al.AAAI 2021 · 116 citations
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