Weakly Supervised Learning for Point Cloud Semantic Segmentation With Dual Teacher

被引:1
|
作者
Yao, Baochen [1 ,2 ]
Xiao, Hui [1 ,2 ]
Zhuang, Jiayan [3 ]
Peng, Chengbin [1 ,2 ]
机构
[1] Ningbo Univ, Coll Informat Sci & Engn, Ningbo 315211, Peoples R China
[2] Key Lab Mobile Network Applicat Technol Zhejiang P, Ningbo 315211, Peoples R China
[3] Chinese Acad Sci, Ningbo Inst Ind Technol, Ningbo 315201, Peoples R China
关键词
Point cloud compression; Semantic segmentation; Training; Supervised learning; Predictive models; Data models; Semantics; Point cloud semantic segmentation; weakly supervised learning; teacher-student network; contrastive learning;
D O I
10.1109/LRA.2023.3304116
中图分类号
TP24 [机器人技术];
学科分类号
080202 ; 1405 ;
摘要
Point cloud semantic segmentation has achieved considerable progress in the past decade. To alleviate expensive data annotation efforts, weakly supervised learning methods are preferable, and traditional approaches are typically based on siamese neural networks. To enhance the feature learning capability, in this work, we introduce a dual-teacher-guided contrastive learning framework for weakly supervised point cloud semantic segmentation. A dual-teacher framework can reduce sub-network coupling and facilitate feature learning. In addition, a cross-validation approach can filter out low-quality samples, and a pseudo-label correction module can improve the quality of pseudo-labels. Cleaned unlabeled data are used to construct contrastive loss based on the prototypes of each class, which further boost the segmentation performance. Extensive experimental results conducted on the S3DIS, ScanNet-v2, and SemanticKITTI datasets demonstrate that our proposed DCL outperforms state-of-the-art methods.
引用
收藏
页码:6347 / 6354
页数:8
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