LWSIS: LiDAR-Guided Weakly Supervised Instance Segmentation for Autonomous Driving
Xiang Li, Junbo Yin, Botian Shi, Yikang Li, Ruigang Yang, Jianbing Shen
摘要
Image instance segmentation is a fundamental research topic in autonomous driving, which is crucial for scene understanding and road safety. Advanced learning-based approaches often rely on the costly 2D mask annotations for training. In this paper, we present a more artful framework, LiDARguided Weakly Supervised Instance Segmentation (LWSIS), which leverages the off-the-shelf 3D data, i.e., Point Cloud, together with the 3D boxes, as natural weak supervisions for training the 2D image instance segmentation models. Our LWSIS not only exploits the complementary information in multimodal data during training, but also significantly reduces the annotation cost of the dense 2D masks. In detail, LWSIS consists of two crucial modules, Point Label Assignment (PLA) and Graph-based Consistency Regularization (GCR). The former module aims to automatically assign the 3D point cloud as 2D point-wise labels, while the latter further refines the predictions by enforcing geometry and appearance consistency of the multimodal data. Moreover, we conduct a secondary instance segmentation annotation on the nuScenes, named nuInsSeg, to encourage further research on multimodal perception tasks. Extensive experiments on the nuInsSeg, as well as the large-scale Waymo, show that LWSIS can substantially improve existing weakly supervised segmentation models by only involving 3D data during training. Additionally, LWSIS can also be incorporated into 3D object detectors like PointPainting to boost the 3D detection performance for free. The code and dataset are available at https://github.com/Serenos/LWSIS .
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引用它的顶会 Paper6
- IS-Fusion: Instance-Scene Collaborative Fusion for Multimodal 3D Object DetectionJunbo Yin, Jianbing Shen, Runnan Chen, Wei Li 等CVPR 2024 · 被引用 73 次
- OLiDM: Object-aware LiDAR Diffusion Models for Autonomous DrivingTianyi Yan, Junbo Yin, Xianpeng Lang, Ruigang Yang 等AAAI 2025 · 被引用 16 次
- MWSIS: Multimodal Weakly Supervised Instance Segmentation with 2D Box Annotations for Autonomous DrivingGuangfeng Jiang, Jun Liu, Yuzhi Wu, Wenlong Liao 等AAAI 2024 · 被引用 11 次
- From Question to Exploration: Can Classic Test-Time Adaptation Strategies Be Effectively Applied in Semantic Segmentation?Chang'an Yi, Haotian Chen, Yifan Zhang, Yonghui Xu 等ACM MM 2024 · 被引用 6 次
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它引用的顶会 Paper16
- Leveraging Auxiliary Tasks with Affinity Learning for Weakly Supervised Semantic SegmentationLian Xu, Wanli Ouyang, Mohammed Bennamoun, Farid Boussaïd 等ICCV 2021 · 被引用 152 次
- Pointly-Supervised Instance SegmentationBowen Cheng, Omkar Parkhi, Alexander KirillovCVPR 2022 · 被引用 140 次
- DiscoBox: Weakly Supervised Instance Segmentation and Semantic Correspondence from Box SupervisionShiyi Lan, Zhiding Yu, Christopher B. Choy, Subhashree Radhakrishnan 等ICCV 2021 · 被引用 97 次
- Label-PEnet: Sequential Label Propagation and Enhancement Networks for Weakly Supervised Instance SegmentationWeifeng Ge, Weilin Huang, Sheng Guo, Matthew R. ScottICCV 2019 · 被引用 54 次
- Weakly Supervised Segmentation of Small Buildings with Point LabelsJae-Hun Lee, Chanyoung Kim, Sanghoon SullICCV 2021 · 被引用 25 次
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