Every Frame Counts: Joint Learning of Video Segmentation and Optical Flow
Mingyu Ding, Zhe Wang, Bolei Zhou, Jianping Shi, Zhiwu Lu, Ping Luo
摘要
A major challenge for video semantic segmentation is the lack of labeled data. In most benchmark datasets, only one frame of a video clip is annotated, which makes most supervised methods fail to utilize information from the rest of the frames. To exploit the spatio-temporal information in videos, many previous works use pre-computed optical flows, which encode the temporal consistency to improve the video segmentation. However, the video segmentation and optical flow estimation are still considered as two separate tasks. In this paper, we propose a novel framework for joint video semantic segmentation and optical flow estimation. Semantic segmentation brings semantic information to handle occlusion for more robust optical flow estimation, while the non-occluded optical flow provides accurate pixel-level temporal correspondences to guarantee the temporal consistency of the segmentation. Moreover, our framework is able to utilize both labeled and unlabeled frames in the video through joint training, while no additional calculation is required in inference. Extensive experiments show that the proposed model makes the video semantic segmentation and optical flow estimation benefit from each other and outperforms existing methods under the same settings in both tasks.
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引用它的顶会 Paper18
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- Learning Versatile Neural Architectures by Propagating Network CodesMingyu Ding, Yuqi Huo, Haoyu Lu, Linjie Yang 等ICLR 2022 · 被引用 14 次
- Semi-Supervised Video Semantic Segmentation with Inter-Frame Feature ReconstructionJiafan Zhuang, Zilei Wang, Yuan GaoCVPR 2022 · 被引用 14 次
- SemARFlow: Injecting Semantics into Unsupervised Optical Flow Estimation for Autonomous DrivingShuai Yuan, Shuzhi Yu, Hannah Kim, Carlo TomasiICCV 2023 · 被引用 13 次
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