Learning by Analogy: Reliable Supervision From Transformations for Unsupervised Optical Flow Estimation
Liang Liu, Jiangning Zhang, Ruifei He, Yong Liu, Yabiao Wang, Ying Tai, Donghao Luo, Chengjie Wang, Jilin Li, Feiyue Huang
摘要
Unsupervised learning of optical flow, which leverages the supervision from view synthesis, has emerged as a promising alternative to supervised methods. However, the objective of unsupervised learning is likely to be unreliable in challenging scenes. In this work, we present a framework to use more reliable supervision from transformations. It simply twists the general unsupervised learning pipeline by running another forward pass with transformed data from augmentation, along with using transformed predictions of original data as the self-supervision signal. Besides, we further introduce a lightweight network with multiple frames by a highly-shared flow decoder. Our method consistently gets a leap of performance on several benchmarks with the best accuracy among deep unsupervised methods. Also, our method achieves competitive results to recent fully supervised methods while with much fewer parameters.
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- Separable Flow: Learning Motion Cost Volumes for Optical Flow EstimationFeihu Zhang, Oliver J. Woodford, Victor Prisacariu, Philip H. S. TorrICCV 2021 · 被引用 112 次
- Displacement-Invariant Matching Cost Learning for Accurate Optical Flow EstimationJianyuan Wang, Yiran Zhong, Yuchao Dai, Kaihao Zhang 等NeurIPS 2020 · 被引用 83 次
- Spatio-Temporal Recurrent Networks for Event-Based Optical Flow EstimationZiluo Ding, Rui Zhao, Jiyuan Zhang, Tianxiao Gao 等AAAI 2022 · 被引用 76 次
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