BasicVSR++: Improving Video Super-Resolution with Enhanced Propagation and Alignment
Kelvin C. K. Chan, Shangchen Zhou, Xiangyu Xu, Chen Change Loy
摘要
A recurrent structure is a popular framework choice for the task of video super-resolution. The state-of-the-art method BasicVSR adopts bidirectional propagation with feature alignment to effectively exploit information from the entire input video. In this study, we redesign BasicVsr by proposing second-order grid propagation and flow-guided deformable alignment. We show that by empowering the re-current framework with enhanced propagation and align-ment, one can exploit spatiotemporal information across misaligned video frames more effectively. The new components lead to an improved performance under a simi-lar computational constraint. In particular, our model Ba-sicVSR++ surpasses BasicVSR by a significant 0.82 dB in PSNR with similar number of parameters. BasicVSR++ is generalizable to other video restoration tasks, and obtains three champions and one first runner-up in NTIRE 2021 video restoration challenge.
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引用它的顶会 Paper157
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它引用的顶会 Paper8
- Progressive Fusion Video Super-Resolution Network via Exploiting Non-Local Spatio-Temporal CorrelationsPeng Yi, Zhongyuan Wang, Kui Jiang, Junjun Jiang 等ICCV 2019 · 被引用 309 次
- Spatio-Temporal Filter Adaptive Network for Video DeblurringShangchen Zhou, Jiawei Zhang, Jinshan Pan, Wangmeng Zuo 等ICCV 2019 · 被引用 225 次
- Understanding Deformable Alignment in Video Super-ResolutionKelvin C. K. Chan, Xintao Wang, Ke Yu, Chao Dong 等AAAI 2021 · 被引用 184 次
- TDAN: Temporally-Deformable Alignment Network for Video Super-ResolutionYapeng Tian, Yulun Zhang, Yun Fu, Chenliang XuCVPR 2020
- BasicVSR: The Search for Essential Components in Video Super-Resolution and BeyondKelvin C. K. Chan, Xintao Wang, Ke Yu, Chao Dong 等CVPR 2021
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