Spk2SRImgNet: Super-Resolve Dynamic Scene from Spike Stream via Motion Aligned Collaborative Filtering
Yuanlin Wang, Yiyang Zhang, Ruiqin Xiong, Jing Zhao, Jian Zhang, Xiaopeng Fan, Tiejun Huang
摘要
Spike camera is a kind of neuromorphic camera that records dynamic scenes by firing a stream of binary spikes with extremely high temporal resolution. It demonstrates great potential for vision tasks in high-speed scenarios. One limitation in its current implementation is the relatively low spatial resolution. This paper develops a network called Spk2SRImgNet to super-resolve high resolution images from low resolution spike stream. However, fluctuations in spike stream hinder the performance of spike camera super resolution. To address this issue, we propose a motion aligned collaborative filtering (MACF) module, which is motivated by key ideas in classic image restoration schemes to mitigate fluctuations in spike data. MACF leverages the temporal similarity of spike stream to acquire similar features from neighboring moments via motion alignment. To separate disturbances from features, MACF filters these similar features jointly in transform domain to exploit representation sparsity, and generates refinement features that will be used to update initial fluctuated features. Specifically, MACF designs an inverse motion alignment operation to map these refinement features back to their original positions. The initial features are aggregated with the repositioned refinement features to enhance reliability. Experimental results demonstrate that the proposed method achieves state-of-the-art performance compared with existing methods.
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引用它的顶会 Paper2
- High Dynamic Range Imaging with Time-Encoding Spike CameraZhenkun Zhu, Ruiqin Xiong, Jiyu Xie, Yuanlin Wang 等NeurIPS 2025
- Spk2VidNet: A Hierarchical Recurrent Architecture for High-Fidelity Video Reconstruction from Long Spike-Camera StreamsYuanlin Wang, Ruiqin Xiong, Jiyu Xie, Zhenkun Zhu 等CVPR 2026
它引用的顶会 Paper14
- BasicVSR++: Improving Video Super-Resolution with Enhanced Propagation and AlignmentKelvin C. K. Chan, Shangchen Zhou, Xiangyu Xu, Chen Change LoyCVPR 2022 · 被引用 522 次
- Dual Aggregation Transformer for Image Super-ResolutionZheng Chen, Yulun Zhang, Jinjin Gu, Linghe Kong 等ICCV 2023 · 被引用 345 次
- Event-based Video Reconstruction Using TransformerWenming Weng, Yueyi Zhang, Zhiwei XiongICCV 2021 · 被引用 139 次
- Event-based Video Reconstruction via Potential-assisted Spiking Neural NetworkLin Zhu, Xiao Wang, Yi Chang, Jianing Li 等CVPR 2022 · 被引用 109 次
- Super Resolve Dynamic Scene from Continuous Spike StreamsJing Zhao, Jiyu Xie, Ruiqin Xiong, Jian Zhang 等ICCV 2021 · 被引用 42 次
相关 Paper
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- Spk2ImgNet: Learning To Reconstruct Dynamic Scene From Continuous Spike StreamJing Zhao, Ruiqin Xiong, Hangfan Liu, Jian Zhang 等CVPR 2021
- Super-Resolution Reconstruction from Bayer-Pattern Spike StreamsYanchen Dong, Ruiqin Xiong, Jian Zhang, Zhaofei Yu 等CVPR 2024
- Self-Supervised Learning for Color Spike Camera ReconstructionYanchen Dong, Ruiqin Xiong, Xiaopeng Fan, Zhaofei Yu 等CVPR 2025
