Learning to Super-resolve Dynamic Scenes for Neuromorphic Spike Camera
Jing Zhao, Ruiqin Xiong, Jian Zhang, Rui Zhao, Hangfan Liu, Tiejun Huang
Abstract
Spike camera is a kind of neuromorphic sensor that uses a novel ``integrate-and-fire'' mechanism to generate a continuous spike stream to record the dynamic light intensity at extremely high temporal resolution. However, as a trade-off for high temporal resolution, its spatial resolution is limited, resulting in inferior reconstruction details. To address this issue, this paper develops a network (SpikeSR-Net) to super-resolve a high-resolution image sequence from the low-resolution binary spike streams. SpikeSR-Net is designed based on the observation model of spike camera and exploits both the merits of model-based and learning-based methods. To deal with the limited representation capacity of binary data, a pixel-adaptive spike encoder is proposed to convert spikes to latent representation to infer clues on intensity and motion. Then, a motion-aligned super resolver is employed to exploit long-term correlation, so that the dense sampling in temporal domain can be exploited to enhance the spatial resolution without introducing motion blur. Experimental results show that SpikeSR-Net is promising in super-resolving higher-quality images for spike camera.
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Install the CLIlune papers fulltext bab75f20-02e6-4957-8dc8-ad10aeb978c2Cited by top-tier papers9
- Optical Flow for Spike Camera with Hierarchical Spatial-Temporal Spike FusionRui Zhao, Ruiqin Xiong, Jian Zhang, Xinfeng Zhang et al.AAAI 2024 · 23 citations
- Joint Demosaicing and Denoising for Spike CameraYanchen Dong, Ruiqin Xiong, Jing Zhao, Jian Zhang et al.AAAI 2024 · 18 citations
- High Dynamic Range Imaging with Time-Encoding Spike CameraZhenkun Zhu, Ruiqin Xiong, Jiyu Xie, Yuanlin Wang et al.NeurIPS 2025
- Boosting Spike Camera Image Reconstruction from a Perspective of Dealing with Spike FluctuationsRui Zhao, Ruiqin Xiong, Jing Zhao, Jian Zhang et al.CVPR 2024
- Spk2SRImgNet: Super-Resolve Dynamic Scene from Spike Stream via Motion Aligned Collaborative FilteringYuanlin Wang, Yiyang Zhang, Ruiqin Xiong, Jing Zhao et al.CVPR 2025
Builds on11
- Unfolding the Alternating Optimization for Blind Super ResolutionZhengxiong Luo, Yan Huang, Shang Li, Liang Wang et al.NeurIPS 2020 · 348 citations
- XVFI: eXtreme Video Frame InterpolationHyeonjun Sim, Jihyong Oh, Munchurl KimICCV 2021 · 207 citations
- NeuSpike-Net: High Speed Video Reconstruction via Bio-inspired Neuromorphic CamerasLin Zhu, Jianing Li, Xiao Wang, Tiejun Huang et al.ICCV 2021 · 55 citations
- Deep Event Stereo Leveraged by Event-to-Image TranslationSoikat Hasan Ahmed, Hae Woong Jang, S. M. Nadim Uddin, Yong Ju JungAAAI 2021 · 41 citations
- Learning to Super Resolve Intensity Images From EventsS. Mohammad Mostafavi I., Jonghyun Choi, Kuk-Jin YoonCVPR 2020
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- Spk2VidNet: A Hierarchical Recurrent Architecture for High-Fidelity Video Reconstruction from Long Spike-Camera StreamsYuanlin Wang, Ruiqin Xiong, Jiyu Xie, Zhenkun Zhu et al.CVPR 2026
- Super Resolve Dynamic Scene from Continuous Spike StreamsJing Zhao, Jiyu Xie, Ruiqin Xiong, Jian Zhang et al.ICCV 2021 · 42 citations
- Super-Resolution Reconstruction from Bayer-Pattern Spike StreamsYanchen Dong, Ruiqin Xiong, Jian Zhang, Zhaofei Yu et al.CVPR 2024
- Spatio-Temporal Interactive Learning for Efficient Image Reconstruction of Spiking CamerasBin Fan, Jiaoyang Yin, Yuchao Dai, Chao Xu et al.NeurIPS 2024 · 7 citations
- Spk2ImgNet: Learning To Reconstruct Dynamic Scene From Continuous Spike StreamJing Zhao, Ruiqin Xiong, Hangfan Liu, Jian Zhang et al.CVPR 2021
