Super-Resolution Reconstruction from Bayer-Pattern Spike Streams
Yanchen Dong, Ruiqin Xiong, Jian Zhang, Zhaofei Yu, Xiaopeng Fan, Shuyuan Zhu, Tiejun Huang
Abstract
Spike camera is a neuromorphic vision sensor that can capture highly dynamic scenes by generating a continuous stream of binary spikes to represent the arrival of photons at very high temporal resolution. Equipped with Bayer color filter array (CFA), color spike camera (CSC) has been invented to capture color information. Although spike camera has already demonstrated great potential for highspeed imaging, its spatial resolution is limited compared with conventional digital cameras. This paper proposes a Color Spike Camera Super-Resolution (CSCSR) network to super-resolve higher-resolution color images from spike camera streams with Bayer CFA. To be specific, we first propose a representation for Bayer-pattern spike streams, exploring local temporal information with global perception to represent the binary data. Then we exploit the CFA layout and sub-pixel level motion to collect temporal pixels for the spatial super-resolution of each color channel. In particular, a residual-based module for feature refinement is developed to reduce the impact of motion estimation errors. Considering color correlation, we jointly utilize the multi-stage temporal-pixel features of color channels to reconstruct the high-resolution color image. Experimental results demonstrate that the proposed scheme can reconstruct satisfactory color images with both high temporal and spatial resolution from low-resolution Bayerpattern spike streams. The source codes are available at https://github.com/csycdong/CSCSR .
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Install the CLIlune papers fulltext 80c6a486-c755-4b4f-bb6d-72357a8ea098Cited by top-tier papers4
- High Dynamic Range Imaging with Time-Encoding Spike CameraZhenkun Zhu, Ruiqin Xiong, Jiyu Xie, Yuanlin Wang et al.NeurIPS 2025
- Spk2SRImgNet: Super-Resolve Dynamic Scene from Spike Stream via Motion Aligned Collaborative FilteringYuanlin Wang, Yiyang Zhang, Ruiqin Xiong, Jing Zhao et al.CVPR 2025
- Self-Supervised Learning for Color Spike Camera ReconstructionYanchen Dong, Ruiqin Xiong, Xiaopeng Fan, Zhaofei Yu et al.CVPR 2025
- Exploiting Blurry Representations for Event-guided Video Super-ResolutionZeyu Xiao, Xinchao WangAAAI 2026
Builds on15
- 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
- Learning Optical Flow from Continuous Spike StreamsRui Zhao, Ruiqin Xiong, Jing Zhao, Zhaofei Yu et al.NeurIPS 2022 · 49 citations
- Super Resolve Dynamic Scene from Continuous Spike StreamsJing Zhao, Jiyu Xie, Ruiqin Xiong, Jian Zhang et al.ICCV 2021 · 42 citations
- Learning Temporal-Ordered Representation for Spike Streams Based on Discrete Wavelet TransformsJiyuan Zhang, Shanshan Jia, Zhaofei Yu, Tiejun HuangAAAI 2023 · 33 citations
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