Spatio-Temporal Interactive Learning for Efficient Image Reconstruction of Spiking Cameras
Bin Fan, Jiaoyang Yin, Yuchao Dai, Chao Xu, Tiejun Huang, Boxin Shi
摘要
The spiking camera is an emerging neuromorphic vision sensor that records high-speed motion scenes by asynchronously firing continuous binary spike streams. Prevailing image reconstruction methods, generating intermediate frames from these spike streams, often rely on complex step-by-step network architectures that overlook the intrinsic collaboration of spatio-temporal complementary information. In this paper, we propose an efficient spatio-temporal interactive reconstruction network to jointly perform inter-frame feature alignment and intra-frame feature filtering in a coarse-to-fine manner. Specifically, it starts by extracting hierarchical features from a concise hybrid spike representation, then refines the motion fields and target frames scale-by-scale, ultimately obtaining a full-resolution output. Meanwhile, we introduce a symmetric interactive attention block and a multi-motion field estimation block to further enhance the interaction capability of the overall network. Experiments on synthetic and real-captured data show that our approach exhibits excellent performance while maintaining low model complexity. The code is available at https://github.com/GitCVfb/STIR .
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引用它的顶会 Paper6
- Noise-Modeled Diffusion Models for Low-Light Spike Image RestorationRuonan Liu, Lin Zhu, Xijie Xiang, Lizhi Wang 等ICCV 2025 · 被引用 1 次
- Spike Stream Memory Transfer for Dynamic Scene ReconstructionYanchen Dong, Ruiqin Xiong, Rui Zhao, Xinfeng Zhang 等AAAI 2026
- MI-TRQR: Mutual Information-Based Temporal Redundancy Quantification and Reduction for Energy-Efficient Spiking Neural NetworksDengfeng Xue, Wenjuan Li, Yifan Lu, Chunfeng Yuan 等NeurIPS 2025
- 240FPS Stereo Vision from Monocular Mixed SpikesYeliduosi Xiaokaiti, Yakun Chang, Yang Bai, Zhaojun Huang 等CVPR 2026
- SpikeGen: Decoupled "Rods and Cones" Visual Representation Processing with Latent Generative FrameworkGaole Dai, Menghang Dong, Rongyu Zhang, Ruichuan An 等ICLR 2026
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