Memory-Efficient Network for Large-Scale Video Compressive Sensing
Ziheng Cheng, Bo Chen, Guanliang Liu, Hao Zhang, Ruiying Lu, Zhengjue Wang, Xin Yuan
摘要
Video snapshot compressive imaging (SCI) captures a sequence of video frames in a single shot using a 2D detector. The underlying principle is that during one exposure time, different masks are imposed on the high-speed scene to form a compressed measurement. With the knowledge of masks, optimization algorithms or deep learning methods are employed to reconstruct the desired high-speed video frames from this snapshot measurement. Unfortunately, though these methods can achieve decent results, the long running time of optimization algorithms or huge training memory occupation of deep networks still preclude them in practical applications. In this paper, we develop a memory-efficient network for large-scale video SCI based on multi-group reversible 3D convolutional neural networks. In addition to the basic model for the grayscale SCI system, we take one step further to combine demosaicing and SCI reconstruction to directly recover color video from Bayer measurements. Extensive results on both simulation and real data captured by SCI cameras demonstrate that our proposed model outperforms previous state-of-the-art with less memory and thus can be used in large-scale problems. The code is at https: //github.com/BoChenGroup/RevSCI-net .
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引用它的顶会 Paper13
- Self-supervised Neural Networks for Spectral Snapshot Compressive ImagingZiyi Meng, Zhenming Yu, Kun Xu, Xin YuanICCV 2021 · 被引用 120 次
- Dense Deep Unfolding Network with 3D-CNN Prior for Snapshot Compressive ImagingZhuoyuan Wu, Jian Zhang, Chong MouICCV 2021 · 被引用 75 次
- Deep Equilibrium Models for Snapshot Compressive ImagingYaping Zhao, Siming Zheng, Xin YuanAAAI 2023 · 被引用 29 次
- Deep Optics for Video Snapshot Compressive ImagingPing Wang, Lishun Wang, Xin YuanICCV 2023 · 被引用 19 次
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它引用的顶会 Paper5
- Deep Tensor ADMM-Net for Snapshot Compressive ImagingJiawei Ma, Xiao-Yang Liu, Zheng Shou, Xin YuanICCV 2019 · 被引用 218 次
- Coupling-based Invertible Neural Networks Are Universal Diffeomorphism ApproximatorsTakeshi Teshima, Isao Ishikawa, Koichi Tojo, Kenta Oono 等NeurIPS 2020 · 被引用 129 次
- Joint Demosaicing and Denoising With Self GuidanceLin Liu, Xu Jia, Jianzhuang Liu, Qi TianCVPR 2020
- Deep Gaussian Scale Mixture Prior for Spectral Compressive ImagingTao Huang, Weisheng Dong, Xin Yuan, Jinjian Wu 等CVPR 2021
- Plug-and-Play Algorithms for Large-Scale Snapshot Compressive ImagingXin Yuan, Yang Liu, Jin-Li Suo, Qionghai DaiCVPR 2020
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