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基于像素编码曝光的高速成像高效时空采样。

Efficient space-time sampling with pixel-wise coded exposure for high-speed imaging.

机构信息

Rochester Institute of Technology, Rochester.

Sony Corporation, Tokyo.

出版信息

IEEE Trans Pattern Anal Mach Intell. 2014 Feb;36(2):248-60. doi: 10.1109/TPAMI.2013.129.

Abstract

Cameras face a fundamental trade-off between spatial and temporal resolution. Digital still cameras can capture images with high spatial resolution, but most high-speed video cameras have relatively low spatial resolution. It is hard to overcome this trade-off without incurring a significant increase in hardware costs. In this paper, we propose techniques for sampling, representing, and reconstructing the space-time volume to overcome this trade-off. Our approach has two important distinctions compared to previous works: 1) We achieve sparse representation of videos by learning an overcomplete dictionary on video patches, and 2) we adhere to practical hardware constraints on sampling schemes imposed by architectures of current image sensors, which means that our sampling function can be implemented on CMOS image sensors with modified control units in the future. We evaluate components of our approach, sampling function and sparse representation, by comparing them to several existing approaches. We also implement a prototype imaging system with pixel-wise coded exposure control using a liquid crystal on silicon device. System characteristics such as field of view and modulation transfer function are evaluated for our imaging system. Both simulations and experiments on a wide range of scenes show that our method can effectively reconstruct a video from a single coded image while maintaining high spatial resolution.

摘要

相机在空间分辨率和时间分辨率之间面临着基本的权衡。数字静态相机可以捕获具有高空间分辨率的图像,但大多数高速摄像机的空间分辨率相对较低。如果不显著增加硬件成本,就很难克服这种权衡。在本文中,我们提出了用于采样、表示和重建时空体的技术,以克服这种权衡。与以前的工作相比,我们的方法有两个重要的区别:1)我们通过在视频补丁上学习过完备字典来实现视频的稀疏表示,2)我们坚持当前图像传感器架构对采样方案施加的实际硬件约束,这意味着我们的采样函数可以在未来具有修改后的控制单元的 CMOS 图像传感器上实现。我们通过将采样函数和稀疏表示与几种现有方法进行比较来评估我们方法的各个组成部分。我们还使用硅上液晶设备实现了具有像素级编码曝光控制的原型成像系统。评估了我们成像系统的视场和调制传递函数等系统特性。广泛场景的模拟和实验均表明,我们的方法可以在保持高空间分辨率的同时,从单个编码图像中有效重建视频。

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