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Low bit-rate compression of video and light-field data using coded snapshots and learned dictionaries

机译:使用编码快照和学习词典对视频和光场数据进行低比特率压缩

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The method of coded snapshots has been proposed recently for compressive acquisition of video data to overcome the space-time trade-of inherent in video acquisition. The method involves modulation of the light entering the video camera at different time instants during the exposure period by means of a different and randomly generated code pattern at each of those time instants, followed by integration across time, leading to a single coded snapshot image. Given this image and knowledge of the random codes, it is possible to reconstruct the underlying video frames - by means of sparse coding on a suitably learned dictionary. In this paper, we apply a modified version of this idea, proposed formerly in the compressive sensing literature, to the task of compression of videos and light-field data. At low bit rates, we demonstrate markedly better reconstruction fidelity for the same storage costs, in comparison to JPEG2000 and MPEG-4 (H.264) on light-field and video data respectively. Our technique can cope with overlapping blocks of image data, thereby leading to suppression of block artifacts.
机译:最近已经提出了编码快照的方法用于视频数据的压缩获取,以克服视频获取中固有的时空权衡。该方法包括在曝光时间段期间的不同时刻,通过在每个时刻使用不同且随机生成的代码模式对进入摄像机的光进行调制,然后跨时间进行积分,从而生成单个已编码快照图像。给定该图像和随机码的知识,就有可能通过在适当学习的字典上进行稀疏编码来重建基础视频帧。在本文中,我们将先前在压缩感测文献中提出的这种想法的修改版本应用于视频和光场数据的压缩任务。在低比特率下,与分别在光场和视频数据上的JPEG2000和MPEG-4(H.264)相比,我们证明了在相同存储成本下的重建保真度明显更高。我们的技术可以处理重叠的图像数据块,从而抑制了块伪影。

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