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Estimation of measurements for block-based compressed video sensing: study of correlation noise in measurement domain

机译:基于块的压缩视频感测的测量估计:测量域中的相关噪声研究

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摘要

Compressed video sensing (CVS) is an application of compressed sensing theory which samples a signal below the Shannon-Nyquist rate. However, previous research about CVS has largely ignored the inter-frame correlation analysis in the measurement domain, and then is not able to remove the time redundancy. In this study, the authors consider the estimation of the measurements of a block in any possible position in a frame by introducing a correlation noise (CN) between the actual and the estimated measurements. In this work, they first establish a correlation model (CM) in the pixel domain between a block which is in a random unknown position in a frame and the adjacent non-overlapping blocks that they already have. Then, a novel measurement domain CM is presented to approximate the measurements for the random block. Lastly, they employ the CN to characterise the accuracy of the CM in the measurement domain. The simulation results show that the proposed model can make an accurate estimation to the actual measurements of an arbitrary block in a frame and that by using the proposed CN to perform motion estimation, they can improve the peak signal-to-noise ratio of the video sequences by 0.1-1.7 dB compared with the existing methods.
机译:压缩视频感测(CVS)是压缩感测理论的一种应用,它对低于Shannon-Nyquist速率的信号进行采样。然而,先前关于CVS的研究在很大程度上忽略了测量域中的帧间相关性分析,因此不能消除时间冗余。在这项研究中,作者考虑了通过在实际测量值和估计测量值之间引入相关噪声(CN)来估计帧中任何可能位置的块测量值的估计。在这项工作中,他们首先在帧中处于随机未知位置的块与它们已经具有的相邻非重叠块之间的像素域中建立相关模型(CM)。然后,提出了一种新颖的测量域CM来近似随机块的测量。最后,他们使用CN来表征CM在测量域中的准确性。仿真结果表明,所提出的模型可以对帧中任意块的实际测量值做出准确的估计,并且通过使用所提出的CN进行运动估计,可以提高视频的峰值信噪比。与现有方法相比,其音序可以降低0.1-1.7 dB。

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