Correlation estimation for distributed wireless video communication

Xiaoliang Zhu, N. Zhang, Xiaopeng Fan, Ruiqin Xiong, Debin Zhao
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Abstract

One important problem in distributed video coding is to estimate the variance of the correlation noise between the video signal and its decoder side information. This variance is hard to estimate due to the lack of the motion vectors at the encoder side. In this paper, we first propose a linear model to estimate this variance by referring the zero motion prediction at the encoder based on a Markov field assumption. Furthermore, not only the prediction noise from the video signal itself but also the additional noise due to wireless transmission is considered in this paper. We applied our correlation estimation method in our recent distributed wireless visual communication framework called DCAST. The experimental results show that the proposed method improves the video PSNR by 0.5-1.5dB while avoiding motion estimation at encoder.
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分布式无线视频通信的相关估计
分布式视频编码的一个重要问题是估计视频信号与其解码器侧信息之间的相关噪声的方差。由于编码器侧缺乏运动向量,这种方差很难估计。在本文中,我们首先提出了一个线性模型来估计这个方差参考零运动预测在编码器基于马尔可夫场假设。此外,本文不仅考虑了视频信号本身的预测噪声,还考虑了由于无线传输而产生的附加噪声。我们将相关估计方法应用到最新的分布式无线视觉通信框架DCAST中。实验结果表明,该方法在避免编码器运动估计的情况下,将视频的PSNR提高了0.5 ~ 1.5 db。
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