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Distributed Remote Vector Gaussian Source Coding for Wireless Acoustic Sensor Networks

机译:用于无线声学传感器网络的分布式远程矢量高斯源编码

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In this paper, we consider the problem of remote vector Gaussian source coding for a wireless acoustic sensor network. Each node receives messages from multiple nodes in the network and decodes these messages using its own measurement of the sound field as side information. The node's measurement and the estimates of the source resulting from decoding the received messages are then jointly encoded and transmitted to a neighboring node in the network. We show that for this distributed source coding scenario, one can encode a so-called conditional sufficient statistic of the sources instead of jointly encoding multiple sources. We focus on the case where node measurements are in form of noisy linearly mixed combinations of the sources and the acoustic channel mixing matrices are invertible. For this problem, we derive the rate-distortion function for vector Gaussian sources and under covariance distortion constraints.
机译:在本文中,我们考虑了用于无线声学传感器网络的远程矢量高斯源编码的问题。每个节点从网络中的多个节点接收消息,并使用其自己的声场测量作为侧信息来解码这些消息。然后,节点的测量和由解码所接收的消息产生的源的估计被共同编码并发送到网络中的相邻节点。我们示出了对于这种分布式源编码场景,可以对源的所谓条件足够的统计来编码,而不是共同编码多个源。我们专注于节点测量以噪声的噪声线性混合组合形式的情况,并且声道混合矩阵可逆性。对于此问题,我们导出了矢量高斯源和协方差失真约束的速率失真函数。

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