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Power, spatio-temporal bandwidth, and distortion in large sensor networks

机译:大型传感器网络中的功率,时空带宽和失真

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For a class of sensor networks, the task is to monitor an underlying physical phenomenon over space and time through an imperfect observation process. The sensors can communicate back to a central data collector over a noisy channel. The key parameters in such a setting are the fidelity (or distortion) at which the underlying physical phenomenon can be estimated by the data collector, and the cost of operating the sensor network. This is a network joint source-channel communication problem, involving both compression and communication. It is well known that these two tasks may not be addressed separately without sacrificing optimality, and the optimal performance is generally unknown. This paper presents a lower bound on the best achievable end-to-end distortion as a function of the number of sensors, their total transmit power, the number of degrees of freedom of the underlying source process, and the spatio-temporal communication bandwidth. Particular coding schemes are studied, and it is shown that in some cases, the lower bound is tight in a scaling-law sense. By contrast, it is shown that the standard practice of separating source from channel coding may incur an exponential penalty in terms of communication resources, as a function of the number of sensors. Hence, such code designs effectively prevent scalability. Finally, it is outlined how the results extend to cases involving missing synchronization and channel fading.
机译:对于一类传感器网络,任务是通过不完善的观察过程监视整个空间和时间上的潜在物理现象。传感器可以通过嘈杂的通道通讯回中央数据收集器。这种设置中的关键参数是保真度(或失真),数据收集器可以估算出潜在的物理现象,以及操作传感器网络的成本。这是网络联合源通道通信问题,涉及压缩和通信。众所周知,在不牺牲最优性的情况下可能无法单独解决这两个任务,并且最优性能通常是未知的。本文提出了最佳可实现的端到端失真的下限,该失真取决于传感器的数量,它们的总发射功率,底层源处理的自由度数量以及时空通信带宽。研究了特定的编码方案,结果表明,在某些情况下,下限在缩放定律意义上是严格的。相比之下,示出了将源与信道编码分离的标准实践可能根据通信数量而导致根据通信资源的指数损失。因此,这样的代码设计有效地防止了可伸缩性。最后,概述了结果如何扩展到涉及缺少同步和信道衰落的情况。

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