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Distortion sum-rate performance of successive coding strategy in Gaussian wireless sensor networks

机译:高斯无线传感器网络连续编码策略的扭曲和速率性能

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In this paper, we investigate the distortion sum-rate performance of the successive coding strategy in the so-called quadratic Gaussian CEO problem. In the CEO problem, the central unit or the CEO desires to obtain an optimal estimate of the source signal. Since the source cannot be observed directly, L sensors will be deployed to observe independently corrupted versions of the source. They communicate information about their observations to the CEO through rate constrained noiseless channels without cooperating with each other. We consider a distributed sensor network consisting of two sensors with different noise levels and derive the minimum achievable distortion under a sum-rate constraint using the successive coding strategy of S.C. Draper and G.W. Wornell (2004). We also demonstrate that the best way to achieve minimum distortion under a sum-rate constraint is to allocate more rate to the sensor with higher quality of observation in a generalized water-filling manner. The fractional rate allocation is approximately 1/2 if the sum-rate _R is large. Thus, we can simplify rate allocation problem in a general parallel sensor network with L sensors by assigning equal rates to sensors, provided the average rate per sensor node is large. We show that this scheme may not cause a large extra distortion compared with the minimum achievable distortion. Finally, we consider the problem of combining source and channel coding in sensor networks. Two paradigms are considered, Shannon's separation paradigm and joint source-channel coding paradigm. We obtain the distortion-power tradeoffs for both coding paradigms in the Gaussian sensor network with multiple access channel.
机译:在本文中,我们研究了所谓的二次高斯CEO问题中连续编码策略的失真和速率性能。在CEO问题中,中央单元或CEO希望获得源信号的最佳估计。由于无法直接观察到源,因此将部署L传感器以观察到的源的独立损坏版本。他们通过速率约束无噪声渠道向首席执行官传达有关他们的观察的信息,而不互相协作。我们考虑由两个传感器组成的分布式传感器网络,该传感器包括具有不同噪声水平的传感器,并使用S.C.Droper和G.W的连续编码策略来推导到总和限制下的最小可实现的失真。 Wordell(2004)。我们还表明,在SUM率约束下实现最小失真的最佳方法是以普遍的水填充方式具有更高质量的观察质量的传感器来分配更多的速率。如果总和速率_R大,则分数率分配约为1/2。因此,我们可以通过分配给传感器的等速率来简化一般并联传感器网络中的汇率分配问题,提供每个传感器节点的平均速率。我们表明,与最小可实现的失真相比,该方案可能不会导致大规模的额外失真。最后,我们考虑在传感器网络中组合源和信道编码的问题。考虑了两个范式,香农分离范式和联合源通道编码范式。我们获得了具有多个访问通道的高斯传感器网络中的编码范例的畸变功率折衷。

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