无线传感器网络中分布式估计的概率传输方案

E. Masazade, R. Niu, P. Varshney, Mehmet Keskinöz
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引用次数: 4

摘要

本文提出了一种用于无线传感器网络中分布式参数估计的概率传输方案。假设传感器观测噪声是高斯分布,统计量不相同,融合中心不知道传感器的噪声统计量。每个传感器采用数据率来量化其模拟测量,这是其信噪比(SNR)的函数。为了不超过可用容量,对于每一个可能的数据速率,将量化后的传感器数据以一定的传输概率发送到融合中心。在总带宽和网络利用率约束下,通过最小化估计的平均费雪信息的逆,构造了一个优化问题,以求各数据速率的最优传输概率。仿真结果表明,在严格的带宽可用性条件下,所提出的概率传输方案优于总带宽在传感器间平均分配的方案。最优传输概率的分配方式使具有高信噪比的传感器具有传输数据的优先权,并且均方估计误差非常接近于所有传感器以最大数据速率传输的情况。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A probabilistic transmission scheme for distributed estimation in wireless sensor networks
In this paper, we propose a probabilistic transmission scheme for distributed parameter estimation in wireless sensor networks. We assume that sensor observation noises are Gaussian distributed with non-identical statistics and the fusion center does not know the sensors' noise statistics. Each sensor employs a data rate to quantize its analog measurement that is a function of its signal-to-noise ratio (SNR). In order not to exceed the available capacity, for each possible data rate, the quantized sensor data are sent to the fusion center with a certain transmission probability. Under total bandwidth and network utilization constraints, we formulate an optimization problem to find the optimal transmission probabilities of each data rate by minimizing the inverse of the average Fisher information of the estimate. Under stringent availability of bandwidth, simulation results show that the proposed probabilistic transmission scheme outperforms the scheme where the total bandwidth is equally distributed among sensors. The optimal transmission probabilities are assigned in such a way that the sensors with high SNR have priority to transmit their data, and the mean squared estimation error is quite close to the case where all the sensors transmit at the maximum data rate.
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