An estimator model for distributed estimation in heterogenous wireless sensor networks

Shanying Zhu, Cailian Chen, X. Guan, C. Long
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引用次数: 5

Abstract

In this paper, we deal with distributed estimation using consensus algorithms for heterogenous wireless sensor networks (WSNs). To accommodate with the heterogeneity, we introduce a novel distributed estimator to track the weighted average of the input signals. Different from existing models, we consider a more practical scenario to take account of hierarchical processing abilities of different sensors: type-I sensors with high processing ability and type-II senors with low processing ability for distributed sensor fusion in WSNs. We investigate the properties of our model and illustrate the feasibility of the proposed estimator via a case study where we use the estimator to track the weighted average of a noisy time-varying signal based on the sensors' noisy and distorted measurements. Convergence analysis in this scenario is given as well as the effect of network topology and estimator parameters are also studied. Simulation results are provided to demonstrate the performance and effectiveness of the proposed estimator.
异构无线传感器网络中分布式估计器模型
在本文中,我们使用一致性算法处理异构无线传感器网络(WSNs)的分布式估计。为了适应非均匀性,我们引入了一种新的分布式估计器来跟踪输入信号的加权平均值。与现有模型不同,我们考虑了一种更实际的场景,考虑了不同传感器的分层处理能力:具有高处理能力的i型传感器和处理能力较低的ii型传感器。我们研究了我们的模型的性质,并通过一个案例研究说明了所提出的估计器的可行性,在这个案例研究中,我们使用估计器来跟踪基于传感器的噪声和失真测量的噪声时变信号的加权平均值。给出了这种情况下的收敛性分析,并研究了网络拓扑结构和估计器参数的影响。仿真结果验证了该估计器的性能和有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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