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Statistical analysis of optimal distributed detection fusion rule in wireless sensor networks

机译:无线传感器网络中最优分布式检测融合规则的统计分析

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The problem of optimal distributed detection in wireless sensor networks (WSNs) is revisited. The optimal fusion rule (OFR) of the local detection decisions is derived under the general case of unknown sensor nodes location and number. The OFR is usually used as a benchmark for comparison with other suboptimal fusion rules. However its performance is difficult to characterize due to the complexity of finding its probability distribution under both, null and alternative hypothesis. In this paper, this issue is addressed by instrumenting stochastic geometry to model the distributed detection system in WSNs. Under this framework, we are able to derive an insightful form of the characteristic function of the OFR. Furthermore, the first and second moments of OFR are accurately computed. Equipped with those moments, the OFR distribution is approximated by a Gamma and Gaussian distributions via moment matching method. Simulation results shows that the Gamma distribution fits the OFR distribution to high extent when compared with Gaussian distribution.
机译:再次探讨了无线传感器网络(WSN)中最佳分布式检测的问题。在未知传感器节点位置和数量的一般情况下,得出局部检测决策的最佳融合规则(OFR)。 OFR通常用作与其他次优融合规则进行比较的基准。但是,由于在原假设和替代假设下都很难找到其概率分布,因此很难表征其性能。在本文中,通过检测随机几何来为WSN中的分布式检测系统建模来解决此问题。在此框架下,我们能够得出OFR特征功能的有见地的形式。此外,可以精确地计算OFR的第一时刻和第二时刻。配备了这些矩,ORF分布通过矩匹配方法由Gamma和高斯分布近似。仿真结果表明,与高斯分布相比,Gamma分布在很大程度上拟合了OFR分布。

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