Performance evaluation of censoring-enabled systems for sequential detection in large wireless sensor networks

Mohammed Karmoose, Karim G. Seddik, Ahmed Sultan
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引用次数: 1

Abstract

In this paper, we consider a sequential binary hypothesis testing framework in wireless sensor networks. We study the effect of sensor censoring on network performance in terms of the average error probability and average number of observations required until a global decision is made. The detection process is mathematically modeled as a random walk process with two absorbing barriers. We resort to Chernoff bound in order to find upper bounds on the error probabilities and the average stopping time. The main contribution of this paper is to prove that in a sequential binary hypothesis network where sensors send their hard decisions to the fusion center, censoring can enhance the network performance in comparison to non-censoring networks in certain SNR regimes. Numerical evaluation is provided to illustrate the gains achieved through censoring.
大型无线传感器网络中用于顺序检测的审查系统的性能评估
在本文中,我们考虑了无线传感器网络中的顺序二值假设检验框架。我们研究了传感器审查对网络性能的影响,包括平均错误概率和平均观测次数,直到做出全局决策。检测过程在数学上被建模为具有两个吸收屏障的随机游走过程。我们利用Chernoff界来求误差概率和平均停止时间的上界。本文的主要贡献是证明了在一个序列二值假设网络中,传感器将其困难决策发送到融合中心,在一定的信噪比下,与非审查网络相比,审查网络可以提高网络性能。给出了数值计算来说明通过滤波所获得的增益。
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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