Optimal sensor deployment for distributed detection in the presence of channel fading

S. Jayaweera, T. Wimalajeewa
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引用次数: 5

Abstract

The problem of optimal (fixed) wireless sensor network (WSN) design for distributed detection of a randomly-located target is addressed. This is an extension of the previous work reported in [1] where the problem was addressed for a one-dimensional (1D) network assuming wireless channels between sensors and the fusion center undergo only the path-loss attenuation. In this paper we consider both one and two-dimensional (2-D), equi-spaced WSN models in the presence of short-term fading in addition to path-loss attenuation. The target is assumed to be exponentially distributed with a known mean. The optimal inter-node spacing is derived by optimizing the Bhattacharya bound on the error probability of the Bayesian detector. In the presence of fading, it is shown that the optimal node placement depends on the channel SNR, path loss exponent and the mean target location. However, we show that for low channel SNRpsilas, the optimal spacing obtained for no fading case, which is only a function of path-loss exponent and the mean target location, is a good approximation to that with fading. In particular, it is not a function of the channel SNR. It is shown that in many cases the deviation from optimal inter-node spacing can cost significant performance penalty. From numerical results, it is verified that the optimal inter-node spacing obtained based on the Bhattacharya bound holds true if the performance measure were to be the exact fusion error probability.
信道衰落情况下分布式检测的最优传感器部署
研究了用于随机目标分布检测的无线传感器网络(WSN)优化设计问题。这是先前在[1]中报道的工作的扩展,在[1]中,该问题是针对一维(1D)网络解决的,假设传感器和融合中心之间的无线信道仅经历路径损耗衰减。在本文中,我们考虑了一维和二维(2-D)等间距WSN模型,除了路径损耗衰减之外,还存在短期衰落。假设目标呈指数分布,均值已知。通过对贝叶斯检测器误差概率的Bhattacharya界进行优化,得到最优节点间距。在存在衰落的情况下,最优节点位置取决于信道信噪比、路径损耗指数和平均目标位置。然而,我们证明了对于低信道SNRpsilas,在无衰落情况下得到的最优间距仅是路径损耗指数和平均目标位置的函数,与有衰落情况下的最优间距是很好的近似。特别是,它不是信道信噪比的函数。结果表明,在许多情况下,偏离最优节点间间隔会造成显著的性能损失。数值结果验证了以精确的融合误差概率作为性能度量时,基于Bhattacharya界得到的最优节点间距是成立的。
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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