无线传感器网络集群位置:一种概率推理方法

Yang Wang, Wenye Li, Y. Sun
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引用次数: 3

摘要

无线传感器网络是指一个空间分布的自主传感器系统,用于监测物理或环境条件,并通过网络协同将其数据传递到主要位置。随着无线传感器网络在工业和消费领域的广泛应用,无线传感器网络的研究近年来备受关注。本文主要研究传感器网络簇的定位问题。我们希望根据成对亲和度将传感器划分为不同的集群,并选择一些传感器作为header服务于同一集群中的相邻传感器。这种最优传感器头的检测是一个np困难问题,如果要保证可跟踪性,必须寻求近似解。我们提出了一种基于概率推理最新进展的快速解决方案。在我们的实验研究中,我们已经验证了该解决方案在大规模传感器网络中的潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Wireless sensor network cluster locations: A probabilistic inference approach
A wireless sensor network refers to a spatially distributed autonomous sensor system to monitor physical or environmental conditions and to cooperatively pass their data through the network to a main location. With many industrial and consumer applications, the study of of wireless sensor network has attracted much research attention recently. In this paper, we study the sensor network cluster location problem. We hope to divide the sensors into different clusters according to pairwise affinities and select a number of sensors to act as the headers to serve neighbouring sensors in the same cluster. The detection of such optimal sensor headers is an NP-hard problem and approximate solutions have to sought if tractability is to be ensured. We propose a fast solution based on the recent advances in probabilistic inference. In our experimental studies, we have verified the potential of the solution for large-scale sensor networks.
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