Compressive Sensing Based Data Gathering in Clustered Wireless Sensor Networks

M. Nguyen, K. Teague
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引用次数: 39

Abstract

In this paper, we study the integration between Compressed Sensing (CS) and clustering methods in Wireless Sensor Networks (WSNs) that significantly reduce power consumption for the networks. In theory, a base station (BS) needs to collect M measurements from the network with N sensors, then applies CS to obtain precisely all N sensor readings. In clustered networks, a cluster-head (CH) collects data from non-CH sensors in its cluster, adds all received and its own data then send the combined measurement to the BS. We further analyze the clustered network with the measurement matrix created by clustering methods, and formulate the total power consumption. Finally, we suggest the optimal number of clusters for the networks consume the least power in practice.
基于压缩感知的聚类无线传感器网络数据采集
本文研究了无线传感器网络(WSNs)中压缩感知(CS)和聚类方法的集成,从而显著降低了网络的功耗。理论上,基站(BS)需要从N个传感器的网络中收集M个测量值,然后应用CS精确地获得所有N个传感器的读数。在集群网络中,簇头(CH)从其集群中的非CH传感器收集数据,将所有接收到的数据和自己的数据相加,然后将综合测量结果发送给BS。进一步利用聚类方法生成的测量矩阵对聚类网络进行分析,得出总功耗。最后,我们建议网络的最佳集群数量在实践中消耗最少的功率。
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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