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A dependable Slepian-Wolf coding based clustering algorithm for data aggregation in wireless sensor networks

机译:一种可靠的基于Slepian-Wolf编码的聚类算法,用于无线传感器网络中的数据聚合

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This paper considers the Slepian-Wolf coding based data aggregation problem and the corresponding dependable clustering problem in wireless sensor networks (WSNs). A dependable Slepian-Wolf coding based clustering (D-SWC) algorithm is proposed to provide dependable clustering against cluster-head failures. The proposed D-SWC algorithm attempts to elect a primary cluster head and a backup cluster head for each cluster member during clustering so that once a failure occurs to the primary cluster head the cluster members within the failed cluster can promptly switchover to the backup cluster head and thus recover the connectivity of the failed cluster to the data sink without waiting for the next-round clustering to be performed. Simulation results show that the D-SWC algorithm can effectively increase the amount of data transmitted to the data sink as compared with an existing non-dependable clustering algorithm for Slepian-Wolf coding based data aggregation in WSNs.
机译:本文考虑了基于斜坡编码的数据聚合问题以及无线传感器网络(WSN)中的相应可靠聚类问题。提出了一种可靠的斜坡编码编码的聚类(D-SWC)算法,以提供针对簇头故障的可靠聚类。所提出的D-SWC算法尝试在群集期间为每个群集成员选择主群集头和备份群集头,以便在主群集头发发生故障时,失败群集中的群集成员可以及时切换到备份群集头部因此,在不等待要执行下一轮聚类的情况下恢复失败群集的连接到数据宿。仿真结果表明,与WSNS中的基于斜坡狼编码的数据聚集的现有的不可依赖性聚类算法相比,D-SWC算法可以有效地增加传输到数据宿的数据量。

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