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Energy-Balancing Unequal Clustering Approach to Reduce the Blind Spot Problem in Wireless Sensor Networks (WSNs)

机译:能量平衡不均等聚类方法以减少无线传感器网络(WSN)中的盲区问题

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摘要

Wireless Sensor Networks (WSNs) have become a significant part of surveillance techniques. With unequal clustering approaches and multi-hop communication, WSNs can balance energy among the clusters and serve a wide monitoring area. Recent research has shown significant improvements in unequal clustering approaches by forming clusters prior to the selection of cluster heads. These improvements adopt different geometric fractals, such as the Sierpinski triangle, to divide the monitoring area into multiple clusters. However, performance of such approaches can be improved further by cognitive partitioning of the monitoring area instead of adopting random fractals. This paper proposes a novel clustering approach that partitions the monitoring area in a cognitive way for balancing the energy consumption. In addition, the proposed approach adopts a two-layered scrutinization process for the selection of cluster heads that ensures minimum energy consumption from the network. Furthermore, it reduces the blind spot problem that escalates once the nodes start dying. The proposed approach has been tested in terms of number of alive nodes per round, energy consumption of nodes and clusters, and distribution of alive nodes in the network. Results show a significant improvement in balancing the energy consumption among clusters and a reduction in the blind spot problem.
机译:无线传感器网络(WSN)已成为监视技术的重要组成部分。通过不平等的群集方法和多跳通信,WSN可以平衡群集之间的能量并服务于广泛的监视区域。最近的研究表明,通过在选择簇头之前形成簇,可以显着改善不平等的簇方法。这些改进采用不同的几何分形(例如Sierpinski三角形)将监视区域划分为多个群集。但是,可以通过对监视区域进行认知分区而不是采用随机分形来进一步提高此类方法的性能。本文提出了一种新颖的聚类方法,该方法以认知方式划分监视区域以平衡能耗。此外,所提出的方法采用了两层仔细检查过程来选择簇头,以确保从网络中获得最低的能耗。此外,它还减少了一旦节点开始死亡就加剧的盲点问题。已针对每轮活动节点数,节点和群集的能耗以及网络中活动节点的分布进行了测试。结果表明,在平衡集群之间的能耗和减少盲点问题方面,有了显着的改进。

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