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Multi-level clustering protocol for load-balanced and scalable clustering in large-scale wireless sensor networks

机译:用于大规模无线传感器网络中负载均衡和可扩展群集的多级群集协议

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摘要

The advent of wireless sensor networks (WSNs) has revolutionized the field of smart applications. In order to improve the performance of WSNs, refinement of clustering and routing protocols can make a vast difference. Existing classical and evolutionary optimization technique-based protocols have high computational complexity since clustering and routing problems are solved separately. Moreover, these protocols suffer from hot-spot problem due to uneven formation of clusters. In this paper, we propose a multi-level clustering protocol (MLCP) for energy-efficient data gathering in large-scale WSNs. Additionally, a hierarchical clustering architecture is designed in MLCP to jointly solve the problems of clustering and routing. Further, for the purpose of cluster head selection, a hybrid dragonfly algorithm-based particle swarm optimization technique is proposed which combines the exploration and exploitation capabilities of dragonfly algorithm and particle swarm optimization, respectively. MLCP considers intra-cluster distance, node degree and inter-cluster distance for the formation of scalable, load-balanced and energy-efficient clusters. To demonstrate the full potential of MLCP, network simulations have been carried out in diverse network conditions. MLCP has shown up to 90% increase in the network lifetime and an improvement of 19.36% in conservation of energy in comparison with the competent protocols. The comparison of obtained results with state-of-the-art clustering protocols clearly establishes the superiority of MLCP in achieving load-balanced, scalable and energy-efficient clustering.
机译:无线传感器网络(WSN)的出现彻底改变了智能应用领域。为了提高WSN的性能,对群集和路由协议的完善可以带来巨大的不同。现有的基于经典和进化优化技术的协议具有很高的计算复杂度,因为聚类和路由问题是分别解决的。而且,这些协议由于簇的不均匀形成而遭受热点问题的困扰。在本文中,我们提出了一种用于大型WSN的节能数据收集的多层群集协议(MLCP)。此外,在MLCP中设计了一个层次化的群集体系结构,以共同解决群集和路由问题。此外,出于簇头选择的目的,提出了一种基于混合蜻蜓算法的粒子群优化技术,该技术结合了蜻蜓算法和粒子群优化的探索和开发能力。 MLCP考虑群集内距离,节点度和群集间距离,以形成可扩展,负载平衡和节能的群集。为了展示MLCP的全部潜力,已经在各种网络条件下进行了网络仿真。与主管协议相比,MLCP的网络寿命提高了90%,节能量提高了19.36%。将获得的结果与最新的群集协议进行比较,可以清楚地确定MLCP在实现负载平衡,可伸缩和高能效群集方面的优势。

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