An energy-efficient clustering algorithm for large scale wireless sensor networks

Maryam Soleimani, A.R. Sharifian, A. Fanian
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引用次数: 1

Abstract

Wireless sensor networks (WSNs) consist of a large number of sensor nodes with limited energy resources. Collecting and transmitting sensed information in an efficient way is one of the challenges in these networks. The clustering algorithm is a solution to reduce energy consumption. It can be helpful to the scalability and network life time. However, the problem of unbalanced energy dissipation is an important issue in cluster based WSNs. In this paper, a new clustering algorithm, named PDKC, is proposed for wireless sensor networks based on node deployment knowledge. However, in PDKC, sensor node location is modelled by Gaussian probability distribution function instead of using GPSs or any other location-aware devices. In the proposed method, cluster heads are selected based on node deployment information, residual energy, node degree and their distance from the base station. The Simulation results indicate that PDKC algorithm prolongs network lifetime, improves the network coverage and balance energy dissipation in comparison to other works.
大规模无线传感器网络的高效聚类算法
无线传感器网络(WSNs)由大量传感器节点组成,而这些节点的能量有限。如何有效地收集和传输传感信息是这些网络面临的挑战之一。聚类算法是降低能耗的一种解决方案。它可以帮助提高网络的可伸缩性和使用寿命。然而,在基于簇的无线传感器网络中,能量耗散不平衡问题是一个重要的问题。本文提出了一种基于节点部署知识的无线传感器网络聚类算法PDKC。然而,在PDKC中,传感器节点的位置是通过高斯概率分布函数来建模的,而不是使用gps或任何其他位置感知设备。该方法根据节点部署信息、剩余能量、节点度及其与基站的距离选择簇头。仿真结果表明,与其他算法相比,PDKC算法延长了网络寿命,提高了网络覆盖率,平衡了能量消耗。
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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