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Fuzzy based dynamic clustering in wireless sensor networks

机译:无线传感器网络中基于模糊的动态聚类

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In recent times the incorporation of Wireless Sensor Network (WSN) with Internet of Things (IoT) has become more conscientious for the researchers. The collection of enormous amount of homogenous sensor nodes forms the Wireless Sensor Network. These sensor nodes have restricted battery power and memory and so the limited amount of energy is considered as the major issue. To overcome this issue several mechanisms were proposed, among them clustering is a popular way which minimizes the consumption of energy in the sensor nodes and thus the life span of the Wireless Sensor Network can be increased. Grouping the sensor nodes in an energy efficient and distributed approach is considered as the important issue in clustering. Hotspots problem and energy hole problem are the problems faced by the non-distributed clustering. So in order to triumph over these issues, a Fuzzy Based Dynamic Clustering (FDC) in Wireless Sensor Network is proposed. Also a new fitness function for Particle Swarm Optimization (PSO) is proposed which discovers the possible cluster heads The hotspots problem and energy hole problem is overcome by the Fuzzy Inference System (FIS) which chooses unique radius for each cluster head thus unequal clustering is formed. A fair comparison is done between this proposed algorithm and some existing algorithms. The simulation results obtained reveals that our proposed algorithm increases the lifetime and has better energy efficiency.
机译:近年来,对于研究人员而言,将无线传感器网络(WSN)与物联网(IoT)的结合变得更加认真。大量同质传感器节点的集合构成了无线传感器网络。这些传感器节点的电池电量和内存受限制,因此,有限的能量被认为是主要问题。为了克服这个问题,提出了几种机制,其中群集是一种流行的方式,它可以最大程度地减少传感器节点中的能量消耗,从而可以增加无线传感器网络的寿命。以节能高效的分布式方法对传感器节点进行分组被视为群集中的重要问题。热点问题和能量孔问题是非分布式聚类所面临的问题。因此,为了克服这些问题,提出了无线传感器网络中的基于模糊的动态聚类(FDC)。提出了一种新的适应度函数PSO,发现了可能的聚类头。通过模糊推理系统(FIS)克服了热点和能量孔的问题,该系统为每个聚类头选择了唯一的半径,从而形成了不相等的聚类。 。在此提出的算法和一些现有算法之间进行了公平的比较。仿真结果表明,本文提出的算法可以延长使用寿命,并具有更好的能效。

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