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FRCA: A Fuzzy Relevance-Based Cluster Head Selection Algorithm for Wireless Mobile Ad-Hoc Sensor Networks

机译:FRCA:无线移动自组网传感器网络的基于模糊关联的簇头选择算法

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Clustering is an important mechanism that efficiently provides information for mobile nodes and improves the processing capacity of routing, bandwidth allocation, and resource management and sharing. Clustering algorithms can be based on such criteria as the battery power of nodes, mobility, network size, distance, speed and direction. Above all, in order to achieve good clustering performance, overhead should be minimized, allowing mobile nodes to join and leave without perturbing the membership of the cluster while preserving current cluster structure as much as possible. This paper proposes a Fuzzy Relevance-based Cluster head selection Algorithm (FRCA) to solve problems found in existing wireless mobile ad hoc sensor networks, such as the node distribution found in dynamic properties due to mobility and flat structures and disturbance of the cluster formation. The proposed mechanism uses fuzzy relevance to select the cluster head for clustering in wireless mobile ad hoc sensor networks. In the simulation implemented on the NS-2 simulator, the proposed FRCA is compared with algorithms such as the Cluster-based Routing Protocol (CBRP), the Weighted-based Adaptive Clustering Algorithm (WACA), and the Scenario-based Clustering Algorithm for Mobile ad hoc networks (SCAM). The simulation results showed that the proposed FRCA achieves better performance than that of the other existing mechanisms.
机译:群集是一种重要的机制,可以有效地为移动节点提供信息,并提高路由,带宽分配以及资源管理和共享的处理能力。聚类算法可以基于以下标准:节点的电池电量,移动性,网络大小,距离,速度和方向。最重要的是,为了获得良好的群集性能,应将开销最小化,以使移动节点可以在不影响群集成员的情况下加入和离开,同时尽可能保留当前的群集结构。本文提出了一种基于模糊关联的簇头选择算法(FRCA),以解决现有无线移动自组织传感器网络中发现的问题,例如由于移动性和平坦结构以及簇形成的干扰而在动态属性中发现的节点分布。所提出的机制使用模糊相关性来选择簇头以用于无线移动自组织传感器网络中的簇。在NS-2仿真器上进行的仿真中,将提出的FRCA与基于集群的路由协议(CBRP),基于加权的自适应集群算法(WACA)和基于场景的移动集群算法等算法进行了比较。自组织网络(SCAM)。仿真结果表明,所提出的FRCA比其他现有机制具有更好的性能。

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