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Load Balancing in Region Based Clustering for Heterogeneous Environment in WSNs Using AI Techniques

机译:WSN中基于异构环境的WSN集群负载均衡

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Wireless Sensor Networks (WSNs) contains a large number of sensor nodes with restricted energy. The sensing and transmitting of data involves a huge amount of energy consumption. Therefore, Clustering is considered as one of the powerful approaches for efficient utilization of energy. The heterogeneous environment contains different types of sensor nodes in term of sensing, computation, communication and power. The proposed Load Balancing in Region Based Clustering approach is used to balance the load of super nodes regions by dividing the region of super nodes into levels and levels into clusters using inverted binary tree concept to optimize Cluster Head (CH) selection using Fuzzy Logic Techniques. The Unequal Region Based clustering approach is used to deploy different types of sensor nodes in different region to provide efficient utilization of coverage area. Hybrid routing is used for transmitting data to Base Station (BS). The protocol optimizes the number of CH selection and balance the load of CH. The lifetime of the network is improved by efficient utilization of energy.
机译:无线传感器网络(WSN)包含大量能量受限的传感器节点。数据的感测和传输涉及大量的能量消耗。因此,聚类被认为是有效利用能源的有力方法之一。异构环境在感测,计算,通信和功率方面包含不同类型的传感器节点。提出的基于区域的群集中的负载平衡方法用于通过使用反向二叉树概念将超级节点的区域划分为多个级别并将多个级别划分为多个群集来平衡超级节点区域的负载,从而使用模糊逻辑技术优化群集头(CH)的选择。基于不平等区域的聚类方法用于在不同区域中部署不同类型的传感器节点,以提供对覆盖区域的有效利用。混合路由用于将数据传输到基站(BS)。该协议优化了CH选择的数量并平衡了CH的负载。通过有效利用能源,可以改善网络的使用寿命。

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