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A Hybrid Optimized Weighted Minimum Spanning Tree for the Shortest Intrapath Selection in Wireless Sensor Network

机译:无线传感器网络中最短路径内选择的混合优化加权最小生成树

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Wireless sensor network (WSN) consists of sensor nodes that need energy efficient routing techniques as they have limited battery power, computing, and storage resources. WSN routing protocols should enable reliable multihop communication with energy constraints. Clustering is an effective way to reduce overheads and when this is aided by effective resource allocation, it results in reduced energy consumption. In this work, a novel hybrid evolutionary algorithm called Bee Algorithm-Simulated Annealing Weighted Minimal Spanning Tree (BASA-WMST) routing is proposed in which randomly deployed sensor nodes are split into the best possible number of independent clusters with cluster head and optimal route. The former gathers data from sensors belonging to the cluster, forwarding them to the sink. The shortest intrapath selection for the cluster is selected using Weighted Minimum Spanning Tree (WMST). The proposed algorithm computes the distance-based Minimum Spanning Tree (MST) of the weighted graph for the multihop network. The weights are dynamically changed based on the energy level of each sensor during route selection and optimized using the proposed bee algorithm simulated annealing algorithm.
机译:无线传感器网络(WSN)由需要节能路由技术的传感器节点组成,因为它们的电池电量,计算和存储资源有限。 WSN路由协议应启用具有能量约束的可靠多跳通信。群集是一种减少开销的有效方法,并且在有效的资源分配的帮助下,它可以减少能耗。在这项工作中,提出了一种新的混合进化算法,称为蜜蜂算法模拟退火加权最小生成树(BASA-WMST)路由,其中​​随机部署的传感器节点被分为具有簇头和最优路由的独立簇的最佳数量。前者从属于群集的传感器收集数据,然后将其转发到接收器。使用加权最小生成树(WMST)选择群集的最短路径内选择。该算法为多跳网络计算了加权图的基于距离的最小生成树(MST)。权重根据路线选择过程中每个传感器的能量水平而动态变化,并使用拟议的蜜蜂算法模拟退火算法进行优化。

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