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Adaptive Optimization for Optimal Mobile Sink Placement in Wireless Sensor Networks

机译:无线传感器网络中最优移动宿地放置的自适应优化

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In recent years, Wireless Sensor Networks (WSN) with mobile sinks has attracted much attention as the mobile sink roams over the sensing field and collects sensing data from sensor nodes. Mobile sinks are mounted on moving objects, such as people, vehicles, robots, and so on. However, optimal placement of the sink for the effective management of the WSN is the major challenge. Hence, an adaptive Fractional Rider Optimization Algorithm (adaptive-FROA) is developed for the optimal placement of mobile sink in WSN environment for effective routing. The adaptive FROA, which is the integration of the adaptive concept in the FROA, operates based on the fitness measure based on distance, delay, and energy measure of the nodes in the network. The main objective of the research work is to compute the energy and distance. The proposed method is analyzed based on the metrics, such as energy, throughput, distance, and lifetime of the network. The simulation results reveal that the proposed method acquired a minimal distance of 24.87m, maximal network energy of 94.54 J, maximal alive nodes of 77, maximal throughput of 94.42 bps, minimum delay of 0.00918s, and maximum Packet delivery ratio (PDR) of 87.98%, when compared with the existing methods.
机译:近年来,随着移动水槽在传感场上漫游并从传感器节点收集感测数据,无线传感器网络(WSN)引起了很多关注。移动水槽安装在移动物体上,例如人员,车辆,机器人等。然而,汇的最佳放置用于WSN的有效管理是主要挑战。因此,为WSN环境中的移动接收器的最佳放置而开发了一种自适应分数骑手优化算法(Adaptive-FroA)以进行有效路由。自适应FroA,即自适应概念在FroA中集成,基于基于网络中节点的距离,延迟和能量测量的适应度量来运行。研究工作的主要目标是计算能源和距离。基于度量,例如网络的能量,吞吐量,距离和寿命等度量来分析所提出的方法。仿真结果表明,所提出的方法获得了最小距离为24.87M的距离,最大网络能量为94.54 j,最大化节点为77,最大吞吐量为94.42bps,0.00918的最小延迟,以及最大分组输送比(PDR)的最小延迟87.98%,与现有方法相比。

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