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首页> 外文期刊>International journal of communication systems >Hybrid shuffled frog leaping and improved biogeographybased optimization algorithm for energy stability and network lifetime maximization in wireless sensor networks
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Hybrid shuffled frog leaping and improved biogeographybased optimization algorithm for energy stability and network lifetime maximization in wireless sensor networks

机译:无线传感器网络中的能量稳定性和网络寿命最大化的混合混洗蛙跳跃和改进的生物地理比较优化算法

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摘要

Wireless sensor networks are significantly used for data sensing and aggregating dusts from a remote area environment in order to utilize them in a diversified number of engineering applications. The data transfer among the sensor nodes is attained through the inclusion of energy efficient routing protocols. These energy efficient routing necessitates optimal cluster head selection procedure for handling the challenge of energy consumption to extend the stability and lifetime in the sensor networks. The implementation of energy efficient routing is still complicated even when the process of clustering is enhanced through the cluster head selection. The majority of the existing cluster head selection schemes suffer from the issues of poor selection accuracy, increased computation, and duplicate nodes' selection. In this paper, hybrid shuffled frog leaping and improved biogeography-based optimization algorithm (HSFLBOA) for optimal cluster head selection is proposed for resolving issues that are common in cluster head selection schemes. This proposed HSFLBOA used the objective function that used the parameters of node energy, data packet transmission delay, cluster traffic density, and internode distance in the cluster. The simulation results of the proposed HSFLBOA is determined to be significant in achieving superior throughput and network energy compared to benchmarked metaheuristic optimal cluster head schemes.
机译:无线传感器网络被显着用于远程区域环境中的数据感测和聚合灰尘,以便在多样化的工程应用中使用它们。通过包含节能路由协议,实现传感器节点之间的数据传输。这些节能路由需要最佳的群集头选择程序,用于处理能量消耗的挑战,以扩展传感器网络中的稳定性和寿命。即使通过簇头选择增强群集过程,节能路由的实现仍然复杂。大多数现有的群集头选择方案遭受了选择准确性,增加计算和重复节点的选择差的问题。在本文中,提出了用于解决群集头选择方案中常见的问题的最佳簇头选择的混合混合青蛙跳跃和改进的基于生物地基优化算法(HSFLBOA)。这提出了Hsflboa使用了使用节点能量,数据包传输延迟,群集流量密度和集群中节电距离的参数的目标函数。与基准的半导体最佳聚类头部方案相比,所提出的HSFLBOA的仿真结果在实现卓越的吞吐量和网络能量方面是显着的。

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