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EEWC: energy-efficient weighted clustering method based on genetic algorithm for HWSNs

机译:EEWC:基于HWSN的遗传算法的节能加权聚类方法

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Wireless sensor networks are widely used in monitoring and managing environmental factors like air quality, humidity, temperature, and pressure. The recent works show that clustering is an effective technique for increasing energy efficiency, traffic load balancing, prolonging the lifetime of the network and scalability of the sensor network. In this paper, a new energy-efficient clustering technique has been proposed based on a genetic algorithm with the newly defined objective function. The proposed clustering method modifies the steady-state phase of the LEACH protocol in a heterogeneous environment. The proposed objective function considers three main clustering parameters such as compactness, separation, and number of cluster heads for optimization. The simulation result shows that the proposed protocol is more effective in improving the performance of wireless sensor networks as compared to other state-of-the-art methods, namely SEP, IHCR, and ERP.
机译:无线传感器网络广泛用于监控和管理空气质量,湿度,温度和压力等环境因素。最近的作品表明,聚类是增加能源效率,交通负荷平衡,延长网络的寿命和传感器网络的可扩展性的有效技术。本文基于具有新定义的目标函数的遗传算法提出了一种新的节能聚类技术。所提出的聚类方法在异构环境中修改浸出协议的稳态阶段。所提出的目标函数考虑了三个主要聚类参数,例如紧凑性,分离和集群头数以进行优化。仿真结果表明,与其他最先进的方法相比,所提出的协议在提高无线传感器网络的性能方面更有效,即SEP,IHCR和ERP。

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