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A New Robust Genetic Algorithm for Dynamic Cluster Formation in Wireless Sensor Networks

机译:一种新的无线传感器网络动态群集形成的强大遗传算法

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Wireless sensor networks are widely deployed for a wide range of data gathering applications such as collecting environmental information, collecting military data, and monitoring large buildings. However, the limited energy of the sensor nodes requires efficient gathering of information so that the network lifetime is increased. In literature it is proved that this efficiency can be achieved by clustering the sensor nodes in the network. In this paper, we present a new robust genetic algorithm for forming dynamic clusters in sensor networks. The proposed genetic clustering algorithm (GCA) takes into consideration the energies and the distance between the nodes to form efficient clusters. The algorithm aims at forming well-balanced clusters so that the load is balanced in the network. The algorithm can be applied in scenarios where a central node controls the sensor network and requires efficient clustering. Simulation results show that the algorithm forms balanced clusters that increase the network lifetime by having minimum energy dissipation in the network. Results are also compared with other clustering protocols and it is shown that GCA has lesser node deaths and more data signals sent to the base station.
机译:无线传感器网络广泛部署用于广泛的数据收集应用,例如收集环境信息,收集军事数据和监控大型建筑物。然而,传感器节点的有限能量需要有效地收集信息,以便增加网络生命周期。在文献中,证明可以通过在网络中聚类传感器节点来实现这种效率。在本文中,我们提出了一种新的强大的遗传算法,用于在传感器网络中形成动态簇。所提出的遗传聚类算法(GCA)考虑了节点之间的能量和距离以形成有效的簇。该算法旨在形成良好平衡的簇,使得负载在网络中平衡。该算法可以应用于中央节点控制传感器网络并需要有效的聚类。仿真结果表明,该算法形成了通过网络中具有最小能量耗散的平衡集群,这些群体增加了网络寿命。结果也与其他聚类协议进行了比较,并显示GCA具有较小的节点死亡,并且将多个数据信号发送到基站。

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