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A distributed evolutionary algorithmic approach to the least-cost connected constrained sub-graph and power control problem

机译:一种分布式进化算法方法,以最低成本连接约束子图和功率控制问题

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When wireless sensors are capable of variable transmit power and are battery powered, it is important to select the appropriate transmit power level for the node. Lowering the transmit power of the sensor nodes imposes a natural clustering on the network and has been shown to improve throughput of the network. However, a common transmit power level is not appropriate for inhomogeneous networks. A possible fitness-based approach, motivated by an evolutionary optimization technique, Particle Swarm Optimization (PSO) is proposed and extended in a novel way to determine the appropriate transmit power of each sensor node. A distributed version of PSO is developed and explored using experimental fitness to achieve an approximation of least-cost connectivity.
机译:当无线传感器能够变量发射功率并且电池供电时,为节点选择适当的发射功率电平非常重要。降低传感器节点的发射功率对网络上的自然聚类施加了自然聚类,并已被示出以提高网络的吞吐量。但是,常见的传输功率水平不适合非均匀网络。通过进化优化技术,粒子群优化(PSO)的可能基于适应性的方法,并以新颖的方式扩展,以确定每个传感器节点的适当发射功率。使用实验性健康开发和探索PSO的分布式版本,以实现最低成本连接的近似值。

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