Hopfield神经网络在配电馈线重构中的应用

D. Bouchard, A. Chikhani, V. I. John, M. Salama
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引用次数: 24

摘要

配电馈线重构是一个以损耗最小为目标的优化问题,本文研究了Hopfield神经网络在配电馈线重构中的应用。开发并提出了一个网络模型,然后将该方法应用于Wagner等人(1991)使用的由三条馈线、13个常闭分段开关、3个常开连接开关和13个负载点组成的配电系统。最后给出了将该配电系统建模为神经网络的仿真结果
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Applications of Hopfield neural networks to distribution feeder reconfiguration
Distribution feeder reconfiguration is an optimization problem for loss minimization, and, in this paper, the authors investigate the use of a Hopfield neural network for distribution feeder reconfiguration. A network model is developed and presented, and then the method applied to a distribution system used by Wagner et al. (1991) consisting of three feeders, thirteen normally closed sectionalizing switches, three normally open tie switches and thirteen load points. Simulation results using this distribution system modelled as a neural network are presented.<>
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