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A mixed back-propagation/Marquardt-Levenberg algorithm for optimizing the distribution electrical systems operation

机译:一种混合背部传播/ Marquardt-Levenberg算法,用于优化分布电气系统运行

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This paper presents a new methodology to be applied to the distribution electrical systems optimization for reducing the resistive electrical losses of the systems in real-time. This methodology combines the best features of two known algorithms (back-propagation algorithm (BP) and Marquardt-Levenberg algorithm (ML)) for improving the convergence of artificial neural networks (ANN) training. Since sometimes neither the first algorithm nor the latter one is able to easily find the global solution, the convergence of the training process can be improved in such special cases with the combination of these two algorithms. A consolidated algorithm based on heuristics was adopted for obtaining the optimal topology of the network, in relation to electrical losses, taking into account several load patterns (energy demand). Finally, the optimality of the solution (distribution system configuration regarding minimal electrical losses) provided by the proposed BP/ML method is checked by using a binary integer mathematical programming method.
机译:本文介绍了应用于分布电气系统优化的新方法,以实时降低系统的电阻电阻。该方法结合了两种已知算法的最佳特征(反向传播算法(BP)和Marquardt-Levenberg算法(ML)),用于提高人工神经网络(ANN)训练的趋同。由于有时既不是第一算法也不能够容易地找到全局解决方案,因此在这种特殊情况下可以改善训练过程的收敛,这两个算法的组合。考虑到几种负载模式(能源需求),采用基于启发式机构的基于启发式的综合算法来获得网络的最佳拓扑。最后,通过使用二进制整数数学编程方法检查所提出的BP / ML方法提供的解决方案的最优性(关于最小电损耗的分配系统配置)。

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