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Contingency evaluation and monitorization using artificial neural networks

机译:使用人工神经网络进行应急评估和监控

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摘要

In this paper, different neural network-based solutions to the contingency analysis problem are presented. Contingency analysis is examined from two perspectives: as a functional approximation problem obtaining a numerical evaluation and ranking contingencies; and as a graphical monitoring problem, obtaining an easy visualization system of the relative severity of the contingencies. For the functional evaluation problem, we analyze the use of different supervised feed-forward artificial neural networks (multilayer perceptron and radial basis function networks). The proposed systems produce a very accurate evaluation and ranking, and so present a high applicability. For the graphical monitoring problem, unsupervised artificial neural networks such as self-organizing maps by Kohonen have been used. This solution allows both a rapid, easy and simultaneous visualization of the severity level of the complete contingency set. The proposed solutions avoid the main drawbacks of previous neural network approaches to this problem, which are explicitly analyzed here. Keywords Artificial neural network - Contingency analysis - Contingency ranking - Kohonen’s self-organizing maps - Multilayer perceptron - Performance index - Power system - Power network security - Radial basis function
机译:本文提出了基于神经网络的权变分析问题解决方案。权变分析从两个角度进行了研究:作为函数逼近问题,获得数值评估和排序偶然性;作为图形监控问题,获得有关突发事件相对严重程度的简便可视化系统。对于功能评估问题,我们分析了不同的监督前馈人工神经网络(多层感知器和径向基函数网络)的使用。所提出的系统产生非常准确的评估和排名,因此具有很高的适用性。对于图形监视问题,已使用了无监督的人工神经网络,例如Kohonen的自组织图。该解决方案既可以快速,轻松又同时可视化整个意外事件集的严重性级别。所提出的解决方案避免了先前的神经网络方法针对此问题的主要缺点,在此将对其进行明确分析。人工神经网络-权变分析-权变排名-Kohonen的自组织图-多层感知器-性能指标-电力系统-电网安全性-径向基函数

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