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A New Approach Based on Wavelet Design and Machine Learning for Islanding Detection of Distributed Generation

机译:基于小波设计和机器学习的分布式发电孤岛检测新方法

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摘要

This paper presents a new approach based on wavelet design and machine learning applied to passive islanding detection of distributed generation. Procrustes analysis is used to determine the filter coefficients of a newly designed wavelet. To automate the classification process, machine learning algorithms are used to develop appropriate models. The IEEE 13-bus standard test distribution system simulated in PSCAD/EMTDC is used as a test bed to assess the performance of the proposed approach. The numerical results demonstrating the effectiveness of the proposed approach are discussed and conclusions are drawn.
机译:本文提出了一种基于小波设计和机器学习的新方法,将其应用于分布式发电的被动孤岛检测。前驱分析用于确定新设计的小波的滤波器系数。为了使分类过程自动化,使用机器学习算法来开发适当的模型。在PSCAD / EMTDC中模拟的IEEE 13总线标准测试分发系统用作评估该方法性能的测试平台。数值结果证明了该方法的有效性,并进行了总结。

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