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Parameter Identification of Norton Equivalent Model from Harmonic Monitoring Data

机译:基于谐波监测数据的诺顿等效模型参数辨识

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摘要

A method of identifying the operating parameters of harmonic customers based on historical monitoring data is introduced in this paper. Firstly, PCA is used to reduce the original harmonic data dimensions and determine the appropriate number of clusters. Then k-means is used to partition harmonic mode on low dimensions. Lastly group feature parameters are calculated from the clustered typical harmonic operating conditions. Experimental results showed that the operating parameters of harmonic customers can be identified from a large number of high-dimensional historical statistic data by the proposed method, which will also contribute to the harmonic source location and optimal operation strategy.
机译:介绍了一种基于历史监测数据的谐波用户运行参数识别方法。首先,PCA用于减小原始谐波数据的维数,并确定适当的簇数。然后,将k均值用于在低维上划分谐波模式。最后,从聚类的典型谐波运行条件中计算出组特征参数。实验结果表明,所提出的方法可以从大量的高维历史统计数据中识别出谐波用户的运行参数,这也将有助于谐波源的定位和最优的运行策略。

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