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Data clustering and storing for wide-area power quality monitoring

机译:数据聚类和存储,用于广域电能质量监控

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摘要

This paper presents a new technique that can be implemented for monitoring the quality of serves in wide areas and representing the data in terms of a small set of coefficients. Wavelet multi-resolution analysis (MRA) is utilized for feature extraction and data clustering of different disturbances. The proposed feature vector and the rapid drop off in the number of the wavelet-expansion coefficients are used to classify different power quality problems and to represent the original data in terms of a small set of coefficients.
机译:本文提出了一种新技术,可用于监视广域中的服务质量并以一小组系数表示数据。小波多分辨率分析(MRA)用于不同干扰的特征提取和数据聚类。提出的特征向量和小波扩展系数的数量的快速下降被用来分类不同的电能质量问题,并以一小组系数表示原始数据。

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