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Covariance analysis of voltage waveform signature for power-quality event classification

机译:电能质量事件分类的电压波形签名协方差分析

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In this paper, covariance behavior of several features (signature identifiers) that are determined from the voltage waveform within a time window for power-quality (PQ) event detection and classification is analyzed. A feature vector using selected signature identifiers such as local wavelet transform extrema at various decomposition levels, spectral harmonic ratios, and local extrema of higher order statistical parameters, is constructed. It is observed that the feature vectors corresponding to power quality event instances can be efficiently classified according to the event type using a covariance based classifier known as the common vector classifier. Arcing fault (high impedance fault) type events are successfully classified and distinguished from motor startup events under various load conditions. It is also observed that the proposed approach is even able to discriminate the loading conditions within the same class of events at a success rate of 70%. In addition, the common vector approach provides a redundancy and usefulness information about the feature vector elements. Implication of this information is experimentally justified with the fact that some of the signature identifiers are more important than others for the discrimination of PQ event types.
机译:在本文中,分析了几个特征(签名标识符)的协方差行为,这些特征是根据时间窗内的电压波形确定的,以进行电能质量(PQ)事件检测和分类。使用选定的签名标识符(例如,处于各种分解级别的局部小波变换极值,频谱谐波比率和高阶统计参数的局部极值)构建特征向量。观察到,可以使用称为公共矢量分类器的基于协方差的分类器,根据事件类型,有效地对与电能质量事件实例相对应的特征矢量进行分类。电弧故障(高阻抗故障)类型的事件已成功分类,并与各种负载条件下的电动机启动事件区分开。还观察到,所提出的方法甚至能够以70%的成功率来区分同一事件类别中的载荷条件。另外,通用矢量方法提供有关特征矢量元素的冗余和有用性信息。该信息的暗示在实验上是合理的,因为某些签名标识符对于区分PQ事件类型比其他标识符更重要。

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