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Detection of Disturbances in Voltage Signals for Power Quality Analysis Using HOS

机译:使用HOS检测电压信号中的干扰以进行电能质量分析

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This paper outlines a higher-order statistics (HOS)-based technique for detecting abnormal conditions in voltage signals. The main advantage introduced by the proposed technique refers to its capability to detect voltage disturbances and their start and end points in a frame whose length corresponds to, at least, samples or of the fundamental component if a sampling rate equal to Hz is considered. This feature allows the detection of disturbances in submultiples or multiples of one-cycle fundamental component if an appropriate sampling rate is considered. From the computational results, one can note that almost all abnormal and normal conditions are correctly detected if s256, 128, 64, 32, and 16 and the SNR is higher than 25 dB. In addition, the proposed technique is compared to a root mean square (rms)-based technique, which was recently developed to detect the presence of some voltage events as well as their sources in a frame whose length ranges from up to one-cycle fundamental component. The numerical results reveal that the proposed technique shows an improved performance when applied not only to synthetic data, but also to real one.
机译:本文概述了一种基于高阶统计量(HOS)的技术,用于检测电压信号中的异常情况。所提出的技术所引入的主要优点是,如果考虑到采样率等于Hz,则它能够检测电压干扰及其在帧的长度中至少与样本或基本成分相对应的帧中的起点和终点的能力。如果考虑适当的采样率,则此功能允许检测一个周期基本分量的约数或数倍的干扰。从计算结果可以看出,如果s256、128、64、32和16且SNR高于25 dB,则几乎可以正确检测到几乎所有异常和正常情况。此外,将提出的技术与基于均方根(rms)的技术进行了比较,该技术最近被开发用于检测某些电压事件及其在长度范围从一个周期到基本周期的范围内的信号源。零件。数值结果表明,所提出的技术不仅适用于合成数据,而且适用于真实数据,其性能也得到了改善。

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