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Automatic classification of voltage dip root causes via pattern recognition

机译:通过模式识别自动分类电压下降的根本原因

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Voltage dips (VDs) contribute significantly to the total annual cost resulting from poor power quality. This power quality disturbance can be induced by several root causes such as short circuits, transformer energizing, or due to the start-up of large electrical loads. The aim of this study was to develop a classifier which is able to automatically identify the probable root cause of a VD based on characteristic features contained within its corresponding RMS voltage curve. To this aim, mathematical functions were fitted through the characteristic section of VD RMS measurements. These measurements were obtained from the real-life distribution network. Subsequently, the coefficients of the fitting functions served as features for supervised pattern recognition schemes. In this study, 4 classifiers were developed and compared. The proposed approaches provided effective identification of VD root causes. Ultimately, effective classification schemes are a preliminary step to automatically localize VD sources.
机译:电压骤降​​(VD)对于不良电能质量造成的年度总成本有很大贡献。可能由于多种根本原因引起这种电能质量扰动,例如短路,变压器通电或由于大的电气负载启动。这项研究的目的是开发一种分类器,该分类器能够根据其相应的RMS电压曲线中包含的特征自动识别VD的可能根本原因。为此,通过VD RMS测量的特征部分拟合了数学函数。这些测量值是从现实生活中的分销网络获得的。随后,拟合函数的系数用作监督模式识别方案的特征。在这项研究中,开发并比较了4个分类器。所提出的方法提供了VD根本原因的有效识别。归根结底,有效的分类方案是自动定位VD源的初步步骤。

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