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Classification of pollution severity on insulator model using Recurrence Quantification Analysis

机译:递归定量分析法对绝缘子模型污染严重程度进行分类

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In this work, a novel approach is established in order to investigate and monitor the performance of high voltage insulators. Since leakage current (LC) waveforms are intimately linked to pollution severity, it is primordial to study and investigate leakage current characteristics during the entire contamination process. In this paper, performance of a plane model insulator is studied through a number of laboratory tests under various levels of pollution contamination. LC waveforms are investigated through a nonlinear method called “Recurrence Quantification Analysis” (RQA). This method revealed successfully the non-linear characteristics of LC for identifying the dynamic behaviors on the insulator surface. Moreover, RQA indicators are found to be directly linked to the contamination severity. Thus, mean values of these indicators are computed and used as an input to three different classification algorithms (k-nearest neighbors, Naïve Bayes, Support Vector Machines) in order to classify contamination severity.
机译:在这项工作中,建立了一种新颖的方法来调查和监视高压绝缘子的性能。由于泄漏电流(LC)波形与污染的严重程度密切相关,因此在整个污染过程中研究和调查泄漏电流特性至关重要。本文通过在各种污染水平下的大量实验室测试研究了平面模型绝缘子的性能。 LC波形通过称为“递归量化分析”(RQA)的非线性方法进行研究。该方法成功地揭示了用于识别绝缘子表面动态行为的LC非线性特性。此外,发现RQA指标与污染的严重程度直接相关。因此,计算这些指标的平均值,并将其用作三种不同分类算法(k近邻,朴素贝叶斯,支持向量机)的输入,以便对污染严重程度进行分类。

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