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Investigation of a Fast Islanding Detection Methodology Using Transient Signals

机译:使用瞬态信号调查快速岛检测方法

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摘要

A novel approach for fast detection of power islands in a distribution network using the transient signals generated during the islanding event is investigated. Performance of several pattern recognition techniques in classifying the transient generating events as islanding or non-islanding was examined. Discrete wavelet transform of the transient current signals are utilized to extract feature vectors for the classifiers. Samples of the feature vectors corresponding to various islanding and non-islanding events are applied to train (i) a decision tree classifier, (ii) a probabilistic neural network classifier, and (iii) a support vector machine classifier for recognizing the transient patterns originating from the islanding events. The trained classifiers were then tested with unseen test current waveforms. The test results demonstrated that the investigated technique can potentially provide a new way for identification of islanding in distribution systems.
机译:研究了使用在岛地事件期间产生的瞬态信号进行分发网络中快速检测电力岛的新方法。检查了若干模式识别技术在分类瞬态产生事件作为孤岛或非岛屿的情况下的性能。瞬态电流信号的离散小波变换用于提取分类器的特征向量。对应于各种岛屿和非岛事件的特征向量的样本应用于训练(i)决策树分类器,(ii)概率神经网络分类器,(iii)支持向量机分类器,用于识别源题的瞬态模式来自岛屿事件。然后通过看不见的测试电流波形测试训练的分类器。测试结果表明,调查技术可能提供一种用于识别分配系统岛屿的新方法。

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