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A Combined Wavelet and Data-Mining Based Intelligent Protection Scheme for Microgrid

机译:基于小波和数据挖掘相结合的微电网智能保护方案

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摘要

This paper presents an intelligent protection scheme for microgrid using combined wavelet transform and decision tree. The process starts at retrieving current signals at the relaying point and preprocessing through wavelet transform to derive effective features such as change in energy, entropy, and standard deviation using wavelet coefficients. Once the features are extracted against faulted and unfaulted situations for each-phase, the data set is built to train the decision tree (DT), which is validated on the unseen data set for fault detection in the microgrid. Further, the fault classification task is carried out by including the wavelet based features derived from sequence components along with the features derived from the current signals. The new data set is used to build the DT for fault detection and classification. Both the DTs are extensively tested on a large data set of 3860 samples and the test results indicate that the proposed relaying scheme can effectively protect the microgrid against faulty situations, including wide variations in operating conditions.
机译:提出了一种结合小波变换和决策树的微电网智能保护方案。该过程开始于在中继点处获取电流信号,并通过小波变换进行预处理以使用小波系数得出有效的特征,例如能量变化,熵和标准偏差。一旦针对每个阶段针对故障和非故障情况提取了特征,便会构建数据集以训练决策树(DT),并在看不见的数据集上进行验证以用于微电网中的故障检测。此外,通过包括从序列分量中得出的基于小波的特征以及从电流信号中得出的特征,来执行故障分类任务。新的数据集用于构建用于故障检测和分类的DT。两种DT均在3860个样本的大型数据集上进行了广泛测试,测试结果表明,所提出的中继方案可以有效地保护微电网免受故障情况的影响,包括工作条件的广泛变化。

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