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Pattern identification method of partial discharge based on the features of UHF envelope signals

机译:基于UHF包络信号特征的局部放电模式识别方法

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摘要

To determine the relationship between partial discharge type and envelope signal of partial discharge is important to evaluate the insulation state of gas-insulated switchgear (GIS). In this paper, discretization and differential matrix reduction is first conducted over the feature matrix composed of feature vectors characterizing UHF PD envelope signals using rough set theory for dimensionality reduction. Then the reduced feature vectors are used for pattern identification of four different types of UHF PD envelope signals in combination with BP neural network classifier. The results show that this method has a high identification rate.
机译:确定局部放电类型与局部放电的包络信号之间的关系对于评估气体绝缘开关设备(GIS)的绝缘状态非常重要。在本文中,首先使用粗糙集理论对维数减少的特征矩阵进行离散化和差分矩阵归约,特征矩阵由特征向量组成,特征向量表征UHF PD包络信号。然后,将减少的特征向量与BP神经网络分类器一起用于四种不同类型的UHF PD包络信号的模式识别。结果表明,该方法具有较高的识别率。

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