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A Novel Traveling-Wave-Based Method Improved by Unsupervised Learning for Fault Location of Power Cables via Sheath Current Monitoring

机译:通过护套电流监测的无监督学习改进的基于行波的新方法

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摘要

In order to improve the practice in maintenance of power cables, this paper proposes a novel traveling-wave-based fault location method improved by unsupervised learning. The improvement mainly lies in the identification of the arrival time of the traveling wave. The proposed approach consists of four steps: (1) The traveling wave associated with the sheath currents of the cables are grouped in a matrix; (2) the use of dimensionality reduction by t-SNE (t-distributed Stochastic Neighbor Embedding) to reconstruct the matrix features in a low dimension; (3) application of the DBSCAN (density-based spatial clustering of applications with noise) clustering to cluster the sample points by the closeness of the sample distribution; (4) the arrival time of the traveling wave can be identified by searching for the maximum slope point of the non-noise cluster with the fewest samples. Simulations and calculations have been carried out for both HV (high voltage) and MV (medium voltage) cables. Results indicate that the arrival time of the traveling wave can be identified for both HV cables and MV cables with/without noise, and the method is suitable with few random time errors of the recorded data. A lab-based experiment was carried out to validate the proposed method and helped to prove the effectiveness of the clustering and the fault location.
机译:为了改善电力电缆维护的实践,本文提出了一种通过无监督学习改进的基于行波的故障定位方法。改进主要在于确定行波的到达时间。所提出的方法包括四个步骤:(1)与电缆的护套电流相关的行波被分组为一个矩阵; (2)利用t-SNE(t分布随机邻居嵌入)进行降维,以重建低维的矩阵特征; (3)应用DBSCAN(基于噪声的应用程序的基于密度的空间聚类)聚类,通过样本分布的紧密性对样本点进行聚类; (4)可以通过搜索样本最少的无噪声簇的最大斜率点来确定行波的到达时间。已经对HV(高压)和MV(中压)电缆进行了仿真和计算。结果表明,无论有无噪声,高压电缆和中压电缆均可识别行波到达时间,该方法适用于记录数据的随机时间误差小。进行了基于实验室的实验以验证所提出的方法,并有助于证明聚类和故障定位的有效性。

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