Semi-Supervised Learning-Based Partial Discharge Diagnosis in Gas-Insulated Switchgear

被引:0
|
作者
Tai, Ho Trong [1 ]
Youn, Young-Woo [2 ,3 ]
Choi, Hyeon-Soo [4 ]
Kim, Yong-Hwa [1 ]
机构
[1] Korea Natl Univ Transportat, Dept Comp Sci & Informat, Uiwang 16106, Gyeonggi, South Korea
[2] Korea Electrotechnol Res Inst, Smart Grid Res Div, Gwangju 61751, South Korea
[3] Korea Adv Inst Sci & Technol, Kim Jaecul Grad Sch AI, Daejeon 34141, South Korea
[4] Genad Syst, Naju 58296, Jeollanam, South Korea
来源
IEEE ACCESS | 2024年 / 12卷
关键词
Electrodes; UHF measurements; Feature extraction; Corona; Noise measurement; Insulation; Semisupervised learning; Fault diagnosis; Gas insulation; Semi-supervised learning (SSL); fault diagnosis; phase-resolved partial discharge (PRPD); gas-insulated switchgear (GIS); PD; RECOGNITION;
D O I
10.1109/ACCESS.2024.3445974
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
Effective monitoring and diagnosis of partial discharge (PD) in power equipment are crucial for maintenance, particularly given the expectations of significant increases in energy generation and consumption. Although deep neural networks have been widely applied in PD fault detection and classification, their performance is hindered by insufficient labeled data available for power equipment. This study proposes a semi-supervised learning (SSL) method to address the scarcity of labeled training data for PD classification in gas-insulated switchgear (GIS). The proposed SSL was validated based on phase-resolved PD and on-site noise using an ultra-high frequency (UHF) PD measurement system. Experimental results show that the proposed SSL achieves a high classification accuracy of 94.59% by effectively utilizing unlabeled data to enhance classification performance in GIS.
引用
收藏
页码:115171 / 115181
页数:11
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