Evaluation of visible contamination on power grid insulators using convolutional neural networks

被引:23
作者
Corso, Marcelo Picolotto [1 ]
Stefenon, Stefano Frizzo [2 ,3 ]
Singh, Gurmail [4 ]
Matsuo, Marcos Vinicius [5 ]
Perez, Fabio Luis [1 ]
Leithardt, Valderi Reis Quietinho [6 ,7 ]
机构
[1] Univ Reg Blumenau, Dept Elect Engn, R Sao Paulo 3250, BR-89030000 Blumenau, SC, Brazil
[2] Fdn Bruno Kessler, Digital Ind Ctr, Via Sommar 18, I-38123 Trento, TN, Italy
[3] Univ Udine, Dept Math Comp Sci & Phys, Via Sci 206, I-33100 Udine, UD, Italy
[4] Univ Wisconsin Madison, Dept Comp Sci, 1210 W Dayton St, Madison, WI 53706 USA
[5] Univ Fed Santa Catarina, Dept Control Automat & Computat Engn, R Joao Pessoa 2750, BR-89036004 Blumenau, SC, Brazil
[6] Inst Politecn Lisboa, Inst Super Engn Lisboa ISEL, P-1959007 Lisbon, Portugal
[7] Inst Politecn Portalegre, Res Ctr Endogenous Resources Valorizat, VALORIZA, P-7300555 Portalegre, Portugal
关键词
Convolutional neural networks; Deep learning; Image classification; Insulators; PERFORMANCE EVALUATION; POLYMERIC INSULATORS; POLLUTION FLASHOVER; GLASS INSULATOR; CLASSIFICATION; PREDICTION; DEEPER; LINES;
D O I
10.1007/s00202-023-01915-2
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
The contamination of insulators increases their surface conductivity, resulting in a higher chance of shutdowns occurring. To measure contamination, equivalent salt deposit density (ESDD) and non-soluble deposit density (NSDD) are used. In this paper, the VGG-11, VGG-13, VGG-16, VGG-19, ResNet-18, ResNet-34, ResNet-50, ResNet-152, DenseNet-121, DenseNet-161, DenseNet-169, and DenseNet-201 convolutional neural networks (CNNs) were considered to classify the visible contamination of pin-type distribution power grid insulators. The NSDD presents more visual variation than ESDD when artificial contamination is evaluated. Comparing the CNNs, the ResNet-50 had the best performance for classifying visible contamination using unbalanced data with an accuracy of 99.242% and an F1-score of 0.97436, respectively. In benchmarking, the ResNet-50 outperformed well-established classifiers such as the multilayer perceptron, support vector machine, k-nearest neighbors, decision tree, ensemble bagged trees, and quadratic discriminant.
引用
收藏
页码:3881 / 3894
页数:14
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