A Deep Learning Approach for the Automated Classification of Geomagnetically Induced Current Scalograms

被引:0
作者
Aksenovich, Tatyana [1 ]
Selivanov, Vasiliy [1 ]
机构
[1] Russian Acad Sci, Northern Energet Res Ctr, Branch Fed Res Ctr, Kola Sci Ctr,NERC KSC RAS, Apatity 184209, Russia
来源
APPLIED SCIENCES-BASEL | 2024年 / 14卷 / 02期
基金
俄罗斯科学基金会;
关键词
geomagnetically induced currents; autotransformer; continuous wavelet transform; convolutional neural network; binary classification; NEURAL-NETWORKS; MAGNETIC-FIELD;
D O I
10.3390/app14020895
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
During geomagnetic storms, which are a result of solar wind's interaction with the Earth's magnetosphere, geomagnetically induced currents (GICs) begin to flow in the long, high-voltage electrical networks on the Earth's surface. It causes a number of negative phenomena that affect the normal operation of the entire electric power system. To investigate the nature of the phenomenon and its effects on transformers, a GIC monitoring system was created in 2011. The system consists of devices that are installed in the neutrals of autotransformers at five substations of the Kola-Karelian power transit in northwestern Russia. Considering the significant amount of data accumulated over 12 years of operating the GIC monitoring system, manual analysis becomes impractical. To analyze the constantly growing volume of recorded data effectively, a method for the automatic classification of GICs in autotransformer neutrals was proposed. The method is based on a continuous wavelet transform of the neutral current data combined with a convolutional neural network (CNN) to classify the obtained scalogram images. The classifier's performance is evaluated using accuracy and binary cross-entropy loss metrics. As the result of comparing four CNN architectures, a model that showed high GIC classification performance on the validation set was chosen as the final model. The proposed CNN model, in addition to the main layers, includes pre-processing layers and a dropout layer.
引用
收藏
页数:12
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