An error recognition method for power equipment defect records based on knowledge graph technology

Hui-fang WANG, Zi-quan LIU

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PDF(759 KB)
Front. Inform. Technol. Electron. Eng ›› 2019, Vol. 20 ›› Issue (11) : 1564-1577. DOI: 10.1631/FITEE.1800260
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An error recognition method for power equipment defect records based on knowledge graph technology

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Abstract

To recognize errors in the power equipment defect records in real time, we propose an error recognition method based on knowledge graph technology. According to the characteristics of power equipment defect records, a method for constructing a knowledge graph of power equipment defects is presented. Then, a graph search algorithm is employed to recognize different kinds of errors in defect records, based on the knowledge graph of power equipment defects. Finally, an error recognition example in terms of transformer defect records is given, by comparing the precision, recall, F1-score, accuracy, and efficiency of the proposed method with those of machine learning methods, and the factors influencing the error recognition effects of various methods are analyzed. Results show that the proposed method performs better in error recognition of defect records than machine learning methods, and can satisfy real-time requirements.

Keywords

Error recognition / Power equipment defect record / Knowledge graph / Machine learning

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Hui-fang WANG, Zi-quan LIU. An error recognition method for power equipment defect records based on knowledge graph technology. Front. Inform. Technol. Electron. Eng, 2019, 20(11): 1564‒1577 https://doi.org/10.1631/FITEE.1800260

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2019 Zhejiang University and Springer-Verlag GmbH Germany, part of Springer Nature
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