Paper
19 July 2024 Enhancing standardization in the electricity industry: an intelligent analysis of standard discrepancy
Wenshu Ni, Zhijian Fang, Jie Fu, Xin Jiang, Yuxiang Cai, Wangning Guan
Author Affiliations +
Proceedings Volume 13181, Third International Conference on Electronic Information Engineering, Big Data, and Computer Technology (EIBDCT 2024); 131814F (2024) https://doi.org/10.1117/12.3031353
Event: Third International Conference on Electronic Information Engineering, Big Data, and Computer Technology (EIBDCT 2024), 2024, Beijing, China
Abstract
This paper proposes an intelligent discrepancy analysis method based on natural language processing to address the issue of standard discrepancy in the electricity industry. The objective of this method is to identify discrepancies between standards and pinpoint their distinguishing factors, in order to achieve better standardization, regulation, and consistency. This will enhance the safety and reliability of electricity equipment and systems, while reducing production, operation, and management costs. The paper first builds an electricity standard discrepancy dataset using the open-world assumption theory. Then, it uses a noisy method to fine-tune the SBERT model for identifying discrepancies in electricity standard clauses. Finally, by optimizing the SimCSE model with relaxed optimal transport distance, the interpretability of the model is improved and a text similarity matrix is obtained, enabling the visualization of discrepancies in clause text. The precision and recall rates of standard discrepancy identification achieved by this method are 81.54% and 82.78%, respectively. This method not only helps to improve the sustainable development of the electricity industry, but also provides more data support and decision-making references for electricity enterprises to better address issues related to standard management and implementation.
© (2024) COPYRIGHT Society of Photo-Optical Instrumentation Engineers (SPIE). Downloading of the abstract is permitted for personal use only.
Wenshu Ni, Zhijian Fang, Jie Fu, Xin Jiang, Yuxiang Cai, and Wangning Guan "Enhancing standardization in the electricity industry: an intelligent analysis of standard discrepancy", Proc. SPIE 13181, Third International Conference on Electronic Information Engineering, Big Data, and Computer Technology (EIBDCT 2024), 131814F (19 July 2024); https://doi.org/10.1117/12.3031353
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KEYWORDS
Matrices

Data modeling

Standards development

Performance modeling

Education and training

Industry

Machine learning

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