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Real-Time AI-Powered Text Evaluation for EV Charging Standards and Safety Education

Sadoqat ErgashevaLecturer at the Higher School of Translation Studies, Linguistics, and International Journalism Tashkent State University of Oriental Studies,UzbekistanDadaxon AbdullayevUrgench State University,Urganch,Khorezm,UzbekistanMutabar AlimardonovaShahrisabz State Pedagogical Institute,Shahrisabz,UzbekistanFeruzakhon RustamovaAndijan State Institute of Foreign Languages,Andijan,UzbekistanNasiba ImamovaShahrisabz State Pedagogical Institute,Shahrisabz,UzbekistanMaftuna XoshimovaNamangan state institute of foreign languages,Namangan,Uzbekistan,160123
2025
ABI

Аннотация

The rapid growth of electric vehicle (EV) adoption demands high-quality education and compliance with evolving charging standards and safety protocols. Real-time AI-powered text evaluation can ensure accurate and standardized content delivery in EV training and documentation. However, existing methods rely heavily on manual review and static rule-based systems, which are time-consuming, inconsistent, and often fail to adapt to dynamic changes in global standards. These limitations hinder the effectiveness of safety training and regulatory compliance. To address these issues, this study proposes a framework utilizing Natural Language Processing with Bidirectional Encoder Representations from Transformers Models (NLP-BERT). These models semantically analyze EV-related text and compare it against a structured corpus of regulatory documents, enabling intelligent, real-time evaluation. The proposed method is applied in a smart training platform, where it provides instant feedback on technical accuracy, identifies missing compliance elements, and enhances clarity of safety-related content. Results show that the model improves content reliability and reduces human review time by up to 60 %, ensuring consistent adherence to EV charging standards and boosting overall educational quality.

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Показатели — AkademScholar · Скоро