BacPrep: An Experimental Platform for Evaluating LLM-Based Bacalaureat Assessment

June 05, 2025 Β· Declared Dead Β· πŸ› arXiv.org

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Authors Dumitran Adrian Marius, Dita Radu arXiv ID 2506.04989 Category cs.SE: Software Engineering Cross-listed cs.CY, cs.LG Citations 0 Venue arXiv.org Last Checked 5 months ago
Abstract
Accessing quality preparation and feedback for the Romanian Bacalaureat exam is challenging, particularly for students in remote or underserved areas. This paper introduces BacPrep, an experimental online platform exploring Large Language Model (LLM) potential for automated assessment, aiming to offer a free, accessible resource. Using official exam questions from the last 5 years, BacPrep employs one of Google's newest models, Gemini 2.0 Flash (released Feb 2025), guided by official grading schemes, to provide experimental feedback. Currently operational, its primary research function is collecting student solutions and LLM outputs. This focused dataset is vital for planned expert validation to rigorously evaluate the feasibility and accuracy of this cutting-edge LLM in the specific Bacalaureat context before reliable deployment. We detail the design, data strategy, status, validation plan, and ethics.
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