Evaluating LLM-Generated Q&A Test: a Student-Centered Study

May 10, 2025 ยท Declared Dead ยท ๐Ÿ› International Conference on Artificial Intelligence in Education

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Authors Anna Wrรณblewska, Bartosz Grabek, Jakub ลšwistak, Daniel Dan arXiv ID 2505.06591 Category cs.CL: Computation & Language Cross-listed cs.HC Citations 1 Venue International Conference on Artificial Intelligence in Education Last Checked 5 months ago
Abstract
This research prepares an automatic pipeline for generating reliable question-answer (Q&A) tests using AI chatbots. We automatically generated a GPT-4o-mini-based Q&A test for a Natural Language Processing course and evaluated its psychometric and perceived-quality metrics with students and experts. A mixed-format IRT analysis showed that the generated items exhibit strong discrimination and appropriate difficulty, while student and expert star ratings reflect high overall quality. A uniform DIF check identified two items for review. These findings demonstrate that LLM-generated assessments can match human-authored tests in psychometric performance and user satisfaction, illustrating a scalable approach to AI-assisted assessment development.
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