cs.AI updates on arXiv.org 10月01日
AsseslyAI:提升计算机科学实验室教育质量
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本文介绍了一种名为AsseslyAI的在线实验室分配系统,通过个性化实验问题、AI监考和游戏化模拟器等方法,解决计算机科学实验室教育中存在的抄袭、记录缺失、评估不足等问题,提高学生参与度和实际技能。

arXiv:2509.25258v1 Announce Type: cross Abstract: Practical lab education in computer science often faces challenges such as plagiarism, lack of proper lab records, unstructured lab conduction, inadequate execution and assessment, limited practical learning, low student engagement, and absence of progress tracking for both students and faculties, resulting in graduates with insufficient hands-on skills. In this paper, we introduce AsseslyAI, which addresses these challenges through online lab allocation, a unique lab problem for each student, AI-proctored viva evaluations, and gamified simulators to enhance engagement and conceptual mastery. While existing platforms generate questions based on topics, our framework fine-tunes on a 10k+ question-answer dataset built from AI/ML lab questions to dynamically generate diverse, code-rich assessments. Validation metrics show high question-answer similarity, ensuring accurate answers and non-repetitive questions. By unifying dataset-driven question generation, adaptive difficulty, plagiarism resistance, and evaluation in a single pipeline, our framework advances beyond traditional automated grading tools and offers a scalable path to produce genuinely skilled graduates.

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计算机科学 实验室教育 AsseslyAI AI监考 游戏化学习
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