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Strategies for Deploying Unreliable AI Graders in High-Transparency High-Stakes Exams

机译:在高透明度高风险考试中部署不可靠的AI评分员的策略

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We describe the deployment of an imperfect NLP-based automatic short answer grading system on an exam in a large-enrollment introductory college course. We characterize this deployment as both high stakes (the questions were on an mid-term exam worth 10% of students' final grade) and high transparency (the question was graded interactively during the computer-based exam and correct solutions were shown to students that could be compared to their answer). We study two techniques designed to mitigate the potential student dissatisfaction resulting from students incorrectly not granted credit by the imperfect AI grader. We find (1) that providing multiple attempts can eliminate first-attempt false negatives at the cost of additional false positives, and (2) that students not granted credit from the algorithm cannot reliably determine if their answer was mis-scored.
机译:我们描述了一个不完整的基于NLP的自动简短答案评分系统在大型招生入门大学课程中的考试上的部署。我们认为这种部署既有高风险(问题是在期末考试中占学生最终成绩10%的分数),又有高透明度(问题是在基于计算机的考试中以交互方式进行评分,并且向学生展示了正确的解决方案,可以与他们的答案进行比较)。我们研究了两种旨在缓解潜在的学生不满的技术,这些学生可能是由于不完全的AI评分者未正确授予学生而导致的学生不满。我们发现(1)进行多次尝试可以消除额外的误报,从而消除初次尝试的误报,以及(2)未从算法中获得学分的学生无法可靠地确定其答案是否得分错误。

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