An instructor dashboard for real-time analytics in interactive programming assignments

Nicholas Diana, Michael Eagle, John C. Stamper, Shuchi Grover, M. Bienkowski, Satabdi Basu
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引用次数: 59

Abstract

Many introductory programming environments generate a large amount of log data, but making insights from these data accessible to instructors remains a challenge. This research demonstrates that student outcomes can be accurately predicted from student program states at various time points throughout the course, and integrates the resulting predictive models into an instructor dashboard. The effectiveness of the dashboard is evaluated by measuring how well the dashboard analytics correctly suggest that the instructor help students classified as most in need. Finally, we describe a method of matching low-performing students with high-performing peer tutors, and show that the inclusion of peer tutors not only increases the amount of help given, but the consistency of help availability as well.
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交互式编程作业中用于实时分析的指导员仪表板
许多介绍性编程环境都会生成大量的日志数据,但是如何从这些数据中获取见解,以供讲师使用,仍然是一个挑战。这项研究表明,在整个课程的不同时间点,学生的成绩可以从学生的项目状态中准确地预测出来,并将结果预测模型集成到教师仪表板中。仪表板的有效性是通过测量仪表板分析正确建议教师帮助最需要帮助的学生的程度来评估的。最后,我们描述了一种匹配低绩效学生与高绩效同伴导师的方法,并表明同伴导师的加入不仅增加了给予的帮助数量,而且增加了帮助可获得性的一致性。
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