Real-Time Prediction of Students' Activity Progress and Completion Rates

Louis Faucon, Jennifer K. Olsen, Stian Håklev, P. Dillenbourg
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引用次数: 9

Abstract

In classrooms, some transitions between activities impose (quasi-)synchronicity, meaning there is a need for learners to move between activities at the same time. To make real-time decisions about when to move to the next activity, teachers need to be able to balance the progress of their students as they work at different paces. In this paper, we present a set of estimators that can be used in real time to predict the progress and completion rates of students working on computer-supported activities that can be divided into sequential subtasks. With our estimators, we investigate what effect the average progress rate of the class, a given number of previous steps, or weighting the proportion of progress assigned to each subtask has on predictions of students’ progress. We find that accounting for the average class progress rate near the beginning of the activity can improve predictions over baseline. Additionally, weighted subtasks decrease prediction accuracy for activities where the behaviour of faster students diverges from the average behaviour of the class. This paper contributes to our ability to provide accurate student progress predictions and to understand the behaviour of students as they progress through the activity. These real-time predictions can enable teachers to optimize learning time in their classrooms.
实时预测学生的活动进度和完成率
在课堂上,活动之间的一些过渡施加了(准)同步性,这意味着学习者需要同时在活动之间移动。为了实时决定何时进行下一个活动,教师需要能够在学生以不同的速度学习时平衡他们的进步。在本文中,我们提出了一组可以实时用于预测学生在计算机支持的活动上的进度和完成率的估计器,这些活动可以分为连续的子任务。通过我们的估计器,我们研究了班级的平均进步率、给定数量的先前步骤或加权分配给每个子任务的进步比例对学生进步预测的影响。我们发现,在活动开始时计算平均班级进度率可以提高对基线的预测。此外,加权子任务降低了对速度较快的学生的行为偏离班级平均行为的活动的预测准确性。这篇论文有助于我们提供准确的学生进步预测,并了解学生在活动中进步的行为。这些实时预测可以使教师在课堂上优化学习时间。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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