Adaptive teaching strategy for online learning

Jungsoon P. Yoo, Cen Li, C. Pettey
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引用次数: 12

Abstract

Finding the optimal teaching strategy for an individual student is difficult even for an experienced teacher. Identifying and incorporating multiple optimal teaching strategies for different students in a class is even harder. This paper presents an Adaptive tutor for online Learning, AtoL, for Computer Science laboratories that identifies and applies the appropriate teaching strategies for students on an individual basis. The optimal strategy for a student is identified in two steps. First, a basic strategy for a student is identified using rules learned from a supervised learning system. Then the basic strategy is refined to better fit the student using models learned using an unsupervised learning system that takes into account the temporal nature of the problem solving process. The learning algorithms as well as the initial experimental results are presented.
网络学习的适应性教学策略
即使是经验丰富的教师,也很难找到适合个别学生的最佳教学策略。识别和整合针对不同学生的多种最佳教学策略就更难了。本文介绍了一种用于计算机科学实验室的在线学习自适应导师,即AtoL,它可以根据学生的个人情况确定并应用适当的教学策略。学生的最佳策略分为两个步骤。首先,使用从监督学习系统中学习到的规则来确定学生的基本策略。然后对基本策略进行细化,以便使用使用无监督学习系统学习的模型更好地适应学生,该系统考虑到问题解决过程的时间性质。给出了学习算法和初步实验结果。
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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