研究学习管理系统中考虑学习风格的高级自适应机制的有效性

S. Graf, Tingwen Chang, Anne Kersebaum, Thomas Rath, J. Kurcz
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引用次数: 6

摘要

混合式和在线学习变得越来越流行,许多教育机构使用学习管理系统(lms)来托管这种混合式或在线课程。然而,这种LMS通常不适应学生的个人特点,并为每个学生提供相同的内容和演示。这种一刀切的方法并不适合大多数学生,而且会导致学生的表现和满意度下降。在本文中,我们提出了一项研究,以评估一种先进的自适应机制,该机制扩展了lms的自适应功能,以自动为学生提供适合他们学习风格的课程。本研究的结果表明,适应机制对学生有两个显著的好处:在适应课程上比非适应课程获得更高的成绩,而在两种课程上花费的时间相似;在平均成绩相同的情况下,在适应课程上花费的时间比非适应课程少。基于这些结果,本文提出的适应机制可以看作是lms支持学生学习的有效延伸。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Investigating the Effectiveness of an Advanced Adaptive Mechanism for Considering Learning Styles in Learning Management Systems
Blended and online learning becomes more and more popular and learning management systems (LMSs) are used by many educational institutions to host such blended or online courses. However, such LMS typically do not adapt to students' individual characteristics and provide each student with the same content and presentation. Such one-size-fits-all approach does not fit most students particularly well and can lead to low student performance and satisfaction. In this paper, we present a study to evaluate an advanced adaptive mechanism that extends LMSs with adaptive functionality to automatically provide students with courses that fit their learning styles. The results of this study showed two significant benefits of the adaptive mechanism for students: receiving higher grades on adaptive lessons than on non-adaptive ones while spending a similar amount of time on both, and spending less time on adaptive lessons than on non-adaptive ones while receiving on average the same grades. Based on these results, the proposed adaptive mechanism can be seen as an effective extension to LMSs in order to support students in learning.
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