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Using Cognitive Traits for Improving the Detection of Learning Styles

机译:利用认知特征改善学习方式的发现

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While providing online courses that fit studentsȁ9; learning styles has high potential to make learning easier for students, it requires knowing studentsȁ9; learning styles first. This paper demonstrates how the consideration of cognitive traits such as working memory capacity (WMC) can help in detecting learning styles. Previous studies have identified a relationship between learning styles and cognitive traits. In this paper, the practical application of this relationship is described and its potential to improve the detection of learning styles by additionally including data from cognitive traits in the calculation process is discussed. An extended approach and architecture for identifying learning styles which consider cognitive traits is also introduced. Furthermore, an experiment has been conducted that shows the positive effect of considering WMC in the detection process of learning styles for two out of three learning style dimensions, leading to higher precision of the results and therefore more accurate identification of learning styles which in turn lead to more accurate adaptivity for students.
机译:在提供适合学生ȁ9的在线课程的同时;学习风格有很大的潜力使学生学习变得容易,这需要了解学生9。首先学习风格。本文演示了如何考虑认知特征(例如工作记忆能力(WMC))有助于检测学习方式。先前的研究已经确定了学习风格和认知特征之间的关系。在本文中,描述了这种关系的实际应用,并讨论了通过在计算过程中另外包含来自认知特征的数据来改善学习方式检测的潜力。还介绍了用于识别考虑认知特征的学习方式的扩展方法和体系结构。此外,已经进行了一项实验,该实验显示出在三个学习风格维度中的两个学习风格检测过程中考虑WMC的积极作用,从而导致结果的精度更高,从而更准确地识别学习风格,从而导致以便更准确地适应学生。

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