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An Integrated Approach for Modeling Learning Patterns of Students in Web-Based Instruction: A Cognitive Style Perspective

机译:基于网络教学的学生学习模式建模的集成方法:一种认知风格的观点

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Web-based instruction (WBI) programs, which have been increasingly developed in educational settings, are used by diverse learners. Therefore, individual differences are key factors for the development of WBI programs. Among various dimensions of individual differences, the study presented in this article focuses on cognitive styles. More specifically, this study investigates how cognitive styles affect students' learning patterns in a WBI program with an integrated approach, utilizing both traditional statistical and data-mining techniques. The former are applied to determine whether cognitive styles significantly affected students' learning patterns. The latter use clustering and classification methods. In terms of clustering, the K-means algorithm has been employed to produce groups of students that share similar learning patterns, and subsequently the corresponding cognitive style for each group is identified. As far as classification is concerned, the students' learning patterns are analyzed using a decision tree with which eight rules are produced for the automatic identification of students' cognitive styles based on their learning patterns. The results from these techniques appear to be consistent and the overall findings suggest that cognitive styles have important effects on students' learning patterns within WBI. The findings are applied to develop a model that can support the development of WBI programs.
机译:基于Web的教学(WBI)程序已经在教育环境中得到了越来越多的发展,被各种学习者所使用。因此,个体差异是制定WBI计划的关键因素。在个体差异的各个维度中,本文介绍的研究重点在于认知风格。更具体地说,本研究使用传统的统计和数据挖掘技术,以一种综合的方法,研究了认知方式如何在WBI计划中影响学生的学习模式。前者用于确定认知方式是否显着影响学生的学习模式。后者使用聚类和分类方法。在聚类方面,已采用K均值算法来产生共享相似学习模式的学生群体,随后识别出每个群体的相应认知风格。就分类而言,使用决策树分析学生的学习模式,并根据决策树生成八个规则,以根据学生的学习模式自动识别学生的认知风格。这些技术的结果似乎是一致的,总体发现表明,认知方式对WBI内的学生学习模式具有重要影响。研究结果用于建立可以支持WBI计划开发的模型。

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