An assistant agent for group formation in CSCL based on student learning styles

R. Costaguta, María de los Ángeles Menini
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引用次数: 8

Abstract

In Computer Supported Collaborative Learning (CSCL) systems, students work in groups interacting by using computers. Each member of the team behaves in a particular way to collaborate with others, manifesting a particular learning style. In this paper we propose a new approach for automatically creating student groups in CSCL systems by considering their individual learning styles. Data mining techniques are applied to discover which existent combinations of learning styles lead to a better performance. The discovered knowledge will be used by a software agent to propose the creation of the most promising new groups. The approach also considers the creation and maintenance of a user model for each student and a group model for each team. The assistant agent will be implemented in an existing CSCL tool, and its performance will be validated with real students.
基于学生学习风格的CSCL小组组建助理代理
在计算机支持的协作学习(CSCL)系统中,学生通过计算机进行小组互动。团队中的每个成员都以一种特定的方式与他人合作,表现出一种特定的学习风格。本文提出了一种基于个人学习风格的CSCL系统中自动创建学生群体的新方法。应用数据挖掘技术来发现哪些现有的学习风格组合可以带来更好的性能。软件代理将使用发现的知识来建议创建最有希望的新组。该方法还考虑为每个学生创建和维护一个用户模型,为每个团队创建和维护一个组模型。该辅助代理将在现有的CSCL工具中实施,并将在真实的学生中验证其性能。
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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