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A Data Mining Approach to the Analysis of Students' Learning Styles in an e-Learning Community: A Case Study

机译:电子学习社区中学生学习风格分析的数据挖掘方法:一个案例研究

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In recent years, there has been a radical change in the world of education and training that is causing that many schools, universities and companies are adopting the most modern technologies, mainly based on Web architectures and Web 2.0 instruments and tools, for learning, managing and sharing of knowledge. In this context, an e-Learning system can reach its maximum potential and effectiveness if it could take advantage of the information in its possession and process it in an intelligent and personalized way. The Educational Data Mining is an emergent field of research where the approach to personalization makes use of the log data generated by learners during their training process, to dynamically update users learning profiles such as skills and learning styles and identify students behavioral patterns. In this paper we present a case study of a data mining approach, based on cluster analysis, in order to support the detection of learning styles in a community of learners, following the Grasha-Riechmann learning styles model. As an e-learning framework we used the Moodle LMS platform and studied the log files generated by a course taken by a community of learners. The first experimental results suggest a connection between clusters and learning styles, reinforcing the use of this approach.
机译:近年来,教育和培训领域发生了翻天覆地的变化,导致许多学校,大学和公司采用最现代的技术(主要基于Web架构和Web 2.0工具和工具)来进行学习,管理和知识共享。在这种情况下,如果电子学习系统可以利用其拥有的信息并以智能和个性化的方式对其进行处理,则可以发挥其最大的潜力和有效性。教育数据挖掘是一个新兴的研究领域,其中的个性化方法利用了学习者在培训过程中生成的日志数据,以动态更新用户的学习资料(例如技能和学习方式)并识别学生的行为方式。在本文中,我们将基于聚类分析提出一种数据挖掘方法的案例研究,以支持遵循Grasha-Riechmann学习风格模型的学习者社区中学习风格的检测。作为一个电子学习框架,我们使用了Moodle LMS平台并研究了由学习者社区所采取的课程所生成的日志文件。最初的实验结果表明,聚类和学习风格之间存在联系,从而加强了这种方法的使用。

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