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Towards Adaptive Learning Support on the Basis of Behavioural Patterns in Learning Activity Sequences

机译:基于学习活动序列中行为模式的适应性学习支持

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Monitoring and interpreting sequential user activities contributes to enhanced, more fine-grained user models in e-learning systems. We present in this paper different behavioural patterns from the domain of problem-solving that can be determined by targeted, ultimately automated clustering. For the identification of these patterns, we apply a new approach - based on the modeling of activity sequences - to real-world learning activity sequence data, monitored via an Intelligent Tutoring System. This paper describes the identified behavioural patterns, explains the process used for their detection, and compares the patterns to related ones in earlier literature. It further discusses implications of the patterns themselves, and of the employed approach, on adaptively supporting individual and group-based collaborative learning.
机译:监视和解释顺序的用户活动有助于电子学习系统中增强的,更细粒度的用户模型。在本文中,我们从解决问题的领域介绍了不同的行为模式,这些行为模式可以通过有针对性的,最终的自动聚类来确定。为了识别这些模式,我们将一种基于活动序列建模的新方法应用于通过智能辅导系统监控的现实世界学习活动序列数据。本文介绍了已识别的行为模式,解释了其检测过程,并将这些模式与早期文献中的相关行为模式进行了比较。它进一步讨论了模式本身以及所采用方法对适应性地支持基于个人和小组的协作学习的意义。

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