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A graph based data mining method for collaborative learning space in learning commons

机译:一种基于图的数据挖掘方法,用于学习共享空间中的协作学习空间

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A graph based data mining method, which discovers automatically usage patterns from user-to-user and user-to-object interactions in a collaborative learning space, is proposed. The proposal describes mathematically observed users, objects, and their interactions at a given time as a set of graphs (a usage pattern) whose node is a user or an object and edge is assigned depending on a physical distance between two nodes. It is validated that the proposal can provide useful data for interview planning and evidences for interview results. On the validation, detection of frequent local usage patterns, detection of rare spatial layouts among usage patterns, and grouping hours containing similar local usage patterns are demonstrated with the 324 pictures taken at the collaborative learning space in Chiba University Library.
机译:提出了一种基于图的数据挖掘方法,该方法可从协作学习空间中的用户到用户和用户到对象的交互中自动发现使用模式。该提案将数学观察到的用户,对象及其在给定时间的交互描述为一组图(使用模式),其节点是用户或对象,并且根据两个节点之间的物理距离分配了边。经验证,该建议可以为面试计划提供有用的数据,并为面试结果提供证据。关于验证,在千叶大学图书馆的协作学习空间拍摄的324张照片展示了频繁使用的本地使用模式的检测,使用模式中稀有空间布局的检测以及包含类似本地使用模式的分组时间。

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