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A Novel Data Mining Algorithm for Web-based Learning Community

机译:基于Web的学习社区的新型数据挖掘算法

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Web-based learning community allow educators to study how students learn (descriptive studies) and which learning strategies are most effective (causal/predictive studies). Since web-based learning community are capable of collecting vast amounts of student profile data, data mining and knowledge discovery techniques can be applied to find interesting relationships between attributes of students, assessments, and the solution strategies adopted by students. In this paper, we propose a new coevolutionary algorithm for the discovery of interesting association rules within a web-based learning community. Three coevolutionary operators are designed and the mining algorithm is realized in this paper. According to experimentation, the algorithm has been found suitable for association rule mining of the web-based learning community.
机译:基于网络的学习社区使教育工作者可以研究学生的学习方式(描述性研究)以及最有效的学习策略(因果关系/预测性研究)。由于基于Web的学习社区能够收集大量的学生资料数据,因此可以使用数据挖掘和知识发现技术来查找学生的属性,评估和学生采用的解决方案策略之间的有趣关系。在本文中,我们提出了一种新的协同进化算法,用于在基于Web的学习社区中发现有趣的关联规则。设计了三个协进化算子,并实现了挖掘算法。根据实验,发现该算法适用于基于Web的学习社区的关联规则挖掘。

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