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Association analysis of online learning behaviour in interactive education based on an intelligent concept machine

机译:基于智能概念机的交互式教育在线学习行为的关联分析

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摘要

Aiming at the problem that the existing association analysis of online learning behaviour in interactive education has poor practical application effect, this paper proposes an association analysis method of online learning behaviour in interactive education based on intelligent concept machine. Association rules are used to obtain association information between data. Based on the characteristics of online learning, a data classification index system was constructed by RFM analysis method. K-means method is adopted to cluster user behaviours. PageRank algorithm was used to obtain the most representative learning users, recommend the best courses for users, and analyse the learning behaviour and effect through association rules. Finally, through simulation experiment, it is found that the average learning score of learners increases by 15 points after using this method, and the application effect is good, which verifies the effectiveness of this method.
机译:针对现有交互式教育在线学习行为的关联分析实际应用效果较差的问题,提出了一种基于智能概念机的交互式教育在线学习行为的关联分析方法。关联规则用于获取数据之间的关联信息。根据在线学习的特点,利用RFM分析方法构建了数据分类指标体系。采用K-means方法对用户行为进行聚类。 PageRank算法用于获得最具代表性的学习用户,为用户推荐最佳课程,并通过关联规则分析学习行为和效果。最后,通过仿真实验,发现该方法学习者的平均学习分数提高了15分,应用效果良好,验证了该方法的有效性。

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