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Intelligent Predictive Analytics for Identifying Students at Risk of Failure in Moodle Courses

机译:智能预测分析可识别在Moodle课程中有失败风险的学生

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Investigating the factors affecting students' academic failure in online and/or blended courses by analyzing students' learning behavior data gathered from Learning Management Systems (LMS) is a challenging area in intelligent learning analytics and education data mining area. It has been argued that the actual course design and the instructor's intentions is critical to determine which variables meaningfully represent student effort that should be included/excluded from the list of predicting factors. In this paper we describe such an approach for identifying students at risk of failure in online courses. For the proof of our concept we used the data of two cohorts of an online course implemented in Moodle LMS. Using the data of the first cohort we developed a prediction model by experimenting with certain base classifiers available in Weka. To improve the observed performance of the experimented base classifiers, we enhanced further our model with the Majority Voting ensemble classifier. The final model was used at the next cohort of students in order to identify those at risk of failure before the final exam. The prediction accuracy of the model was high which show that the findings of such a process can be generalized.
机译:在智能学习分析和教育数据挖掘领域,通过分析从学习管理系统(LMS)收集的学生的学习行为数据来研究影响学生在线和/或混合课程学习失败的因素是一个充满挑战的领域。有人争辩说,实际的课程设计和教师的意图对于确定哪些变量有意义地代表学生的努力至关重要,这些变量应从预测因素列表中包括/排除。在本文中,我们描述了一种用于识别在线课程中有失败风险的学生的方法。为了证明我们的概念,我们使用了在Moodle LMS中实施的两个在线课程队列的数据。使用第一个队列的数据,我们通过对Weka中可用的某些基本分类器进行实验,开发了一个预测模型。为了提高观察到的基本分类器的性能,我们使用多数投票集成分类器进一步增强了我们的模型。下一组学生使用了最终模型,以便在最终考试之前确定那些有失败风险的人。该模型的预测准确性很高,表明该过程的发现可以推广。

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