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An overview of using academic analytics to predict and improve students#039; achievement: A proposed proactive intelligent intervention

机译:使用学术分析预测和提高学生成绩的概述:提议的主动智能干预

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This paper presents a literature review on the use of a large array of data about students and courses that was collected by institutions and learning analytics to improve students success and retention. Academic analytics is getting notable attention, because it assists educational institutions in improving student achievement and success, increasing student retention, and reduce the load of liability and accountability. The purpose of this paper is to provide a brief overview of how academic analytics has been used in educational institutions, what tools are available, and how institution can predict student performance and achievement. In addition, the study will discuss its applications, goals, examples, and why instructors want to make use of academic analytics. Finally, this paper will propose an intelligent recommendation intervention to improve students' achievement that will be based on two outcomes; performance as measured by final grade, and students' information data such as attendance, prerequisite subject, English and Mathematics marks, and suggests the use of Artificial Neural Network and Decision Tree for predictive modeling.
机译:本文介绍了有关使用由机构和学习分析收集的有关学生和课程的大量数据来提高学生的成功率和保留率的文献综述。学术分析受到了广泛关注,因为它有助于教育机构提高学生的成绩和成功率,增加学生的保留率,并减轻责任和问责制的负担。本文的目的是简要概述如何在教育机构中使用学术分析,哪些工具可用以及机构如何预测学生的表现和成就。此外,该研究还将讨论其应用,目标,示例,以及讲师为何要利用学术分析的原因。最后,本文将基于两个结果提出一种智能的建议干预措施,以提高学生的学习成绩。表现由最终成绩和学生的信息数据(例如出勤率,先修科目,英语和数学成绩)来衡量,并建议使用人工神经网络和决策树进行预测建模。

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