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Apply Data Analytics to Schedule Best-suited Classes for Students with Different Academic Histories

机译:应用数据分析,为具有不同学术史的学生安排最适合的课程

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This Innovative Practice Full Paper presents our work on how to apply data analytics to schedule best-suited classes for students, especially the working adult students, with different academic histories. In this computer-technology-driven economy, many working adults are going back to school to complete their college degrees. They usually bring various numbers of transfer credits with them. Often a group of students enrolled at the same time will end up in different classes. The working adult students with different needs make schools with a limited number of classrooms difficult to predict their course schedule. Also, manually scheduling courses for such students not only consumes a large amount of time, but also increases the chance for human error in the scheduling process. The paper will present our software's architecture, functionality, algorithm, as well as the results of some Use Cases. The future work will allow admission staff to evaluate the "what-if" scenarios of working adult students based on their future working and/or family situations to foresee how they might plan ahead for their schooling, so that they can balance both educational goals and other priorities. All of these will effectively support student-centered education and have a positive impact on student retention.
机译:这种创新练习全文介绍了如何应用数据分析,以便为学生,尤其是与不同的学术历史为工作的最适合课程。在这款计算机技术驱动的经济中,许多工作成年人都会回到学校完成学历。他们通常会带来各种数量的转移信用。通常,一群学生同时注册将在不同的课程中最终。有关不同需求的工作成年学生使学校数量有限的教室难以预测他们的课程时间表。此外,此类学生的手动调度课程不仅消耗了大量时间,而且还增加了调度过程中人为错误的机会。本文将呈现我们的软件的体系结构,功能,算法,以及一些用例的结果。未来的工作将允许入学人员根据他们未来的工作和/或家庭情况来评估工作成年学生的“什么”的情景,以预见他们如何为他们的学业提前计划,这样他们就可以平衡教育目标和其他优先事项。所有这些都将有效地支持以学生为中心的教育,并对学生保留产生积极影响。

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