Educational Data Analytics and Fog Computing in Education 4.0

Jackson Machii, Julius Murumba, E. Micheni
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Abstract

Universities are generating massive amounts of educational data. Most universities are now focusing on how to harness that data to optimize and visualize it to provide better and more extended education services. Given this scenario, a literature review was used to conduct this study guided by the following objectives: (1) Assess suitable fog computing and educational data analytics architectures; (2) Examine the opportunities offered by fog computing and educational data analytics; (3) Investigate fog computing and educational data analytics challenges; and (4) Examine disruptions and future directions of these technologies in Education 4.0. The study concludes that institutions must use integrated data analytics techniques and distributed technology systems to make decisions about administration, resource allocation, student retention, performance, and improvement strategies. The study also identified the challenges of using fog computing and educational data analytics and concludes that education 4.0 is a learning style that is aligned with the fourth industrial revolution, requiring transformational learning readiness.
教育数据分析和雾计算4.0
大学正在产生大量的教育数据。大多数大学现在都在关注如何利用这些数据来优化和可视化,以提供更好、更广泛的教育服务。在这种情况下,通过文献综述进行了以下目标指导下的研究:(1)评估合适的雾计算和教育数据分析架构;(2)研究雾计算和教育数据分析提供的机会;(3)研究雾计算和教育数据分析的挑战;(4)研究这些技术在教育4.0中的颠覆性和未来方向。该研究的结论是,机构必须使用集成数据分析技术和分布式技术系统来制定有关管理、资源分配、学生保留、绩效和改进策略的决策。该研究还确定了使用雾计算和教育数据分析的挑战,并得出结论,教育4.0是一种与第四次工业革命相一致的学习方式,需要变革的学习准备。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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