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The use of tools of data mining to decision making in engineering education-A systematic mapping study

机译:数据挖掘工具在工程教育决策中的应用-系统制图研究

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摘要

In recent years, there has been an increasing amount of theoretical and applied research that has focused on educational data mining. The learning analytics is a discipline that uses techniques, methods, and algorithms that allow the user to discover and extract patterns in stored educational data, with the purpose of improving the teaching-learning process. However, there are many requirements related to the use of new technologies in teaching-learning processes that are practically unaddressed from the learning analytics. In an analysis of the literature, the existence of a systematic revision of the application of learning analytics in the field of engineering education is not evident. The study described in this article provides researchers with an overview of the progress made to date and identifies areas in which research is missing. To this end, a systematic mapping study has been carried out, oriented toward the classification of publications that focus on the type of research and the type of contribution. The results show a trend toward case study research that is mainly directed at software and computer science engineering. Furthermore, trends in the application of learning analytics are highlighted in the topics, such as student retention or dropout prediction, analysis of academic student data, student learning assessment and student behavior analysis. Although this systematic mapping study has focused on the application of learning analytics in engineering education, some of the results can also be applied to other educational areas.
机译:近年来,越来越多的理论和应用研究集中在教育数据挖掘上。学习分析是一门使用技术,方法和算法的学科,允许用户发现和提取存储的教育数据中的模式,以改善教学过程。但是,在教学过程中有许多与使用新技术有关的要求,而学习分析实际上并没有解决这些要求。在对文献的分析中,对工程分析领域的学习分析应用进行系统修订的存在并不明显。本文介绍的研究为研究人员提供了迄今为止取得的进展的概述,并确定了缺少研究的领域。为此,已经进行了系统的制图研究,其重点是出版物的分类,重点是研究的类型和贡献的类型。结果表明,案例研究的趋势主要针对软件和计算机科学工程。此外,主题中还强调了学习分析的应用趋势,例如学生保留或辍学预测,学术学生数据分析,学生学习评估和学生行为分析。尽管这项系统的制图研究着重于学习分析在工程教育中的应用,但某些结果也可以应用于其他教育领域。

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