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Student performance analysis and prediction in classroom learning: A review of educational data mining studies

机译:课堂学习学生绩效分析与预测 - 教育数据挖掘研究综述

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Student performance modelling is one of the challenging and popular research topics in educational data mining (EDM). Multiple factors influence the performance in non-linear ways; thus making this field more attractive to the researchers. The widespread availability of e ducational datasets further catalyse this interestingness, especially in online learning. Although several EDM surveys are available in the literature, we could find only a few specific surveys on student performance analysis and prediction. These specific surveys are limited in nature and primarily focus on studies that try to identify possible predictor or model student performance. However, the previous works do not address the temporal aspect of prediction. Moreover, we could not find any such specific survey which focuses only on classroom-based education. In this paper, we present a systematic review of EDM studies on student performance in classroom learning. It focuses on identifying the predictors, methods used for such identification, time and aim of prediction. It is significantly the first systematic survey of EDM studies that consider only classroom learning and focuses on the temporal aspect as well. This paper presents a review of 140 studies in this area. The meta-analysis indicates that the researchers achieve significant prediction efficiency during the tenure of the course. However, performance prediction before course commencement needs special attention.
机译:学生绩效建模是教育数据挖掘(EDM)的具有挑战性和流行的研究主题之一。多种因素影响非线性方式的性能;因此使这一领域对研究人员更具吸引力。 E宣告数据集的广泛可用性进一步促进了这种有趣,特别是在线学习。虽然文献中有几次EDM调查,但我们只能在学生绩效分析和预测中找到一些特定的调查。这些特定调查本质上是有限的,主要关注试图确定可能的预测器或模型学生表现的研究。但是,以前的作品没有解决预测的时间方面。此外,我们找不到任何这样的具体调查,只关注基于课堂教育。本文在课堂学习中对EDM研究进行了系统审查。它侧重于识别预测器,用于这种识别,时间和预测的目的的方法。这显着考虑课堂学习和专注于时间方面的第一个系统调查。本文提出了对该地区140项研究的综述。 Meta分析表明,研究人员在课程的任期期间获得了显着的预测效率。然而,课程开始前的性能预测需要特别注意。

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