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Modelling Engineering Student Academic Performance Using Academic Analytics

机译:使用学术分析为工程专业学生的学业表现建模

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Internationally, the recruitment, management and retention of students has become a high priority for universities. The use of information technology systems and student data by institutions to understand and improve student academic performance is often referred to as 'academic analytics'. This paper presents an academic analytics investigation into the modelling of academic performance of engineering students enrolled in a second-year class. The modelling method used was binary logistic regression, and the target predicted variable was 'success status'-defined as those students from the total originally enrolled group that achieved a final unit grade of pass or better. This paper shows that student data stored in institutional systems can be used to predict student academic performance with reasonable accuracy, and it provides one methodology for achieving this. Importantly, significant predictor variables are identified that offer the ability to develop targeted interventions to improve student success and retention outcomes.
机译:在国际上,招收,管理和保留学生已成为大学的高度优先事项。机构使用信息技术系统和学生数据来理解和提高学生的学业成绩通常被称为“学术分析”。本文提出了一项学术分析调查,研究了就读二年级的工程专业学生的学术表现模型。所使用的建模方法是二元logistic回归,目标预测变量为“成功状态”-定义为最初入学总人数中达到最终及格分数或更高的学生。本文表明,存储在制度系统中的学生数据可用于以合理的准确性预测学生的学业成绩,并提供了实现这一目标的一种方法。重要的是,要确定重要的预测变量,这些变量可以提供有针对性的干预措施,以提高学生的成功率和保留率。

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