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Progression analysis of students in a higher education institution using big data open source predictive modeling tool

机译:使用大数据开源预测建模工具对高校学生进行进度分析

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This research work reports a systematic analysis of association of age with academic performance in a higher education institution. The correlation coefficient between key parameters of the student data were absorbed to derive the attributes that contributed strong positive influence on student results and also to identify the attributes that donated a negative impact. Further, a predictive model was developed to forecast the student performance in higher level modules based on the contextual factors. The outcome of the work showcased that negative correlation exists between age and the academic performance. On the contrary, positive correlation exists between lower level and higher level modules. Further, future research directions are discussed.
机译:这项研究工作报告了对高等教育机构中年龄与学业成绩之间关联的系统分析。吸收了学生数据的关键参数之间的相关系数,以得出对学生成绩产生强烈积极影响的属性,并确定造成负面影响的属性。此外,基于上下文因素,开发了一种预测模型来预测更高级别模块中的学生表现。工作成果表明,年龄与学业成绩之间存在负相关关系。相反,较低级别的模块和较高级别的模块之间存在正相关。此外,讨论了未来的研究方向。

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