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Forecasting future students' academic level and analyzing students' feature using schooling logs

机译:预测未来学生的学业水平并使用学习日志分析学生的特征

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Most educational institutions nowadays digitally manage their students' data, which are maintained on servers on campus. We intend to use these data in order to provide academic guidance. Thus, in this study, we forecast students' future academic records using smart card based time recording data and grade data. We use a Bayesian network as our forecasting method. In the past study, we forecast future student's academic records for the end of the second year using data from the first year through the first period of the second year. This time, we forecast them from the first year in order to forecast students' future academic level as soon as possible and prevent a poor results person from falling. We also revised the variables data and increased new variables by time recording data.
机译:如今,大多数教育机构都以数字方式管理学生的数据,这些数据保存在校园中的服务器上。我们打算使用这些数据来提供学术指导。因此,在这项研究中,我们使用基于智能卡的时间记录数据和成绩数据来预测学生的未来学习成绩。我们使用贝叶斯网络作为我们的预测方法。在过去的研究中,我们使用从第一年到第二年第一期的数据来预测第二年末的未来学生的学业成绩。这次,我们从一年级开始进行预测,以便尽快预测学生的未来学业水平,并防止成绩不佳的人跌倒。我们还通过时间记录数据修改了变量数据并增加了新变量。

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