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The Effect of Automatic Reassessment and Relearning on Assessing Student Long-Term Knowledge in Mathematics

机译:自动重新评估与重新认真对数学学生长期知识的影响

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Intelligent Tutoring Systems (ITS) give assessments to estimate a student's current knowledge. A great deal of work in the past years, (e.g. KDD Cup2010) has focused on predict students immediate next performance, while what is important is will the student retain that knowledge for later use. Some previous studies such as Wang, et al, Xiong, et al. have started to investigate this question by trying to predict student retention after a time interval of several days. We created a novel system that would automatically reassess and allow students to relearn the material to enhance a student's long-term knowledge. It is showed before that this intervention raised student learning, and now we are wondering if it also makes assessment of student long-term knowledge better (i.e, more predictive power). The result shows that the reassessment and relearning information is very useful in assessing student long-term knowledge.
机译:智能辅导系统(其)为评估估计学生目前的知识。过去几年的大量工作(例如KDD Cup2010)专注于预测学生立即下一个表现,而学生则为后来使用的知识是重要的。一些以前的研究,如王,等,熊,等人。已经开始通过尝试在几天的时间间隔后预测学生保留来调查这个问题。我们创建了一个新颖的系统,将自动重新评估并允许学生重新评估材料以增强学生的长期知识。在这种干预之前展示了学生学习,现在我们想知道它还会更好地评估学生的长期知识(即,更预测的力量)。结果表明,重新评估和重新认证信息对于评估学生的长期知识非常有用。

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