遗弃和毕业预测的自动特征选择:一个智利案例

B. Peralta, T. Poblete, L. Caro
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引用次数: 6

摘要

大学辍学率高和毕业率低是当今非常相关的社会问题。由于遗弃和大学毕业有许多可能的原因,在本文中,我们建议使用数据挖掘技术和统计模型,根据可用的先验信息,找到,分析和权衡允许预测学生是否会辍学或毕业的因素。我们将以特穆科天主教大学为例,使用该机构的真实数据。本研究揭示了人类专家认为的相关变量,证明了自动模型表征大学辍学和毕业的能力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Automatic feature selection for desertion and graduation prediction: A chilean case
The high rate of university dropout and low graduation rates are very relevant social problems today. Since there are many possible causes of desertion and university graduation, in this paper, we propose to find, analyze and weigh the factors that allow predicting if a student will drop out or graduate according to prior information available using data mining techniques and statistical models. We will focus in the case of Catholic University of Temuco, using real data from that institution. This study reveals relevant variables in opinion of human experts, which demonstrates the ability of automatic models to represent the dropout and graduation at the university.
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