STUDENT GRADUATION PREDICTION SYSTEM BASED ON ACADEMIC AND NON-ACADEMIC (EQ) DATA USING C4.5 ALGORITHM

Willy Hanafi, Y. H. Chrisnanto, Ade Kania Ningsih
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Abstract

The graduation profile is an important element for higher education accreditation standards. It reflects the performance of the adopted education system within a certain period. The better the profile graduation, the better the value of the accreditation. Some students are unable to complete their studies on time or even fail to complete their studies because they exceed the specified time limit, which is seven years, and it negatively affects institutions' accreditation. To prevent this from happening, it is necessary to know what obstacles that cause these students could not complete their studies on time. by knowing this information, prevention can be done for students who are potentially unable to complete their studies on time. The purpose of this study was to make a system that can predict the graduation timeline and the factors that influence it. The data used was graduation data from undergraduate students majoring in psychology from 2015 to 2017 at a university in Cimahi. The data had a total record of 461 students, 44 subject value attributes, 13 psychotest attributes, and class attributes. We generated the result by using decission tree method with C4.5 algorithm, which produces 90.32% accuracy. The depth of the tree can also influence the accuracy of the algorithm. This study also found that academic and non-academic (EQ) scores can affect students’ graduation time.
基于学术和非学术(eq)数据的学生毕业预测系统采用c4.5算法
毕业档案是高等教育认证标准的重要组成部分。它反映了所采用的教育制度在一定时期内的绩效。学历档案越好,认证价值越高。一些学生因为超过规定的时间(七年)而无法按时完成学业,甚至无法完成学业,这对机构的认证产生了负面影响。为了防止这种情况发生,有必要知道是什么障碍导致这些学生不能按时完成学业。通过了解这些信息,可以对可能无法按时完成学业的学生进行预防。本研究的目的是建立一个能够预测毕业时间及其影响因素的系统。使用的数据是西马西一所大学2015年至2017年心理学专业本科生的毕业数据。数据共记录了461名学生,44个科目价值属性,13个心理测试属性和班级属性。采用C4.5算法的决策树方法生成结果,准确率达到90.32%。树的深度也会影响算法的准确性。本研究还发现,学业和非学业(情商)分数会影响学生的毕业时间。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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