Mixed Models of Non-Proportional Hazard and Application in The Open Distance Education Students Retention Data

D. Ratnaningsih, A. Kurnia, A. Saefuddin, I. Mangku
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Abstract

The problem that arises in the Cox model is that there are more than two types of covariates and the presence of random effects is a non-proportional hazard (NPH). One example of a case that involves many factors is student retention. Low student retention can lead to dropping out of college or failure in completing studies. The purpose of this study is to overcome the problem of NPH caused by the presenceof time-independent covariates, time-dependent covariates, and random effects. The research method uses simulation. Some of the modified models are the stratified Cox model, the extended Cox model, and the frailty model. The developed model is applied to distance education student retention data. The results of the study show that frailty and study programs provide considerable diversity in explaining thetotal diversity of the model. It can be concluded that frailty needs to be considered by UT to improve the quality of services to students. In addition, other covariates that have a significant effect on UT student learning retention modeling are age, domicile, gender, GPA, marital status, employment status, number of credits taken, and number of registered courses.
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非比例风险混合模型及其在远程开放教育学生保留数据中的应用
Cox模型中出现的问题是存在两种以上的协变量,并且随机效应的存在是非比例风险(NPH)。一个涉及许多因素的例子是学生留校率。学生保留率低可能导致辍学或无法完成学业。本研究的目的是克服由于时间无关协变量、时间相关协变量和随机效应的存在而引起的NPH问题。研究方法采用仿真方法。修正后的模型有分层Cox模型、扩展Cox模型和脆弱性模型。将所建立的模型应用于远程教育学生保留数据。研究结果表明,脆弱性和研究计划在解释模型的总多样性方面提供了相当大的多样性。可以得出结论,UT需要考虑脆弱性,以提高对学生的服务质量。此外,对UT学生学习保留建模有显著影响的协变量还有年龄、住所、性别、GPA、婚姻状况、就业状况、修学分数、注册课程数。
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CiteScore
0.70
自引率
33.30%
发文量
20
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