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Jointly modeling longitudinal proportional data and survival times with an application to the quality of life data in a breast cancer trial

机译:联合建模纵向比例数据和生存时间,并将其应用于乳腺癌试验中的生活质量数据

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摘要

Motivated by the joint analysis of longitudinal quality of life data and recurrence free survival times from a cancer clinical trial, we present in this paper two approaches to jointly model the longitudinal proportional measurements, which are confined in a finite interval, and survival data. Both approaches assume a proportional hazards model for the survival times. For the longitudinal component, the first approach applies the classical linear mixed model to logit transformed responses, while the second approach directly models the responses using a simplex distribution. A semiparametric method based on a penalized joint likelihood generated by the Laplace approximation is derived to fit the joint model defined by the second approach. The proposed procedures are evaluated in a simulation study and applied to the analysis of breast cancer data motivated this research.
机译:出于对来自癌症临床试验的纵向生活质量数据和无复发生存时间的联合分析的激励,我们在本文中提出了两种方法来联合模拟纵向比例测量,并限制在有限的时间间隔内和生存数据。两种方法都假定了生存时间的比例风险模型。对于纵向分量,第一种方法将经典线性混合模型应用于logit变换后的响应,而第二种方法使用单纯形分布直接对响应进行建模。推导了基于Laplace近似生成的惩罚联合似然的半参数方法,以拟合第二种方法定义的联合模型。拟议的程序在模拟研究中进行了评估,并应用于根据该研究推动的乳腺癌数据分析中。

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