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Methods for Bivariate Survival Data with Mismeasured Covariates under an Accelerated Failure Time Model

机译:加速故障时间模型中具有成立协变量的双变量存活数据的方法

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Accelerated failure time models are useful in survival data analysis, but such models have received little attention in the context of measurement error. In this paper we discuss an accelerated failure time model for bivariate survival data with covariates subject to measurement error. In particular, methods based on the marginal and joint models are considered. Consistency and efficiency of the resultant estimators are investigated. Simulation studies are carried out to evaluate the performance of the estimators as well as the impact of ignoring the measurement error of covariates. As an illustration we apply the proposed methods to analyze a data set arising from the Busselton Health Study (Knuiman et al., 1994).
机译:加速故障时间模型可用于生存数据分析,但此类模型在测量误差的背景下几乎没有受到关注。在本文中,我们讨论了与经测量误差的协变量的双变量存活数据的加速故障时间模型。特别地,考虑了基于边缘和联合模型的方法。调查了所得估计的一致性和效率。进行了仿真研究,以评估估算器的性能以及忽略协变量的测量误差的影响。作为一例,我们应用所提出的方法来分析来自Busselton健康研究产生的数据集(Knuiman等,1994)。

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