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首页> 外文期刊>Statistical methods in medical research >Bayesian inference on mixed-effects varying-coefficient joint models with skew-t distribution for longitudinal data with multiple features
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Bayesian inference on mixed-effects varying-coefficient joint models with skew-t distribution for longitudinal data with multiple features

机译:贝叶斯推断对混合效应变化系数联合模型,具有多种特征的纵向数据的歪斜分布

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摘要

In AIDS clinical study, two biomarkers, HIV viral load and CD4 cell counts, play important roles. It is well known that there is inverse relationship between the two. Nevertheless, the relationship is not constant but time varying. The mixed-effects varying-coefficient model is capable of capturing the time varying nature of such relationship from both population and individual perspective. In practice, the nucleic acid sequence-based amplification assay is used to measure plasma HIV-1 RNA with a limit of detection (LOD) and the CD4 cell counts are usually measured with much noise and missing data often occur during the treatment. Furthermore, most of the statistical models assume symmetric distribution, such as normal, for the response variables. Often time, normality assumption does not hold in practice. Therefore, it is important to explore all these factors when modeling the real data. In this article, we establish a joint model that accounts for asymmetric and LOD data for the response variable, and covariate measurement error and missingness simultaneously in the mixed-effects varying-coefficient modeling framework. A Bayesian inference procedure is developed to estimate the parameters in the joint model. The proposed model and method are applied to a real AIDS clinical study and various comparisons of a few models are performed.
机译:在艾滋病临床研究中,两个生物标志物,艾滋病毒病毒载荷和CD4细胞计数,起重要作用。众所周知,两者之间存在反向关系。然而,这种关系并不恒定,但时间变化。混合效应变化系数模型能够从人口和个人角度来捕获这种关系的时间变化性质。实际上,使用基于核酸序列的扩增测定来测量具有检测限(LOD)的血浆HIV-1 RNA,并且CD4细胞计数通常用大量噪声测量,并且在治疗过程中经常发生缺失数据。此外,大多数统计模型都假设响应变量的对称分布,例如正常。通常是时候,正常假设在实践中没有保持。因此,在建模真实数据时探讨所有这些因素是很重要的。在本文中,我们建立了一个联合模型,其考虑了响应变量的不对称和LOD数据,并在混合效应变化的变化模拟框架中同时进行协变量测量误差和缺失。开发了贝叶斯推理程序以估计联合模型中的参数。该拟议的模型和方法应用于真正的辅助临床研究,并进行了一些模型的各种比较。

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