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Shrinkage in Nonlinear Mixed-Effects Population Models: Quantification Influencing Factors and Impact

机译:非线性混合效应人口模型中的收缩:量化影响因素和影响

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摘要

Shrinkage of empirical Bayes estimates (EBEs) of posterior individual parameters in mixed-effects models has been shown to obscure the apparent correlations among random effects and relationships between random effects and covariates. Empirical quantification equations have been widely used for population pharmacokinetic/pharmacodynamic models. The objectives of this manuscript were (1) to compare the empirical equations with theoretically derived equations, (2) to investigate and confirm the influencing factor on shrinkage, and (3) to evaluate the impact of shrinkage on estimation errors of EBEs using Monte Carlo simulations. A mathematical derivation was first provided for the shrinkage in nonlinear mixed effects model. Using a linear mixed model, the simulation results demonstrated that the shrinkage estimated from the empirical equations matched those based on the theoretically derived equations. Simulations with a two-compartment pharmacokinetic model verified that shrinkage has a reversed relationship with the relative ratio of interindividual variability to residual variability. Fewer numbers of observations per subject were associated with higher amount of shrinkage, consistent with findings from previous research. The influence of sampling times appeared to be larger when fewer PK samples were collected for each individual. As expected, sample size has very limited impact on shrinkage of the PK parameters of the two-compartment model. Assessment of estimation error suggested an average 1:1 relationship between shrinkage and median estimation error of EBEs.Electronic supplementary materialThe online version of this article (doi:10.1208/s12248-012-9407-9) contains supplementary material, which is available to authorized users.
机译:混合效应模型中后验单个参数的经验贝叶斯估计(EBE)的缩减已显示掩盖了随机效应之间的明显相关性以及随机效应与协变量之间的关系。经验定量方程已被广泛用于群体药代动力学/药效学模型。该手稿的目的是(1)将经验方程与理论推导方程进行比较;(2)研究并确认收缩的影响因素;(3)使用蒙特卡洛评估收缩对EBE估计误差的影响模拟。首先为非线性混合效应模型中的收缩率提供了数学推导。使用线性混合模型,仿真结果表明,根据经验方程估算的收缩率与基于理论推导方程的收缩率相匹配。用两室药代动力学模型进行的仿真证明,收缩率与个体间变异性与残留变异性的相对比率具有相反的关系。与以前的研究结果一致,每个受试者的观察次数越少,收缩率越高。当为每个人收集的PK样本较少时,采样时间的影响似乎更大。不出所料,样本量对两室模型的PK参数收缩的影响非常有限。估计误差的评估表明收缩率与EBE的中值估计误差之间存在平均1:1的关系。电子补充材料本文的在线版本(doi:10.1208 / s12248-012-9407-9)包含补充材料,可授权使用用户。

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