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首页> 外文期刊>Journal of pharmacokinetics and pharmacodynamics >Accelerating Monte Carlo power studies through parametric power estimation
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Accelerating Monte Carlo power studies through parametric power estimation

机译:通过参数功率估算来加速蒙特卡洛功率研究

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摘要

Estimating the power for a non-linear mixed-effects model-based analysis is challenging due to the lack of a closed form analytic expression. Often, computationally intensive Monte Carlo studies need to be employed to evaluate the power of a planned experiment. This is especially time consuming if full power versus sample size curves are to be obtained. A novel parametric power estimation (PPE) algorithm utilizing the theoretical distribution of the alternative hypothesis is presented in this work. The PPE algorithm estimates the unknown non-centrality parameter in the theoretical distribution from a limited number of Monte Carlo simulation and estimations. The estimated parameter linearly scales with study size allowing a quick generation of the full power versus study size curve. A comparison of the PPE with the classical, purely Monte Carlo-based power estimation (MCPE) algorithm for five diverse pharmacometric models showed an excellent agreement between both algorithms, with a low bias of less than 1.2 % and higher precision for the PPE. The power extrapolated from a specific study size was in a very good agreement with power curves obtained with the MCPE algorithm. PPE represents a promising approach to accelerate the power calculation for non-linear mixed effect models.
机译:由于缺乏闭合形式的分析表达式,因此估计基于非线性混合效应模型的分析的能力具有挑战性。通常,需要采用计算密集型的蒙特卡洛研究来评估计划实验的能力。如果要获得全功率与样本大小的曲线,这尤其耗时。这项工作提出了一种新的参数功率估计(PPE)算法,该算法利用替代假设的理论分布。 PPE算法从有限数量的蒙特卡洛模拟和估计中估计理论分布中的未知非中心参数。估计参数随研究尺寸线性缩放,从而可以快速生成全功率与研究尺寸曲线。将PPE与经典的纯基于蒙特卡洛的功率估计(MCPE)算法用于五个不同的药理模型进行比较,发现这两种算法之间具有很好的一致性,PPE的偏差小于1.2%,精度更高。从特定研究规模推断出的功效与MCPE算法获得的功效曲线非常吻合。 PPE代表了一种有前途的方法,可以加快非线性混合效应模型的功率计算。

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