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首页> 外文期刊>Saudi Pharmaceutical Journal >Random sparse sampling strategy using stochastic simulation and estimation for a population pharmacokinetic study
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Random sparse sampling strategy using stochastic simulation and estimation for a population pharmacokinetic study

机译:基于随机模拟和估计的随机稀疏采样策略用于人群药代动力学研究

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The purpose of this study was to use the stochastic simulation and estimation method to evaluate the effects of sample size and the number of samples per individual on the model development and evaluation. The pharmacokinetic parameters and inter- and intra-individual variation were obtained from a population pharmacokinetic model of clinical trials of amlodipine. Stochastic simulation and estimation were performed to evaluate the efficiencies of different sparse sampling scenarios to estimate the compartment model. Simulated data were generated a 1000 times and three candidate models were used to fit the 1000 data sets. Fifty-five kinds of sparse sampling scenarios were investigated and compared. The results showed that, 60 samples with three points and 20 samples with five points are recommended, and the quantitative methodology of stochastic simulation and estimation is valuable for efficiently estimating the compartment model and can be used for other similar model development and evaluation approaches.
机译:这项研究的目的是使用随机模拟和估计方法来评估样本大小以及每个人的样本数量对模型开发和评估的影响。从氨氯地平临床试验的总体药代动力学模型获得药代动力学参数以及个体间和个体内变异。进行了随机模拟和估计,以评估不同稀疏采样方案估计隔室模型的效率。模拟数据生成了1000次,并且使用了三个候选模型来拟合1000个数据集。研究并比较了五十五种稀疏采样方案。结果表明,推荐使用60个具有3点的样本和20个具有5个点的样本,随机模拟和估计的定量方法对于有效地估计隔室模型具有重要的参考价值,并可用于其他类似的模型开发和评估方法。

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