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首页> 外文期刊>The AAPS Journal >Optimal Design in Population Kinetic Experiments by Set-Valued Methods
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Optimal Design in Population Kinetic Experiments by Set-Valued Methods

机译:集值方法在种群动力学实验中的优化设计

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摘要

We propose a new method for optimal experimental design of population pharmacometric experiments based on global search methods using interval analysis; all variables and parameters are represented as intervals rather than real numbers. The evaluation of a specific design is based on multiple simulations and parameter estimations. The method requires no prior point estimates for the parameters, since the parameters can incorporate any level of uncertainty. In this respect, it is similar to robust optimal design. Representing sampling times and covariates like doses by intervals gives a direct way of optimizing with rigorous sampling and dose intervals that can be useful in clinical practice. Furthermore, the method works on underdetermined problems for which traditional methods typically fail.
机译:基于区间分析的全局搜索方法,提出了一种新的群体药理实验优化实验设计方法。所有变量和参数都表示为间隔而不是实数。特定设计的评估基于多个仿真和参数估计。该方法不需要参数的先验点估计,因为参数可以包含任何级别的不确定性。在这方面,它类似于健壮的最佳设计。通过间隔表示采样时间和协变量(如剂量)可提供一种通过严格的采样和剂量间隔进行优化的直接方法,这种方法可用于临床实践。此外,该方法适用于传统方法通常无法解决的不确定问题。

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