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The use of simulated annealing for finding optimal population designs.

机译:使用模拟退火查找最佳种群设计。

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摘要

The development of functions for MATLAB and S-PLUS that can be used for the evaluation of specific population pharmacokinetic designs has been described recently. These functions are based on the evaluation of an approximation of the population Fisher information matrix. Optimisation of the design of the population experiment can be made on the basis of D-optimal design techniques, where the determinant of the population Fisher information matrix is maximised. This maximisation is complex due to the convoluted nature of the surface of the determinant. Four optimisation algorithms (simplex, non-adaptive random search, non-adaptive random search followed by simplex and simulated annealing) are compared in their ability to optimise the sampling times for various design structures for three examples of population pharmacokinetic models. In all cases, despite more computing time, simulated annealing was superior to the other methods for finding optimal designs with greater benefits being seen over the other algorithms for the more complex designs.
机译:最近已经描述了可用于评估特定人群药代动力学设计的MATLAB和S-PLUS功能的开发。这些函数基于对人口Fisher信息矩阵的近似估计。可以在D最优设计技术的基础上优化种群实验的设计,其中最大化种群Fisher信息矩阵的行列式。由于行列式表面的回旋特性,这种最大化非常复杂。比较了四种优化算法(简单,非自适应随机搜索,非自适应随机搜索后跟单纯形法和模拟退火),以针对人群药代动力学模型的三个示例,优化了各种设计结构的采样时间。在所有情况下,尽管有更多的计算时间,但是模拟退火优于其他方法来找到最佳设计,与其他算法相比,对于更复杂的设计,它具有更大的优势。

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