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首页> 外文期刊>Journal of Pharmacokinetics and Pharmacodynamics >Simultaneous versus sequential optimal design for pharmacokinetic-pharmacodynamic models with FO and FOCE considerations
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Simultaneous versus sequential optimal design for pharmacokinetic-pharmacodynamic models with FO and FOCE considerations

机译:考虑FO和FOCE的药代动力学-药效学模型的同时与顺序优化设计

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We consider nested multiple response models which are used extensively in the area of pharmacometrics. Given the conditional nature of such models, differences in predicted responses are a consequence of different assumptions about how the models interact. As such, sequential versus simultaneous and First Order (FO) versus First Order Conditional Estimation (FOCE) techniques have been explored in the literature where it was found that the sequential and FO approaches can produce biased results. It is therefore of interest to determine any design consequences between the various methods and approximations. As optimal design for nonlinear mixed effects models is dependent upon initial parameter estimates and an approximation to the expected Fisher information matrix, it is necessary to incorporate any influence of nonlinearity (or parameter-effects curvature) into our exploration. Hence, sequential versus simultaneous design with FO and FOCE considerations are compared under low, typical and high degrees of nonlinearity. Additionally, predicted standard errors of parameters are also compared to empirical estimates formed via a simulation/estimation study in NONMEM. Initially, design theory for nested multiple response models is developed and approaches mentioned above are investigated by considering a pharmacokinetic–pharmacodynamic model found in the literature. We consider design for situations where all responses are continuous and extend this methodology to the case where a response may be a discrete random variable. In particular, for a binary response pharmacodynamic model, it is conjectured that such responses will offer little information about all parameters and hence a sequential optimization, in the form of product design optimality, may yield near optimal designs.
机译:我们考虑在药理学领域广泛使用的嵌套多重反应模型。考虑到此类模型的条件性质,预测响应中的差异是对模型交互方式的不同假设的结果。这样,在文献中已经探索了顺序对方法,同时对方法以及一阶(FO)与一阶条件估计(FOCE)技术,发现顺序和FO方法会产生偏差。因此,有兴趣确定各种方法和近似值之间的任何设计结果。由于非线性混合效应模型的最佳设计取决于初始参数估计以及对预期Fisher信息矩阵的近似,因此有必要将非线性的任何影响(或参数影响曲率)纳入我们的探索。因此,在低,典型和高非线性度下,比较了具有FO和FOCE考虑因素的顺序设计与同步设计。此外,还将参数的预测标准误差与通过NONMEM中的模拟/估计研究形成的经验估计进行比较。最初,开发了嵌套多重反应模型的设计理论,并通过考虑文献中发现的药代动力学-药效学模型研究了上述方法。我们考虑针对所有响应都是连续的情况进行设计,并将这种方法扩展到响应可能是离散随机变量的情况。特别地,对于二元反应药效学模型,可以推测这样的反应将几乎没有提供关于所有参数的信息,因此以产品设计最优性的形式进行的顺序优化可能会产生接近最优的设计。

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