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Optimal Designs for Multi-Response Nonlinear Regression Models With Several Factors via Semidefinite Programming

机译:半响应非线性回归模型的优化设计,通过SEMIDEFINITE编程具有多种因素

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摘要

We use semidefinite programming (SDP) to find a variety of optimal designs for multi-response linear models with multiple factors, and for the first time, extend the methodology to find optimal designs for multi-response nonlinear models and generalized linear models with multiple factors. We construct transformations that (i) facilitate improved formulation of the optimal design problems into SDP problems, (ii) enable us to extend SDP methodology to find optimal designs from linear models to nonlinear multi-response models with multiple factors and (iii) correct erroneously reported optimal designs in the literature caused by formulation issues. We also derive invariance properties of optimal designs and their dependence on the covariance matrix of the correlated errors, which are helpful for reducing the computation time for finding optimal designs. Our applications include finding A-, A(s)-, c-, and D-optimal designs for multi-response multi-factor polynomial models, locally c- and D-optimal designs for a bivariate response model and for a bivariate Probit model useful in the biosciences.
机译:我们使用SEMIDEFINITE编程(SDP)来找到多响应线性型号的各种最佳设计,具有多种因素,并首次扩展方法,以找到多响应非线性模型和具有多种因素的广义线性模型的最佳设计。我们构建转换(i)促进改进的最佳设计问题的制定进入SDP问题,(ii)使我们能够扩展SDP方法,以找到从线性模型到非线性多响应模型的最佳设计,并错误地正确地正确报告了由制定问题引起的文献中的最佳设计。我们还导出最佳设计的不变性属性及其对相关误差协方差矩阵的依赖,这有助于减少查找最佳设计的计算时间。我们的应用包括查找用于多响应多因素多项式模型的A-,A(S),C - 和D-Optimal设计,用于双抗体响应模型的本地C和D-OPTEMAL设计以及Bifariate概率模型在生物科学中有用。

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