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首页> 外文期刊>Expert Systems with Application >Implementation of a genetic algorithm on MD-optimal designs for multivariate response surface models
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Implementation of a genetic algorithm on MD-optimal designs for multivariate response surface models

机译:遗传算法在多变量响应面模型的MD最优设计上的实现

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摘要

This study presents a genetic algorithm (CA) for identifying the exact D-optimal design for multivariate response surface models (called MD-optimal design). The MD-optimal design minimizes the volume of joint confidence regions of model parameters. The covariance between any two responses is assumed to be identical in the two examples of four responses and biresponse problems considered in this study. We have also provided an example of covariance estimation. In order to obtain the initial candidate set, we first obtain a D-optimal design for each response model by using a conventional approach; then, the set of solutions obtained from the individual model is treated as the initial set in the GA. This shows that the MD-optimal designs converge toward the same D-optimal design in a single response linear model; however, the different variance-covariance matrices attain dissimilar objective values. The GA exhibits stable representation in multiple response design problems and performs better than the US algorithm, which is generated only near the MD-optimal design. It is possible for an experimenter to set a high crossover rate except full crossover, and estimate the variance-covariance matrix in the preprocess or set it as an identity matrix in the process of the GA.
机译:这项研究提出了一种遗传算法(CA),用于识别多元响应面模型的精确D最优设计(称为MD最优设计)。 MD优化设计可最大程度地减少模型参数的联合置信区域的体积。在本研究中考虑的四个响应和双响应问题的两个示例中,假定任何两个响应之间的协方差都相同。我们还提供了协方差估计的示例。为了获得初始候选集,我们首先使用常规方法为每个响应模型获得D最优设计。然后,将从单个模型中获得的解集视为GA中的初始集。这表明在单个响应线性模型中,MD最优设计趋向于相同的D最优设计。但是,不同的方差-协方差矩阵可达到不同的目标值。遗传算法在多个响应设计问题中表现出稳定的表现,并且比仅在MD最佳设计附近生成的US算法表现更好。实验人员可以设置除完全交叉以外的较高交叉率,并在预处理过程中估算方差-协方差矩阵,或者在GA过程中将其设置为恒等矩阵。

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