Optimal discrimination designs for multifactor experiments

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Abstract

In this paper efficient designs are determined when Anderson's procedure is applied in order to identify the degree of a multivariate polynomial regression model. It is shown that the optimal designs are very closely related to model robust designs which maximize a weighted p-mean of D-efficiencies. As a consequence we obtain designs with high efficiency for model discrimination and for the statistical analysis in the identified model.

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APA

Dette, H., & Röder, I. (1997). Optimal discrimination designs for multifactor experiments. Annals of Statistics, 25(3), 1161–1175. https://doi.org/10.1214/aos/1069362742

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