2018
DOI: 10.1002/qre.2335
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Generalized BayesianDcriterion for single‐stratum and multistratum designs

Abstract: The Bayesian D criterion modifies the D‐optimality approach to reduce dependence of the selected design on an assumed model. This criterion has been applied to select various single‐stratum designs for completely randomized experiments when the number of effects is greater than the sample size. In many industrial experiments, complete randomization is sometimes expensive or infeasible, and hence, designs used for the experiments often have multistratum structures. However, the original Bayesian D criterion was… Show more

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Cited by 7 publications
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References 34 publications
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