2021
DOI: 10.1002/cjs.11674
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Minimax A‐, c‐, and I‐optimal regression designs for models with heteroscedastic errors

Abstract: It is well known that it is difficult to construct minimax optimal designs. Furthermore, since in practice we never know the true error variance, it is important to allow small deviations and construct robust optimal designs. We investigate a class of minimax optimal regression designs for models with heteroscedastic errors that are robust against possible misspecification of the error variance. Commonly used A‐, c‐, and I‐optimality criteria are included in this class of minimax optimal designs. Several theor… Show more

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