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Original Articles

Optimal designs for multivariate logistic mixed models with longitudinal data

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Pages 850-864 | Received 24 Feb 2017, Accepted 12 Dec 2017, Published online: 10 Jan 2018
 

ABSTRACT

This paper considers the optimal design problem for multivariate mixed-effects logistic models with longitudinal data. A decomposition method of the binary outcome and the penalized quasi-likelihood are used to obtain the information matrix. The D-optimality criterion based on the approximate information matrix is minimized under different cost constraints. The results show that the autocorrelation coefficient plays a significant role in the design. To overcome the dependence of the D-optimal designs on the unknown fixed-effects parameters, the Bayesian D-optimality criterion is proposed. The relative efficiencies of designs reveal that both the cost ratio and autocorrelation coefficient play an important role in the optimal designs.

MATHEMATICS SUBJECT CLASSIFICATION:

Additional information

Funding

Dr. Yue was supported by the National Natural Science Foundation of China under Grant Number 11471216.

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