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Bayesian design for dichotomous repeated measurements with autocorrelation

机译:使用自相关的二分法重复测量的贝叶斯设计

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摘要

In medicine and health sciences, binary outcomes are often measured repeatedly to study their change over time. A problem for such studies is that designs with an optimal efficiency for some parameter values may not be efficient for other values. To handle this problem, we propose Bayesian designs which formally account for the uncertainty in the parameter values for a mixed logistic model which allows quadratic changes over time. Bayesian D-optimal allocations of time points are computed for different priors, costs, covariance structures and values of the autocorrelation. Our results show that the optimal number of time points increases with the subject-to-measurement cost ratio, and that neither the optimal number of time points nor the optimal allocations of time points appear to depend strongly on the prior, the covariance structure or on the size of the autocorrelation. It also appears that for subject-to-measurement cost ratios up to five, four equidistant time points, and for larger cost ratios, five or six equidistant time points are highly efficient. Our results are compared with the actual design of a respiratory infection study in Indonesia and it is shown that, selection of a Bayesian optimal design will increase efficiency, especially for small cost ratios.
机译:在医学和健康科学中,经常对二进制结果进行重复测量以研究其随时间的变化。这样的研究的问题是,对于某些参数值具有最佳效率的设计对于其他值可能无效。为了解决这个问题,我们提出了贝叶斯设计,该设计正式考虑了混合逻辑模型参数值的不确定性,该模型允许随时间发生二次变化。针对不同的先验,成本,协方差结构和自相关值,计算时间点的贝叶斯D最优分配。我们的结果表明,最佳时间点数随对象与测量成本之比的增加而增加,并且最佳时间点数或最佳时间点分配似乎都不强烈依赖于先验,协方差结构或自相关的大小。似乎对于对象到测量的成本比率,最多五个,四个等距时间点,对于较大的成本比率,五个或六个等距时间点是高效的。我们的结果与印度尼西亚呼吸道感染研究的实际设计进行了比较,结果表明,选择贝叶斯优化设计将提高效率,尤其是对于小成本比率而言。

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