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A robust multivariate Birnbaum-Saunders regression model

机译:一个强大的多变量Birnbaum-Saunders回归模型

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摘要

This work presents a log-linear model for multivariate Birnbaum-Saunders distribution that can be used in survival analysis to investigate correlated log-lifetimes of two or more units. This model is studied through the use of a generalized multivariate sinh-normal distribution, which is built from the multivariate mixture scale of normal distributions. The marginal and conditional linear regression models of the proposed multivariate Birnbaum-Saunders linear regression model are generalizations of the Birnbaum-Saunders linear regression models of Rieck and Nedelman [A log-linear model for the Birnbaum-Saunders distribution. Technometrics. 1991;33:51-60], which have been used effectively to model lifetime and reliability data. We exploit a nice hierarchical representation of the regression model to propose a fast and accurate EM algorithm to compute the maximum likelihood estimates of the model parameters. Hypothesis testing is also performed by the use of the asymptotic normality of the maximum likelihood estimators. Finally, the results of simulation studies as well as an application to a real dataset are displayed, where we also is include a robustness feature of the estimation procedure developed here.
机译:这项工作提出了一种用于多元Birnbaum-Saunders分布的对数线性模型,可用于存活分析,以研究两个或更多个单元的相关对数。通过使用广义多变量Sinh正常分布研究该模型,该模型是由多元分布的多元混合规模构建的。所提出的多变量Birnbaum-Saunders线性回归模型的边缘和条件线性回归模型是Rieck和Nedelman的Birnbaum-Saunders线性回归模型的概括[Birnbaum-Saunders分布的对数线性模型。 Technometrics。 1991年; 33:51-60],已有效地用于模拟寿命和可靠性数据。我们利用回归模型的良好分层表示来提出快速准确的EM算法来计算模型参数的最大似然估计。假设测试也通过使用最大似然估计器的渐近常态来执行。最后,显示仿真研究的结果以及对实际数据集的应用,其中我们还包括此处开发的估计过程的稳健性特征。

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