Bayesian modeling of location, scale, and shape parameters in skew‐normal regression models

Martha Lucía Corrales, Edilberto Cepeda Cuervo
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Abstract

In this paper, we propose Bayesian skew‐normal regression models where the location, scale and shape parameters follow (linear or nonlinear) regression structures, and the variable of interest follows the Azzalini skew‐normal distribution. A Bayesian method is developed to fit the proposed models, using working variables to build the kernel transition functions. To illustrate the performance of the proposed Bayesian method and application of the model to analyze statistical data, we present results of simulated studies and of the application to studies of forced displacement in Colombia.
斜正态回归模型中位置、规模和形状参数的贝叶斯建模
在本文中,我们提出了贝叶斯偏正态回归模型,其中位置,规模和形状参数遵循(线性或非线性)回归结构,并且感兴趣的变量遵循Azzalini偏正态分布。提出了一种贝叶斯方法来拟合所提出的模型,使用工作变量来构建核转移函数。为了说明所提出的贝叶斯方法的性能以及该模型在分析统计数据方面的应用,我们给出了模拟研究的结果以及在哥伦比亚被迫流离失所研究中的应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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