具有偏正态随机效应的增广混合Beta模型的贝叶斯分析

Zohreh Fallah Mohsenkhani, M. Mohammadzadeh, T. Baghfalaki
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引用次数: 0

摘要

不同领域的许多研究都包括应加以分析的比率或比例形式的数据。数据也可以接受值0和1。增广β回归模型是一个合适的选择连续响应变量在封闭的单位区间[0,1]。该模型中的数据基于三种分布的组合,即0和1处的退化分布和(0,1)处的beta密度。通常在模型中加入随机效应,以适应数据结构和相关性影响。在这些模型中,随机效应通常被假设为正态分布,而在实际研究中,这一假设经常被违反。本文提出了具有偏正态分布随机效应的增广混合β回归模型。马尔可夫链蒙特卡罗方法采用贝叶斯方法进行参数估计。将该模型应用于《劳动力调查》的一个实际数据集的分析。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Bayesian Analysis of Augmented Mixed Beta Models with Skew-Normal Random Effects
Many studies in different areas include data in the form of rates or proportions that should be analyzed. The data may also accept values zero and one. Augmented beta regression models are an appropriate choice for continuous response variables in the closed unit interval [0, 1]. The data in this model are based on a combination of three distributions, degenerate distribution at 0 and 1, and a beta density in (0, 1). The random effects are usually added to the model for accommodating the data structures as well as correlation impacts. In most of these models, the random effects are generally assumed to be normally distributed, while this assumption is frequently violated in applied studies. In this paper, the augmented mixed beta regression model with skew-normal distributed random effects is presented. A Bayesian approach is adopted for parameter estimation using Markov Chain Monte Carlo method. The proposed model is applied to analyze a real data set from Labor Force Survey.
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