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Bayesian Analysis of Sample Selection and Endogenous Switching Regression Models with Random Coefficients Via MCMC Methods

机译:基于mCmC方法的随机系数样本选择和内生切换回归模型的贝叶斯分析

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摘要

This paper develops a Bayesian method for estimating and testing the parameters of the endogenous switching regression model and sample selection models. Random coefficients are incorporated in both the decision and regime regression models to reflect heterogeneity across individual units or clusters and correlation of observations within clusters. The case of tobit type regime regression equations are also considered. A combination of Markov chain Monte Carlo methods, data augmentation and Gibbs sampling is used to facilitate computation of Bayes posterior statistics. A simulation study is conducted to compare estimates from full and reduced blocking schemes and to investigate sensitivity to prior information. The Bayesian methodology is applied to data sets on currency hedging and goods trade, cross-country privatisation, and adoption of soil conservation technology. Estimation and inference results on marginal effects, average decision or selection effect as well as model comparison are presented. The expected decision effect is broken down into average effect of individual's decision on the response variable, decision effect due to random components, and differential effect due to latent correlated random components. Application of the proposed Bayesian MCMC algorithm to real data sets reveal that the normality assumption still holds for most commonly encountered economic data.
机译:本文提出了一种贝叶斯方法来估计和测试内生转换回归模型和样本选择模型的参数。决策模型和体制回归模型中均纳入了随机系数,以反映各个单位或集群之间的异质性以及集群内观测值的相关性。还考虑了轨道型状态回归方程的情况。马尔可夫链蒙特卡罗方法,数据扩充和吉布斯采样的组合被用来促进贝叶斯后验统计的计算。进行了模拟研究,以比较来自完整和简化的阻止方案的估计,并调查对先前信息的敏感性。贝叶斯方法论适用于有关货币对冲和商品贸易,跨国私有化以及采用土壤保护技术的数据集。给出了对边际效应,平均决策或选择效应以及模型比较的估计和推断结果。预期的决策效果可分为个人决策对响应变量的平均效果,由于随机成分导致的决策效果和由于潜在相关随机成分引起的微分效果。所提出的贝叶斯MCMC算法在真实数据集上的应用表明,对于大多数经常遇到的经济数据,正态性假设仍然成立。

著录项

  • 作者

    Odejar M. A. E.;

  • 作者单位
  • 年度 2002
  • 总页数
  • 原文格式 PDF
  • 正文语种 {"code":"en","name":"English","id":9}
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