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Sampling Based Approach to Bayesian Analysis of Binary Regression Model with Incomplete Data
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  • Sampling Based Approach to Bayesian Analysis of Binary Regression Model with Incomplete Data
  • Sampling Based Approach to Bayesian Analysis of Binary Regression Model with Incomplete Data
저자명
Chung. Young-Shik
간행물명
Journal of the Korean statistical society
권/호정보
1997년|26권 4호|pp.493-505 (13 pages)
발행정보
한국통계학회
파일정보
정기간행물|ENG|
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이 논문은 한국과학기술정보연구원과 논문 연계를 통해 무료로 제공되는 원문입니다.
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기타언어초록

The analysis of binary data appears to many areas such as statistics, biometrics and econometrics. In many cases, data are often collected in which some observations are incomplete. Assume that the missing covariates are missing at random and the responses are completely observed. A method to Bayesian analysis of the binary regression model with incomplete data is presented. In particular, the desired marginal posterior moments of regression parameter are obtained using Meterpolis algorithm (Metropolis et al. 1953) within Gibbs sampler (Gelfand and Smith, 1990). Also, we compare logit model with probit model using Bayes factor which is approximated by importance sampling method. One example is presented.