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논문 기본 정보

자료유형
학술저널
저자정보
Jun Woo Jo (Kyungpook National University) Kil Ho Cho (Kyungpook National University) Yongku kim (Kyungpook National University)
저널정보
한국데이터정보과학회 한국데이터정보과학회지 한국데이터정보과학회지 제35권 제1호
발행연도
2024.1
수록면
153 - 160 (8page)
DOI
10.7465/jkdi.2024.35.1.153

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초록· 키워드

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In fact, most statistical surveys consist of sample surveys, not total surveys. This paper considers the Bayesian hierarchical modeling for estimation in surveys with non-sample. In our study, there are two different surveys and the variables of interest consist of skewed values. For this problems, we first use a matching algorithm for two surveys and then develop a Bayesian hierarchical models have been widely used for small area estimation. The Bayesian hierarchical model is based on a very simple model, and can be set up using a very complex data model. The paper by Molina, Nandram, and Rao (2014) introduces a Bayesian hierarchical model of continuous, right-skewed data. In this study, sskewed variables were estimated using log transformation, and our purpose is to develop the previous method using skew normal distribution for model assumptions. Skew normal distribution, a family of distributions including the standard normal but with an extra parameter to regulate skewness was first introduced by O’Hagan and Leonard(1976). Our model was evaluated by comparing with Nandram’s model in simulation study.

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Absract
1. Introduction
2. Model specification
3. Simulation study
4. Conclusion
References

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