Implementasi Model Poisson Bayes Berhirarki Dua-Level untuk Memodelkan Data Cacahan pada Masalah Pendugaan Area Kecil

In this paper, we address the issue of estimation of the hierarchical Bayesian models, especially for count data in small area estimation problem. This model was developed by combining the existing terminology in generalized linear models with the concept of Bayes methods, especially hierarchical Ba...

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Main Authors: Nusar Hajarisman, Aceng Komarudin Mutaqin, Anneke Iswani Ahmad
Format: Article
Language:Indonesian
Published: Universitas Islam Bandung 2012-11-01
Series:Statistika
Online Access:http://ejournal.unisba.ac.id/index.php/statistika/article/view/1064
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spelling doaj-39a330fa000a4ee2b3715f714ec418eb2020-11-24T22:02:03ZindUniversitas Islam BandungStatistika1411-58912012-11-01122828Implementasi Model Poisson Bayes Berhirarki Dua-Level untuk Memodelkan Data Cacahan pada Masalah Pendugaan Area KecilNusar HajarismanAceng Komarudin MutaqinAnneke Iswani AhmadIn this paper, we address the issue of estimation of the hierarchical Bayesian models, especially for count data in small area estimation problem. This model was developed by combining the existing terminology in generalized linear models with the concept of Bayes methods, especially hierarchical Bayes methods, such that it can be implemented to address the problem of small area estimation for survey data in the form of the count data. Development of this model starts by assuming that the observed random variable is a member of the exponential family conditional on a certain parameter. The main objective of the development of this model is to make inference on these parameters are also considered as random variables. Then these parameters are modeled with the Fay-Herriot model as the basic model of the small area estimation. Furthermore, the combination of both models will be standardized in such a way as to represent a model within the framework of Bayes methods that will eventually form a two-level hierarchical Bayes Poisson model to solve problems in small area estimation.http://ejournal.unisba.ac.id/index.php/statistika/article/view/1064
collection DOAJ
language Indonesian
format Article
sources DOAJ
author Nusar Hajarisman
Aceng Komarudin Mutaqin
Anneke Iswani Ahmad
spellingShingle Nusar Hajarisman
Aceng Komarudin Mutaqin
Anneke Iswani Ahmad
Implementasi Model Poisson Bayes Berhirarki Dua-Level untuk Memodelkan Data Cacahan pada Masalah Pendugaan Area Kecil
Statistika
author_facet Nusar Hajarisman
Aceng Komarudin Mutaqin
Anneke Iswani Ahmad
author_sort Nusar Hajarisman
title Implementasi Model Poisson Bayes Berhirarki Dua-Level untuk Memodelkan Data Cacahan pada Masalah Pendugaan Area Kecil
title_short Implementasi Model Poisson Bayes Berhirarki Dua-Level untuk Memodelkan Data Cacahan pada Masalah Pendugaan Area Kecil
title_full Implementasi Model Poisson Bayes Berhirarki Dua-Level untuk Memodelkan Data Cacahan pada Masalah Pendugaan Area Kecil
title_fullStr Implementasi Model Poisson Bayes Berhirarki Dua-Level untuk Memodelkan Data Cacahan pada Masalah Pendugaan Area Kecil
title_full_unstemmed Implementasi Model Poisson Bayes Berhirarki Dua-Level untuk Memodelkan Data Cacahan pada Masalah Pendugaan Area Kecil
title_sort implementasi model poisson bayes berhirarki dua-level untuk memodelkan data cacahan pada masalah pendugaan area kecil
publisher Universitas Islam Bandung
series Statistika
issn 1411-5891
publishDate 2012-11-01
description In this paper, we address the issue of estimation of the hierarchical Bayesian models, especially for count data in small area estimation problem. This model was developed by combining the existing terminology in generalized linear models with the concept of Bayes methods, especially hierarchical Bayes methods, such that it can be implemented to address the problem of small area estimation for survey data in the form of the count data. Development of this model starts by assuming that the observed random variable is a member of the exponential family conditional on a certain parameter. The main objective of the development of this model is to make inference on these parameters are also considered as random variables. Then these parameters are modeled with the Fay-Herriot model as the basic model of the small area estimation. Furthermore, the combination of both models will be standardized in such a way as to represent a model within the framework of Bayes methods that will eventually form a two-level hierarchical Bayes Poisson model to solve problems in small area estimation.
url http://ejournal.unisba.ac.id/index.php/statistika/article/view/1064
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