Please use this identifier to cite or link to this item: http://repository.ipb.ac.id/handle/123456789/59028
Title: Bayesian models for small area estimation based on unequal probability sampling of binomial and multinomial responses
Model bayes untuk pendugaan area kecil dengan penarikan contoh berpeluang tidak sama pada kasus respon binomial dan multinomial
Authors: Notodiputro, Khairil A.
Mangku, I Wayan
Sadik, Kusman
Rumiati, Agnes Tuti
Keywords: Bogor Agricultural University (IPB)
SAE model
Bayesian approach
binomial and multinomial response Monte Carlo integration
literacy rate
Susenas
unequal probability sampling
logit normal mixed model
logit multinomial mixed model
Issue Date: 2012
Publisher: IPB (Bogor Agricultural University)
Abstract: In this research a Bayesian Method of Small Area Estimation (SAE) has been developed based on binomial and multinomial response variables using Susenas data obtained from unequal probability sampling. Case study was carried out to predict education level of the population measured by literacy rate and mean years of schooling in sub-district level in East Java Province. The SAE model for binomial response was developed with two methods, i.e. using weighted logit normal mixed model and involving the probability of sampling selection model as exponential function into the SAE model. A simulation study was carried out by implementing 100 times sampling selection into population data. Penalized Quasi Likelihood (PQL) and Restricted Maximum Likelihood method (REML) was used to parameter estimation of SAE model. Based on the simulation result, we found that the weighted logit normal mixed model gave the best estimate. In application, the weighted logit normal mixed model also provided good prediction of literacy rate in Sumenep and Pasuruan regency.For the multinomial respons, we applied the weighted logit multinomial mixed model. MSE estimation was used Jackknife method and it gave very small MSE of about 1,14 x10-7.
URI: http://repository.ipb.ac.id/handle/123456789/59028
Appears in Collections:DT - Mathematics and Natural Science

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2012atr.pdf
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Fulltext2.2 MBAdobe PDFView/Open
Abstract.pdf
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Abstract320.95 kBAdobe PDFView/Open
BAB I Pendahuluan.pdf
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BAB I366.78 kBAdobe PDFView/Open
BAB II Tinjauan Pustaka.pdf
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BAB II476.16 kBAdobe PDFView/Open
BAB III Model Bayes Untuk Pendugaan ....pdf
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BAB III522.28 kBAdobe PDFView/Open
BAB IV Model SAE Berbasis Sebaran ....pdf
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BAB IV639.71 kBAdobe PDFView/Open
BAB V Model Bayes Pendugaan Area ....pdf
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BAB VI Pembahasan.pdf
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BAB VII Kesimpulan dan Saran.pdf
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Cover.pdf
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Daftar Pustaka.pdf
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Lampiran.pdf
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Lampiran652.47 kBAdobe PDFView/Open


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