Small Area Estimation dengan Metode Hierarchical Bayes pada Proporsi Destinasi Objek Wisata Halal Kabupaten Lombok Barat

Husnul Arini, D. Komalasari, Nurul Fitriyani
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Abstract

Research using Hierarchical Bayes (HB) applied to Small Area Estimation (SAE) was conducted with the aim to estimate the proportion of halal tourism destination in West Lombok Regency. The development of halal taourism object in West Lombok that has been done by the Departement of Culture and Tourism, has not been fully able to do direct estimation on a small area, such as at the sub-district level. One way of obtaining estimation data up to the sub-district level is by increasing the sample size. However, increasing the sample size will cost time and money. Therefore, SAE method can be used to solve the poblem of data optimization. Furthermore, the HB method is used in the process of finding the expected alleged value. The prediction process was performed using Markov Chain Monte Carlo (MCMC) by applying the conditional Gibbs Algorithm of Metropolis-Hasting. Indirect modeling using HB method on SAE is based on the Fay-Herriot model for the area level with the help of supporting variables. The estimation results were then compared with the direct estimates with the value of the variance statistic as a benchmark. The results showed that the estimation using HB gave in a smaller average of variance value score of 0.021, compared with direct estimates with an average of variance value of 0.042. This showed that indirect estimation using HB method gave better result than using direct estimation method.
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将层次贝叶斯(HB)应用于小区域估计(SAE)进行了研究,目的是估计西龙目岛清真旅游目的地的比例。西龙目岛清真旅游对象的开发已经由文化和旅游部完成,尚未完全能够在小范围内进行直接评估,例如在街道一级。获得街道一级估计数据的一种方法是增加样本量。然而,增加样本量将花费时间和金钱。因此,可以使用SAE方法来解决数据优化问题。此外,在寻找期望声称值的过程中使用了HB方法。采用Metropolis-Hasting的条件Gibbs算法,利用Markov Chain Monte Carlo (MCMC)进行预测。基于SAE的HB方法间接建模是基于区域级的Fay-Herriot模型,并借助于支持变量。然后将估计结果与以方差统计量为基准的直接估计进行比较。结果表明,与直接估计的平均方差值为0.042相比,HB估计的方差值平均值为0.021。这表明用HB法间接估计比直接估计效果更好。
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