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Cluster Analysis Application at the Five Largest Airports in Indonesia to Carry Out a Tax-Free Policy

机译:聚类分析在印尼五大机场实施免税政策的应用

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The objective of this study is to apply cluster analysis on Indonesia's international tourism data set. Algorithm used in this cluster analysis is k-means and the number of cluster (k) is four and the similarity measurement between members of clusters is based on Euclidean distance. The source of data set was taken from Ministry of Tourism portal of Republic of Indonesia per November 2017. The results of this cluster analysis is presented in a table consisting of four clusters and each cluster consists of its members. Cluster analysis in this study can be used more quickly and efficiently to identify countries which will be the promotional and campaign targets on tax-free incentives for foreign tourists assuming a constraint that promotional and campaign budgets are always limited so that the related policy makers need to set a priority on targeted countries.
机译:这项研究的目的是将聚类分析应用于印度尼西亚的国际旅游数据集。该聚类分析中使用的算法为k均值,聚类(k)的数量为4,并且聚类成员之间的相似性度量基于欧几里得距离。数据集的来源取自印度尼西亚共和国旅游部门户网站,日期为2017年11月。此聚类分析的结果显示在由四个聚类组成的表格中,每个聚类均由其成员组成。假设推广和竞选预算总是有限的,因此相关政策制定者需要更快速,更有效地使用聚类分析来确定将成为外国游客免税激励措施的推广和竞选目标的国家。在目标国家/地区设置优先级。

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