CLUSTERING NEGARA BERDASARKAN SKOR PENGENDALIAN KONSUMSI TEMBAKAU MENGGUNAKAN ALGORITMA DBSCAN

Joko Riyono, Christina Eni Pujiastuti, Aina Latifa Riyana Putri
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Abstract

Smoking is an activity that has a detrimental impact on the health of individuals, families, communities and the environment, both directly and indirectly. Therefore, it is necessary to control global tobacco consumption. The World Health Organization (WHO) in the Framework Convention on Tobacco Control (FTCT) developed the MPOWER strategy: a which countries can use to control tobacco consumption. In this study a clustering analysis of tobacco use control will be carried out based on the MPOWER score: a from WHO for each country using the Density Based Spatial Clustering of Applications with Noise (DBScan) algorithm. DBSCAN is a cluster formation algorithm based on the level of distance density between objects in a dataset. Using a density radius of 1.72 with a minimum point of 4 objects obtained from the kNNdisplot function on Rstudio produces 4 clusters, 75 data as noise, and the Davies Bouldin-Index value as the best cluster validity is 1.08118.
使用 DBSCAN 算法根据烟草消费控制得分对国家进行分组
吸烟会直接或间接地对个人、家庭、社区和环境的健康产生有害影响。因此,有必要控制全球烟草消费。世界卫生组织(WHO)在《烟草控制框架公约》(FTCT)中制定了 MPOWER 战略:各国可用于控制烟草消费。在本研究中,我们将根据世界卫生组织为每个国家制定的 MPOWER 分数 a,采用基于密度的带噪声应用空间聚类(DBScan)算法,对烟草使用控制情况进行聚类分析。DBSCAN 是一种基于数据集中对象间距离密度水平的聚类算法。使用 1.72 的密度半径和从 Rstudio 的 kNNdisplot 函数中获得的 4 个对象的最小点,产生了 4 个聚类,75 个数据为噪声,作为最佳聚类有效性的 Davies Bouldin-Index 值为 1.08118。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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