Fara Zametha Elsa Reski, Yusmet Rizal
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摘要

贫穷问题是一个复杂的问题,因此它成为一个国家发展的优先事项。虽然采取了各种各样的措施,如社会救助计划,但所提供的援助并不总是分配均匀和不准确。因此,有必要通过对穷人的数据进行分组来确定社区的优先处理,特别是在印度尼西亚西苏门答腊省。在本研究中,使用西苏门答腊所有地区/城市和贫困指标进行了分析,即贫困人口百分比、贫困深度指数、贫困严重指数、识字率、平均上学时间、预期上学时间和公开失业率。分组使用围绕medioids的分区(PAM)方法,或更广为人知的k - medioids方法。研究结果得到2个贫困水平集群,其中集群1为高水平,有11个区/市成员;集群2为低水平,有8个区/市成员。
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Implementasi Metode Partitioning Around Medoids (PAM) Clustering pada Data Penduduk Miskin di Sumatera Barat
The problem of poverty is a complex problem so that it becomes a priority in development in a country. Various efforts have been made such as social assistance programs, but the assistance provided is not always evenly distributed and not on target. Therefore, it is necessary to determine priority handling for the community by grouping data on the poor, especially in the Province of West Sumatra, Indonesia. In this study, an analysis was carried out using all districts/cities in West Sumatra and poverty indicators, namely the percentage of poor people, poverty depth index, poverty severity index, literacy rate, average length of schooling, expected length of schooling, and open unemployment rate. Grouping was carried out using the Partitioning Around Medoids (PAM) method, or better known as the K-Medoids method. The research results obtained 2 poverty level clusters, namely cluster 1 is a high level with 11 districts/cities members, and cluster 2 is a low level with 8 districts/cities members.
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