Penerapan Metode Complete Linkage dan Metode Hierarchical Clustering Multiscale Bootstrap

(Studi Kasus: Kemiskinan Di Kalimantan Timur Tahun 2016)

  • Lisda Ramadhani Mahasiswa Program Studi Statistika FMIPA Universitas Mulawarman
  • Ika Purnamasari Dosen Program Studi Statistika FMIPA Universitas Mulawarman
  • Fidia Deny Tisna Amijaya Dosen Program Studi Statistika FMIPA Universitas Mulawarman

Abstract

Cluster analysis is an analysis that has a purpose to grouping the data (object). The multiscale bootstrap method in cluster analysis is used as a manner for looking at the validity from the result of cluster analysis. The working process of multiscale bootstrap in cluster analysis is taking a sample that has been bootstrapped and then take the one of bootstrap resampling result that has been reputed to represent the distribution in East Kalimantan 2016. The purpose of this research is looking at the result of data agglomeration in poverty indicator in East Kalimantan 2016 in using a multiscale bootstrap method that produces four cluster types. The first cluster consists of two regencies/cities who has the low percentage of poverty indicator 49,32%. Additionally, the second cluster contains of five regencies/cities with the high percentage of poverty indicator 53,39%. In addition, the third cluster involves of two regencies/cities with the percentage of poverty indicator in high sufficient 51,46%. Finally, the fourth cluster consists of a regency/city which has a percentage of poverty indicator low adequate 51,02%.

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Published
2018-07-22
How to Cite
RAMADHANI, Lisda; PURNAMASARI, Ika; AMIJAYA, Fidia Deny Tisna. Penerapan Metode Complete Linkage dan Metode Hierarchical Clustering Multiscale Bootstrap. EKSPONENSIAL, [S.l.], v. 9, n. 1, p. 1-10, july 2018. ISSN 2798-3455. Available at: <https://jurnal.fmipa.unmul.ac.id/index.php/exponensial/article/view/208>. Date accessed: 02 may 2024.
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Articles