PENERAPAN ANALISIS PERUMPUNAN BOOTSTRAP DENGAN METODE K-MEANS PADA STATUS GIZI BALITA Analisis Tentang Status Gizi Balita Di Puskesmas Ajung Kabupaten Jember
Cluster analysis was a process for grouping a set of objects based on data that have similar certain characteristic. K-Means was a method of cluster analysis which begins by determining the number of clusters desired. Bootstrap was a sampling technique with replacement from the original sample. B...
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Format: | Theses and Dissertations NonPeerReviewed |
Language: | English Indonesian |
Published: |
2013
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Subjects: | |
Online Access: | http://repository.unair.ac.id/38461/1/gdlhub-gdl-s2-2014-prasetyohe-29301-8abs.pdf http://repository.unair.ac.id/38461/2/gdlhub-gdl-s2-2014-prasetyohe-29301-8%20fulltext.pdf http://repository.unair.ac.id/38461/ http://lib.unair.ac.id |
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Institution: | Universitas Airlangga |
Language: | English Indonesian |
Summary: | Cluster analysis was a process for grouping a set of objects based on data that
have similar certain characteristic. K-Means was a method of cluster analysis
which begins by determining the number of clusters desired. Bootstrap was a
sampling technique with replacement from the original sample. Bootstrap was
used to estimate the parameters based on minimal data using a computer. This
methode was useful to maximize relative diffrence and variation in the clusters.
Malnutrition was a major problem in Indonesia and is still a concern in children
undersfive. Infants with malnutrition would have a higher mortality rate. The
purpose of this study was to assess the accuracy of K-Means and Bootstrap KMeans
method to clustering nutritional status of children undersfive which was
crosstabulated with the nutritional status of children based on the WHO-2005 in
the Ajung Public Health Center, Jember The variable in this study was nutritional
status based on WHO criteria 2005 as standard benchmarks, present age and
weight. This was non-reactive research, using secondary data in Ajung Public
Health Center, without any direct interaction with the subject. This study
concluded that the total accuracy rate (TAR) and total error rate (TER) to
determine nutritional status of K – Means method was TAR = 0.9 and, TER =
0.1; Bootstrap K-Means methode (B = 25) TAR = 0,925 and TER = 0.075;
Bootsstrap K-Means methode (B = 50) TAR = 0.9417, TER = 0.0583; and
Bootstrap K-Means Bootstrap (B = 75) TAR = 0.9583 and TER = 0.0417 after
crosstabulated with nutritional status based on WHO-2005 (weight for age). In
general, the K- Means method and Bootstrap K-Means method and crosstabulated
with nutritional status based on WHO-2005 has shown very good accuracy to
determine the nutritional status of children. The best method was Bootstrap K -
Mean (B=75). K-Mean Bootstrap methods can be used as an alternative way to
determine the nutritional status of children. |
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