Path: Top -> Journal -> Telkomnika -> 2019 -> Vol 17, No 2, April 2019

K-means and bayesian networks to determine building damage levels

Journal from gdlhub / 2019-05-15 14:28:39
Oleh : Devni Prima Sari, Dedi Rosadi, Adhitya Ronnie Effendie, Danardono Danardono, Telkomnika
Dibuat : 2019-05-15, dengan 1 file

Keyword : bayesian network, buildings damage, discretization, K-Means clustering, risk of earthquakes
Url : http://journal.uad.ac.id/index.php/TELKOMNIKA/article/view/11756
Sumber pengambilan dokumen : WEB

Many troubles in life require decision-making with convoluted processes because they are caused by uncertainty about the process of relationships that appear in the system. This problem leads to the creation of a model called the Bayesian Network. Bayesian Network is a Bayesian supported development supported by computing advancements. The Bayesian network has also been developed in various fields. At this time, information can implement Bayesian Networks in determining the extent of damage to buildings using individual building data. In practice, there is mixed data which is a combination of continuous and discrete variables. Therefore, to simplify the study it is assumed that all variables are discrete in order to solve practical problems in the implementation of theory. Discretization method used is the K-Means clustering because the percentage of validity obtained by this method is greater than the binning method.

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PropertiNilai Properti
ID Publishergdlhub
OrganisasiTelkomnika
Nama KontakHerti Yani, S.Kom
AlamatJln. Jenderal Sudirman
KotaJambi
DaerahJambi
NegaraIndonesia
Telepon0741-35095
Fax0741-35093
E-mail Administratorelibrarystikom@gmail.com
E-mail CKOelibrarystikom@gmail.com

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