Seleksi Atribut Pada Diagnosis Penyakit Liver Menggunakan Decision Tree Dengan Algoritma Genetika
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Authors:
Aang Pangantyas Sampurna, I Gede Santi Astawa, Ngurah Agus Sanjaya ER, Anak Agung Istri Ngurah Eka Karyawati, I Wayan Santiyasa, I Made Widiartha
Abstract:
“Liver disease is caused by inflammation of the liver. WHO shows nearly 1.2 million people in Southeast Asia and Africa per year die from this disease. Therefore, a diagnosis is needed as soon as possible to get further treatment. To make a diagnosis, a classification algorithm is needed which in this study uses the C4.5 algorithm. However, the algorithm is not optimal for forming a decision tree because it requires loading all cases into memory. Therefore, it is necessary to optimize using genetic algorithms to form simpler rules by selecting attributes and trying various possible combinations of attributes until the most optimal combination is obtained. In the evaluation results, the rules generated by optimization are simpler, namely as many as 32 rules when compared to without optimization, which are more complex, which are 145 rules. Then in the evaluation of accuracy, the rules with optimization resulted in a better accuracy of 70,7% when compared to the accuracy of the rules without optimization of 68,9%”
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PDF:
https://jurnal.harianregional.com/jlk/full-88822
Published
2022-07-13
How To Cite
SAMPURNA, Aang Pangantyas et al. Seleksi Atribut Pada Diagnosis Penyakit Liver Menggunakan Decision Tree Dengan Algoritma Genetika.JELIKU (Jurnal Elektronik Ilmu Komputer Udayana), [S.l.], v. 11, n. 2, p. 329-338, july 2022. ISSN 2654-5101. Available at: https://ojs.unud.ac.id/index.php/JLK/article/view/88822. Date accessed: 08 Jul. 2024. doi:https://doi.org/10.24843/JLK.2022.v11.i02.p12.
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Issue
Vol 11 No 2 (2022): JELIKU Volume 11 No 2, November 2022
Section
Articles
Copyright
This work is licensed under a Creative Commons Attribution 4.0 International License
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