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PENERAPAN ALGORITMA RANDOM FOREST DAN K-NEAREST NEIGHBORS DALAM MEMPREDIKSI GEMPA BUMI DI SUMATERA BAGIAN SELATAN

Damayanti, Kristina - Personal Name;

Earthquakes occur due to the impact of volcanic activity in mountainous areas. Sumatra Island is one of the islands that has earthquake activity that occurs quite frequently, especially in the South Sumatra region. This research aims to get accurate results based on the best algorithm in predicting earthquakes in Southern Sumatra to determine the prediction of earthquakes in Southern Sumatra using machine learning algorithms. Earthquake data for the Southern Sumatra region used was taken from 1900 to 2022 with parameters such as date, time, latitude, longitude, depth, magnitude and place. Evaluation of the prediction results of random forest and K-Nearest Neighbor algorithms is done using confusion matrix. The evaluation results of the random forest algorithm get an accuracy value of 94.78% and the accuracy of the K-Nearest Neighbor algorithm is 95.14%. The precision value of random forest is 93% and the precision value of K-Nearest Neighbors is 92%. The recall and f1 score values in random forest and K-Nearest Neighbors have the same value which is 95% for recall and 93% for f1-score. The K-Nearest Neighbor algorithm has a higher accuracy value than the random forest algorithm, so it can be concluded that the algorithm is more accurate than the random forest algorithm.


Availability
#
Central Library (Reference) T1521082024
T152108
Available but not for loan - Not for Loan
Detail Information
Series Title
-
Call Number
T1521082024
Publisher
Indralaya : Prodi Ilmu Fisika, Fakultas Matematika dan Ilmu Pengetahuan Alam Universitas Sriwijaya., 2024
Collation
xiv, 105 hlm.; ilus.; 29 cm
Language
Indonesia
ISBN/ISSN
-
Classification
551.220 285 07
Content Type
Text
Media Type
unmediated
Carrier Type
-
Edition
-
Subject(s)
Prodi Ilmu Fisika
Algoritma Random Forest
Specific Detail Info
-
Statement of Responsibility
KA
Other version/related
TitleEditionLanguage
PENERAPAN ALGORITMA RANDOM FOREST UNTUK SENTIMEN ANALISIS PADA POSTINGAN FACEBOOK TENTANG KEMACETAN LALU LINTAS DI KOTA PALEMBANGid
OPTIMASI ALGORITMA RANDOM FOREST MENGGUNAKAN ALGORITMA GENETIKA DALAM PROSES KLASIFIKASI PENYAKIT GINJAL KRONISid
PREDIKSI PERTUMBUHAN BERAT IKAN LELE DALAM BUDIDAYA AKUAKULTUR DENGAN MENGGUNAKAN ALGORITMA RANDOM FOREST REGRESSIONid
ANALISIS SENTIMEN TERHADAP KEMACETAN LALU LINTAS MENGGUNAKAN ALGORITMA RANDOM FOREST BERDASARKAN DATA PADA MEDIA SOSIAL DAN REKAMAN CCTV DI JALAN PROTOKOL PALEMBANGid
ANALISIS POTENSI BAHAYA GEMPA BUMI DI KOTA PAGAR ALAM DENGAN MEMANFAATKAN SISTEM INFORMASI GEOGRAFIS (SIG)id
KOMPARASI KLASTERISASI DATA HISTORIS GEMPA BUMI MENGGUNAKAN DBSCAN, K-MEANS, DAN AGGLOMERATIVE CLUSTERINGid
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  • PENERAPAN ALGORITMA RANDOM FOREST DAN K-NEAREST NEIGHBORS DALAM MEMPREDIKSI GEMPA BUMI DI SUMATERA BAGIAN SELATAN
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