Prediksi Gagal Jantung Menggunakan Artificial Neural Network

Cardiovascular disease or heart problems are the leading cause of death worldwide. According to WHO (World Health Organization) every year there are more than 17.9 million deaths worldwide. In previous studies, there have been many studies related to the application of machine learning to predict he...

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Main Author: Simeon Yuda Prasetyo
Format: Article
Language:Indonesian
Published: STMIK Palangkaraya 2023-03-01
Series:Jurnal Saintekom
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Online Access:https://ojs.stmikplk.ac.id/index.php/saintekom/article/view/379
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author Simeon Yuda Prasetyo
author_facet Simeon Yuda Prasetyo
author_sort Simeon Yuda Prasetyo
collection DOAJ
description Cardiovascular disease or heart problems are the leading cause of death worldwide. According to WHO (World Health Organization) every year there are more than 17.9 million deaths worldwide. In previous studies, there have been many studies related to the application of machine learning to predict heart failure and obtained quite good results, ranging from 85 percent to 90 percent, with sophisticated models optimized using neural networks. In this research, experiments were carried out using similar architectures based on the state of the art from previous research, namely Artificial Neural Networks by conducting several hyperparameter tests, namely the number of hidden layers and the number of neuron units in the hidden layer. Based on the test results, the Artificial Neural Network model get the best results by implementing 2 hidden layers with 15 units of neurons in the first hidden layer and 10 units of neurons in the second hidden layer. This model get accuracy on data testing of 92,032% and AUC of 93%.
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series Jurnal Saintekom
spelling doaj-art-cb58a803c7fa4987a2ec9c10a6168cbd2025-08-20T02:12:29ZindSTMIK PalangkarayaJurnal Saintekom2088-17702503-32472023-03-01131798810.33020/saintekom.v13i1.379325Prediksi Gagal Jantung Menggunakan Artificial Neural NetworkSimeon Yuda Prasetyo0Bina Nusantara UniversityCardiovascular disease or heart problems are the leading cause of death worldwide. According to WHO (World Health Organization) every year there are more than 17.9 million deaths worldwide. In previous studies, there have been many studies related to the application of machine learning to predict heart failure and obtained quite good results, ranging from 85 percent to 90 percent, with sophisticated models optimized using neural networks. In this research, experiments were carried out using similar architectures based on the state of the art from previous research, namely Artificial Neural Networks by conducting several hyperparameter tests, namely the number of hidden layers and the number of neuron units in the hidden layer. Based on the test results, the Artificial Neural Network model get the best results by implementing 2 hidden layers with 15 units of neurons in the first hidden layer and 10 units of neurons in the second hidden layer. This model get accuracy on data testing of 92,032% and AUC of 93%.https://ojs.stmikplk.ac.id/index.php/saintekom/article/view/379heart failure predictionartificial neural networksmachine learning
spellingShingle Simeon Yuda Prasetyo
Prediksi Gagal Jantung Menggunakan Artificial Neural Network
Jurnal Saintekom
heart failure prediction
artificial neural networks
machine learning
title Prediksi Gagal Jantung Menggunakan Artificial Neural Network
title_full Prediksi Gagal Jantung Menggunakan Artificial Neural Network
title_fullStr Prediksi Gagal Jantung Menggunakan Artificial Neural Network
title_full_unstemmed Prediksi Gagal Jantung Menggunakan Artificial Neural Network
title_short Prediksi Gagal Jantung Menggunakan Artificial Neural Network
title_sort prediksi gagal jantung menggunakan artificial neural network
topic heart failure prediction
artificial neural networks
machine learning
url https://ojs.stmikplk.ac.id/index.php/saintekom/article/view/379
work_keys_str_mv AT simeonyudaprasetyo prediksigagaljantungmenggunakanartificialneuralnetwork