Stroke Prediction Using Machine Learning Method with Extreme Gradient Boosting Algorithm

Author:

Rahim Abd Mizwar A,Sunyoto Andi,Arief Muhammad Rudyanto

Abstract

Based on data obtained from WHO, stroke is a disease that ranks as the second most deadly disease. The cause of a stroke is when a blood vessel is hit or ruptured, resulting in a part of the brain not getting the blood supply that carries the oxygen it needs, leading to death. By utilizing technology in the health sciences, especially in the health sector, machine learning models can adjust and make it easier for users to predict certain diseases. Previous studies have had problems with low accuracy when used in healthcare. The purpose of this research is to increase accuracy by proposing the application of one of the ensemble learning algorithms, namely the Xtreme Gradient Boosting algorithm. This stroke prediction research uses the Xtreme Gradient Boosting Algorithm; the application of this method with split data Training data and 70/30 test data, 70% of the training data is 3582, 30% of the test data is 1536, and the results are 96% accuracy with these results having good results. This study increase accuracy in predicting stroke cases and get better accuracy than previous studies.

Publisher

STMIK Bumigora Mataram

Subject

Marketing,Organizational Behavior and Human Resource Management,Strategy and Management,Drug Discovery,Pharmaceutical Science,Pharmacology

Cited by 2 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Development of an Intelligent System for Brain Stroke Prediction using Ensemble Feature Selection and Machine Learning Technique;2023 26th International Conference on Computer and Information Technology (ICCIT);2023-12-13

2. A Hybrid Artificial Intelligence Approach for Early Stroke Prediction;2023 5th International Conference on Pattern Analysis and Intelligent Systems (PAIS);2023-10-25

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