Heart Disease Prediction using Hybrid machine Learning Model

被引:57
|
作者
Kavitha, M. [1 ]
Gnaneswar, G. [1 ]
Dinesh, R. [1 ]
Sai, Y. Rohith [1 ]
Suraj, R. Sai [1 ]
机构
[1] Koneru Lakshmaiah Educ Fdn, Dept Comp Sci & Engn, Vaddeswaram, AP, India
关键词
Cleveland Heart Disease Database; Decision Trees; Random forest; Hybrid algorithm; Machine learning;
D O I
10.1109/ICICT50816.2021.9358597
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
Heart disease causes a significant mortality rate around the world, and it has become a health threat for many people. Early prediction of heart disease may save many lives; detecting cardiovascular diseases like heart attacks, coronary artery diseases etc., isa critical challenge by the regular clinical data analysis. Machine learning (ML) can bring an effective solution for decision making and accurate predictions. The medical industry is showing enormous development in using machine learning techniques. In the proposed work, a novel machine learning approach is proposed to predict heart disease. The proposed study used the Cleveland heart disease dataset, and data mining techniques such as regression and classification are used. Machine learning techniques Random Forest and Decision Tree are applied. The novel technique of the machine learning model is designed. In implementation, 3 machine learning algorithms are used, they are 1. Random Forest, 2. Decision Tree and 3. Hybrid model (Hybrid of random forest and decision tree). Experimental results show an accuracy level of 88.7% through the heart disease prediction model with the hybrid model. The interface is designed to get the user's input parameter to predict the heart disease, for which we used a hybrid model of Decision Tree and Random Forest.
引用
收藏
页码:1329 / 1333
页数:5
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