Prediction of Heart Diseases Using Machine Learning

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2022-01-03

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Daffodil International University

Abstract

Now-a-days, we can see the number of heart disease cases increasing highly. Especially old people affected by this . It is so concerning for the world. We thought about this kind of disease and how we could predict this in advance. Though it’s difficult to diagnose, it should be done correctly and quickly too. We made a prediction system named heart diseases prediction system , which uses a patient’s medical data to predict whether or not they will be diagnosed with heart disease. The fundamental recognition of the studies paper is on which sufferers are extra likely to expand coronary heart sickness primarily based totally on numerous clinical characteristics. We used four machine learning algorithms to predict and classify heart disease patients such as Decision Tree, Logistic Regression, Random Forest Classifier and k-N Neighbor . To adjust how the version may be used to enhance the accuracy of prediction of Heart Attack in any individual ,a very helpful approach was used . The proposed model's power changed into pretty satisfying, because it changed into capable of are expecting proof of getting a coronary heart sickness in a particular person the use of Logistic Regression , Random forest and Decision Tree which showed a high level of accuracy when compared to k-N Neighbor.

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Heart--Diseases--Diagnosis, Machine learning, Predictions

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