JOURNAL ARTICLE

Heart Disease Prediction using Decision Tree

M RanjithaMs. K. SomeshwariM IshwaryaMs. Md. Nazma

Year: 2024 Journal:   International Journal of Advanced Research in Science Communication and Technology Pages: 338-345   Publisher: Shivkrupa Publication's

Abstract

Heart disease is one of the most common causes of death around the world nowadays. Often, the enormous amount of information is gathered to detect diseases in medical science. All of the information is not useful but vital in taking the correct decision. Thus, it is not always easy to detect the heart disease because it requires skilled knowledge or experiences about heart failure symptoms for an early prediction. Most of the medical dataset are dispersed, widespread and assorted. However, data mining is a robust technique for extracting invisible, predictive and actionable information from the extensive databases. In this paper, by using info gain feature selection technique and removing unnecessary features, different classification techniques such that KNN, Decision Tree (ID3), Gaussian Naïve Bayes, Logistic Regression and Random Forest are used on heart disease dataset for better prediction. Different performance measurement factors such as accuracy, ROC curve, precision, recall, sensitivity, specificity, and F1-score are considered to determine the performance of the classification techniques. Among them, Logistic Regression performed better, and the classification accuracy is 92.76%.

Keywords:
Decision tree Naive Bayes classifier Logistic regression Random forest Computer science Artificial intelligence Feature selection ID3 Machine learning Data mining Decision tree learning Logistic model tree Pattern recognition (psychology) Support vector machine

Metrics

0
Cited By
0.00
FWCI (Field Weighted Citation Impact)
12
Refs
0.33
Citation Normalized Percentile
Is in top 1%
Is in top 10%

Topics

Artificial Intelligence in Healthcare
Health Sciences →  Health Professions →  Health Information Management
Imbalanced Data Classification Techniques
Physical Sciences →  Computer Science →  Artificial Intelligence
Machine Learning in Healthcare
Physical Sciences →  Computer Science →  Artificial Intelligence

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