Real-Time Heart Disease Prediction Using Machine Learning
Abstract & Details
Research Area
COMPUTER SCIENCE AND ENGINEERING
Keywords
Heart Anomalies
Electrocardiogram (ECG)
Machine Learning
XGBoost Algorithm
Real-Time Prediction
Abstract
Heart-related anomalies are among the most com- mon causes of death worldwide. Patients are often asymptomatic until a fatal event happens, and even when they are under ob- servation, trained personnel is needed in order to identify a heart anomaly. In the last decades, there has been increasing evidence of how Machine Learning can be leveraged to detect such anomalies, thanks to the availability of Electrocardiograms (ECG) in digital format. New developments in technology have allowed to exploit such data to build models able to analyze the patterns in the occurrence of heart beats, and spot anomalies from them. In this work, we propose a novel methodology to extract ECG-related features and predict the type of ECG recorded in real time (less than 30 milliseconds). Our models leverage a collection of almost 40 thousand ECGs labeled by expert cardiologists across different hospitals and countries, and are able to detect 7 types of signals: Normal, AF, Tachycardia, Bradycardia, Arrhythmia, Other or Noisy. We exploit the XGBoost algorithm, a leading machine learning method, to train models achieving out of sample F1 Scores in the range 0.93 – 0.99. To our knowledge, this is the first work reporting high performance across hospitals, countries and recording standards.
License
This work is licensed under a Creative
Commons
Attribution-ShareAlike 4.0 International License.
Author Information
| # | Name | Institute / Affiliation |
|---|---|---|
| 1 | P. Sri Pavan Hari Charan | KV SUBBA REDDY ENGINEERING COLLEGE |
| 2 | Dhanraj Cheelu | KV SUBBA REDDY ENGINEERING COLLEGE |
| 3 | K. Mahesh | KV SUBBA REDDY ENGINEERING COLLEGE |
| 4 | T. Charan Teja | KV SUBBA REDDY ENGINEERING COLLEGE |
| 5 | S. MMD. Ibarhim | KV SUBBA REDDY ENGINEERING COLLEGE |
How to Cite
Use the following formats to cite this article in your research.
APA Style
Charan, P. Sri Pavan Hari, Cheelu, Dhanraj, Mahesh, K., Teja, T. Charan, & Ibarhim, S. MMD. (2025). Real-Time Heart Disease Prediction Using Machine Learning. International Journal of Advance Research and Innovative Ideas In Education, 11(3), 212-220.
MLA Style
Charan, P. Sri Pavan Hari, et al. "Real-Time Heart Disease Prediction Using Machine Learning." International Journal of Advance Research and Innovative Ideas In Education, vol. 11, no. 3, 2025, pp. 212-220.
IEEE Style
P. Sri Pavan Hari Charan, Dhanraj Cheelu, K. Mahesh, T. Charan Teja, and S. MMD. Ibarhim, "Real-Time Heart Disease Prediction Using Machine Learning," International Journal of Advance Research and Innovative Ideas In Education, vol. 11, no. 3, pp. 212-220, 2025.
Vancouver Style
Charan P. Sri Pavan Hari, Cheelu Dhanraj, Mahesh K., Teja T. Charan, Ibarhim S. MMD.. Real-Time Heart Disease Prediction Using Machine Learning. International Journal of Advance Research and Innovative Ideas In Education. 2025;11(3):212-220.
Harvard Style
Charan, P. Sri Pavan Hari, Cheelu, Dhanraj, Mahesh, K., Teja, T. Charan, & Ibarhim, S. MMD. (2025) 'Real-Time Heart Disease Prediction Using Machine Learning', International Journal of Advance Research and Innovative Ideas In Education, 11(3), pp. 212-220.
Chicago Style
Charan, P. Sri Pavan Hari, et al. "Real-Time Heart Disease Prediction Using Machine Learning." International Journal of Advance Research and Innovative Ideas In Education 11, no. 3 (2025): 212-220.
Turabian Style
Charan, P. Sri Pavan Hari, et al. "Real-Time Heart Disease Prediction Using Machine Learning." International Journal of Advance Research and Innovative Ideas In Education 11, no. 3 (2025): 212-220.
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