Heart health status detection using ensemble learning with hyperparameter optimization

Author:

Sareen Sahil,Prakhar ,Kavisankar L.

Publisher

AIP Publishing

Reference22 articles.

1. Davide Chicco and Giuseppe Jurman have demonstrated that machine learning can predict the survival of patients with heart failure by using serum creatinine and ejection fraction alone. (BMC medical informatics and decision making, 2020)

2. Aixia Guo, et al. have explored the use of machine learning and artificial intelligence models for heart failure diagnosis, readmission, and mortality prediction. (Current Epidemiology Reports, 2020)

3. Cameron R. Olsen, et al. have reviewed the clinical applications of machine learning in the diagnosis, classification, and prediction of heart failure. (American Heart Journal, 2020)

4. L. Ali and S. A. C. Bukhari have proposed a decision support system for heart failure prediction based on mutually informed neural networks to optimize the generalization capabilities. (IRBM, 2020)

5. Hao Fang, Cheng Shi, and Chi-Hua Chen have proposed BioExpDNN, a bioinformatic explainable deep neural network. (IEEE International Conference on Bioinformatics and Biomedicine, 2020)

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