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Authors: Gerda Rodrigues de Oliveira and Cristiane Nobre

Affiliation: Department of Computer Science, Pontifical Catholic University of Minas Gerais, PUC Minas - 500, Dom José Gaspar Street, Coração Eucarístico, Belo Horizonte, Brazil

Keyword(s): COVID-19, Hospitalization, Machine Learning.

Abstract: This work aims to verify the applicability of using Machine Learning techniques to predict hospitalization in confirmed cases of Covid-19. The study also intends to discover which attributes have the most significant impacts on hospitalization. The machine learning (ML) algorithms used in this experiment were Decision Tree, Random Forest, Neural Networks, and Naive Bayes. The data used for this experiment were made available by the government of Minas Gerais - Brazil, through open data. The model based on Random Forest obtained the best results, presenting the following metrics: Precision, Recall and F1-Score of 0.85, 0.84 and 0.84, respectively. In this experiment, essential characteristics for classifying the patient’s hospitalization are Comorbidity, Age Group, and HDI. The results point to a good predictive ability, demonstrating the potential use of ML techniques to predict the hospitalization of people by COVID-19.

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Paper citation in several formats:
Rodrigues de Oliveira, G. and Nobre, C. (2023). The Use of Machine Learning to Predict Hospitalization of Covid-19: A Case Study in the State of Minas Gerais - Brazil. In Proceedings of the 16th International Joint Conference on Biomedical Engineering Systems and Technologies (BIOSTEC 2023) - HEALTHINF; ISBN 978-989-758-631-6; ISSN 2184-4305, SciTePress, pages 392-399. DOI: 10.5220/0011696000003414

@conference{healthinf23,
author={Gerda {Rodrigues de Oliveira}. and Cristiane Nobre.},
title={The Use of Machine Learning to Predict Hospitalization of Covid-19: A Case Study in the State of Minas Gerais - Brazil},
booktitle={Proceedings of the 16th International Joint Conference on Biomedical Engineering Systems and Technologies (BIOSTEC 2023) - HEALTHINF},
year={2023},
pages={392-399},
publisher={SciTePress},
organization={INSTICC},
doi={10.5220/0011696000003414},
isbn={978-989-758-631-6},
issn={2184-4305},
}

TY - CONF

JO - Proceedings of the 16th International Joint Conference on Biomedical Engineering Systems and Technologies (BIOSTEC 2023) - HEALTHINF
TI - The Use of Machine Learning to Predict Hospitalization of Covid-19: A Case Study in the State of Minas Gerais - Brazil
SN - 978-989-758-631-6
IS - 2184-4305
AU - Rodrigues de Oliveira, G.
AU - Nobre, C.
PY - 2023
SP - 392
EP - 399
DO - 10.5220/0011696000003414
PB - SciTePress