2024
DOI: 10.1590/1980-549720240024
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Prediction of tuberculosis clusters in the riverine municipalities of the Brazilian Amazon with machine learning

Luis Silva,
Luise Gomes da Motta,
Lynn Eberly

Abstract: Objective: Tuberculosis (TB) is the second most deadly infectious disease globally, posing a significant burden in Brazil and its Amazonian region. This study focused on the “riverine municipalities” and hypothesizes the presence of TB clusters in the area. We also aimed to train a machine learning model to differentiate municipalities classified as hot spots vs. non-hot spots using disease surveillance variables as predictors. Methods: Data regarding the incidence of TB from 2019 to 2022 in the riverine town… Show more

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