Precision Prediction for Dengue Fever in Singapore: A Machine Learning Approach Incorporating Meteorological Data
Na Tian,
Jin-Xin Zheng,
Lan-Hua Li
et al.
Abstract:Objective: This study aimed to improve dengue fever predictions in Singapore using a machine learning model that incorporates meteorological data, addressing the current methodological limitations by examining the intricate relationships between weather changes and dengue transmission. Method: Using weekly dengue case and meteorological data from 2012 to 2022, the data was preprocessed and analyzed using various machine learning algorithms, including General Linear Model (GLM), Support Vector Machine (SVM), Gr… Show more
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