Machine learning in front of statistical methods for prediction spread SARS-CoV-2 in Colombia

Estupiñán, A., Acuña, J., Rodriguez, A., Ayala, A., Estupiñán, C., Gonzalez, Ramon E. R., Triana-Camacho, D. A., Cristiano-Rodríguez, K. L., Morales, Carlos Andrés Collazos

arXiv.org Artificial Intelligence 

Previous analysis has been performed on the daily number of cases, deaths, infected people, and people who were exposed to the virus, all of them in a timeline of 550 days. Moreover, it has made the fitting of infection spread detailing the most efficient and optimal methods with lower propagation error and the presence of statistical biases. Finally, four different prevention scenarios were proposed to evaluate the ratio of each one of the parameters related to the disease.

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