Bergonzi, Mariana; Pecker-Marcosig, Ezequiel; Kofman, Ernesto; Castro, Rodrigo
Discrete-Time Modeling of COVID-19 Propagation in Argentina with Explicit Delays Journal Article
In: Computing in Science & Engineering, vol. 23, no. 01, pp. 35–45, 2021, ISSN: 1521-9615, (Publisher: IEEE Computer Society).
Abstract | Links | BibTeX | Tags: Atmospheric Modeling, Automatic Parameter, Automatically Changes, Characteristic Times, Closed Loop Systems, Continuous Time Models, Continuous Time Systems, COVID 19, Delays, Differential Equations, Discrete Time Compartmental Model, Discrete Time Modeling, Discrete Time Systems, Diseases, Explicit Delays, Explicit Presence, Imported Cases, Infectious Period, Physiological Models, Sociology, Stochastic Processes, Viruses Medical
@article{bergonzi_discrete-time_2021,
title = {Discrete-Time Modeling of COVID-19 Propagation in Argentina with Explicit Delays},
author = {Mariana Bergonzi and Ezequiel Pecker-Marcosig and Ernesto Kofman and Rodrigo Castro},
doi = {10.1109/MCSE.2020.3040700},
issn = {1521-9615},
year = {2021},
date = {2021-01-01},
journal = {Computing in Science & Engineering},
volume = {23},
number = {01},
pages = {35–45},
abstract = {We present a new deterministic discrete-Time compartmental model of COVID-19 that explicitly takes into account relevant delays related to the stages of the disease, its diagnosis and report system, allowing to represent the presence of imported cases. In addition to developing the model equations, we describe an automatic parameter fitting mechanism using official data on the spread of the virus in Argentina. The result consistently reflects the behavior of the disease with respect to characteristic times: latency, infectious period, report of cases (confirmed and dead), and allows for detecting automatically changes in the reproductive number and in the mortality factor. We also analyse the model's prediction capability and present simulation results assuming different future scenarios. We discuss usage of the model in a closed-loop control scheme, where the explicit presence of delays plays a key role in projecting more realistic dynamics than that of classic continuous-Time models.},
note = {Publisher: IEEE Computer Society},
keywords = {Atmospheric Modeling, Automatic Parameter, Automatically Changes, Characteristic Times, Closed Loop Systems, Continuous Time Models, Continuous Time Systems, COVID 19, Delays, Differential Equations, Discrete Time Compartmental Model, Discrete Time Modeling, Discrete Time Systems, Diseases, Explicit Delays, Explicit Presence, Imported Cases, Infectious Period, Physiological Models, Sociology, Stochastic Processes, Viruses Medical},
pubstate = {published},
tppubtype = {article}
}