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Underdetection in a stochastic SIR model for the analysis of the COVID-19 Italian epidemic

Academic Article
Publication Date:
2022
abstract:
We propose a way to model the underdetection of infected and removed individuals in a compartmental model for estimating the COVID-19 epidemic. The proposed approach is demonstrated on a stochastic SIR model, specified as a system of stochastic differential equations, to analyse data from the Italian COVID-19 epidemic. We find that a correct assessment of the amount of underdetection is important to obtain reliable estimates of the critical model parameters. The adaptation of the model in each time interval between relevant government decrees implementing contagion mitigation measures provides short-term predictions and a continuously updated assessment of the basic reproduction number.
Iris type:
01.01 Articolo in rivista
Keywords:
susceptible-infected-removed; underdetection; state-space SDE; identifiability; infection fatality rate; basic reproduction number
List of contributors:
Pievatolo, Antonio; Pasquali, Sara; Bodini, Antonella; Ruggeri, Fabrizio
Authors of the University:
BODINI ANTONELLA
PASQUALI SARA
PIEVATOLO ANTONIO
Handle:
https://iris.cnr.it/handle/20.500.14243/401034
Published in:
STOCHASTIC ENVIRONMENTAL RESEARCH AND RISK ASSESSMENT (PRINT)
Journal
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URL

https://link.springer.com/article/10.1007/s00477-021-02081-2
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