• Arch Iran Med · Apr 2020

    A Model for COVID-19 Prediction in Iran Based on China Parameters.

    • Bushra Zareie, Amin Roshani, Mohammad Ali Mansournia, Mohammad Aziz Rasouli, and Ghobad Moradi.
    • Department of Epidemiology, School of Public Health, Hamadan University of Medical Sciences, Hamadan, Iran.
    • Arch Iran Med. 2020 Apr 1; 23 (4): 244-248.

    BackgroundThe rapid spread of COVID-19 virus from China to other countries and outbreaks of disease require an epidemiological analysis of the disease in the shortest time and an increased awareness of effective interventions. The purpose of this study was to estimate the COVID-19 epidemic in Iran based on the SIR model. The results of the analysis of the epidemiological data of Iran from January 22 to March 24, 2020 were investigated and prediction was made until April 15, 2020.MethodsBy estimating the three parameters of time-dependent transmission rate, time-dependent recovery rate, and timedependent death rate from Covid-19 outbreak in China, and using the number of Covid-19 infections in Iran, we predicted the number of patients for the next month in Iran. Each of these parameters was estimated using GAM models. All analyses were conducted in R software using the mgcv package.ResultsBased on our predictions of Iran about 29000 people will be infected from March 25 to April 15, 2020. On average, 1292 people with COVID-19 are expected to be infected daily in Iran. The epidemic peaks within 3 days (March 25 to March 27, 2020) and reaches its highest point on March 25, 2020 with 1715 infected cases.ConclusionThe most important point is to emphasize the timing of the epidemic peak, hospital readiness, government measures and public readiness to reduce social contact.© 2020 The Author(s). This is an open-access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.

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