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Article

Novel Approach for Identification of Basic and Effective Reproduction Numbers Illustrated with COVID-19

by
Tchavdar T. Marinov
1,*,
Rossitza S. Marinova
2,3,
Radoslav T. Marinov
4 and
Nicci Shelby
1
1
Department of Natural Sciences, Southern University at New Orleans, 6801 Press Drive, New Orleans, LA 70126, USA
2
Department of Mathematical & Physical Sciences, Concordia University of Edmonton, 7128 Ada Boulevard, Edmonton, AB T5B 4E4, Canada
3
Department Computer Science, Varna Free University, 9007 Varna, Bulgaria
4
Rescale, 33 New Montgomery Street, Suite 950, San Francisco, CA 94105, USA
*
Author to whom correspondence should be addressed.
Viruses 2023, 15(6), 1352; https://doi.org/10.3390/v15061352
Submission received: 12 May 2023 / Revised: 31 May 2023 / Accepted: 6 June 2023 / Published: 11 June 2023
(This article belongs to the Special Issue Virus Bioinformatics 2023)

Abstract

This paper presents a novel numerical technique for the identification of effective and basic reproduction numbers, Re and R0, for long-term epidemics, using an inverse problem approach. The method is based on the direct integration of the SIR (Susceptible–Infectious–Removed) system of ordinary differential equations and the least-squares method. Simulations were conducted using official COVID-19 data for the United States and Canada, and for the states of Georgia, Texas, and Louisiana, for a period of two years and ten months. The results demonstrate the applicability of the method in simulating the dynamics of the epidemic and reveal an interesting relationship between the number of currently infectious individuals and the effective reproduction number, which is a useful tool for predicting the epidemic dynamics. For all conducted experiments, the results show that the local maximum (and minimum) values of the time-dependent effective reproduction number occur approximately three weeks before the local maximum (and minimum) values of the number of currently infectious individuals. This work provides a novel and efficient approach for the identification of time-dependent epidemics parameters.
Keywords: SIR model; time-dependent parameters; reproduction numbers; inverse problem; infection and recovery rates; data mining; infectious disease modeling; epidemic dynamics SIR model; time-dependent parameters; reproduction numbers; inverse problem; infection and recovery rates; data mining; infectious disease modeling; epidemic dynamics

Share and Cite

MDPI and ACS Style

Marinov, T.T.; Marinova, R.S.; Marinov, R.T.; Shelby, N. Novel Approach for Identification of Basic and Effective Reproduction Numbers Illustrated with COVID-19. Viruses 2023, 15, 1352. https://doi.org/10.3390/v15061352

AMA Style

Marinov TT, Marinova RS, Marinov RT, Shelby N. Novel Approach for Identification of Basic and Effective Reproduction Numbers Illustrated with COVID-19. Viruses. 2023; 15(6):1352. https://doi.org/10.3390/v15061352

Chicago/Turabian Style

Marinov, Tchavdar T., Rossitza S. Marinova, Radoslav T. Marinov, and Nicci Shelby. 2023. "Novel Approach for Identification of Basic and Effective Reproduction Numbers Illustrated with COVID-19" Viruses 15, no. 6: 1352. https://doi.org/10.3390/v15061352

APA Style

Marinov, T. T., Marinova, R. S., Marinov, R. T., & Shelby, N. (2023). Novel Approach for Identification of Basic and Effective Reproduction Numbers Illustrated with COVID-19. Viruses, 15(6), 1352. https://doi.org/10.3390/v15061352

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