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Mathematical modelling of earlier stages of COVID-19 transmission dynamics in Ghana

Acheampong, Edward; Okyere, Eric; Iddi, Samuel; Bonney, Joseph H.K.; Wattis, Jonathan A.D.; Gomes, Rachel L.; Asamoah, Joshua Kiddy K.

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Authors

Edward Acheampong

Eric Okyere

Samuel Iddi

Joseph H.K. Bonney

JONATHAN WATTIS jonathan.wattis@nottingham.ac.uk
Professor of Applied Mathematics

RACHEL GOMES rachel.gomes@nottingham.ac.uk
Professor of Water & Resource Processing

Joshua Kiddy K. Asamoah



Abstract

In late 2019, a novel coronavirus, the SARS-CoV-2 outbreak was identified in Wuhan, China and later spread to every corner of the globe. Whilst the number of infection-induced deaths in Ghana, West Africa are minimal when compared with the rest of the world, the impact on the local health service is still significant. Compartmental models are a useful framework for investigating transmission of diseases in societies. To understand how the infection will spread and how to limit the outbreak. We have developed a modified SEIR compartmental model with nine compartments (CoVCom9) to describe the dynamics of SARS-CoV-2 transmission in Ghana. We have carried out a detailed mathematical analysis of the CoVCom9, including the derivation of the basic reproduction number, R0. In particular, we have shown that the disease-free equilibrium is globally asymptotically stable when R0<1 via a candidate Lyapunov function. Using the SARS-CoV-2 reported data for confirmed-positive cases and deaths from March 13 to August 10, 2020, we have parametrised the CoVCom9 model. The results of this fit show good agreement with data. We used Latin hypercube sampling-rank correlation coefficient (LHS-PRCC) to investigate the uncertainty and sensitivity of R0 since the results derived are significant in controlling the spread of SARS-CoV-2. We estimate that over this five month period, the basic reproduction number is given by R0=3.110, with the 95% confidence interval being 2.042≤R0≤3.240, and the mean value being R0=2.623. Of the 32 parameters in the model, we find that just six have a significant influence on R0, these include the rate of testing, where an increasing testing rate contributes to the reduction of R0.

Citation

Acheampong, E., Okyere, E., Iddi, S., Bonney, J. H., Wattis, J. A., Gomes, R. L., & Asamoah, J. K. K. (2022). Mathematical modelling of earlier stages of COVID-19 transmission dynamics in Ghana. Results in Physics, 34, Article 105193. https://doi.org/10.1016/j.rinp.2022.105193

Journal Article Type Article
Acceptance Date Jan 3, 2022
Online Publication Date Jan 14, 2022
Publication Date 2022-03
Deposit Date Jan 20, 2022
Publicly Available Date Jan 20, 2022
Journal Results in Physics
Electronic ISSN 2211-3797
Publisher Elsevier
Peer Reviewed Peer Reviewed
Volume 34
Article Number 105193
DOI https://doi.org/10.1016/j.rinp.2022.105193
Keywords General Physics and Astronomy
Public URL https://nottingham-repository.worktribe.com/output/7281478
Publisher URL https://www.sciencedirect.com/science/article/pii/S2211379722000134?via%3Dihub

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