Open Access

A. O. Yunus, M. Olayiwola

2024.3.27Journal of the Nigerian Society of Physical Sciences

DOI: 10.46481/jnsps.2024.1830

tlooto Summary

The study concludes that implementing a vaccination strategy in an integer order proves to be the most effective approach to controlling the spread of COVID-19 and calls for global efforts to maximize vaccination implementation for the overall benefit of public health.

Abstract

This study underscores the crucial role of COVID-19 vaccinations in managing the pandemic, with a specific focus on Nigeria. Employing a fractional-order mathematical modeling approach, the research assesses vaccination efficacy, minimum effectiveness, and duration. The model’s numerical solution is derived through the Laplace Adomian Decomposition Method (LADM), utilizing rapidly converging infinite series. Simulation results illustrate the impact of COVID-19 transmission and vaccination rates. The study concludes that implementing a vaccination strategy in an integer order proves to be the most effective approach to controlling the spread of COVID-19. These findings have significant implications for researchers, policymakers, and healthcare workers. They emphasize the central role of fractional calculus in facilitating vaccine implementation in the ongoing battle against COVID-19. The study calls for global efforts to maximize vaccination implementation for the overall benefit of public health.

Citation format

YUNUS, A. O.; OLAYIWOLA, M. The analysis of a novel COVID-19 model with the fractional-order incorporating the impact of the vaccination campaign in nigeria via the laplace-adomian decomposition method. Journal of the Nigerian Society of Physical Sciences, 2024.