Please use this identifier to cite or link to this item: http://bura.brunel.ac.uk/handle/2438/23064
Title: A two-phase dynamic contagion model for COVID-19
Authors: Chen, Z
Dassios, A
Kuan, V
Lim, JW
Qu, Y
Surya, B
Zhao, H
Keywords: stochastic intensity model;stochastic epidemic model;two-phase dynamic contagion process;COVID-19;lockdown
Issue Date: 13-May-2021
Publisher: Elsevier
Citation: Chen, Z., Dassios, A., Kuan, V., Lim, J.W., Qu, Y., Surya, B. and Zhao, H. (2021) 'A two-phase dynamic contagion model for COVID-19', Results in Physics, 26, pp. 104264. doi: 10.1016/j.rinp.2021.104264.
Abstract: Copyright © 2021 The Author(s). In this paper, we propose a continuous-time stochastic intensity model, namely, two-phase dynamic contagion process (2P-DCP), for modelling the epidemic contagion of COVID-19 and investigating the lockdown effect based on the dynamic contagion model introduced by Dassios and Zhao [24]. It allows randomness to the infectivity of individuals rather than a constant reproduction number as assumed by standard models. Key epidemiological quantities, such as the distribution of final epidemic size and expected epidemic duration, are derived and estimated based on real data for various regions and countries. The associated time lag of the effect of intervention in each country or region is estimated. Our results are consistent with the incubation time of COVID-19 found by recent medical study. We demonstrate that our model could potentially be a valuable tool in the modeling of COVID-19. More importantly, the proposed model of 2P-DCP could also be used as an important tool in epidemiological modelling as this type of contagion models with very simple structures is adequate to describe the evolution of regional epidemic and worldwide pandemic.
URI: https://bura.brunel.ac.uk/handle/2438/23064
DOI: https://doi.org/10.1016/j.rinp.2021.104264
Other Identifiers: 104264
Appears in Collections:Dept of Mathematics Research Papers

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