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Is fractional-order chaos theory the new tool to model chaotic pandemics as Covid-19?

The deadly outbreak of the second wave of Covid-19, especially in worst hit lower-middle-income countries like India, and the drastic rise of another growing epidemic of Mucormycosis, call for an efficient mathematical tool to model pandemics, analyse their course of outbreak and help in adopting qu...

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Autores principales: Borah, Manashita, Gayan, Antara, Sharma, Jiv Siddhi, Chen, YangQuan, Wei, Zhouchao, Pham, Viet-Thanh
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Springer Netherlands 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9126250/
https://www.ncbi.nlm.nih.gov/pubmed/35634246
http://dx.doi.org/10.1007/s11071-021-07196-3
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author Borah, Manashita
Gayan, Antara
Sharma, Jiv Siddhi
Chen, YangQuan
Wei, Zhouchao
Pham, Viet-Thanh
author_facet Borah, Manashita
Gayan, Antara
Sharma, Jiv Siddhi
Chen, YangQuan
Wei, Zhouchao
Pham, Viet-Thanh
author_sort Borah, Manashita
collection PubMed
description The deadly outbreak of the second wave of Covid-19, especially in worst hit lower-middle-income countries like India, and the drastic rise of another growing epidemic of Mucormycosis, call for an efficient mathematical tool to model pandemics, analyse their course of outbreak and help in adopting quicker control strategies to converge to an infection-free equilibrium. This review paper on prominent pandemics reveals that their dispersion is chaotic in nature having long-range memory effects and features which the existing integer-order models fail to capture. This paper thus puts forward the use of fractional-order (FO) chaos theory that has memory capacity and hereditary properties, as a potential tool to model the pandemics with more accuracy and closeness to their real physical dynamics. We investigate eight FO models of Bombay plague, Cancer and Covid-19 pandemics through phase portraits, time series, Lyapunov exponents and bifurcation analysis. FO controllers (FOCs) on the concepts of fuzzy logic, adaptive sliding mode and active backstepping control are designed to stabilise chaos. Also, FOCs based on adaptive sliding mode and active backstepping synchronisation are designed to synchronise a chaotic epidemic with a non-chaotic one, to mitigate the unpredictability due to chaos during transmission. It is found that severity and complexity of the models increase as the memory fades, indicating that FO can be used as a crucial parameter to analyse the progression of a pandemic. To sum it up, this paper will help researchers to have an overview of using fractional calculus in modelling pandemics more precisely and also to approximate, choose, stabilise and synchronise the chaos control parameter that will eliminate the extreme sensitivity and irregularity of the models.
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spelling pubmed-91262502022-05-24 Is fractional-order chaos theory the new tool to model chaotic pandemics as Covid-19? Borah, Manashita Gayan, Antara Sharma, Jiv Siddhi Chen, YangQuan Wei, Zhouchao Pham, Viet-Thanh Nonlinear Dyn Review The deadly outbreak of the second wave of Covid-19, especially in worst hit lower-middle-income countries like India, and the drastic rise of another growing epidemic of Mucormycosis, call for an efficient mathematical tool to model pandemics, analyse their course of outbreak and help in adopting quicker control strategies to converge to an infection-free equilibrium. This review paper on prominent pandemics reveals that their dispersion is chaotic in nature having long-range memory effects and features which the existing integer-order models fail to capture. This paper thus puts forward the use of fractional-order (FO) chaos theory that has memory capacity and hereditary properties, as a potential tool to model the pandemics with more accuracy and closeness to their real physical dynamics. We investigate eight FO models of Bombay plague, Cancer and Covid-19 pandemics through phase portraits, time series, Lyapunov exponents and bifurcation analysis. FO controllers (FOCs) on the concepts of fuzzy logic, adaptive sliding mode and active backstepping control are designed to stabilise chaos. Also, FOCs based on adaptive sliding mode and active backstepping synchronisation are designed to synchronise a chaotic epidemic with a non-chaotic one, to mitigate the unpredictability due to chaos during transmission. It is found that severity and complexity of the models increase as the memory fades, indicating that FO can be used as a crucial parameter to analyse the progression of a pandemic. To sum it up, this paper will help researchers to have an overview of using fractional calculus in modelling pandemics more precisely and also to approximate, choose, stabilise and synchronise the chaos control parameter that will eliminate the extreme sensitivity and irregularity of the models. Springer Netherlands 2022-05-23 2022 /pmc/articles/PMC9126250/ /pubmed/35634246 http://dx.doi.org/10.1007/s11071-021-07196-3 Text en © The Author(s), under exclusive licence to Springer Nature B.V. 2022 This article is made available via the PMC Open Access Subset for unrestricted research re-use and secondary analysis in any form or by any means with acknowledgement of the original source. These permissions are granted for the duration of the World Health Organization (WHO) declaration of COVID-19 as a global pandemic.
spellingShingle Review
Borah, Manashita
Gayan, Antara
Sharma, Jiv Siddhi
Chen, YangQuan
Wei, Zhouchao
Pham, Viet-Thanh
Is fractional-order chaos theory the new tool to model chaotic pandemics as Covid-19?
title Is fractional-order chaos theory the new tool to model chaotic pandemics as Covid-19?
title_full Is fractional-order chaos theory the new tool to model chaotic pandemics as Covid-19?
title_fullStr Is fractional-order chaos theory the new tool to model chaotic pandemics as Covid-19?
title_full_unstemmed Is fractional-order chaos theory the new tool to model chaotic pandemics as Covid-19?
title_short Is fractional-order chaos theory the new tool to model chaotic pandemics as Covid-19?
title_sort is fractional-order chaos theory the new tool to model chaotic pandemics as covid-19?
topic Review
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9126250/
https://www.ncbi.nlm.nih.gov/pubmed/35634246
http://dx.doi.org/10.1007/s11071-021-07196-3
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