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The hidden Markov chain modelling of the COVID-19 spreading using Moroccan dataset

The World Health Organization (WHO) declared in March 12, 2020 the COVID-19 disease as pandemic. In Morocco, the first local transmission case was detected in March 13. The number of confirmed cases has gradually increased to reach 15,194 on July 10, 2020. To predict the COVID-19 evolution, statisti...

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Autores principales: Marfak, Abdelghafour, Achak, Doha, Azizi, Asmaa, Nejjari, Chakib, Aboudi, Khalid, Saad, Elmadani, Hilali, Abderraouf, Youlyouz-Marfak, Ibtissam
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7380238/
https://www.ncbi.nlm.nih.gov/pubmed/32789156
http://dx.doi.org/10.1016/j.dib.2020.106067
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author Marfak, Abdelghafour
Achak, Doha
Azizi, Asmaa
Nejjari, Chakib
Aboudi, Khalid
Saad, Elmadani
Hilali, Abderraouf
Youlyouz-Marfak, Ibtissam
author_facet Marfak, Abdelghafour
Achak, Doha
Azizi, Asmaa
Nejjari, Chakib
Aboudi, Khalid
Saad, Elmadani
Hilali, Abderraouf
Youlyouz-Marfak, Ibtissam
author_sort Marfak, Abdelghafour
collection PubMed
description The World Health Organization (WHO) declared in March 12, 2020 the COVID-19 disease as pandemic. In Morocco, the first local transmission case was detected in March 13. The number of confirmed cases has gradually increased to reach 15,194 on July 10, 2020. To predict the COVID-19 evolution, statistical and mathematical models such as generalized logistic growth model [1], exponential model [2], segmented Poisson model [3], Susceptible-Infected-Recovered derivative models [4] and ARIMA [5] have been proposed and used. Herein, we proposed the use of the Hidden Markov Chain, which is a statistical system modelling transitions from one state (confirmed cases, recovered, active or death) to another according to a transition probability matrix to forecast the evolution of COVID-19 in Morocco from March 14, to October 5, 2020. In our knowledge the Hidden Markov Chain was not yet applied to the COVID-19 spreading. Forecasts for the cumulative number of confirmed, recovered, active and death cases can help the Moroccan authorities to set up adequate protocols for managing the post-confinement due to COVID-19. We provided both the recorded and forecasted data matrices of the cumulative number of the confirmed, recovered and active cases through the range of the studied dates.
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spelling pubmed-73802382020-07-24 The hidden Markov chain modelling of the COVID-19 spreading using Moroccan dataset Marfak, Abdelghafour Achak, Doha Azizi, Asmaa Nejjari, Chakib Aboudi, Khalid Saad, Elmadani Hilali, Abderraouf Youlyouz-Marfak, Ibtissam Data Brief Mathematics The World Health Organization (WHO) declared in March 12, 2020 the COVID-19 disease as pandemic. In Morocco, the first local transmission case was detected in March 13. The number of confirmed cases has gradually increased to reach 15,194 on July 10, 2020. To predict the COVID-19 evolution, statistical and mathematical models such as generalized logistic growth model [1], exponential model [2], segmented Poisson model [3], Susceptible-Infected-Recovered derivative models [4] and ARIMA [5] have been proposed and used. Herein, we proposed the use of the Hidden Markov Chain, which is a statistical system modelling transitions from one state (confirmed cases, recovered, active or death) to another according to a transition probability matrix to forecast the evolution of COVID-19 in Morocco from March 14, to October 5, 2020. In our knowledge the Hidden Markov Chain was not yet applied to the COVID-19 spreading. Forecasts for the cumulative number of confirmed, recovered, active and death cases can help the Moroccan authorities to set up adequate protocols for managing the post-confinement due to COVID-19. We provided both the recorded and forecasted data matrices of the cumulative number of the confirmed, recovered and active cases through the range of the studied dates. Elsevier 2020-07-24 /pmc/articles/PMC7380238/ /pubmed/32789156 http://dx.doi.org/10.1016/j.dib.2020.106067 Text en © 2020 The Author(s) http://creativecommons.org/licenses/by/4.0/ This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Mathematics
Marfak, Abdelghafour
Achak, Doha
Azizi, Asmaa
Nejjari, Chakib
Aboudi, Khalid
Saad, Elmadani
Hilali, Abderraouf
Youlyouz-Marfak, Ibtissam
The hidden Markov chain modelling of the COVID-19 spreading using Moroccan dataset
title The hidden Markov chain modelling of the COVID-19 spreading using Moroccan dataset
title_full The hidden Markov chain modelling of the COVID-19 spreading using Moroccan dataset
title_fullStr The hidden Markov chain modelling of the COVID-19 spreading using Moroccan dataset
title_full_unstemmed The hidden Markov chain modelling of the COVID-19 spreading using Moroccan dataset
title_short The hidden Markov chain modelling of the COVID-19 spreading using Moroccan dataset
title_sort hidden markov chain modelling of the covid-19 spreading using moroccan dataset
topic Mathematics
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7380238/
https://www.ncbi.nlm.nih.gov/pubmed/32789156
http://dx.doi.org/10.1016/j.dib.2020.106067
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