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Application of fractional optimal control theory for the mitigating of novel coronavirus in Algeria.
El Hadj Moussa, Yacine; Boudaoui, Ahmed; Ullah, Saif; Muzammil, Khursheed; Riaz, Muhammad Bilal.
  • El Hadj Moussa Y; Department of Probability and Statistics, University Djillali Liabes, Algeria.
  • Boudaoui A; Laboratory of Mathematics Modeling and Applications, University of Adrar, Algeria.
  • Ullah S; Department of Mathematics, University of Peshawar, Khyber Pakhtunkhwa, Pakistan.
  • Muzammil K; Department of Public Health, CAMS, Khamis Mushait Campus, King Khalid University, Abha, Kingdom of Saudi Arabia.
  • Riaz MB; Department of Automation, Biomechanics and Mechatronics, Lodz University of Technology, 1/15 Stefanowskiego St., 90-924 Lodz, Poland.
Results Phys ; 39: 105651, 2022 Aug.
Article in English | MEDLINE | ID: covidwho-1946470
ABSTRACT
In this paper, we investigate the dynamics of novel coronavirus infection (COVID-19) using a fractional mathematical model in Caputo sense. Based on the spread of COVID-19 virus observed in Algeria, we formulate the model by dividing the infected population into two sub-classes namely the reported and unreported infective individuals. The existence and uniqueness of the model solution are given by using the well-known Picard-Lindelöf approach. The basic reproduction number R 0 is obtained and its value is estimated from the actual cases reported in Algeria. The model equilibriums and their stability analysis are analyzed. The impact of various constant control parameters is depicted for integer and fractional values of α . Further, we perform the sensitivity analysis showing the most sensitive parameters of the model versus R 0 to predict the incidence of the infection in the population. Further, based on the sensitivity analysis, the Caputo model with constant controls is extended to time-dependent variable controls in order obtain a fractional optimal control problem. The associated four time-dependent control variables are considered for the prevention, treatment, testing and vaccination. The fractional optimality condition for the control COVID-19 transmission model is presented. The existence of the Caputo optimal control model is studied and necessary condition for optimality in the Caputo case is derived from Pontryagin's Maximum Principle. Finally, the effectiveness of the proposed control strategies are demonstrated through numerical simulations. The graphical results revealed that the implantation of time-dependent controls significantly reduces the number of infective cases and are useful in mitigating the infection.
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Full text: Available Collection: International databases Database: MEDLINE Type of study: Observational study / Prognostic study Topics: Vaccines Language: English Journal: Results Phys Year: 2022 Document Type: Article Affiliation country: J.rinp.2022.105651

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Full text: Available Collection: International databases Database: MEDLINE Type of study: Observational study / Prognostic study Topics: Vaccines Language: English Journal: Results Phys Year: 2022 Document Type: Article Affiliation country: J.rinp.2022.105651