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Physiological and chaos effect on dynamics of neurological disorder with memory effect of fractional operator: A mathematical study.

Authors :
Zehra, Anum
Naik, Parvaiz Ahmad
Hasan, Ali
Farman, Muhammad
Nisar, Kottakkaran Sooppy
Chaudhry, Faryal
Huang, Zhengxin
Source :
Computer Methods & Programs in Biomedicine. Jun2024, Vol. 250, pN.PAG-N.PAG. 1p.
Publication Year :
2024

Abstract

To study the dynamical system, it is necessary to formulate the mathematical model to understand the dynamics of various diseases that are spread worldwide. The main objective of our work is to examine neurological disorders by early detection and treatment by taking asymptomatic. The central nervous system (CNS) is impacted by the prevalent neurological condition known as multiple sclerosis (MS), which can result in lesions that spread across time and place. It is widely acknowledged that multiple sclerosis (MS) is an unpredictable disease that can cause lifelong damage to the brain, spinal cord, and optic nerves. The use of integral operators and fractional order (FO) derivatives in mathematical models has become popular in the field of epidemiology. The model consists of segments of healthy or barian brain cells, infected brain cells, and damaged brain cells as a result of immunological or viral effectors with novel fractal fractional operator in sight Mittag Leffler function. The stability analysis, positivity, boundedness, existence, and uniqueness are treated for a proposed model with novel fractional operators. Model is verified the local and global with the Lyapunov function. Chaos Control will use the regulate for linear responses approach to bring the system to stabilize according to its points of equilibrium so that solutions are bounded in the feasible domain. To ensure the existence and uniqueness of the solutions to the suggested model, it makes use of Banach's fixed point and the Leray Schauder nonlinear alternative theorem. For numerical simulation and results the steps Lagrange interpolation method at different fractional order values and the outcomes are compared with those obtained using the well-known FFM method. Overall, by offering a mathematical model that can be used to replicate and examine the behavior of disease models, this research advances our understanding of the course and recurrence of disease. Such type of investigation will be useful to investigate the spread of disease as well as helpful in developing control strategies from our justified outcomes. • The disease transmission dynamics and the creation of control systems are investigated. • The work focuses on neurological disorders using the fractal-fractional Mittag-Leffler (FFM) derivative. • The fixed points of the model are identified and the stability analysis is carried out. • The fractional Lagrange interpolation method is utilized to compute the model's numerical solutions. • Finally, numerical simulations confirm the agreement between the theoretical findings and the numerical results. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
01692607
Volume :
250
Database :
Academic Search Index
Journal :
Computer Methods & Programs in Biomedicine
Publication Type :
Academic Journal
Accession number :
177201348
Full Text :
https://doi.org/10.1016/j.cmpb.2024.108190