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Numerical Computational Heuristic Through Morlet Wavelet Neural Network for Solving the Dynamics of Nonlinear Sitr Covid-19

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Date

2022

Journal Title

Journal ISSN

Volume Title

Publisher

Tech Science Press

Open Access Color

GOLD

Green Open Access

No

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Abstract

The present investigations are associated with designing Morlet wavelet neural network (MWNN) for solving a class of susceptible, infected, treatment and recovered (SITR) fractal systems of COVID-19 propagation and control. The structure of an error function is accessible using the SITR differential form and its initial conditions. The optimization is performed using the MWNN together with the global as well as local search heuristics of genetic algorithm (GA) and active-set algorithm (ASA), i.e., MWNN-GA-ASA. The detail of each class of the SITR nonlinear COVID-19 system is also discussed. The obtained outcomes of the SITR system are compared with the Runge-Kutta results to check the perfection of the designed method. The statistical analysis is performed using different measures for 30 independent runs as well as 15 variables to authenticate the consistency of the proposed method. The plots of the absolute error, convergence analysis, histogram, performance measures, and boxplots are also provided to find the exactness, dependability and stability of the MWNN-GA-ASA.

Description

Raja, Muhammad Asif Zahoor/0000-0001-9953-822X; Alnahdi, Abeer/0000-0002-8027-2529; Sabir, Zulqurnain/0000-0001-7466-6233; Abdelkawy, Mohamed/0000-0002-9043-9644; Jeelani, Mdi B/0000-0002-8812-2859

Keywords

Nonlinear Sitr Model, Morlet Function, Artificial Neural Networks, Runge-Kutta, Treatment, Genetic Algorithm, Active-Set

Fields of Science

0202 electrical engineering, electronic engineering, information engineering, 02 engineering and technology

Citation

Sabir, Zulqurnain;...et.al. (2022). "Numerical Computational Heuristic Through Morlet Wavelet Neural Network for Solving the Dynamics of Nonlinear SITR COVID-19", CMES - Computer Modeling in Engineering and Sciences, Vol.131, No.2, pp.763-785.

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Q1

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OpenCitations Citation Count
4

Source

Computer Modeling in Engineering & Sciences

Volume

131

Issue

2

Start Page

763

End Page

785
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CrossRef : 3

Scopus : 9

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Mendeley Readers : 5

SCOPUS™ Citations

9

checked on Feb 23, 2026

Web of Science™ Citations

8

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3

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1.71393396

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3

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