Swarming Computational Techniques for the Influenza Disease System

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Abstract: The current study relates to designing a swarming computational paradigm to solve the influenza disease system (IDS). The nonlinear system’s mathematical form depends upon four classes: susceptible individuals, infected people, recovered individuals and cross-immune people. The solutions o...

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Detalles Bibliográficos
Autores: Noinang, Sakda, Sabir, Zulqurnain, Cieza Altamirano, Gilder, Zahoor Raja, Muhammad Asif, Sánchez-Chero, Manuel Jesus, Seminario-Morales, Maria Veronica, Weera, Wajaree, Botmart, Thongchai
Formato: artículo
Fecha de Publicación:2022
Institución:Universidad Nacional Autónoma de Chota
Repositorio:UNACH-Institucional
Lenguaje:inglés
OAI Identifier:oai:repositorio.unach.edu.pe:20.500.14142/894
Enlace del recurso:https://repositorio.unach.edu.pe/handle/20.500.14142/894
http://dx.doi.org/10.32604/cmc.2022.029437
Nivel de acceso:acceso abierto
Materia:computational paradigm
https://purl.org/pe-repo/ocde/ford#1.01.00
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dc.title.none.fl_str_mv Swarming Computational Techniques for the Influenza Disease System
title Swarming Computational Techniques for the Influenza Disease System
spellingShingle Swarming Computational Techniques for the Influenza Disease System
Noinang, Sakda
computational paradigm
https://purl.org/pe-repo/ocde/ford#1.01.00
title_short Swarming Computational Techniques for the Influenza Disease System
title_full Swarming Computational Techniques for the Influenza Disease System
title_fullStr Swarming Computational Techniques for the Influenza Disease System
title_full_unstemmed Swarming Computational Techniques for the Influenza Disease System
title_sort Swarming Computational Techniques for the Influenza Disease System
author Noinang, Sakda
author_facet Noinang, Sakda
Sabir, Zulqurnain
Cieza Altamirano, Gilder
Zahoor Raja, Muhammad Asif
Sánchez-Chero, Manuel Jesus
Seminario-Morales, Maria Veronica
Weera, Wajaree
Botmart, Thongchai
author_role author
author2 Sabir, Zulqurnain
Cieza Altamirano, Gilder
Zahoor Raja, Muhammad Asif
Sánchez-Chero, Manuel Jesus
Seminario-Morales, Maria Veronica
Weera, Wajaree
Botmart, Thongchai
author2_role author
author
author
author
author
author
author
dc.contributor.author.fl_str_mv Noinang, Sakda
Sabir, Zulqurnain
Cieza Altamirano, Gilder
Zahoor Raja, Muhammad Asif
Sánchez-Chero, Manuel Jesus
Seminario-Morales, Maria Veronica
Weera, Wajaree
Botmart, Thongchai
dc.subject.none.fl_str_mv computational paradigm
topic computational paradigm
https://purl.org/pe-repo/ocde/ford#1.01.00
dc.subject.ocde.none.fl_str_mv https://purl.org/pe-repo/ocde/ford#1.01.00
description Abstract: The current study relates to designing a swarming computational paradigm to solve the influenza disease system (IDS). The nonlinear system’s mathematical form depends upon four classes: susceptible individuals, infected people, recovered individuals and cross-immune people. The solutions of the IDS are provided by using the artificial neural networks (ANNs) together with the swarming computational paradigm-based particle swarm optimization (PSO) and interior-point scheme (IPA) that are the global and local search approaches. The ANNs-PSO-IPA has never been applied to solve the IDS. Instead a merit function in the sense of mean square error is constructed using the differential form of each class of the IDS and then optimized by the PSOIPA. The correctness and accuracy of the scheme are observed to perform the comparative analysis of the obtained IDS results with the Adams solutions (reference solutions). An absolute error in suitable measures shows the precision of the proposed ANNs procedures and the optimization efficiency of the PSOIPA. Furthermore, the reliability and competence of the proposed computing method are enhanced through the statistical performances
publishDate 2022
dc.date.accessioned.none.fl_str_mv 2025-10-23T15:30:11Z
dc.date.available.none.fl_str_mv 2025-10-23T15:30:11Z
dc.date.issued.fl_str_mv 2022-05
dc.type.none.fl_str_mv info:eu-repo/semantics/article
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dc.identifier.doi.none.fl_str_mv http://dx.doi.org/10.32604/cmc.2022.029437
url https://repositorio.unach.edu.pe/handle/20.500.14142/894
http://dx.doi.org/10.32604/cmc.2022.029437
dc.language.iso.none.fl_str_mv eng
language eng
dc.relation.ispartof.none.fl_str_mv Computers, Materials & Continua
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dc.publisher.none.fl_str_mv Tech Science Press
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spelling Noinang, SakdaSabir, ZulqurnainCieza Altamirano, GilderZahoor Raja, Muhammad AsifSánchez-Chero, Manuel JesusSeminario-Morales, Maria VeronicaWeera, WajareeBotmart, Thongchai2025-10-23T15:30:11Z2025-10-23T15:30:11Z2022-05https://repositorio.unach.edu.pe/handle/20.500.14142/894http://dx.doi.org/10.32604/cmc.2022.029437Abstract: The current study relates to designing a swarming computational paradigm to solve the influenza disease system (IDS). The nonlinear system’s mathematical form depends upon four classes: susceptible individuals, infected people, recovered individuals and cross-immune people. The solutions of the IDS are provided by using the artificial neural networks (ANNs) together with the swarming computational paradigm-based particle swarm optimization (PSO) and interior-point scheme (IPA) that are the global and local search approaches. The ANNs-PSO-IPA has never been applied to solve the IDS. Instead a merit function in the sense of mean square error is constructed using the differential form of each class of the IDS and then optimized by the PSOIPA. The correctness and accuracy of the scheme are observed to perform the comparative analysis of the obtained IDS results with the Adams solutions (reference solutions). An absolute error in suitable measures shows the precision of the proposed ANNs procedures and the optimization efficiency of the PSOIPA. Furthermore, the reliability and competence of the proposed computing method are enhanced through the statistical performancesFunding Statement: This research received funding support from the NSRF via the Program Management Unit for Human Resources & Institutional Development, Research and Innovation (Grant Number B05F640092).application/pdfengTech Science PressUSComputers, Materials & Continuaurn:issn: 15462218; 15462226info:eu-repo/semantics/openAccesshttps://creativecommons.org/licenses/by-nc-nd/4.0/computational paradigmhttps://purl.org/pe-repo/ocde/ford#1.01.00Swarming Computational Techniques for the Influenza Disease Systeminfo:eu-repo/semantics/articleinfo:eu-repo/semantics/publishedVersionreponame:UNACH-Institucionalinstname:Universidad Nacional Autónoma de Chotainstacron:UNACHLICENSElicense.txtlicense.txttext/plain; charset=utf-81748https://repositorio.unach.edu.pe/bitstreams/0a84e1b9-90ee-4b9f-b2c8-d427c2046bbc/downloadbb9bdc0b3349e4284e09149f943790b4MD51ORIGINALTSP_CMC_29437.pdfTSP_CMC_29437.pdfapplication/pdf962359https://repositorio.unach.edu.pe/bitstreams/0bf6b498-5e5b-41b9-b15e-4177f824c4d6/download72e9dd438a28f977f898ebf5251d16d3MD52THUMBNAIL98.jpgimage/jpeg181111https://repositorio.unach.edu.pe/bitstreams/889974bd-889b-4aeb-ae75-a61cec438013/download65eaf8277181dfc0361dd7c5bd17db48MD5320.500.14142/894oai:repositorio.unach.edu.pe:20.500.14142/8942025-10-23 17:31:58.548https://creativecommons.org/licenses/by-nc-nd/4.0/info:eu-repo/semantics/openAccessopen.accesshttps://repositorio.unach.edu.peRepositorio UNACHdspace-help@myu.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