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Investigations Of Non-Linear Induction Motor Model Using The Gudermannıan Neural Networks

dc.authorid Sabir, Zulqurnain/0000-0001-7466-6233
dc.authorid Raja, Muhammad Asif Zahoor/0000-0001-9953-822X
dc.authorid Ali, Mohamed/0000-0002-0795-0709
dc.authorscopusid 56184182600
dc.authorscopusid 36739939800
dc.authorscopusid 7005872966
dc.authorscopusid 57205376356
dc.authorscopusid 57204945844
dc.authorwosid Ali, Mohamed/Abi-6395-2020
dc.authorwosid Baleanu, Dumitru/B-9936-2012
dc.authorwosid Sabir, Zulqurnain/Aas-8882-2021
dc.authorwosid Raja, Muhammad Asif Zahoor/D-7325-2013
dc.authorwosid Ali, Mohamed/B-8932-2019
dc.contributor.author Sabir, Zulqurnain
dc.contributor.author Baleanu, Dumitru
dc.contributor.author Raja, Muhammad Asif Zahoor
dc.contributor.author Baleanu, Dumitru
dc.contributor.author Sadat, Rahma
dc.contributor.author Ali, Mohamed R.
dc.contributor.authorID 56389 tr_TR
dc.contributor.other Matematik
dc.date.accessioned 2024-03-19T12:47:23Z
dc.date.available 2024-03-19T12:47:23Z
dc.date.issued 2022
dc.department Çankaya University en_US
dc.department-temp [Sabir, Zulqurnain] Hazara Univ, Dept Math & Stat, Mansehra, Pakistan; [Raja, Muhammad Asif Zahoor] Natl Yunlin Univ Sci & Technol, Future Technol Res Ctr, Touliu, Yunlin, Taiwan; [Baleanu, Dumitru] Cankaya Univ, Dept Math, Ankara, Turkey; [Baleanu, Dumitru] Inst Space Sci, Bucharest, Romania; [Sadat, Rahma] Zagazig Univ, Zagazig Fac Engn, Dept Math, Zagazig, Egypt; [Ali, Mohamed R.] Future Univ, Fac Engn & Technol, Cairo, Egypt; [Ali, Mohamed R.] Benha Univ, Dept Basic Sci, Fac Engn Benha, Banha, Egypt en_US
dc.description Sabir, Zulqurnain/0000-0001-7466-6233; Raja, Muhammad Asif Zahoor/0000-0001-9953-822X; Ali, Mohamed/0000-0002-0795-0709 en_US
dc.description.abstract This study aims to solve the non-linear fifth-order induction motor model (FO-IMM) using the Gudermannian neural networks (GNN) along with the optimization procedures of global search as a genetic algorithm together with the quick local search process as active-set technique (GNN-GA-AST). The GNN are executed to discretize the non-linear FO-IMM to prompt the fitness function in the procedure of mean square error. The exactness of the GNN-GA-AST is observed by comparing the obtained results with the reference results. The numerical performances of the stochastic GNN-GA-AST are provided to tackle three different variants based on the non-linear FO-IMM to authenticate the consistency, significance and efficacy of the designed stochastic GNN-GA-AST. Additionally, statistical illustrations are available to authenticate the precision, accuracy and convergence of the designed stochastic GNN-GA-AST. en_US
dc.description.woscitationindex Science Citation Index Expanded
dc.identifier.citation Sabir, Zulqurnain;...et.al. (2022). "Investigations Of Non-Linear Induction Motor Model Using The Gudermannıan Neural Networks", Thermal Science, Vol.26, No.4, pp.3399-3412. en_US
dc.identifier.doi 10.2298/TSCI210508261S
dc.identifier.endpage 3412 en_US
dc.identifier.issn 0354-9836
dc.identifier.issn 2334-7163
dc.identifier.issue 4B en_US
dc.identifier.scopus 2-s2.0-85135516747
dc.identifier.scopusquality Q3
dc.identifier.startpage 3399 en_US
dc.identifier.uri https://doi.org/10.2298/TSCI210508261S
dc.identifier.volume 26 en_US
dc.identifier.wos WOS:000881233100012
dc.identifier.wosquality Q4
dc.language.iso en en_US
dc.publisher Vinca inst Nuclear Sci en_US
dc.relation.publicationcategory Makale - Uluslararası Hakemli Dergi - Kurum Öğretim Elemanı en_US
dc.rights info:eu-repo/semantics/openAccess en_US
dc.scopus.citedbyCount 7
dc.subject Fifth-Order Non-Linear Induction Motor Model en_US
dc.subject Active-Set Technique en_US
dc.subject Gudermannain Neural Network en_US
dc.subject Genetic Algorithm en_US
dc.subject Statistical Measures en_US
dc.title Investigations Of Non-Linear Induction Motor Model Using The Gudermannıan Neural Networks tr_TR
dc.title Investigations of Non-Linear Induction Motor Model Using the Gudermannian Neural Networks en_US
dc.type Article en_US
dc.wos.citedbyCount 7
dspace.entity.type Publication
relation.isAuthorOfPublication f4fffe56-21da-4879-94f9-c55e12e4ff62
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relation.isOrgUnitOfPublication.latestForDiscovery 26a93bcf-09b3-4631-937a-fe838199f6a5

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