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dc.contributor.authorBen Seghier, Mohamed El Amine
dc.contributor.authorPlevris, V.
dc.contributor.authorSolorzano, German
dc.date.accessioned2023-02-17T09:16:38Z
dc.date.available2023-02-17T09:16:38Z
dc.date.created2023-02-09T19:17:22Z
dc.date.issued2022-11-24
dc.identifier.isbn9788412322286
dc.identifier.urihttps://hdl.handle.net/11250/3051831
dc.description.abstractIn this paper, the potential of building more accurate and robust models for the prediction of the ultimate pure bending capacity of steel circular tubes using artificial intelligence techniques is investigated. Therefore, a database consisting of 104 tests for fabricated and cold-formed steel circular tubes are collected from the open literature and used to train and validate the proposed data-driven approaches which include the Random Forest methodology in two variants: the original version in which the control parameters are manually updated, and an enhanced RF-PSO variant, where Particle Swarm Optimization is used for optimizing these parameters. The data set has four input parameters, namely the tube thickness, tube diameter, yield strength of steel and steel elasticity modulus, while the ultimate pure bending capacity is considered as the target output variable. The obtained results are compared to the real test values through various statistical indicators such as the root mean square error and the coefficient of determination. The results indicate that the proposed enhanced model can provide an accurate solution for modelling the complex behavior of steel circular tubes under pure bending conditions.en_US
dc.language.isoengen_US
dc.publisherScipediaen_US
dc.relation.ispartof8th European Congress on Computational Methods in Applied Sciences and Engineering (ECCOMAS Congress 2022)
dc.rightsNavngivelse-Ikkekommersiell-DelPåSammeVilkår 4.0 Internasjonal*
dc.rights.urihttp://creativecommons.org/licenses/by-nc-sa/4.0/deed.no*
dc.titleUsing artificial intelligence techniques for the accurate estimation of the ultimate pure bending of steel circular tubesen_US
dc.typeConference objecten_US
dc.description.versionpublishedVersionen_US
cristin.ispublishedtrue
cristin.fulltextoriginal
cristin.qualitycode1
dc.identifier.doihttps://doi.org/10.23967/eccomas.2022.285
dc.identifier.cristin2124699
dc.source.pagenumber1-13en_US


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