A robust fitted finite difference method for semi-linear two-parameter singularly perturbed pdes

dc.contributor.authorMohye, Mekashaw Ali
dc.contributor.authorMunyakazi, Justin B.
dc.contributor.authorDinka, Tekle Gemechu
dc.contributor.authorHussen, Yusuf
dc.contributor.authorNura, Abe
dc.date.accessioned2026-06-09T07:49:07Z
dc.date.available2026-06-09T07:49:07Z
dc.date.issued2026
dc.description.abstractThis article presents a novel numerical scheme for solving nonlinear two-parameter singularly perturbed initial-boundary value problems. The proposed method combines an explicit forward Euler discretization for the temporal derivative with a fitted operator finite difference technique in the spatial domain. To handle the nonlinearity, Newton’s quasilinearization technique is employed. A comprehensive error analysis establishes that the developed scheme is first-order convergent uniformly in the perturbation parameters. The efficacy of the method is validated through two numerical examples, implemented in Python. The results, presented in tables and figures, demonstrate the method’s robustness and accuracy in resolving boundary layers for a wide range of perturbation parameters.
dc.identifier.citationMohye, M.A., Munyakazi, J.B., Dinka, T.G., Haji, Y.H., Ware, A.N. and Ahmed, J.M., 2026. A robust fitted finite difference method for semi-linear two-parameter singularly perturbed PDEs. Journal of Mathematical Modeling, 14(2), pp.379-405.
dc.identifier.urihttps://doi.org/10.22124/jmm.2025.30916.2776
dc.identifier.urihttps://hdl.handle.net/10566/23152
dc.language.isoen
dc.publisherUniversity of Guilan
dc.subjectfitted operator finite difference method
dc.subjectNonlinear singularly perturbed problems
dc.subjectquasilinearization
dc.subjectuniform convergence
dc.titleA robust fitted finite difference method for semi-linear two-parameter singularly perturbed pdes
dc.typeArticle

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