Show simple item record

dc.contributor.authorStary, T.
dc.contributor.authorBiktashev, V. N.
dc.date.accessioned2015-03-26T10:40:52Z
dc.date.issued2014-11-05
dc.description.abstractThe modern Markov chain models of ionic channels in excitable membranes are numerically stiff. The popular numerical methods for these models require very small time steps to ensure stability. Our objective is to formulate and test two methods addressing this issue, so that the timestep can be chosen based on accuracy rather than stability. Both proposed methods extend Rush-Larsen technique, which was originally developed to Hogdkin-Huxley type gate models. One method, "matrix Rush-Larsen" (MRL) uses a matrix reformulation of the Rush-Larsen scheme, where the matrix exponentials are calculated using precomputed tables of eigenvalues and eigenvectors. The other, "hybrid operator splitting" (HOS) method exploits asymptotic properties of a particular Markov chain model, allowing explicit analytical expressions for the substeps. We test both methods on the Clancy and Rudy (2002) [Formula: see text] Markov chain model. With precomputed tables for functions of the transmembrane voltage, both methods are comparable to the forward Euler method in accuracy and computational cost, but allow longer time steps without numerical instability. We conclude that both methods are of practical interest. MRL requires more computations than HOS, but is formulated in general terms which can be readily extended to other Markov chain channel models, whereas the utility of HOS depends on the asymptotic properties of a particular model. The significance of the methods is that they allow a considerable speed-up of large-scale computations of cardiac excitation models by increasing the time step, while maintaining acceptable accuracy and preserving numerical stability.en_GB
dc.description.sponsorshipEngineering and Physical Sciences Research Council (EPSRC)en_GB
dc.identifier.citationVol. 62 (4), pp. 1070 - 1076en_GB
dc.identifier.doi10.1109/TBME.2014.2366466
dc.identifier.grantnumberEP/I029664/1en_GB
dc.identifier.urihttp://hdl.handle.net/10871/16626
dc.language.isoenen_GB
dc.publisherInstitute of Electrical and Electronics Engineers (IEEE)en_GB
dc.relation.urlhttp://www.ncbi.nlm.nih.gov/pubmed/25376030en_GB
dc.subjectexponential time-differentiationen_GB
dc.subjectMarkov chainen_GB
dc.subjectRush-Larsen methoden_GB
dc.subjectexponential time-differentiationen_GB
dc.subjection channelen_GB
dc.subjectnumerical methodsen_GB
dc.subjectoperator splittingen_GB
dc.subjectComputational modelingen_GB
dc.subjectEquationsen_GB
dc.subjectIronen_GB
dc.subjectMarkov processesen_GB
dc.subjectMathematical modelen_GB
dc.subjectNumerical modelsen_GB
dc.subjectNumerical stabilityen_GB
dc.titleExponential integrators for a Markov chain model of the fast sodium channel of cardiomyocytesen_GB
dc.typeArticleen_GB
dc.date.available2015-03-26T10:40:52Z
dc.identifier.issn0018-9294
exeter.place-of-publicationUnited States
dc.descriptionCopyright © 2015 IEEE. Personal use of this material is permitted. Permission from IEEE must be obtained for all other uses, in any current or future media, including reprinting/republishing this material for advertising or promotional purposes, creating new collective works, for resale or redistribution to servers or lists, or reuse of any copyrighted component of this work in other works.en_GB
dc.identifier.journalIEEE Transactions on Biomedical Engineeringen_GB


Files in this item

This item appears in the following Collection(s)

Show simple item record