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Modeling Excitable Tissue The EMI Framework

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Beschreibung

Produktdetails

Einband

Taschenbuch

Erscheinungsdatum

31.10.2020

Herausgeber

Aslak Tveito + weitere

Verlag

Springer

Seitenzahl

100

Maße (L/B/H)

23,5/15,5/0,7 cm

Gewicht

195 g

Auflage

1st ed. 2021

Sprache

Englisch

ISBN

978-3-030-61156-9

Beschreibung

Portrait

Kent-Andre Mardal is a professor of mechanics at the University of Oslo and an adjunct research scientist at Simula Research Laboratory. He has published more than 90 scientific publications, including journal papers, two co-authored books and the co-edited the book about the FEniCS project, for which he was a core developer for many years.  Research interests include computational modeling of various life science applications and robust, stable and accurate numerical schemes.

Marie E. Rognes is a research professor at Simula Research Laboratory and a founding member of the Young Academy of Norway. She has over 50 scientific publications and has delivered numerous keynote addresses and invited talks, including a TEDx talk. Her research is primarily focused on mathematical and computational modelling of fluid flow in the brain, and this work has been partially funded by an ERC starting grant.

Aslak Tveito is a professor of scientific computing at the University of Oslo,and the CEO of Simula Research Laboratory. He has co-authored three text books, one research monograph and many journal papers on computational physiology. His research interests are related to the use of computational methods to understand the dynamics of collections of excitable cells.



Produktdetails

Einband

Taschenbuch

Erscheinungsdatum

31.10.2020

Herausgeber

Verlag

Springer

Seitenzahl

100

Maße (L/B/H)

23,5/15,5/0,7 cm

Gewicht

195 g

Auflage

1st ed. 2021

Sprache

Englisch

ISBN

978-3-030-61156-9

Herstelleradresse

Springer-Verlag KG
Sachsenplatz 4-6
1201 Wien
AT

Email: GPSR Kontakt

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  • Produktbild: Modeling Excitable Tissue
  • Produktbild: Modeling Excitable Tissue
  • Derivation of a cell-based mathematical model of excitable cells.- A cell-based model for ionic electrodiffusion in excitable tissue.- Modeling cardiac mechanics on a subcellular scale.- Operator splitting and finite difference schemes for solving the EMI model.- Solving the EMI equations using finite element methods.- Iterative solvers for EMI models.- Improving neural simulations with the EMI model.- Index.