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Dyssynchronous Left Ventricular Stress Estimation In Workshop on Advanced Numerical Techniques in Biomedical Computing: Simula Research Laboratory, Edited by H. Finsberg, M. E. Rognes, J. Sundnes, S. Wall, H. H. Odland and S. Ross., 2015.
"Electro-Mechanical Coupling in Cardiac Tissue." In Encyclopedia of Applied and Computational Mathematics, edited by B. Engquist. Springer Berlin Heidelberg, 2015.
Identifying the Parameters of the Heart: Variational Data Assimilation in Cardiac Mechanics Using Dolfin-Adjoint In FEniCS '15, Imperial College London, UK., 2015.
"Increased Membrane Capacitance Is the Dominant Mechanism of Stretch-Dependent Conduction Slowing in the Rabbit Heart: a Computational Study." Cellular and Molecular Bioengineering 8, no. 2 (2015): 237-246.
"An integrated electromechanical-growth heart model for simulating cardiac therapies." Biomechanics and Modeling in Mechanobiology 15, no. 4 (2015): 791-803.
Mechano-electric feedback as a source of ectopic activity In Gordon Research Conference on Arrhythmia Mechanisms, Lucca, Italy. Gordon Research Conference on Arrhythmia Mechanisms, Lucca, Italy, 2015.
Modeling growth and remodeling in heart muscle tissue In SIAM Conference on Computational Science and Engineering., 2015.
Patient–Specific Parameter Estimation for a Transversely Isotropic Active Strain Model of Left Ventricular Mechanics In Statistical Atlases and Computational Models of the Heart-Imaging and Modelling Challenges. Springer International Publishing, 2015.
Personalization of a Cardiac Compuational Model using Clinical Measurements In 28th Nordic Seminar on Computational Mechanics. Vol. 28. Tallin, Estonia: Proceedings of NSCM-28, 2015.
nordic2.pdf (210.82 KB)
Significance of passive material parameters in mechanical models of the heart In Lugano, Switzerland., 2015.
maltabstract.pdf (1.26 MB)
Simulations of Heart Function (editorial) In BioMed Research International. Hindawi Publishing Corporation, 2015.
"Verification of cardiac mechanics software: benchmark problems and solutions for testing active and passive material behaviour." Proceedings of the Royal Society A 471 (2015).
Computational Models of Electro-Mechanical Interactions in the Heart In The Nordic Seminar on Computational Mechanics, Stockholm., 2014.
Computational Models of Electro-Mechanical Interactions in the Heart In Invited mini symposium presentation at the European Conference for Mathematics in Industry, Taormina, Italy., 2014.
A Continuum Model for Active Cardiac Muscle In World congress on Computational Mechanics, Barcelona, Spain., 2014.
"Improved Discretisation and Linearisation of Active Tension in Strongly Coupled Cardiac Electro-Mechanics Simulations." Computer Methods in Biomechanics and Biomedical Engineering 17 (2014): 604-15.
Least Squares Fitting of a Cardiac Hyperelasticity Model Using an Automatically Derived Adjoint Equation In Proceedings of NSCM-27: the 27th Nordic Seminar on Computational Mechanics, Edited by A. Eriksson, A. Kulachenko, M. Mihaescu and G. Tibert. Vol. 27. Drottning Kristinas väg 53: KTH Stockholm Royal Institute of Technology, 2014.
Patient Specific Models of Cardiac Electro-Mechanics In Seminar at Ecole des Mines, St Etienne, France., 2014.
"Patient–Specific Parameter Estimation for a Transversely Isotropic Active Strain Model of Left Ventricular Mechanics." In Lecture Notes in Computer Science, 93-104. Vol. 8896. Springer International Publishing, 2014.
"Stable Time Integration Suppresses Unphysical Oscillations in the Bidomain Model." Frontiers in Physics 2, no. 40 (2014).
3D Heart Modeling With Cellular Automata, Mass-Spring System and CUDA In Parallel computing technologies, Edited by V. Malyshkin. Vol. 7979. Lecture notes in computer science 7979. Springer, 2013.
Computational Models of Electro-Mechanical Interactions in the Heart In SIAM conference on computational science and engineering, Boston., 2013.
"Effects of Deformation on Transmural Dispersion of Repolarization Using in Silico Models of Human Left Ventricular Wedge." International Journal for Numerical Methods in Biomedical Engineering 29 (2013): 1323-1337.
The Effects of Mechanoelectrical Feedback on Conduction Velocity: a Computational Study. Cardiac Physiome Workshop, 2013.
Evaluation of Cardiac Tissue Engineering Applications Using Strongly Coupled Electromechanical Models of the Left Ventricle In Computer Methods in Biomechanics and Biomedical Engineering, Utah., 2013.