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A non-conforming monolithic finite element method for problems of coupled mechanics.

, , and . J. Comput. Phys., 229 (20): 7571-7593 (2010)

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Improving the Stability of Cardiac Mechanical Simulations., , , and . IEEE Trans. Biomed. Eng., 62 (3): 939-947 (2015)A finite-element approach to the direct computation of relative cardiovascular pressure from time-resolved MR velocity data., , , , , , , , , and . Medical Image Anal., 16 (5): 1029-1037 (2012)A non-conforming monolithic finite element method for problems of coupled mechanics., , and . J. Comput. Phys., 229 (20): 7571-7593 (2010)Quality Metrics for High Order Meshes: Analysis of the Mechanical Simulation of the Heart Beat., , , , , , , and . IEEE Trans. Medical Imaging, 32 (1): 130-138 (2013)Insight into model mechanisms through automatic parameter fitting: a new methodological framework for model development., , , and . BMC Syst. Biol., (2014)A Comparative Study of Graph-Based, Eikonal, and Monodomain Simulations for the Estimation of Cardiac Activation Times., , and . IEEE Trans. Biomed. Eng., 59 (6): 1739-1748 (2012)Manifold Learning for Cardiac Modeling and Estimation Framework., , , , and . STACOM, volume 8896 of Lecture Notes in Computer Science, page 284-294. Springer, (2014)Reducing emergency services response time in smart cities: An advanced adaptive and fuzzy approach., , , and . ISC2, page 1-8. IEEE, (2015)Computational multiscale modeling in the IUPS Physiome Project: Modeling cardiac electromechanics., , , , and . IBM J. Res. Dev., 50 (6): 617-630 (2006)A spatially-distributed computational model to quantify behaviour of contrast agents in MR perfusion imaging., , , , , , and . Medical Image Anal., 18 (7): 1200-1216 (2014)