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1.
Ann Biomed Eng ; 44(1): 58-70, 2016 Jan.
Article in English | MEDLINE | ID: mdl-26424476

ABSTRACT

Computational models of cardiac electromechanics (EM) are increasingly being applied to clinical problems, with patient-specific models being generated from high fidelity imaging and used to simulate patient physiology, pathophysiology and response to treatment. Current structured meshes are limited in their ability to fully represent the detailed anatomical data available from clinical images and capture complex and varied anatomy with limited geometric accuracy. In this paper, we review the state of the art in image-based personalization of cardiac anatomy for biophysically detailed, strongly coupled EM modeling, and present our own tools for the automatic building of anatomically and structurally accurate patient-specific models. Our method relies on using high resolution unstructured meshes for discretizing both physics, electrophysiology and mechanics, in combination with efficient, strongly scalable solvers necessary to deal with the computational load imposed by the large number of degrees of freedom of these meshes. These tools permit automated anatomical model generation and strongly coupled EM simulations at an unprecedented level of anatomical and biophysical detail.


Subject(s)
Heart/diagnostic imaging , Imaging, Three-Dimensional/methods , Magnetic Resonance Imaging , Models, Cardiovascular , Precision Medicine/methods , Animals , Humans , Radiography
2.
Med Biol Eng Comput ; 52(2): 159-68, 2014 Feb.
Article in English | MEDLINE | ID: mdl-24306943

ABSTRACT

In order to perform finite element (FE) analyses of patient-specific abdominal aortic aneurysms, geometries derived from medical images must be meshed with suitable elements. We propose a semi-automatic method for generating conforming hexahedral meshes directly from contours segmented from medical images. Magnetic resonance images are generated using a protocol developed to give the abdominal aorta high contrast against the surrounding soft tissue. These data allow us to distinguish between the different structures of interest. We build novel quadrilateral meshes for each surface of the sectioned geometry and generate conforming hexahedral meshes by combining the quadrilateral meshes. The three-layered morphology of both the arterial wall and thrombus is incorporated using parameters determined from experiments. We demonstrate the quality of our patient-specific meshes using the element Scaled Jacobian. The method efficiently generates high-quality elements suitable for FE analysis, even in the bifurcation region of the aorta into the iliac arteries. For example, hexahedral meshes of up to 125,000 elements are generated in less than 130 s, with 94.8 % of elements well suited for FE analysis. We provide novel input for simulations by independently meshing both the arterial wall and intraluminal thrombus of the aneurysm, and their respective layered morphologies.


Subject(s)
Aortic Aneurysm, Abdominal/diagnosis , Thrombosis/diagnosis , Algorithms , Aorta/pathology , Aortic Aneurysm, Abdominal/pathology , Computer Simulation , Finite Element Analysis , Humans , Image Processing, Computer-Assisted , Magnetic Resonance Imaging , Software , Thrombosis/pathology
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