DocumentCode
1252318
Title
A new three-dimensional finite-difference bidomain formulation for inhomogeneous anisotropic cardiac tissues
Author
Saleheen, Hasan I. ; Ng, Kwong T.
Author_Institution
Nat. Software Eng. Center, Concurrent Technol. Corp., Johnstown, PA, USA
Volume
45
Issue
1
fYear
1998
Firstpage
15
Lastpage
25
Abstract
Bidomain modeling of cardiac tissues provides important information about various complex cardiac activities. The cardiac tissue consists of interconnected cells which form fiber-like structures. The fibers are arranged in different orientations within discrete layers or sheets in the tissue, i.e., the fibers within the tissue are rotated. From a mathematical point of view, this rotation corresponds to a general anisotropy in the tissue´s conductivity tensors. Since the rotation angle is different at each point, the anisotropic conductivities also vary spatially. Thus, the cardiac tissue should be viewed as an inhomogeneous anisotropic structure. In most of the previous bidomain studies, the fiber rotation has not been considered, i.e., the tissue has been modeled as a homogeneous orthotropic medium. Here, the authors describe a new finite-difference bidomain formulation which accounts for the fiber rotation in the cardiac tissue and hence allows a more realistic modeling of the cardiac tissue. The formulation has been implemented on the data-parallel CM-5 which provides the computational power and the memory required for solving large bidomain problems. Details of the numerical formulation are presented together with its validation by comparing numerical and analytical results. Some computational performance results are also shown. In addition, an application of this new formulation to provide activation patterns within a tissue slab with a realistic fiber rotation is demonstrated.
Keywords
bioelectric phenomena; cardiology; cellular biophysics; finite difference methods; physiological models; cardiac tissue modeling; complex cardiac activities; computational performance results; fiber rotation; fiber-like structures; homogeneous orthotropic medium; inhomogeneous anisotropic cardiac tissues; inhomogeneous anisotropic structure; interconnected cells; three-dimensional finite-difference bidomain formulation; tissue fibers; Anisotropic magnetoresistance; Bioelectric phenomena; Biomembranes; Capacitance; Cardiac tissue; Conductivity; Finite difference methods; Myocardium; Slabs; Tensile stress; Algorithms; Anisotropy; Computer Simulation; Electric Conductivity; Membrane Potentials; Models, Cardiovascular; Neural Conduction; Rotation;
fLanguage
English
Journal_Title
Biomedical Engineering, IEEE Transactions on
Publisher
ieee
ISSN
0018-9294
Type
jour
DOI
10.1109/10.650347
Filename
650347
Link To Document