The 4D NCAT and XCAT phantoms have been found useful in the simulation of medical image data especially SPECT, PET, CT and more recently MRI. The phantoms provide realistic models of the anatomical structures and respiratory and cardiac motions of humans. When combined with accurate models of the physics and instrumentation involved in the imaging process, accurate and realistic simulation data that closely mimic those acquired from patients can be obtained. However, a limitation to the 4D NCAT/XCAT series of phantoms is that the cardiac motion incorporated in the NCAT/XCAT was based on a single set of gated tagged MRI data of a particular normal male subject so that the definitions of pathologies such as ischemia and infarction in the phantoms had no physiological basis. Our previous work sought to overcome this limitation by incorporating into the phantoms, a physiologically based finite-element (FE) mechanical model for the left ventricle (LV). These model was found to accurately simulate both the normal motion of the LV as well as abnormal motions due to ischemia [1] and infarction [2]. One of the primary limitations of these models is that they have overly simplistic geometries (Figure 1) representing the ischemic or infarcted regions.
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ASME 2011 Summer Bioengineering Conference
June 22–25, 2011
Farmington, Pennsylvania, USA
Conference Sponsors:
- Bioengineering Division
ISBN:
978-0-7918-5458-7
PROCEEDINGS PAPER
Incorporation of Perfusion Information Into a Finite Element Model of the Left Ventricle
A. I. Veress,
A. I. Veress
University of Washington, Seattle, WA
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G. S. K. Fung,
G. S. K. Fung
Johns Hopkins University, Baltimore, MD
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B. M. W. Tsui,
B. M. W. Tsui
Johns Hopkins University, Baltimore, MD
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G. T. Gullberg
G. T. Gullberg
Lawrence Berkeley National Lab, Berkeley, CA
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A. I. Veress
University of Washington, Seattle, WA
G. S. K. Fung
Johns Hopkins University, Baltimore, MD
B. M. W. Tsui
Johns Hopkins University, Baltimore, MD
W. P. Segars
Duke University, Raleigh, NC
G. T. Gullberg
Lawrence Berkeley National Lab, Berkeley, CA
Paper No:
SBC2011-53285, pp. 151-152; 2 pages
Published Online:
July 17, 2013
Citation
Veress, AI, Fung, GSK, Tsui, BMW, Segars, WP, & Gullberg, GT. "Incorporation of Perfusion Information Into a Finite Element Model of the Left Ventricle." Proceedings of the ASME 2011 Summer Bioengineering Conference. ASME 2011 Summer Bioengineering Conference, Parts A and B. Farmington, Pennsylvania, USA. June 22–25, 2011. pp. 151-152. ASME. https://doi.org/10.1115/SBC2011-53285
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