DocumentCode :
2631802
Title :
Global models with parametric offsets as applied to cardiac motion recovery
Author :
O´Donnell, Thomas ; Boult, Terrance ; Gupta, Alok
Author_Institution :
Siemens Corp. Res. Inc., Princeton, NJ, USA
fYear :
1996
fDate :
18-20 Jun 1996
Firstpage :
293
Lastpage :
299
Abstract :
We introduce a new solid shape model formulation that includes built-in offsets from a base global component (e.g. an ellipsoid) which are functions of the global component´s parameters. The offsets provide two features. First, they help to form an expected model shape which facilitates appropriate model data correspondences. Second, they scale with the base global model to maintain the expected shape even in the presence of large global deformations. We apply this model formulation to the recovery of 3-D cardiac motion from a volunteer dataset of tagged-MR images. The model instance is a variation of the hybrid volumetric ventriculoid (HVV), a deformable thick-walled ellipsoid model resembling the left ventricle (LV) of the heart. A unique aspect of of implementation is the employment of constant volume constraints when recovering the cardiac motion. In addition, we present a novel geodesic-like prismoidal tessellation of the model which provides for more stable fits
Keywords :
biomedical NMR; cardiology; motion estimation; base global component; built-in offsets; cardiac motion; cardiac motion recovery; constant volume constraints; deformable thick-walled ellipsoid model; expected model shape; global models; hybrid volumetric ventriculoid; left ventricle; model data correspondences; parametric offsets; prismoidal tessellation; solid shape model formulation; tagged-MR images; Data mining; Deformable models; Educational institutions; Ellipsoids; Heart; Motion estimation; Shape; Solid modeling; Strain measurement; Tracking;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Computer Vision and Pattern Recognition, 1996. Proceedings CVPR '96, 1996 IEEE Computer Society Conference on
Conference_Location :
San Francisco, CA
ISSN :
1063-6919
Print_ISBN :
0-8186-7259-5
Type :
conf
DOI :
10.1109/CVPR.1996.517088
Filename :
517088
Link To Document :
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