DocumentCode :
1423736
Title :
Coupled B-snake grids and constrained thin-plate splines for analysis of 2-D tissue deformations from tagged MRI
Author :
Amini, Amir A. ; Chen, Yasheng ; Curwen, Rupert W. ; Mani, Vaidy ; Sun, Jean
Author_Institution :
CVIA Lab., Washington Univ. Sch. of Med., St. Louis, MO, USA
Volume :
17
Issue :
3
fYear :
1998
fDate :
6/1/1998 12:00:00 AM
Firstpage :
344
Lastpage :
356
Abstract :
Magnetic resonance imaging (MRI) is unique in its ability to noninvasively and selectively alter tissue magnetization and create tagged patterns within a deforming body such as the heart muscle. The resulting patterns define a time-varying curvilinear coordinate system on the tissue, which the authors track with coupled B-snake grids. B-spline bases provide local control of shape, compact representation, and parametric continuity. Efficient spline warps are proposed which warp an area in the plane such that two embedded snake grids obtained from two tagged frames are brought into registration, interpolating a dense displacement vector field. The reconstructed vector field adheres to the known displacement information at the intersections, forces corresponding snakes to be warped into one another, and for all other points in the plane, where no information is available, a C 1 continuous vector field is interpolated. The implementation proposed in this paper improves on the authors´ previous variational-based implementation and generalizes warp methods to include biologically relevant contiguous open curves, in addition to standard landmark points. The methods are validated with a cardiac motion simulator, in addition to in-vivo tagging data sets.
Keywords :
biomechanics; biomedical NMR; interpolation; magnetisation; medical image processing; splines (mathematics); vectors; 2-D tissue deformations analysis; C/sup 1/ continuous vector field; biologically relevant contiguous open curves; cardiac motion simulator; compact representation; constrained thin-plate splines; coupled B-snake grids; efficient spline warps; heart muscle; in-vivo tagging data sets; known displacement; parametric continuity; standard landmark points; time-varying curvilinear coordinate system; tissue magnetization alteration; variational-based implementation; Biological system modeling; Heart; Image reconstruction; Magnetic analysis; Magnetic resonance imaging; Magnetization; Muscles; Shape control; Spline; Time varying systems; Computer Simulation; Heart; Humans; Image Processing, Computer-Assisted; Magnetic Resonance Imaging; Phantoms, Imaging;
fLanguage :
English
Journal_Title :
Medical Imaging, IEEE Transactions on
Publisher :
ieee
ISSN :
0278-0062
Type :
jour
DOI :
10.1109/42.712124
Filename :
712124
Link To Document :
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