DocumentCode :
1546014
Title :
Application of continuum theory and multi-grid methods to motion evaluation from 3D echocardiography
Author :
Zini, Gabriele ; Sarti, Alessandro ; Lamberti, Claudio
Author_Institution :
Dipt. di Elettronica, Inf. e Sistemistica, Bologna Univ., Italy
Volume :
44
Issue :
2
fYear :
1997
fDate :
3/1/1997 12:00:00 AM
Firstpage :
297
Lastpage :
308
Abstract :
As the motion of the heart is a 3D phenomenon, its evaluation from sequences of 2D images causes a great loss of information on the motion itself. Our aim is therefore to process real 3D echocardiographic images and to carry out an automatic way of evaluating the movements of the cardiac structures. To estimate the optical flow, a mathematical model based on the continuum theory is used; echocardiographic images can indeed be considered a function of a conserved quantity (the acoustic impedance). Since we need to calculate the velocity vector for every point in the image and every image is built with more than 2 million voxels (128/spl times/128/spl times/128), we implement a multigrid relaxation method to accelerate the computation of an approximate solution otherwise too slow with a simple iterative solver. The experiments on simulated velocity fields have demonstrated an effective speed-up in the evaluation of motion, and the calculation on real echo images has given a realistic estimation of the 3D dynamics of the heart.
Keywords :
acoustic impedance; acoustic signal processing; differential equations; echocardiography; image sequences; medical image processing; motion estimation; 3D dynamics; 3D echocardiography; acoustic impedance; cardiac structure movement; continuum theory; heart; mathematical model; motion evaluation; multi-grid methods; multigrid relaxation method; optical flow; real 3D echocardiographic images; real echo images; simulated velocity fields; velocity vector; Acceleration; Computational modeling; Heart; Image motion analysis; Impedance; Iterative methods; Mathematical model; Motion estimation; Optical losses; Relaxation methods;
fLanguage :
English
Journal_Title :
Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on
Publisher :
ieee
ISSN :
0885-3010
Type :
jour
DOI :
10.1109/58.585114
Filename :
585114
Link To Document :
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