DocumentCode :
837971
Title :
Three-Dimensional Cardiac Strain Estimation Using Spatio–Temporal Elastic Registration of Ultrasound Images: A Feasibility Study
Author :
Elen, An ; Choi, Hon Fai ; Loeckx, Dirk ; Gao, Hang ; Claus, Piet ; Suetens, Paul ; Maes, Frederik ; Hooge, Jan D.
Author_Institution :
Dept. of Electr. Eng., Katholieke Univ. Leuven, Leuven
Volume :
27
Issue :
11
fYear :
2008
Firstpage :
1580
Lastpage :
1591
Abstract :
Current ultrasound methods for measuring myocardial strain are often limited to measurements in one or two dimensions. Cardiac motion and deformation however are truly 3-D. With the introduction of matrix transducer technology, 3-D ultrasound imaging of the heart has become feasible but suffers from low temporal and spatial resolution, making 3-D strain estimation challenging. In this paper, it is shown that automatic intensity-based spatio-temporal elastic registration of currently available 3-D volumetric ultrasound data sets can be used to measure the full 3-D strain tensor. The method was validated using simulated 3-D ultrasound data sets of the left ventricle (LV). Three types of data sets were simulated: a normal and symmetric LV with different heart rates, a more realistic asymmetric normal LV and an infarcted LV. The absolute error in the estimated displacement was between 0.47 plusmn0.23 and 1.00 plusmn0.59 mm, depending on heart rate and amount of background noise. The absolute error on the estimated strain was 9%-21% for the radial strain and 1%-4% for the longitudinal and circumferential strains. No large differences were found between the different types of data sets. The shape of the strain curves was estimated properly and the position of the infarcts could be identified correctly. Preliminary results on clinical data taken in vivo from three healthy volunteers and one patient with an apical aneurism confirmed these findings in a qualitative manner as the strain curves obtained with the proposed method have an amplitude and shape similar to what could be expected.
Keywords :
biomechanics; biomedical ultrasonics; blood vessels; cardiology; image motion analysis; image registration; medical image processing; 3D cardiac strain estimation; 3D strain estimation; 3D strain tensor; 3D ultrasound imaging; 3D volumetric ultrasound data sets; apical aneurism; cardiac deformation; cardiac motion; elastic registration; left ventricle; matrix transducer technology; myocardial strain measurement; spatio-temporal elastic registration; ultrasound images; ultrasound method; Capacitive sensors; Current measurement; Heart rate; Myocardium; Shape; Spatial resolution; Strain measurement; Ultrasonic imaging; Ultrasonic transducers; Ultrasonic variables measurement; Cardiac strain; nonrigid registration; three-dimensional ultrasound; Artifacts; Echocardiography, Three-Dimensional; Heart Ventricles; Humans; Movement; Myocardial Contraction; Myocardial Infarction; Pattern Recognition, Automated; Phantoms, Imaging; Research Design; Subtraction Technique; Time Factors;
fLanguage :
English
Journal_Title :
Medical Imaging, IEEE Transactions on
Publisher :
ieee
ISSN :
0278-0062
Type :
jour
DOI :
10.1109/TMI.2008.2004420
Filename :
4601464
Link To Document :
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