DocumentCode :
1165801
Title :
Motion artifact reduction for IVUS-based thermal strain imaging
Author :
Shi, Yan ; Javier de Ana, F. ; Chetcuti, Stanley J. ; O´Donnell, Matthew
Author_Institution :
Dept. of Biomedical Eng., Michigan Univ., Ann Arbor, MI, USA
Volume :
52
Issue :
8
fYear :
2005
Firstpage :
1312
Lastpage :
1319
Abstract :
Thermal strain imaging (TSI) using intravascular ultrasound (IVUS) has the potential to identify lipid pools within rupture-prone arterial plaques and serve as a valuable supplement to current IVUS systems in diagnosing acute coronary syndromes. The major challenge for in vivo application of TSI will be cardiac motion, including bulk motion and tissue deformation. Simulations based on an artery model, including a lipid-filled plaque, demonstrate that effective bulk motion compensation can be achieved within a certain motion range using spatial interpolation. We also propose a practical imaging scheme to minimize mechanical strains caused by tissue deformation based on a linear least squares fitting strategy. This scheme was tested on clinical data by artificially superimposing thermal displacements corresponding to different temperature rises. Results suggest a 1-2/spl deg/C temperature rise is required to detect lipids in an atherosclerotic plaque in vivo.
Keywords :
biomechanics; biomedical ultrasonics; blood vessels; deformation; image motion analysis; least squares approximations; lipid bilayers; medical image processing; 1 to 2 degC; acute coronary syndrome diagnosis; atherosclerotic plaque; bulk motion; cardiac motion; intravascular ultrasound; linear least squares fitting; lipid pool identification; mechanical strains; motion artifact reduction; rupture-prone arterial plaques; spatial interpolation; thermal displacements; thermal strain imaging; tissue deformation; Arteries; Capacitive sensors; Current supplies; In vivo; Interpolation; Least squares methods; Lipidomics; Motion compensation; Temperature; Ultrasonic imaging; Arteries; Artifacts; Computer Simulation; Elasticity; Humans; Image Enhancement; Image Interpretation, Computer-Assisted; Male; Models, Cardiovascular; Movement; Stress, Mechanical; Temperature; Ultrasonography, Interventional;
fLanguage :
English
Journal_Title :
Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on
Publisher :
ieee
ISSN :
0885-3010
Type :
jour
DOI :
10.1109/TUFFC.2005.1509789
Filename :
1509789
Link To Document :
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