DocumentCode :
1345814
Title :
On the effects of reflected waves in transient shear wave elastography
Author :
Deffieux, Thomas ; Gennisson, Jean-Luc ; Bercoff, Jeremy ; Tanter, Mickael
Author_Institution :
Inst. Langevin, Ondes et Images, Inst. Nat. de la Sante et de la Rech. Medicale, Paris, France
Volume :
58
Issue :
10
fYear :
2011
fDate :
10/1/2011 12:00:00 AM
Firstpage :
2032
Lastpage :
2035
Abstract :
In recent years, novel quantitative techniques have been developed to provide noninvasive and quantitative stiffness images based on shear wave propagation. Using radiation force and ultrafast ultrasound imaging, the supersonic shear imaging technique allows one to remotely generate and follow a transient plane shear wave propagating in vivo in real time. The tissue shear modulus, i.e., its stiffness, can then be estimated from the shear wave local velocity. However, because the local shear wave velocity is estimated using a time-of-flight approach, reflected shear waves can cause artifacts in the estimated shear velocity because the incident and reflected waves propagate in opposite directions. Such effects have been reported in the literature as a potential drawback of elastography techniques based on shear wave speed, particularly in the case of high stiffness contrasts, such as in atherosclerotic plaque or stiff lesions. In this letter, we present our implementation of a simple directional filter, previously used for magnetic resonance elastography, which separates the forward- and backward-propagating waves to solve this problem. Such a directional filter could be applied to many elastography techniques based on the local estimation of shear wave speed propagation, such as acoustic radiation force imaging (ARFI), shearwave dispersion ultrasound vibrometry (SDUV), needle-based elastography, harmonic motion imaging, or crawling waves when the local propagation direction is known and high-resolution spatial and temporal data are acquired.
Keywords :
biological tissues; biomechanics; biomedical MRI; biomedical ultrasonics; elastic constants; elastic waves; shear modulus; acoustic radiation force imaging; atherosclerotic plaque; backward-propagating wave; crawling waves; elastography techniques; forward-propagating wave; harmonic motion imaging; high-resolution spatial data; local estimation; local propagation direction; magnetic resonance elastography; needle-based elastography; reflected shear waves; shear wave local velocity; shear wave speed propagation; shearwave dispersion ultrasound vibrometry; simple directional filter; stiff lesions; stiffness contrasts; stiffness images; supersonic shear imaging technique; temporal data; time-of-flight approach; tissue shear modulus; transient plane shear wave; transient shear wave elastography; ultrafast ultrasound imaging; Acoustics; Imaging; In vivo; Magnetic separation; Propagation; Transient analysis; Ultrasonic imaging; Algorithms; Artifacts; Elastic Modulus; Elasticity Imaging Techniques; Female; Humans; Image Processing, Computer-Assisted; Mammography; Models, Biological; Neoplasms; Phantoms, Imaging;
fLanguage :
English
Journal_Title :
Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on
Publisher :
ieee
ISSN :
0885-3010
Type :
jour
DOI :
10.1109/TUFFC.2011.2052
Filename :
6039992
Link To Document :
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