DocumentCode
16919
Title
Ultrasound contrast imaging: influence of scatterer motion in multi-pulse techniques
Author
Fanglue Lin ; Cachard, Christian ; Mori, Ryuhei ; Varray, Francois ; Guidi, Francesco ; Basset, Olivier
Author_Institution
Centre de Rech. en Acquisition et Traitement de l´Image pour la Sante (CREATIS), Univ. Lyon 1, Villeurbanne, France
Volume
60
Issue
10
fYear
2013
fDate
Oct. 2013
Firstpage
2065
Lastpage
2078
Abstract
In ultrasound contrast imaging, many techniques based on multiple transmissions have been proposed to increase the contrast-to-tissue ratio (CTR). They are generally based on the response of static scatterers inside the imaged region. However, scatterer motion, for example in blood vessels, has an inevitable influence on multi-pulse techniques, which can either enhance or degrade the technique involved. This paper investigates the response of static nonlinear media insonated by multi-pulses with various phase shifts, and the influence of scatterer motion on multi-pulse techniques. Simulations and experimental results from a single bubble and clouds of bubbles show that the phase shift of the echoes backscattered from bubbles is dependent on the transmissions´ phase shift, and that the bubble motion influences the efficiency of multi-pulse techniques: fundamental and second-harmonic amplitudes of the processed signal change periodically, exhibiting maximum or minimum values, according to scatterer motion. Furthermore, experimental results based on the second-harmonic inversion (SHI) technique reveal that bubble motion can be taken into account to regulate the pulse repetition frequency (PRF). With the optimal PRF, the CTR of SHI images can be improved by about 12 dB compared with second-harmonic images.
Keywords
biomedical ultrasonics; blood vessels; bubbles; SHI technique; blood vessels; bubble motion; contrast-to-tissue ratio; multiple transmissions; multipulse techniques; phase shifts; pulse repetition frequency; scatterer motion; second-harmonic images; second-harmonic inversion technique; static nonlinear media; ultrasound contrast imaging; Frequency conversion; Harmonic analysis; Imaging; Media; Power harmonic filters; Radio frequency; Ultrasonic imaging; Blood Vessels; Computer Simulation; Contrast Media; Humans; Microbubbles; Models, Biological; Motion; Phantoms, Imaging; Regional Blood Flow; Ultrasonography;
fLanguage
English
Journal_Title
Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on
Publisher
ieee
ISSN
0885-3010
Type
jour
DOI
10.1109/TUFFC.2013.2797
Filename
6604538
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