Title :
Short-lag spatial coherence imaging on matrix arrays, Part II: Phantom and in vivo experiments
Author :
Jakovljevic, Mirko ; Byram, Brett ; Hyun, Dongwoon ; Dahl, Jeremy ; Trahey, Gregg
Author_Institution :
Dept. of Biomed. Eng., Duke Univ., Durham, NC, USA
Abstract :
In Part I of the paper, we demonstrated through simulation the potential of volumetric short-lag spatial coherence (SLSC) imaging to improve visualization of hypoechoic targets in three dimensions. Here, we demonstrate the application of volumetric SLSC imaging in phantom and in vivo experiments using a clinical 3-D ultrasound scanner and matrix array. Using a custom single-channel acquisition tool, we collected partially beamformed channel data from the fully sampled matrix array at high speeds and created matched B-mode and SLSC volumes of a vessel phantom and in vivo liver vasculature. 2-D and 3-D images rendered from the SLSC volumes display reduced clutter and improved visibility of the vessels when compared with their B-mode counterparts. We use concurrently acquired color Doppler volumes to confirm the presence of the vessels of interest and to define the regions inside the vessels used in contrast and contrast-to-noise ratio (CNR) calculations. SLSC volumes show higher CNR values than their matched B-mode volumes, while the contrast values appear to be similar between the two imaging methods.
Keywords :
Doppler measurement; arrays; biomedical equipment; biomedical ultrasonics; blood vessels; coherence; data acquisition; data visualisation; image matching; liver; matrix algebra; medical image processing; phantoms; rendering (computer graphics); sampling methods; 2D image rendering; 3D image rendering; B-mode volume matching; CNR calculations; CNR values; SLSC volume matching; SLSC volumes display; clinical 3D ultrasound scanner; clutter reduction; color Doppler volume acquisition; contrast calculations; contrast values; contrast-to-noise ratio calculations; custom single-channel acquisition tool; full matrix array sampling; hypoechoic target visualization improvement; in vivo experiments; in vivo liver vasculature; partially beamformed channel data collection; simulation; three dimensional visualization; vessel phantom experiments; vessel visibility improvement; volumetric SLSC imaging application; volumetric short-lag spatial coherence imaging; Array signal processing; Arrays; Azimuth; Biomedical imaging; Clutter; In vivo;
Journal_Title :
Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on
DOI :
10.1109/TUFFC.2014.3011