DocumentCode :
1067261
Title :
Phase-aberration correction with a 3-D ultrasound scanner: feasibility study
Author :
Ivancevich, Nikolas M. ; Dahl, Jeremy J. ; Trahey, Gregg E. ; Smith, Stephen W.
Author_Institution :
Dept. of Biomed. Eng., Duke Univ., Durham, NC
Volume :
53
Issue :
8
fYear :
2006
Firstpage :
1432
Lastpage :
1439
Abstract :
We tested the feasibility of using adaptive imaging, namely phase-aberration correction, with two-dimensional (2-D) arrays and real-time, 3-D ultrasound. Because of the high spatial frequency content of aberrators, 2-D arrays, which generally have smaller pitch and thus higher spatial sampling frequency, and 3-D imaging show potential to improve the performance of adaptive imaging. Phase-correction algorithms improve image quality by compensating for tissue-induced errors in beamforming. Using the illustrative example of transcranial ultrasound, we have evaluated our ability to perform adaptive imaging with a real-time, 3-D scanner. We have used a polymer casting of a human temporal bone, root-mean-square (RMS) phase variation of 45.0 ns, full-width-half-maximum (FWHM) correlation length of 3.35 mm, and an electronic aberrator, 100 ns RMS, 3.76 mm correlation, with tissue phantoms as illustrative examples of near-field, phase-screen aberrators. Using the multilag, least-squares, cross-correlation method, we have shown the ability of 3-D adaptive imaging to increase anechoic cyst identification, image brightness, contrast-to-speckle ratio (CSR), and, in 3-D color Doppler experiments, the ability to visualize flow. For a physical aberrator skull casting we saw CSR increase by 13% from 1.01 to 1.14, while the number of detectable cysts increased from 4.3 to 7.7
Keywords :
biological fluid dynamics; biomedical ultrasonics; bone; brain; error compensation; flow visualisation; phantoms; 3-D color Doppler experiments; 3-D ultrasound scanner; adaptive imaging; anechoic cyst identification; beamforming; contrast-to-speckle ratio; electronic aberrator; flow visualization; human temporal bone; image brightness; multilag least-squares cross-correlation method; near-field phase-screen aberrators; phase-aberration correction; polymer casting; root-mean-square phase variation; tissue phantoms; tissue-induced error compensation; transcranial ultrasound; two-dimensional arrays; Adaptive arrays; Array signal processing; Casting; Frequency; Image quality; Image sampling; Phased arrays; Testing; Two dimensional displays; Ultrasonic imaging;
fLanguage :
English
Journal_Title :
Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on
Publisher :
ieee
ISSN :
0885-3010
Type :
jour
DOI :
10.1109/TUFFC.2006.1665100
Filename :
1665100
Link To Document :
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