DocumentCode
68307
Title
Pitch-catch phase aberration correction of multiple isoplanatic patches for 3-D transcranial ultrasound imaging
Author
Lindsey, Brooks D. ; Smith, Sean W.
Author_Institution
Dept. of Biomed. Eng., Duke Univ., Durham, NC, USA
Volume
60
Issue
3
fYear
2013
fDate
Mar-13
Firstpage
463
Lastpage
480
Abstract
Having previously presented the ultrasound brain helmet, a system for simultaneous 3-D ultrasound imaging via both temporal bone acoustic windows, the scanning geometry of this system is utilized to allow each matrix array to serve as a correction source for the opposing array. Aberration is estimated using cross-correlation of RF channel signals, followed by least mean squares solution of the resulting overdetermined system. Delay maps are updated and real-time 3-D scanning resumes. A first attempt is made at using multiple arrival time maps to correct multiple unique aberrators within a single transcranial imaging volume, i.e., several isoplanatic patches. This adaptive imaging technique, which uses steered unfocused waves transmitted by the opposing, or beacon, array, updates the transmit and receive delays of 5 isoplanatic patches within a 64° x 64° volume. In phantom experiments, color flow voxels above a common threshold have also increased by an average of 92%, whereas color flow variance decreased by an average of 10%. This approach has been applied to both temporal acoustic windows of two human subjects, yielding increases in echo brightness in 5 isoplanatic patches with a mean value of 24.3 ± 9.1%, suggesting that such a technique may be beneficial in the future for performing noninvasive 3-D color flow imaging of cerebrovascular disease, including stroke.
Keywords
aberrations; bioacoustics; biomedical measurement; biomedical ultrasonics; bone; echo; image denoising; least mean squares methods; medical image processing; phantoms; ultrasonic arrays; 3D transcranial ultrasound imaging; RF channel signal crosscorrelation; aberration estimation; adaptive imaging technique; color flow variance; color flow voxels; correction source; delay maps; echo brightness; least mean squares solution; matrix array; multiple arrival time maps; multiple isoplanatic patches; multiple unique aberrators; phantom experiments; pitch-catch phase aberration correction; real-time 3D scanning resumes; single transcranial imaging volume; temporal acoustic windows; temporal bone acoustic windows; ultrasonic system scanning geometry; ultrasound brain helmet; unfocused waves; Arrays; Delay; IP networks; Imaging; Skull; Transducers; Ultrasonic imaging; Adult; Algorithms; Brain; Cerebrovascular Circulation; Echoencephalography; Humans; Imaging, Three-Dimensional; Male; Middle Aged; Models, Biological; Phantoms, Imaging; Temporal Bone; Transducers; Ultrasonography, Doppler, Transcranial;
fLanguage
English
Journal_Title
Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on
Publisher
ieee
ISSN
0885-3010
Type
jour
DOI
10.1109/TUFFC.2013.2590
Filename
6470409
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