DocumentCode :
1156566
Title :
Statistical estimation of ultrasonic propagation path parameters for aberration correction
Author :
Waag, Robert C. ; Astheimer, Jeffrey P.
Author_Institution :
Dept. of Electr. & Comput. Eng. & Radiol., Rochester Univ., NY, USA
Volume :
52
Issue :
5
fYear :
2005
fDate :
5/1/2005 12:00:00 AM
Firstpage :
851
Lastpage :
869
Abstract :
Parameters in a linear filter model for ultrasonic propagation are found using statistical estimation. The model uses an inhomogeneous-medium Green´s function that is decomposed into a homogeneous-transmission term and a path-dependent aberration term. Power and cross-power spectra of random-medium scattering are estimated over the frequency band of the transmit-receive system by using closely situated scattering volumes. The frequency-domain magnitude of the aberration is obtained from a normalization of the power spectrum. The corresponding phase is reconstructed from cross-power spectra of subaperture signals at adjacent receive positions by a recursion. The subapertures constrain the receive sensitivity pattern to eliminate measurement system phase contributions. The recursion uses a Laplacian-based algorithm to obtain phase from phase differences. Pulse-echo waveforms were acquired from a point reflector and a tissue-like scattering phantom through a tissue-mimicking aberration path from neighboring volumes having essentially the same aberration path. Propagation path aberration parameters calculated from the measurements of random scattering through the aberration phantom agree with corresponding parameters calculated for the same aberrator and array position by using echoes from the point reflector. The results indicate the approach describes, in addition to time shifts, waveform amplitude and shape changes produced by propagation through distributed aberration under realistic conditions.
Keywords :
biomedical ultrasonics; random media; ultrasonic focusing; ultrasonic imaging; ultrasonic measurement; ultrasonic propagation; ultrasonic scattering; Laplacian-based algorithm; aberration correction; aberration phantom; aberrator; array position; cross-power spectra; frequency band; frequency-domain magnitude; homogeneous-transmission term; inhomogeneous-medium Green function; linear filter model; path-dependent aberration term; phase difference; point reflector; power spectrum normalization; propagation path aberration parameters; pulse-echo waveforms; random scattering; random-medium scattering; scattering volumes; sensitivity pattern; statistical estimation; subaperture signals; subapertures constrain; time shifts; tissue-like scattering phantom; tissue-mimicking aberration path; transmit-receive system; ultrasonic propagation path parameters; waveform amplitude; Acoustic propagation; Acoustic scattering; Apertures; Filter bank; Frequency estimation; Imaging phantoms; Nonlinear filters; Power system modeling; Pulse measurements; Shape measurement; Algorithms; Artifacts; Computer Simulation; Image Enhancement; Image Interpretation, Computer-Assisted; Information Storage and Retrieval; Models, Biological; Models, Statistical; Phantoms, Imaging; Reproducibility of Results; Scattering, Radiation; Sensitivity and Specificity; Ultrasonography;
fLanguage :
English
Journal_Title :
Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on
Publisher :
ieee
ISSN :
0885-3010
Type :
jour
DOI :
10.1109/TUFFC.2005.1503972
Filename :
1503972
Link To Document :
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