DocumentCode :
1540188
Title :
Ultrasound beam simulations in inhomogeneous tissue geometries using the hybrid angular spectrum method
Author :
Vyas, Urvi ; Christensen, Douglas
Author_Institution :
Dept. of Bioeng., Univ. of Utah, Salt Lake City, UT, USA
Volume :
59
Issue :
6
fYear :
2012
fDate :
6/1/2012 12:00:00 AM
Firstpage :
1093
Lastpage :
1100
Abstract :
The angular spectrum method is a fast, accurate and computationally efficient method for modeling wave propagation. However, the traditional angular spectrum method assumes that the region of propagation has homogenous properties. In this paper, the angular spectrum method is extended to calculate ultrasound wave propagation in inhomogeneous tissue geometries, important for clinical efficacy, patient safety, and treatment reliability in MR-guided focused ultrasound surgery. The inhomogeneous tissue region to be modeled is segmented into voxels, each voxel having a unique speed of sound, attenuation coefficient, and density. The pressure pattern in the 3-D model is calculated by alternating between the space domain and the spatial-frequency domain for each plane of voxels in the model. The new technique was compared with the finite-difference time-domain technique for a model containing attenuation, refraction, and reflection and for a segmented human breast model; although yielding essentially the same pattern, it results in a reduction in calculation times of at least two orders of magnitude.
Keywords :
biological organs; biological tissues; biomedical MRI; biomedical ultrasonics; finite difference time-domain analysis; gynaecology; image segmentation; medical image processing; surgery; ultrasonic propagation; ultrasonic reflection; ultrasonic refraction; MR-guided focused ultrasound surgery; attenuation coefficient; density; finite-difference time-domain analysis; hybrid angular spectrum method; inhomogeneous tissue geometries; reflection; refraction; segmented human breast model; space domain; spatial-frequency domain; traditional angular spectrum method; ultrasound beam simulations; ultrasound wave propagation; voxel plane; Acoustic beams; Acoustics; Attenuation; Mathematical model; Nonhomogeneous media; Reflection; Solid modeling;
fLanguage :
English
Journal_Title :
Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on
Publisher :
ieee
ISSN :
0885-3010
Type :
jour
DOI :
10.1109/TUFFC.2012.2300
Filename :
6217558
Link To Document :
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