Beamforming Scheme for 2D Displacement Estimation in Ultrasound Imaging

<p/> <p>We propose a beamforming scheme for ultrasound imaging leading to the generation of two sets of images, one with oscillations only in the axial direction and one with oscillations only in the lateral direction. Applied to tissue elasticity imaging, this leads to the development o...

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Main Authors: Wilhjelm Jens E, Liebgott Herv&#233;, Fromageau J&#233;r&#233;mie, Vray Didier, Delachartre Philippe
Format: Article
Language:English
Published: SpringerOpen 2005-01-01
Series:EURASIP Journal on Advances in Signal Processing
Subjects:
Online Access:http://dx.doi.org/10.1155/ASP.2005.1212
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spelling doaj-cdee79f51ba848138c87f0e73340c8732020-11-25T00:55:42ZengSpringerOpenEURASIP Journal on Advances in Signal Processing1687-61721687-61802005-01-0120058932740Beamforming Scheme for 2D Displacement Estimation in Ultrasound ImagingWilhjelm Jens ELiebgott Herv&#233;Fromageau J&#233;r&#233;mieVray DidierDelachartre Philippe<p/> <p>We propose a beamforming scheme for ultrasound imaging leading to the generation of two sets of images, one with oscillations only in the axial direction and one with oscillations only in the lateral direction. Applied to tissue elasticity imaging, this leads to the development of a specific displacement estimation technique that is capable of accurate estimation of two components of the displacement. The mean standard deviation for the axial displacement estimates is 0.0219 times the wavelength of the axial oscillations <inline-formula><graphic file="1687-6180-2005-932740-i1.gif"/></inline-formula>, and for the lateral estimates, it is equal to 0.0164 times the wavelength of the lateral oscillations <inline-formula><graphic file="1687-6180-2005-932740-i2.gif"/></inline-formula>. The method is presented and its feasibility is clearly established by a simulation work.</p>http://dx.doi.org/10.1155/ASP.2005.1212beamforming for ultrasound imagingaxial and lateral displacement estimationtissue elasticity imaginglaterally oscillating point spread function
collection DOAJ
language English
format Article
sources DOAJ
author Wilhjelm Jens E
Liebgott Herv&#233;
Fromageau J&#233;r&#233;mie
Vray Didier
Delachartre Philippe
spellingShingle Wilhjelm Jens E
Liebgott Herv&#233;
Fromageau J&#233;r&#233;mie
Vray Didier
Delachartre Philippe
Beamforming Scheme for 2D Displacement Estimation in Ultrasound Imaging
EURASIP Journal on Advances in Signal Processing
beamforming for ultrasound imaging
axial and lateral displacement estimation
tissue elasticity imaging
laterally oscillating point spread function
author_facet Wilhjelm Jens E
Liebgott Herv&#233;
Fromageau J&#233;r&#233;mie
Vray Didier
Delachartre Philippe
author_sort Wilhjelm Jens E
title Beamforming Scheme for 2D Displacement Estimation in Ultrasound Imaging
title_short Beamforming Scheme for 2D Displacement Estimation in Ultrasound Imaging
title_full Beamforming Scheme for 2D Displacement Estimation in Ultrasound Imaging
title_fullStr Beamforming Scheme for 2D Displacement Estimation in Ultrasound Imaging
title_full_unstemmed Beamforming Scheme for 2D Displacement Estimation in Ultrasound Imaging
title_sort beamforming scheme for 2d displacement estimation in ultrasound imaging
publisher SpringerOpen
series EURASIP Journal on Advances in Signal Processing
issn 1687-6172
1687-6180
publishDate 2005-01-01
description <p/> <p>We propose a beamforming scheme for ultrasound imaging leading to the generation of two sets of images, one with oscillations only in the axial direction and one with oscillations only in the lateral direction. Applied to tissue elasticity imaging, this leads to the development of a specific displacement estimation technique that is capable of accurate estimation of two components of the displacement. The mean standard deviation for the axial displacement estimates is 0.0219 times the wavelength of the axial oscillations <inline-formula><graphic file="1687-6180-2005-932740-i1.gif"/></inline-formula>, and for the lateral estimates, it is equal to 0.0164 times the wavelength of the lateral oscillations <inline-formula><graphic file="1687-6180-2005-932740-i2.gif"/></inline-formula>. The method is presented and its feasibility is clearly established by a simulation work.</p>
topic beamforming for ultrasound imaging
axial and lateral displacement estimation
tissue elasticity imaging
laterally oscillating point spread function
url http://dx.doi.org/10.1155/ASP.2005.1212
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