Literature DB >> 31634830

Fast Local Phase Velocity-Based Imaging: Shear Wave Particle Velocity and Displacement Motion Study.

Piotr Kijanka, Matthew W Urban.   

Abstract

Fast and precise noninvasive evaluation of tissue mechanical properties is of high importance in ultrasound shear wave elastography. In this study, we present an updated, faster version of the local phase velocity-based imaging (LPVI) method used to create images of local phase velocity in soft tissues. The updated LPVI implementation uses 1-D Fourier transforms in spatial dimensions separately in comparison to its original implementation. A directional filter is applied upon the shear wave field to extract the left-to-right (LR) and right-to-left (RL) propagating shear waves. A local shear wave phase velocity map is recovered based on both LR and RL waves. Finally, a 2-D shear wave velocity map is reconstructed by combining the LR and RL phase velocity maps. LPVI performance for shear wave displacement and velocity-wave motion data is examined. A study of LPVI used for only one data acquisition with multiple focused ultrasound push beams is presented. The lesion placement with respect to the pushes and whether two sequential pushes provided different results from two simultaneous radiation force pushes was investigated. The addition of white Gaussian noise to the wave motion data was also tested to examine the LPVI method's performance. Robust and accurate shear wave phase velocity maps are reconstructed using the proposed LPVI method using numerical tissue-mimicking phantoms with inclusions. Results from the numerical phantom study showed that the reconstructed, asymmetric inclusions, for various axial locations, are better preserved for shear wave particle velocity signals compared with particle displacement motion data.

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Year:  2019        PMID: 31634830      PMCID: PMC7123440          DOI: 10.1109/TUFFC.2019.2948512

Source DB:  PubMed          Journal:  IEEE Trans Ultrason Ferroelectr Freq Control        ISSN: 0885-3010            Impact factor:   2.725


  29 in total

1.  On the feasibility of remote palpation using acoustic radiation force.

Authors:  K R Nightingale; M L Palmeri; R W Nightingale; G E Trahey
Journal:  J Acoust Soc Am       Date:  2001-07       Impact factor: 1.840

2.  Supersonic shear imaging: a new technique for soft tissue elasticity mapping.

Authors:  Jérémy Bercoff; Mickaël Tanter; Mathias Fink
Journal:  IEEE Trans Ultrason Ferroelectr Freq Control       Date:  2004-04       Impact factor: 2.725

3.  Characterization of Viscoelastic Materials Using Group Shear Wave Speeds.

Authors:  Ned C Rouze; Yufeng Deng; Courtney A Trutna; Mark L Palmeri; Kathryn R Nightingale
Journal:  IEEE Trans Ultrason Ferroelectr Freq Control       Date:  2018-05       Impact factor: 2.725

4.  Quantifying hepatic shear modulus in vivo using acoustic radiation force.

Authors:  M L Palmeri; M H Wang; J J Dahl; K D Frinkley; K R Nightingale
Journal:  Ultrasound Med Biol       Date:  2008-01-25       Impact factor: 2.998

5.  Coherent plane-wave compounding for very high frame rate ultrasonography and transient elastography.

Authors:  Gabriel Montaldo; Mickaël Tanter; Jérémy Bercoff; Nicolas Benech; Mathias Fink
Journal:  IEEE Trans Ultrason Ferroelectr Freq Control       Date:  2009-03       Impact factor: 2.725

6.  Derivation and analysis of viscoelastic properties in human liver: impact of frequency on fibrosis and steatosis staging.

Authors:  Kathryn R Nightingale; Ned C Rouze; Stephen J Rosenzweig; Michael H Wang; Manal F Abdelmalek; Cynthia D Guy; Mark L Palmeri
Journal:  IEEE Trans Ultrason Ferroelectr Freq Control       Date:  2015-01       Impact factor: 2.725

7.  EFSUMB guidelines and recommendations on the clinical use of ultrasound elastography. Part 2: Clinical applications.

Authors:  D Cosgrove; F Piscaglia; J Bamber; J Bojunga; J-M Correas; O H Gilja; A S Klauser; I Sporea; F Calliada; V Cantisani; M D'Onofrio; E E Drakonaki; M Fink; M Friedrich-Rust; J Fromageau; R F Havre; C Jenssen; R Ohlinger; A Săftoiu; F Schaefer; C F Dietrich
Journal:  Ultraschall Med       Date:  2013-04-19       Impact factor: 6.548

8.  Improved Shear Wave Group Velocity Estimation Method Based on Spatiotemporal Peak and Thresholding Motion Search.

Authors:  Carolina Amador Carrascal; Shigao Chen; Armando Manduca; James F Greenleaf; Matthew W Urban
Journal:  IEEE Trans Ultrason Ferroelectr Freq Control       Date:  2017-01-11       Impact factor: 2.725

Review 9.  Production of acoustic radiation force using ultrasound: methods and applications.

Authors:  Matthew W Urban
Journal:  Expert Rev Med Devices       Date:  2018-10-31       Impact factor: 3.166

10.  Two-dimensional shear-wave elastography on conventional ultrasound scanners with time-aligned sequential tracking (TAST) and comb-push ultrasound shear elastography (CUSE).

Authors:  Pengfei Song; Michael Macdonald; Russell Behler; Justin Lanning; Michael Wang; Matthew Urban; Armando Manduca; Heng Zhao; Matthew Callstrom; Azra Alizad; James Greenleaf; Shigao Chen
Journal:  IEEE Trans Ultrason Ferroelectr Freq Control       Date:  2015-02       Impact factor: 2.725

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  4 in total

1.  Four-dimensional (4D) phase velocity optical coherence elastography in heterogeneous materials and biological tissue.

Authors:  Hsiao-Chuan Liu; Piotr Kijanka; Matthew W Urban
Journal:  Biomed Opt Express       Date:  2020-06-18       Impact factor: 3.732

2.  Evaluation of Robustness of Local Phase Velocity Imaging in Homogenous Tissue-Mimicking Phantoms.

Authors:  Benjamin G Wood; Piotr Kijanka; Hsiao-Chuan Liu; Matthew W Urban
Journal:  Ultrasound Med Biol       Date:  2021-08-26       Impact factor: 2.998

3.  Local Phase Velocity Based Imaging of Viscoelastic Phantoms and Tissues.

Authors:  Piotr Kijanka; Matthew W Urban
Journal:  IEEE Trans Ultrason Ferroelectr Freq Control       Date:  2021-02-25       Impact factor: 2.725

4.  Phase Velocity Estimation With Expanded Bandwidth in Viscoelastic Phantoms and Tissues.

Authors:  Piotr Kijanka; Matthew W Urban
Journal:  IEEE Trans Med Imaging       Date:  2021-04-30       Impact factor: 10.048

  4 in total

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