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1
Evaluating the Improvement in Shear Wave Speed Image Quality Using Multidimensional Directional Filters in the Presence of Reflection Artifacts.在存在反射伪像的情况下使用多维方向滤波器评估剪切波速度图像质量的改善
IEEE Trans Ultrason Ferroelectr Freq Control. 2016 Aug;63(8):1049-1063. doi: 10.1109/TUFFC.2016.2558662. Epub 2016 Apr 27.
2
Phase Aberration and Attenuation Effects on Acoustic Radiation Force-Based Shear Wave Generation.相位畸变和衰减对基于声辐射力的剪切波产生的影响。
IEEE Trans Ultrason Ferroelectr Freq Control. 2016 Feb;63(2):222-32. doi: 10.1109/TUFFC.2016.2515366.
3
An analytic, Fourier domain description of shear wave propagation in a viscoelastic medium using asymmetric Gaussian sources.使用非对称高斯源对粘弹性介质中剪切波传播进行的解析傅里叶域描述。
J Acoust Soc Am. 2015 Aug;138(2):1012-22. doi: 10.1121/1.4927492.
4
Elastography Assessment of Liver Fibrosis: Society of Radiologists in Ultrasound Consensus Conference Statement.超声放射学会弹性成像评估肝纤维化:专家共识声明。
Radiology. 2015 Sep;276(3):845-61. doi: 10.1148/radiol.2015150619. Epub 2015 Jun 16.
5
WFUMB guidelines and recommendations for clinical use of ultrasound elastography: Part 1: basic principles and terminology.世界超声医学与生物学联合会超声弹性成像临床应用指南与建议:第1部分:基本原则与术语
Ultrasound Med Biol. 2015 May;41(5):1126-47. doi: 10.1016/j.ultrasmedbio.2015.03.009. Epub 2015 Mar 21.
6
WFUMB guidelines and recommendations for clinical use of ultrasound elastography: Part 3: liver.世界超声医学与生物学联合会(WFUMB)超声弹性成像临床应用指南与建议:第3部分:肝脏
Ultrasound Med Biol. 2015 May;41(5):1161-79. doi: 10.1016/j.ultrasmedbio.2015.03.007. Epub 2015 Mar 20.
7
Modeling transversely isotropic, viscoelastic, incompressible tissue-like materials with application in ultrasound shear wave elastography.对横向各向同性、粘弹性、不可压缩的类组织材料进行建模及其在超声剪切波弹性成像中的应用
Phys Med Biol. 2015 Feb 7;60(3):1289-306. doi: 10.1088/0031-9155/60/3/1289. Epub 2015 Jan 16.
8
Derivation and analysis of viscoelastic properties in human liver: impact of frequency on fibrosis and steatosis staging.人体肝脏粘弹性特性的推导与分析:频率对纤维化和脂肪变性分期的影响。
IEEE Trans Ultrason Ferroelectr Freq Control. 2015 Jan;62(1):165-75. doi: 10.1109/TUFFC.2014.006653.
9
Acoustic radiation force impulse imaging for non-invasive assessment of renal histopathology in chronic kidney disease.声辐射力脉冲成像用于慢性肾脏病肾组织病理学的无创评估
PLoS One. 2014 Dec 29;9(12):e115051. doi: 10.1371/journal.pone.0115051. eCollection 2014.
10
Shear wave elastography imaging of carotid plaques: feasible, reproducible and of clinical potential.颈动脉斑块的剪切波弹性成像:可行、可重复且具有临床潜力。
Cardiovasc Ultrasound. 2014 Dec 8;12:49. doi: 10.1186/1476-7120-12-49.

声学辐射力诱发组织模拟介质中剪切波传播的有限元建模指南。

Guidelines for Finite-Element Modeling of Acoustic Radiation Force-Induced Shear Wave Propagation in Tissue-Mimicking Media.

出版信息

IEEE Trans Ultrason Ferroelectr Freq Control. 2017 Jan;64(1):78-92. doi: 10.1109/TUFFC.2016.2641299. Epub 2016 Dec 21.

DOI:10.1109/TUFFC.2016.2641299
PMID:28026760
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC5310216/
Abstract

Ultrasound shear wave elastography is emerging as an important imaging modality for evaluating tissue material properties. In its practice, some systematic biases have been associated with ultrasound frequencies, focal depths and configuration, and transducer types (linear versus curvilinear), along with displacement estimation and shear wave speed estimation algorithms. Added to that, soft tissues are not purely elastic, so shear waves will travel at different speeds depending on their spectral content, which can be modulated by the acoustic radiation force (ARF) excitation focusing, duration, and the frequency-dependent stiffness of the tissue. To understand how these different acquisition and material property parameters may affect the measurements of shear wave velocity, the simulations of the propagation of shear waves generated by ARF excitations in viscoelastic media are a very important tool. This paper serves to provide an in-depth description of how these simulations are performed. The general scheme is broken into three components: 1) simulation of the 3-D ARF push beam; 2) applying that force distribution to a finite-element model; and 3) extraction of the motion data for post-processing. All three components will be described in detail and combined to create a simulation platform that is powerful for developing and testing algorithms for academic and industrial researchers involved in making quantitative shear-wave-based measurements of tissue material properties.

摘要

超声剪切波弹性成像是一种评估组织材料特性的重要成像方式。在实践中,一些系统性偏差与超声频率、焦点深度和配置、换能器类型(线性与曲线)以及位移估计和剪切波速度估计算法有关。此外,软组织并非完全弹性体,因此剪切波的传播速度会因其频谱内容而有所不同,而频谱内容可以通过声辐射力(ARF)激励的聚焦、持续时间以及组织的频率相关刚度来调制。为了了解这些不同的采集和材料特性参数如何影响剪切波速度的测量,ARF 激励在粘弹性介质中产生的剪切波传播的模拟是一个非常重要的工具。本文旨在深入描述如何进行这些模拟。总体方案分为三个部分:1)ARF 推束的三维模拟;2)将该力分布应用于有限元模型;3)提取运动数据进行后处理。所有三个部分都将详细描述,并组合成一个模拟平台,为从事基于定量剪切波的组织材料特性测量的学术和工业研究人员开发和测试算法提供强大支持。