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Mechanical Properties of Viscoelastic Media by Local Frequency Estimation of Divergence-Free Wave Fields

机译:无散度波场局部频率估计的粘弹性介质的力学性能

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摘要

Magnetic resonance elastography (MRE) is an imaging modality with which mechanical properties can be noninvasively measured in living tissue. Magnetic resonance elastography relies on the fact that the elastic shear modulus determines the phase velocity and, hence the wavelength, of shear waves which are visualized by motion-sensitive MR imaging. Local frequency estimation (LFE) has been used to extract the local wavenumber from displacement wave fields recorded by MRE. LFE -based inversion is attractive because it allows material parameters to be estimated without explicitly invoking the equations governing wave propagation, thus obviating the need to numerically compute the Laplacian. Nevertheless, studies using LFE have not explicitly addressed three important issues: (1) tissue viscoelasticity; (2) the effects of longitudinal waves and rigid body motion on estimates of shear modulus; and (3) mechanical anisotropy. In the current study we extend the LFE technique to (1) estimate the (complex) viscoelastic shear modulus in lossy media; (2) eliminate the effects of longitudinal waves and rigid body motion; and (3) determine two distinct shear moduli in anisotropic media. The extended LFE approach is demonstrated by analyzing experimental data from a previously-characterized, isotropic, viscoelastic, gelatin phantom and simulated data from a computer model of anisotropic (transversely isotropic) soft material.
机译:磁共振弹性成像(MRE)是一种成像方式,通过该方式可以在生物组织中无创地测量机械性能。磁共振弹性成像依赖于以下事实:弹性剪切模量决定了剪切波的相速度,因此决定了波长,该波长通过运动敏感的MR成像可视化。局部频率估计(LFE)已用于从MRE记录的位移波场中提取局部波数。基于LFE的反演方法很有吸引力,因为它可以估算材料参数,而无需明确调用控制波传播的方程式,从而无需进行数值计算拉普拉斯算子。然而,使用LFE的研究并未明确解决三个重要问题:(1)组织粘弹性; (2)纵向波和刚体运动对剪切模量估计的影响; (3)机械各向异性。在当前的研究中,我们将LFE技术扩展到(1)估计有损耗介质中的(复杂)粘弹性剪切模量; (2)消除纵向波和刚体运动的影响; (3)确定各向异性介质中两个不同的剪切模量。通过分析来自先前表征的各向同性,粘弹性,明胶体模的实验数据以及来自各向异性(横向各向同性)软材料的计算机模型的模拟数据,可以证明扩展的LFE方法。

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