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Quantitative shear elasticity imaging from a complex elastic wavefield in soft solids with application to passive elastography

机译:软固体中复杂弹性波场的定量剪切弹性成像及其在被动弹性成像中的应用

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摘要

In passive elastography, the complex physiological noise present in the human body is used to conduct an elastography experiment. In the present work, quantitative shear elasticity imaging from a complex elastic wavefield is demonstrated in soft solids. By correlating the elastic field at different positions, which can be interpreted as a time-reversal experiment, shear waves are virtually focused on any point of the imaging plane. According to the Rayleigh criterion, the focus size is directly related to the shear wave speed and thus to the shear elasticity. To locally retrieve a shear wave speed estimation, analytical and empirical expressions that relate the focus size with the shear wave speed and the frequency band used in the correlation computation are derived. The validity of such expressions is demonstrated numerically and experimentally on a tissue-mimicking phantom consisting of two different elastic layers. The obtained results were in complete agreement with a prior shear wave speed estimation demonstrating the potential of the technique to quantitative shear elasticity assessment using a complex elastic wavefield. Finally, an ultraslow experiment at an imaging rate of 10 Hz shows the technique to be compatible with slow imaging devices such as standard echographs or MRI scanners.
机译:在被动弹性成像中,存在于人体中的复杂生理噪声用于进行弹性成像实验。在目前的工作中,在软固体中证明了来自复杂弹性波场的定量剪切弹性成像。通过关联不同位置的弹性场(这可以解释为时间反转实验),剪切波实际上聚焦在成像平面的任何点上。根据瑞利准则,焦点大小与剪切波速度直接相关,因此与剪切弹性直接相关。为了局部获取剪切波速度估计,推导了将焦点大小与剪切波速度和相关计算中使用的频带相关联的解析和经验表达式。在由两个不同的弹性层组成的组织模仿模型上,通过数值和实验证明了这种表达的有效性。获得的结果与先前的剪切波速度估算完全吻合,证明了该技术在使用复弹性波场进行定量剪切弹性评估中的潜力。最后,以10 Hz的成像速率进行的超慢实验表明该技术可与慢速成像设备(例如标准回波图或MRI扫描仪)兼容。

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