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Bias of shear wave elasticity measurements in thin layer samples and a simple correction strategy

机译:薄层样品中剪切波弹性测量的偏差和简单的校正策略

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摘要

Shear wave elastography (SWE) is an emerging technique for measuring biological tissue stiffness. However, the application of SWE in thin layer tissues is limited by bias due to the influence of geometry on measured shear wave speed. In this study, we investigated the bias of Young’s modulus measured by SWE in thin layer gelatin–agar phantoms, and compared the result with finite element method and Lamb wave model simulation. The result indicated that the Young’s modulus measured by SWE decreased continuously when the sample thickness decreased, and this effect was more significant for smaller thickness. We proposed a new empirical formula which can conveniently correct the bias without the need of using complicated mathematical modeling. In summary, we confirmed the nonlinear relation between thickness and Young’s modulus measured by SWE in thin layer samples, and offered a simple and practical correction strategy which is convenient for clinicians to use.
机译:剪切波弹性成像(SWE)是一种用于测量生物组织刚度的新兴技术。然而,由于几何形状对测得的剪切波速度的影响,SWE在薄层组织中的应用受到偏倚的限制。在这项研究中,我们调查了SWE在薄层明胶-琼脂模型中用SWE测量的杨氏模量的偏差,并将结果与​​有限元方法和Lamb波模型仿真进行了比较。结果表明,当样品厚度减小时,通过SWE测得的杨氏模量连续下降,对于较小的厚度,这种影响更为明显。我们提出了一个新的经验公式,可以方便地校正偏差,而无需使用复杂的数学模型。总之,我们证实了薄层样品中SWE测得的厚度与杨氏模量之间的非线性关系,并提供了一种简单实用的校正策略,方便临床医生使用。

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