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Viscoelastic characterization of thin tissues using acoustic radiation force and model-based inversion.

机译:使用声辐射力和基于模型的反演对薄组织进行粘弹性表征。

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摘要

By means of the viscoelastodynamic model for a two-layer solid-fluid system and a detailed account of the locally induced acoustic radiation force, a rational analytical and computational framework is established for the viscoelastic characterization of thin tissues from high-frequency ultrasound (HFUS) measurements. For practical applications, the back-analysis is set up to interpret the frequency response function, signifying the tissue's axial displacement (captured by the imaging transducer) per squared voltage driving the 'pushing' transducer, as experimental input. On parametrizing the tissue's viscoelastic behavior in terms of the standard linear model, the proposed methodology is applied to a set of measurements performed on tissue-mimicking phantom constructs with thicknesses ranging from 0.5 to 4 mm. The results demonstrate that the model-based inversion, which carefully mimics the local boundary conditions and applied ultrasound excitation, yields viscoelastic properties for the phantom that are virtually invariant over the range of specimen thicknesses tested. Beyond its immediate application to in vitro viscoelastic characterization of thin excised tissues and tissue constructs, the proposed methodology may also find use in the characterization of skin or skin lesions over bone in vivo.
机译:通过两层固体流体系统的粘弹动力学模型和局部感应声辐射力的详细说明,建立了用于分析高频超声(HFUS)薄组织的粘弹性的合理分析和计算框架。测量。对于实际应用,设置反向分析来解释频率响应函数,表示驱动“推”换能器的每平方电压的组织轴向位移(由成像换能器捕获)表示为实验输入。在根据标准线性模型对组织的粘弹性行为进行参数化时,将所提出的方法应用于对厚度为0.5至4 mm的组织模仿体模构造进行的一组测量。结果表明,基于模型的反演仔细模拟了局部边界条件并施加了超声激励,产生了幻象的粘弹性,在测试的样品厚度范围内几乎不变。除了将其立即用于薄切下的组织和组织构造的体外粘弹性表征之外,所提出的方法还可以用于体内对骨骼的皮肤或皮肤病变的表征。

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