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首页> 外文期刊>IEEE Transactions on Medical Imaging >Local Phase Velocity Based Imaging: A New Technique Used for Ultrasound Shear Wave Elastography
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Local Phase Velocity Based Imaging: A New Technique Used for Ultrasound Shear Wave Elastography

机译:基于局部相速度的成像:一种用于超声剪切波弹性成像的新技术

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摘要

Ultrasound shear wave elastography is an imaging modality for noninvasive evaluation of tissue mechanical properties. However, many current techniques overestimate lesions dimension or shape especially when small inclusions are taken into account. In this paper, we propose a new method called local phase velocity-based imaging (LPVI) as an alternative technique to measure tissue elasticity. Two separate acquisitions with ultrasound push beams focused once on the left side and once on the right side of the inclusion were generated. A local shear wave velocity is then recovered in the frequency domain (for a single frequency or frequency band) for both acquired data sets. Finally, a two-dimensional shear wave velocity map is reconstructed by combining maps from two separate acquisitions. Robust and accurate shear wave velocity maps are reconstructed using the proposed LPVI method in calibrated liver fibrosis tissue mimicking homogeneous phantoms, a calibrated elastography phantom with stepped cylinder inclusions and a homemade gelatin phantom with ex vivo porcine liver inclusion. Results are compared with an existing phase velocity-based imaging approach and a group velocity-based method considered as the state of the art. Results from the phantom study showed that increased frequency improved the shape of the reconstructed inclusions and contrast-to-noise ratio between the target and background.
机译:超声剪切波弹性成像是一种用于非侵入性评估组织机械性能的成像方式。然而,许多当前技术高估了病变的尺寸或形状,尤其是在考虑到小的内含物的情况下。在本文中,我们提出了一种称为局部相速度基成像(LPVI)的新方法,作为一种测量组织弹性的替代技术。产生了两个单独的采集,分别用超声推力束聚焦在包裹体的左侧和右侧。然后,对于两个采集的数据集,在频域(对于单个频率或频带)中恢复局部剪切波速度。最后,通过组合来自两个单独采集的图来重建二维剪切波速度图。使用拟议的LPVI方法,在模拟均质体模的校准肝纤维化组织,具有阶梯圆柱体夹杂物的校准弹性成像体模和带有离体猪肝包裹体的自制明胶体模中,重建了稳健而准确的剪切波速度图。将结果与现有的基于相速度的成像方法和被视为最新技术的基于组速度的方法进行比较。幻像研究的结果表明,增加频率可以改善重建夹杂物的形状,并改善目标和背景之间的对比度和噪声比。

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