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Comb-Push Ultrasound Shear Elastography (CUSE) With Various Ultrasound Push Beams

机译:梳齿式超声剪切弹性成像(CUSE)与各种超声推力梁

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Comb-push ultrasound shear elastography (CUSE) has recently been shown to be a fast and accurate 2-D elasticity imaging technique that can provide a full field-of-view (FOV) shear wave speed map with only one rapid data acquisition. The initial version of CUSE was termed U-CUSE because unfocused ultrasound push beams were used. In this paper, we present two new versions of CUSE—focused CUSE (F-CUSE) and marching CUSE (M-CUSE), which use focused ultrasound push beams to improve acoustic radiation force penetration and produce stronger shear waves in deep tissues (e.g., kidney and liver). F-CUSE divides transducer elements into several subgroups which transmit multiple focused ultrasound beams simultaneously. M-CUSE uses more elements for each focused push beam and laterally marches the push beams. Both F-CUSE and M-CUSE can generate comb-shaped shear wave fields that have shear wave motion at each imaging pixel location so that a full FOV 2-D shear wave speed map can be reconstructed with only one data acquisition. Homogeneous phantom experiments showed that U-CUSE, F-CUSE, and M-CUSE can all produce smooth shear wave speed maps with accurate shear wave speed estimates. An inclusion phantom experiment showed that all CUSE methods could provide good contrast between the inclusion and background with sharp boundaries while F-CUSE and M-CUSE require shorter push durations to achieve shear wave speed maps with comparable SNR to U-CUSE. A more challenging inclusion phantom experiment with a very stiff and deep inclusion shows that better shear wave penetration could be gained by using F-CUSE and M-CUSE. Finally, a shallow inclusion experiment showed that good preservations of inclusion shapes could be achieved by both U-CUSE and F-CUSE in the near field. Safety measurements showed that all safety parameters are below FDA regulatory limits for all CUSE methods. These promising results suggest that, using various push beams, CUSE is capable of reconstructing a 2-D - ull FOV shear elasticity map using only one push-detection data acquisition in a wide range of depths for soft tissue elasticity imaging.
机译:梳状超声剪切弹性成像(CUSE)最近被证明是一种快速,准确的二维弹性成像技术,可以提供仅需快速采集数据的完整视场(FOV)剪切波速度图。 CUSE的最初版本被称为U-CUSE,因为使用了未聚焦的超声波推杆。在本文中,我们介绍了CUSE的两个新版本-聚焦CUSE(F-CUSE)和行进CUSE(M-CUSE),它们使用聚焦超声推力束来改善声辐射力穿透力并在深部组织中产生更强的剪切波(例如,肾脏和肝脏)。 F-CUSE将换能器元件分为几个子组,这些子组同时传输多个聚焦超声束。 M-CUSE为每个聚焦推杆使用更多元素,并横向推动推杆。 F-CUSE和M-CUSE都可以生成在每个成像像素位置处都具有剪切波运动的梳状剪切波场,因此仅一次数据采集就可以重建完整的FOV 2-D剪切波速度图。均质体模实验表明,U-CUSE,F-CUSE和M-CUSE都可以生成平滑的剪切波速图,并具有准确的剪切波速估计值。夹杂物模型实验表明,所有CUSE方法都可以在夹杂物和背景之间提供良好的对比度,并具有清晰的边界,而F-CUSE和M-CUSE需要更短的推动时间才能获得具有与U-CUSE相当的SNR的剪切波速度图。更具挑战性的包含非常僵硬和深层夹杂物的幻象实验表明,使用F-CUSE和M-CUSE可以获得更好的剪切波穿透。最后,一个浅层夹杂物实验表明,U-CUSE和F-CUSE在近场中都可以实现对夹杂物形状的良好保存。安全性测量表明,所有CUSE方法的所有安全性参数均低于FDA法规限制。这些有希望的结果表明,使用各种推力梁,CUSE能够仅使用一个在大范围深度内进行推压检测数据采集的软组织弹性成像,即可重建二维Dull FOV剪切弹性图。

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