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首页> 外文期刊>IEEE Transactions on Medical Imaging >Probe Oscillation Shear Elastography (PROSE): A High Frame-Rate Method for Two-Dimensional Ultrasound Shear Wave Elastography
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Probe Oscillation Shear Elastography (PROSE): A High Frame-Rate Method for Two-Dimensional Ultrasound Shear Wave Elastography

机译:探针振荡剪切弹性成像(PROSE):二维超声剪切波弹性成像的高帧速方法

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摘要

Ultrasound shear wave elastography (SWE) utilizes the propagation of induced shear waves to characterize the shear modulus of soft tissue. Many methods rely on an acoustic radiation force (ARF) “push beam” to generate shear waves. However, specialized hardware is required to generate the push beams, and the thermal stress that is placed upon the ultrasound system, transducer, and tissue by the push beams currently limits the frame-rate to about 1 Hz. These constraints have limited the implementation of ARF to high-end clinical systems. This paper presents Probe Oscillation Shear Elastography (PROSE) as an alternative method to measure tissue elasticity. PROSE generates shear waves using a harmonic mechanical vibration of an ultrasound transducer, while simultaneously detecting motion with the same transducer under pulse-echo mode. Motion of the transducer during detection produces a “strain-like” compression artifact that is coupled with the observed shear waves. A novel symmetric sampling scheme is proposed such that pulse-echo detection events are acquired when the ultrasound transducer returns to the same physical position, allowing the shear waves to be decoupled from the compression artifact. Full field-of-view (FOV) two-dimensional (2D) shear wave speed images were obtained by applying a local frequency estimation (LFE) technique, capable of generating a 2D map from a single frame of shear wave motion. The shear wave imaging frame rate of PROSE is comparable to the vibration frequency, which can be an order of magnitude higher than ARF based techniques. PROSE was able to produce smooth and accurate shear wave images from three homogeneous phantoms with different moduli, with an effective frame rate of 300 Hz. An inclusion phantom study showed that increased vibration frequencies improved the accuracy of inclusion imaging, and allowed targets as small as 6.5 mm to be resolved with good contrast (contrast-to-noise ratio ≥ 19 dB) between the target and background.
机译:超声剪切波弹性成像(SWE)利用感应剪切波的传播来表征软组织的剪切模量。许多方法依赖于声辐射力(ARF)“推力束”来产生剪切波。但是,需要专门的硬件来生成推力束,并且推力束施加在超声系统,换能器和组织上的热应力目前将帧速率限制为大约1 Hz。这些限制已将ARF的实施限制在高端临床系统中。本文介绍了探针振荡剪切弹性成像(PROSE)作为测量组织弹性的替代方法。 PROSE利用超声换能器的谐波机械振动产生剪切波,同时在脉冲回波模式下同时检测同一换能器的运动。检测期间换能器的运动会产生“应变样”的压缩伪影,该伪影与观察到的剪切波耦合。提出了一种新颖的对称采样方案,使得当超声换能器返回相同的物理位置时,可以获取脉冲回波检测事件,从而使剪切波与压缩伪像分离。通过应用局部频率估计(LFE)技术获得了全视场(FOV)二维(2D)剪切波速度图像,该技术能够从单个剪切波运动帧生成2D映射。 PROSE的剪切波成像帧频与振动频率相当,其振动频率可以比基于ARF的技术高一个数量级。 PROSE能够从三个具有不同模量的均质体模产生平滑且准确的剪切波图像,有效帧频为300 Hz。夹杂物模型研究表明,增加的振动频率可以提高夹杂物成像的准确性,并且可以分辨出小至6.5 mm的目标,并且目标与背景之间具有良好的对比度(对比度噪声比≥19 dB)。

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