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Two-dimensional Shear Wave Elastography on Conventional Ultrasound Scanners with Time Aligned Sequential Tracking (TAST) and Comb-push Ultrasound Shear Elastography (CUSE)

机译:常规超声扫描仪上的二维剪切波弹性成像技术具有时间对准顺序跟踪(TAST)和梳状超声剪切弹性成像技术(CUSE)

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摘要

Two-dimensional (2D) shear wave elastography presents 2D quantitative shear elasticity maps of tissue, which are clinically useful for both focal lesion detection and diffuse disease diagnosis. Realization of 2D shear wave elastography on conventional ultrasound scanners, however, is challenging due to the low tracking pulse-repetition-frequency (PRF) of these systems. While some clinical and research platforms support software beamforming and plane wave imaging with high PRF, the majority of current clinical ultrasound systems do not have the software beamforming capability, which presents a critical challenge for translating the 2D shear wave elastography technique from laboratory to clinical scanners. To address this challenge, this paper presents a Time Aligned Sequential Tracking (TAST) method for shear wave tracking on conventional ultrasound scanners. TAST takes advantage of the parallel beamforming capability of conventional systems and realizes high PRF shear wave tracking by sequentially firing tracking vectors and aligning shear wave data in the temporal direction. The Comb-push Ultrasound Shear Elastography (CUSE) technique was used to simultaneously produce multiple shear wave sources within the field-of-view (FOV) to enhance shear wave signal-to-noise-ratio (SNR) and facilitate robust reconstructions of 2D elasticity maps. TAST and CUSE were realized on a conventional ultrasound scanner (the General Electric LOGIQ E9). A phantom study showed that the shear wave speed measurements from the LOGIQ E9 were in good agreement to the values measured from other 2D shear wave imaging technologies. An inclusion phantom study showed that the LOGIQ E9 had comparable performance to the Aixplorer (Supersonic Imagine) in terms of bias and precision in measuring different sized inclusions. Finally, in vivo case analysis of a breast with a malignant mass, and a liver from a healthy subject demonstrated the feasibility of using the LOGIQ E9 for in vivo 2D shear wave elastography. These promising results indicate that the proposed technique can enable the implementation of 2D shear wave elastography on conventional ultrasound scanners and potentially facilitate wider clinical applications with shear wave elastography.
机译:二维(2D)剪切波弹性成像显示组织的2D定量剪切弹性图,在临床上可用于病灶病变检测和弥漫性疾病诊断。然而,由于这些系统的低跟踪脉冲重复频率(PRF),在常规超声扫描仪上实现2D剪切波弹性成像是一项挑战。尽管某些临床和研究平台支持具有高PRF的软件波束成形和平面波成像,但是当前大多数临床超声系统不具备软件波束成形能力,这对于将2D剪切波弹性成像技术从实验室转换为临床扫描仪提出了重大挑战。为了解决这一挑战,本文提出了一种在常规超声扫描仪上用于剪切波跟踪的时间对准顺序跟踪(TAST)方法。 TAST充分利用了常规系统的并行波束成形功能,并通过顺序触发跟踪矢量并在时间方向上对齐剪切波数据来实现高PRF剪切波跟踪。梳推超声剪切弹性成像(CUSE)技术用于在视场(FOV)内同时产生多个剪切波源,以增强剪切波的信噪比(SNR)并促进2D的稳健重建弹性图。 TAST和CUSE是在常规超声扫描仪(通用电气LOGIQ E9)上实现的。幻像研究表明,LOGIQ E9的剪切波速度测量值与其他2D剪切波成像技术的测量值非常吻合。夹杂物模型研究表明,LOGIQ E9在测量不同尺寸夹杂物方面的偏差和精度方面与Aixplorer(超音速成像)具有可比的性能。最后,对具有恶性肿块的乳房和来自健康受试者的肝脏进行的体内病例分析证明了使用LOGIQ E9进行体内2D剪切波弹性成像的可行性。这些有希望的结果表明,所提出的技术可以在常规超声扫描仪上实现2D剪切波弹性成像,并可能促进剪切波弹性成像在更广泛的临床应用。

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