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二维超分辨率超声成像中血流速度的低估

Underestimation of Flow Velocity in 2-D Super-Resolution Ultrasound Imaging.

作者信息

Amin Naji Mostafa, Taghavi Iman, Vilain Thomsen Erik, Bent Larsen Niels, Arendt Jensen Jorgen

出版信息

IEEE Trans Ultrason Ferroelectr Freq Control. 2024 Dec;71(12: Breaking the Resolution Barrier in Ultrasound):1844-1854. doi: 10.1109/TUFFC.2024.3416512. Epub 2025 Jan 8.

DOI:10.1109/TUFFC.2024.3416512
PMID:38896528
Abstract

Velocity estimation in ultrasound imaging is a technique to measure the speed and direction of blood flow. The flow velocity in small blood vessels, i.e., arterioles, venules, and capillaries, can be estimated using super-resolution ultrasound imaging (SRUS). However, the vessel width in SRUS is relatively small compared with the full-width-half-maximum of the ultrasound beam in the elevation direction, which directly impacts the velocity estimation. By taking into consideration the small vessel widths in SRUS, it is hypothesized that the velocity is underestimated in 2-D SRUS when the vessel diameter is smaller than the full width at half maximum elevation resolution of the transducer (FWHMy). A theoretical model is introduced to show that the velocity of a 3-D parabolic velocity profile is underestimated by up to 33% in 2-D SRUS, if the width of the vessel is smaller than FWHMy. This model was tested using Field II simulations and 3-D-printed micro-flow hydrogel phantom measurements. A Verasonics Vantage 256 scanner and a GE L8-18i-D linear array transducer with FWHMy of approximately at the elevation focus were used in the simulations and measurements. Simulations of different parabolic velocity profiles showed that the velocity underestimation was 36.8% % (mean ± standard deviation). The measurements showed that the velocity was underestimated by 30% %. Moreover, the results of vessel diameters, ranging from FWHMy to FWHMy, indicate that velocities are estimated according to the theoretical model. The theoretical model can, therefore, be used for the compensation of velocity estimates under these circumstances.

摘要

超声成像中的速度估算是一种测量血流速度和方向的技术。小血管(即微动脉、微静脉和毛细血管)中的血流速度可使用超分辨率超声成像(SRUS)进行估算。然而,与超声束在仰角方向的半高全宽相比,SRUS中的血管宽度相对较小,这直接影响速度估算。考虑到SRUS中小血管的宽度,据推测,当血管直径小于换能器在仰角分辨率下的半高全宽(FWHMy)时,二维SRUS中的速度会被低估。引入了一个理论模型来表明,如果血管宽度小于FWHMy,二维SRUS中三维抛物线速度分布的速度会被低估高达33%。该模型通过Field II模拟和3D打印微流控水凝胶体模测量进行了测试。在模拟和测量中使用了一台Verasonics Vantage 256扫描仪和一个GE L8-18i-D线性阵列换能器,其FWHMy大约在仰角焦点处。不同抛物线速度分布的模拟表明,速度低估为36.8%(平均值±标准差)。测量结果表明速度被低估了30%。此外,血管直径从FWHMy到FWHMy的测量结果表明,速度是根据理论模型估算的。因此,在这些情况下,该理论模型可用于速度估算的补偿。

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