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首页> 外文期刊>IEEE Transactions on Ultrasonics, Ferroelectrics, and Frequency Control >3-D In Vitro Acoustic Super-Resolution and Super-Resolved Velocity Mapping Using Microbubbles
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3-D In Vitro Acoustic Super-Resolution and Super-Resolved Velocity Mapping Using Microbubbles

机译:使用微气泡的3-D体外声学超分辨率和超分辨速度映射

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摘要

Standard clinical ultrasound (US) imaging frequencies are unable to resolve microvascular structures due to the fundamental diffraction limit of US waves. Recent demonstrations of 2-D super-resolution both in vitro and in vivo have demonstrated that fine vascular structures can be visualized using acoustic single bubble localization. Visualization of more complex and disordered 3-D vasculature, such as that of a tumor, requires an acquisition strategy which can additionally localize bubbles in the elevational plane with high precision in order to generate super-resolution in all three dimensions. Furthermore, a particular challenge lies in the need to provide this level of visualization with minimal acquisition time. In this paper, we develop a fast, coherent US imaging tool for microbubble localization in 3-D using a pair of US transducers positioned at 90°. This allowed detection of point scatterer signals in 3-D with average precisions equal to in axial and elevational planes, and in the lateral plane, compared to the diffraction limited point spread function full-widths at half-maximum of 488, 1188, and of the original imaging system with a single transducer. Visualization and velocity mapping of 3-D in vitro structures was demonstrated far beyond the diffraction limit. The capability to measure the complete flow pattern of blood vessels associated with disease at depth would ultimately enable analysis of in vivo microvascular morphology, blood flow dynamics, and occlusions resulting from disease states.
机译:由于US波的基本衍射极限,标准的临床超声(US)成像频率无法分辨微血管结构。体外和体内二维超分辨率的最新研究表明,可以使用声学单泡定位技术观察精细的血管结构。可视化更复杂且无序的3D脉管系统(例如肿瘤),需要一种采集策略,该策略还可以高精度地将气泡定位在高程平面中,以便在所有三个维度上产生超分辨率。此外,一个特殊的挑战在于需要以最少的获取时间来提供这种可视化级别。在本文中,我们使用一对定位在90°的美国传感器,开发了一种快速,连贯的美国成像工具,用于3-D中微气泡定位。与衍射极限点扩散函数全宽(半最大值为488、1188和)相比,这可以检测3-D点散射信号,其平均精度等于轴向和仰角以及侧面的平均精度。带有单个传感器的原始成像系统。证明了3-D体外结构的可视化和速度作图远远超出了衍射极限。在深度上测量与疾病相关的血管的完整流动模式的能力最终将使得能够分析体内微血管形态,血流动力学以及由疾病状态引起的闭塞。

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