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Live Ultrasound Color-Encoded Speckle Imaging Platform for Real-Time Complex Flow Visualization In Vivo

机译:实时超声波编码的散斑成像平台,用于实时复杂流量可视化<斜体>在Vivo

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摘要

Complex flow patterns are prevalent in the vasculature, but they are difficult to image noninvasively in real time. This paper presents the first real-time scanning platform for a high-frame-rate ultrasound technique called color-encoded speckle imaging (CESI) and its use in visualizing arterial flow dynamics in vivo. CESI works by simultaneously rendering flow speckles and color-coded flow velocity estimates on a time-resolved basis. Its live implementation was achieved by integrating a 192-channel programmable ultrasound front-end module, a 4.8-GB/s capacity data streaming link, and a series of computing kernels implemented on the graphical processing unit (GPU) for beamforming and Doppler processing. A slow-motion replay mode was also included to offer coherent visualization of CESI frames acquired at high frame rate [3000 frames per second (fps) in our experiments]. The live CESI scanning platform was found to be effective in facilitating real-time image guidance (at least 20 fps for live video display with 55-fps GPU processing throughout). In vivo pilot trials also showed that live CESI, when running in replay mode, can temporally resolve triphasic flow at the brachial bifurcation and can reveal flow dynamics in the brachial vein during a fist-clenching maneuver. Overall, live CESI has potential for use in routine investigations in vivo that seek to identify complex flow dynamics in real time and relate these dynamics to vascular physiology.
机译:复杂的流动模式在脉管系统中普遍存在,但它们很难实时非侵入地图像。本文介绍了一种用于高帧速率超声技术的第一个实时扫描平台,称为颜色编码的散斑成像(CESI)及其在Vivo中可视化动脉流动动态的用途。 CESI通过同时渲染流量斑点和颜色编码的流速估计的时间分辨。通过集成192频道可编程超声前端模块,4.8 GB / S容量数据流链路和在图形处理单元(GPU)上实现的用于波束成形和多普勒处理的一系列计算内核来实现其实时实现。还包括慢动作重放模式,以提供在高帧速率下获得的CESI帧的相干可视化[我们的实验中每秒3000帧(FPS)]。发现实时CESI扫描平台有效促进实时图像指导(用于实时视频显示的至少20 FPS,整个GPU处理55fps GPU处理)。在体内试验中也表明,在重放模式下运行时,现场CESI可以在臂肱分叉处暂时解决足球流动,并且可以在拳击机动期间揭示臂静脉中的流动动态。总体而言,Live CESI在寻求实时识别复杂流动动态的体内常规调查中具有潜在的潜力,并将这些动态与血管生理学相关。

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