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首页> 外文期刊>IEEE Transactions on Medical Imaging >Simultaneous Morphological and Flow Imaging Enabled by Megahertz Intravascular Doppler Optical Coherence Tomography
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Simultaneous Morphological and Flow Imaging Enabled by Megahertz Intravascular Doppler Optical Coherence Tomography

机译:Megahertz血管内多普勒光学相干断层扫描使能的同时形态和流量成像

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摘要

We demonstrate three-dimensional intravascular flow imaging compatible with routine clinical image acquisition workflow by means of megahertz (MHz) intravascular Doppler Optical Coherence Tomography (OCT). The OCT system relies on a 1.1 mm diameter motorized imaging catheter and a 1.5 MHz Fourier Domain Mode Locked (FDML) laser. Using a post processing method to compensate the drift of the FDML laser output, we can resolve the Doppler phase shift between two adjoining OCT A-line datasets. By interpretation of the velocity field as measured around the zero phase shift, the flow direction at specific angles can be qualitatively estimated. Imaging experiments were carried out in phantoms, micro channels, and swine coronary artery in vitro at a speed of 600 frames/s. The MHz wavelength sweep rate of the OCT system allows us to directly investigate flow velocity of up to 37.5 cm/s while computationally expensive phase-unwrapping has to be applied to measure such high speed using conventional OCT system. The MHz sweep rate also enables a volumetric Doppler imaging even with a fast pullback at 40 mm/s. We present the first simultaneously recorded 3D morphological images and Doppler flow profiles. Flow pattern estimation and three-dimensional structural reconstruction of entire coronary artery are achieved using a single OCT pullback dataset.
机译:我们通过Megahertz(MHz)血管内多普勒光学相干性断层扫描(OCT)展示了与常规临床图像采集工作流程相容的三维血管内血管成像。 OCT系统依赖于1.1毫米的电动成像导管和1.5MHz傅立叶域模式锁定(FDML)激光器。使用后处理方法来补偿FDML激光输出的漂移,我们可以在两个邻接OCT A线数据集之间解析多普勒相移。通过围绕零相移测量的速度场来解释,可以定性地估计特定角度的流动方向。成像实验以600帧/秒的速度在体外,微量通道和猪冠状动脉中进行。 OCT系统的MHz波长扫描率使我们能够直接研究高达37.5cm / s的流速,而使用常规OCT系统必须施加计算昂贵的相位展示来测量这种高速。 MHz扫描率也使体积多普勒成像使得即使在40 mm / s的快速回调。我们介绍了第一个同时记录的3D形态图像和多普勒流程轮廓。使用单个OCT回调数据集实现整个冠状动脉的流动模式估计和三维结构重建。

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