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Real-time, high velocity resolution Color Doppler OCT

机译:实时,高速分辨率彩色多普勒OCT

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摘要

Color Doppler optical coherence tomography (CDOCT, also called Optical Doppler Tomography) is a noninvasive optical imaging technique, which allows for micron-scale physiological flow mapping simultaneous with morphological OCT imaging. Current systems for real-time endoscopic optical coherence tomography (EOCT) would be enhanced by the capability to visualize sub-surface blood flow for applications in early cancer diagnosis and the management of bleeding ulcers. Unfortunately, previous implementations of CDOCT have either been sufficiently computationally expensive (employing Fourier or Hilbert transform techniques) to rule out real-time imaging of flow, or have been restricted to imaging of excessively high flow velocities when used in real time. We have developed a novel Doppler OCT signal-processing strategy capable of imaging physiological flow rates in real time. This strategy employs cross-correlation processing of sequential A-scans in an EOCT image, as opposed to autocorrelation processing as described previously. To measure Doppler shifts in the kHz range using this technique, it was necessary to stabilize the EOCT interferometer center frequency, eliminate parasitic phase noise, and to construct a digital cross correlation unit able to correlate signals of megahertz bandwidth by a fixed lag of up to a few ms. The performance of the color Doppler OCT system was demonstrated in a flow phantom, demonstrating a minimum detectable flow velocity of approx 0.8 mm/s at a data acquisition rate of 8 images/second (with 480 A-scans/image) using a handheld probe. Dynamic flow as well as using it freehanded was shown. Flow was also detectable in a phantom in combination with a clinical usable endoscopic probe.
机译:彩色多普勒光学相干断层扫描(CDOCT,也称为光学多普勒断层扫描)是一种非侵入性的光学成像技术,它允许在进行形态学OCT成像的同时进行微米级的生理流测绘。可视化地下表面血流的能力将增强用于实时内窥镜光学相干断层扫描(EOCT)的当前系统,以用于早期癌症诊断和出血性溃疡的治疗。不幸的是,CDOCT的先前实现要么在计算上足够昂贵(采用傅立叶或希尔伯特变换技术)以排除流量的实时成像,要么被限制为在实时使用时对过高的流量进行成像。我们已经开发了一种新颖的多普勒OCT信号处理策略,能够实时成像生理流速。与先前所述的自相关处理相反,该策略采用了EOCT图像中顺序A扫描的互相关处理。为了使用这种技术在kHz范围内测量多普勒频移,必须稳定EOCT干涉仪的中心频率,消除寄生相位噪声,并构建一个数字互相关单元,该组件可以将兆赫兹带宽的信号相关到最大固定滞后,直到几毫秒。彩色多普勒OCT系统的性能在流动模型中得到证明,演示了使用手持式探头以8图像/秒(480 A扫描/图像)的数据采集速率可检测到的最小流速约为0.8 mm / s。 。显示了动态流程以及徒手使用它。与临床可用的内窥镜探头组合,幻影中的血流也可检测到。

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