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Advanced multi-contrast Jones matrix optical coherence tomography for Doppler and polarization sensitive imaging

机译:先进的多对比度琼斯矩阵光学相干断层扫描技术,用于多普勒和偏振敏感成像

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摘要

An advanced version of Jones matrix optical coherence tomography (JMT) is demonstrated for Doppler and polarization sensitive imaging of the posterior eye. JMT is capable of providing localized flow tomography by Doppler detection and investigating the birefringence property of tissue through a three-dimensional (3-D) Jones matrix measurement. Owing to an incident polarization multiplexing scheme based on passive optical components, this system is stable, safe in a clinical environment, and cost effective. Since the properties of this version of JMT provide intrinsic compensation for system imperfection, the system is easy to calibrate. Compared with the previous version of JMT, this advanced JMT achieves a sufficiently long depth measurement range for clinical cases of posterior eye disease. Furthermore, a fine spectral shift compensation method based on the cross-correlation of calibration signals was devised for stabilizing the phase of OCT, which enables a high sensitivity Doppler OCT measurement. In addition, a new theory of JMT which integrates the Jones matrix measurement, Doppler measurement, and scattering measurement is presented. This theory enables a sensitivity-enhanced scattering OCT and high-sensitivity Doppler OCT. These new features enable the application of this system to clinical cases. A healthy subject and a geographic atrophy patient were measured in vivo, and simultaneous imaging of choroidal vasculature and birefringence structures are demonstrated.
机译:演示了琼斯矩阵光学相干断层扫描(JMT)的高级版本,用于后眼的多普勒和偏振敏感成像。 JMT能够通过多普勒检测提供局部流层析成像,并能够通过三维(3-D)Jones矩阵测量研究组织的双折射特性。由于基于无源光学组件的入射偏振复用方案,该系统稳定,在临床环境中安全且具有成本效益。由于此版本的JMT的属性为系统缺陷提供了内在的补偿,因此该系统易于校准。与以前的JMT版本相比,这种先进的JMT对于临床后眼疾病病例可达到足够长的深度测量范围。此外,设计了一种基于校准信号互相关的精细光谱偏移补偿方法来稳定OCT的相位,从而实现了高灵敏度的多普勒OCT测量。此外,提出了一种结合了琼斯矩阵测量,多普勒测量和散射测量的JMT新理论。该理论实现了灵敏度增强的散射OCT和高灵敏度多普勒OCT。这些新功能使该系统可以应用于临床病例。在体内对健康受试者和地理萎缩患者进行了测量,并证实了脉络膜脉管系统和双折射结构的同时成像。

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