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用于高消光复数解调的扫频源光学相干断层扫描中光谱和射频误差的补偿

Compensation of spectral and RF errors in swept-source OCT for high extinction complex demodulation.

作者信息

Siddiqui Meena, Tozburun Serhat, Zhang Ellen Ziyi, Vakoc Benjamin J

出版信息

Opt Express. 2015 Mar 9;23(5):5508-20. doi: 10.1364/OE.23.005508.

DOI:10.1364/OE.23.005508
PMID:25836784
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC4394752/
Abstract

We provide a framework for compensating errors within passive optical quadrature demodulation circuits used in swept-source optical coherence tomography (OCT). Quadrature demodulation allows for detection of both the real and imaginary components of an interference fringe, and this information separates signals from positive and negative depth spaces. To achieve a high extinction (∼60 dB) between these positive and negative signals, the demodulation error must be less than 0.1% in amplitude and phase. It is difficult to construct a system that achieves this low error across the wide spectral and RF bandwidths of high-speed swept-source systems. In a prior work, post-processing methods for removing residual spectral errors were described. Here, we identify the importance of a second class of errors originating in the RF domain, and present a comprehensive framework for compensating both spectral and RF errors. Using this framework, extinctions >60 dB are demonstrated. A stability analysis shows that calibration parameters associated with RF errors are accurate for many days, while those associated with spectral errors must be updated prior to each imaging session. Empirical procedures to derive both RF and spectral calibration parameters simultaneously and to update spectral calibration parameters are presented. These algorithms provide the basis for using passive optical quadrature demodulation circuits with high speed and wide-bandwidth swept-source OCT systems.

摘要

我们提供了一个框架,用于补偿扫频源光学相干断层扫描(OCT)中使用的无源光学正交解调电路内的误差。正交解调允许检测干涉条纹的实部和虚部,并且该信息将来自正深度空间和负深度空间的信号分开。为了在这些正信号和负信号之间实现高消光(约60 dB),解调误差在幅度和相位上必须小于0.1%。在高速扫频源系统的宽光谱和射频带宽范围内构建一个实现这种低误差的系统是困难的。在先前的工作中,描述了用于去除残余光谱误差的后处理方法。在这里,我们确定了源自射频域的第二类误差的重要性,并提出了一个用于补偿光谱误差和射频误差的综合框架。使用这个框架,展示了大于60 dB的消光。稳定性分析表明,与射频误差相关的校准参数在许多天内都是准确的,而与光谱误差相关的校准参数必须在每次成像会话之前更新。提出了同时推导射频和光谱校准参数以及更新光谱校准参数的经验程序。这些算法为在高速和宽带扫频源OCT系统中使用无源光学正交解调电路提供了基础。