基于相位校准和色散补偿的超高分辨率OCT中希尔伯特变换相位提取对分辨率的依赖

N. Israelsen, M. Maria, T. Feuchter, A. Bradu, A. Podoleanu, O. Bang
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引用次数: 0

摘要

超高分辨率光学相干层析成像(UHR-OCT)通过使用宽带源实现。同时,这使得OCT图像对干涉仪中的色散失配更加敏感。在光谱域OCT中,在干涉仪和检测器的非线性中未补偿的色散导致被检测干涉图的未知啁啾。补偿啁啾的一种方法是对相位进行像素-波数校准,这需要对相位进行数值提取。通常采用希尔伯特变换算法提取光相位与波数,用于校准和色散补偿。在这项工作中,我们展示了1300 nm下使用超连续介质源的UHR-OCT,并强调了在提取光学相位用于校准和色散补偿时使用希尔伯特变换算法的分辨率限制。我们证明,这些约束不能纯粹由利用希尔伯特变换的数据处理模块中的数值误差来解释,而必须由来自实验获得的干涉图的展宽机制来决定。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Resolution dependence on phase extraction by the Hilbert transform in phase calibrated and dispersion compensated ultrahigh resolution spectrometer-based OCT
Ultrahigh resolution optical coherence tomography (UHR-OCT) is enabled by using a broad band source. Simultaneously, this makes the OCT image more sensitive to dispersion mismatch in the interferometer. In spectral domain OCT, dispersion left uncompensated in the interferometer and detector non-linearities lead together to an unknown chirp of the detected interferogram. One method to compensate for the chirp is to perform a pixel-wavenumber calibration versus phase that requires numerical extraction of the phase. Typically a Hilbert transform algorithm is employed to extract the optical phase versus wavenumber for calibration and dispersion compensation. In this work we demonstrate UHR-OCT at 1300 nm using a Super continuum source and highlight the resolution constraints in using the Hilbert transform algorithm when extracting the optical phase for calibration and dispersion compensation. We demonstrate that the constraints cannot be explained purely by the numerical errors in the data processing module utilizing the Hilbert transform but must be dictated by broadening mechanisms originating from the experimentally obtained interferograms.
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