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用于部分相干干涉测量法和光学相干断层扫描的数值色散补偿

Numerical dispersion compensation for Partial Coherence Interferometry and Optical Coherence Tomography.

作者信息

Fercher A, Hitzenberger C, Sticker M, Zawadzki R, Karamata B, Lasser T

出版信息

Opt Express. 2001 Dec 3;9(12):610-5. doi: 10.1364/oe.9.000610.

Abstract

Dispersive samples introduce a wavelength dependent phase distortion to the probe beam. This leads to a noticeable loss of depth resolution in high resolution OCT using broadband light sources. The standard technique to avoid this consequence is to balance the dispersion of the sample byarrangingadispersive materialinthereference arm. However, the impact of dispersion is depth dependent. A corresponding depth dependent dispersion balancing technique is diffcult to implement. Here we present a numerical dispersion compensation technique for Partial Coherence Interferometry (PCI) and Optical Coherence Tomography (OCT) based on numerical correlation of the depth scan signal with a depth variant kernel. It can be used a posteriori and provides depth dependent dispersion compensation. Examples of dispersion compensated depth scan signals obtained from microscope cover glasses are presented.

摘要

色散样本会给探测光束引入与波长相关的相位失真。这会导致在使用宽带光源的高分辨率光学相干断层扫描(OCT)中深度分辨率明显下降。避免这种情况的标准技术是通过在参考臂中布置色散材料来平衡样本的色散。然而,色散的影响与深度有关。一种相应的与深度相关的色散平衡技术很难实现。在此,我们提出一种基于深度扫描信号与深度可变内核的数值相关性的部分相干干涉测量法(PCI)和光学相干断层扫描(OCT)的数值色散补偿技术。它可以事后使用,并提供与深度相关的色散补偿。文中给出了从显微镜盖玻片获得的色散补偿深度扫描信号的示例。

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