从主从干涉测量到复杂主从干涉测量:理论工作

S. Rivet, A. Bradu, M. Maria, T. Feuchter, L. Leick, A. Podoleanu
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引用次数: 0

摘要

介绍了两种新型傅里叶域光学相干层析成像(OCT)方法的一般理论框架,即主/从干涉法(MSI)及其扩展称为复杂主/从干涉法(CMSI)。在应用傅里叶变换之前(如在OCT标准方法中),不是将表示信道频谱的数字数据线性化,而是在局部振荡的基础上对信道频谱进行分解。这取代了在计算感兴趣范围内的深度剖面之前进行线性化的需要,这种线性化通常耗时。在这个模型中,引入了两个函数g和h。函数g描述了信道频谱信号在解码过程中由于从波数到时间的非线性而产生的调制啁啾。函数h描述了干涉仪中的色散。这两个函数的使用为以前的MSI方法实现带来了两个主要改进。本文详细介绍了函数g和函数h的获取步骤,并将CMSI表示为矩阵形式,使该方法能够在LabVIEW中通过多核并行编程轻松实现。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
From master slave interferometry to complex master slave interferometry: theoretical work
A general theoretical framework is described to obtain the advantages and the drawbacks of two novel Fourier Domain Optical Coherence Tomography (OCT) methods denoted as Master/Slave Interferometry (MSI) and its extension denoted as Complex Master/Slave Interferometry (CMSI). Instead of linearizing the digital data representing the channeled spectrum before a Fourier transform can be applied to it (as in OCT standard methods), channeled spectrum is decomposed on the basis of local oscillations. This replaces the need for linearization, generally time consuming, before any calculation of the depth profile in the range of interest. In this model two functions, g and h, are introduced. The function g describes the modulation chirp of the channeled spectrum signal due to nonlinearities in the decoding process from wavenumber to time. The function h describes the dispersion in the interferometer. The utilization of these two functions brings two major improvements to previous implementations of the MSI method. The paper details the steps to obtain the functions g and h, and represents the CMSI in a matrix formulation that enables to implement easily this method in LabVIEW by using parallel programming with multi-cores.
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