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Optical coherence tomography: Monte Carlo simulation and improvement by optical amplification

机译:光学相干断层扫描:蒙特卡罗模拟和光学放大的改进

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摘要

An advanced novel Monte Carlo simulation model of the detection process of an optical coherence tomography (OCT) system is presented. For the first time it is shown analytically that the applicability of the incoherent Monte Carlo approach to model the heterodyne detection process of an OCT system is firmly justified. This is obtained by calculating the heterodyne mixing of the reference and sample beams in a plane conjugate to the discontinuity in the sample probed by the system. Using this approach, a novel expression for the OCT signal is derived, which only depends uopon the intensity distribution of the light from the sample and the reference beam. To adequately estimate the intensity distributions, a novel method of modeling a focused Gaussian beam using Monte Carlo simulation is developed. This method is then combined with the derived expression for the OCT signal into a new Monte Carlo model of the OCT signal. The OCT signal from a scattering medium are obtained for several beam and sample geometries using the new Monte Carlo model, and when comparing to results of an analytical model based on the extended Huygens-Fresnel principle excellent agreement is obtained. With the greater flexibility of Monte Carlo simulations, this new model is demonstrated to be excellent as a numerical phantom, i.e., as a substitute for otherwise difficult experiments. Finally, a new model of the signal-to-noise ratio (SNR) of an OCT system with optical amplification of the light reflected from the sample is derived, and discussed. Using this model, the conclusion is reached that an optical amplifier will enable substantial improvement of the SNR for OCT systems dominated by receiver noise. Receiver noise is of practical concern because of the (often) limited irradiance of suitable optical sources for OCT, and high insertion loss of the fast optical delay-line scanners that are necessary for fast imaging. Correspondingly, an increase in penetration depth of about 30-100% is demonstrated for OCT imaging in skin based on results obtained with the new Monte Carlo model. Accordingly, the two new models are demonstrated as valuable tools for future development and optimization of OCT systems to extend the applications of the system in biomedicine.
机译:提出了一种先进的新型蒙特卡罗模拟模型,用于光学相干断层扫描(OCT)系统的检测过程。首次从分析上证明,非相干蒙特卡罗方法可用于对OCT系统的外差检测过程进行建模的适用性是有充分根据的。这是通过计算参考光束和样品光束在与系统探测的样品中的不连续性共轭的平面中的外差混合而获得的。使用这种方法,可以得出一种新颖的OCT信号表达式,该表达式仅取决于样品和参考光束的光强度分布。为了充分估计强度分布,开发了一种使用蒙特卡洛模拟对聚焦高斯光束建模的新方法。然后将该方法与OCT信号的导出表达式结合在一起,将其转换为OCT信号的新蒙特卡洛模型。使用新的蒙特卡洛模型,对于几种光束和样品几何形状,可以从散射介质获得OCT信号,并且与基于扩展的惠更斯-菲涅耳原理的分析模型的结果进行比较时,可以得出很好的一致性。蒙特卡罗模拟具有更大的灵活性,这种新模型被证明是出色的数字幻象,即可以替代其他困难的实验。最后,推导并讨论了OCT系统的信噪比(SNR)的新模型,该模型对样品反射的光进行光学放大。使用该模型,得出的结论是,光放大器将能够大幅提高以接收器噪声为主的OCT系统的SNR。接收器噪声是实际关注的问题,因为(通常)用于OCT的合适光源的辐照度有限,并且快速成像所需的快速光学延迟线扫描仪的插入损耗很高。相应地,基于用新的蒙特卡洛模型获得的结果,OCT成像在皮肤中的渗透深度增加了约30-100%。因此,这两个新模型被证明是用于OCT系统的未来开发和优化以扩展该系统在生物医学中的应用的有价值的工具。

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