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Monte Carlo modeling of optical coherence tomography imaging through turbid media

机译:通过混浊介质进行光学相干层析成像的蒙特卡洛建模

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摘要

We combine a Monte Carlo technique with Mie theory to develop a method for simulating optical coherence tomography (OCT) imaging through homogeneous turbid media. In our model the propagating light is represented by a plane wavelet; its line propagation direction and path length in the turbid medium are determined by the Monte Carlo technique, and the process of scattering by small particles is computed according to Mie theory. Incorporated into the model is the numerical phase function obtained with Mie theory. The effect of phase function on simulation is also illustrated. Based on this improved Monte Carlo technique, OCT imaging is directly simulated and phase information is recorded. Speckles, resolution, and coherence gating are discussed. The simulation results show that axial and transversal resolutions decrease as probing depth increases. Adapting a light source with a low coherence improves the resolution. The selection of an appropriate coherence length involves a trade-off between intensity and resolution.
机译:我们将蒙特卡洛技术与Mie理论相结合,以开发一种通过均质浑浊介质模拟光学相干断层扫描(OCT)成像的方法。在我们的模型中,传播光由平面小波表示;利用蒙特卡罗技术确定其在混浊介质中的线传播方向和路径长度,并根据米氏理论计算小颗粒的散射过程。通过Mie理论获得的数值相位函数被合并到模型中。还说明了相位函数对仿真的影响。基于这种改进的蒙特卡洛技术,可以直接模拟OCT成像并记录相位信息。讨论了斑点,分辨率和相干门控。仿真结果表明,轴向和横向分辨率随探测深度的增加而减小。适应低相干性的光源可以提高分辨率。选择合适的相干长度需要在强度和分辨率之间进行权衡。

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