基于麦克斯韦方程组的视网膜光散射三维模型

M. Santos, A. Araújo, S. Barbeiro, F. Caramelo, A. Correia, Maria Isabel Marques, M. Morgado, L. Pinto, P. Serranho, Rui Bernardes
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引用次数: 5

摘要

这项工作的目标是建立一个人类视网膜的计算模型,并通过其结构模拟光散射,旨在阐明通过光学相干断层扫描在人类视网膜中获得的数据。目前,光在散射介质中的传播通常用麦克斯韦方程组的Mie解来描述,该解只描述了均匀球体的散射模式,限制了其在更复杂形状散射体中的应用。在这项工作中,我们提出了一种结合低存储龙格-库塔方法的不连续伽辽金方法,作为一种精确有效的方法来数值求解随时间变化的麦克斯韦方程组。在这项工作中,我们报告了通过与Mie的解决方案进行比较来验证所提出的方法,这是进一步阐述电磁波通过人体视网膜传播的数值方案之前的强制性步骤。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Maxwell's equations based 3D model of light scattering in the retina
The goal of this work is to develop a computational model of the human retina and simulate light scattering through its structure aiming to shed light on data obtained by optical coherence tomography in human retinas. Currently, light propagation in scattering media is often described by Mie's solution to Maxwell's equations, which only describes the scattering patterns for homogeneous spheres, thus limiting its application for scatterers of more complex shapes. In this work, we propose a discontinuous Galerkin method combined with a low-storage Runge-Kutta method as an accurate and efficient way to numerically solve the time-dependent Maxwell's equations. In this work, we report on the validation of the proposed methodology by comparison with Mie's solution, a mandatory step before further elaborating the numerical scheme towards the propagation of electromagnetic waves through the human retina.
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