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Finite element simulation of light transfer in turbid media under structured illumination

机译:结构照明下浑浊介质光传输的有限元模拟

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摘要

The spatial-frequency domain (SFD) imaging technique allows us to estimate the optical properties of biological tissues in a wide field of view. The technique is, however, prone to error in measurement because the two crucial assumptions used for deriving the analytical solution to the diffusion approximation cannot be met perfectly in practical applications. This research mainly focused on modeling light transfer in turbid media under the normal incidence of structured illumination using the finite element method ( FEM). Finite element simulations were performed for 50 simulation samples with different combinations of optical absorption and scattering coefficients for varying spatial frequencies, and the results were then compared with the analytical method and Monte Carlo simulation. Relationships between diffuse reflectance and dimensionless absorption and dimensionless scattering coefficients were investigated. The results indicated that the FEM provided reasonable results for diffuse reflectance, compared with the analytical method. Both the FEM and the analytical method overestimated the reflectance for mu(tr)/f(x) values of greater than 2 and underestimated the reflectance for mu(tr)/f(x) values of smaller than 2. Larger values of mu(s)'/mu(a) yielded better diffuse reflectance estimations than did those of smaller than 10. The reflectance increased nonlinearly with the dimensionless scattering, whereas the reflectance decreased linearly with the dimensionless absorption. It was also observed that diffuse reflectance was relatively stable and insensitive to mu(s)' when the dimensionless scattering was larger than 50. Overall results demonstrate that the FEM is effective for modeling light transfer in turbid media and can be used to explore the effects of crucial parameters for the SFD imaging technique. (C) 2017 Optical Society of America
机译:空间频域(SFD)成像技术使我们能够估计在广域的广场中生物组织的光学性质。然而,该技术容易出错测量,因为在实际应用中不能完全满足用于导出分析近似的分析解决方案的两个关键假设。本研究主要集中在使用有限元法(FEM)的结构化照明的正常发生率下浑浊介质模拟光传输。对于50种模拟样本进行有限元模拟,其具有不同的光学吸收和散射系数的模拟样本,用于不同的空间频率,然后将结果与分析方法和蒙特卡罗模拟进行比较。研究了漫反射率和无量纲吸收与无量纲散射系数之间的关系。结果表明,与分析方法相比,FEM提供了弥漫反射率的合理结果。 FEM和分析方法既高估了mu(tr)/ f(x)值大于2的反射率,低估了mu(tr)/ f(x)值小于2.μm的值( S)'/ mu(a)产生比小于10的更好的漫反射率估计。反射率随着无量纲散射而增加,而反射率随着无量纲的吸收而导入线性降低。还观察到,当无量纲散射大于50时,漫反射率对MU(S)'相对稳定并对MU的不敏感。总体结果表明,FEM对于浑浊介质中的光传输是有效的,并且可用于探索效果SFD成像技术的关键参数。 (c)2017年光学学会

著录项

  • 来源
    《Applied optics》 |2017年第21期|共8页
  • 作者

    Hu Dong; Lu Renfu; Ying Yibin;

  • 作者单位

    Zhejiang Univ Coll Biosyst Engn &

    Food Sci 866 Yuhangtang Rd Hangzhou 310058 Zhejiang Peoples R China;

    ARS USDA 524 S Shaw Lane E Lansing MI 48824 USA;

    Zhejiang Univ Coll Biosyst Engn &

    Food Sci 866 Yuhangtang Rd Hangzhou 310058 Zhejiang Peoples R China;

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  • 正文语种 eng
  • 中图分类 应用;
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