Depth mode characteristics of light propagation in real turbid media and media with two-dimensional scattering

IF 1.4 3区 物理与天体物理 Q3 OPTICS Journal of The Optical Society of America A-optics Image Science and Vision Pub Date : 1995-12-01 DOI:10.1364/JOSAA.12.002726
M. Alexandrov, V. S. Remizovich
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引用次数: 6

Abstract

A study of the depth mode of light propagation in turbid media with slowly decreasing scattering phase function χ(γ) (when the scattering probability decreases more slowly than γ−4 as the single scattering angle γ is enhanced) is performed outside the framework of the Fokker–Planck approximation. We propose and realize a regular procedure for optimum determination of the parameters of a postulated approximate angular spectrum in the depth mode. The dispersion in the depth mode and the depth damping coefficient are found analytically. The obtained results are in good agreement with the results of numerical calculations and transform, in the limit, into known results of the diffusion approximation. The calculations were also performed in a two-dimensional scattering medium, for which the transport equation written in the quasi-diffusion approximation was recently solved exactly for the particular case of the Henyey–Greenstein phase function. In this case very good coincidence of our approximate results with the exact solution is shown.
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真实浑浊介质和二维散射介质中光传播的深度模式特性
在Fokker-Planck近似的框架外,研究了散射相函数χ(γ)缓慢减小的混浊介质中光传播的深度模式(当散射概率随着单散射角γ的增强而比γ−4下降得更慢时)。我们提出并实现了一种确定深度模式下假设的近似角谱参数的规则程序。分析了深度模式下的色散和深度阻尼系数。所得结果与数值计算结果吻合较好,并在极限下转化为已知的扩散近似结果。在二维散射介质中也进行了计算,其中准扩散近似下的输运方程最近被精确地求解为特定情况下的Henyey-Greenstein相函数。在这种情况下,我们的近似结果与精确解非常吻合。
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来源期刊
CiteScore
3.40
自引率
10.50%
发文量
417
审稿时长
3 months
期刊介绍: The Journal of the Optical Society of America A (JOSA A) is devoted to developments in any field of classical optics, image science, and vision. JOSA A includes original peer-reviewed papers on such topics as: * Atmospheric optics * Clinical vision * Coherence and Statistical Optics * Color * Diffraction and gratings * Image processing * Machine vision * Physiological optics * Polarization * Scattering * Signal processing * Thin films * Visual optics Also: j opt soc am a.
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