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散射相位函数和偏振对漫散射和亚漫散射空间频域成像准确性的影响。

Impact of scattering phase function and polarization on the accuracy of diffuse and sub-diffuse spatial frequency domain imaging.

机构信息

Vanderbilt University, Department of Biomedical Engineering, Nashville, Tennessee, United States.

Vanderbilt University, Biophotonics Center, Nashville, Tennessee, United States.

出版信息

J Biomed Opt. 2024 Sep;29(9):095001. doi: 10.1117/1.JBO.29.9.095001. Epub 2024 Sep 6.

Abstract

SIGNIFICANCE

Although spatial frequency domain imaging (SFDI) has been well characterized under diffuse optical conditions, tissue measurements made outside the diffuse regime can provide new diagnostic information. Before such measurements can become clinically relevant, however, the behavior of sub-diffuse SFDI and its effect on the accuracy of derived tissue parameters must be assessed.

AIM

We aim to characterize the impact that both the assumed scattering phase function (SPF) and the polarization state of the illumination light source have on the accuracy of SFDI-derived optical properties when operating under diffuse or sub-diffuse conditions, respectively.

APPROACH

Through the use of a set of well-characterized optical phantoms, SFDI accuracy was assessed at four wavelengths (395, 545, 625, and 850 nm) and two different spatial frequencies (0.3 and ), which provided a broad range of diffuse and sub-diffuse conditions, using three different SPFs. To determine the effects of polarization, the SFDI accuracy was assessed using both unpolarized and cross-polarized illumination.

RESULTS

It was found that the assumed SPF has a direct and significant impact on the accuracy of the SFDI-derived optical properties, with the best choice of SPF being dictated by the polarization state. As unpolarized SFDI retains the sub-diffuse portion of the signal, optical properties were found to be more accurate when using the full SPF that includes forward and backscattering components. By contrast, cross-polarized SFDI yielded accurate optical properties when using a forward-scattering SPF, matching the behavior of cross-polarization to attenuate the immediate backscattering of sub-diffuse reflectance. Using the correct pairings of SPF and polarization enabled using a reflectance standard, instead of a more subjective phantom, as the reference measurement.

CONCLUSIONS

These results provide the foundation for a more thorough understanding of SFDI and enable new applications of this technology in which sub-diffuse conditions dominate (e.g., ) or high spatial frequencies are required.

摘要

意义

虽然空间域成像(SFDI)在漫射光学条件下已经得到很好的描述,但在漫射区域之外进行的组织测量可以提供新的诊断信息。然而,在这些测量能够具有临床相关性之前,必须评估亚漫射 SFDI 的行为及其对衍生组织参数准确性的影响。

目的

我们旨在分别表征假设的散射相位函数(SPF)和照明光源的偏振状态对 SFDI 衍生光学特性在漫射或亚漫射条件下的准确性的影响。

方法

通过使用一组特征良好的光学模型,在四个波长(395、545、625 和 850nm)和两个不同的空间频率(0.3 和 )下评估了 SFDI 的准确性,这为使用三种不同的 SPF 提供了广泛的漫射和亚漫射条件。为了确定偏振的影响,使用非偏振和交叉偏振照明评估了 SFDI 的准确性。

结果

结果表明,假设的 SPF 对 SFDI 衍生光学特性的准确性有直接且显著的影响,最佳的 SPF 选择取决于偏振状态。由于非偏振 SFDI 保留了信号的亚漫射部分,因此当使用包括前向和后向散射分量的完整 SPF 时,光学特性更为准确。相比之下,当使用前向散射 SPF 时,交叉偏振 SFDI 产生了准确的光学特性,这与交叉偏振的行为相匹配,即衰减亚漫反射的即时后向散射。使用正确的 SPF 和偏振配对,可以使用反射率标准代替更主观的模型作为参考测量。

结论

这些结果为更深入地理解 SFDI 提供了基础,并使该技术能够在亚漫射条件占主导地位(例如, )或需要高空间频率的新应用中得到应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ccb4/11379407/338af1d7475f/JBO-029-095001-g001.jpg

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