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Recovery of layered tissue optical properties from spatial frequency-domain spectroscopy and a deterministic radiative transport solver

机译:从空间频域光谱学和确定性辐射传输求解器恢复分层组织的光学特性

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摘要

We present a method to recover absorption and reduced scattering spectra for each layer of a two-layer turbid media from spatial frequency-domain spectroscopy data. We focus on systems in which the thickness of the top layer is less than the transport mean free path . We utilize an analytic forward solver, based upon the ’th-order spherical harmonic expansion with Fourier decomposition method in conjunction with a multistage inverse solver. We test our method with data obtained using spatial frequency-domain spectroscopy with 32 evenly spaced wavelengths within to 1000 nm on six-layered tissue phantoms with distinct optical properties. We demonstrate that this approach can recover absorption and reduced scattering coefficient spectra for both layers with accuracy comparable with current Monte Carlo methods but with lower computational cost and potential flexibility to easily handle variations in parameters such as the scattering phase function or material refractive index. To our knowledge, this approach utilizes the most accurate deterministic forward solver used in such problems and can successfully recover properties from a two-layer media with superficial layer thicknesses.
机译:我们提出了一种从空间频域光谱数据恢复两层混浊介质各层吸收和减少散射光谱的方法。我们关注的是顶层厚度小于运输平均自由程的系统。我们利用基于傅立叶分解方法的’阶球谐展开与多级逆求解器结合使用的解析前向求解器。我们使用空间频域光谱法在六层具有不同光学特性的六层组织体模上使用32个均匀间隔的波长(1000纳米以内)获得的数据测试我们的方法。我们证明了这种方法可以恢复两层的吸收并降低了散射系数谱,其精度与当前的蒙特卡洛方法相当,但具有较低的计算成本和潜在的灵活性,可以轻松处理诸如散射相位函数或材料折射率之类的参数变化。据我们所知,这种方法利用了在此类问题中使用的最精确的确定性正向求解器,并且可以成功地从具有表层厚度的两层介质中恢复特性。

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