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Simulation-based optimization of a near-infrared spectroscopic subcutaneous fat thickness measuring device

机译:基于仿真的近红外光谱皮下脂肪厚度测量装置的优化

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Using Monte Carlo simulations we optimized the wavelength and source-detector distance (SDD) of a reflectance-based spectroscopic device used for measuring subcutaneous fat thickness. As the optical properties of muscle, fat and dermis are wavelength dependent, it is necessary to choose a wavelength that is highly sensitive to fat but insensitive to water and melanin. The SDD is important since it determines average photon penetration depth. With a tissue optics plug-in for the GEANT4/GAMOS system and published ex vivo tissue optical properties we were able to predict the behavior of different device configurations when used with varying thicknesses of fat, melanin concentrations or hydration levels. Our results indicate that the ideal wavelengths for fat measurement are 630–650 nm with an SDD of 2.6–29 cm. We also examined the potential of using near infrared (NIR) spectroscopy to determine tissue hydration levels, but concluded that this wavelength range was not ideal.
机译:使用蒙特卡洛模拟,我们优化了用于测量皮下脂肪厚度的基于反射率的光谱仪的波长和源探测器距离(SDD)。由于肌肉,脂肪和真皮的光学特性取决于波长,因此有必要选择对脂肪高度敏感但对水和黑色素不敏感的波长。 SDD很重要,因为它决定了平均光子穿透深度。借助GEANT4 / GAMOS系统的组织光学插件和已发表的离体组织光学特性,当我们使用不同厚度的脂肪,黑色素浓度或水合水平时,我们能够预测不同设备配置的行为。我们的结果表明,用于脂肪测量的理想波长为630–650 nm,SDD为2.6–29 cm。我们还检查了使用近红外(NIR)光谱确定组织水合水平的潜力,但得出的结论是该波长范围不理想。

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