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Assessment of tissue optical parameters in a spherical geometry using three different optical spectroscopy methods: comparison based on a theoretical approach

机译:使用三种不同的光谱学方法评估球形几何形状中的组织光学参数:基于理论方法的比较

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摘要

The non-invasive research of information inside the biological tissues can be made by means of continuous, time dependent or frequency modulated light source, emitting in the visible or infrared range. Moreover, the biological structures such as brain, breast or fruits, can be seen as closer to a spherical shape than a slab. This paper focus on the retrieval of tissue optical parameters in a spherical geometry using fittings with an analytical solution adapted for semi infinite geometry. The data were generated using three different optical spetroscopy methods: frequency-resolved, spatially-resolved, and time-resolved. Simulations based on a Monte Carlo code were performed on a homogeneous sphere, with 18 spaced detectors located at the periphery. First, data are examinated in the frequency domain, then, they are treated with optimization algorithms to assess the optical coefficients. The computations show that the spatially resolved measurements are often more robust than those obtained by the frequency-resolved mode. In the temporal domain, errors on the estimates are also exhibited with the fitting by the Fourier transform of a solution based on the semi-infinite geometry. Furthermore, when the analytical solution is modified to take into account the sphere geometry, the retrieval of the coefficients is improved.
机译:生物组织内部信息的非侵入性研究可以通过连续,随时间变化或频率调制的光源进行,该光源在可见光或红外范围内发射。此外,可以看到诸如大脑,乳房或水果等生物结构比平板更接近球形。本文着重于使用适合半无限几何的解析解拟合拟合球形几何中的组织光学参数。数据是使用三种不同的光学镜检方法生成的:频率分辨的,空间分辨的和时间分辨的。基于蒙特卡罗代码的仿真是在均质球体上进行的,外围有18个间隔的检测器。首先,在频域中检查数据,然后使用优化算法对其进行处理以评估光学系数。计算表明,空间分辨的测量结果通常比频率分辨模式获得的结果更鲁棒。在时域中,通过基于半无限几何的解决方案的傅立叶变换进行拟合也显示了估计的误差。此外,当修改解析解以考虑球体几何形状时,系数的检索得到改善。

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