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首页> 外文期刊>IEEE Transactions on Biomedical Engineering >Use of Genetic Algorithms to Optimize Fiber Optic Probe Design for the Extraction of Tissue Optical Properties
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Use of Genetic Algorithms to Optimize Fiber Optic Probe Design for the Extraction of Tissue Optical Properties

机译:利用遗传算法优化用于组织光学特性提取的光纤探针设计

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摘要

This paper outlines a framework by which the optimal illumination/collection geometry can be identified for a particular biomedical application. In this paper, this framework was used to identify the optimal probe geometry for the accurate determination of tissue optical properties representative of that in the ultraviolet-visible (UV-VIS) spectral range. An optimal probe geometry was identified which consisted of a single illumination and two collection fibers, one of which is insensitive to changes in scattering properties, and the other is insensitive to changes in the attenuation coefficient. Using this probe geometry in conjunction with a neural network algorithm, the optical properties could be extracted with root-mean-square errors of 0.30 ${rm cm}^{-1}$ for the reduced scattering coefficient (tested range of 3–40 ${rm cm}^{-1}$), and 0.41 ${rm cm}^{-1}$ for the absorption coefficient (tested range of 0–80 ${rm cm}^{-1}$ ).
机译:本文概述了一个框架,通过该框架可以为特定的生物医学应用确定最佳的照明/收集几何形状。在本文中,此框架用于识别最佳探针几何形状,以准确确定代表组织在紫外可见(UV-VIS)光谱范围内的光学特性。确定了一种最佳的探头几何形状,它由一个照明和两个收集光纤组成,其中一根对散射特性的变化不敏感,而另一根对衰减系数的变化不敏感。结合使用这种探针几何形状和神经网络算法,对于降低的散射系数(测试范围为3–40),光学特性可以提取为0.30 $ {rm cm} ^ {-1} $的均方根误差$ {rm cm} ^ {-1} $)和0.41 $ {rm cm} ^ {-1} $的吸收系数(测试范围0–80 $ {rm cm} ^ {-1} $)。

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