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Noninvasive measurement of glucose concentration using OCT based on the extended Huygens-Fresnel principle

机译:基于扩展惠更斯-菲涅耳原理的OCT无创测量葡萄糖浓度

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We have developed a noninvasive method to monitor the glucose concentration in tissue phantom used the OCT model which based on the extended Huygens-Fresnel (EHF) principle. The changes of the optical properties such as the rnscattering coefficient μ_s, the anisotropy factor g and the effective scattering coefficient μ_s with the increase of the rnglucose concentration in 10% Intralipid solution were obtained. The results showed that the scattering coefficient μ_s decreased when the glucose concentration increased in the solution, which is accorded with the conclusions by others. Contrarily, the factor g increased when the glucose concentration grown up. As a result, the coefficient μ_s is fall with the increased of the glucose concentration. Comparing with those previously reported in which only got the relative value of scattering coefficient μ_s, the most important advantage of our model is that we got the practical value of μ_s, grnand μ_s. All of these reveal that the OCT EHF model is a promising method which is adapted to detect the glucose concentration in solution, and it will be applied in medical fields someday.
机译:我们已经开发了一种非侵入性方法,使用基于扩展的惠更斯-菲涅耳(EHF)原理的OCT模型来监测组织体模中的葡萄糖浓度。在10%的脂质溶液中,随着葡萄糖浓度的增加,获得了诸如散射系数μs,各向异性系数g和有效散射系数μs等光学性质的变化。结果表明,当溶液中葡萄糖浓度增加时,散射系数μ_s减小,这与其他人的结论是一致的。相反,当葡萄糖浓度增加时,因子g增加。结果,系数μs随着葡萄糖浓度的增加而下降。与先前报道的仅获得散射系数μ_s的相对值的模型相比,我们模型的最重要优点是我们获得了μ_s,grnandμ_s的实际值。所有这些表明,OCT EHF模型是一种有前途的方法,适用于检测溶液中的葡萄糖浓度,并将有一天将其应用于医学领域。

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