首页> 外文会议>IASTED international conference on biomedical engineering >MATHEMATICAL MODELING AND SIMULATION OF LIGHT PROPAGATION IN MULTI-LAYERS EARLOPE FOR NON-INVASIVE HEMOGLOBIN MEASUREMENTS
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MATHEMATICAL MODELING AND SIMULATION OF LIGHT PROPAGATION IN MULTI-LAYERS EARLOPE FOR NON-INVASIVE HEMOGLOBIN MEASUREMENTS

机译:非侵入性血红蛋白测量的多层光传播的数学建模与仿真

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Many applications in the biomedical research regarding to the non-invasive hemoglobin measurements have been done depending on Lambert-Beers law, but unfortunately they surfer from the inaccuracy because of the poor modeling of the realistic behavior of light propagation in non-homogeneous translucent materials like human tissue. Our work in this paper is split into different steps, starting with building the simulation of earlobe sensor and then building the geometry of the simulated earlobe, after that the light propagation inside the multi-layers earlobe is modeled depending on diffusion equation with boundary conditions that are judiciously chosen. The optical properties of the different layers are experimentally determined. A set of more than fifty boundary value problems regarding to the individual layers in the systole and diastole cases and also the variety with respect to the different given wavelengths are solved numerically using finite element method, which is here briefly explained. After the numerical solution has been obtained a post-processor step starts in order to compute the absorbed, the scattered and the transmitted light intensities in the individual layers with respect to the different wavelengths.
机译:根据兰伯特 - 啤酒法进行了关于非侵入性血红蛋白测量的生物医学研究的许多应用,但不幸的是,他们从不准确的情况下冲浪,因为在像非均匀半透明材料中的光传播的现实行为的良好差人体组织。我们本文的工作分为不同的步骤,从建立耳垂传感器的仿真开始,然后构建模拟耳垂的几何形状之后,在多层耳垂内的光传播根据具有边界条件的扩散方程式建模的明智地选择了。实验确定不同层的光学性质。在数值上使用有限元方法解决了关于收缩池和径向病例中的各个层以及相对于不同给定波长的各种相对于不同给定波长的多个边界值问题,这在此简要说明。在获得数值解决方案之后,后处理器步骤开始以计算各个层中的被吸收,散射和透射光强度相对于不同的波长。

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