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Theoretical investigation of near-infrared light path in multi-layer brain models for three DOT systems

机译:三种DOT系统多层大脑模型中近红外光路的理论研究

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The optical path of near-infrared light propagation in multi-layer brain models was investigated by theoretical and computational analysis for three DOT systems. The brain models are comprised a three-layer slab or three-layer semi-sphere intersected by a same size three-layer slab. In each model, the light penetration depths and the shapes of light paths for different source and detector pairs were analyzed with a numerical diffusion forward model based on the finite element method. The simulation results revealed that the light path was affected by source and detector distance, and varied in the different brain models. Specifically, the effective penetration depths were different for the different DOT systems and deeper penetration depth was observed using a fast time-domain DOT system.
机译:通过对三种DOT系统的理论和计算分析,研究了多层大脑模型中近红外光传播的光路。脑模型由三层平板或三层半球与相同大小的三层平板相交组成。在每个模型中,使用基于有限元方法的数值扩散正向模型分析了不同光源和探测器对的光穿透深度和光路形状。仿真结果表明,光路受光源和探测器距离的影响,并且在不同的大脑模型中会有所不同。具体而言,对于不同的DOT系统,有效的穿透深度是不同的,并且使用快速时域DOT系统可以观察到更深的穿透深度。

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