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Modelling of light distribution in the brain for topographical imaging

机译:地形成像大脑光分布的建模

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Multi-channel optical imaging system can obtain a topographical distribution of the activated region in the brain cortex by a simple mapping algorithm. Near-infrared light is strongly scattered in the head and the volume of tissue that contributes to the change in the optical signal detected with source-detector pair on the head surface is broadly distributed in the brain. This scattering effect results in poor resolution and contrast in the topographic image of the brain activity. We report theoretical investigations on the spatial resolution of the topographic imaging of the brain activity. The head model for the theoretical study consists of five layers that imitate the scalp, skull, subarachnoid space, grey matter and white matter. The light propagation in the head model is predicted by Monte Carlo simulation to obtain the spatial sensitivity profile for a source-detector pair. The source-detector pairs are one-dimensionally arranged on the surface of the model and the distance between the adjoining source-detector pairs are varied from 4 mm to 32 mm. The change in detected intensity caused by the absorption change is obtained by Monte Carlo simulation. The position of absorption change is reconstructed by the conventional mapping algorithm and the reconstruction algorithm using the spatial sensitivity profiles. We discuss the effective interval between the source-detector pairs and the choice of reconstruction algorithms to improve the topographic images of brain activity.
机译:多通道光学成像系统可以通过简单的映射算法在脑皮层中获得激活区域的地形分布。近红外光在头部散射的头部和组织的体积中,有助于在头部上的源极检测器对中检测到的光学信号的变化的组织被广泛地分布在大脑中。这种散射效应导致脑活动的地形图像中的分辨率差和对比。我们报告了对大脑活动地形成像的空间分辨率的理论调查。理论研究的头部模型由五层组成,模仿头皮,头骨,蛛网膜下腔,灰质和白质。通过蒙特卡罗模拟预测头部模型中的光传播,以获得源检测器对的空间灵敏度曲线。源检测器对在模型的表面上一维设置,并且相邻的源检测器对之间的距离从4mm到32mm变化。通过Monte Carlo模拟获得了吸收变化引起的检测强度的变化。使用空间敏感性简档的传统映射算法和重建算法重建吸收变化的位置。我们讨论源检测器对与重建算法之间的有效间隔,以改善大脑活动的地形图像。

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