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Robust inference of baseline optical properties of the human head with three-dimensional segmentation from magnetic resonance imaging

机译:通过磁共振成像三维分割可靠地推断人的基线光学特性

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摘要

We model the capability of a small (6-optode) time-resolved diffuse optical tomography (DOT) system to infer baseline absorption and reduced scattering coefficients of the tissues of the human head (scalp, skull, and brain). Our heterogeneous three-dimensional diffusion forward model uses tissue geometry from segmented magnetic resonance (MR) data. Handling the inverse problem by use of Bayesian inference and introducing a realistic noise model, we predict coefficient error bars in terms of detected photon number and assumed model error. We demonstrate the large improvement that a MR-segmented model can provide: 2-10% error in brain coefficients (for 2 x 10(6) photons, 5% model error). We sample from the exact posterior and show robustness to numerical model error. This opens up the possibility of simultaneous DOT and MR for quantitative cortically constrained functional neuroimaging. (C) 2003 Optical Society of America. [References: 74]
机译:我们对小型(6-光电二极管)时间分辨扩散光学层析成像(DOT)系统的功能进行建模,以推断基线吸收和人头组织(头皮,头骨和大脑)的散射系数降低。我们的异质三维扩散正向模型使用来自分段磁共振(MR)数据的组织几何形状。通过使用贝叶斯推断处理反问题并引入现实的噪声模型,我们根据检测到的光子数和假定的模型误差来预测系数误差线。我们证明了MR细分模型可以提供的巨大改进:2-10%的脑系数误差(对于2 x 10(6)个光子,5%的模型误差)。我们从精确的后验采样,并显示出对数值模型误差的鲁棒性。这打开了同时进行DOT和MR用于定量皮质约束功能神经成像的可能性。 (C)2003年美国眼镜学会。 [参考:74]

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