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Detectability of Absorption and Reduced Scattering Coefficients in Frequency-Domain Measurements Using a Realistic Head Phantom

机译:使用真实的头部幻像在​​频域测量中吸收和降低的散射系数的可检测性

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摘要

Detection limits of the changes in absorption and reduced scattering coefficients were investigated using a frequency-domain near-infrared system in a realistic head phantom. The results were quantified in terms of the maximum detectable depth for different activation volumes in the range of 0.8–20 microliters. The non-linear relation between the maximum detectable depth and the magnitude of changes in the absorption coefficient conform well with the Born approximation to the diffusion equation. The minimal detectable changes in the reduced scattering coefficient measured in terms of the phase signal were found to be approximately twice as large as that of the absorption coefficient using the AC signal for the same volume and at the same depth. The phase delay, which can be used to quantify the fast neuronal optical response in the human brain, showed a linear dependence on the reciprocal of the reduced scattering coefficient, as predicted by the Rytov approximation.
机译:在现实的人体模型中,使用频域近红外系统研究了吸收变化和散射系数降低的检测极限。根据在0.8–20微升范围内不同激活体积的最大可检测深度对结果进行了量化。最大可检测深度与吸收系数变化幅度之间的非线性关系与扩散方程的伯恩近似吻合得很好。发现在相同的体积和相同的深度下,根据相位信号测得的减小的散射系数的最小可检测变化约为吸收系数的两倍大。相位延迟可用于量化人脑中快速的神经元光学反应,如Rytov近似所预测的那样,线性关系取决于降低的散射系数的倒数。

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