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Performance of measurands in time-domain optical brain imaging: depth selectivity versus contrast-to-noise ratio

机译:时间域光脑成像中测量的性能:深度选择性与对比度相比

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摘要

Time-domain optical brain imaging techniques introduce a number of different measurands for analyzing absorption changes located deep in the tissue, complicated by superficial absorption changes and noise. We implement a method that allows analysis, quantitative comparison and performance ranking of measurands under various conditions – including different values of reduced scattering coefficient, thickness of the superficial layer, and source-detector separation. Liquid phantom measurements and Monte Carlo simulations were carried out in two-layered geometry to acquire distributions of times of flight of photons and to calculate the total photon count, mean time of flight, variance, photon counts in time windows and ratios of photon counts in different time windows. Quantitative comparison of performance was based on objective metrics: relative contrast, contrast-to-noise ratio (CNR) and depth selectivity. Moreover, the product of CNR and depth selectivity was used to rank the overall performance and to determine the optimal source-detector separation for each measurand. Variance ranks the highest under all considered conditions.
机译:时域光学脑成像技术引入了许多不同的测量,用于分析组织深的吸收变化,通过表面吸收变化和噪音复杂化。我们实施一种允许在各种条件下进行分析,定量比较和绩效测量的测量 - 包括降低散射系数,浅表层的厚度和源检测器分离的不同值。在两层几何形状中进行液体幻影测量和蒙特卡罗模拟,以获取光子飞行时间的分布,并计算总光子计数,平均时间,方差,光子计数时间窗口和光子数量的比例不同的时间窗口。性能的定量比较基于客观度量:相对对比度,对比度 - 噪声比(CNR)和深度选择性。此外,CNR和深度选择性的产品用于对每个测量的最佳源检测器分离进行排序,并确定最佳源检测器分离。方差排名在所有考虑条件下的最高。

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