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Instrumental optical and geometrical parameters affecting time-gated diffuse optical measurements: a systematic study

机译:影响时间门控漫射光学测量的仪器光学和几何参数:系统研究

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摘要

In time-domain diffuse optics the sensitivity to localized absorption changes buried inside a diffusive medium depends strongly on the interplay between instrumental, optical and geometrical parameters, which can hinder the theoretical advantages of novel measurement strategies like the short source-detector distance approach. Here, we present a study based on experimental measurements and simulations to comprehensively evaluate the effect of all different parameters. Results are evaluated exploiting standardized figures of merit, like contrast and contrast-to-noise ratio, to quantify the system sensitivity to deep localized absorption perturbations. Key findings show that the most critical hardware parameter is the memory effect which ultimately limits the dynamic range. Further, a choice of the source-detector distance around 10 mm seems to be a good compromise to compensate non-idealities in practical systems still preserving the advantages of short distances. This work provides both indications for users about the best measurement conditions and strategies, and for technology developers to identify the most crucial hardware features in view of next generation diffuse optics systems.
机译:在时域漫射光学中,对弥散介质内部埋藏的局部吸收变化的敏感性在很大程度上取决于仪器,光学和几何参数之间的相互作用,这可能会阻碍诸如短源-探测器距离方法之类的新型测量策略的理论优势。在这里,我们提出了一项基于实验测量和模拟的研究,以全面评估所有不同参数的影响。利用标准化的品质因数(如对比度和对比度噪声比)来评估结果,以量化系统对深度局部吸收扰动的灵敏度。主要发现表明,最关键的硬件参数是内存效应,最终会限制动态范围。此外,选择源-检测器距离在10 mm左右似乎是一个不错的折衷方案,以补偿仍保留短距离优点的实际系统中的非理想性。这项工作既可以为用户提供有关最佳测量条件和策略的指示,也可以为技术开发人员提供基于下一代漫射光学系统确定最关键的硬件功能的指示。

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