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How short is short? Optimum source-detector distance for short-separation channels in functional near-infrared spectroscopy.

机译:短有多短?功能性近红外光谱中短分离通道的最佳源检测器距离。

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摘要

In recent years, it has been demonstrated that using functional near-infrared spectroscopy (fNIRS) channels with short separations to explicitly sample extra-cerebral tissues can provide a significant improvement in the accuracy and reliability of fNIRS measurements. The aim of these short-separation channels is to measure the same superficial hemodynamics observed by standard fNIRS channels while also being insensitive to the brain. We use Monte Carlo simulations of photon transport in anatomically informed multilayer models to determine the optimum source–detector distance for short-separation channels in adult and newborn populations. We present a look-up plot that provides (for an acceptable value of short-separation channel brain sensitivity relative to standard channel brain sensitivity) the optimum short-separation distance. Though values vary across the scalp, when the acceptable ratio of the short-separation channel brain sensitivity to standard channel brain sensitivity is set at 5%, the optimum short-separation distance is 8.4 mm in the typical adult and 2.15 mm in the term-age infant.
机译:近年来,已经证明使用具有短间隔的功能性近红外光谱(fNIRS)通道来明确采样脑外组织可以显着改善fNIRS测量的准确性和可靠性。这些短分离通道的目的是测量通过标准fNIRS通道观察到的相同的浅层血流动力学,同时对大脑不敏感。我们在解剖学上已知的多层模型中使用光子传输的蒙特卡洛模拟来确定成人和新生儿群体中短分离通道的最佳源-检测器距离。我们提供了一个查找图,该图可提供(相对于标准通道脑部敏感性的短间隔通道脑部敏感性的可接受值)最佳最佳短程分离距离。尽管头皮上的值各不相同,但当将短距离通道脑部敏感性与标准通道脑部敏感性的可接受比例设置为5%时,典型成人的最佳短距离距离为8.4毫米,术语-年龄的婴儿。

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