利用蒙特卡罗模拟,比较斑点对比光学光谱仪和漫反射相关光谱仪在现实头部几何结构中用于脑血流监测的性能潜力。

IF 4.8 2区 医学 Q1 NEUROSCIENCES Neurophotonics Pub Date : 2024-01-01 Epub Date: 2024-01-27 DOI:10.1117/1.NPh.11.1.015004
Mitchell B Robinson, Tom Y Cheng, Marco Renna, Melissa M Wu, Byungchan Kim, Xiaojun Cheng, David A Boas, Maria Angela Franceschini, Stefan A Carp
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引用次数: 0

摘要

意义重大:作为重症监护和脑功能成像中脑灌注监测的研究工具,基于漫反射光学技术的无创脑部血流测量受到越来越多的关注。弥散相关光谱(DCS)和斑点对比光学光谱(SCOS)是测量波动强度信号互补方面的两种技术,DCS 量化信号的时间波动,SCOS 量化斑点模式的空间模糊。目的:我们系统地评估了 DCS 和 SCOS 在测量脑血流方面的性能:方法:对磁共振成像头部模型中的动态光散射进行蒙特卡罗模拟。计算了 DCS 和 SCOS 对脑血流变化的灵敏度、测量血流的变异系数以及测量结果与脑灌注信号的对比噪声比。通过改变两种方法之间数据采集的互补性,我们研究了不同测量策略的性能优势,包括改变每个光学探测器的模式数、斑点测量的积分时间/拟合时间以及激光源传输策略:结果:通过对这些指标与具有真实噪声特性的模拟探测器进行比较,我们确定了优化这些技术的几项指导原则,并报告了两者在一系列测量特性和组织几何形状下的性能比较。我们发现,在这里模拟的理想情况下,SCOS 在脑血流信号的对比度-噪声比方面优于 DCS,但我们注意到,SCOS 需要仔细的实验校准,以确保准确测量脑血流:我们为评估 DCS 和 SCOS 系统在脑血流测量中的应用提供了设计原则。
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Comparing the performance potential of speckle contrast optical spectroscopy and diffuse correlation spectroscopy for cerebral blood flow monitoring using Monte Carlo simulations in realistic head geometries.

Significance: The non-invasive measurement of cerebral blood flow based on diffuse optical techniques has seen increased interest as a research tool for cerebral perfusion monitoring in critical care and functional brain imaging. Diffuse correlation spectroscopy (DCS) and speckle contrast optical spectroscopy (SCOS) are two such techniques that measure complementary aspects of the fluctuating intensity signal, with DCS quantifying the temporal fluctuations of the signal and SCOS quantifying the spatial blurring of a speckle pattern. With the increasing interest in the use of these techniques, a thorough comparison would inform new adopters of the benefits of each technique.

Aim: We systematically evaluate the performance of DCS and SCOS for the measurement of cerebral blood flow.

Approach: Monte Carlo simulations of dynamic light scattering in an MRI-derived head model were performed. For both DCS and SCOS, estimates of sensitivity to cerebral blood flow changes, coefficient of variation of the measured blood flow, and the contrast-to-noise ratio of the measurement to the cerebral perfusion signal were calculated. By varying complementary aspects of data collection between the two methods, we investigated the performance benefits of different measurement strategies, including altering the number of modes per optical detector, the integration time/fitting time of the speckle measurement, and the laser source delivery strategy.

Results: Through comparison across these metrics with simulated detectors having realistic noise properties, we determine several guiding principles for the optimization of these techniques and report the performance comparison between the two over a range of measurement properties and tissue geometries. We find that SCOS outperforms DCS in terms of contrast-to-noise ratio for the cerebral blood flow signal in the ideal case simulated here but note that SCOS requires careful experimental calibrations to ensure accurate measurements of cerebral blood flow.

Conclusion: We provide design principles by which to evaluate the development of DCS and SCOS systems for their use in the measurement of cerebral blood flow.

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来源期刊
Neurophotonics
Neurophotonics Neuroscience-Neuroscience (miscellaneous)
CiteScore
7.20
自引率
11.30%
发文量
114
审稿时长
21 weeks
期刊介绍: At the interface of optics and neuroscience, Neurophotonics is a peer-reviewed journal that covers advances in optical technology applicable to study of the brain and their impact on the basic and clinical neuroscience applications.
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