多层混浊介质中近红外光谱研究中光子飞行时间分布的分析灵敏度因子。

IF 3 3区 医学 Q2 BIOCHEMICAL RESEARCH METHODS
Journal of Biomedical Optics Pub Date : 2025-01-01 Epub Date: 2025-01-22 DOI:10.1117/1.JBO.30.1.015002
Héctor A García, Demián A Vera, Nicolás A Carbone, María V Waks-Serra, Juan A Pomarico
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引用次数: 0

摘要

意义:在过去的几年里,时间分辨近红外光谱(TD-NIRS)作为一种利用商业设备研究组织光谱的工具,获得了越来越多的兴趣。虽然它比连续波提供了更多的信息,但实时解释测量原始数据的精确模型仍然缺乏。目的:介绍一种可以实时集成到TD-NIRS数据处理软件和工具包中的分析模型。这是基于在光学浑浊和半无限多层介质中测量的光子的飞行时间分布的所谓灵敏度因子(sf),例如人的头部。方法:我们导出了将每层吸收系数的变化与在反射构型中获得的DTOFs的统计矩的变化联系起来的SFs的解析表达式。后来,蒙特卡罗(MC)模拟的结果验证了这一点,这是生物组织中光子迁移的金标准。接下来,我们设计了几个模拟实验,描述了在五层介质的特殊情况下,如何使用分析sff来检索吸收变化。结果:在2层、5层和10层介质中,理论和模拟的比较显示出非常好的一致性(在大多数情况下加权平均绝对百分比误差低于10%)。此外,我们的推导可以在几毫秒内运行(除了10层介质中方差SF的极端情况),这意味着与MC模拟相比,加速高达10,000倍,具有更好的空间分辨率,并且没有典型的随机噪声。结论:总之,我们的方法达到了与MC模拟相似的性能,但速度快了几个数量级,这使得它非常适合在实时应用中实现。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Analytical sensitivity factors from distributions of time of flight of photons for near-infrared spectroscopy studies in multilayered turbid media.https://pubmed.ncbi.nlm.nih.gov/39845728/

Significance: In the last years, time-resolved near-infrared spectroscopy (TD-NIRS) has gained increasing interest as a tool for studying tissue spectroscopy with commercial devices. Although it provides much more information than its continuous wave counterpart, accurate models interpreting the measured raw data in real time are still lacking.

Aim: We introduce an analytical model that can be integrated and used in TD-NIRS data processing software and toolkits in real time. This is based on the so-called sensitivity factors (SFs) of the distributions of time of flight (DTOFs) of photons measured in optically turbid and semi-infinite multilayered media, such as the human head.

Approach: We derived analytical expressions for the SFs that link changes in the absorption coefficient of each layer to changes in the statistical moments of DTOFs acquired in a reflectance configuration. This was later validated with results from Monte Carlo (MC) simulations, which stand as the gold standard in terms of photon migration in biological tissue. Next, we designed a couple of simulated experiments depicting how the analytical SFs can be used to retrieve absorption changes in the particular case of a five-layered medium.

Results: Comparison between theory and simulations in 2-, 5-, and 10-layered media showed very good agreement (in most cases with weighted mean absolute percentage errors below 10%). Moreover, our derivations could be run in a few milliseconds (except for the extreme case of the variance SF in the 10-layered medium), which means a speedup of up to 10,000× with respect to MC simulations, with a much better spatial resolution and without their typically associated stochastic noise.

Conclusions: In summary, our method achieves performances similar to those given by MC simulations, but orders of magnitude faster, which makes it very suitable for its implementation in real-time applications.

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来源期刊
CiteScore
6.40
自引率
5.70%
发文量
263
审稿时长
2 months
期刊介绍: The Journal of Biomedical Optics publishes peer-reviewed papers on the use of modern optical technology for improved health care and biomedical research.
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