论文标题

扩散波光谱:对时间采样和斑点集合方法的统一处理

Diffusing wave spectroscopy: a unified treatment on temporal sampling and speckle ensemble methods

论文作者

Xu, Jian, Jahromi, Ali K., Yang, Changhuei

论文摘要

扩散波光谱(DWS)是一组众所周知的方法,用于测量动态样品的时间动力学。在DWS中,动态样品散布了入射的相干光,并且时间动力学的信息在散射的光中编码。为了记录和分析光信号,存在两种类型的方法 - 时间抽样方法和斑点集合方法。时间采样方法,包括弥漫性相关光谱(DC),使用一个或多个大型带宽检测器来很好地采样并分析时间光信号以推断样品时间动力学。 Speckle Ensemble方法,包括斑点的可见性光谱(SVS),使用高像素计数摄像头传感器捕获斑点模式并使用斑点对比来推断样品时间动力学。在本文中,我们从理论上和实验上证明了两种方法的去相关时间(τ)测量精度或SNR具有基于独立可观察结果(NIO)和光子通量的数量的统一和相似的基本表达。给定时间测量持续时间,时间采样方法中的NIO受测量持续时间的限制,而斑点集合方法可以通过使用同时采样通道显着缩放NIO来胜过表现。在光学大脑监测的情况下,这些因素的相互作用有利于斑点集合方法。我们说明,这种重要的工程考虑与先前关于血脉冲流量测量值的研究一致,在该研究中,与常规的时间抽样系统相比,以100倍光子通量运行的斑点集合方法可以实现可比的SNR。

Diffusing wave spectroscopy (DWS) is a well-known set of methods to measure the temporal dynamics of dynamic samples. In DWS, dynamic samples scatter the incident coherent light, and the information of the temporal dynamics is encoded in the scattered light. To record and analyze the light signal, there exist two types of methods - temporal sampling methods and speckle ensemble methods. Temporal sampling methods, including diffuse correlation spectroscopy (DCS), use one or multiple large bandwidth detectors to well sample and analyze the temporal light signal to infer the sample temporal dynamics. Speckle ensemble methods, including speckle visibility spectroscopy (SVS), use a high-pixel-count camera sensor to capture a speckle pattern and use the speckle contrast to infer sample temporal dynamics. In this paper, we theoretically and experimentally demonstrate that the decorrelation time (τ) measurement accuracy or SNR of the two types of methods has a unified and similar fundamental expression based on the number of independent observables (NIO) and the photon flux. Given a time measurement duration, NIO in temporal sampling methods is constrained by the measurement duration, while speckle ensemble methods can outperform by using simultaneous sampling channels to scale up NIO significantly. In the case of optical brain monitoring, the interplay of these factors favors speckle ensemble methods. We illustrate that this important engineering consideration is consistent with the previous research on blood pulsatile flow measurements, where a speckle ensemble method operating at 100-fold lower photon flux than a conventional temporal sampling system can achieve a comparable SNR.

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