Influence of the Signal-To-Noise Ratio on Variance of Chromophore Concentration Quantification in Broadband Near-Infrared Spectroscopy

Nghi Truong, Sadra Shahdadian, Shuyan Kang, Xinlong Wang, H. Liu
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引用次数: 4

Abstract

This study presented a theoretical or analytical approach to quantify how the signal-to-noise ratio (SNR) of a near infrared spectroscopy (NIRS) device influences the accuracy on calculated changes of oxy-hemoglobin (Δ[HbO]), deoxy-hemoglobin (Δ[HHb]), and oxidized cytochrome c oxidase (Δ[oxCCO]). In theory, all NIRS experimental measurements include variations due to thermal or electrical noise, drifts, and disturbance of the device. Since the computed concentration results are highly associated with device-driven variations, in this study, we applied the error propagation analysis to compute the variability or variance of Δ[HbO], Δ[HHb], and Δ[oxCCO] depending on the system SNR. The quantitative expressions of variance or standard deviations of changes in chromophore concentrations were derived based on the error propagation analysis and the modified Beer-Lambert law. In order to compare and confirm the derived variances versus those from the actual measurements, we conducted two sets of broadband NIRS (bbNIRS) measurements using a solid tissue phantom and the human forearm. A Monte Carlo framework was also executed to simulate the bbNIRS data under two physiological conditions for further confirmation of the theoretical analysis. Finally, the confirmed expression for error propagation was utilized for quantitative analyses to guide optimal selections of wavelength ranges and different wavelength combinations for minimal variances of Δ[HbO], Δ[HHb], and Δ[oxCCO] in actual experiments.
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宽带近红外光谱中信噪比对发色团浓度定量变化的影响
本研究提供了一种理论或分析方法来量化近红外光谱(NIRS)设备的信噪比(SNR)如何影响氧合血红蛋白(Δ[HbO])、脱氧血红蛋白(Δ/HHb])和氧化细胞色素c氧化酶(Δ[oxCCO])计算变化的准确性。理论上,所有NIRS实验测量都包括由于设备的热噪声或电噪声、漂移和干扰引起的变化。由于计算的浓度结果与设备驱动的变化高度相关,在本研究中,我们应用误差传播分析来计算Δ[HbO]、Δ[HHb]和Δ[oxCCO]的可变性或方差,具体取决于系统SNR。基于误差传播分析和修正的比尔-朗伯定律,导出了发色团浓度变化的方差或标准差的定量表达式。为了比较和确认导出的方差与实际测量的方差,我们使用固体组织模型和人类前臂进行了两组宽带近红外光谱(bbNIRS)测量。还执行了蒙特卡罗框架来模拟两种生理条件下的bbNIRS数据,以进一步证实理论分析。最后,将已确认的误差传播表达式用于定量分析,以指导在实际实验中为Δ[HbO]、Δ[HHb]和Δ[oxCCO]的最小方差优化选择波长范围和不同的波长组合。
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