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Multivariate calibration with slowly responding reference measurements

机译:具有缓慢响应的参考测量的多元校准

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The application of multivariate calibration models, specifically those using partial least squares (PLS) regression to relate near infrared (NIR) spectral data to analyte concentrations, relies upon accurate knowledge of the concentrations during model building. In a physiologic system, such as human skeletal muscle, these concentrations can be measured using invasive sensors which may have material properties that limit diffusion of analytes to the sensing chemistry, thus taking several minutes to fully respond to an analyte change which actually occurs in seconds. This results in a poor time correlation between reference measurements of analyte concentrations and spectral data, which in turn degrades the performance of the PLS model. We mathematically modeled the response of an invasive sensor measurement and used this response to develop a filter to time-match the raw NIR spectra before building the PLS model. PLS models for interstitial pH in exercising human flexor digitorum profundus muscle were developed with and without the time-matching filter. In a single exercising subject, root mean square error of prediction (RMSEP) = 0.05 pH units and r~2 = 0.39 without filtering, but improved to RMSEP = 0.02 pH units with r~2=0.91 after the time-matching filter was implemented. The time-matching filter was shown to be effective in improving model performance when spectral response is more rapid than the invasive sensor reference measurement.
机译:多元校准模型的应用,特别是那些使用偏最小二乘(PLS)回归将近红外(NIR)光谱数据与分析物浓度相关联的模型,需要在模型构建过程中准确了解浓度。在诸如人体骨骼肌之类的生理系统中,可以使用侵入式传感器来测量这些浓度,侵入式传感器可能具有限制分析物向传感化学物质扩散的材料特性,因此需要几分钟才能完全响应实际上在几秒钟内发生的分析物变化。这导致分析物浓度的参考测量值与光谱数据之间的时间相关性较差,从而降低了PLS模型的性能。我们在数学上对侵入式传感器测量的响应建模,并使用此响应来开发滤波器,以在建立PLS模型之前对原始NIR光谱进行时间匹配。在有和没有时间匹配滤波器的情况下,开发了用于在行使人屈指深肌锻炼中的间质pH的PLS模型。在单个运动受试者中,预测的均方根误差(RMSEP)= 0.05 pH单位,r〜2 = 0.39,未过滤,但在实施时间匹配过滤后,rRMS = 0.02单位,RMSEP = 0.02 pH单位,r〜2 = 0.91 。当光谱响应比有创传感器参考测量更快时,时间匹配滤波器被证明可以有效地改善模型性能。

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