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Probabilistic PCR based near-infrared modeling with temperature compensation

机译:基于概率的PCR基于温度补偿的近红外模型

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摘要

Considering that temperature makes a difference to near-infrared spectrum, a probabilistic principle component regression (PPCR) based temperature compensation modeling strategy is investigated under the framework of maximum likelihood estimation. First, a PPCR model is established to extract the dynamic information of the spectra at designated experimental temperature. Then, by decomposing the temperature-induced spectral variation into the shift in horizontal direction and the drift in vertical direction, the quantitative expression between spectral variation and temperature change is derived. Based on the decomposition, the estimation of new latent variables that vary with temperature is derived according to the spectral data set collected at certain temperatures. Finally, for performance evaluation, applications of the theoretical results to bisphenol-A and gasoline-ethanol mixture illustrate the effectiveness and advantages of the developed techniques.
机译:考虑到温度对近红外光谱有所不同,在最大似然估计的框架下研究了概率的原理成分回归(PPCR)的温度补偿建模策略。 首先,建立PPCR模型以提取指定的实验温度的光谱的动态信息。 然后,通过将温度诱导的光谱变化分解成水平方向的偏移和垂直方向上的漂移,衍生光谱变化和温度变化之间的定量表达。 基于分解,根据在某些温度收集的光谱数据集来估计随温度而变化的新潜变量。 最后,对于性能评估,理论结果对双酚-A和汽油 - 乙醇混合物的应用说明了发育技术的有效性和优点。

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