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Determination of glucose concentration from near-infrared spectra using principle component regression coupled with digital bandpass filter

机译:主成分回归结合数字带通滤波器从近红外光谱中测定葡萄糖浓度

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In this paper, we have investigated the use of principal component regression (PCR) combined with time domain filtering to predict the glucose concentration from NIR spectra of mixtures composed from glucose, urea and triacetin. The whole experiments were carried out in a non-controlled environment or sample conditions to show that the PCR coupled with digital bandpass filter can suppress effectively most of the experimental variation. The filters were implemented in the time domain as Chebyshev filter for different orders (1st, 2nd and 3rd) and in the frequency domain as a Gaussian bandpass filter. The response surface method was used to optimize the filter parameters and the number of factors. The use of PCR algorithm coupled with the digital filters has decreased the standard error of prediction (SEP) from 40 mg/dL for unfiltered spectra to 19.1 mg/dL for Gaussian filtering method and 15.63 mg/dL for a well-designed Chebyshev filter.
机译:在本文中,我们研究了使用主成分回归(PCR)与时域滤波相结合,以预测由葡萄糖,尿素和三乙酰脲组成的混合物的NIR光谱的葡萄糖浓度。整个实验在非受控环境或样本条件下进行,以表明与数字带通滤波器耦合的PCR可以有效地抑制大部分实验变化。滤波器在时域中实现为Chebyshev滤波器,用于不同的订单(第1,第2和第3个)和频域中作为高斯带通滤波器。响应表面方法用于优化滤波器参数和因素的数量。使用PCR算法与数字滤波器耦合的PCR算法从40mg / dL的预测(SEP)的标准误差减少到未过滤的光谱到19.1mg / dL,用于高斯滤波方法,为良好设计的Chebyshev滤波器提供15.63 mg / dl。

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