首页> 外文期刊>Modern Physics Letters, B. Condensed Matter Physics, Statistical Physics, Applied Physics >PRETREATMENT METHOD RESEARCH OF NEAR-INFRARED SPECTRA IN BLOOD COMPONENT NON-INVASIVE MEASUREMENT
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PRETREATMENT METHOD RESEARCH OF NEAR-INFRARED SPECTRA IN BLOOD COMPONENT NON-INVASIVE MEASUREMENT

机译:血液成分无创测量中近红外光谱的预处理方法研究

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Blood component non-invasive measurement based on near-infrared (NIR) spectroscopy has become a favorite topic in the field of biomedicine. However, the various noises from instrument measurement and the varying background from absorption of other components (except target analyte) in blood are the main causes, which influenced the prediction accuracy of multivariable calibration. Thinking of backgrounds and noises are always found in high-scale approximation and low-scale detail coefficients. It is possible to identify them by wavelet transform (WT), which has multi-resolution trait and can break spectral signals into different frequency components retaining the same resolution as the original signal. Meanwhile, associating with a criterion of uninformative variable elimination (UVE), it is better to eliminate backgrounds and noises simultaneously and visually. Basic principle and application technology of this pretreatment method, wavelet transform with UVE criterion, were presented in this paper. Three experimental near-infrared spectra data sets, including aqueous solution with four components data sets, plasma data sets, body oral glucose tolerance test (OGTT) data sets, which, including glucose (the target analyte in this study), have all been used in this paper as examples to explain this pretreatment method. The effect of selected wavelength bands in the pretreatment process were discussed, and then the adaptability of different pretreatment method for the uncertainty complex NIR spectra model in blood component non-invasive measurements were also analyzed. This research indicates that the pretreatment methods of wavelet transform with UVE criterion can be used to eliminate varying backgrounds and noises for experimental NIR spectra data directly. Under the spectra area of 1100 to 1700 nm, utilizing this pretreatment method is helpful for us to get a more simple and higher precision multivariable calibration for blood glucose non-invasive measurement. Furthermore, by comparing with some other pretreatment methods, the results imply that the method applied in this study has more adaptability for the complex NIR spectra model. This study gives us another path for improving the blood component non-invasive measurement technique based on NIR spectroscopy.
机译:基于近红外(NIR)光谱的血液成分无创测量已成为生物医学领域的热门话题。但是,仪器测量产生的各种噪声以及血液中其他成分(目标分析物除外)吸收引起的背景变化是主要原因,影响了多变量校准的预测准确性。背景和噪声的思考总是可以在高比例逼近和低比例细节系数中找到。可以通过具有多分辨率特征的小波变换(WT)来识别它们,并且可以将频谱信号分解为不同的频率分量,并保持与原始信号相同的分辨率。同时,结合非信息变量消除(UVE)准则,最好同时在视觉上消除背景和噪声。介绍了这种预处理方法的基本原理和应用技术,即基于UVE准则的小波变换。使用了三个实验性近红外光谱数据集,包括具有四个成分的水溶液,血浆数据集,人体口服葡萄糖耐量测试(OGTT)数据集,其中包括葡萄糖(本研究中的目标分析物)已全部使用。本文以实例说明这种预处理方法。讨论了所选波段在预处理过程中的影响,然后分析了不同预处理方法对不确定度复杂近红外光谱模型在血液成分无创测量中的适应性。研究表明,采用UVE准则的小波变换预处理方法可直接消除实验NIR光谱数据变化的背景和噪声。在1100至1700 nm的光谱范围内,利用这种预处理方法有助于我们获得更简单,更高精度的血糖无创测量多变量校准。此外,通过与其他预处理方法进行比较,结果表明该方法对复杂的近红外光谱模型具有更大的适应性。这项研究为我们改进基于NIR光谱的血液成分无创测量技术提供了另一条途径。

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