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Application of Permutation Entropy in Feature Extraction for Near-Infrared Spectroscopy Noninvasive Blood Glucose Detection

机译:置换熵在特征提取中的应用近红外光谱无血糖血糖检测

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摘要

Diabetes has been one of the four major diseases threatening human life. Accurate blood glucose detection became an important part in controlling the state of diabetes patients. Excellent linear correlation existed between blood glucose concentration and near-infrared spectral absorption. A new feature extraction method based on permutation entropy is proposed to solve the noise and information redundancy in near-infrared spectral noninvasive blood glucose measurement, which affects the accuracy of the calibration model. With the near-infrared spectral data of glucose solution as the research object, the concepts of approximate entropy, sample entropy, fuzzy entropy, and permutation entropy are introduced. The spectra are then segmented, and the characteristic wave bands with abundant glucose information are selected in terms of permutation entropy, fractal dimension, and mutual information. Finally, the support vector regression and partial least square regression are used to establish the mathematical model between the characteristic spectral data and glucose concentration, and the results are compared with conventional feature extraction methods. Results show that the proposed new method can extract useful information from near-infrared spectra, effectively solve the problem of characteristic wave band extraction, and improve the analytical accuracy of spectral and model stability.
机译:糖尿病是威胁人类生活的四种主要疾病之一。精确的血糖检测成为控制糖尿病患者状态的重要组成部分。血糖浓度与近红外光谱吸收之间存在优异的线性相关性。提出了一种基于置换熵的新特征提取方法来解决近红外光谱非血糖血糖测量中的噪声和信息冗余,这影响了校准模型的准确性。利用葡萄糖解决方案的近红外光谱数据作为研究对象,介绍了近似熵,样品熵,模糊熵和排列熵的概念。然后将光谱分段,并且在置换熵,分形维数和相互信息方面选择具有丰富的葡萄糖信息的特征波带。最后,使用支持向量回归和部分最小二乘回归来建立特征光谱数据和葡萄糖浓度之间的数学模型,并将结果与​​常规特征提取方法进行比较。结果表明,所提出的新方法可以从近红外光谱中提取有用的信息,有效解决特征波带提取的问题,提高光谱和模型稳定性的分析精度。

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