首页> 外文期刊>Analytical chemistry >CLASSIFICATION OF NEAR-INFRARED SPECTRA USING WAVELENGTH DISTANCES - COMPARISON TO THE MAHALANOBIS DISTANCE AND RESIDUAL VARIANCE METHODS
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CLASSIFICATION OF NEAR-INFRARED SPECTRA USING WAVELENGTH DISTANCES - COMPARISON TO THE MAHALANOBIS DISTANCE AND RESIDUAL VARIANCE METHODS

机译:利用波长距离对近红外光谱进行分类-与马氏散射距离和残留方差方法的比较。

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摘要

A simple and easy to understand method for classification of near-infrared spectra is reported. The method uses a sample's normalized distance from a library of mean spectra, The probability distribution of the test is described, and its ability to discriminate between similar materials was tested and is reported, Its ability to detect samples that fail to meet product specifications and samples adulterated with minor levels of impurities was also tested and is reported. The performance of the method is compared to methods based on principal component analysis, Mahalanobis distances, and SIMCA residual variance distances. Overall, the wavelength distance method gave better classification results than the Mahalanobis and SIMCA methods when small training sets were used, but poor results were obtained in the detection of samples that do not meet product specifications and samples adulterated with low levels of contamination.
机译:报告了一种简单易懂的近红外光谱分类方法。该方法使用样品到平均光谱库的归一化距离,描述了测试的概率分布,测试并报告了其区分相似材料的能力,其检测不符合产品规格的样品和样品的能力还测试并掺入了少量杂质的掺假品。该方法的性能与基于主成分分析,马氏距离和SIMCA残差方差的方法进行了比较。总的来说,当使用小的训练集时,波长距离方法比马氏测量法和SIMCA方法提供更好的分类结果,但是在检测不符合产品规格的样品和污染程度低的样品时,检测结果差。

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