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A Comparison of Analytical and Data Preprocessing Methods for Spectral Fingerprinting

机译:光谱指纹图谱分析和数据预处理方法的比较

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摘要

Spectral fingerprinting, as a method of discriminating between plant cultivars and growing treatments for a common set of broccoli samples, was compared for six analytical instruments. Spectra were acquired for finely powdered solid samples using Fourier transform infrared (FT-IR) and Fourier transform near-infrared (NIR) spectrometry. Spectra were also acquired for unfractionated aqueous methanol extracts of the powders using molecular absorption in the ultraviolet (UV) and visible (VIS) regions and mass spectrometry with negative (MS-) and positive (MS+) ionization. The spectra were analyzed using nested one-way analysis of variance (ANOVA) and principal component analysis (PCA) to statistically evaluate the quality of discrimination. All six methods showed statistically significant differences between the cultivars and treatments. The significance of the statistical tests was improved by the judicious selection of spectral regions (IR and NIR), masses (MS+ and MS-), and derivatives (IR, NIR, UV, and VIS).
机译:比较了光谱指纹图谱作为区分一组普通西兰花样品的植物品种和生长处理的方法,并使用了六种分析仪器。使用傅里叶变换红外(FT-IR)和傅里叶变换近红外(NIR)光谱仪获得了粉末状固体样品的光谱。还通过使用在紫外(UV)和可见(VIS)区域的分子吸收以及具有负电离(MS-)和正电离(MS +)的质谱法获得了粉末的未分级甲醇提取物的光谱。使用嵌套的单向方差分析(ANOVA)和主成分分析(PCA)分析光谱,以统计学方式评估判别质量。所有六种方法均显示出品种和处理之间的统计学差异。通过明智地选择光谱区域(IR和NIR),质量(MS +和MS-)和衍生物(IR,NIR,UV和VIS),可以提高统计检验的重要性。

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