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Optimal preprocessing and FCM clustering of MIR, NIR and combined MIR-NIR spectra for classification of maize roots

机译:MIR,NIR和MIR-NIR光谱的最佳预处理和FCM聚类,用于玉米根分类

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InfraRed spectroscopy (IR) provides useful information of the molecular composition of biological systems. Mid-InfraRed (MIR) spectroscopy reflects fundamental molecular vibrations whereas Near-InfraRed (NIR) spectroscopy exhibits the overtones and combinations of fundamental vibrations and bonds. In most applications, the samples are mixed with potassium bromide (KBr) powder, or simply unmixed. Two technics are investigated: IR absorption on mixed samples and Diffuse Reflectance IR Fourier Transform (DRIFT) on unmixed samples. IR spectra are collected in either MIR or NIR regions. However, the preprocessing of IR spectra, the choice of the spectral band and the combination of MIR-NIR information are important factors that could substantially influence analyses. This study investigates these factors while attempting to retrieve three different genotypes of maize roots via a Fuzzy C-Mean (FCM) classification of IR spectra. A bootstrapping procedure is used as the number of samples is limited. Results show that KBr spectroscopy is better than DRIFT spectroscopy for MIR region; MIR provides equivalent information as NIR for DRIFT spectroscopy; combination of MIR-NIR information gives preprocessing independent results. Several distances are tested in FCM classification. The city bloc distance gives optimal results compared with Euclidean, Chebyshev, correlation and diagonal distance.
机译:红外光谱(IR)提供了生物系统的分子组成的有用信息。中红外线(MIR)光谱反映了基本分子振动,而近红外(NIR)光谱表现出彻底振动和粘合的泛滥。在大多数应用中,将样品与溴化钾(KBR)粉末混合,或者简单地解混。研究了两种技术:在混合样品上的IR吸收,并在未混合样品上散射反射IR傅里叶变换(漂移)。 IR光谱在MIR或NIR区域中收集。然而,IR光谱的预处理,光谱频带的选择和MIR-NIR信息的组合是可能显着影响分析的重要因素。本研究调查了这些因素,同时试图通过IR光谱的模糊C均值(FCM)分类来检索三种不同基因型的玉米根。使用自动启动过程作为示例的数量有限。结果表明,KBR光谱比MIR地区的漂移光谱更好; MIR提供与漂移光谱的NIR等同的信息; MIR-NIR信息的组合使预处理的独立结果。在FCM分类中测试了几个距离。与Euclidean,Chebyshev,相关性和对角线相比,城市Bloc距离提供了最佳结果。

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