首页> 外文期刊>Spectrochimica acta, Part A. Molecular and biomolecular spectroscopy >The application of continuous wavelet transform and least squares support vector machine for the simultaneous quantitative spectrophotometric determination of Myricetin, Kaempferol and Quercetin as flavonoids in pharmaceutical plants
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The application of continuous wavelet transform and least squares support vector machine for the simultaneous quantitative spectrophotometric determination of Myricetin, Kaempferol and Quercetin as flavonoids in pharmaceutical plants

机译:连续小波变换和最小二乘支持向量机同时定量分光光度法测定药用植物中杨梅素,山奈酚和槲皮素的含量

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Flavonoids are gamma-benzopyrone derivatives, which are highly regarded in these researchers for their antioxidant property. In this study, two new signals processing methods been coupled with UV spectroscopy for spectral resolution and simultaneous quantitative determination of Myricetin, Kaempferol and Quercetin as flavonoids in Laurel, St. John's Wort and Green Tea without the need for any previous separation procedure. The developed methods are continuous wavelet transform (CWT) and least squares support vector machine (LS-SVM) methods integrated with UV spectroscopy individually. Different wavelet families were tested by CWT method and finally the Daubechies wavelet family (Db4) for Myricetin and the Gaussian wavelet families for Kaempferol (Gaus3) and Quercetin (Gaus7) were selected and applied for simultaneous analysis under the optimal conditions. The LS-SVM was applied to build the flavonoids prediction model based on absorption spectra. The root mean square errors for prediction (RMSEP) of Myricetin, Kaempferol and Quercetin were 0.0552, 0.0275 and 0.0374, respectively. The developed methods were validated by the analysis of the various synthetic mixtures associated with a well- known flavonoid contents. Mean recovery values of Myricetin, Kaempferol and Quercetin, in CWT method were 100.123, 100.253, 100.439 and in LS-SVM method were 99.94, 99.81 and 99.682, respectively. The results achieved by analyzing the real samples from the CWT and LS-SVM methods were compared to the HPLC reference method and the results were very close to the reference method. Meanwhile, the obtained results of the one-way ANOVA (analysis of variance) test revealed that there was no significant difference between the suggested methods. (C) 2015 Elsevier B.V. All rights reserved.
机译:类黄酮是γ-苯并吡喃酮衍生物,因其抗氧化性能而在这些研究人员中得到高度评价。在这项研究中,两种新的信号处理方法与紫外光谱相结合,用于光谱分离并同时定量测定月桂树,圣约翰草和绿茶中的杨梅素,山奈酚和槲皮素为类黄酮,而无需任何先前的分离程序。所开发的方法是连续小波变换(CWT)和最小二乘支持向量机(LS-SVM)方法,它们分别与UV光谱法集成在一起。通过CWT方法测试了不同的小波家族,最后选择了杨梅素的Daubechies小波家族(Db4)和山emp酚(Gaus3)和槲皮素(Gaus7)的高斯小波家族,并在最佳条件下进行了同时分析。 LS-SVM被用于建立基于吸收光谱的类黄酮预测模型。杨梅素,山奈酚和槲皮素的预测均方根误差(RMSEP)分别为0.0552、0.0275和0.0374。通过分析与众所周知的类黄酮含量有关的各种合成混合物,验证了所开发的方法。在CWT方法中,杨梅素,山奈酚和槲皮素的平均回收率分别为100.123、100.253、100.439和LS-SVM方法分别为99.94、99.81和99.682。通过分析来自CWT和LS-SVM方法的真实样品获得的结果与HPLC参考方法进行了比较,结果与参考方法非常接近。同时,单向方差分析(方差分析)测试的结果表明,建议的方法之间没有显着差异。 (C)2015 Elsevier B.V.保留所有权利。

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