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A Rapid Discrimination of Authentic and Unauthentic Radix Angelicae Sinensis Growth Regions by Electronic Nose Coupled with Multivariate Statistical Analyses

机译:电子鼻结合多元统计分析快速鉴别当归和真品当归生长区

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摘要

Radix Angelicae Sinensis, known as Danggui in China, is an effective and wide applied material in Traditional Chinese Medicine (TCM) and it is used in more than 80 composite formulae. Danggui from Minxian County, Gansu Province is the best in quality. To rapidly and nondestructively discriminate Danggui from the authentic region of origin from that from an unauthentic region, an electronic nose coupled with multivariate statistical analyses was developed. Two different feature extraction methods were used to ensure the authentic region and unauthentic region of Danggui origin could be discriminated. One feature extraction method is to capture the average value of the maximum response of the electronic nose sensors (feature extraction method 1). The other one is to combine the maximum response of the sensors with their inter-ratios (feature extraction method 2). Multivariate statistical analyses, including principal component analysis (PCA), soft independent modeling of class analogy (SIMCA), and hierarchical clustering analysis (HCA) were employed. Nineteen samples were analyzed by PCA, SIMCA and HCA. Then the remaining samples (GZM1, SH) were projected onto the SIMCA model to validate the models. The results indicated that, in the use of feature extraction method 2, Danggui from Yunnan Province and Danggui from Gansu Province could be successfully discriminated using the electronic nose coupled with PCA, SIMCA and HCA, which suggested that the electronic-nose system could be used as a simple and rapid technique for the discrimination of Danggui between authentic and unauthentic region of origin.
机译:当归在中国被称为当归,是一种有效且广泛应用的中药材,被用于80多种复合配方中。甘肃Min县的当归质量最好。为了快速,无损地将当归与原产地与非原产地区分开,开发了一种电子鼻与多元统计分析相结合。两种不同的特征提取方法被用来确保可以区分当归起源地的真实区域和非真实区域。一种特征提取方法是捕获电子鼻传感器最大响应的平均值(特征提取方法1)。另一种是将传感器的最大响应与传感器之间的比率结合起来(特征提取方法2)。采用多元统计分析,包括主成分分析(PCA),类比分析的软独立建模(SIMCA)和层次聚类分析(HCA)。通过PCA,SIMCA和HCA分析了19个样品。然后将其余样本(GZM1,SH)投影到SIMCA模型上以验证模型。结果表明,采用特征提取方法2,结合PCA,SIMCA和HCA可以成功地区分云南当归和甘肃当归,表明可以使用电子鼻系统。作为区分当归真实地区和非真实地区的一种简单快速的技术。

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