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Classification of Agarwood Oil Using an Electronic Nose

机译:电子鼻对沉香油的分类

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摘要

Presently, the quality assurance of agarwood oil is performed by sensory panels which has significant drawbacks in terms of objectivity and repeatability. In this paper, it is shown how an electronic nose (e-nose) may be successfully utilised for the classification of agarwood oil. Hierarchical Cluster Analysis (HCA) and Principal Component Analysis (PCA), were used to classify different types of oil. The HCA produced a dendrogram showing the separation of e-nose data into three different groups of oils. The PCA scatter plot revealed a distinct separation between the three groups. An Artificial Neural Network (ANN) was used for a better prediction of unknown samples.
机译:当前,沉香油的质量保证是通过感官面板来实现的,该感官面板在客观性和可重复性方面具有明显的缺点。在本文中,显示了如何将电子鼻(电子鼻)成功地用于沉香油分类。层次聚类分析(HCA)和主成分分析(PCA)用于对不同类型的石油进行分类。 HCA生成树状图,显示将电子鼻数据分离为三组不同的油。 PCA散点图显示了三组之间的明显分隔。人工神经网络(ANN)用于更好地预测未知样品。

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