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A new processing technique for the identification of Chinese Herbal Medicine

机译:一种新的中草药鉴定的新加工技术

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Machine olfaction is widely used to classify and identify the Chinese Herbal Medicine (CHM). The traditional methods for identification were mostly used on the assumption of linear odor data that has variance with the reality. This work adopts a new processing technique of LLE+LDA: using the nonlinear algorithm called Locally Linear Embedding algorithm (LLE) to analyze the high-dimensional nonlinear data of Pungent CHM firstly, then combine with the Linear Discriminant Analysis (LDA) as classifier to complete the identification and classification. The result demonstrates that with this combinatorial theory, the machine olfaction can not only distinguish 6 types of Pungent Chinese Herbal Medicines, but also classify the 3 different production dates of the same kind and the same origin accurately. It provides a new technique for processing the odor data of Pungent CHM based in the machine olfaction.
机译:机液被广泛用于分类和鉴定中草药(CHM)。传统的识别方法主要用于假设具有与现实方差的线性气味数据。这项工作采用LLE + LDA的新加工技术:使用称为局部线性嵌入算法(LLE)的非线性算法首先分析刺激性CHM的高维非线性数据,然后将线性判别分析(LDA)与分类器相结合。完成识别和分类。结果表明,通过这种组合理论,机器嗅觉不仅可以区分6种类型的刺激性中草药,还可以准确地分类相同类型的3种不同的生产日期。它提供了一种用于处理基于机器嗅觉的刺激CHM气味数据的新技术。

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