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Application of Data Mining on HPLC Fingerprints of Szechwan Lovage Rhizome Analysis

机译:数据挖掘在四川独活根茎HPLC指纹图谱中的应用

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摘要

Based on the integration of Java language and open-source R software environment, the article was developed a Traditional Chinese Medicine fingerprints analysis and visualization system and taken Szechwan Lovage Rhizome HPLC fingerprints as the study object to conduct data processing, information analyzing, and data mining research. In the article, 24 batches of Szechwan Lovage Rhizome from three different growth regions together with 3 standard samples were selected to make experiment detection. Data from HPLC fingerprints were processed by principal component analysis (PCA), and were completed the regional difference analysis for the main active components of the medicine from the different growth regions, and then with 3D visualization of the result, the growth regions were significantly distinguished from system. In addition, embedded with the GIS technology, the system was initially accomplished the correlation analysis between the Szechwan Lovage Rhizome fingerprints data and the geographical space data. Therefore the fingerprints data quantitative analysis method and system developed here can be regarded as an efficient way for quality detection and analysis automatically and intelligently of the traditional Chinese medicine.
机译:在Java语言与开源R软件环境集成的基础上,开发了中药指纹图谱分析可视化系统,以四川独活HPLC指纹图谱为研究对象,进行数据处理,信息分析和数据挖掘。研究。本文选择了来自三个不同生长地区的24批次四川独活根茎和3个标准样品进行实验检测。通过主成分分析(PCA)处理HPLC指纹图谱中的数据,并完成了来自不同生长区域的药物主要活性成分的区域差异分析,然后通过3D可视化结果,明显区分了生长区域从系统。此外,该系统还嵌入了GIS技术,初步完成了Szechwan Lovage根茎指纹数据与地理空间数据之间的相关性分析。因此,本文开发的指纹数据定量分析方法和系统可以看作是一种自动,智能地对中药质量进行检测和分析的有效途径。

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