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A Method for Finding Groups of Related Herbs in Traditional Chinese Medicine

机译:一种中药相关草药的分类方法

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As a complementary system to Western medicine. Traditional Chinese Medicine (TCM) provides a unique theoretical and practical approach of treatment to diseases over thousands of years. Accompanying with the increasing number of TCM digital books in digital library, there is an urgent need to explore these resources by the techniques of knowledge discovery. We present a method for creating a network of herbs and partitioning it into groups of related herbs. The method extracts structured information from several TCM digital books, then a new method named Support and Dependency Evaluation (SDE) is presented for herbal combinational rule mining. The herbal network is created from the extracted dataset of paired herbs. The partitioning procedure is designed to extend FEC algorithm to deal with the weighted herbal network. Experiments demonstrate that the method proposed has the capability of discovering groups of related herbs.
机译:作为西药的补充体系。中医(TCM)为数千年来的疾病提供了独特的理论和实践方法。伴随着数字图书馆中TCM数字图书数量的增加,迫切需要通过知识发现技术来探索这些资源。我们提出了一种创建草药网络并将其划分为相关草药组的方法。该方法从几本中医数字书籍中提取结构化信息,然后提出了一种新的方法,称为“支持和依赖性评估”(SDE),用于草药组合规则挖掘。草药网络是从配对草药的提取数据集中创建的。该划分过程旨在扩展FEC算法以处理加权草药网络。实验表明,所提出的方法具有发现相关草药群的能力。

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