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THCluster:Herb Supplements Categorization for Precision Traditional Chinese Medicine  会议论文 期刊论文  

  • 编号:
    f59292d8-3a3a-4c77-8f75-3119a1cb44f8
  • 作者:
    Ruan, Chunyang#*[1]Wang, Ye[2];Zhang, Yanchun[1,2];Ma, Jiangang[2];Chen, Huijuan(陈惠娟)[3]Aickelin, Uwe[4];Zhu, Shanfeng[1,5];Zhang, Ting;
  • 语种:
    English
  • 期刊:
    2017 IEEE INTERNATIONAL CONFERENCE ON BIOINFORMATICS AND BIOMEDICINE (BIBM) ISSN:2156-1125 2017 年 (417 - 424)
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  • 关键词:
  • 摘要:

    There has been a continuing demand for traditional and complementary medicine worldwide. A fundamental and important topic in Traditional Chinese Medicine (TCM) is to optimize the prescription and to detect herb regularities from TCM data. In this paper, we propose a novel clustering model to solve this general problem of herb categorization,a pivotal task of prescription optimization and herb regularities. The model utilizes Random Walks method, Bayesian rules and Expectation Maximization(EM) models to complete a clustering analysis effectively on a heterogeneous information network. We performed extensive experiments on the real-world datasets and compared our method with other algorithms and experts. Experimental results have demonstrated the effectiveness of the proposed model for discovering useful categorization of herbs and its potential clinical manifestations.

  • 推荐引用方式
    GB/T 7714:
    Ruan Chunyang,Wang Ye,Zhang Yanchun, et al. THCluster:Herb Supplements Categorization for Precision Traditional Chinese Medicine [J].2017 IEEE INTERNATIONAL CONFERENCE ON BIOINFORMATICS AND BIOMEDICINE (BIBM),2017:417-424.
  • APA:
    Ruan Chunyang,Wang Ye,Zhang Yanchun,Ma Jiangang,&Zhang Ting.(2017).THCluster:Herb Supplements Categorization for Precision Traditional Chinese Medicine .2017 IEEE INTERNATIONAL CONFERENCE ON BIOINFORMATICS AND BIOMEDICINE (BIBM):417-424.
  • MLA:
    Ruan Chunyang, et al. "THCluster:Herb Supplements Categorization for Precision Traditional Chinese Medicine" .2017 IEEE INTERNATIONAL CONFERENCE ON BIOINFORMATICS AND BIOMEDICINE (BIBM)(2017):417-424.
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