[1]张亚密,任妍2,何伟3,等.基于隐结构模型的王希胜主任医师治疗肺癌的用药规律研究[J].现代中医药,2019,(05):004-9.[doi:10.13424/j.cnki.mtcm.2019.05.002]
 Zhang Miya Ren Yan He Wei Yang Ning.Research on the Medication Rule of Chief Physician Wang Xisheng in the Treatment of Lung Cancer Based on Latent Structural Model[J].Modern Traditional Chinese Medicine,2019,(05):004-9.[doi:10.13424/j.cnki.mtcm.2019.05.002]
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基于隐结构模型的王希胜主任医师治疗肺癌的用药规律研究()
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《现代中医药》[ISSN:1006-6977/CN:61-1281/TN]

卷:
期数:
2019年05期
页码:
004-9
栏目:
医家精粹
出版日期:
2019-09-16

文章信息/Info

Title:
Research on the Medication Rule of Chief Physician Wang Xisheng in the Treatment of Lung Cancer Based on Latent Structural Model
文章编号:
1672-0571(2019)05-0004-06
作者:
张亚密任妍2何伟3杨宁1
陕西中医药大学附属医院
Author(s):
Zhang Miya Ren Yan 2 He Wei 3 Yang Ning 1
1. Affiliated Hospital of Shaanxi University of Chinese Medicine, Xiangyang China 712000; 2. Daxing Hospital of Xi’ an, Xi’ an China, 710016; 3. Shaanxi University of Chinese Medicine, Xiangyang China 712046
关键词:
肺癌隐结构模型用药规律
Keywords:
lung cancer rule of medication latent structural model
分类号:
R734.2
DOI:
10.13424/j.cnki.mtcm.2019.05.002
文献标志码:
A
摘要:
目的 挖掘陕西省名老中医王希胜主任医师肺癌证治的用药规律。方法 系统搜集陕西省名中医王 希胜主任医师肺癌证治处方,构建隐结构模型(Lantern3.4软件),采用 LTM-EAST算法进行隐树模型学习,以 贝叶斯信息标准评分评价模型质量。采用互信息、信息覆盖率、隐类概率、条件概率等定量指标诠释模型中各个 变量,以累积信息覆盖率达到 95%,作为诠释隐变量特征的截取标准,以人工判读方法揭示各肺癌证治隐类的 用药配伍组方规律。结果 共收录关于肺癌处方 304首,累计 137味中药,共计 40味中药使用 >20次。隐结构 模型显示,贝叶斯信息标准评分 -3779.35,涉及 33个显变量,Y1~Y8等 8个隐变量。肺癌患者以脾肾两虚、虚 瘀互结证为主,兼见肾虚腰痛证、痰饮阻肺证、湿阻中焦证、脾虚食滞证、精血亏虚证。结论 隐结构模型结合人 工判读,即定量结合定性研究方法,能客观揭示中医药数据的隐类特征,适宜于名老中医用药证治规律的研究
Abstract:
To explore the rule of medication for the treatment of lung cancer with the chief physician of the famous Chinese medicine Doctor Wang Xisheng in Shaanxi Province. Methods: The prescriptions for lung cancer of Wang Xisheng, a famous doctor in Shaanxi Province, were collected systematically, and the latent structural model ( Lantern 3. 4 software) was constructed. LTM - EAST algorithm was used to learn the latent tree model, and the quality of the model was evaluated by Bayesian information standard score. Quantitative indicators such as mutual information, information coverage rate, latent class probability and conditional probability were used to interpret the variables in the model. The cumulative information coverage rate was 95%, which was used as the interception criterion to interpret the characteristics of latent variables. Artificial interpretation method was used to reveal the law of drug compatibility among the various types of lung cancer. Results: There were 304 prescriptions for lung cancer, totaling 137 Chinese medicines, and 40 Chinese medicines were used more than 20 times. The latent structure model showed that the Bayesian information standard score was - 3779. 35, involving 33 explicit variables and 8 implicit variables, such as Y1 - Y8. Lung cancer patientsmainly suffer from deficiency of both spleen and kidney and stagnation of deficiency and blood stasis. They also suffer from deficiency of kidney, lumbago, phlegm and yin obstructing lung, dampness obstructing middle jiao, deficiency of spleen and kidney, deficiency of essence and blood. Conclusion: Latent structure model combined with artificial interpretation, that is, quantitative and qualitative research methods, can objectively reveal the hidden characteristics of TCM data, and is suitable for the study of the treatment laws of famous and veteran TCM.

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备注/Memo

备注/Memo:
基金项目:陕西省中医药管理局课题(15-SCJH001)
更新日期/Last Update: 2019-09-15