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基于复杂网络分析技术的穴位选择模式

[Pattern of acupoint selection based on complex network analysis technique].

作者信息

Wang Yuan-Yuan, Lin Feng, Jiang Zhong-Li

机构信息

Acupuncture Department, Jiaozuo People's Hospital, Henan Province, Jiaozuo 454002, China.

出版信息

Zhongguo Zhen Jiu. 2011 Jan;31(1):85-8.

Abstract

To analyze the global structural models of point prescription in acupuncture therapy, and to provide new insights for acupoint selection based on syndrome differentiation. Taking prescriptions in the commonly used textbooks as the resources, a directed network of point prescription according to syndrome differentiation was constructed. The network was visualized with Pajek 1.25, the linkage distributions of points and symptoms were analyzed with Matlab 7.0. The result showed that there existed 1 635 combinations between 233 syndromes and 232 acupoints. The linkages of symptoms and selection of acupoints confirmed to the feature of random distribution with 5 points for each symptom in average. And the linkages obeyed a power-law distribution, which indicates that most symptoms can be treated by selecting a few points. Thus, it was concluded that complexity can be found in the global structural of relation between syndrome differentiation and acupoint selection. The selection of acupoints for every symptom and the matching of symptoms for every acupoint had different distribution patterns. The former obeyed a random pattern while the latter had a scale-free property. The complex network analysis is promised to be an available tool for researches on acupuncture prescriptions.

摘要

分析针灸治疗中穴位处方的整体结构模型,为辨证选穴提供新的见解。以常用教材中的处方为资源,构建了基于辨证的穴位处方定向网络。用Pajek 1.25对网络进行可视化,用Matlab 7.0分析穴位与症状的关联分布。结果显示,233种证候与232个穴位之间存在1635种组合。症状与穴位的关联符合随机分布特征,平均每个症状有5个穴位。且关联服从幂律分布,这表明大多数症状可通过选取少数穴位来治疗。由此得出结论,辨证与选穴关系的整体结构中存在复杂性。每个症状的穴位选择以及每个穴位的症状匹配具有不同的分布模式。前者服从随机模式,而后者具有无标度特性。复杂网络分析有望成为针灸处方研究的有效工具。

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