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Syndrome differentiation of fatty liver based on the whole network analysis theory

机译:基于整个网络分析理论的脂肪肝综合征分化

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Objective: Investigate syndromes classification of fatty liver. Method: Investigate the relationship between syndrome differentiation and symptom of fatty liver by using SOM neural network and whole network analysis method, and provide references for the standardization of syndrome differentiation. Analysis on centrality was carried out to evaluate the importance of each symptom in each syndrome differentiation. Analysis on group centralization was carried out to speculate the amount of the syndrome types and the accompanied degree of symptoms. Analysis on E-I index was carried out to speculate the reliability of the syndrome differentiation. Subgroup analysis was used to provide a reference for fatty liver syndromes. Result: The syndromes of fatty liver were found to be complex cluster syndromes rather than simple single syndromes. Conclusion: Analysis of the relationship between different symptoms of fatty liver revealed a conspicuous Chinese medicine syndromes colonization concept. Standardization of syndrome differentiation of fatty liver is of great importance for its high reference value. The analysis method based on a complex cluster syndromes database was proven feasible.
机译:目的:探讨脂肪肝综合征分类。方法:研究SOM神经网络和全网络分析方法研究脂肪肝综合分化与症状的关系,并为综合征分化标准化提供了参考。进行了对中心的分析,以评估每种综合征分化中每种症状的重要性。进行分析集群化,以推测综合征类型和伴随程度的症状。进行了E-I指数的分析,以推测综合征分化的可靠性。亚组分析用于为脂肪肝综合征提供参考。结果:发现脂肪肝的综合征是复杂的群体综合征而不是简单的单一综合征。结论:分析脂肪肝的不同症状关系揭示了一种显眼中医综合征殖民化概念。脂肪肝综合征分化的标准化对于其高参考价值具有重要意义。基于复杂群集综合征数据库的分析方法得到了证实可行。

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