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Application of Artificial Intelligence in the Establishment of an Association Model between Metabolic Syndrome, TCM Constitution, and the Guidance of Medicated Diet Care

机译:人工智能在代谢综合征,中医宪法和药膳保健指导下建立关联模式的应用

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Background . This study conducted exploratory research using artificial intelligence methods. The main purpose of this study is to establish an association model between metabolic syndrome and the TCM (traditional Chinese medicine) constitution using the characteristics of individual physical examination data and to provide guidance for medicated diet care. Methods . Basic demographic and laboratory data were collected from a regional hospital health examination database in northern Taiwan, and artificial intelligence algorithms, such as logistic regression, Bayesian network, and decision tree, were used to analyze and construct the association model between metabolic syndrome and the TCM constitution. Findings . It was found that the phlegm-dampness constitution (90.6%) accounts for the majority of TCM constitution classifications with a high risk of metabolic syndrome, and high cholesterol, blood glucose, and waist circumference were statistically significantly correlated with the phlegm-dampness constitution. This study also found that the age of patients with metabolic syndrome has been advanced, and shift work is one of the risk indicators. Therefore, based on the association model between metabolic syndrome and TCM constitution, in the future, metabolic syndrome can be predicted through the syndrome differentiation of the TCM constitution, and relevant medicated diet care schemes can be recommended for improvement. Conclusion . In order to increase the public’s knowledge and methods for mitigating metabolic syndrome, in the future, nursing staff can provide nonprescription medicated diet-related nursing guidance information via the prediction and assessment of the TCM constitution.
机译:背景 。本研究采用人工智能方法进行了探索性研究。本研究的主要目的是利用个体体检数据的特点建立代谢综合征和中医(中医)宪法之间的协会模型,并为药膳保健提供指导。方法 。从台湾北部的区域医院健康检查数据库中收集了基本的人口统计数据,人工智能算法,如逻辑回归,贝叶斯网络和决策树,用于分析和构建代谢综合征和中医之间的关联模型宪法。发现 。结果发现,痰湿宪法(90.6%)占大多数中医统一性的分类,具有高风险的性质综合征,高胆固醇,血糖和腰围与痰湿构成有统计学显着相关。本研究还发现,代谢综合征患者的年龄已提出,转变工作是风险指标之一。因此,基于代谢综合征和中医宪法之间的关联模式,在未来,可以通过中医构成的综合分化来预测代谢综合征,并建议相关的药物饮食保健计划进行改进。结论 。为了增加公众的知识和减轻代谢综合征的知识和方法,在未来,护理人员可以通过中医宪法的预测和评估提供非专利术饮食有关的护理指导信息。

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