化学
中医药
传统医学
生化工程
替代医学
医学
工程类
病理
作者
Yanfeng Hong,Sisi Zhu,Yuhong Liu,Chao Tian,Hongquan Xu,Gongxing Chen,Lin Tao,Tian Xie
标识
DOI:10.1016/j.jpha.2024.101157
摘要
Traditional Chinese medicine (TCM) is an ancient medical system distinctive and effective in treating cancer, depression, coronavirus disease 2019 (COVID-19), and other diseases. However, the relatively abstract diagnostic methods of TCM lack objective measurement, and the complex mechanisms of action are difficult to comprehend, which hinders the application and internationalization of TCM. Recently, while breakthroughs have been made in utilizing methods such as network pharmacology and virtual screening for TCM research, the rise of machine learning (ML) has significantly enhanced their integration with TCM. This article introduces representative methodological cases in quality control, mechanism research, diagnosis, and treatment processes of TCM, revealing the potential applications of ML technology in TCM. Furthermore, the challenges faced by ML in TCM applications are summarized, and future directions are discussed.
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