萧条(经济学)
过程(计算)
命题
计算机科学
语言模型
领域(数学分析)
领域知识
心理学
人工智能
精神科
知识管理
语言学
操作系统
哲学
经济
宏观经济学
数学分析
数学
作者
Wang Xiao,Kai Liu,Chunlei Wang
标识
DOI:10.1109/ccis59572.2023.10263217
摘要
Depression, a pervasive psychiatric disorder characterized by concealment, dependence on expert judgment, and a notable rate of misdiagnosis, poses a substantial burden on society. To enhance the diagnosis and treatment of depression, this study puts forth a proposition of employing knowledge-enhanced pre-training technology leveraging large language models. By integrating domain knowledge and depression knowledge graph directives, the pre-trained model undergoes optimization. Expert involvement in depression diagnosis and treatment fosters a guided learning process facilitated by expert feedback. Through the application of dialogue therapy, the efficacy of treatment is augmented. This technical approach aims to ameliorate the societal burden by improving the diagnosis and treatment of depressed individuals.
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