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Feature Selection Method Based on Class Discriminative Degree for Intelligent Medical Diagnosis 被引量:5
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作者 Shengqun Fang Zhiping Cai +4 位作者 Wencheng Sun Anfeng Liu Fang Liu Zhiyao Liang Guoyan Wang 《Computers, Materials & Continua》 SCIE EI 2018年第6期419-433,共15页
By using efficient and timely medical diagnostic decision making,clinicians can positively impact the quality and cost of medical care.However,the high similarity of clinical manifestations between diseases and the li... By using efficient and timely medical diagnostic decision making,clinicians can positively impact the quality and cost of medical care.However,the high similarity of clinical manifestations between diseases and the limitation of clinicians’knowledge both bring much difficulty to decision making in diagnosis.Therefore,building a decision support system that can assist medical staff in diagnosing and treating diseases has lately received growing attentions in the medical domain.In this paper,we employ a multi-label classification framework to classify the Chinese electronic medical records to establish corresponding relation between the medical records and disease categories,and compare this method with the traditional medical expert system to verify the performance.To select the best subset of patient features,we propose a feature selection method based on the composition and distribution of symptoms in electronic medical records and compare it with the traditional feature selection methods such as chi-square test.We evaluate the feature selection methods and diagnostic models from two aspects,false negative rate(FNR)and accuracy.Extensive experiments have conducted on a real-world Chinese electronic medical record database.The evaluation results demonstrate that our proposed feature selection method can improve the accuracy and reduce the FNR compare to the traditional feature selection methods,and the multi-label classification framework have better accuracy and lower FNR than the traditional expert system. 展开更多
关键词 medical expert system EMR multi-label classification feature selection class discriminative degree
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基于知识图谱的医院医疗专家档案信息化管理 被引量:1
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作者 张红 周荻然 钱玉锦 《中国卫生资源》 CSCD 北大核心 2023年第6期721-724,730,共5页
随着大数据、云计算、人工智能及语义网等信息技术的日趋成熟,基于数据驱动的信息挖掘及信息资源整合成为各领域信息化探索的方向,也推动档案领域管理方法的创新。面对内容庞杂的医院医疗专家档案信息资源,研究运用人工智能及语义分析... 随着大数据、云计算、人工智能及语义网等信息技术的日趋成熟,基于数据驱动的信息挖掘及信息资源整合成为各领域信息化探索的方向,也推动档案领域管理方法的创新。面对内容庞杂的医院医疗专家档案信息资源,研究运用人工智能及语义分析等技术,进行信息挖掘,通过本体建模、知识抽取、知识融合等,构建以医院医疗专家档案为中心的知识图谱,不仅能进一步实现医疗专家档案的信息化管理,也可为顺应信息化时代智慧医院的发展趋势,推进医疗领域人才建设、医疗事业高质量发展服务。 展开更多
关键词 知识图谱knowledge graph 医疗专家档案medical expert file 信息化informatization 知识管理knowledge management 智慧医院intelligent hospital
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