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[Progress in research of textual quality evaluation of health-related media reports].

质量(理念) 心理学 计算机科学 数据科学 认识论 哲学
作者
Lei Yang,Ming Zhao,Shaoyu Zhao,Wangxin Xiao,Peixia Cheng,Guoqing Hu
出处
期刊:PubMed [National Institutes of Health]
卷期号:46 (7): 1269-1275
标识
DOI:10.3760/cma.j.cn112338-20241012-00629
摘要

Objective: To summarize the progress in the research of textual quality evaluation of health-related media reports. Methods: A systematic literature retrieval about textual quality evaluation of health-related media reports based on PubMed, Web of Science, Embase, Wanfang database, and China National Knowledge Infrastructure was conducted. Information regarding the textual quality definition, evaluation dimensions, indicators and methods of included papers was extracted. Results: A total of 29 study papers were included in this analysis, in which 26 were about retrospective textual quality evaluation of health-related media reports, and 3 were about the model or tool development for textual quality evaluation of health-related media reports. The topics of news reports included: 16 studies on injury, 3 on general health, 3 on infectious disease, 3 on cancer screening and treatment, 3 on chronic non-communicable disease, and 1 on medication risk. The definition of textual quality of health-related media reports and the dimensions of the quality evaluation varied across the studies. The quality evaluation indicators of media reports can be divided into three categories: availability of surveillance information, availability of professional information, and adherence to principles of media reporting. Most studies conducted the quality evaluation manually, with only 2 studies employing semi-automated or automated evaluation methods. Conclusions: No unified definition, set of dimensions, indicators, or automated algorithms exist for evaluating the textual quality of health-related media reports, which limits assessing massive news data effectively. It is necessary to conduct methodological studies on the textual quality evaluation of health-related media reports based on journalism and communication theory, infodemiology, deep learning, natural language processing, text mining, as well as specific disease and injury prevention theory.
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