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Drug Abuse Research Trend Investigation with Text Mining

机译:药物滥用研究趋势调查与文本挖掘

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Drug abuse poses great physical and psychological harm to humans, thereby attracting scholarly attention. It often requires experience and time for a researcher, just entering this field, to find an appropriate method to study drug abuse issue. It is crucial for researchers to rapidly understand the existing research on a particular topic and be able to propose an effective new research method. Text mining analysis has been widely applied in recent years, and this study integrated the text mining method into a review of drug abuse research. Through searches for keywords related to the drug abuse, all related publications were identified and downloaded from PubMed. After removing the duplicate and incomplete literature, the retained data were imported for analysis through text mining. A total of 19,843 papers were analyzed, and the text mining technique was used to search for keyword and questionnaire types. The results showed the associations between these questionnaires, with the top five being the Addiction Severity Index (16.44%), the Quality of Life survey (5.01%), the Beck Depression Inventory (3.24%), the Addiction Research Center Inventory (2.81%), and the Profile of Mood States (1.10%). Specifically, the Addiction Severity Index was most commonly used in combination with Quality of Life scales. In conclusion, association analysis is useful to extract core knowledge. Researchers can learn and visualize the latest research trend.
机译:药物滥用对人类带来了巨大的身体和心理伤害,从而吸引了学术关注。它经常需要研究人员的经验和时间,刚进入这一领域,寻找研究药物滥用问题的合适方法。对于研究人员来说,迅速理解对特定主题的现有研究并能够提出有效的新研究方法是至关重要的。近年来,文本挖掘分析已被广泛应用,这项研究将文本挖掘方法综合入药物滥用研究综述。通过搜索与药物滥用有关的关键字,所有相关的出版物都被识别并从PubMed中下载。删除重复和不完整的文献后,通过文本挖掘导入保留数据以进行分析。共分析了19,843篇论文,并使用了文本挖掘技术来搜索关键字和问卷类型。结果显示了这些问卷之间的协会,前五名是成瘾严重指数(16.44%),生活质量调查(5.01%),贝克抑郁库存(3.24%),成瘾研究中心库存(2.81% ),情绪状态的概况(1.10%)。具体地,成瘾严重性指数最常与寿命质量相结合使用。总之,关联分析可用于提取核心知识。研究人员可以学习和可视化最新的研究趋势。

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