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A Topic-centric Approach to Detecting New Evidences for Evidence-based Medical Guidelines

机译:一种以主题为中心的方法,可以检测基于证据的医疗指南的新证据

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Evidence-based Medical guidelines are developed based on the best available evidence in biomedical science and clinical practice. Such evidence-based medical guidelines should be regularly updated, so that they can optimally serve medical practice by using the latest evidence from medical research. The usual approach to detect such new evidence is to use a set of terms from a guideline recommendation and to create queries for a biomedical search engine such as PubMed, with a ranking over a selected subset of terms to search for relevant new evidence. However, the terms that appear in a guideline recommendation do not always cover all of the information we need for the search, because the contextual information (e.g. time and location, user profile, topics) is usually missing in a guideline recommendation. Enhancing the search terms with contextual information would improve the quality of the search results. In this paper, we propose a topic-centric approach to detect new evidence for updating evidence-based medical guidelines as a context-aware method to improve the search. Our experiments show that this topic centric approach can find the goal evidence for 12 guideline statements out of 16 in our test set, compared with only 5 guideline statements that were found by using a non-topic centric approach.
机译:基于生物医学科学和临床实践的最佳可用证据,开发了基于证据的医学指导。应定期更新此类基于证据的医疗指南,以便通过使用医学研究的最新证据来最佳地提供医疗实践。检测此类新证据的通常方法是从指南建议使用一系列术语,并为生物医学搜索引擎(如Pubmed)创建查询,并通过选择所选术语的排名来搜索相关的新证据。但是,在指南建议中出现的术语并不总是涵盖搜索所需的所有信息,因为上下文信息(例如时间和位置,用户配置文件,主题)通常缺少指南推荐。使用上下文信息增强搜索项将提高搜索结果的质量。在本文中,我们提出了一种以主题为中心的方法来检测更新基于证据的医学指南的新证据,作为改进搜索的背景感知方法。我们的实验表明,本主题的方法可以在我们的测试集中找到12个指南陈述的目标证据,而通过使用非主题以上方法发现的仅有5个指南陈述。

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