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Using argumentation to retrieve articles with similar citations: An inquiry into improving related articles search in the MEDLINE digital library

机译:使用论证来检索具有相似引用的文章:在MEDLINE数字图书馆中改进相关文章搜索的查询

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摘要

The aim of this study is to investigate the relationships between citations and the scientific argumentation found abstracts. We design a related article search task and observe how the argumentation can affect the search results. We extracted citation lists from a set of 3200 full-text papers originating from a narrow domain. In parallel, we recovered the corresponding MEDLINE records for analysis of the argumentative moves. Our argumentative model is founded on four classes: PURPOSE, METHODS, RESULTS and CONCLUSION. A Bayesian classifier trained on explicitly structured MEDLINE abstracts generates these argumentative categories. The categories are used to generate four different argumentative indexes. A fifth index contains the complete abstract, together with the title and the list of Medical Subject Headings (MeSH) terms. To appraise the relationship of the moves to the citations, the citation lists were used as the criteria for determining related-ness of articles, establishing a benchmark; it means that two articles are considered as "related" if they share a significant set of co-citations. Our results show that the average precision of queries with the PURPOSE and CONCLUSION features is the highest, while the precision of the RESULTS and METHODS features was relatively low. A linear weighting combination of the moves is proposed, which significantly improves retrieval of related articles.
机译:这项研究的目的是调查引文与摘要中发现的科学论证之间的关系。我们设计了一个相关的文章搜索任务,并观察论证如何影响搜索结果。我们从一组来自狭窄领域的3200篇全文论文中提取了引文清单。同时,我们恢复了相应的MEDLINE记录,以分析论据性举动。我们的论证模型基于四个类别:目的,方法,结果和结论。在明确构造的MEDLINE摘要上训练的贝叶斯分类器会生成这些论证类别。类别用于生成四个不同的论证索引。第五个索引包含完整的摘要,以及医学主题词(MeSH)术语的标题和列表。为了评估举动与引用之间的关系,使用引用列表作为确定文章相关性,建立基准的标准;这意味着如果两篇文章有大量相同的引文,则被视为“相关”。我们的结果表明,具有“目的”和“结论”功能的查询的平均精度最高,而“结果”和“方法”功能的精度相对较低。提出了移动的线性加权组合,可显着改善相关文章的检索。

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