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Classification methods for finding articles describing protein-protein interactions in PubMed

机译:在PubMed中查找描述蛋白质-蛋白质相互作用的文章的分类方法

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摘要

With the rapid expansion in the number of published papers in the biomedical field, finding relevant articles has become a demanding task for researchers. This has led to increasing interest in the use of text mining tools that help search the literature and identify the most relevant documents or information. One specific topic of interest is related to the identification of articles that might be used for extracting protein-protein interactions. Using the BioCreative III Article Classification Task dataset, composed of PubMed abstracts classified as relevant or non-relevant for describing protein-protein interactions, we compare different classification methods with different sets of features. The best results – area under the interpolated precision-recall curve of 0.654 – indicate that the proposed classification strategy could be incorporated in the database curation workflows in order to prioritize articles for extraction of protein-protein interactions. Furthermore, we also analysed the use of this method for ranking documents resulting from general PubMed queries, and propose that this approach could be useful for general researchers looking for publications describing protein-protein interactions within a particular topic of interest.
机译:随着生物医学领域发表论文数量的迅速增长,寻找相关文章已成为研究人员的一项艰巨任务。这导致人们对使用文本挖掘工具的兴趣日益浓厚,这些工具可帮助搜索文献并确定最相关的文档或信息。感兴趣的一个特定主题与鉴定可用于提取蛋白质-蛋白质相互作用的文章有关。使用由被分类为相关或不相关的PubMed摘要组成的BioCreative III文章分类任务数据集来描述蛋白质-蛋白质相互作用,我们比较了具有不同特征集的不同分类方法。最好的结果-插值的精确召回曲线下的面积为0.654-表明建议的分类策略可以纳入数据库管理工作流程中,以便为提取蛋白质-蛋白质相互作用的物品确定优先顺序。此外,我们还分析了该方法用于对由一般PubMed查询产生的文档进行排名的方法,并建议该方法对正在寻找描述特定主题内蛋白质与蛋白质相互作用的出版物的一般研究人员可能有用。

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