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Semantic Modelling of Citation Contexts for Context-Aware Citation Recommendation

机译:语义建模引用语境引用引用建议

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New research is being published at a rate, at which it is infea-sible for many scholars to read and assess everything possibly relevant to their work. In pursuit of a remedy, efforts towards automated processing of publications, like semantic modelling of papers to facilitate their digital handling, and the development of information filtering systems, are an active area of research. In this paper, we investigate the benefits of semantically modelling citation contexts for the purpose of citation recommendation. For this, we develop semantic models of citation contexts based on entities and claim structures. To assess the effectiveness and conceptual soundness of our models, we perform a large offline evaluation on several data sets and furthermore conduct a user study. Our findings show that the models can outperform a non-semantic baseline model and do, indeed, capture the kind of information they're conceptualized for.
机译:新研究正在以速度发布,它是许多学者读取和评估可能与其工作相关的一切的信息。 为了追求补救措施,努力实现出版物的自动化,如论文的语义建模,以便于他们的数字处理,以及信息过滤系统的发展,是一个活跃的研究领域。 在本文中,我们调查了语义建模引用语境的益处,以便引用引文建议。 为此,我们根据实体和索赔结构开发引文上下文的语义模型。 为了评估我们模型的有效性和概念性,我们对几个数据集进行了大的离线评估,并进行了用户学习。 我们的研究结果表明,该模型可以胜过非语义基线模型,实际上捕获它们概念化的信息。

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