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Offering Answers for Claim-Based Queries: A New Challenge for Digital Libraries

机译:为基于索赔的查询提供答案:数字图书馆的新挑战

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This paper introduces the novel problem of 'claim-based queries' and how digital libraries can be enabled to solve it. Claim-based queries need the identification of a key aspect of research papers: claims. Today, claims are hidden in its unstructured, free text representation within research documents. In this work, a claim is a sentence that constitutes the main contribution of a paper and expresses an association between entities of particular interest in a given domain. In the following, we investigate how to identify claims for subsequent extraction in an unsupervised fashion by a novel integration of neural word embedding representations of claims with a graph based algorithm. For evaluation purposes, we focus on the medical domain: all experiments are based on a real-world corpus from PubMed, where both, limitations and success of our solution can realistically be assessed.
机译:本文介绍了“基于声明的查询”的新问题以及如何启用数字图书馆来解决它。基于声明的查询需要确定研究论文的一个关键方面:声明。如今,索赔已隐藏在研究文档中的非结构化,自由文本表示形式中。在这项工作中,要求是构成论文主要贡献的句子,表示在给定领域中具有特定利益的实体之间的关联。在下文中,我们研究如何通过将权利要求的神经词嵌入表示法与基于图的算法进行新颖的集成,以无监督的方式识别权利要求以用于后续提取。为了进行评估,我们将重点放在医学领域:所有实验均基于PubMed的真实语料库,在此可以真实地评估我们解决方案的局限性和成功性。

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