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Graphene: Semantically-Linked Propositions in Open Information Extraction

机译:石墨烯:开放信息提取中的语义链接主题

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We present an Open Information Extraction (IE) approach that uses a two-layered transformation stage consisting of a clausal disembedding layer and a phrasal disembedding layer, together with rhetorical relation identification. In that way, we convert sentences that present a complex linguistic structure into simplified, syntactically sound sentences, from which we can extract propositions that are represented in a two-layered hierarchy in the form of core relational tuples and accompanying contextual information which are semantically linked via rhetorical relations. In a comparative evaluation, we demonstrate that our reference implementation Graphene outperforms state-of-the-art Open IE systems in the construction of correct n-ary predicate-argument structures. Moreover, we show that existing Open IE approaches can benefit from the transformation process of our framework.
机译:我们介绍了一种开放的信息提取(IE)方法,该方法使用由三层转换阶段组成的三层转换阶段,包括三层脱贴层和短语屠宰层,以及修辞关系识别。这样,我们将呈现复杂的语言结构的句子转换为简化的语法,声音句子,我们可以从中提取以核心关系元组的形式以两层层次结构中表示的命题和伴随着语义链接的上下文信息通过修辞关系。在比较评估中,我们证明了我们的参考实施石墨烯优于最先进的开放,即建设正确的N-ARY谓词论证结构中的系统。此外,我们表明现有的开放IE方法可以从我们框架的转换过程中受益。

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