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Building a language model for local coherence in multi-document summaries using a discourse-enriched entity-based model

机译:使用基于话语的基于实体的模型,在多文档摘要中构建用于局部一致性的语言模型

摘要

Local Coherence is a very important aspect in multidocument summarization, since good summaries not only condense the most relevant information, but also present it in a well-organized structure. One of the most investigated models for local coherence is the Entity-based model, which has been successfully used, once it facilitates the computational approach for coherence measurement. Particularly, this model was used for the evaluation of local coherence in multi-document summaries, achieving promising results. In order to improve the potential of the Entity-based model, we propose the creation of a language model for multi-document summaries that integrates the Entity-based model with discourse knowledge, mainly from Cross-document Structure Theory. Our results show that this type of information enriches the Entity-based Model by capturing other phenomena that are inherent to multi-document summaries, such as redundancy and complementarity, which improves the performance of the original model.
机译:局部一致性是多文档摘要中非常重要的一个方面,因为好的摘要不仅可以压缩最相关的信息,而且还可以以组织良好的结构来呈现信息。局部相干性研究最多的模型之一是基于实体的模型,一旦它促进了相干性测量的计算方法,该模型便已成功使用。特别是,该模型用于评估多文档摘要中的局部一致性,取得了可喜的结果。为了提高基于实体的模型的潜力,我们提出了一种针对多文档摘要的语言模型的创建,该模型将基于实体的模型与话语知识相结合,主要来自跨文档结构理论。我们的结果表明,此类信息通过捕获多文档摘要所固有的其他现象(例如冗余和互补性)来丰富基于实体的模型,从而提高了原始模型的性能。

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