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Inferring Discourse Relations from PDTB-style Discourse Labels for Argumentative Revision Classification

机译:从PDTB样式的话语标签推断话语关系以进行论证修订分类

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Pcnn Discourse Treebank (PDTB)-stylc annotation focuses on labeling local discourse relations between text spans and typically ignores larger discourse contexts. In this paper we propose two approaches to infer discourse relations in a paragraph-level context from annotated PDTB labels. We investigate the utility of inferring such discourse information using the task of revision classification. Experimental results demonstrate that the inferred information can significantly improve classification performance compared to baselines, not only when PDTB annotation comes from humans but also from automatic parsers.
机译:Pcnn话语树库(PDTB)样式注释着重于标记文本跨度之间的局部话语关系,通常会忽略较大的话语上下文。在本文中,我们提出了两种方法来从带注释的PDTB标签中推断段落级上下文中的语篇关系。我们研究使用修订分类的任务来推断此类话语信息的效用。实验结果表明,不仅当PDTB注释来自人类而且来自自动解析器时,与基线相比,推断出的信息还可以显着改善分类性能。

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