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MULTIOPED: A Corpus of Multi-Perspective News Editorials

机译:多功能:多透视新闻编辑的语料库

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摘要

We propose MULTIOPED1, an open-domain news editorial corpus that supports various tasks pertaining to the argumentation structure in news editorials, focusing on automatic perspective discovery. News editorial is a genre of persuasive text, where the argumentation structure is usually implicit. However, the arguments presented in an editorial typically center around a concise, focused thesis, which we refer to as their perspective. MULTIOPED aims at supporting the study of multiple tasks relevant to automatic perspective discovery, where a system is expected to produce a single-sentence thesis statement summarizing the arguments presented. We argue that identifying and abstracting such natural language perspectives from editorials is a crucial step toward studying the implicit argumentation structure in news editorials. We first discuss the challenges and define a few conceptual tasks towards our goal. To demonstrate the utility of MULTIOPED and the induced tasks, we study the problem of perspective summarization in a multi-task learning setting, as a case study. We show that, with the induced tasks as auxiliary tasks, we can improve the quality of the perspective summary generated. We hope that MULTIOPED will be a useful resource for future studies on argumentation in the news editorial domain.
机译:我们提出多功能1,这是一个开放式域新闻编辑语料库,支持与新闻编辑中的论证结构有关的各种任务,专注于自动透视发现。新闻编辑是有说服力的文本类型,其中争论结构通常是隐含的。然而,在一个社论中呈现的论点通常围绕一篇简洁的,专注于,我们称之为他们的观点。多功能旨在支持与自动透视发现相关的多个任务的研究,其中一个系统将产生一个单一句子论文声明,总结了所呈现的参数。我们认为,从社论中识别和抽象这种自然语言观点是研究新闻编辑中隐含论证结构的关键步骤。我们首先讨论挑战并为我们的目标定义一些概念性任务。为了展示多功能和所致任务的效用,我们研究了多任务学习环境中的透视摘要问题,如案例研究。我们展示了,通过诱导任务作为辅助任务,我们可以提高生成的透视摘要的质量。我们希望多发经营将成为未来关于论证编辑领域论证的研究的有用资源。

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