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Recognizing Arguing Subjectivity and Argument Tags

机译:识别争论主观性和争论标签

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摘要

In this paper we investigate two distinct tasks. The first task involves detecting arguing subjectivity, a type of linguistic subjectivity on which relatively little work has yet to be done. The second task involves labeling instances of arguing subjectivity with argument tags reflecting the conceptual argument being made. We refer to these two tasks collectively as "recognizing arguments". We develop a new annotation scheme and assemble a new annotated corpus to support our learning efforts. Through our machine learning experiments, we investigate the utility of a sentiment lexicon, discourse parser, and semantic similarity measures with respect to recognizing arguments. By incorporating information gained from these resources, we outperform a unigram baseline by a significant margin. In addition, we explore a two-phase approach to recognizing arguments, with promising results.
机译:在本文中,我们研究了两个不同的任务。第一项任务是检测争论的主观性,这是一种语言主观性,尚需进行相对较少的工作。第二项任务涉及使用反映了正在进行的概念性论证的论证标签来标记主观论点的实例。我们将这两个任务统称为“认识论点”。我们开发了一种新的注释方案,并组装了一个新的注释语料库以支持我们的学习努力。通过我们的机器学习实验,我们研究了情感词典,语篇解析器和语义相似性度量在识别参数方面的效用。通过合并从这些资源中获得的信息,我们在很大程度上领先于unigram基线。此外,我们探索了一种分两步的方法来识别论点,并取得了可喜的结果。

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