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Fine-grained Structure-based News Genre Categorization

机译:基于结构的细粒度新闻类型分类

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摘要

Journalists usually organize and present the contents of a news article following a well-defined structure. In this work, we propose a new task to categorize news articles based on their content presentation structures, which is beneficial for various NLP applications. We first define a small set of news elements considering their functions (e.g., introducing the main story or event, catching the reader's attention and providing details) in a news story and their writing style {narrative or expository), and then formally define four commonly used news article structures based on their selections and organizations of news elements. We create an annotated dataset for structure-based news genre identification, and finally, we build a predictive model to assess the feasibility of this classification task using structure indicative features.
机译:记者通常按照定义明确的结构来组织和展示新闻文章的内容。在这项工作中,我们提出了一项新任务,根据新闻文章的内容表示结构对新闻文章进行分类,这对于各种NLP应用程序都是有益的。我们首先考虑新闻故事中的功能(例如,介绍主要故事或事件,引起读者的注意并提供详细信息)及其写作风格(叙述性或说明性),定义一小部分新闻元素,然后正式定义四个常用元素根据新闻的选择和新闻元素的组织使用新闻文章结构。我们创建了一个带注释的数据集,用于基于结构的新闻类型识别,最后,我们建立了一个预测模型,以使用结构指示特征来评估此分类任务的可行性。

著录项

  • 来源
  • 会议地点 Santa Fe(US)
  • 作者单位

    Department of Computer Science and Engineering Texas AM University;

    Department of Computer Science and Engineering Texas AM University;

    Department of Computer Science and Engineering Texas AM University;

  • 会议组织
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
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