在电视广播新闻节目中发现政治家的讲话

Delphine Charlet, Géraldine Damnati
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引用次数: 1

摘要

本文研究了电视广播新闻节目中政治家说话人转向检测问题。演讲者在主持人、记者和其他人之间进行第一次角色标记后,将被标记为其他人的人提交给政治家语音检测过程。所提出的方法结合了声学和词汇线索以及上下文信息,并且不使用任何特定的政治家模型(个人独立)。在101个电视广播新闻节目上的实验表明,基于全自动处理的方法能够以12.1%的平均错误率检测出政治家言论,由于政治家和非政治家之间分布的不平衡,其最大f值为70.3%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Detecting politician speech in TV broadcast news shows
Politician speaker turn detection in TV Broadcast News shows is addressed in this paper. After a first role labeling pass of speaker turns among anchor, reporter and other, turns labeled as other are submitted to a politician speech detection process. The proposed approach combines acoustical and lexical cues as well as contextual information, and does not use any specific politician model (person-independent). Experiments on a set of 101 TV broadcast news shows show that the proposed approach, which relies on fully automatic processing, enables to detect politician speech with an equal error rate of 12.1%, which turns to a maximal F-measure of 70.3% due to the unbalanced distribution among politicians and non-politicians.
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