从电影对话中识别说话人

Amitava Kundu, Dipankar Das, Sivaji Bandyopadhyay
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引用次数: 8

摘要

人们对语音对话中的说话人识别进行了大量的研究。然而,本文报告了从电影对话中识别说话人的任务,其中只包括文本特征。我们使用了从IMSDb存档中提取的电影剧本文本语料库,并使用演讲者进行注释。由于一个文字中的不同人物在说话时表现出不同的语言风格,我们将从不同人物的转折中提取出来的文体特征纳入其中。这些特征包括作者识别任务中常用的基于频率的信息,以及轮流文本的词性信息。使用k近邻(k-NN)、Naïve贝叶斯(NB)和条件随机场(CRF)分类器从对话脚本中识别说话人。所有监督分类器都优于使用简单随机化技术开发的基线系统。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Speaker identification from film dialogues
A considerable research on speaker identification from speech dialogues has been conducted. However, the present article reports speaker identification task from film dialogue which includes textual features only. We have used a text corpus of film scripts, extracted from the IMSDb archive and annotated with speakers. As different characters in a script exhibit various linguistic styles while speaking, we have incorporated the stylistic features that are extracted from the turns of various characters. These features include frequency based information commonly used in author identification task as well as the part-of-speech (POS) information of turn text. The k-nearest neighbor (k-NN), Naïve Bayes' (NB) and Conditional Random Field (CRF) classifiers have been employed for identifying the speakers from the dialogue scripts at turn levels. All the supervised classifiers outperform the baseline system that was developed using a simple randomization technique.
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