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Speaker Role Recognition to help Spontaneous Conversational Speech Detection

机译:演讲者角色识别以帮助自发的会话语音检测

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In the audio indexing context, we present our recent co: tributions to the field of speaker role recognition, especial applied to conversational speech. We assume that there e: ist clues about roles like Anchor, Journalists or Others temporal, acoustic and prosodic features extracted from tl results of speaker segmentation and from audio files. In th paper, investigations are done on the EPAC corpus, main containing conversational documents. First, an automat clustering approach is used to validate the proposed fe tures and the role definitions. In a second study we propoi a hierarchical supervised classification system. The use dimensionality reduction methods as well as feature sele tion are investigated. This system correctly classifies 92% speaker roles.
机译:在音频索引背景下,我们展示了我们最近的CO:Tributions向演讲者角色认可领域,特别适用于对话演讲。我们假设有e:关于锚点,记者或其他时间,声音和韵律特征等角色的IST线索从扬声器分割和音频文件中提取的TL结果。在纸质中,在EPAC语料库中进行调查,主要包含会话文件。首先,自动聚类方法用于验证所提出的FE TURE和角色定义。在第二次研究中,我们Propoi是一个分层监督分类系统。研究了使用维数减少方法以及特征溶剂。该系统正确分类了92%的发言者角色。

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