Information bottleneck based speaker diarization of meetings using non-speech as side information

S. Yella, H. Bourlard
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引用次数: 12

Abstract

Background noise and errors in speech/non-speech detection cause significant degradation to the output of a speaker diarization system. In a typical speaker diarization system, non-speech segments are excluded prior to unsupervised clustering. In the current study, we exploit the information present in the non-speech segments of a recording to improve the output of the speaker diarization system based on information bottleneck framework. This is achieved by providing information from non-speech segments as side (irrelevant) information to information bottleneck based clustering. Experiments on meeting recordings from RT 06, 07, 09, evaluation sets have shown that the proposed method decreases the diarization error rate by around 18% relative to the baseline speaker diarization system based on information bottleneck framework. Comparison with a state of the art system based on HMM/GMM framework shows that the proposed method significantly decreases the gap in performance between the information bottleneck system and HMM/GMM system.
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基于信息瓶颈的以非语音作为辅助信息的会议发言人划分
背景噪声和语音/非语音检测中的错误会导致说话人拨号系统的输出显著下降。在典型的说话人分化系统中,非语音片段在无监督聚类之前被排除。在本研究中,我们利用录音中存在的非语音片段的信息来提高基于信息瓶颈框架的说话人分化系统的输出。这是通过提供来自非语音片段的信息作为基于信息瓶颈的聚类的侧(不相关)信息来实现的。在rt06、07、09的会议录音评估集上进行的实验表明,与基于信息瓶颈框架的基线发言者拨号系统相比,该方法将拨号错误率降低了18%左右。与基于HMM/GMM框架的信息瓶颈系统的比较表明,该方法显著减小了信息瓶颈系统与HMM/GMM系统在性能上的差距。
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