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Emotional Speech Clustering based Robust Speaker Recognition System

机译:基于情感语音集群的强大扬声器识别系统

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Speech with various emotions aggravates the performance of speaker recognition system. The existing speaker modeling disregards the match of the emotional state between training and testing speech, and the systems suffer the lapsus of the emotion recognition as to practical application. We propose an alternative approach that exploits the prosodic difference to cluster affective speech, and then builds corresponding models with the clustered speech for a given speaker. The aim is to match the test utterances with one of the clustered speaker models and utilize the limited affective speech effectively. The method is evaluated with the Mandarin Affective Speech Corpus. Experimental results show that the proposed approach achieves a relative improvement of at least 19% over the traditional speaker recognition task. We also show that such approach are more robust to communication the emotional affects than the other speaker recognition systems.
机译:伴随着各种情绪的演讲加剧了扬声器识别系统的性能。现有的扬声器建模无视培训和测试演讲之间的情绪状态的匹配,并且系统遭受了情感认可的距离,即实际应用。我们提出了一种替代方法,利用博物区差异与集群情感语音,然后为给定扬声器的聚类语音构建相应的模型。目的是将测试话语与其中一个聚类扬声器模型相匹配,并有效地利用有限的情感语音。用普通话情感语音语料库评估该方法。实验结果表明,拟议的方法在传统的扬声器识别任务中实现了至少19%的相对提高。我们还表明,这些方法更加强大地沟通比其他扬声器识别系统的情绪影响。

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