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首页> 外文期刊>IEE Proceedings. Part K >Adaptation of hidden Markov model for telephone speech recognition and speaker adaptation
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Adaptation of hidden Markov model for telephone speech recognition and speaker adaptation

机译:隐马尔可夫模型的自适应用于语音识别和说话人自适应

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The authors propose a channel compensation method for the hidden Markov model (HMM) parameters in automatic speech recognition. The proposed approach is to adapt the existing reference models to a new channel environment by using a small amount of adaptation data. The concept of HMM parameter adaptation by incorporating the corresponding phone-dependent channel compensation (PDCC) vectors is applied to improve the performance of speech recognition. Two extended PDCC techniques are presented. One is based on the refinement of PDCC using vector quantisation. The other is based on the interpolation of compensation vectors. Both techniques are evaluated on the experiments on telephone speech recognition and speaker adaptation. The experimental results show that the performance can be significantly improved.
机译:作者提出了一种针对自动语音识别中的隐马尔可夫模型(HMM)参数的信道补偿方法。所提出的方法是通过使用少量的适配数据使现有参考模型适应新的信道环境。通过合并相应的电话相关信道补偿(PDCC)向量来实现HMM参数自适应的概念可改善语音识别的性能。提出了两种扩展的PDCC技术。一种是基于使用矢量量化对PDCC的精炼。另一个基于补偿向量的插值。两种技术均在电话语音识别和说话人适应性实验中进行了评估。实验结果表明,该性能可以得到明显改善。

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