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Instantaneous model adaptation method for reverberant speech recognition

机译:瞬时模型自适应的混响语音识别方法

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摘要

An acoustic model adaptation algorithm is proposed for reverberant speech recognition. Inspired by the eigenvoice adaptation framework, multiple acoustic models reflecting various reverberant environments are combined for instantaneous adaptation. Using artificially generated reverberant speech, multiple acoustic models are trained according to multiple reverberation times. The mean vectors of the optimal acoustic model are obtained as a weighted sum of those of multiple acoustic models by using a maximum-likelihood criterion. For effective model combination, reverberant speech is preprocessed. Experiments on English continuous speech recognition tasks in a simulated reverberant environment show that the proposed method performs better than the conventional adaptation techniques.
机译:提出了一种声学模型自适应算法,用于混响语音识别。受本征语音适应框架的启发,反映各种混响环境的多个声学模型被组合起来用于瞬时适应。使用人工生成的混响语音,可以根据多个混响时间来训练多个声学模型。通过使用最大似然准则,获得最佳声学模型的均值向量,作为多个声学模型的均值向量的加权和。为了有效地进行模型组合,对混响语音进行了预处理。在模拟混响环境下进行英语连续语音识别任务的实验表明,该方法的性能优于传统的自适应技术。

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