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Incorporating tone features to convolutional neural network to improve Mandarin/Thai speech recognition

机译:将音调特征整合到卷积神经网络中以改善普通话/泰语语音识别

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Tone plays an important role in distinguishing lexical meaning in tonal languages, such as Mandarin and Thai. It has been revealed that tone information is helpful to improve automatic speech recognition (ASR) for these languages. In this study, we incorporate tone features from the fundamental frequency (Fo) and fundamental frequency variation (FFV) to the convolutional neural network (CNN), a state-of-the-art acoustic modeling approach, for acoustic modeling of the ASR systems. Due to its abilities of reducing spectral variations and modeling spectral correlations existing in speech signals, the CNN is expected to model well tone patterns which mainly behave in the frequency domain, by Fo contur. We conduct speech ASR experiments on Mandarin and Thai to evaluate the effectivenesses of the proposed approaches. With the help of tone features, the character error rates (CERs) of Mandarin achieve 4.3-7.1% relative reductions, and the word error rates (WERs) of Thai achieve 0.41-6.26% relative reductions. The CNN shows its clear superiority to the deep neural network (DNN), with relative CER reductions of 5.4-13.1% for Mandarin, and relative WER reductions of 0.5-5.6% for Thai.
机译:声调在区分普通话和泰语等声调语言的词汇意义中起着重要作用。已经发现,语气信息有助于改善这些语言的自动语音识别(ASR)。在这项研究中,我们将基频(Fo)和基频变化(FFV)的音调特征与卷积神经网络(CNN)融合在一起,这是一种用于ASR系统声学建模的最新声学建模方法。由于其能够减少语音信号中存在的频谱变化并建模频谱相关性的能力,因此CNN有望通过Fo contur建模主要表现在频域中的良好音调模式。我们对普通话和泰语进行语音ASR实验,以评估所提出方法的有效性。借助音调功能,普通话的字符错误率(CER)相对降低了4.3-7.1%,泰语的单词错误率(WER)相对降低了0.41-6.26%。 CNN表现出明显优于深度神经网络(DNN)的优势,普通话的相对CER降低了5.4-13.1%,泰国的相对WER降低了0.5-5.6%。

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