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A Novel Approach in Continuous Speech Recognition for Vietnamese, anisolating tonal language

机译:一种新的越南语,思想色调语言的持续语音识别方法

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This paper proposes a new approach for the integration of the Vietnamese language characteristics into a Large Vocabulary Continuous Speech Recognition System (LVCSR) which was built for some European languages. Firstly, a new module of tone recognition using Hidden Markov model was constructed. Secondly, several methods were applied to transform a text corpus of monosyllabic words into text corpus of polysyllabic words and a statistical language model of polysyllabic words was built by using the new text corpus. Finally, all the knowl-edge has been included in the LVCSR system so that this system can be adapted for Vietnamese. Experiments are made on the VNSPEECHCORPUS. The results show that the accuracy of Vietnamese recognition system was increased, 46% of relative reduction of the word error rate is obtained by using Vietnamese language characteristics.
机译:本文提出了一种新的方法,将越南语言特征集成到大型词汇连续语音识别系统(LVCSR)中,该识别系统是为某些欧洲语言而构建的。首先,建立了使用隐马尔可夫模型的新的音调识别模块。其次,应用了几种方法以将单音节字的文本语料解力转换为多乐网字文本语料库,并通过使用新的文本语料库构建了多乐网词的统计语言模型。最后,所有知识边缘都包含在LVCSR系统中,以便该系统可以适用于越南语。实验是在VNSpeechcorpus上进行的。结果表明,越南识别系统的准确性增加,通过使用越南语特征获得了单词错误率相对减少的46%。

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