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Semi-automatic Syllable Labelling for Assamese Language Using HMM and Vowel Onset-Offset Points

机译:使用HMM和元音偏移点的Assame语言的半自动音节标记

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Syllables play an important role in speech synthesis and recognition. Prosodic information is embedded into syllable units of speech. Here we present a method for semi-automatic syllable labelling of Assamese speech utterances using Hidden Markov Models (HMMs) and vowel onset-offset points. Semi-automatic syllable labelling means syllable labelling of the speech signal when transcription or the text corresponding to the speech file is provided. HMM models for 15 broad classes of phone is built. Time label of the transcription is obtained by the forced alignment procedure using the HMM models. A parser is used to convert the word transcription to syllable transcription using certain syllabification rules. This syllable transcription and the time label of the phones are used to get the time label of the syllables. Now the syllable labelling output is refined using the knowledge of vowel onset point and vowel offset point derived from the speech signal using different signal processing techniques. This refinement gives improvement in terms of both syllable detection as well as average deviation in the syllable onset and offset.
机译:音节在语音合成和识别中发挥着重要作用。韵律信息嵌入到音节的语音单元中。在这里,我们使用隐马尔可夫模型(HMMS)和元音开始偏移点来介绍Assamese语音话语的半自动音节标记方法。半自动音节标记意味着提供转录时语音信号的音节标记或对应于语音文件的文本。建立了15个广泛的手机的HMM型号。通过使用HMM模型的强制对准程序获得转录的时间标签。使用某些音节规则,解析器用于将单词转录转换为调音程序转录。此音节转录和手机的时间标签用于获取音节的时间标签。现在,使用不同的信号处理技术,使用从语音信号导出的元音发作点和元音偏移点的知识来改进音节标记输出。这种细化在音节检测方面提供了改进,以及音节发作和偏移中的平均偏差。

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