首页> 外文会议>IEEE International Conference on Acoustics, Speech, and Signal Processing >AN AUTOMATIC PROSODY LABELING SYSTEM USING ANN-BASED SYNTACTIC-PROSODIC MODEL AND GMM-BASED ACOUSTIC-PROSODIC MODEL
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AN AUTOMATIC PROSODY LABELING SYSTEM USING ANN-BASED SYNTACTIC-PROSODIC MODEL AND GMM-BASED ACOUSTIC-PROSODIC MODEL

机译:基于ANN的句法 - 博物馆模型和基于GMM的声学 - 韵律模型的自动韵律标记系统

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Automatic prosody labeling is important for both speech synthesis and automatic speech understanding. Humans use both syntactic cues and acoustic cues to develop their prediction of prosody for a given utterance. This process can be effectively modeled by an ANN-based syntactic-prosodic model that predicts prosody from syntax and a GMM-based acoustic-prosodic model that predicts prosody from acoustic-prosodic observations. Our experiments on the Radio News Corpus show that ANN is effective in learning the stochastic mapping from the syntactic representation of word strings to prosody labels, with an accuracy of 82.7% for pitch accent labeling and 90.5% for intonational phrase boundary (IPB) labeling. When acoustic observations and reasonably accurate phoneme transcriptions are given, a GMM-based acoustic-prosodic model, coupled with the syntactial-prosodic model, can achieve 84% pitch accent recognition accuracy and 93% IPB recognition accuracy. These results are obtained using different speakers for training and testing and have considerably exceeded all previously reported results on the same corpus, especially for the task of IPB detection.
机译:自动韵律标签对于语音合成和自动语音理解非常重要。人类使用句法线索和声学线索来发展他们对给定话语的韵律的预测。该过程可以通过基于ANN的句法 - 韵律模型有效地建模,该模型预测来自语法和基于GMM的声学 - 韵律模型,其预测来自声学韵律观察的韵律。我们对广播新闻语料实验表明,人工神经网络能有效地从单词串韵律标签的句法表示学习随机映射,有82.7%的音高重音标签和语调短语边界(IPB)标签90.5%的准确度。当声波观测和合理的准确音素转录给出,基于GMM-语音模型,再加上syntactial-韵律模型,可以实现84%的间距口音识别精度和93%IPB识别精度。这些结果是使用不同扬声器获得的,用于训练和测试,并且已经大大超过了所有先前报告的同一语料库的结果,特别是对于IPB检测的任务。

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