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Evaluation of Energy and Duration on Malay Phrase Breaks

机译:评估马来语短语中的能量和持续时间

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This paper presents evaluation of energy and duration features in detection of phrase breaks. The training feature set is developed from evaluation of targeted phrase break in listening test. This cheaper and faster approach is proven useful for under-resource language such as Malay which do not have comprehensive prosodic-annotated corpus. In addition, instead of labeling the phrase break using linguistic and phonetic meaning, the listening test allow labeling of phrase break as perceived by listener. Then, word-related energy and duration features are extracted from the targeted phrase break. Evaluation of the features with RBF, MLP and logistics models reveal best detection accuracy of 84.6% which is comparable to existing context-based algorithm. This simpler approach of using energy patterns and duration features for detection of phrase break, can be used to segment lengthy spontaneous speech into smaller meaningful utterance without analysis of linguistic information. In addition, the results can be use as preliminary information for evaluation of boundary salience at the targeted boundary locations.
机译:本文介绍了检测短语突破中的能量和持续时间特征的评估。培训功能集是从聆听测试中的有针对性短语中断的评估开发的。这种更便宜和更快的方法是对资源不足的语言有用,如马来语,没有全面的韵律注释语料库。此外,代替用语言和语音含义标记短语突破,聆听测试允许标记由倾听者所感知的短语突破。然后,从目标词组中断提取与词相关的能量和持续时间特征。评估具有RBF,MLP和物流模型的特征,揭示了84.6%的最佳检测精度,其与现有的基于上下文的算法相当。这种更简单的方法,用于检测短语中断的能量模式和持续时间特征,可用于将冗长的自发性语音分割成较小的有意义的话语,而不会分析语言信息。此外,结果可以用作评估目标边界位置的边界显着性的初步信息。

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