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Automatic Rhythm Modeling for Language Identification

机译:语言识别的自动节奏建模

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摘要

This paper deals with an approach to Automatic Language Identification based on rhythmic modeling. Beside phonetics and phonotactics, rhythm is actually one of the most promising features to be considered for language identification, but significant problems are unresolved for its modeling. In this paper, an algorithm of rhythm extraction is described. Experiments are performed on read speech for 5 European languages. They show that salient features may be automatically extracted and efficiently modeled from the raw signal: a Gaussian mixture modeling of the extracted features results in a 81 % percent of correct language identification for the 5 languages, using 20 s duration utterances.
机译:本文探讨了一种基于节奏建模的自动语言识别方法。除了语音和音韵学以外,节奏实际上是语言识别中最有前途的功能之一,但是其建模还没有解决重大问题。本文描述了一种节奏提取算法。针对5种欧洲语言的朗读语音进行了实验。他们表明,可以从原始信号中自动提取显着特征并对其进行有效建模:使用20 s的持续时间发声,对所提取特征的高斯混合建模可得出5种语言的正确语言识别的81%。

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