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Phoneme classification using naive Bayes classifier in reconstructed phase space

机译:重构相空间中基于朴素贝叶斯分类器的音素分类

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摘要

A novel method for classifying speech phonemes is presented. Unlike traditional cepstral based methods, this approach uses histograms of reconstructed phase spaces. A naive Bayes classifier uses the probability mass estimates for classification. The approach is verified using isolated fricative, vowel, and nasal phonemes from the TIMIT corpus. The results show that a reconstructed phase space approach is a viable method for classification of phonemes, with the potential for use in a continuous speech recognition system.
机译:提出了一种对语音音素进行分类的新方法。与传统的基于倒谱的方法不同,此方法使用重建相空间的直方图。朴素的贝叶斯分类器使用概率质量估计进行分类。使用TIMIT语料库中孤立的摩擦音,元音和鼻音进行了验证。结果表明,重构相空间方法是一种可行的音素分类方法,具有在连续语音识别系统中使用的潜力。

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