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A non-linear operator based method for harmonic feature extraction from speech signals

机译:一种基于非线性算子的语音信号谐波特征提取方法

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摘要

An important pre-processing stage in speech recognition systems is that of extracting phonetically pertinent acoustic features from the speech signal. These features form the basis for discriminative classification and serve as cues for the identification of phonetic events in speech. The paper addresses this by presenting a novel method for the classification of harmonic (short-term periodic) and non-harmonic segments in speech signals. Classification is accomplished by proposing two new features derived from the non-linear Teager energy operator (TEO). The features proposed are the TEO-Weighted Harmonic Product (TEO-WHP*)and the TEO-Weighted Harmonic Sum (TEO-WHS*). Experiments are reported and discussed that demonstrate the effectiveness and the importance of these features as a valuable preprocessor for many speech systems.
机译:语音识别系统中一个重要的预处理阶段是从语音信号中提取与语音相关的声学特征。这些特征构成了区分性分类的基础,并作为识别语音中语音事件的线索。本文通过提出一种对语音信号中的谐波(短期周期性)和非谐波段进行分类的新颖方法来解决这一问题。通过提出两个来自非线性Teager能量算子(TEO)的新功能来完成分类。建议的功能是TEO加权谐波乘积(TEO-WHP *)和TEO加权谐波和(TEO-WHS *)。报告并讨论了实验,这些实验证明了这些功能作为许多语音系统中有价值的预处理器的有效性和重要性。

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