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Autocorrelation of the Speech Multi-Scale Product for Voicing Decision and Pitch Estimation

机译:用于语音决策和音高估计的语音多尺度产品的自相关

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摘要

In this work, we present an algorithm for voiced/unvoiced decision and pitch estimation from speech signals. Our approach is based on classifying the peaks provided by the autocorrelation of the speech multi-scale product. The multi-scale product is based on making the product of the speech wavelet transform coefficients at three successive dyadic scales. The autocorrelation function of the multi-scale product is calculated over frames of a specific length. The experimental results show the robustness and the effectiveness of our approach. Besides, the proposed method outperforms some existing algorithms in a clean and noisy environment.
机译:在这项工作中,我们提出了一种用于从语音信号中进行有声/无声决策和音调估计的算法。我们的方法基于对语音多尺度乘积的自相关提供的峰值进行分类。多尺度积是基于使语音小波变换系数的积在三个连续的二进阶尺度上进行的。多尺度乘积的自相关函数是在特定长度的帧上计算的。实验结果表明了该方法的鲁棒性和有效性。此外,该方法在干净嘈杂的环境中优于现有的一些算法。

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