基于改进EMD的语音去噪方法

Zhang Jun-chang, Z. Li
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引用次数: 9

摘要

语音信号在产生、传输和接收过程中不可避免地会受到噪声的干扰,从而导致语音失真。本文将用于非平稳和非线性信号分析的经验模态分解(EMD)应用于语音降噪。此外,针对传统EMD中包络拟合和插值点选择问题,提出了一种改进的EMD,用三次埃尔米特插值代替三次样条进行信号包络拟合,用二次迭代筛选法代替局部极值进行插值点选择。这样可以减少算法的误差,避免过冲或欠冲。仿真结果表明,与基于小波和传统EMD的语音去噪相比,该方法能够有效地降低语音失真,提高输出信噪比。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A Speech Denoising Method Based on Improved EMD
Speech signal is corrupted inevitably by noise which results in speech distortion during generation, transmission and reception process. In this paper, empirical mode decomposition (EMD) for non-stationary and nonlinear signal analysis is applied to speech de-noising. Moreover, focusing on the problems of envelopes fitting and interpolation points selection in conventional EMD, an improved EMD is proposed, which uses cubic hermite interpolation instead of cubic spline for signal envelopes fitting, and doubly-iterative sifting method instead of local extrema for interpolation points selection. Thus, the errors of algorithm could be reduced, and overshoots or undershoots be avoided. Simulation shows that the proposed method decreases speech distortion and increases output signal to noise ratio (SNR), compared with speech denoising based on wavelet and conventional EMD.
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