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A noise reduction technique of speech signal using ICA and spectral analysis

机译:基于ICA和频谱分析的语音信号降噪技术

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摘要

This paper discusses the new method on noise reduction exploiting the combined effects of wavelet decomposition, ICA and spectral analysis on noisy speech. The input noisy speech is wavelet decomposed into two signals. Wavelet entropy is computed based on the modified probability density function for the signal derived from the approximation coefficients during wavelet decomposition. By proper entropy comparison, the starting frame is detected. Between the two signals obtained from the wavelet decomposition, one is speech combined with noise and another one is noise alone. These two signals are analysed in independent component analysis (ICA) domain, in order to generate an enhanced speech. Zero-crossing rate is computed and used to discriminate between speech and noise. Then, spectral analysis is performed on the noise prior to starting frame and noisy speech. Elimination of noise frequencies in the noisy speech leads to noise reduced speech. Subjective analysis and experimental results show the considerable noise reduction capability of the proposed algorithm.
机译:本文结合小波分解,ICA和频谱分析对噪声语音的综合影响,探讨了一种新的降噪方法。输入的有声语音被小波分解为两个信号。基于改进的概率密度函数,针对小波分解过程中从近似系数得出的信号计算小波熵。通过适当的熵比较,检测到起始帧。在通过小波分解获得的两个信号之间,一个是语音与噪声相结合,另一个是单独的噪声。为了产生增强的语音,在独立成分分析(ICA)域中对这两个信号进行了分析。计算过零率,并将其用于区分语音和噪声。然后,在开始帧和嘈杂语音之前对噪声执行频谱分析。消除嘈杂语音中的噪声频率会导致噪声降低。主观分析和实验结果表明,该算法具有显着的降噪能力。

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