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An Improved Multi-Band Spectral Subtraction Algorithm for Enhancing Speech in Various Noise Environments

机译:一种改进的多频谱减法算法,用于增强各种噪声环境中的语音

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This paper proposes an improved multi-band spectral subtraction algorithm with the goal of improving the quality of speech signal in various noise environments. In the proposed enhancement algorithm, the whole speech spectrum is divided into different uniformly spaced continuous frequency bands and spectral over-subtraction is performed in each band, independently. The proposed algorithm uses a novel approach to estimate the noise from each band continuously, without using speech pause detection. The noise is estimated and updated by adaptively smoothing the noisy signal power in each uniformly spaced frequency band. The smoothing parameter is controlled by a linear function of a-posteriori signal-to-noise ratio (SNR). The experiments are conducted for various types of noises and the results of proposed algorithm are compared with the reference multi-band spectral subtraction algorithm. To test the performance of the proposed speech enhancement algorithm, objective quality measurement tests (SNR, segmental SNR (Seg.SNR), and perceptual evaluation of speech quality (PESQ)) and spectrogram with informal listening tests are conducted for various noise types at different SNRs. Experimental results and objective quality evaluation test results confirmed the performance of proposed enhancement algorithm. The proposed enhancement algorithm provides sufficient noise reduction and good perceptual quality, without causing considerable signal distortion and remnant musical noise.
机译:本文提出了一种改进的多频谱减法算法,其目的是提高各种噪声环境中的语音信号的质量。在所提升的增强算法中,整个语音频谱被分成不同的均匀间隔的连续频带,并且独立地在每个频带中执行频谱过量减法。所提出的算法使用新的方法来连续地估计每个频带的噪声,而不使用语音暂停检测。通过自适应地平滑每个均匀间隔的频带中的噪声信号功率来估计和更新噪声。平滑参数由A-Bouthiori信噪比(SNR)的线性函数控制。对各种类型的噪声进行实验,并将所提出的算法的结果与参考多频带谱减法算法进行比较。为了测试所提出的语音增强算法的性能,客观质量测量测试(SNR,节段SNR(SEG.SNR)和语音质量(PESQ)的感知评估)和具有非正式听测测试的频谱图对于不同的噪音类型进行了不同的噪音SNR。实验结果和客观质量评估测试结果证实了提升算法的性能。所提升的增强算法提供了足够的降噪和良好的感知质量,而不会导致相当大的信号失真和残余音乐噪声。

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