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Low distortion acoustic noise suppression using a perceptual model for speech signals

机译:使用语音信号感知模型的低失真声噪声抑制

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Algorithms for the suppression of acoustic noise in speech signals are generally short-time spectral amplitude (STSA) methods such as spectral subtraction. These methods have been effective at reducing or removing background noise, but have a tendency (at low SNR) to add annoying artefacts, such as musical noise, and distortion of the speech signal. By employing an auditory model, psychoacoustic effects such as simultaneous masking can be used to apply spectral modification in a more effective manner, reducing the amount of overall modification necessary. In this way, the artefacts introduced by processing are reduced. The paper proposes a method for significantly improving the reduction in the background acoustic noise in narrowband and wideband speech signals, even at low SNR. We show that the use of a subtraction strategy and psychoacoustic model originally intended for audio signals yields an output signal with little or no audible distortion.
机译:用于抑制语音信号中的噪声的算法通常是短时频谱幅度(STSA)方法,例如频谱减法。这些方法在减少或消除背景噪声方面是有效的,但有一种趋势(在低SNR时)会增加令人讨厌的伪像,例如音乐噪声和语音信号失真。通过采用听觉模型,可以使用心理声学效果(例如同时屏蔽)以更有效的方式应用频谱修改,从而减少了必要的总体修改量。以这种方式,减少了由加工引入的伪像。本文提出了一种即使在低SNR的情况下也可以显着改善窄带和宽带语音信号中背景声噪声的降低的方法。我们表明,最初用于音频信号的减法策略和心理声学模型的使用会产生很少或没有听觉失真的输出信号。

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