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A novel approach for design of a speech enhancement system using NLMS adaptive filter and ZCR based pattern identification

机译:一种使用NLMS自适应滤波器和基于ZCR基于ZCR的语音增强系统设计的新方法

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Speech signals often get degraded by various types of noise at different stages of speech recording, processing and communication systems. One major source of noise is the background noise, which highly degrades the speech signal quality and decreases the listening comfort. Speech enhancement is a section of digital speech processing in which the interfering noise is eliminated from the speech and the noise-free speech is estimated from the noisy speech signal. The work here proposes a novel approach for the enhancement of speech signal which has been highly degraded by background noise. The noisy speech signal is fed through two different stages. In the first stage, an auto-trained NLMS adaptive filter is applied to reduce the noise level. The auto trained adaptive filter automatically designs itself for the particular background without any previous training for that particular background. Then the output is passed through a ZCR based pattern identification approach for further enhancement of the speech signal. It is observed that the proposed system increases the overall output SNR of the signal by about 4 times of the input SNR.
机译:语音信号经常通过语音记录,处理和通信系统的不同阶段进行各种类型的噪声来降级。一个主要的噪声来源是背景噪声,从而降低了语音信号质量并降低了聆听舒适度。语音增强是数字语音处理的一部分,其中从语音中消除了干扰噪声,并且从嘈杂的语音信号估计无噪声语音。这里的工作提出了一种提高语音信号的新方法,这是由背景噪声高度降级的语音信号。嘈杂的语音信号通过两个不同的阶段馈送。在第一阶段,应用自动训练的NLMS自适应滤波器以减少噪声水平。自动培训的自适应过滤器自动为特定背景设计本身,没有任何针对该特定背景的培训。然后通过基于ZCR的模式识别方法传递输出,以进一步增强语音信号。观察到所提出的系统将信号的总输出SNR增加约4次SNR。

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