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Adaptive spectral subtraction to improve quality of speech in mobile communication

机译:自适应频谱减法可提高移动通信中的语音质量

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With the development of VLSI technology, mobile communication is supported by smart devices for transmission and reception of information in various forms. In order to improve the quality of speech communication smart devices are provided with pre-processing algorithms. These algorithms should be adaptive in nature to suppress the real-time noise. The performance of smart devices depends on the algorithms. The performance of smart devices is excellent in noise-free surroundings; however, their performances worsen in noisy surroundings. Spectral domain weighting approaches, which estimate spectral density of noise, are considered for speech enhancement. These algorithms process speech in short frames. In this paper, we propose one such novel algorithm for assessment of noise in very small bands based on type of disturbance. Thus, using multiband time-varying filtering coefficients, speech signals are modelled by autoregressive process. Experimental results demonstrate an improvement of 25% to 45% as compared to other conventional multiband approach.
机译:随着VLSI技术的发展,智能设备支持移动通信,以各种形式传输和接收信息。为了提高语音通信的质量,向智能设备提供了预处理算法。这些算法本质上应该是自适应的,以抑制实时噪声。智能设备的性能取决于算法。智能设备的性能在无噪音的环境中表现出色;但是,他们的表现在嘈杂的环境中会变差。考虑使用频谱域加权方法来估计噪声的频谱密度,以进行语音增强。这些算法在短帧中处理语音。在本文中,我们提出了一种基于干扰类型的新颖算法,用于评估非常小的频带中的噪声。因此,使用多频带时变滤波系数,语音信号通过自回归过程进行建模。实验结果表明,与其他传统的多频带方法相比,该方法提高了25%至45%。

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