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Blind adaptive filtering of speech from noise of unknown spectrumusing a virtual feedback configuration

机译:使用虚拟反馈配置对未知频谱噪声进行语音盲自适应滤波

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The paper describes a single-receiver blind adaptive filter (BAF) of speech from noise where neither speech nor noise are accessible, nor are their parameters known. The only prior knowledge employed by the BAF is that human speech is nonstationary whereas the noise is assumed to be quasistationary, i.e., stationary over a longer interval than that of any speech phoneme. The RAF has a four subsystem structure. The system consists of an identifying subsystem that is followed by a speechoise parameter-separator. The noise is identified based on the stationary features of speech and noise. A feedforward subsystem sets optimization neighborhood to the virtual feedback subsystem where a cost-functional is minimized to jointly minimize the stationary part of the output while maximizing its nonstationary part. The system has been tested for performance for different signal to noise ratios (SNR) and for different types of noise parameters. Improvements for various noises range from 14-36 dB for -20 dB SNR inputs
机译:本文描述了一种来自声音的语音单接收机盲自适应滤波器(BAF),其中语音和噪声均不可访问,其参数也不为人所知。 BAF使用的唯一先验知识是人类语音是非平稳的,而噪声被认为是准静态的,即在比任何语音音素更长的时间间隔内是固定的。皇家空军有四个子系统的结构。该系统由一个识别子系统组成,其后是语音/噪声参数分隔符。基于语音和噪声的固定特征来识别噪声。前馈子系统将优化邻域设置到虚拟反馈子​​系统,在虚拟反馈子​​系统中,成本函数最小化,以共同最小化输出的固定部分,同时最大化其非平稳部分。该系统已针对不同的信噪比(SNR)和不同类型的噪声参数进行了性能测试。对于-20 dB SNR输入,各种噪声的改善范围为14-36 dB

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