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Noise reduction for randomized speech and audio coding in WASNs

机译:WASN中随机语音和音频编码的降噪

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We are surrounded by a multitude of connected devices with microphones, the signal of which should be combined for best sound quality. Thus, we recently proposed a distributed speech and audio codec which decorrelates quantization noise applying randomization. In this paper, this method is extended attenuating quantization noise using Wiener filtering at the decoder. We demonstrate that this approach can be used to jointly attenuate quantization noise and background noise present at the microphones. By using orthogonal randomization matrices, computational complexity can be minimized by separating the Wiener filter from the inverse randomization. Our evaluation shows that Wiener filtering in combination with a randomized distributed codec is an efficient method to attenuate background and quantization noise at the decoder.
机译:我们被大量带有麦克风的连接设备所包围,应将其信号合并以获得最佳音质。因此,我们最近提出了一种分布式语音和音频编解码器,它可以对应用随机化的量化噪声进行解相关。在本文中,此方法扩展了在解码器处使用维纳滤波的衰减量化噪声的功能。我们证明了该方法可用于共同衰减麦克风中存在的量化噪​​声和背景噪声。通过使用正交随机矩阵,可以通过将Wiener滤波器与逆随机化分开来使计算复杂度最小化。我们的评估表明,维纳滤波与随机分布的编解码器相结合是一种在解码器处衰减背景噪声和量化噪声的有效方法。

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